Solutions Manual for Separation Process Engineering Includes Mass Transfer Analysis Third Edition Phillip C. Wankat Upper Saddle River, NJ • Boston • Indianapolis • San Francisco New York • Toronto • Montreal • London • Munich • Paris • Madrid Capetown • Sydney • Tokyo • Singapore • Mexico City The author and publisher have taken care in the preparation of this book, but make no expressed or implied warranty of any kind and assume no responsibility for errors or omissions No liability is assumed for incidental or consequential damages in connection with or arising out of the use of the information or programs contained herein. Visit us on the Web: InformIT.com/ph Copyright © 2012 Pearson Education, Inc. This work is protected by United States copyright laws and is provided solely for the use of instructors in teaching their courses and assessing student learning. Dissemination or sale of any part of this work (including on the World Wide Web) will destroy the integrity of the work and is not permitted. The work and materials from it should never be made available to students except by instructors using the accompanying text in their classes. All recipients of this work are expected to abide by these restrictions and to honor the intended pedagogical purposes and the needs of other instructors who rely on these materials. ISBN-10: 0-13-276211-0 ISBN-13: 978-0-13-276211-3 SOLUTIONS MANUAL for SEPARATION PROCESS ENGINEERING Third Edition (Formerly published as Equilibrium-Staged Separations) by Phillip C. Wankat Introduction to Solutions Manual The material in this Solutions Manual represents my best efforts at solving all the problems in Separation Process Engineering, Third Edition. Note that the answers for graphical solutions can vary depending upon the accuracy of the draftsperson; however, the methods shown here should be correct. Although every effort has been made to ensure that solutions are correct, there will be errors. Please inform the author of errors (wankat@purdue.edu). The assistance of Mrs. Karen Heide in preparing this Solutions Manual is gratefully acknowledged. This Solutions Manual is provided as a service to professors who adopt the book Separation Process Engineering, Third Edition, in their courses. It is copyrighted and is not to be distributed or sold. No parts of this manual should be placed on the Internet without explicit written consent from the author. Learning requires practice and feedback, not mere copying. Unfortunately, there are students and other people who do not realize that students do not learn if they copy solutions from a solutions manual. Some of these people are willing to put illegal copies of solution manuals on the Internet either for profit or for free. These illegal copies reduce student learning and make it more difficult for professors to teach courses. To aid everyone involved in teaching and learning separation processes, please help protect the integrity of the Solutions Manual. —Phillip C. Wankat 2 TABLE OF CONTENTS SAMPLE: Course Syllabus in Separation Process Engineering p. 4 EXAMPLE Schedule A: Equilibrium Staged Plus Membranes with Computer Labs p. 10 EXAMPLE Schedule B: Classical Equilibrium Staged Course with Computer Lab p. 12 EXAMPLE Schedule C: Vapor-Liquid Separations Course with Computer Lab p.13 EXAMPLE Schedule D: Equilibrium Staged Separations Plus Adsorption, Ion Exchange & Chromatography with Computer Lab* p. 14 *Assumes students know Fickian Diffusion & Mass Transfer EXAMPLE Schedule E: Classical Equilibrium Stage Course Without Computer Lab p. 15 EXAMPLE Schedule F: Mass Transfer & Diffusion Plus Mass Transfer Analysis of Distillation, Absorption, Membrane & Sorption Separations* p.16 *Assumes students have had an Equilibrium-Staged Separations Course SOLUTIONS TO PROBLEMS: Chapter 1 Chapter 2 Chapter 3 Chapter 4 Chapter 5 Chapter 6 Chapter 7 Chapter 8 Chapter 9 Chapter 10 Chapter 11 Chapter 12 Chapter 13 Chapter 14 Chapter 15 Chapter 16 Chapter 17 Chapter 18 p. 17 p. 18 p. 56 p. 70 p. 125 p. 145 p. 155 p. 173 p. 218 p. 253 p. 277 p. 287 p. 319 p. 363 p. 386 p. 395 p. 418 p. 445 3 SAMPLE COURSE SYLLABUS CHE 306 DESIGN SEPARATION PROCESSES COURSE SYLLABUS INSTRUCTOR: Professor Phillip C. Wankat E-mail: wankat@purdue.edu (I usually answer quickly between 8 am and 5:30 pm. Use e-mail to communicate with Prof. Wankat for help.) Office Hours: MWF 10:30-11:50 A.M. These times are reserved for 306 students. On Wednesdays I will be in the computer lab from 1:30 to 3:20 P.M. Other times by appointment only. (You are unlikely to find me if you drop in at a time other than office hours without an appointment.) TA's – Office hours will be M 2:30 to 3:30, T 1:00 to 3:00 and W 1:00 to 2:30 (starting second week of semester). Prerequisites: Must have passed Mass & Energy Balances and Thermodynamics TEXTBOOK: P.C. Wankat, Separation Process Engineering, Third Edition (formerly published as of Equilibrium Staged Separation Processes), Prentice Hall, 2011. Goals: By the end of CHE 306 you should be able to: 1. Design flash distillation by hand and computer calculations; 2. Design distillation systems by hand and computer calculations; 3. Design absorbers and strippers by hand and computer calculations; 4. Design extraction systems by hand and computer calculations; 5. Design membrane separation systems. Importance: Separations constitute 50 to 90% of the cost (capital and operating) of chemical plants. Distillation is the most important separation method in the chemical and petroleum industries. Separations are one of the key items which delineate chemical engineering from the other engineering disciplines. Course Structure: The basic course outline is: 1. Introductory Material 2. Flash Distillation 3. Binary Distillation 4. Multicomponent Distillation 5. Complex Distillation 6. Batch Distillation 7. Distillation Design 8. Absorption, Stripping, & Extraction 9. Extraction 10. Membrane separations (1 week) (1 week) (2 weeks) (2 weeks) (2 weeks) (1 week) (1 week) (2 weeks) (1 week) (2 weeks) The detailed course outline is attached. The typical weekly schedule will be: 4 Monday, Wednesday and Friday: 2 Lectures plus optional help. Wednesday/Thursday: Computer Lab when scheduled Since the schedule will sometimes deviate from this pattern, follow your detailed course outline. Suggested Study Procedure: Read book before class. Come to class prepared. There will be short quizzes to encourage preparation. New material will be presented in class as needed. Material in the book that is a review or is easy to understand will not be lectured on. Ask questions if the book is not clear. After class, reread the book. Make extensive notes on or in the book. Before each exam summarize your notes on one page, and then reduce to 3x5 card (double-sided) you can take into the exam. The suggested way to do homework: First, work on all problems by yourself. Then, meet with your study group to check answers and to complete solution of more difficult problems. Ask for help once these other efforts have failed. Finally, prepare your own solution to hand in if the homework will be graded. It is important to solve a lot of problems including homework that is not handed in. You should spend 9 to 12 hours (including class & lab time) on this course every week. If you are spending less, work more problems both individually and in your study group. Quizzes: To encourage students to prepare for and attend class, there will be a series of 10 short quizzes, which are 9% of the course grade. The lowest grade will not count, which is equivalent to one free absence. After that an absence will be a zero. Students who turn in a quiz with their name on it and who stay the entire period and pay attention will automatically earn 50%. There will be no quiz make-ups and no taking quizzes late (Part of the 50% for attendance is being on time—if you want this credit make attendance a high priority. In other words, an interview at Purdue is NOT a valid excuse for missing a quiz.) Missing 2 quizzes for plant trips will cost 1% of the course grade—a small penalty. Writing another student’s name on a quiz and turning it in for a grade will be treated as a form of cheating. Graded quizzes will be passed out in labs or will be available from the TA. Homework: There will be 8 homework assignments which are handed in. Students who solve all of the problems are very likely to see their efforts rewarded by higher test scores. The homework that is handed in will be 6% of the course grade. The professor and TAs will grade one problem selected by the professor and one problem selected by the student—write the problem you want graded on the top of the assignment. Graded homework assignments will be passed out in labs or will be available from the TA. Work in groups on homework is encouraged. Turn in your own solution (not Xerox copy), but please list names of group members on it. Exams: Arrange your schedule to be available for the night exams on Sept. 30 and Nov. 4. The third exam, which is not a cumulative final exam, will be 5 during finals. Exams (including the lab test) are 70% of the course grade. Your lowest exam will be 10% and the other three exams will count as 20% each. Exams (except the lab test) are closed book, but students will be allowed and encouraged to have one 3 x 5 card (double-sided) with information on it. All electronic devices (other than a calculator) must be turned off and be buried in your back pack. Use of these devices will be considered to be cheating. Graded exams will be passed out in labs or will be available from the TA. DO NOT MAKE TRAVEL PLANS UNTIL YOU KNOW THE FINALS SCHEDULE Make-Up Exam: Students are strongly urged to make attendance at exams a very high personal priority and make appropriate arrangements to be present at all exams. If an exam is missed students may choose to make it their lowest exam grade and receive a zero for 10% of their course grade. Alternatively, a single comprehensive make-up exam (available only for students who miss a test) will be administered during finals period (after Exam 3). This will be the only make-up exam available. In cases of extreme duress (e.g., hospitalization) talk to Prof. Wankat for other arrangements. Computer Lab: Computer labs are scheduled for Wednesdays and Thursdays. If you want to switch lab sections see the lab coordinator during the first week of classes to see if this is possible. Work in lab will initially be done individually and later in the semester in assigned 3- or 4-person groups. Feel free to help other students and to ask for help during lab. Laboratory will use the ASPEN Plus simulation package. Most of the lab assignments are in your textbook; thus, you will need to bring your textbook to lab. The laboratory (not including the lab test) will be 15% of the course grade. Attendance & attention in computer lab is required, and will be 6% of the course grade. There will be a limited opportunity to do lab in advance or make-up a missed laboratory, but without help from the TA (arrange with your TA to show you have done the lab work). Because seating is limited, students must attend their scheduled laboratory period unless arrangements are made in advance to attend a lab session that has open seats. Group lab reports are required for two labs. Lab groups are expected to help each other for the two labs that require lab reports. Only questions from the entire group will be answered by the TA or professor for laboratory help. Lab reports will be limited to two pages of text plus one page of figures and tables. The two lab reports and the mastery lab quiz each count 3.0% of the course grade. There will be a lab test worth 20% of course on November 12th and 13th during your regularly scheduled lab hours. Work will be done individually. The lab test will be open book and open notes. The use of e6 mail, the Internet, or old computer files will not be allowed during the lab test. Plan on being present. Summary of Grading: Quizzes 9% (1/2 attendance & attention) Graded Homework 6% Exam 1 to 3 plus lab test 70% (lowest grade is 10% others are 20% each). Lab Grade (attendance, lab reports & lab quiz) 15% (6% attendance) Extra Credit 0% Grading Scale: The class will vote if they want to use the traditional A, B, C, D scale or switch to the +/- scale. The entire class must be graded on the same scale. Guaranteed Grade Scale for A, B, C, D scale: 90-100 A 80-90 B 70-80 C 60-70 D Guaranteed Grade Scale for +/- scale: Grade A+,A A) B+ B B) C+ C C) D+ D D) F GPA(Value Recommended(Range 4.0 93)100 3.7 90.0,),92.9 3.3 87.0,),89.9 3.0 83.0,),86.9 2.7 80.0,),82.9 2.3 77.0,),79.9 2.0 73.0,–,76.9 1.7 70.0,–,72.9 1.3 67.0,–,69.9 1.0 63.0,–,66.9 0.7,–,becomes, 60.0,–,62.9 lowest,passing, grade, 0.0 <,60.0 , , For both scales slightly lower cut off scores may be used at the discretion of the instructor. Lectures: According to University regulations, it is the responsibility of students to attend all class sessions and to make up any material that is missed. To aid 7 students, one of the TAs will take notes of every lecture. These notes will be placed in reserve in the Potter Library. Note: There is abundant evidence that students who regularly attend lectures tend to earn higher grades. Optional Help The Professor or a TA will hold a help session during the regularly scheduled class (9:30 to 10:20 a.m.) one day most weeks on Monday, Wednesday or Friday (see detailed course outline). The Wednesday class on the day of the two night exams will be an optional help session. Additional help sessions can be arranged before tests if students request them. In addition the professor and the TAs will have office hours that you are strongly encouraged to use. Since office hours are traditionally not heavily used early in the semester, this is a good time to get into the habit of attending office hours. Also, feel free to discuss questions with your laboratory instructor during laboratory. Feedback to Prof. Wankat With a very large class it is essentially impossible for a professor to know each student and to be aware of the difficulties they are having in learning the course material. To provide feedback to Prof. Wankat a group of student representatives will be constituted with one representative from each laboratory section. This group will meet with Prof. Wankat once per week to provide anonymous feedback from all the students in the course. Professional Behavior: Students in CHE 306 are continuing on a program of study to become chemical engineers. Engineers are expected to uphold the code of ethics, which includes “Being Honest,” “Engineers shall build their professional reputations on the merits of their services,” and “Engineers shall act in such a manner as to uphold and enhance the honor, integrity, and dignity of the engineering profession.” Students in CHE 306 will be expected to behave in an ethical and professional manner. This includes: 1. Honesty on quizzes, exams, and lab test. Cell phones, pagers, personal computers, MP3 players, personal digital assistants (e.g., Palm Pilots), & similar electronic devices must be off and not in sight—no phone calls, text messaging or use of storage available in the electronic device. Alphanumerical data or programs are not allowed in calculators. The use of head phones is not allowed. Note: Since you will be allowed the use of a 3x5 card, there is no reason to try and beat the system. 2. No plagiarism or copying. 3. Claim credit for homework/laboratory only if you were involved in the solution. [Do NOT turn in a copy that you do not understand.] This is common sense—not cheating. Students who copy homework (strictly speaking this is legal, but stupid) will do poorly on 8 exams and receive low grades because of this. 4. No disruption of class. Because cell phones are disruptive, please turn cell phones off before lectures or lab. In addition, since many students report that when students talk to neighbors during lecture it is disruptive, please do not do it. 5. Make a concerted, diligent effort to learn. 9 EXAMPLE Schedule A: Equilibrium Staged Plus Membranes with Computer Labs Skip Chapter 11, 15, 16 and 18 Note: Classes are loaded towards beginning of the semester. ChE 306, Fall 2009 Reading 1 2 3 8/24 M 8/26 W 26&27 W/Th 4 5 6 8/28 8/31 9/05 7 8 2&3 9/4 9/7 9 10 11 12 13 14 15 9/9 W 9&10 W/Th 9/11 F 9/14 M 9/16 W 16&17 W/Th 9/18 F 16 17 18 19 20 21 22 23 24 25 26 Introduction & Overview Separations Chapt. 1 Phase equil./Flash Dist./Aspen Plus Chapt. 2 Lab 1 Intro Aspen Plus/Flash Dist. Appendix C2 Bring textbook to all labs except lab test. F Quiz 1 (Phase Equilibrium/Flash). Lecture: Flash Dist. Chapt. 2 M Binary & MultiComponent Flash distillation Chapt. 2 W Quiz 2 (Binary Flash, Closed book, can have 3x5 card). Start distillation. Chapt. 3 W/Th Lab 2 (FRNY 1022) Flash Dist. Appendix Chapt 2, Lab 2 F Distillation McCabe-Thiele Chapt. 4 M Labor Day – No class and no office hours HW 1 due. Lecture: McCabe-Thiele Chapt. 4 Lab 3. Distillation. Appendix Chapter 4, Lab 3. Quiz 3 (McCabe-Thiele – open book). McCabe-Thiele C4 McCabe-Thiele Chapt. 4 McCabe-Thiele & column design Chapt. 10 Lab 4. Distillation design. App. C6, do lab 4, and, if time, start lab 5. HW 2 due. Quiz 4 (McCabe-Thiele, 3x5 card) M.C. distillation profiles/calculations Chapt. 5 9/21 M Optional Help 9/23 W M.C. Distillation – Short-cut Chapt. 7 23&24 W/Th Mastery lab quiz – counts same as lab report. Finish lab 5 App C6. 9/25 F Quiz 5 (M.C. Distillation, 3x5 card). M.C. Distillation – Matrix Solutions Chapt. 6 9/28 M HW 3 due. Finish M.C. Dist. Review homework Chapt. 6 9/30 W Optional Class – Help Session 9/30 W Night Exam, Lilly 1105, Scheduled for 6:30 to 7:30. (a 3x5 card with information is allowed; otherwise, closed book and closed notes) 9/30 &10/01 W/Th No Lab 10/02 F Review Exam. Start complex distillation Chapt. 8 10/05 M Complex distillation Chapt. 8 10/07 W Quiz 6 (Complex distillation, open book) Complex distillation Chapt. 8 7&8 W/Th Lab 6 Complex distillation, App. C8, lab 7 or lab 8 NOTE: Some years I do lab 6 in App. C8 or assign as a group HW. 10/9 F No class & no office hours 10/12 M October Break – No class and no office hours 10/14 W Optional Help on HW 4 (Run by TAs) Oct 14/15 W/Th Lab 7 Extractive distillation, in lab groups (Report Due 10/22 or 10/23 in lab) App. C8, lab 9, pp. 273-275 NOTE: In 2009 lab 10, App. C10 did not yet exist. I would add this lab. 10/16 F HW 4 due. Absorption & stripping Chapt. 12 10 27 28 29 10/19 M 10/21 W 21&22 W/Th Absorption & Stripping Chapt. 12 Quiz 7. Absorp. & Stripping, Start Extraction Chapts. 12 &13 Lab 8 Absorption & Stripping (Report Due 10/29 or 10/30 in lab) App. C12, lab 11, pp. 421-423 30 10/23 F HW 5 due. Start extraction Chapt. 13 10/26 M Optional help 31 10/28 W Extraction Chapt. 13 32 28&29 W/Th Lab 9 Extraction, App. C14, lab 12, pp. 499-500 33 10/30 F Quiz 8 (Extraction, 3x5 card). Extension McCabe-Thiele Chapt. 14 34 11/02 M HW 6 due. Review HW. Finish McCabe-Thiele Chapt. 14 11/04 W Optional Help 35 11/04 W Night Exam 2, Lilly 1105, Scheduled for 6:30 to 7:30. (a 3x5 card with information is allowed; otherwise, closed book and closed notes) 11/04 & 11/05 W/Th No Lab 36 11/06 F Review exam. 11/09 M No class – AIChE National 11/11 W No class – AIChE National NOTE: Purdue’s semester has 44 class periods plus the exam in Finals. The no class and optional help periods are included to comply with university regulations. 11/12 W/Th No lab 37 11/13 F Optional help with TAs 38 11/16 M Batch distillation Chapt 9 39 11/18 W Batch distillation Chapt. 9 40* Nov 18&19 W/Th Lab Exam* (FRNY 1022) 11/20 F Batch Distillation Quiz 9 (batch dist, open book) Chapt.9 11/23 M No class Thanksgiving Vacation 41 11/30 M HW 7 due. Start Membrane Separations Chapt. 17 42 12/02 W Membrane separations. Quiz 10 (Membranes, open book). Chapt. 17 Dec 2&3 W/Th No Lab 43 12/04 F Membrane separations. Chapt. 17 12/07 M Optional help 12/9 W Optional help Dec 9&10 W/Th No lab 44 12/11 F HW 8 due. Membranes– Solution to HW 8. Review for exam Saturday 12/19 EE 129 EXAM 3. Not cumulative, covers batch distillation & membrane separations. A 3x5 card with information is allowed; otherwise, closed book/closed notes. MAKE TRAVEL PLANS AFTER THE FINALS SCHEDULE IS AVAILABLE! FINALS * TBA – Makeup Exam for exam 1, 2, or 3 (Cumulative) Do NOT schedule any conflicts with lab test on Nov 18 and 19. Readings are in Separation Process Engineering. In#the#event#of#a#major#campus#emergency,#course#requirements,#deadlines#and#grading# percentages#are#subject#to#changes#that#may#be#necessitated#by#a#revised#semester#calendar# or#other#circumstances.##Go#to#Blackboard#to#get#information#about#changes#in#this#course. 11 EXAMPLE Schedule B: Classical Equilibrium Staged Course with Computer Lab Class 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 16 17 18 19 20 21 22 23 24 25 26 27 28 29 30 31 32 33 34 35 36 37 38 39 40 41 42 43 44 FINALS Skip Chapters 15, 16, 17, 18 Subject Reading: Introduction. Phase Equilibrium Chapt. 1 Phase Equilibrium, Start Flash Chapt. 2 Flash – Binary & Multicomponent Chapt. 2 Flash – Binary & Multicomponent Chapt. 2 Lab 1 Intro to Aspen Plus. Lab 1, App. C2 Flash – MultiComponent and Aspen Plus Chapt. 2 Binary Distillation Chapt. 3 Lab 2 – Flash Distillation. Lab 2, App C2 McCabe-Thiele Chapt. 4 McCabe-Thiele Chapt. 4 Lab 3– Binary Distillation. Lab 3, App C4 McCabe-Thiele Profiles & Intro. M. C. Distillation Chapt. 5 Lab 4 – M. C. Distillation. Lab 4, App C6 EXAM #1. Review Test & M. C. Dist. Mass Balances Chapt. 5 Lab 5 - M.C. Distillation. Lab 5, App C6 M. C. Distillation Chapt. 6 Short Cut Distillation Chapt. 7 Lab 6 – Complex Distillation, Lab 7, App C8 Complex Distillation Chapt. 8 Complex Distillation Chapt. 8 Lab 7 -Complex Distillation, Lab 8, App C8 Complex Distillation Chapt. 8 Complex Distillation Chapt. 8 Lab 8. Extractive Distillation, Lab 9, App C8 Staged Col. Design. Chapt. 10 Packed Cols, Distl. Costs. Energy Conservation Chapts. 10 & 11 Lab 9. Tray Rating, Lab 10, App C10 Exam review EXAM #2 Review Exam Absorption & Stripping Chapt. 12 Absorption & Stripping Chapt. 12 Lab 10 – Absorption/Stripping; Lab 11, App C12 Immiscible Extraction Chapt. 13 Miscible Extraction Chapt. 13 Lab 11 – Extraction; Lab 12, App C13 Miscible Extraction Chapt. 13 Extension McCabe-Thiele Chapt. 14 Lab Test Batch Distillation Chapt. 9 Batch Distillation Chapt. 9 Exam Review EXAM #3 12 EXAMPLE Schedule C: Vapor-Liquid Separations Course with Computer Lab Class 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 16 17 18 19 20 21 22 23 24 25 26 27 28 29 30 31 32 33 34 35 36 37 38 39 40 41 42 43 44 FINALS Skip Chapters 13, 14, part 16, 17, 18 Subject Reading: Introduction. Phase Equilibrium Chapt. 1 Phase Equilibrium, Start Flash Chapt. 2 Flash – Binary & Multicomponent Chapt. 2 Flash – Binary & Multicomponent Chapt. 2 Lab 1 Intro to Aspen Plus. Lab 1, App. C2 Flash – MultiComponent and Aspen Plus Chapt. 2 Binary Distillation Chapt. 3 Lab 2 – Flash Distillation. Lab 2, App C2 McCabe-Thiele Chapt. 4 McCabe-Thiele Chapt. 4 Lab 3– Binary Distillation. Lab 3, App C4 McCabe-Thiele Profiles & Intro. M. C. Distillation Chapt. 5 Lab 4 – M. C. Distillation. Lab 4, App C6 EXAM #1. Review Test & M. C. Dist. Mass Balances Chapt. 5 Lab 5 - M.C. Distillation. Lab 5, App C6 M. C. Distillation Chapt. 6 Short Cut Distillation Chapt. 7 Lab 6 – Complex Distillation, Lab 7, App C8 Complex Distillation Chapt. 8 Complex Distillation Chapt. 8 Lab 7 -Complex Distillation, Lab 8, App C8 Complex Distillation Chapt. 8 Complex Distillation Chapt. 8 Lab 8. Extractive Distillation, Lab 9, App C8 Staged Col. Design. Chapt. 10 Packed Cols, Distl. Costs. Energy Conservation Chapts. 10 & 11 Lab 9. Tray Rating, Lab 10, App C10 Exam review EXAM #2 Review Exam Absorption & Stripping Chapt. 12 Absorption & Stripping Chapt. 12 Lab 10 – Absorption/Stripping; Lab 11, App C12 Mass Transfer Review Fickian Diffusion & Mass Transfer Coef. C. 15 Maxwell-Stefan Diffusion & Mass Transfer Chapter 15 Lab 11 – Lab Test Maxwell-Stefan Diffusion & Mass Transfer Chapter 15 Rate-Based Design of Distillation Chapter 16 Lab 12 – Rate-Based Design of Distillation, Lab 13, App C16 Batch Distillation Chapt. 9 Batch Distillation Chapt. 9 Exam Review EXAM #3 13 EXAMPLE Schedule D: Equilibrium Staged Separations Plus Adsorption, Ion Exchange & Chromatography with Computer Lab* *Assumes students know Fickian Diffusion & Mass Transfer Class 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 16 17 18 19 20 21 22 23 24 25 26 27 28 29 30 31 32 33 34 35 36 37 38 39 40 41 42 43 44 FINALS Skip Chapters 11, 15, 16, 17 Subject Reading: Introduction. Overview separations Chapt. 1 Phase Equil. & Flash Dist. Chapt. 2 Flash Distillation, Aspen Plus Chapt. 2 Lab 1 Aspen Plus & Flash Distillation; Lab 1, App. C2 Flash – Chapt. 2 Flash Chapt 2 Lab 2 – Flash Distillation; Lab 2, App. C2 Intro Binary Distillation Chapt. 3 Binary Distillation & AspenPlus Chapt. 4 Lab 3 – Binary Distillation; Lab 3, App. C4 McCabe-Thiele Chapt. 4 McCabe-Thiele Chapt. 4 McCabe-Thiele & exam review Chapt. 4 EXAM 1 Review Test. MC Profiles Chapt. 5 M. C. Distillation Chapt. 6 Lab 4 – M. C. Distillation; Lab 4, App. C6 M. C. Distillation, Matrix solutions Chapt. 6 MC Distillation, Short-Cut, Chapt. 7 Lab 5 – M. C. distillation; Lab 5, App. C6 Complex Distillation Chapt. 8 Complex Distillation Chapt. 8 Lab 6 – Complex Distillation; Lab 7 or Lab 8, App. C8 Complex Distillation Chapt. 8 Complex Distillation Chapt. 8 Lab 7 – Extractive Distillation; Lab 9, App C8 Staged Column Design Chapt. 10 Packed Column Design & Dist. Costs Chapts. 10 & 11 Lab 8 – Tray Sizing; Lab 10, App C10 Review for Exam Exam 2 Absorption Chapt. 12 Absorption & Stripping Chapt. 12 Lab 8, Absorption/ Stripping; Lab 11, App C12 Immiscible extraction Chapt. 13 Miscible extraction Chapt. 13 Lab 9, Extraction; Lab 12, App. C13 Adsorption, Fundamentals & Equilibrium Chapt. 18 Adsorption – solute movement Chapt. 18 Adsorption & chromatography –solute movement Chapt. 18 Adsorption & chromatography –solute movement Chapt. 18 Ion exchange – equilibrium & solute movement Chapt. 18 Intro to mass transfer effects & zone broadening Chapt. 18 REVIEW for Exam EXAM #3 14 Schedule E. Classical Equilibrium Stage Course Without Computer Lab Skip Labs in Appendices & Skip Chapters 17 & 18. 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 16 17 18 19 20 21 22 23 24 25 26 27 28 29 30 31 32 33 34 35 36 37 38 39 40 41 42 43 44 FINALS Introduction. Phase Equilibrium Phase Equilibrium, Start Flash Flash – Binary & Multicomponent Flash Multicomponent Flash Multicomponent Flash – Drum Design Intro. To Binary Distillation McCabe-Thiele McCabe-Thiele McCabe-Thiele McCabe-Thiele Profiles & Intro. M. C. Distillation Stage-by-Stage MC Calculation Stage-by-Stage MC Calculation Exam Review EXAM #1. Review Test & M. C. Dist. Mass Balances M. C. Distillation MC Distillation Short Cut Distillation Complex Distillation Complex Distillation Complex Distillation Complex Distillation Staged Col Design Staged Col. Design. Packed Cols, Distl. Costs. Energy Conservation Column Sequencing Exam review EXAM #2 Review Exam Batch Distillation Batch Distillation Batch Distillation Absorption & Stripping Absorption & Stripping Absorption & Stripping Immiscible Extraction Immiscible & Partially Miscible Extraction Partially Miscible Extraction Partially Miscible Extraction Washing & Leaching Exam Review EXAM #3 Chapt. 1 Chapt. 2 Chapt. 2 Chapt. 2 Chapt. 2 Chapt. 3 Chapt. 4 Chapt. 4 Chapt. 4 Chapt. 5 Chapt. 5 Chapt. 5 Chapt. 6 Chapt. 6 Chapt. 6 Chapt. 7 Chapt. 8 Chapt. 8 Chapt. 8 Chapt. 8 Chapt. 10 Chapt. 10 Chapt. 10 Chapt. 11 Chapt. 11 Chapt. 9 Chapt. 9 Chapt. 9 Chapt. 12 Chapt. 12 Chapt. 12 Chapt. 13 Chapt. 13 Chapt. 13 Chapt. 13 Chapt. 14 15 Schedule F. Mass Transfer & Diffusion Plus Mass Transfer Analysis of Distillation, Absorption, Membrane & Sorption Separations* 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 16 17 18 19 20 21 22 23 24 25 26 27 28 29 30 31 32 33 34 35 36 37 38 39 40 41 42 43 44 FINALS *Assumes students have had an Equilibrium-Staged Separations Course Skip: Chapters 1, 2 (except equilibrium), Chapters 3-14 Introduction. Molecular Basis of Diffusion Section 15.1 Binary Fickian Diffusion Section 15.2 Binary Steady State Diffusion without convection Section 15.2 Binary Steady State Diffusion with convection Section 15.2 Binary Steady State Diffusion with convection Section 15.2 Binary Fickian Gas Diffusivities Section 15.3 Binary Fickian Liquid Diffusivities Section 15.3 Linear Driving Force Model Section 15.4 Mass Transfer Coefficient Correlations Section 15.5 Mass Transfer Coefficient Correlations Section 15.5 Distillation HTU-NTU calculations Section 16.1 Distillation HTU & HETP Sections 16.1 & 16.2 Packed Tower Correlations & Start Absorbers Sections 16.3 & 16.4 Absorbers & Strippers Sections 16.4 & 16.5 Review for Exam EXAM 1 Go over exam; Binary Distillation Tray Efficiency Section 16.6 Limitations Fickian Diffusion & Murphree Efficiencies Start Maxwell-Stefan Analysis Sections 15.6 & 15.7 Maxwell-Stefan Analysis Section 15.7 Maxwell-Stefan Analysis Section 15.7 Maxwell-Stefan Analysis Section 15.7 Maxwell-Stefan Analysis Section 15.7 Rate-Based Analysis of Distillation Section 16.8 Review of Tray Design Chapt 10 & Lab 10 Aspen Plus Rate-Based Assignment Lab 13, App C16 Start Membrane Separations Sections 17.1 &17.2 Gas Permeation Section 17.3 Gas Permeation Section 17.3 Review for Exam Exam 2 Go over exam; Flow patterns in gas permeation Section 17.7 Reverse Osmosis Section 17.4 Reverse Osmosis Section 17.4 Ultrafiltration Section 17.5 Start Adsorption Section 18.1 Linear Solute Movement Analysis Section 18.2 Linear Solute Movement Analysis Sections 18.2 & 18.3 Linear & Nonlinear Solute Movement Analysis Sections 18.3 & 18.4 Nonlinear Analysis Section 18.4 Ion Exchange Section 18.5 Mass & Energy Transfer Section 18.6 Solutions for Linear Systems Section 18.7 LUB Analysis Section 18.8 Review for Exam Exam 3 16 SPE 3rd Edition Solutions Manual Chapter 1 New Problems and new solutions are listed as new immediately after the solution number. These new problems in chapter 1 are: 1A3, 1A4, 1B2-1B4, 1D1. A2. Answers are in the text. A3. New problem for 3rd edition. Answer is d. B1. Everything except some food products has undergone some separation operations. Even the water in bottles has been purified (either by reverse osmosis or by distillation). B2. New problem for 3rd edition. Many homes have a water softener (ion exchange), or a filter, or a carbon water “filter” (actually adsorption), or a reverse osmosis system. B3. New problem for 3rd edition. For example: the lungs are a gas permeation system, the intestines and kidney are liquid permeation or dialysis systems. B4. New problem for 3rd edition. You probably used some of the following: chromatography, crystallization, distillation, extraction, filtration and ultrafiltration. D1. New problem for 3rd edition. Basis 1kmol feed. .4 kmole E = (.4 )(MW = 46 ) = 18.4 kg .6 kmol Water = .6 (MW = 18 ) = 10.8 kg total = 29.2 kg Weight fraction ethanol = 18.4/29.2 = 0.630 Flow rate = (1500 kmol/hr)[(29.2kg)/(1 kmol)] = 43,800 kg/hr. 17 SPE 3rd Edition Solution Manual Chapter 2. New Problems and new solutions are listed as new immediately after the solution number. These new problems are: 2A6, 2A9 to 2A16, 2C4, 2C8, 2C9, 2D1.g, 2.D4, 2D10, 2D13, 2D24 to 2D30, 2E1, 2F4, 2G4 to 2G6, 2H1 to 2H3. 2.A1. Feed to flash drum is a liquid at high pressure. At this pressure its enthalpy can be calculated as a liquid. eg. h TF,Phigh c p LIQ TF Tref . When pressure is dropped the mixture is above its bubble point and is a two-phase mixture (It “flashes”). In the flash mixture enthalpy is unchanged but temperature changes. Feed location cannot be found from T F and z on the graph because equilibrium data is at a lower pressure on the graph used for this calculation. 2.A2. Yes. 2.A4. 1.0 Equilibrium (pure water) yw zw = 0.965 Flash operating line .5 2.A4 0 0 .5 xw 1.0 2.A6. New Problem. In a flash drum separating a multicomponent mixture, raising the pressure will: i. Decrease the drum diameter and decrease the relative volatilities. Answer is i. 2.A8. a. K increases as T increases b. K decreases as P increases c. K stays same as mole fraction changes (T, p constant) -Assumption is no concentration effect in DePriester charts d. K decreases as molecular weight increases 2.A9. New Problem. The answer is 0.22 2.A10. New Problem. The answer is b. 2.A11. New Problem. The answer is c. 18 2.A12. New Problem. The answer is b. 2.A13. New Problem. The answer is c. 2.A14. New Problem. The answer is a. 2.A15. New Problem. a. b. The answer is The answer is 36ºC 3.5 to 3.6 2.A16. New Problem. The liquid is superheated when the pressure drops, and the energy comes from the amount of superheat. 2.B1. Must be sure you don’t violate Gibbs phase rule for intensive variables in equilibrium. Examples: F, z, Tdrum , Pdrum F, h F , z, p F, TF , z, p F, z, y, Pdrum F, TF , z, y F, h F , z, y F, z, x, p drum F, TF , z, x etc. F, z, y, p drum F, TF , z, Tdrum , p drum F, z, x, Tdrum F, TF , y, p Drum dimensions, z, Fdrum , p drum F, TF , y, Tdrum Drum dimensions, z, y, p drum F, TF , x, p etc. F, TF , x, Tdrum F, TF , y, x 2.B2. This is essentially the same problem (disguised) as problem 2-D1c and e but with an existing (larger) drum and a higher flow rate. With y = 0.58, x = 0.20, and V/F = 0.25 which corresponds to 2-D1c. lb mole If F 1000 , D .98 and L 2.95 ft from Problem 2-D1e . hr Since D α V and for constant V/F, V α F, we have D α F . With F = 25,000: Fnew Fold = 5, Dnew = 5 Dold = 4.90, and Lnew = 3 Dnew = 14.7 . Existing drum is too small. 2 2 Fexisting D exist 4 2 Feed rate drum can handle: F α D . gives 1000 .98 .98 Fexisting 16,660 lbmol/h Alternatives a) Do drums in parallel. Add a second drum which can handle remaining 8340 lbmol/h. b) Bypass with liquid mixing 19 y = .58, V = .25 (16660) = 4150 16,660 25,000 LTotal x 8340 Since x is not specified, use bypass. This produces less vapor. c) Look at Eq. (2-62), which becomes V MWv D 3K drum 3600 L v v Bypass reduces V c1) Kdrum is already 0.35. Perhaps small improvements can be made with a better demister → Talk to the manufacturers. c2) ρv can be increased by increasing pressure. Thus operate at higher pressure. Note this will change the equilibrium data and raise temperature. Thus a complete new calculation needs to be done. d) Try bypass with vapor mixing. e) Other alternatives are possible. 2.C2. 2.C5. a. Start with V zA zB F KB 1 KA 1 xi Fz i L VK i Fz i xi Then y i From Kixi yi and let V L L F xi F L Ki F L or x i zi L F 1 L Ki F K i zi L 1 Ki F 0 we obtain K i 1 zi L F L 1 Ki F 0 20 zi 2.C7. 1 V/F f 0 0 .1 -.09 1 f Ki 1 V F .2 -.1 .3 -.09 V F From data in Example 2-2 obtain: .4 .5 -.06 -.007 .6 .07 .7 .16 .8 .3 .9 .49 1.0 .77 2.C8. New Problem. p drum F=L+V Tdrum Fz y x Lx Vy Solve for L & V Or use lever arm-rule z 21 2.C9. New Problem. Derivation of Eqs. (2-62) and (2-63). Overall and component mass balances are, F V L1 Fzi L2 L1x i,L1 L2 x i,L2 Vyi Substituting in equilibrium Eqs. (2-60b) and 2-60c) Fz i L1K i,L1 L2 x i,L2 L 2 x i,L2 VK iV L2 x i,L2 Solving, x i,L 2 Fz i L1K i,L 2 Fz i L2 VK i,V L1K i,L1 L2 F V L1 L2 VK i,V L2 Dividing numerator and denominator by F and collecting terms. zi L 1 1 F x i,liq 2 1 Since yi K i,V L2 L2 C Stoichiometric equations, i 1 K i,L1 x i,L 2 i 1 K i,L1 L2 L2 1 K i,L1 L2 C 1, i 1 K i,V C which becomes K i,V K i,V L 2 zi L 1 1 Ki,V F x i,L2 , y i 1 Since x i,liq1 K i,L1 L2 yi 2.D1. a. V x i,liq1 0.4 100 Slope op. line See graph. y b. V 40 and L K i,V 1 F V 600 and L 1 V F C L2 C yi i 1 x i,L 2 K i,L1 L2 L 1 1 F 0 0 V 1 F (2-62) K i,L1 L 2 z i L K i,L1 L 2 1 1 K i,V F K i,L1 L 2 1 z i C i 1 L2 1 zi L 1 1 F K i,V L2 L2 1 V 1 F V F (2-63) 60 kmol/h L V 3 2, y x 0.77 and x 0.48 0.4 1500 c. Plot x 0 V F i 1 x i,liq 2 , we have x i,liq1 x i,liq 2 1 1 , thus, 1 In addition, L2 z 0.6 900 . Rest same as part a. 0.2 on equil. Diagram and y V F z 1.2 0.25 . From equil y d. Plot x 0.45 on equilibrium curve. x z 0.3. yint ercept zF V 1.2 0.58 . 22 L Slope Plot operating line, y e. Find Liquid Density. MW L Then, VL xm V z at z x x m MWm MWm F V xw MWw .2 w L v RT .2 32.04 32.04 .7914 MW L VL P MW v .8 4 V V F .2 0.51 . From mass balance F 37.5 kmol/h. x w MWw m Find Vapor Density. 1 V F .8 .8 18.01 18.01 1.00 1 atm 26.15 g/mol 22.51 ml/mol 20.82 22.51 0.925 g/ml (Need temperature of the drum) MW v y m MW m y w MW w .58 32.04 .42 18.01 Find Temperature of the Drum T: From Table 3-3 find T corresponding to y .58, x 20, T=81.7 C 354.7K v 20.82 82.0575 ml atm mol K 354.7 K 26.15 g/mol 8.98 10 4 g/ml Find Permissible velocity: 23 u perm K drum L K drum v exp A v B nFlv V Since V Wv L F V 1000 250 15615 WV L 6537.5 V MW v A cs u perm 3600 Thus, D MW L nFlv lb E nFlv 20.82 15, 615 lb/h, 4 0.0744, and n Flv v 14.19 3600 8.98 10 4A cs 2.598 4 4 14.19 ft/s 250 26.15 454 g/lb 4 2-60 4 6537.5 lb / h lbmol .925 8.98 10 3 250 lbmol/h, 750 8.89 10 .925 8.98 10 .442 D 250 26.15 L V 2 0.25 1000 V MW v WL .442, and u perm nFlv F F 750 lbmol/h, and WL Flv Then K drum C g/ml 28316.85 ml/ft 3 2.28 ft 2 . 1.705 ft. Use 2 ft diameter. L ranges from 3 D 6 ft to 5 D=10 ft Note that this design is conservative if a demister is used. f. Plot T vs x from Table 3-3. When T 77 C, x 0.34, y 0.69. This problem is now very similar to 3-D1c. Can calculate V/F from mass balance, Fz Lx Vy. This is V z y 0.4 0.34 Fz F V x Vy or 0.17 F y x 0.69 0.34 g. Part g is a new problem. V = 16.18 mol/h, L = 33.82, y= 0.892, x = 0.756. 2-D2. Work backwards. Starting with x 2, find y2 = 0.62 from equilibrium. From equilibrium point V plot op. line of slope This gives L V 2 1 V F 2 3 7. F 2 z2 0.51 x1 (see Figure). Then from equilibrium, y1 For stage 1, 2.D3. 0.4 z1 x1 0.55 0.51 F y1 x1 0.78 0.51 V F 0.6 V L y x z V F V Op. eq. 2 y x 2 3 3 See graph: y 0.55 x M 0.18 a. z V 0.78 . 0.148 . 6.0 k mol h, L 4.0 T ~ 82.8 C linear interpretation on Table 2-7 . 24 b. Product 78.0 C x Mass Bal: Fz or 0.30, y Lx Vy 4.0 0.665, F V x Vy 10 V 0.3 0.665V V 2.985 and V F Can also calculate V/F from slope. c. V F 10, y If y F L V x 0.3 V z 7 V F z 0.8, x Then z 3&L x 0.2985 7 z 0.3 0.545 @ equil 0.3 0.8 7 0.545 0.6215. 3 7 Can also draw line of slope through equil point. 3 25 2.D4. New problem in 3rd edition. Highest temperature is dew point Set zi yi . Ki K ref TNew If pick C4 as reference: First guess yi yi K i 1.0 K ref TOld K bu tan e .2 .35 yi K i 1.0, 41 C : K C3 T yi .2 .35 .45 Ki 8.8 4.0145 .9 4.0145 .6099 yi .2 .35 .45 Ki 6 2.45 .44 K C4,NEW 3.1, K C6 0.125 .45 4.0145 T too low K i 3.1 1.0 .125 Guess for reference K C4 4.014 T 118 C : K C3 8.8, K C4,NEW 0 yi x i xi Want V F 2.45 1.2 .2 .35 .45 Ki 6.9 2.94 .56 .9 0.6099 2.45, T 85 : K C2 6.0, K C6 0.44 1.20 2.94, T yi K C6 0.804 96 C : K C3 6.9, K C6 0.56 Gives 84 C 26 Use 90.5º → Avg last two T yi K i 2.D5. K C4 2.7, K C3 .2 .35 .45 6.5 2.7 .49 6.5, K C6 0.49 1.079 T ~ 87 88º C Note: hexane probably better choice as reference. a) v1 = F2 v2 y1 = z2 z1 = 0.55 y2 1 2 F1 = 1000 V F L y1 V1 V1 V1 z Plot 1st Op line. V 0.45454 & L1 V1 F1 1000 V1 = 687.5 kmol/h = F2 V c) Stage 2 At x F 0, y 0.25 , z V F From graph y 2 V2 V F F2 y1 = 0.66 = z2 y = x = z = 0.55 to x1 = 0.3 on eq. curve (see graph) 0.55 0.80 .25 0.454545 .55 0 .55 L Slope L1 F x1 0.25 2 x2 x1 = 0.30 b) p1,2 = 1 atm L V 687.5 F 1000 1 0.75F 3, y x V 0.25F 0.66 2.64. At y 0, x 2 0.25 0.82, x 2 0.25 687.5 0.6875 0.66. Plot op line z2 F L z z 0.66 L F 0.75 0.88 0.63 . 171.875 kmol/h 2 27 2.D6. V F = 1.0 kmol/min T = 50ºC P = 200 kPa zc4 = 0.45 zc5 = 0.35 Zc6 = 0.20 K i 1 zi 1 0 , First guess V/F = 0.6 Ki 1 V F 1.4 .45 0.2 .35 0.7 .2 1 1.4 .6 1 0.2 0.6 Use Newtonian Convergence 1 0.7 0.6 d V F F i 1 V k 1 Fk 0.0215 2 K i 1 zi c df k V Kc6 = 0.30 L RR eq., f1 Kc4 = 2.4 Kc5 = 0.80 1 Ki 1 V F 2 fk df d V F 28 df1 V d F V F2 f2 1.4 2 0.45 0.2 2 1 1.4 .6 0215 0.6 2 0.35 1 0.2 0.6 0.7 2 2 0.20 1 0.7 0.6 2 0.570 0.6377 0.570 1.4 .45 0.2 .35 0.7 0.2 0.00028 1 1.4 0.6377 1 0.2 0.6377 1 0.7 0.6377 Which is close enough. yi K i x i zi 0.45 x c4 0.2377, V 1 1.4 .6377 yc4 2.4 0.2377 1 Ki 1 F 0.35 x c5 0.4012, y c5 0.8 0.4012 0.3210 1 0.2 0.6377 x c6 2.D7. 0.20 1 0.7 0.6377 xi V zA zB F KB 1 KA 1 KM 5.6 and K P 1.0002 0.3 0.7 F 0.21 1 5.6 1 zM 0.30 0.4012 yi 0.9998 0.3 xP 1 xM 0.1466 V 1 4.6 0.2276 1 KM 1 F 5.6 0.1466 0.8208 0.8534 , y M K M x M yP 1 yM 0.1792 Use Rachford-Rice eqn: f Converge on V F 0.1084 0.2276 K i 1 zi V F 1 Find K i from DePriester Chart: K1 .076, V Ki 1 V / F 73, K 2 F V F 4.1 K 3 152 kmol/h, L 0 . Note that 2 atm = 203 kPa. .115 F V 1848 kmol/h . zi we obtain x1 .0077, x 2 .0809, x 3 .9113 V 1 Ki 1 F From yi K i x i , we obtain y1 .5621, y 2 .3649, y3 .1048 Need hF to plot on diagram. Since pressure is high, feed remains a liquid h F CPL TF Tref , Tref 0 from chart From x i 2.D9. , y8 0.21 V Eq. (2-38) x M 2.D8. 0.3613 0.5705 CPL CPEtOH x EtOH CPw x w 29 Where x EtOH and x w are mole fractions. Convert weight to mole fractions. Basis: 100 kg mixture 30 30 kg EtOH 0.651 kmol 46.07 70 kg water 70 18.016 3.885 Total = 4.536 kmol 100 0.6512 Avg. MW 22.046 Mole fracs: x E 0.1435, x w 0.8565 . 4.536 4.536 Use CPL at 100 C as an average CP value. EtOH C PL Per kg this is 37.96 .1435 18.0 .8565 C PL 20.86 MWavg 22.046 0.946 20.86 kcal kmol C kcal kg C h F 0.946 2000 189.2 kcal/kg which can now be plotted on the enthalpy composition diagram. Obtain Tdrum 88.2 C, x E 0.146, and y E 0.617 . For F 1000 find L and V from F = L + V and Fz Lx Vy which gives V = 326.9, and L = 673.1 Note: If use wt. fracs. CPL 23.99 & CPL MWavg 1.088 and h F 217.6 . All wrong. 30 2.D.10 New Problem. Solution 400 kPa, 70ºC From DePriester chart Know y i Kixi , K C3 zi xi 1 Ki V 1 F 5, , z C4 35 Mole % n-butane K C4 1.9, xi yi K C6 1 x C6 0.7 0.3 zi K i 1 zi 0 z C3 1 z C6 z C 4 .65 z C6 V 1 Ki 1 F zC6 zC6 V For C6 0.7 z C 6 0.7 1 0.7 V V F 1 K C6 1 1 0.7 F F V z C6 0.7 0.49 F 4 .65 z C 6 0.9 .35 0.7z C 6 RR Eq: 0 V V V 1 4 1 0.9 1 0.7 F F F 2 equations & 2 unknowns. Substitute in for z C6 . Do in Spreadsheet. R.R. 2.D11. Use Goal – Seek to find V F. V 0.594 when R.R. equation 0.000881 . F V z C6 0.7 0.49 0.7 (0.49)(0.594) 0.40894 F L F 0.6 V F 0.4 & L V 1.5 Operating line: Slope 1.5, through y x z 0.4 31 2.D12. For problem 2.D1c, plot x = 0.2 on equilibrium diagram with feed composition of 0.3. The resulting operating line has a y intercept z V / F 1.2 . Thus V F 0.25 (see figure in Solution to 2.D1) Vapor mole fraction is y = 0.58. Find Liquid Density. MW L Then, VL x m MWm xm MWm x w MWw xw MWw m w .2 32.04 .2 32.04 .7914 L p MW Find Vapor Density. v RT v .8 .8 18.01 18.01 1.00 MW L VL 20.82 22.51 ml/mol 20.82 22.51 0.925 g/ml (Need temperature of the drum) MW v y m MW m y w MW w .58 32.04 .42 18.01 26.15 g/mol Find Temperature of the Drum T: From Table 2-7 find T corresponding to y .58, x 20, T=81.7 C 354.7K 32 1 atm 26.15 g/mol v 82.0575 ml atm mol K 354.7 K 8.98 10 4 g/ml Find Permissible velocity: u perm K drum K drum,horizontal L v 1.25 K drum,vertical Since V Wv L F V v V F B 0.25 1000 V MW v 1000 250 exp A nFlv 250 26.15 lb lbmol V 15615 WV L 6537.5 A cs A Cs MW L 8.98 10 0.5525 8.98 10 u perm 3600 Or y c AT D 2.D14. xc 1 xc cp Raoult’s Law: K C 4 20.82 15, 615 lb/h, 2.598 4 4 A Cs 0.2 17.74 ft/s 4A T 4 g/ml 28316.85 ml/ft 3 9.12 ft 2 3.41 ft and L 13.6 ft 1.76 .7 1 .76 .7 1 , cp 0.80418 0.5682 pc VPC 4 PTot 4.04615 , VPC 4 11121 mm Hg log 10 VPC 6 3.2658 , VPC 6 1844.36 mm Hg 1.0 1.25 0.5525 log 10 VPC 4 xi 4 0.19582 cp 1 nFlv 0.0744, and n Flv 17.74 3600 8.98 10 v 1.824 ft 2 , 1 yp E 250 26.15 454 g/lbm 2.D13. New Problem. The answer is ycresol = 0.19582 xp Since x c 0.3, x p 0.7, y p 1 1 xp yc 3 4 0.925 8.98 10 V MW v With L/D = 4, nFlv 750 .925 0.442, and K drum ,horiz u perm D 6537.5 lb / h L WL K drum ,vertical 2 nFlv 250 lbmol/h, 750 lbmol/h, and WL Flv C zi 1 Ki 1 V F 1.0 33 0.3 0.7 1 11121 1844.36 1 1 0.4 1 1 0.4 P P Solve for Pdrum = 3260 mmHg zi xi V 1 Ki 1 F .3 11121 x C4 0.1527, y C 4 K C 4 x C 4 0.1527 11121 3260 1 1 .4 3260 1844.36 x C6 1 x C 4 0.84715, y C6 0.84715 0.47928 3260 Check 1.00019 2.D15. This is an unusual way of stating problem. However, if we count specified variables we see that problem is not over or under specified. Usually V/F would be the variable, but here it isn’t. We can still write R-R eqn. Will have three variables: zC2, ziC4, znC4. Need two other eqns: z iC4 z nC4 constant, and z C2 z iC4 z nC4 1.0 Thus, solve three equations and three unknowns simultaneously. Do It. Rachford-Rice equation is, K C2 1 zC2 K iC 4 1 z iC 4 K nC 4 1 z nC 2 0 V V V 1 K C2 1 1 K iC 4 1 1 K nC 4 1 F F F Can solve for zC2 = 1 – ziC4 and ziC4 = (.8) znC4. Thus zC2 = 1 – 1.8 znC4 Substitute for ziC4 and zC2 into R-R eqn. K C2 1 .8 K iC 4 1 K nC 4 1 1.8 z nC4 z nC 4 z nC 4 V V 1 K C2 1 1 K iC 4 1 1 K nC 4 F F K C2 1 V 1 K C2 1 F Thus, z nC 4 K C2 1 .8 K iC 4 1 K nC 4 1.8 V V 1 K C2 1 1 K iC 4 1 1 K nC 4 F F Can now find K values and plug away. KC2 = 2.92, KiC4 = .375, KnC4 = .26. Solution is znC4 = 0.2957, ziC4 = .8 (.2957) = 0.2366, and zC2 = 0.4677 2.D16. 0.52091 1 V 1 F 0 1 1 V F z C1 0.5, z C4 0.1, z C5 0.15, z C6 0.25, K C1 50, K C4 .6, K C5 .17, K C6 1st guess. Can assume all C1 in vapor, ~ 1/3 C4 in vapor, C5 & C6 in bottom V / F 1 .5 .1 / 3 .53 This first guess is not critical. 0.05 34 R.R. eq. f K i 1 zi V F 1 49 .5 1 49 .53 Eq. 3.33 V F .4 .1 .83 .15 .95 .25 1 .4 .53 1 .83 .53 1 .95 .53 f V F V F 2 where V/F calculate V/F x C1 .584 150 1 2 V 1 F 2 .53 0.157 2.92 1 0.157 . 0.584 87.6 kmol/h and L 150 87.6 z C1 1 2 0.53 and f V / F K C1 1 (V / F) y C1 K C1 x C1 50 0.016883 Similar for other components. 2-D17. Ki 0.157 1 zi K i 1 1 1 V 0 Ki 1 V F .5 1 49 .584 62.4 0.016883 0.844 L F 1.5 V 0.4F 400, L 600 Slope Intercepts y = x = z = 0.70. Plot line and find xA = 0.65, yA = 0.77 (see graph) b. V = 2000, L = 3000. Rest identical to part a. c. Lowest xA is horizontal op line (L = 0). xA = 0.12 Highest yA is vertical op line (V = 0). yA = 0.52. See graph a. 35 d. V = 600, L = 400, -L/V = -0.667. Find xA = 0.40 on equilibrium curve. Plot op line & find intersection point with y = x line. zA = 0.52 zh 1 zi V xh 2.D18. From x i , we obtain V F Kh 1 1 Ki 1 F Guess Tdrum , calculate K h , K b and K p , and then determine V F . K1 1 z i Check: Initial guess: If x h Kh Try T K1 1 V F 0 ? .85 then Tdrum must be less than temperature to boil pure hexane 94 C . On this basis 85° to 90° would be reasonable. Try 85°C. 1.0, T K h =0.8, K b 1 4.8, K p =11.7 . 0.6 1 V 0.85 1.471 . Not possible. Must have K h F 0.8 1 73 C where K h 0.6 . Then K b 3.8, K p 9.9 . 0.6 1 .85 .6 1 V F 0.6 0.85 0.706 0.735 Check: K i 1 zi 1 8.9 .1 Ki 1 V F 1 2.8 .3 8.9 .735 1 .4 .6 2.8 .735 1 .4 735 0.05276 Converge on T ~ 65.6 C and V F ~ 0.57 . 2.D19. 90% recovery n-hexane means 0.9 Fz C6 Substitute in L F V to obtain z C6 .9 C 8 balance: z C6 F Lx C6 z C6 or Vy C6 L x C6 1 V F x C6 F V x C6 1 V F x C6 K C6 Vx C6 x C6 K C6 V F Two equations and two unknowns. Remove x C6 and solve z C6 Solve for V F. .9 z C6 KV F .93C 6 V .1 F .9K C6 1 V F .1 . Trial and error scheme. Pick T, Calc K C6 , Calc V F, and Check f V F If not K ref new 0? K ref Told 1 df T 36 Try T 70 C. K C4 V 3.1, K C5 .1 F .9 .37 .1 Rachford Rice equation 2.1 .4 f 1 2.1 .231 1 .37 K ref 0.231 . .08 .25 .63 .35 .08 .231 1 .63 .231 .28719 .37 K ref Tnew Converge on TNew .93, K C6 0.28745 use .28 1 0.28719 ~ 57 C. Then K C4 2.50, K C8 .67, and V F 0.293 . 2.D20. New Problem. The K values are: K E 8.7 , K B 0.54 , K P 0.14 Can use Eq. (2-40), (2-41) or (2-42). If we use (2-42) the R – R eqn f F Then RR eq = 0 K i 1 zi 0 V 1 Ki 1 F 7.7 .2 .46 z B V 1+7.7 25 K C2 a.) zB K C5 0.153 Soln to Binary R.R. eq. 1 0.6078 zA zB F KB 1 KA 1 0.55 0.45 F .153 1 4.8 1 0.5309 zC2 0.55 V 1 3.8 .5309 1 K C2 1 F x C5 0.8177 , y C5 0.1251 Need to convert F to kmol. Avg MW 0.55 30.07 0.45 72.15 F 100, 000 V kmol K drum L 0.1823, yC2 0.8749 49.17 2033.7 kmol/h hr 49.17 kg V F F 1079.7, u Perm b.) kg .8 z B 0.86 .25 V V x C2 zE 0.8764 1.0955z B 0.3499 4.8 1 zB .86 .8 z B .46 .25 0.5265 0.51977 z B 0 .5757z B 2.D21. 1 Use z F L F V 954.0 kmol/h v v To find MW L 0.1823 30.07 0.8177 72.15 64.48 37 MW V 0.8749 30.07 For liquid assume ideal mixture: V1 x C2 VC2,liq 0.1251 72.15 x C5 VC5,liq x C2 MW C2 35.33 x C5 MW C5 C2,liq VL 0.1823 30.07 MW L 64.48 VL 103.797 L 72.15 0.8177 0.54 0.621 g/ml v RT atm g 700 kPa 35.33 101.3 kPa mol v ml atm 82.0575 303.16K mol K WL K drum : Use Eq. (2-60) with FlV WV K drum kmol 64.48 kg WV 997.7 WV 881.5 35.33 exp h 31,143.3 0.621 n 0.2597 2.6612 AC D 0.18707 0.0010149 n 0.2597 0.009814 1.0 m s 3.2808 ft v 0.8111 4A C m s 3600 s h n 0.2597 4 2 0.3372 2.6612 ft/s 0.8111 m/s 1079.7 V MWV u Perm 3600 3 n .2597 0.621 0.009814 ft L 0.2597 0.81458 0.3372 v 31,143.4 kg/h 0.009814 1.877478 0.009814 g / ml 6, 4331.7 kg/h kmol 64331.7 0.0145229 u Perm 103.797 ml/mol 0.63 MW v For vapor: ideal gas: FlV C5,liq kmol h 35.33 0.009814 g cm 3 kg kmol kg 1000g 6 10 cm m3 3 1.392 m 2 1.33 m Arbitrarily L D 4, L 5.32 m 38 2.D22. K i 1 zi V f F 1 K iP 1 z iP V 1 K iP 1 F Ki 1 V F K NP 1 z NP V 1 K NP 1 F 0 Solve for V/F. 1 V K NP 1 K iP 1 z iP F K iP 1 z iP V F p tot log10 VP K NP 1 z NP 760 mm Hg, where z iP z NP 0 1.0 90 C 1580.9 3.011679 20 219.61 1027.256 mm Hg , K iP 1027.256 760 1.35165 VPiP Note: MWiP 8.11778 MWNP . ziP F 0.24384 0.5 z iP 1 x NP K iP 1 x iP 5. 0°C, 2500 kPa Fig 2.12: K M 5.7, V 0.4095 V 1 F 0.5905; yip K iP x iP K ethylene 1.43, K Ethane 0.98, y NP 0.44653 K C6 0.007 1 V .47 .4 0.43 .05 F1 1 4.7 .6 1 .43 .6 V V F F 2 .02 0.35 1 f xi x ethane zi 1 Ki 1 V F 0.354, x C6 0.993 0.2 .02 .6 V F 1 1 zi K i 1 1 1 yi 0.55347 0.6 (equal split ethylene and ethane) F Then Eq. (2-38), 0.629 0.24384 0.35165 x iP First, try 0.5 in both wt & mol frac., as does z NP . 0.35165 0.5 V Find K NP 1 z NP F 1499.2 7.84767 NP log10 VPiP Eq. (2-46) T V 2.75943 90 204.64 574.68 mm Hg , K NP 574.68 p tot 0.75616 VPNP f K iP 1 K NP 1 K iP 1 p drum 2.D23. 1 .993 6 0.6059 2 2 Ki 1 V F . xM 0.104, x ethylene 0.502, 0.0108 0.040 1.0001 OK Ki xi 39 2.D24. New Problem. p = 300 kPa At any T. K C3 y C3 x C3 K C6 y C6 x C6 K’s are known. Substitute 1st equation into 2nd K C6 1 x C3 K C6 Solve for xC3, x C3 K C3 K C3 At 300 kPa pure propane K C3 x C3 at 110°C x C3 1 K C3 x C3 1 x C3 1 K C3 x C3 K C6 1 K C6 K C6 & y C3 1.0 boils at -14°C At 300 kPa pure n-hexane K C6 at -14°C 1 x C3 1 K C6 x C3 Check: 1 yC3 K C3 1 K C6 K C3 K C6 (Fig. 2-11) 1.0 boils at 110°C 1 K C6 1 K C6 0 K C3 0, 1, y C3 y C3 1 1 K C6 1.0 1 K C6 K C3 0 K C3 0 Pick intermediate temperatures, find K C3 & K C6 , calculate x C3 & y C3 . T 0ºC 10ºC 20ºC 30ºC 40ºC 50ºC 60ºC 70ºC K C3 1.45 2.1 2.6 3.3 3.9 4.7 5.5 6.4 K C6 0.027 0.044 0.069 0.105 0.15 0.21 0.29 0.38 x C3 1- 0.027 = 0.684 1.45 - 0.027 0.465 0.368 0.280 0.227 0.176 0.136 0.103 yC3 K C3 x C3 0.9915 0.976 0.956 0.924 0.884 0.827 0.75 0.659 See Graph 40 41 b. L V 0.6 0.4 1.5 x C3 0.3 , V F 0.4, Operating line intersects y x 0.3, Slope 1.5 L F y x z V V F 0.3 at x 0, y z 0.75 V 0.4 Find yc3 = 0.63 and xC3 = 0.062 Check with operating line: 0.63 1.5 .062 0.75 0.657 OK within accuracy of the graph. c. Drum T: K C3 d. y .8, y C3 x C3 x ~ .16 0.63 0.062 10.2 , DePriester Chart T = 109ºC Slope V L y .8 .6 V x 1 .16 .6 f F 1.45 1 f 0.45 f .45 0.69 2.D25. New Problem. 20% Methane and 80% n-butane V Tdrum .50 ºC , 0.40 , Find p drum F K A 1 zA K B 1 zB V 0 f V V F 1 KB 1 1 KA 1 F F Pick p drum 1500 kPa: K C4 13 (Any pressure with K C1 Trial 1 1 and K C4 12 .2 f1 K nC4 .6 .8 1 12 .4 1 1.0 is OK) 0.4 d f Pold Need lower p drum 0.2178 1 .6 .4 K C 4 Pold K C 4 Pnew 0.4 1 .2138 0.511 1.0 Pnew 1160 K C1 15.5 .2 f2 .489 .8 1 15.5 .4 K C 4 Pnew Pnew f3 16.5 1 0.4305 .4863 0.055769 0.511 1 1100 0.541 0.055769 K C1 17.4 16.4 .2 1 .489 .4 16.4 .4 .459 .8 1 .459 .4 0.0159 , OK. Drum pressure = 1100 kPa 42 b.) zi xi 1 yC1 2.D26. New Problem. a) b) Stage is equil. K C5 0.2 , x C1 Ki K C1x C1 V 1 16.4 .4 1 F 17.4 0.02645 0.4603 0.02645 Can solve for L and V from M.B. 100 = F = V + L 45 Fz 0.8V 0.2162L Find: L = 59.95 and V = 40.05 y C3 0.8 K C3 3.700 x C3 0.2162 0.2 .2552 0.7838 These K values are at same T, P. Find these 2 K values on DePriester chart. Draw straight line between them. Extend to Tdrum , p drum . Find 10ºC, 160 kPa. 2.D27. New Problem. a.) VPC5 : log10 VP 1064.8 6.853 0 233.01 2.2832 , VP 191.97 mmHg b.) VP 3 760 2280 mmHg , log10 VP 6.853 1064.8 / T 233.01 Solve for T = 71.65ºC c.) Ptot 191.97 mm Hg [at boiling for pure component Ptot d.) C5: log10 VP 30 233.01 637.51 mm Hg VP K C5 C6: VPC5 Ptot log10 VPC6 VPC6 K C6 e.) KA yA x A 1064.8 6.853 2.8045 637.51 500 1.2750 1171.17 6.876 30 224.41 187.29 mm Hg 187.29 500 KB 2.2725 0.3746 yB x B (1 y A ) / (1 x A ) If K A & K B are known, two eqns. with 2 unknowns K A & y A x C5 1 K C6 K C5 K C6 VP ] 1 0.3746 1.2750 0.3746 Solve. 0.6946 y C5 K C5 x C5 1.2750 0.6946 0.8856 f.) Overall, M.B., F = L + V or 1 = L + V C5 : Fx F Lx Vy .75 0.6946 L + 0.8856 V Solve for L & V: L = 0.7099 & V = 0.2901 mol g.) Same as part f, except units are mol/min. 43 2.D28. New Problem. V h D F L From example 2-4, x H With h D C, D 0.19, Tdrum 378K, V F 0.51, y H 0.6, z H 0.40 V MWv u perm 3600 v C C=4, MWv = 97.39 lbm/lbmole (Example 2-4) 1 3.14 10 3 g mol v 28316.85ml 454g lbm ft 3 0.198 lbm ft 3 Example 2.4 u perm K drum L v , K horiz 1.25 K vertical V From Example 2-4, K vertical u perm V V F 0.5541 F 0.4433 , K horiz 0.6960 0.00314 0.00314 lbmol 0.51 3000 hr 1.25 0.4433 0.5541 12 8.231 ft s [densities from Example 2-4] 1530 lbmol hr lbmol lbm 97.39 h lbmol ft s lbm 8.231 3600 0.1958 3 s h ft 1530 D h 5.067 ft 4D 20.27 ft 1 Use 5 20 or 5 22 ft drum. 2 2.D29. New Problem. The stream tables in Aspen Plus include a line stating the fraction vapor in a given stream. Change the feed pressure until the feed stream is all liquid (fraction vapor = 0). For the PengRobinson correlation the appropriate pressure is 74 atm. The feed mole fractions are: methane = 0.4569, propane = 0.3087, n-butane = 0.1441, i-butane = 0.0661, and n-pentane = 0.0242. b. At 74 atm, the Aspen Plus results are; L = 10169.84 kg/h = 201.636 kmol/h, V = 4830.16 kg/h = 228.098 kmol/h, and Tdrum = -40.22 oC. 44 The vapor mole fractions are: methane = 0.8296, propane = 0.1458, n-butane = 0.0143, i-butane = 0.0097, and n-pentane = 0.0006. The liquid mole fractions are: methane = 0.0353, propane = 0.4930, n-butane = 0.2910, i-butane = 0.1298, and n-pentane = 0.0509. c. Aspen Plus gives the liquid density = 0.60786 g/cc, liquid avg MW = 50.4367, vapor density = 0.004578 g/cc = 4.578 kg/m3, and vapor avg MW = 21.17579 g/mol = kg/kmol. Since the flow area for vapor = LD and L = 4D, the area for flow = 4D 2. Then the equation for the drum diameter is D = {[(MWV) V]/[ρV uperm (L/D)]}0.5 = {[(21.17579 kg/kmol)(228.098 kmol/h)]/[(4.578 kg/m3)(uperm ft/s)(1 m/3.281 ft)(3600 s/h)(4)]0.5 where the unit conversions are used to give D in meters. The value of u perm (in ft/s) can be determined by combining Eqs. (2-59) and (2-60) for vertical drums with Eq. (2-64a). Flv = (WL/WV)[ρV/ ρL]0.5 = (10169.84/4830.16)[0.004578/0.60786]0.5 = 0.18272 Resulting Kvertical = 0.378887 , Khorizontal = 0.473608, and uperm = 5.436779 ft/s, and D = 0.4896 m and L = 1.9585 m. Appropriate standard size would be used. 2.D30. New Problem. a. From the equilibrium data if yA = .40 mole fraction water, then x A = 0.09 mole fraction water. Can find LA and VA by solving the two mass balances for stage A simultaneously. LA + VA = FA = 100 and LA (.09) + VA (.40) = (100) (.20). The results are VA = 35.48 and LA = 64.52. b. In chamber B, since 40 % of the vapor is condensed, (V/F)B = 0.6. The operating line for this flash chamber is, y = -(L/V)x + FB/V) zB where zB = yA = 0.4 and L/V + .4FB/.6FB = 2/3. This operating line goes through the point y = x = zB = 0.4 with a slope of -2/3. This is shown on the graph. Obtain xB = 0.18 & yB = 0.54. LB = (fraction condensed)(feed to B) = 0.4(35.48) = 14.19 kmol/h and VB = FB – LB = 21.29. c. From the equilibrium if xB = 0.20, yB = 0.57. Then solving the mass balances in the same way as for part a with FB = 35.48 and zB = 0.4, LB = 16.30 and VB = 19.18. Because xB = zA, recycling LB does not change yB = 0.57 or xA = 0.09, but it changes the flow rates VB,new and LA,new. With recycle these can be found from the overall mass balances: F = VB,new + LA,new and FzA = VB,newyB + LA,new xA. Then VB,new = 22.92 and LA,new = 77.08. 45 Graph for problem 2.D30. 46 2.E1. New Problem. From Aspen Plus run with 1000 kmol/h at 1 bar, L = V = 500 kmol/h, WL = 9212.78 kg/h, WV = 13010.57 kg/h, liquid density = 916.14 kg/m3 , liquid avg MW = 18.43, vapor density = 0.85 kg/m3 , and vapor avg MW = 26.02, Tdrum = 94.1 oC, and Q = 6240.85 kW. The diameter of the vertical drum in meters (with u perm in ft/s) is D = {[4(MWV) V]/[3600 π ρV uperm (1 m/3.281 ft)]}0.5 = {[4(26.02)(500)]/[3600(3.14159)(0.85)(1/3.281)uperm]}0.5 Flv = (WL/WV)[ρV/ ρL]0.5 = (9212.78/13010.57)[0.85/916.14]0.5 = 0.02157 Resulting Kvertical = 0.404299, and uperm = 13.2699 ft/s, and D = 1.16 m. Appropriate standard size would be used. Mole fractions isopropanol: liquid = 0.00975, vapor = 0.1903 b. Ran with feed at 9 bar and pdrum at 8.9 bar with V/F = 0.5. Obtain WL = 9155.07 kg/h, WV = 13068.27, density liquid = 836.89, density vapor = 6.37 kg/m3 D = {[4(MWV) V]/[3600 π ρV uperm (1 m/3.281 ft)]}0.5 = {[4(26.14)(500)]/[3600(3.14159)(6.37)(1/3.281)uperm]}0.5 Flv = (WL/WV)[ρV/ ρL]0.5 = (9155.07/13068.27)[6.37/836.89]0.5 = 0.06112 Resulting Kvertical = .446199, uperm = 5.094885 ft/s, and D = 0.684 m. Thus, the method is feasible. c. Finding a pressure to match the diameter of the existing drum is trial and error. If we do a linear interpolation between the two simulations to find a pressure that will give us D = 1.0 m (if linear), we find p = 3.66. Running this simulation we obtain, WL = 9173.91 kg/h, WV = 13049.43, density liquid = 874.58, density vapor = 2.83 kg/m3, MWv = 26.10 D = {[4(MWV) V]/[3600 π ρV uperm (1 m/3.281 ft)]}0.5 = {[4(26.10)(500)]/[3600(3.14159)(2.83)(1/3.281)uperm]}0.5 Flv = (WL/WV)[ρV/ ρL]0.5 = (9173.91/13049.43)[2.83/874.58]0.5 = 0.0400 Resulting Kvertical = .441162, uperm = 7.742851 ft/s, and D = 0.831 m. Plotting the curve of D versus pdrum and setting D = 1.0, we interpolate pdrum = 2.1 bar At pdrum = 2.1 bar simulation gives, WL = 9188.82 kg/h, WV = 13034.53, density liquid = 893.99 , density vapor = 1.69 kg/m3, MWv = 26.07. D = {[4(MWV) V]/[3600 π ρV uperm (1 m/3.281 ft)]}0.5 = {[4(26.07)(500)]/[3600(3.14159)(1.69)(1/3.281)uperm]}0.5 Flv = (WL/WV)[ρV/ ρL]0.5 = (9188.82/13034.53)[1.69/893.99]0.5 = 0.0307 Resulting Kvertical = .42933, uperm = 9.865175ft/s, and D = 0.953 m. This is reasonably close and will work OK. T drum = 115.42 oC, Q = 6630.39 kW, 47 Mole fractions isopropanol: liquid = 0.00861, vapor = 0.1914 In this case there is an advantage operating at a somewhat elevated pressure. 2.E2. This problem was 2.D13 in the 2nd edition of SPE. a. Will show graphical solution as a binary flash distillation. Can also use R-R equation. To generate equil. data can use x C6 x C8 1.0, and yC6 yC8 K C6 x C6 K C8 x C8 1.0 Substitute for xC6 1 K C8 x C6 K C6 K C8 Pick T, find KC6 and KC8 (e.g. from DePriester charts), solve for xC6. Then yC6 = KC6xC6 T°C KC6 125 120 110 100 90 80 66.5 Op Line Slope KC8 4 3.7 3.0 2.37 1.8 1.4 1.0 xC6 1.0 .90 .68 .52 .37 .26 .17 L 1 V F .6 V V F .4 0 .0357 .1379 .2595 .4406 .650 1.0 yC6 = KC6 xC6 0 .321 .141 .615 .793 .909 1.0 1.5 , Intersection y = x = z = 0.65. See Figure. yC6 = 0.85 and xC6 = 0.52. Thus KC6 = .85/.52 = 1.63. This corresponds to T = 86°C = 359K b. Follows Example 2-4. 48 MW L VL x C8 MW x C6 MW x C8 MW C6 C6 MW x C8 C6 MW v C8 86.17 .52 .659 C8 MW L 99.63 VL 145.98 L .52 86.17 C8 yC6 MWC6 .48 114.22 42.57 454 g/lbm .85 86.17 .15 114.22 1.0 90.38 g/mol 0.00307 g/ml ml atm RT 82.0575 359K mol K Now we can determine flow rates V V F .4 10, 000 4000 lbmol/h F pMW v L V MW v F V 4000 90.38 6000 lbmol/h, WL Flv L MW L v 597, 780 0.19135 Wv L 361, 520 42.57 exp 1.87748 0.01452 u Perm K drum L .81458 2.1995 v V MW v A Cs 4A Cs v 597, 780 lb/h 0.111, nFlv 2.1995 2.1995 0.00101 .18707 2.1995 4 2.1995 2 0.423 42.57 19135 .19135 6.3 3600 0.19135 4 83.33 90.38 6000 99.63 4000 90.38 u Perm 3600 D 3 0.423 v ft 3 361, 520 lb/h WL K drum lbm 0.19135 lbm/ft 3 v Wv 99.63 145.98 ml/mol .703 28316 ml/ft 3 .682 g/ml yC8 MWC8 .48 114.22 6.30 ft/s 83.33 ft 2 10.3 ft. Use 10.5 ft. L ranges from 3 × 10.5 = 31.5 ft to 5 × 10.5 = 52.5 ft. Note: This uPerm is at 85% of flood. If we want to operate at lower % flood (say 75%) have u Perm75% 0.75 0.85 u Perm85% 0.75 0.85 .63 5.56 Then at 75% of flood, ACs = 94.44 which is D = 10.96 or 11.0 ft. 2.F1 xB 0 .1 .2 .3 .4 .5 .6 .8 .9 1 yB 0 .22 .38 .52 .62 .71 .79 .85 .91 .96 1 .7 Benzene-toluene equilibrium is plotted in Figure 13-8 of Perry’s Chemical Engineers Handbook, 6th ed. 2.F2. See Graph. Data is from Perry’s Chemical Engineers Handbook, 6th ed., p. 13-12. 49 Stage 1) z F1 .4 .4 Intercept Stage 2) z F2 13 .164 z F3 23 .240 f .240 Intercept 2.F3. f .164 Intercept Stage 3) f 12 13 1.2 y1 23 T Converge to T 12 18 C, T x1 x2 x3 K1z1 K1 1, .164 13 23 .01 Slope .480 z2 12 y2 .240 y3 .461 z3 1 .022 1 K2 .043, K3 .00095, .52 K2 0.11, K3 0.0033, 120.26 0C z1 Dew Pt. Calc. Want Try .872 .246 2, 13 Slope Bubble Pt. At P = 250 kPa. Want Guess 23 Slope 0 C, K1 K1 1.0 1.93, 50 Converge to T 124 C . This is a wide boiling feed. Tdrum must be lower than 95°C since that is feed temperature. First Trial: Guess Td,1 70 C : K1 7.8, K 2 1.07, K 3 Guess V F .083 0.5 . Rachford Rice Eq. 7.8 1 .517 fV F 1 .07 .091 6.8 .5 1 V F .6 gives f .6 .07 .5 1 .14 .083 1 .5 .101 V F .56. f 0.56 By linear interpolation .083 1 .392 .0016 which is close enough for first trial. V V F F 56, zi xi 1 Ki 1 V F x1 .1075 y1 .839 Data: Pick L x2 y2 .088 .094 44 and y i x3 y3 Kixi .806 x 1.001 .067 y .9999 th 25 C . (Perry’s 6 ed; p. 3-127), and (Perry’s 6th ed; p. 3-138) Tref 1 81.76 cal/g 44 3597.44 kcal/kmol 2 87.54 cal/g 72 6302.88 kcal/kmol 3 86.80 cal/g 114 9895.2 kcal/kmol at T 0 C, CpL1 0.576 cal / (g C) 44 For T 20 to 123 C, CpL3 at T 75 C, CpL2 25.34 kcal/(kmol C) . 65.89 kcal/(kmol C) 39.66 kcal/(kmol C) . (Himmelblau/Appendix E-7) Cpv a bT cT 2 propane a = 16.26 b = 5.398 × 10-2 c = -3.134 × 10-5 -2 n-pentane a = 27.45 b = 8.148 × 10 c = -4.538 × 10-5 -3 **n-octane a = 8.163 b = 140.217 × 10 c = -44.127 × 10-6 ** Smith & Van Ness p. 106 Energy Balance: E(Td) = VHv + LhL – FhF = 0 Fh F 100 .577 25.34 .091 39.66 .392 65.89 95.25 297, 773 kcal/h Lh L 44 .1075 25.34 VH v 56 .839 0.94 .088 39.66 3597.4 16.26 5.398 10 6302.88 27.45 8.148 10 0.67 9895.3 8.163 140.217 10 E Tdrum Converge on For V F .806 65.89 2 2 70.25 117, 450 45 45 3 45 240, 423 60,101 Thus, Tdrum is too high. Tdrum 57.2 C : K1 0.513, f 0.513 6.4, K 2 0.0027. V .8, K 3 51.3, L .054 48.7 51 x1 .137, x 2 .101, x 3 .762, x1 1.0000 y1 .878, y 2 .081, y3 .041, y1 1.0000 Fh F 297, 773; Lh L 90, 459; VH v Thus Tdrum must be very close to 57.3°C. x1 .136, x 2 .101, x 3 .762 209,999; E Tdrum 2685 y1 .328, y 2 .081, y 3 .041 V 51.3 kmol/h, L 48.7 kmol/h Note: With different data T drum may vary significantly. 2.F4. yV Lx New Problem. V F x Find: 0.4, V 0, y Fz 4kmol h , L F z 2.5 .25 V V = 4 kmol/h, L = 6 kmol/h. or y 6, L V 1.5 L V x F V z slope 0.625 From the graph, x = 0.19 y = 0.34 Equilibrium is from NRTL on Aspen Plus. 52 FIGURE 2.F.4. 2.G1. Used Peng-Robinson for hydrocarbons. Find Tdrum 33.13 C, L 34.82 and V 65.18 kmol/h In order ethylene, ethane, propane, propylene, n-butane, xi (yi) are: 0.0122 0.0748 , 0.0866 0.3005 , 0.3318 0.3781 , 0.0306 0.0404 , 0.5388 0.2062. 2.G2. x i yi Used Peng-Robinson. Find Tdrum 30.11 C, L 31.348, V 68.66 kmol/h. In same order as 2.G1, are: 0.0189 0.1123 , 0.0906 0.3023 , 0.3255 0.3495 , 0.0402 0.0501 , 0.5248 0.1858 . 53 2.G3. Used NRTL-2. xM Tdrum 0.18 and y M xM 79.97 C , 0.2475, y M 0.6287 . Compares to graph with 0.55 . Different equilibrium data. 2.G4. New Problem. COMP METHANE BUTANE PENTANE HEXANE V/F = 0.58354 2.G5. x(I) 0.12053E-01 0.12978 0.29304 0.56513 y(I) 0.84824 0.78744E-01 0.47918E-01 0.25101E-01 New Problem. Used NRTL. T = 368.07, Q = 14889 kW, 1st liquid/total liquid = 0.4221, Comp Furfural Water Ethanol Liquid 1, x1 0.630 0.346 0.0241 Liquid 2, x2 0.0226 0.965 0.0125 Vapor, y 0.0815 0.820 0.0989 2.G6. New Problem. Used Peng Robinson. Feed pressure = 10.6216 atm, Feed temperature = 81.14oC, V/F = 0.40001, Qdrum =0. Note there are very small differences in feed temperature with different versions of Aspen Plus. COMP METHANE BUTANE PENTANE HEXANE V/F = 0.40001 x(I) 0.000273 0.18015 0.51681 0.30276 y(I) 0.04959 0.47976 0.39979 0.07086 2.H1. New Problem. The spreadsheet with equations for problem 2.D16 is shown in Appendix B of Chapter 2. The spreadsheet with numbers for i-butane replacing n-butane is below. MC flash, HW 2.G.b., MC flash with ibutane K const. aT1 aT2 aT6 ap1 ap2 ap3 M -292860 0 8.2445 -0.8951 59.8465 0 iB -1166846 0 7.72668 0.92213 0 0 nPentane -1524891 0 7.33129 0.89143 0 0 nHex -1778901 0 6.96783 0.84634 0 0 p T deg R 509.688 psia 36.258 F 150 zM 0.5 z iB 0.1 z np 0.15 znhex V/F 0.602698586 0.25 54 guess KM KiB KnPen KnHex xM xib xnPen xnHex Sum RR M RR nB RRnP RRnHex sum RR 51.86751896 0.926804057 0.175621816 0.05400053 Use goal seek for cell B24 to = 1.0 change B9 0.015793905 0.104615105 0.29812276 0.581601672 1.000133443 0.803396766 -0.007657401 -0.2457659 -0.550194874 -0.000221409 2.H3. New Problem. Use the same spreadsheet as for problem 2H1, but with methane feed mole fraction = 0. Answer: V/F = 0.8625, xib 0.08596648 xnPen 0.203540261 xnHex 0.710481125 KiB 3.886544834 KnPen 1.264637936 KnHex 0.574940847 yib = xib Kib = .33411 and so forth 55 Chapter 3 New Problems and new solutions are listed as new immediately after the solution number. These new problems are: 3A7, 3A10, 3A11, 3C3, 3C4, 3D4, 3D8, 3G2. 3.A7. 3.B1. Simultaneous solution is likely when one of the key variables can be found only from the energy balances. For example, if only 1 of x D , x B , D, B, FR A dist are given energy balances will be required. This is case for most of the simulation problems and for a few design problems. In some simulation problems the internal equations have to be solved also. a. x D , x B , opt feed, Q Re b x D , x B , opt feed, Q C x D , x B , opt feed, S (open steam), sat’d vapor steam All of above with fractional recoveries set instead of x D , x B D, x B , opt feed, L/D b. N, N F , col diameter, frac. recoveries both comp. N, N F , col diameter, FR A dist, L o D N, N F , col diameter, FR A dist, Q R N, N F , col diameter, FR A dist, Q C N, N F , col diameter, x D , QC or x B N, N F , col diameter, S (sat’d steam), sat’d vapor steam, x D or x B Many other situations are possible [e.g., 2 feeds, side streams, intermediate condensers or reboilers etc.] 3.C1. See solution to problem 3-D2. 3.C2. See solution to problem 3-D3. 3.C3. New Problem in 3rd Edition. Fmix Fmix z mix z mix F1z1 F2 z 2 F1z1 F2 z 2 Dx D F1 F2 D B Bx B (Mole frac. MVC) Fmix Now solve like 1 Feed Column Fmix & z mix . From Eq. (3-3), 3.C4. D z mix xB xD xB B Fmix Fmix kmol/h. D kmol/h. New Problem in 3rd Edition. See solution to 3D4, Part b. 56 3.D1. F1 F2 V1 QC F1z1 1 F1 Lo D, x D B D F2 z 2 Solve D Ftotal F2 L V xB xD xB F2 1500 kg/h F2 z 2 Ftotal D 0.85 Ftotal 1000 .60 Ftotal 500 0.10 1500 0.85 0.0001 B B, x B xD z avg F1 0.0001 0.01% D xD 0.43333 0.0001 D QR Bx B F1z1 z avg xB 1500 0.43333 764.62 kg/h 1500 764.62 735.38 kg h Mass balance calculation is valid for parts a & b for problem 3G1. L a) o 3, Eq 3-14 QC 1 L 0 / D D h D H1 D h D is a saturated liquid at x D 0.85 wt. frac. From Fig. 2-4, h D ~ 45 kcal/kg H1 is saturated vapor at x D QC y1 0.85, H1 ~ 310 kcal/kg 1 3 764.62 45 310 EB around column. F1h F1 F2 h F2 810, 497 kcal/hour Qcol QC QR Dh D Bh B h F1 81 C, 60 wt% ethanol ~ 190kcal / kg; h F2 20 C, 10 wt% ethanol ~ 10kcal / kg h B (sat’d liquid – leaves equil contact, ~ 0 wt% ethanol) ~ 100 kcal/kg, Qcol = 0 (adiabatic) QR 764.62 45 (b) V B 735.38 100 1000 190 500 10 810, 497 657, 259 kcal/kg 2.5 mass. 57 V (Satd vapor) Lh L QR Reboiler L L V B QR L VH V Bh B 1838.45 735.38 2573.83 Sat’d liqd V B 2.5 or V 2.5B 1838.45 B, x B =0.0001 Sat’d liqd Approximately x B ~ y V ~ x L . Thus h L QR EB. 3.D2. 1838.45 640 QC QC hB Dh D 100 . H V 735.38 100 Bh B Qcol 640 kcal kg 2573.83 100 F1h F1 F2 h F2 992, 763 kcal / h QR 34407.9 7353.8 190, 000 5000 992, 763 1,146, 001 kcal/h Column: mass bal: F + S = D + B (1) MVC: Fz + SyS Dx D Bx B (2) Note: yS 0 energy bal: Fh f SH s QC Dh D Condenser: mass bal. : V1 Lo D (4) Bh B (3) energy bal.: V1H1 QC Lo D h D (5) Solve Eqs. (1) and (2) to get: Fz Fx B Sx B 100 .3 100 .05 100 .05 D xD xB .6 .05 Note: Not Eq. (3-3). Solve Eqs. (4) and (5) to get: QC D 1 L D h D H1 36.4 Substitute Q C into Eq. (3): L Dh D F S D hB D D hD From Figure 2-4: h F L D 3.D3. 8, h D 36.4 65 Fh F SH S H1 65, h B 92, H S 163.6 92 100 8 36.4 65 408 1 638, H1 608 kcal/kg. 100 638 1 2.77 External balances: F + C = B + D Fz Cx C Bx B Dy D QR Fh F Ch C Bh B (1) (2) DH D (3) 58 F = 2000, C = 1000, z = .4, x C 1.0, x B h C sat 'd liquid 50, h B sat 'd liquid Around reboiler: L V B Lx N Vy Re b For a total reboiler: x N VH reb xB , yN xN xB, hN V B hN QR 617 (saturated vapor at y N hN since h B Fz Cx C xB Fy D QR QR 2200 327 .05 .8 Bh B DH D QR H reb Fh F 2000 804500 hN 617 92 Bh B hN 0.05 ) 1 Cy D 800 and D 30.75 1000 50 0.3, z F,W 1 z F,M 804,500 cal/h 1532.4 kg/h Dy D,M Fz F,W (Frac Rec water in bottom) z F,M 2200 Ch C F B D New Problem in 3rd Edition. MVC Fz Bx B Dy D But given recoveries. Thus, use: Fz F,M (Frac Rec Methanol in distillate) and 327 kcal/kg yD 800 1000 1600 800 From Eq. (3), 30.7, 92 VH reb H Re b B V QR hB V Thus 20 C Bh B or H reb hF Bx B QR Solve Eqs. (1) and (2) for B: B 800 92 .80, 92, H D sat 'd vapor Lh N M.B.: 3.D4. .05, y D Bx B,W 0.7 y D,M unknown, x B,W unknown. Methanol 29.7 100 0.3 .99 Dy D,M If 99% methanol recovered in distillate, 1% is in bottoms 0.3 100 0.3 0.01 68.6 100 0.7 0.98 Water 1.4 100 0.7 0.02 xi Since Thus, B 1 and D Bx B,M Check: 2% water in distillate Dy D,W yi Dy D,M Bx B,W Bx B,W Bx B,M 1, Dy D,i Dy D,W 0.3 68.6 B D 100 F D, and 29.7 1.4 Bx B,i B 31.1 kmol h 68.9 kmol h OK 59 Dy D,M y d,M x B,M a) D 29.7 31.1 0.955 D Bx B,M B 0.3 68.9 31.1 & L0 D 0.00435 2. Thus L 0 62.2 Reflux liquid is in equilibrium with vapor y D,M 0.955 From equilibrium data (Table 2-7) x M,0 ~ 0.893 (linear interpolation) b) E.B. Partial condenser: V1H1 V1 D L0 93.3 V1 y1 Dy 0 L0 x 0 y1,M 29.7 y1 Qc Dy 0 62.2 0.893 L0 h 0 L0 x 0 V1 93.3 0.914; y1,W 35, 270 J mol @ 64.5 C M DH 0 1 y1,M 0.086 choose MeOH reference 64.5ºC. 35, 270 kJ / kmol 40, 656 J mol @100 C 40, 656 kJ/kmol choose water reference 100ºC. The condenser is at 66.1ºC (linear interpolation Table 2-7). H1 y1,M CP,V,M T1 64.5 y1,W CP,V,W T1 100 M y1,M W y1,W V1 is at T1 in equilibrium with y1,M 0.914. From Table 2-7 T1 ~ 67.6 C Assuming only constant & linear T term are important in C P,V eqs., CP,V methanol Tavg 67.6 64.5 2 C PV,M 42.93 0.08301 66.05 48.41 C P,V ,W 33.46 0.00688 83.8 34.04 TM 67.6 64.5 3.1 ; Then H1 H1 35270 0.914 TW H D is at y D HD M kmol J 1000J 34.04 o mol C 67.6 100 48.41 kJ kmol C kJ kmol C 32.4 48.41 3.1 0.914 34.04 32.4 0.086 0.955@ 66.1 C y D,M W y D,W y D,M CP,V,M TD CP,V,M TM,avg . Tavg,M CP,V,M 42.93 0.08301 65.3 CP,V,W CP,V,W TW,avg . TW ,avg TW mol kJ 83.8 C . Note λ terms dominate. CP,V,M CP,V,W 2 J 1000 mol 40656 0.086 35775.5 kJ kmol 67.6 100 66.65 C . For water, Tavg CP Tavg . For 33.46 0.00688 83.05 66.1 100 64.5 66.1 64.5 2 48.35 100 66.1 2 34.03 yD,W CP,V,W TD 100 65.3 83.05 33.9 60 HD 35270 .955 HD 33682.85 40656 0.045 1829.5 48.35 0.955 1.6 73.88 51.91 34.03 0.045 33.9 35534.3 Reflux liquid at 66.1ºC and x M,0 0.893, x W,0 0.107 Reference MeOH 64.5ºC, water reference 100 ºC h 0 CPL,M x M,0 TM CPL,W x W,0 TW C PL,M h0 QC DH D C PL,M Tavg 75.86 0.1683 65.3 86.85 0.893 1.6 L0 h 0 or Q R 31.1 35534.3 V1H1 Fh F Overall EB DH D 75.4 0.107 QC Bh B QR QC DH D hB 13.53 2 60.06 hF Tavg,M 3.D5. 0.99565 CPL,W 0.99565 99.2 100 75.86 0.1683 81.86 89.64 0.3, z W 0.7. 78 C C PL,W 0.7 78 100 71.25 and CP,L,M hF 805.4 kJ kmol Then QR 31.1 35534.3 1,105,116 2, 242, 030 kJ h 46.5 kJ kmo l CP,LM 0.03 78 64.5 78 64.5 2 93.3 35775.5 Bh B 81.86 and CPL,M Feed is saturated liquid at z M From Table 2-7, TF kmol C 149 kJ kmol 99.2 C CPL,M 0.00435 99.2 64.5 99.2 64.5 149 0.00435 and x B,W Interpolating in Table 2.7 TBot Tavg,M 33.9 kJ Fh F h B is saturated liquid with x B,M hB 62.2 86.85 68.9 75.86 0.1683 71.25 46.5 2, 242, 030 3204 2, 242, 030 100 87.85 805.4 80, 536 3, 424, 479 kJ h Mass Balances: F = D + S + B, Fz Dx D Sx S Bx B Solving simultaneously, B = 76.4 kg/min, D = 13.6 kg/min. Condenser: QC V1 h 0 H1 V1 L0 D L D 1 D From Figure 2-4, h 0 H1 4 13.6 54.4 kg/min 7.7 kcal/kg (x = .9, T = 20°C), 290 kcal/kg (y = .9, sat’d vapor). Thus, Q C = 54.4 (7.7 – 290) = -15,357 kcal/min Overall Energy Balance: Fh F QR Dh D QR QC Dh D Sh S Sh S Bh B Fh F QC Bh B From Figure 2-4, hS 61 x S .7, sat'd Liq'd ; h F 200 z .2, 93 C , 61 hB 99 x B Thus, QR 13.6 7.7 3.D6. .01, sat'd Liq'd , h D 10 61 76.4 99 z From Eq. (3-3), D = F Then B = F = 1502. Condenser: V Lo QC xB 100 200 2500 7.7 15357 .4 .002 xD xB D Lo D D D hD ho 3635.3 kcal/min 998 lbmol/h. .999 .002 H V D Lo D 1 With 99.9% nC 5 have essentially pure nC 5 . Thus, it is at its boiling point. hD HV QC Overall: 11,369 Btu/lbmol. C5 QR 11,369 998 4 Dh D Bh B Fh F 45,385, 048 Btu/h QC Distillate is at boiling point of pure nC5 K C5 1.0 on DePriester Chart) = 35°C. Bottoms is at boiling point of nC6 67°C. K C6 1.0 Converting to °F: 35°C = 95°F, 67°C = 152.6°F, 30°C = 86°F. Note feed is obviously a subcooled liquid. Arbitrarily, pick a liquid at 0°F as reference. (This will not affect the result and other values can be used.) CPF x C5CPLC5 z C6 CPLC6 CPF hF .4 39.7 CPF TF .6 51.7 0 46.9 Btu/lbmol °F 4033.4 Btu/lbmol 46.9 86 Distillate is almost pure nC 5 . Liquid at 95°F hD CPLC5 TDist 0 39.7 95 3771.5 Btu/lbmol Bottoms is almost pure liquid nC 6 at 152.6°F. hC pLC 6 Tbot QR 3.D7. 998 3771.5 Eq. (3-3), D F z xD 0 51.7 152.6 1502 7889.4 xB 1000 xB 7889.4 Btu/lbmol 2500 4033.4 0.7 0.001 0.999 0.001 45,385, 048 50,861, 491 Btu/h 700.4 kmol/h B F D 299.6 kmol/h Condenser: L o L o D D 2.8 700.4 1961.1 kmol/h Only this reflux is condensed since product is a vapor. where λ is for essentially pure n-pentane. QC Lo QC QC 1966.1 kmol h 49,154, 204.85 11, 369 Btu h Btu 2.20462 lbmol lbmol 1J 1 kmol -4 9.486 10 Btu 5.18176 1010 J h 62 From overall balance Q R DH D Bh B Fh F QC Distillate is vapor at b.p. of pure n-pentane (35°C from DePriester chart, K C5 1.0 ) Bottoms is boiling n-hexane (67°C) Conversions: 35°C = 95°F - distillate & Feed and 67°C = 152.6°F - bottoms As reference, arbitrarily choose liquid at 0°F. Feed is subcooled liquid. CPF z C5CPLC5 z C6 CPLC6 0.7 39.7 hF CPF TF Distillate H D C5 HD 0 43.3 95 0 CPLC5 Tdist 11,369 43.3Btu lbmolo F 0.3 51.7 4113.5 Btu lbmol 0 39.7 95 0 15,140.5 Btu lbmol Bottoms is pure C6 @152.6 F hB QR 700.4 1000 QR 3.D8. CPLC6 Tbot kmol kmol h 0 15,140.5 h 4113.5 68, 675,167.9 51.7 152.6 0 Btu 299.6 lbmol 7889.4 Btu lbmol kmol h Btu 2.20462 lbmol lbmol kmol Btu 1J h 9.486 10 -4 Btu 7889.4 Btu lbmol 49,154, 204.85 Btu h 7.240 1010 J h New Problem in 3rd Edition. F 300, zE .3, zw .7 98% rec. E in distillate, 81% rec water in bot. D Dist. .98 90 y DE B 1 .81 300 .7 128.1 kmol/h .98 90 0.6885 128.1 Bottoms .02 90 .81 210 171.9 kmol h y D , D, H D b. Partial Condenser. Qc Vapor H1 y1 V1 L0 D 2, L 0 2D 2 128.1 256.2 kmol h. x 0 in equilibrium with y 0 , thus from equation data x 0 Entering vapor y1 (from graph) x 0 , L0 , h 0 0.575. 0.61 63 V1 c. L0 D 256.2 128.1 384.3 kmol h . E.B. on PC. V1H1 Qc DH dist L 0 h 0 . Can use Figure 2-4 by converting mole fracs to mass fracs. Basis 1 kmole. Distillate .6885 mol E MW 46 31.671 kgE .3115 mole W MW 5.607 kgW 18 37.28 kg total Mass frac. E = 31.671 37.28 0.8496 Vapor V1 0.61 mole E 46 28.06 kgE 7.02 kgW .39 mole W 18 35.08 kg total Mass frac E = 28.06 35.08 0.7999 Liquid reflux L 0 0.575 mole E 46 26.45 kgE 7.65 kgE 0.425 mole W 18 34.1 total Mass frac E = 26.45 34.1 0.7757 From Figure 2-4, H dist ~ 310 kcal kg, H1 ~ 330 kcal kg, h 0 ~ 65 kcal kg Qc DH dist L0h 0 V1H 1 128.1 364.3 Know Qc and hr kg 35.08 kg Fh F Q R Overall EB. kmol 37.28 kg kmol Qc 310 330 DH dist kcal kg 256.2 34.1 65 2, 400, 517 kcal hr Bh B 2, 400,517 kcal h DH dist 1, 480, 426 kcal h . To find Fh F and Bh B , need to convert mole frac to wt frac. Basis 1 kmol Feed 30 mole % E: .3 mole 46 13.8 12.6 70% W : .7 18 Mass frac E Bottoms 13.8 26.4 0.5227 0.01047 mole 46 0.98953 mole 18 Mass frac E From Figure 2-4 total 26.4 kg kmol .48162 17.811 total 18.293 kg kmol 0.48162 18.28 h F satd liqd 70 kcal kg h B satd liqd 97 0.0263 64 QR Then QR 1, 480, 426 171.9 2, 400,517 DH dist Bh B Fh F Qc kmol 18.29316 kg 97 kcal h kmol 26.4 kg 300 kg 1, 480, 426 305,525 554, 408 kmol 70 kcal kg 3, 632, 069 kcal h 2, 400,517 3D9. New Problem 3rd Edition. B = (xD – z)/(xD – xB)F = [(0.9999 - 0.76)/(0.9999 – 0.00002)](500) = 120 QR Lh VH Bh B and L Assume h h B. QR V V L B h Vh V B B Bottoms is almost pure water. QR 3.D10. B V H h 1.5 120 180 kmol h. 9.72 kcal mol w V 9072 kcal kmol 1.633 106 kcal h 180 kmol/h 9072 2 atm × 101.3 kPa/atm = 202.6 kPa. Pentane Recovery: 0.995 Fz P 0.995 1000 0.55 547.6333 kmol/h 0.9993 B = 1000 – 547.6333 = 452.3667 Pentane Recovery Bot F z p , D Since Dx D Bx B 1 .995 1000 0.55 xB 0.006079 mol frac pentane 452.3667 Distillate is essentially pure Pentane. Bottoms Pure in Hexane. From DePriester Chart K P 1@ p 202.6 kPa when Tdist 59.5 C Kn H 1@ p 202.6 kPa when Tbot QC For Total Condenser, Eq. (3-14) h D pure pentane kcal 1 CPLC5 Tdist hD 39.7 59.5 25 H1 hD H1 1369.65 11369 94 C Lo D Tref D hD H1 choose Tref 1369.65 25 C kcal kmol C kmol assuming λ is independent of temperature Btu 1 lbmol 0.252 kcal 7680.196 kcal lbmol 0.454 kmol Btu kmol kmol kcal Eq. (3-14) is QC 1 2.8 547.6333 6310.5 13,132, 288 h h kcal kcal h B pure hexane C PLC6 Tbot Tref 51.7 94 25 3567.3 kmol C kmol Feed is a liquid at 65°C h F CPC5 z C5 CPC6 z C6 TF Tref hF 39.7 0.55 51.7 0.45 65.25 1804kcal / kmol 65 QR QR Dh D Bh B Fh F 547.6333 1369.65 QR QC 452.3667 3567.3 1000 1804 13,132, 288 13, 692, 081 kcal/h. Note that QC and Q R are relatively close. 3.E1. Was 3.D8 in 2nd Edition. QC D, x D 0.990 M.B. F + S = D + B F 100 kmol h zM Fz M p = 1.0 atm SyS,M Dx D Since steam is pure, yS,M 0.6 0 Know F, z M , x D , x B S xB Bx B B 0.02 Unknowns S, D, B, Need E.B. Fh F QC SHS Dh D Bh B Pick as basis liquid at 0°C, h W 0 & h M 0 (essentially steam table choice) Assume ideal mixtures. h F CPavg TP Tref where CPavg 0.4 CPW ,L 0.6 CPM ,L Felder & Rouseau p. 637 CPW 0.0754 kJ/mol CPM 0.07586 16.83 10 5 T kJ/mol CPM CPM Tavg CPM 0.07586 16.83 10 CPavg 0.4 0.0754 CPM 0 40 2 5 20 0.6 0.079226 h F 0.077696 40 0 Can also use steam table for water CPM 20 C 0.079226 0.077696 3.1078 kJ/mol feed = 3107.8 kJ/kmol H S is sat’d vapor steam 1 atm, H S 2676.0 kJ 18.0 kg kg kmol Steam Table F&R, p. 645 H S =48,168 kJ/kmol h D is sat’d liquid at x D hD 0.99 . From Table 2-7, T = 64.6°C CPavg 64.6 0 where CPavg CPM CPM Tavg CPavg 0.01 0.0754 CPM 32.3 C 0.01 CPW 0.99 CPM 0.07586 16.83 10 0.99 0.081296 5 32.3 0.081296 0.08124 66 HD 0.08124 64.6 5.2479 kJ mol 5247.9 kJ kmol h B : Since leaving an equilibrium stage, sat’d liqd. 2% MeOH Table 2-7, T = 96.4°C h B CPavg 96.4 0 where CP avg 0.98 CPW 0.02 CPM CPM CPM CPM 0.07586 16.83 10 CPavg 0.98 0.0754 hB QC QC dist 0.07557 96.4 QC CPM 48.2 C 5 48.2 0.08397 0.02 0.08397 0.07557 kJ mol 7.28509 kJ mol 7285.09 kJ mol do EB around condenser dist 0.99 Felder & Rousseau: dist 96.4 0 2 V1 MeOH dist Lo 0.01 M Lo D dist D W 35.27 kJ mol & 0.99 35.27 1 D 0.01 40.656 35,323.86 2.3 1 D W 40.656 kJ mol 35.324 kJ mol 116,568.7D kJ h 35, 323,86 kJ kmol Plug Q C & numbers into E.B. 100 3107.8 116,568.7D 48,168S 5247.9D 7285.09B or 310,780 + 48,168S = 121,816.6D + 7285.09B Solve simultaneously with 2 MB. 100 + S = D + B 60 + 0 = 0.99D + 0.02B One can use algebra or various computer packages. Obtain: E2. D = 56.33 kmol/h, B = 211.71 kmol/h S 168.04 kmol/h, Q C 6,566, 000 kJ/h. Was 3.D9 in 2nd Edition. F 500 kmol h F+S=D+B Fz SyS Dx D Bx B 2 eq. 3 unknowns Condenser: QC 1 L0 / D D h o H1 Note Eq (3-14) not valid. 500, 000 mol h For enthalpy pick reference pure liquid water 0°C and pure liquid methanol 0°C. Felder & 64.5 0 Rouseau: CPMeOH 75.86 0.01683T at Tavg 3225, C PMeOH 76.4 J mol C. 2 67 Assuming distillate pure methanol, boils at 64.5°C h D CPMeoh ,liq T Tref 76.4 J/mol 64.5 0 4928.0 J mol H1 40,198 J/mol hD QC 1 at 64.5 F 4928 35270 J/mol 4 4928 40198 D Overall Energy balance: F h F 141, 080D J/h where D is mol/h SHS QC Dh D BhB Bottoms is essentially pure H 2 O at 100°C hB C PW ,liq T Tref HS hB 75.4 at 100 C W J mol C 100 0 7540 7540 40656 J/mol J mol 48196 For feed. 60 mole % Methanol boils at 71.2°C (Table 2-7). hF CPi zi T Tref 0.6 76.459 71.2 0.4 75.4 71.2 5413.7 J/mol Now, Eqs are (1) F + S = D + B or 500,000 + S = D + B (2) Fz Dx D Bx B or (500,000) (.6) = 0.998D + 0.0013B (3) Q C (4) Fh F 1 Lo D h D H1 or Q C 141, 080D D Sh S QC Dh D Bh B or (500,000) (54137) + S (48196) + Q C = D(4928) + B (7540) Solve simultaneously: D = 298.98, B = 1245.5, S = 1044.2 kmol/h Q C = - 4.218 × 10+7 kJ/h 3.F1. An enthalpy composition diagram is available on p. 272 of Perry’s Chemical Engineer’s Handbook, 3rd ed., 1950. Eq. (3-3) D z xD xB xB F 0.79 0.004 0.997 0.004 25, 000 19, 788.5 kmol/h Note that N 2 mole fractions were used since N 2 is more volatile. B = F – D = 5211.5 From enthalpy comp. diag. h D QC 3.F2. 1 Lo D D h D QR Dh D QR 0 H1 Bh B 0, H1 1350 kcal/kmol, h B 5 19788.5 0 1350 Fh F 160, h F 1575 . Then, 133,572, 000 kcal/h QC 5211.5 160 25, 000 1575 QC 95, 030, 000 kcal/h We will use the enthalpy composition diagram on p. 3-171 of Perry’s 6th edition or p. 3-158 of Perry’s 5th ed.Do for 1 kmol of feed: Conversion of feed from kg to moles. Basis 100 kg 30 kg NH 3 = 1.765 kmol 70 kg H 2 O 3.888 Total 5.653 kmol Thus 1 kmol is 100/5.653 = 17.69 kg 68 Will work problem in weight fractions since data is presented that way. 95% recovery: (0.95) Fz = Dx D or, D = (.95) Fz / x D = (.95) (17.69) (.3)/(.98) = 5.15 kg. B = F – D = 12.54 kg xB Fz Dx D B From diagram: h D 55, H1 1 Lo D D h D and Q R Bh B Dh D 5.15 55 12.54 150, h F H1 17.69 5 QC 5562 kcal/kmol feed xD 1.000 x DC6 xB 0.0013316 7815 kcal/kmol of feed 709,520 kcal/h 995, 478 kcal/h New Problem in 3rd Edition. ASPENPlus. D = 988, L/D = 3, Peng Robinson, N QR 5 kcal/kg 3 5.15 55 415 778,863 kcal/h, Q R 1, 064,820 kcal/h, Q R QC 0.021 QC 12.54 150 G1. a.) Using NRTL. Q C b.) QC Fh F 5.15 98 415, h B Eq. (3-14), QC QR G2. 17.69 .3 1.211 10 40, N F 20 (arbitrary values in Radfrac) 7 4.4426 10 7 Btu h, 4.9852 10 7 Btu h 69 SPE 3rd Ed. Solution Manual Chapter 4 New Problems and new solutions are listed as new immediately after the solution number. These new problems are: 4A6, 4A13, 4C10, 4C16, 4D6, 4D9, 4D13, 4D15, 4D18, 4E4, 4E5, 4H1 to 4H3. 4A1. Point A: streams leaving stage 2 (L2, V2) Point B: vapor stream leaving stage 5 (V5) liquid stream leaving stage 4 (L4) Temp. of stage 2: know K y 2 / x 2 , can get T from temperature-composition graph or DePriester chart of K = f(T,p). Temp. in reboiler: same as above (reboiler is an equilibrium stage.) 4A2. a. Feed tray = .6, z = 0.51 (draw y = x line), yF =0.52, xF = 0.29. b. Two-phase feed. c. Higher 4A6. 4A7. 4A13. 4A14. New Problem in 3rd Edition. Answer is a. See Table 11-3 and 11-4 for a partial list. New Problem in 3rd Edition. A. Answer is b B. Answer is a C. Answer is a D. Answer is a E. Answer is b F. Answer is a G. Answer is b If feed stage is non-optimum, the feed conditions can be changed to have an optimum feed location. 4B2. a. Use columns in parallel. Lower F to each column allows for higher L/D and may be sufficient for product specifications. b. Add a reboiler instead of steam injection. Slightly less stages required and adds 1 stage. c. Make the condenser a partial instead of a total condenser. Adds a stage. d. Stop removing side stream. Fewer stages are now required for the same separation. e. Remove the intermediate reboiler or condenser and use it at bottom (or top) of column. Fewer stages, but all energy at highest T (reboilers) or lowest T (condenser) for same separation. Many other ideas will be useful in certain cases. 4C7. Easiest proof is for a saturated liquid feed. Show point z, y D satisfies operating equation. Solution: Op. Eq. y Substitute in y yD V But q 1.0, V Lz D, L L V x yD , x L V 1 xB z L V xB F, L V y D D Fz Bx B Which is external mass balance. B QED. 70 Can do similar for enriching column for a saturated vapor feed. 4.C10. New Problem in 3rd Edition. If we consider λ, the latent heat per mole to be a positive quantity, then QR V . With CMO and a saturated liquid feed V V (1 L / D) D , and then QR / D 4.C16. (1 L / D) . New Problem in 3rd Edition. Define a fictitious total feed FT , z T , h T FT F1 F1z1 F2 , z T F2 z 2 , hT F1h F1 F2 h F2 FT FT Intersection of top & bottom operating lines must occur at feed line for fictitious feed F T. (Draw a column with a single mixed feed to prove this.) This feed line goes through y x z T with slope where FT qT qT qT 1 H mix hT H mix h mix and H mix , h mix are saturated vapor and liquid enthalpies at feed stage of column with mixed feed. Given p, L/D, saturated liquid reflux, x D , x B A z0 B opt feed locations, z1 , z 2 , F1 , F2 , h F1 , h F2 z2 y zT z1 Plot top op line. Plot all 3 feed lines. Draw xB x b.) Does line from point A to y = x = qT q1F1 to obtain op. line. Connect pts B & C to get q 2 Fbot. 2 FT middle op. line. 71 check q T H mix hT H mix h mix F1h F1 H mix F2 h F2 F1 FT H mix F2 H mix h mix F1H F1 H mix F2 h F2 h mix FT where H mix & h mix are vapor and liquid enthalpies on feed stage of mixed column F1 H mix H mix qT h F1 F2 h mix H mix h F2 H mix h mix FT Usual CMO assumption is λ >> latent heat effects in either vapor or liquid. H mix h F1 H mix h F2 Then q1 and q2 H mix h mix H mix h mix F1q1 F2 q 2 Thus q T if CMO is valid. FT 4D1. L a. Top op line: y Intersects y x When x V xD x L V x D and L L D 1.25 V 1 L D 2.25 0.5555 0.9 0, y b. Bottom op line: y 1 1 L x L xD V L 0.4 1 x B , and Plot – See diagram L V B V B 1 3 V V V B 2 V V Intersects y = x = xB = 0.05 1 0.5 / 2 @y 1 x 0.683 this is convenient point to plot 32 c. See diagram for stages. Optimum feed stage is #2 above partial reboiler. 5 equilibrium stages + PR is more than sufficient. 72 d. Feed line goes from y = x = z = 0.55 to intersection of two operating lines. q Slope 1.0 or q 0.5 . q 1 This is a 2 phase feed which is ½ liquid & ½ vapor. 4D2. New Problem in 3rd Edition. Part a. y b. c. x zE .6 Slope L F V 1 V/F .63 1.703 V V V F .37 From Table 2-1, at 84.1° C y .5089 H hF liquid at 20°C and 40 mole % ethanol. q H h The pressure in Figure 2-4 is very close to 1.0 atm, thus it can be used, but must convert to wt frac. 73 Basis 1kmol feed. .4 kmole E .6 kmol Water From Figure 2-4 H q Alternate Solution: 40 mole %E .6 MW 46 0.63 wt frac. 10.8 kg 18 398 kcal kg , h 18.4 kg total 29.2 kg 75, h F 20 C 10 398 10 1.20 398 75 q 1.2 Slope 6 q 1 .2 40 mole % ethanol boils at 84.1°C (Table 2-1). Then if pick reference as saturated liquid at 40 mole % h F Cp,40%liq 20 84.1 h d. .4 MW 0, 63 wt%, H H 40%E 398 kcal kg , h CPvapor y E CPEvapor 65, h F 398 kcal kg C p vapor 120 84.1 y w CPw ,vapor Assume only 1st and 2nd terms in C P equations are significant. From Problem 2.D9 CPvapor .4 14.66 0.03758T .6 7.88 .0032T kcal/kmol T is C which simplifies to CPvapor 10.592 0.16952T 120 C p dT is equal to CPvapor @ Tavg For linear 84.1 Tavg 84.1 120 2 102.05 . Then C Pv ,avg 398 hF 398 15.149 q e. q q f. Flash kcal hF V F kg 10.592 12.32 120 84.1 15.147 398 65 333 f, L 13 12 , slope .7, 12.32 kcal kmol kcal 1 kmol kmol 27.2 kg 413.15 kcal kg 398 413.15 L L 0.16952 102.05 L F 0.045. F 12 q q 1 13 L 12 13 12 1 12 L 1 V F .3 3 V V F .7 7 F 13 See graph for feed lines. 74 Graph for 4.D2 75 4.D3*. a. Basis 1 mole feed. 0.4 moles EtOH × 46 = 18.4 kg EtOH 0.6 moles H2O × 18 = 10.8 kg H2O Total = 29.2 wt frac 18.4 / 29.2 0.63 wt frac EtOH Calculate all enthalpies at 0.63 wt frac. Hv = 395, HL = 65 (from Figure 2-4). hF is liquid at 200°C. Assume Cp,liq is not a function of T. Estimate, 46.1 23 h h L 60 C h 20 kcal C P ,liq .63 wt frac ~ 0.864 T 60 20 80 kg C Then h F h L 200 q Hv CPL 200 60 hF .864 200 60 h L 60 C 395 167.1 0.691, q 46.1 167.1 0.691 2.24 Hv hL 395 65 q 1 0.309 b. From Figure 2-4 at 50 wt% ethanol Hv = 446 and hL = 70. Since CMO is valid obtaining both enthalpies at 50% wt is OK. The feed is a liquid h F CP,liq TF Tref CP,liq 250 0 CP,liq CP,EtOH z EtOH CPw z w in Mole fractions Basis 100 kg solution 50 kg EtOH 46.07=1.085 kg/kgmole 50 kg W 18.016 2.775 kg moles Total 3.860 kg moles Avg M.W. 100 3.86 25.91 kg/kgmole Thus, zW = 0.719 and zE = 0.281 CP,liq 37.96 .281 18.0 .719 23.61 C P,liq in kcal kg C hF q hF 4.D4*. a. q Hv hL 446 70 q q 1 x z 228 0.58 H 25 300 H hF 0.911 . Then, 4.D4a H CPv 350 50 L L F where L L L 25.91 Hv q q MWAVG 250 C kg C h F 446 228 Slope slope 23.61 kcal H h q q 1 0.6. y b. c. 0.911 CP y=x 25 300 z 1.5 0.6 is intersection. L 0.6F. Then q feed line L 0.6F L / F .5 .6 0.6, and .7 1.5 F where L L F 5. q L F5 L F 1 5 , slope q q 1 16 76 4.D5*. h liq fL h reflux 3100 1500 h liq 17500 3100 L0 L0 D 1.1 V1 L0 D 1 2.1 H vap 1 fc L1 V2 Alternate Solution L1 L1 V2 4D6. q qL0 L1 0.524 1.1111 .524 1 f c L 0 V1 For subcooled reflux, Then, L 0 V1 0.1111 1 0.55 .111 .524 L1 H h0 17500 1500 L0 H h1 17500 3100 1.111 1.1111 L0 L1 D , L1 1.111 L0 L1 D L1 D 1 D L1 1.222 0.55 V2 2.222 New Problem in 3rd Edition. 1.111 1.1 D a) 175 F1 F2 1.2222 B D 85 75 .6 100 0.4 0.1 B 0.9D Solve simultaneously. D 84.375 and B 90.625 kmol hr b) Feed 1. q1 1, vertical at y x z1 0.6 Feed 2. 60% vapor = 40% liquid q 2 Slope feed line Bottom Op. Line q2 0.4 q2 1 .06 y L V x Slope L Middle Lx When x 0, y F2 L V 0.4 2 3 through y x z2 L V 1 x B . Through y V B 1 V B 0.4 x xB 32 B V F2 z 2 F2 z 2 Bx B Vy y L V x F2 z 2 Bx B V Bx B , Slope L V V Also intersects bot. op. line and Feed line 2. Do External Balances and Find D & B. Then V V/B B 2B 181.25 L V B 271.875 At feed 2, L .4F L or L L 0.4F 271.875 40 231.875 V V 0.6F 181.25 60 241.25 L V 0.961 40 9.625 x 0, y 0.126 Plot Middle Op Line. 241.25 77 y L V Know that y x Also, L L x F1 1 L xD V x D and gives through interaction Middle and Feed line 1. 231.875 75 156.875 and V L V 156.875 241.25 V 241.25 ; thus, 0.65 c) See graph. Graph for 4D6. 78 4.D7*. a. Plot top op. line: slope L V .8 , x L y .9. Step off stages as shown on Figure. V B 2 , x y x B 0.13. Step off stages V (reboiler is an equil stage). Find y2 = 0.515. c. Total # stages = 8 + reboiler Optimum feed plate = 7 or 8 from top. Plot feed line. Goes through x = y = z = .3, and intersection of two operating lines. 9 q slope gives q = 0.692. 4 q 1 b. Plot bottom op. line: slope 1 1 xD 4.D8*. The equilibrium data is plotted and shown in the figure. q 0.692 and q q 1 9 4 From the Solution to 4.D7c, a. total reflux. Need 5 2/3 stages (from large graph) – 5.9 from small diagram shown. .9 .462 b. L V min 0.660 (see figure) .9 .236 L V min L D min 1.941 1 L V min c. In 4.D7, L D act L V 1 L V .8 .2 L Dact Multiplier Multiplier = 4/1.941 = 2.06 4 L D min 79 d. Operating lines are same as in Problem 4.D7. Start at bottom of column. Reboiler is an equilibrium contact. Then use E MV AB AC 0.75 (illustrated for the first real stage) Stage 1 is the optimum feed stage. 11 real stages plus a partial reboiler are sufficient. 4D9. New Problem in 3rd Edition. a) F1 F2 D B F1z1 F2 z 2 100 F1 Dx B Bx B F1 .42 Solve simultaneously, B 113.68, F1 b) L D L 1 2 , 80 B F1 B 20 18 .66 80 0.04 B 93.68 L L D 12 1 V 1 L D 32 3 L D 40, V L D 120 D V V 120 Saturated Liquid Feed L L F1 40 93.68 133.68, L V c) Top Op. Line – Normal: y Through y Bottom – Normal: y x L V x 1.114 1 L V xD x D , Slope 1 3, y intercept L V x L V 1 x B , through y Also through intersection, F2 feed line and middle op. line. 2 3 x .66 .44 xB Feed line F2 slope L F2 .7 VF2 .3 80 Middle y Slope 0, y Dx D xD F1z1 F1z1 80 .66 93.68 .42 0.11212 V 120 d)Opt. Feed F2 stage 1 from bottom, Opt feed F1 , Stage 2. 4 stages + PR more than sufficient. Also, x D (or do around bottom) V V L V . Through intersection feed line F1 and top op. line. L V x Graph for 4D9. 81 4.D10*. Operating Line y L V x 1 L x D , where V Thus, operating line is y = .8x + .192 y a. Equilibrium is x or x1 1 y L L D 4 V 1 L D 5 .8 y1 1.79 .76y1 Start with y1 = .96 = x D Equilibrium: x1 Operating: y2 Equilibrium: x2 Operating: y3 y1 .96 1.76 .76y1 1.76 .76 .96 .8x .192 .8 .9317 y2 x y 1.0 1.0 .192 1.76 .76 .93736 .8x 2 .192 .8 .89476 .9 .9406 0.93736 .93736 1.76 .76y 2 b. Generate equilibrium data from: y 0.9317 .192 0.89476 0.9078 1.76x 1 .76x .8 .7 .8756 .8042 .6 .7253 .5 .6377 .4 .5399 Plot equilibrium curve and operating line. (See Figure). Slope = L/V = .8, y intercept (x = 0) = 0.192, y = x = x D = 0.96. Find x 6 = 0.660. 4.D11. a) Same as 4.D2 part g. q = 1.0668, slope feed line = 15.97. b) Top y L V x 1 L V x D goes through y = x = x D = 0.99 L V L D 1 L D Feed line: Slope 0.6969 @ x = 0 q q 1 , y y = (1-L/V) x D = (1-0.6969) 0.99 = 0.300 x z 0.6 82 Bottom Op line: L yV Lx Sy M,S Bx B But y M,S 0 (Pure steam) With CMO B L V S B y L V x L V xB y= 0, x = x B . Also goes through intersection of feed line and top op.line. Stages: Accuracy at top is not real high. (Expand diagram for more occupancy). As drawn opt. Feed = #6. Total = 9 is sufficient, c. L V min Slope L D 0.99 0.57 0.99 0 L V min 1 L V 0.4242 0.4242 min 1 0.4242 0.73684 Actual L/D is 3.12 × this value. 83 4.D12. L V y L V x L D 1 L D 1 L V Bottom slope 34 slope. Top op line goes throug y xD @ x L V 0, y .25 .998 B 1245167 S 1044168 1.19 x xD 0.998 0.2495 From Soln to 3.D9 or from graph. 1.169 Feed line is vertical at z = 0.6. Can also plot top and feed lines, and then find bottom from 2 points y 0, x x B & intersect top & feed . For accuracy – Use expanded portions near distillate & near bottoms. From Table 2-7 from (x = .95, y = .979) Draw straight line to (x = 1.0, y = 1.0) From (x = 0, y = 0) draw straight line to (x = 0.02, y = 0.134) or (x = 0.01, y = 0.067) Opt feed = # 9 from top. Need 13 equilibrium stages. 84 85 4.D13. New Problem in 3rd Edition. a.) L b.) See figure. V L See Figure 0.665 0.95 0.30 0.95 MIN L L V 0.4385 0.4385 0.7808 D MIN V L 1 L V 0.5615 L L L D 1.5616 c.) 2.0 L D MIN 1.5616 , D V 1 L D 2.5616 L y intersect 1 V yD 0.3709 . Top operating line y Goes through y Bottom y L V x L V 0.6096 L x V x yD 1 L V 0.95 yD 1 xB Goes through y x x B & intersection top operating line & feed line. Feed Line: Vertical (saturated liquid, q = 1). Through y x z 0.3 Plot & Step off stages. Optimal feed = 5 below PC. 6 + PC + PR more than sufficient. 0.85 0.025 d.) Slope bottom: See figure for parts c & d. L V 1.941 0.45 0.025 1 1 V B V L V 1.0625 . L V 1 0.941 86 Graph for problem 4.D13. 87 4.D14a. 88 New S.S. External M.B. S = B Sys = BxB . Since yS = 0 (pure water) xB = 0 B S 4.D14b. Two approaches to answer. Common sense is all methanol leaks out and x MA McCabe-Thiele diagram: This is enriching column with z horizontal feed line is at x x M,b y intercept L V x L 1 V 1 L V yD Bottom operating line y 0 . Intersection top op. line and 0 , which is also a pinch point. Thus x M,d 4.D15. New Problem in 3rd Edition. Saturated liquid. q Top operating line y ys y D , Slope q q 1 L L D 2 V 1 L D 3 1 3 0.6885 L V x 1, 0. 0.2295 and y 0 also. , feed line vertical @ z x L V 1 x B goes through y .3 . yD x xB And goes through interaction feed line and top operating line. See graph. Optimum feed is stage 2 below partial condenser. Partial condenser + Partial reboiler + 3 equilibrium stages are more than enough to obtain separation. 89 Graph for problem 4.D15. 90 4.D16*. q L-L Hv hF F Hv hL Using 32°F = 0°C as reference T, h F Hv hL 4033.4 Btu/lbmole. at feed conditions. . Approx. .4 11369 .6 13572 12691 Btu/lbmole For approx. temperature of feed stage, do bubble pt. calc. y1 1 K1x1 K1z1 Pick T = 48°C (~ 40% of way between boiling pts.) K C5 1.5, K C6 .54, K1x1 1.5 .4 .54 .6 K C5 Tnew = .54 .92 K C5 50 C Hv =.594, Tnew 1.6, Note : CP feed,liq Hv q 1.6 .4 .584 .6 .99 Close enough. , 50 C 122 F feed Hv 50 C K1 x 1 h L 50 C .92 CPfeed ,Liq 122 46.9 122 5721.8 46.9 is from Prob. 3-D6. 5721.8 12691 18412.8 Btu/lbmole HV hF 18412.8 4033.4 HV hL 12691 1.133 Note: h F is from Prob. 3.D6. 4.D17. L Top Op. Line: y x L V L D V 1 L D x L 1 V 7 2 0, y 1 The vertical line at x xS 9 2 L x D , goes through y x xD 0.9 7 9 2 xD .9 =0.2 V 9 Plot Top. Step off 2 stages. Find x S ~ 0.81 0.81 is the withdrawal line. Bot. Op. Line intersects Top at x xS . Also know it intersects feed line at x F External Balances Fz Dx D x B (unknown) D B S Don’t know D, B, or x B . Bx B Sx S Feed enters as saturated vapor. Thus q 0&V F Bottoms leaves an equilibrium contact, it is saturated liquid L Do flow balances V F 100 V V 100 since S is removed as saturated liquid. B 91 L L V V 7 9 100 L L S B L 62.777 Fz Dx D Sx S xB 77.777. D 77.7777 15 60 V L 100 77.777 62.7777. L V 22.222 0.9 B Plot. Op. line Step off stages. 9 is more than sufficient. 4.D18. New Problem in 3rd Edition. Feed F1 : z1 62.7777 62.7777 100 15 0.81 22.222 0.6278 0.444 0.6, saturated liquid, q 1, q / (q 1) 92 Feed F2 : z 2 0.4, 80% vapor hence 20% liquid q q LF / F 0.2F / F .2 .2 14 q 1 .8 Part a.) Bottom operating line goes through point, y x xB 0.04 Max L V to point intersection feed F2 line and equilibrium curve. L Slope 1.0 .04 V V B Part b. L V L min F1 1 1 V L V 1 1.2326 100 .2 80 116 L L F2 L V B and V B 1.5 L 1.5B B L B 116 46.4 D V V VF2 100 V 133.6 Check overall balance 116 B V L 0.8113 100 L 116 2.2326 .47 .04 max 46.4 2.5 69.6 116 L V 69.6 .8 80 69.6 1.66667 133.6 0.7485 F1 F2 D B 180 133.6 46.4 180.0 OK To find y D use MVC mass balance F1z1 or yD F2 z 2 F1z1 Dy D F2 z 2 Bx B Bx B 100 .6 D 80 .4 133.6 Actual bottom op. line: y L V x L V 46.4 0.4 0.675 1 xB L V B V B 1 2.5 5 V V V B 1.5 3 Goes through y x x B 0.04 , Slope 5 3 2nd point y = 1, x = 0.616 (this was arbitrarily found by setting y = 1.) Plot bottom op. line Dy D F1 z1 L Top Op. line: yV F1z1 Lx Dy D . y x V V Goes through intersection feed line for F 2 and bot. op. line. Does NOT go through y x yD . Since D & F, passing streams, Point z1 , y D is on op. line. 93 Figure for 4D18 4.D19*. B = 0. Then from external balance F = D + B must have D = F = 1000. Acetone balance becomes Fz Dx D or x D z 0.75 . L To predict x B need operating lines. Top: y V L L V 2 V 1 L D 3 x and y L 1 V x xD xD .75 94 Bottom: L V 1.0 . Thus y = x is operating line. From Figure x B Feed line can be calculated but is not needed. 4.D20*. 0.01 to 0.02 To use enthalpy composition diagram change to wt. fractions. Basis = 1 kg mole Distillate: Weight Fractions: Feed: Weight Fractions: Bottoms: Weight Fractions: 0.8 ETOH = (.8)(46.07) = 36,856 0.2 Water = (.2)(18.016) = 3.6032 Total = 40.459 EtOH = .911, Water = .089 0.32 (EtOH) = (.32)(46.07) = 14.7424 0.68 (W) = (.68)(18.016) = 12.25088 Total = 26.993 EtOH = .546, W = .454 0.04 EtOH = (.04)(46.07) = 1.8428 0.96W = (.96)(18.016) = 17.295 Total = 19.1378 EtOH = .0963, W = .9037 Condenser Energy Balance is V1H1 Lo D Qc Qc D ho H1 Lo h o Dh D which can be solved for L o D . 1 From chart: h D 54 Kcal/kg and H1 285 Kcal/kg Need D in weight units. Convert feed to weight units. 100 kgmoles Ethanol: .32 46.07 1474.24 kg/hr hr Water: (100)(.68)(18.016) = 1225 kg/hr Total: F = 2699.328 kg/hr 95 F z xB Then, D Then, Lo D xD 2699.328 .0963 xB 1489.93 kg/hr .911 .0963 Q D ho H1 1 2, 065,113 1489.98 54 285 1 5.0 Now do usual McCabe-Thiele analysis using molar units. Note L o D is the same in mass and molar units. L L L L D Top Operating Line: y x 1 x D and V V V 1 L D L 5 ; x y xD .8, y int ercept x V 6 Feed Line: Goes through y = x = z = .32 Weight fraction of feed = .546. Then, h f q HV hF 430.7 15 HV hL 430.7 69 Bottom Operating Line: y x L V V intersection top operating line and feed line. L 1 V 15 kcal/kg, H v 1.149 Slope L 0 xD 1 5 6 .8 430.7, and h1k1 q 1.149 q 1 1.149 1 1 x B . Goes through x .133 69 . 7.711 y x B and From Figure need about 8 equilibrium contacts including a reboiler. Stage 1 above reboiler is the optimum feed stage location. 96 4.D21. Feed 1: q1 Feed 2: q 2 Top: 0 , slope feed line = 0 0.9 , slope q2 q2 1 L L D 1.375 V 1 L D 2.375 Goes through y x 0.9 0.1 L 0.579 , y V x D , When x = 0, y 1 Since F1 is saturated vapor, V Bottom: x 9 L 1 L V F1 V xD xD . 0.40 100 kmoles/hr L .1 F2 At feed F2 D B V 0.1F2 L L 0.9 F2 100 8 108 V .9 F2 L V L V V 0.579 108 62.532 V L 108 45.46 F1 F2 D 100 80 45.46 134.532 But B is saturated liquid. Check L L .9F2 L B 134.532 62.532 0.9 80 134.532, OK Draw top op line. Intersects with F2 feed line. Then draw bottom op line with slope L V 1.3453 . Intersection bottom op & q. line gives x B Check F1z1 F2 z 2 Dx D B Check External MB 180 F1 F1z1 F2 z 2 F2 x B or x B D B Dx D 0.09 . 20 36 43.187 134.532 0.095 , OK 45.46 134.53 179.99 , OK Bx B 56 20.0 36.0 45.46 0.95 134.53 0.095 55.97 OK See McCabe-Thiele diagram: Optimum feed = 5, 7 equilibrium stages (6.65) more than sufficient. fraction ab/ac 0.65 97 4.D22*. Around top of column mass balances are: L D Solving, L 0.75, y x 0 x D yD Vy Cx W C xw V V V For pure entering water, x W 1.0 . With saturated liquid entering, L = C. Then from overall balance, V = D. Thus L/V = C/D = ¾ and D/V = 1.0. Operating equation becomes y 0.75x .92 .75 0.75x .17 Slope y V C and Lx Dy D 0.17, y x 1 0.92 yD , y x 0.68 Not y D 98 4.D23*. Note L/V ≠ C/D since C is subcooled. Let c = amount condensed. The energy required to heat stream W to the boiling point must come from this condensation. That is, H h c h hW C c h hW Cp C T C 18 212 100 H h L C c 1.1154C V D c D 0.1154C 17465.4 In addition, C/D = ¾ or D/C = 4/3. L 1.1154C 1.1154 0.1154C 1.1154 0.77 V D .1154C 4 3 .1154 4 3 .1154 This compares to L/V = 0.75 if entering water is a saturated liquid. Very little effect since λ is very large. L L D 3.25 0.7647 V 1 L D 4.25 Goes through y x When x 0, y 1 L V yD L L Bottom Op Line: y V yD x 0.85 V 0.20 1 xB Through y x x D 0.05 and intersects top op line @ feed line Opt. Feed is #4 below partial condenser – see diagram. Need 6 equil stages + P.C. (an equil. contact) Note – Commercial columns usually operate much closer to minimum reflux ratio and have many more stages. b.) L V 0.85 0.376 min 0.85 0 0.558 , L V L D min 1 Min L V 1.26 Min c.) Total reflux 5 stages + PC sufficient or 4 3 4 equil contacts + PC = 5 3 4 eq. contacts ab 7.6mm where fraction 0.74 or .75 ac 10.3mm 99 100 4.D25. a. 99.9% methanol is essentially pure. Pure MeOH boils 64.5°C. 1 fc Lo D L Eq. (4-66) 1 where f c CPL TBP Treflux V2 1 1 f c L o D For pure MeOH, CPL CPL fc 0.07586 16.83 10 5 T , average (40 + 64.5)/2 = 52.25°C 0.084654 kJ gmole , 0.084654 24.5 35.27 MeOH 35.27 kJ mole , TBP 0.058804 , 1.058804 1.2 L1 V2 64.5 1 1.058804 1.2 0.5596 101 b. 4.D26. L L D 1.2 0.5454 or 2.59% more reflux with 24.5°C cooling! V 1 L D 2.2 subcooling not important. a) 50% feed: q L L F, L L amt vaporized Usually L F 20 1 F q 1 20 0.05 , Slope = L F 0.0476 20 20 q 1 1 20 1 1.05 35% feed: Saturated liquid – vertical feed line. Plot both feed lines. The one with lowest intersection point with equilibrium curve will normally control V B q L min L V Find L V max . Then V B 1 0.1 slope max b) 0.46 0.1 L V L V L Bot. y V y L x 1, x y V L V x 3 V L min 1 V 2.497 , V B B 1 min 2.497 1.0 0.6681 2.0043 min V B V B 1 3.0043 V V B 2.0043 L V x B or x 1 max V 1 x B . Goes through y 1 L V x 1 1.49892 slope x B with total reboiler L V 1 xB / L V 1 1 1 0.49892 0.1 0.6338 1.49892 Intersects feed line with 50% feed first. Middle operating line: Do mass balance around bottom of column. Mass balance intersects streams L & V (in column), F50% and B. yV L x F50% z50% Bx B y L x F50 z 50 Bx B V V Intersects bottom operating line & 50% feed line. @ x 0, y (F50 z 50 Bx B ) / V , Slope q 50 For 50% feed, L V 0.05 (L L ) / F50 . External balances: 250 F1 F2 D B and F1z50 F2 z35 Dy D Bx B Find D = 103.333 and B = 146.666 moles/min Since V B 2.0034, V 293.96 and L V B 440.63 Then from q 50% : L V L F50 B q 50 F50 L 0.05 100 445.63 100 146.666 440.63 398.964 , Slope 445.63 L V 1.11698 y intercept (x = 0), y [ 100 .5 146.666 0.1 ] / 398.964 0.0885 Top Intersects feed line for 35% feed and middle op. line and goes through y x y D 0.85 102 EQ Stages 0.75 = E ML = actual change liquid actual op change at equilibrium eq. change Figure for 4D26 103 4.D27*. y Top Op. Eqn: L V x 1 L L D 1 V 1 L D 2 L L L F L V xD , y intercept 1 F 4 F 1 L V L xD q .46, y x xD .92 54 5 , y x z .48 14 Bx B L Middle: V B L S , V y Bx B L x Sy s y s 0 or y x V V Does not intersect at y x x B or at y 0, x x B . Does intersect top op. line at feed line. Need another point. L V B V B 1 1.5 L L Bottom: 3, y x x B 0.08 y x 1 xB , V B V B .5 V V The steam is another feed to the column: Sat’d vapor q = 0, q/(q-1) = 0, y = x = z = ys = 0. Middle Op. Line intersects this steam at bottom op. line (see figure). Feed: q F 5 4 , slope q 1 This problem is a two-feed column with the lower feed (steam) input at a non-optimum feed stage. Otimum feed is 3rd above partial reboiler. Need 5.6 equilibrium stages plus PR. This problem was 4.D35 in 2nd edition. L L Stripping Section: y x 1 xB, y x xB V V 4.D28. 0.02 . Feed line is vertical 104 L V 1.0 0.02 max 0.81 0.02 V B 1 Op line y 1.24, 1, x= 1.5 L V V B 1 xB V B 5800 / 0.675 min L 6.25, L V 1 .16 .02 1 V L V max 1 1 0.24 V B V B 1 6.25 1 V V B 6.25 min L V 1.16 Overall Balance: 10,000 = F = D + B 6000 Fz Dy D Bx B D .695 D V 4.167 1.16 0.865 . Intersection Op & feed lines is y D B .02 6000 .695D .02D 200 8592.6 kgmoles/day, B 1407.4 . Need a use for impure distillate. Figure for 4.D28 105 4.D29. L D 3, L 3 4, L 1 1 xD V V 4 Step off 3 stages on top op line. Find x S on middle op. line 0.9 0.225 0.76 . Point on top op line at x S 0.76 is also xD 3 xs, S = 15 V´ F = 100 L´ F=D+B+S 6 z = .6 Fz Dx D Bx B Sx S Solve simultaneously D = 50.125, B = 34.875 10 x6 = .1 In top: L = 3D = 150.375 and V = L + D = 200.500 Since saturated liquid withdrawn, V´ = V = 200.500 and L´ = L – S = 150.375 – 15 = 135.375 L V Middle op. line slope Middle Op line: yV 135.375 200.5 L x Sx S y L V x 0.6752 Dx D Sx S Dx D V Feed z = 0.6, 20% vapor = 80% liquid Feed line slope q q 1 0.8 0.4 , when x 0, y 11.4 45.1125 200.5 0.2819 q = 0.8. 4 106 4.D30*. a. Subcooled Reflux: c 1 3 Lo 500 , Lo Lo D 3 V1 1 Lo D 4 L1 V2 Substituting in values, we have Step off two stages. x2 , L1 4 Lo 3 1 V1 Lo 3 L1 1.0 L2 0.62 1 14 xS 4 3 1 Lo c and V2 V1 c L o V1 1 Lo 3 V1 1 4 54 5 , Top op. line y x xD 0.92 yS 107 Mixed feed to column: F S Solving for mixed feed, z M FM h F (sat’d vapor), h FM External Balances: F = D + B, Fz Lo 3D Middle: L 1500, and L L S FM z M 0.52667 Energy balance for mixed feed, Fh F Since H s 1500 , Fz SyS 4 3 Lo SHS HS Dx D FM H FM h F (sat’d vapor), and q FM 0 (horizontal). Bx B , Solving simultaneously D = 500 & B = 500 2000 (subcooled reflux), V 2000 500 1500 , V V L D 2500 L 1500 3 V 2500 5 2500 , Slope .6 Intersects Top Op. line at x S Plot Bot. from y x x B to intersection feed line and middle Step off stages (see figure). Need 4 8/9 equilibrium stages. b. Mass balances for mixed feed injection: V FM V V FM V 2500 1500 1000 , V B 1000 500 2 4.D31*. Was problem 4.D36 in 2nd edition. Solution is trial & error. Need to pick L/V. Final answer shown in figure. L .63 .385 0.245 .389 V .63 0.63 L V L 0.389 .636 1 L V D 0.611 Note feed stage is not optimum. 108 Figure for problem 4D31 External Balance: F = B = 50, and Fz 4.D32*. 4.D33*. a. L V .75 .452 min L b. L D act L V min 0.4 . 0.659 1 L V 1.318. L V 0, x min L D 1 L D Top operating Line through y Bottom through y z 0.397 (tangent pinch) .75 D Bx B . Thus x B yB x 0.569 yD 0.75 0.1 and intersection feed and top operating lines. L L F .25F, q 5 4, slope q q 1 5 Optimum feed is 3rd from bottom. Need 9 real stages plus partial condenser (see figure). c. From figure slope of bottom operating line L V 2.025 Feed: Since saturated steam and CMO valid, B S L V Also have mass balances, S + F = B + D SyS Fz Bx B Dy D ys 0 Solve 3 eqs. simultaneously. S = 760 lbmoles/hr = 13,680 lb steam/hr. 109 4.D34*. Trial and Error, Feed: L L F F 2, q 3 2, Slope 3. Figure for 4.D34 4-E1. Find (L/V)min (see diagram) 0.95 0.613 L V min 0.95 0 0.3547 , L V min L D min 1 L V min 0.5497 110 L D L 2 1.0994 , D act min External M.B. F = D + B, Fz or Eq. (4.3) D z xB xD Dx D F xB L V L D act Bx B 0.6 0.025 0.95 0.025 100 D L L V V´ 62.162 L h , B = F – D = 37.838 L D D 68.030 V = L + D = 130.192 F At feed V L″ V kgmol L L´ V″ 0.5237 1 L D P= xP L V (sat’d liquid) L F 168.030 B Top op line y 1st middle L V x y 1 L F x D normal . At x = 0, y = 0.4525 L x L 1 x B looks like usual bottom! V V Goes through y x x B , and intersection top & feed line. Slope L 168.030 1.2906 130.192 At pump-around return, V V 130.192 L L P 208.030, L V V 208.030 130.192 1.5979 At pump-around removal, V V 130.192 , L L P L 168.030 Check at bottom L V B or 130.192 168.030 37.838 , OK L L Bottom Op line y x 1 x B , Same as first middle!!! V V Step off P.R. stage 1 & 2 above. x P is liquid from stage 2, x P 0.335 . Vertical line at x P is withdrawal line for pump-around and it is feed-line for return of pump-around. 2nd middle op line slope L V intersects x P withdrawal & feed line where bottom & 1st middle intersect. 111 Using MB: yV When y 4-E2*. Feed: q Px P 0, x Bx B P Bx B L V 40 x P V xP Bx B V 32838 0.025 .335 0.0690 L L 208.030 208.030 Draw, 2nd middle – Step off stage 2 & start 3. 3 is op loc. for feed and where pump-around is returned. Need PR + 6 equil stages. (Actually 5 and a large fraction) L L F xP Lx, y , L L 1.5F, q 3 2 , slope q q 1 Bottom op. line: Since steam is saturated vapor S V and B L Thus, 1 S B L V 1.2 . Operating line goes through y 0, x 3 xB 0.015 Middle op. line: V B Side L S or V L S B Side V y Bx B Side x side L x SyS Since yS 0 this is, y L x Bx B Side x side V V Side stream is removed as a saturated liquid so q = 1. Step off two stages (see figure) and find x side 0.0975 112 Find slope: V L Side B V S, B L Side Side B 1 0.4 1 S SB 0.833 1.68 slope Draw in the middle operating line. Step off 4 stages. Trial and error to find x D for final result). .85 (see figure 4-E3*. This column has 4 sections. The exact shape is not known ahead of time. Plot top operating line L L D 1.86 L L 0.650, y x 1 xD V 1 L D 2.86 V V 1 L xD .35 .8 .28, y x x D 0.8 V Step off 8 stages and find x S 0.495 yS . Feed line for this vapor is horizontal. Feed line for feed to column is vertical at z = 0.32. From figure the feed is injected below the liquid withdrawal and above vapor stream from intermediate reboiler. Can now calculate flows in each section of columns. Overall Balance: Fz Dx D F D x B 113 D Flows: L L D D F z xB xD .3 1000 xB .78 385 716.1, V L D 1101.1 V L L S 258.8, L V L L L V ,V V S 643.8 0.235 F 1258.8, L V 1.143 L V 1.955 (this is a check) To plot: From stage 8 draw line of slope L´/V´. From intersection of first intermediate operating line and feed line draw line of slope L″/V″. Draw line from intersection of second intermediate operating line with line y y s to y x x B 0.02 . Check if slope L V 1.955 . Optimum feed is 10th below condenser while vapor from intermediate reboiler is returned on 11 th stage. Need 12 ½ stages. Note: Small differences in stepping off stages may change column geometry. 4.E.4. New Problem in 3rd Edition. External Balance. a) F D B, Fz Dx D Bx B D b) z xB xD xB F .25 .025 .9 .025 V B 1.0, V B 100 25.7 kmol h , B 74.3 kmol h 74.3 L V B 148.6, L V 2.0 At feed, amount condensed = C = F/10 = 10 1 L L F C L F F 148.6 110 10 V V C 74.3 10 64.3 38.6 114 At stage 2 L L L R and V L L0 64.3 21.4 L 21.4 V LR 64.3 L L y c) Top Op. line: V 0.333 1 3 38.6 21.43 17.17 kgmoles hour L V LR x D V D L0 L xD y V x, y x L 1 V LR D V L xD xD x D sin ce V L LR D Envelope for top V L LR Slope L V 1 3, y x x x D 0.9 L 0,y 1 xD V 0.6 Plot L Middle: y Bottom: y V L V x y x Slope x 1 L V x D . Slope 38.6 64.3 0.600 y x xD 0.9 L V 1 xB xB L V V B 1 2 V B Now have somewhat redundant information. Can plot bottom. Intersection bottom and feed line should also be on middle. – Or use this pt to find middle or bottom op. line. From graph: Opt. Feed = #4. Need 6 stages + P.R. 115 Graph for 4.E.4. 4.E.5. New Problem in 3rd Edition. Bot. Op. Line: External M.B.: F D y V B At feed stage: L 687.5 V 937.5 V B V V x V L V D B and Fz 250 kmol day , B L L L V 1 2.25 9 4 9 V B 1.25 54 5 1 xB, y Dx D x Bx B , 750 kmol day , V x B , Slope D F z xB xD xB V B B L V .3 0.10 .2 1 0.90 0.10 .8 4 1.25 750 937.5 kmol day 937.50 750 1687.5 kmol day V V 937.5, L L F or L L F 1687.5 1000 687.5 0.733333 116 MB: L x Dy D V y, D V L , y L Top op. line: y L V x L 1 S L V 487.5, V yD V 1 L yD V V Goes through y x y D , and intersects feed and bot. op. lines. At side withdrawal: 687.5 L L , V S V or V 937.5 200 737.5 Op line by intermediate condenser: L D V S Dy D Sx S L L x Dy D V y Sx S or y x V V 687.5 Find from intersection L V op line @ y yS plus slope 0.932 or intersection 737.5 top op line and x x S At side stream feed point: L x 737.5. Thus, Can draw, yint ercept L 487.5 V 737.5 1 .661 .9 0.661 0.305 117 Graph for 4.E5. 4-F1. 970.33 L V Since bottoms are very pure h B HS H Equil v h water @ 212°F 1381.4 1192 (in column) Extra heat 189.4 Btu/lb S B Since y ≈ x, MW are same 118 Must vaporize material in column. extra heat MW 189.4 v S S MW 970.33 B L v, V 0.1952S S v L B v BS vS 2 0.1952 V S v 1 vS 1 0.1952 If super heat not included L V BS 1.837 2 , which is incorrect. 4-F3*. An approximate check is to compare molar latent heats of vaporization. Data is available in Perry’s and in Himmelblau. a. See Example 4-4. b. isopropanol λ = 159.35 cal/g. MW = 60.09, λ = 9.575 kcal/mole. Water λ = 9.72 kcal/mole. CMO is OK. c. CMO is not valid. AA 5.83 kcal / gmole, W 9.72 d. nC4. λ = 5.331 kcal/mole, MW = 58.12. λ = 0.0917 kcal/g nC5. λ = 6.16 kcal/mole, MW = 72.15. λ = 0.0854 kcal/g Constant mass overflow is closer than constant molar overflow. e. benzene. λ = 7.353 kcal/mole, MW = 78.11, λ = 0.0941 kcal/g toluene. λ = 8.00 kcal/mole, MW = 92.13, λ = 0.0868 kcal/g CMO is within about 6%. 4G1. a*. Answer should be close, but not identical, to result obtained in Example 4-4. 4G2. Was 4.G4 in 2nd edition. Used Peng-Robinson. QC QR 44, 437,300 Btu/hr, 49,859, 400 Btu/hr. Optimum N F 17 & N 27 (Total condenser is #1) x D 0.9992 and x B 0.00187 . 4G3*. See answers to selected problems in back of book. 4.H.1. New Problem in 3rd Edition. Use VBA program in Appendix B of Chapter 4. xd 0.995 xb 0.011 F 250 z 0.4 L/D 3 q 0 feed stg 4 partial reboiler total condenser Ethanol-water Prob. 4H1. VLE 6th 5th 4th 3rd 2nd 1st constant -24.75 85.897 -118.03 82.079 -30.803 6.6048 0 yeqatxint 0.584177 yint 0.4 xint 0.2016667 stage x y 1 0.011 0.069033 2 0.039445 0.217358 3 0.112146 0.451872 4 0.227091 0.607193 5 0.477924 0.769849 6 0.694798 0.867005 7 0.824341 0.919132 8 0.893842 0.954863 9 0.941484 0.979257 119 10 11 0.974009 0.992216 0.991288 0.996557 4.H.2. New Problem in 3rd Edition. The VBA program is in the result is: xd 0.7 xb 0.0001 F 1000 L/D 6.94 q 0 partial reboiler total condenser Ethanol-water VLE 6th 5th 4th 3rd 2nd 1st -47.949 161.42 -212.43 138.68 -46.65 7.9322 yeqatxint 0.099219 yint 0.1 xint 0.0135447 stage x y Reflux rate too low Reflux rate too low Appendix B of Chapter 4. With L/D = 6.94 z 0.1 feed stg 28 Prob. 4H3. constant 0 With L/D = 6.95 the result is given below. With feed stages below 85 the feed stage was too low. xd 0.7 xb 0.0001 F 1000 z 0.1 L/D 6.95 q 0 feed stg 85 partial reboiler total condenser Ethanol-water Prob. 4H3. VLE 6th 5th 4th 3rd 2nd 1st constant -47.949 161.42 -212.43 138.68 -46.65 7.9322 0 yeqatxint 0.100057 yint 0.1 xint 0.0136691 stage x y 1 0.0001 0.000793 2 0.000194 0.001538 3 0.000295 0.002338 4 0.000404 0.003197 5 0.000521 0.004117 6 0.000646 0.005102 7 0.000779 0.006154 8 0.000922 0.007277 9 0.001075 0.008472 10 0.001237 0.009742 11 0.00141 0.011089 12 0.001593 0.012515 13 0.001786 0.014021 14 0.001991 0.015608 15 0.002206 0.017276 16 0.002433 0.019025 17 0.00267 0.020853 18 0.002919 0.022758 19 0.003178 0.024739 20 0.003447 0.026791 21 0.003725 0.02891 22 0.004013 0.03109 23 0.004309 0.033327 24 0.004613 0.035613 25 0.004924 0.037941 26 0.00524 0.040302 27 0.005561 0.042689 28 0.005885 0.045091 120 29 30 31 32 33 34 35 36 37 38 39 40 41 42 43 44 45 46 47 48 49 50 51 52 53 54 55 56 57 58 59 60 61 62 63 64 65 66 67 68 69 70 71 72 73 74 75 76 77 78 0.006211 0.006538 0.006865 0.00719 0.007513 0.007831 0.008144 0.00845 0.00875 0.009041 0.009323 0.009595 0.009858 0.010109 0.01035 0.010579 0.010797 0.011004 0.0112 0.011384 0.011558 0.011721 0.011874 0.012018 0.012151 0.012276 0.012392 0.0125 0.0126 0.012693 0.012779 0.012858 0.012932 0.012999 0.013062 0.01312 0.013173 0.013222 0.013267 0.013308 0.013346 0.013381 0.013413 0.013442 0.013469 0.013494 0.013516 0.013537 0.013556 0.013573 0.0475 0.049907 0.052301 0.054674 0.057017 0.059321 0.061579 0.063782 0.065925 0.068002 0.070008 0.071938 0.07379 0.075561 0.077251 0.078857 0.08038 0.08182 0.083179 0.084459 0.085661 0.086787 0.087841 0.088826 0.089743 0.090598 0.091392 0.092129 0.092812 0.093445 0.09403 0.094571 0.09507 0.095531 0.095955 0.096346 0.096705 0.097036 0.09734 0.09762 0.097876 0.098112 0.098328 0.098526 0.098708 0.098874 0.099027 0.099167 0.099295 0.099412 121 79 80 81 82 83 84 85 86 87 88 89 90 91 92 93 0.013589 0.013604 0.013617 0.013629 0.013641 0.013651 0.01366 0.013665 0.013706 0.014018 0.016416 0.034534 0.155188 0.490181 0.646064 0.099519 0.099618 0.099707 0.09979 0.099865 0.099934 0.099997 0.100032 0.100305 0.102401 0.11824 0.223718 0.516574 0.652848 0.724878 4.H.3. New Problem in 3rd Edition. The Spreadsheet is: xd 0.7 xb 0.0001 F 1000 z 0.17 Multiplier 1.05 q 0.5 feed stg 17 partial reboiler total condenser Ethanol-water Problem 4.H4. VLE 6th 5th 4th 3rd 2nd 1st constant -47.949 161.42 -212.43 138.68 -46.65 7.9322 0 L/Dmin 1.687377 L/Vmin 0.62789 L/D 1.771746 L/V 0.639217 stage x y 1 0.0001 0.000793 2 0.000229 0.001812 3 0.000418 0.003309 4 0.000696 0.0055 5 0.001104 0.008697 6 0.001698 0.013331 7 0.002559 0.019994 8 0.003797 0.029452 9 0.005555 0.042644 10 0.008006 0.060585 11 0.01134 0.08415 12 0.015719 0.113686 13 0.021208 0.148522 14 0.027681 0.186647 15 0.034766 0.224911 16 0.041877 0.259918 17 0.048382 0.28916 18 0.057276 0.325158 19 0.113592 0.469947 20 0.340102 0.575494 21 0.505222 0.659654 22 0.636883 0.719124 Because the multiplier is close to 1.0, this answer is very sensitive to the data fit used. One solution to the coding is the following VBA program: Option Explicit 122 Sub McCabeThiele() ' Find minimum reflux ratio assuming it occurs at feed plate. Then ' L/D actual = L/D min times Multiplier. Steps off stages from the bottom up. ' Assumes that the feed stage is specified. Sheets("Sheet2").Select Range("A8", "G108").Clear Dim i, feedstage As Integer Dim D, B, xd, xb, F, z, q, LoverD, LoverV, x, y, xint, yint, yeq As Single Dim a6, a5, a4, a3, a2, a1, a0, L, V, LbaroverVbar, LoverDmin As Single Dim LoverVmin, LoverVdelta, Multiplier As Single ' Input values from spread sheet xd = Cells(1, 2).Value xb = Cells(1, 4).Value F = Cells(1, 6).Value z = Cells(1, 8).Value Multiplier = Cells(2, 2).Value q = Cells(2, 4).Value feedstage = Cells(2, 8).Value ' Fit of equilibrium data to 6th order polynomial to find y. a6 is multiplied ' by x to the 6th power. a6 = Cells(5, 1).Value a5 = Cells(5, 2).Value a4 = Cells(5, 3).Value a3 = Cells(5, 4).Value a2 = Cells(5, 5).Value a1 = Cells(5, 6).Value a0 = Cells(5, 7).Value ' Calculate intersection point of two operating lines and use this to find ' minimum L/D and L/V. Initialize LoverV = 1 LoverVdelta = 0.00001 Do LoverV = LoverV - LoverVdelta xint = ((-(q - 1) * (1 - LoverV) * xd) - z) / (((q - 1) * LoverV) - q) x = xint yint = LoverV * xint + (1 - LoverV) * xd ' Equilibrium y at value of x intersection. When yint=yeq, have minimum L/V and L/D. yeq = a6 * x ^ 6 + a5 * x ^ 5 + a4 * x ^ 4 + a3 * x ^ 3 + a2 * x ^ 2 + a1 * x + a0 Loop While yint < yeq 'Print intersection and equilibrium values. LoverVmin = LoverV + LoverVdelta LoverDmin = LoverVmin / (1 - LoverVmin) LoverD = Multiplier * LoverDmin LoverV = LoverD / (1 + LoverD) Cells(6, 2).Value = LoverDmin Cells(6, 4).Value = LoverVmin Cells(6, 6).Value = LoverD Cells(6, 8).Value = LoverV ' Calculate flow rates and ratios. D = ((z - xb) / (xd - xb)) * F L = LoverD * D 123 V=L+D LbaroverVbar = (LoverV + (q * F / V)) / (1 - ((1 - q) * F / V)) ' Step off stages from bottom up. First stage is partial reboiler. Initialize x = xb i=1 ' Loop in stipping section stepping off stages with equilibrium and operating eqs. Do While i < feedstage y = a6 * x ^ 6 + a5 * x ^ 5 + a4 * x ^ 4 + a3 * x ^ 3 + a2 * x ^ 2 + a1 * x + a0 Cells(i + 7, 1).Value = i Cells(i + 7, 2).Value = x Cells(i + 7, 3).Value = y i=i+1 x = (y / LbaroverVbar) + (LbaroverVbar - 1) * xb / LbaroverVbar Loop ' Calculations in enriching section continues to Loop While y < xd. Do While y < xd y = a6 * x ^ 6 + a5 * x ^ 5 + a4 * x ^ 4 + a3 * x ^ 3 + a2 * x ^ 2 + a1 * x + a0 Cells(i + 7, 1).Value = i Cells(i + 7, 2).Value = x Cells(i + 7, 3).Value = y i=i+1 x = (y / LoverV) - (1 - LoverV) * xd / LoverV If x < 0 Then Cells(i + 7, 4).Value = "Feed stage too low" Exit Do End If If i > 100 Then Cells(i + 7, 6).Value = "Too many stages" Exit Do End If Loop End Sub 124 SPE 3rd Ed. Solution Manual Chapter 5 New Problems and new solutions are listed as new immediately after the solution number. These new problems are: 5A15, 5C1, 5D1, 5D2, 5D9, 5D10, 5H1 to 5H5. Problems and solutions from the first edition that were not in the second edition are: 5D6, 5D8, 5D11-5D13, 5E1. 5.A6. Ethane is less volatile than methane so it decreases toward distillate. At bottoms it is more volatile than propane and butane, so must decrease towards bottoms. Thus ethane concentrates within column. 5.A7. 1. c; 2. c; 3. a (saturated liquid feed); 4. c; 5. B 5.A9. Pure LK cannot be withdrawn because LNK is present. Pure LNK can be removed at distillate if all LK is removed in side stream. However, recovery of LNK will be < 100%. 5.A13. If z HNK F cross. (frac. rec. HK in bot) z HK F, then there is more HNK in bottoms and curves 5A15. New Problem in 3rd Edition. a. a, b. d, c. b, d. c, e. b. 5.C1. New Problem in 3 rd Edition. Start with equilibrium equation, yi,j = Ki,jxi,j and multiply right hand side by Kref,j /Kref,j. One obtains yi,j = αi-ref,j Kref,jxi,j. Then 1 = Σ y = Σ (α i-ref,j Kref,jxi,j) . Since Kref,j is constant, bring it outside the summation and solve for Kref,j = 1/ Σ (αi-ref,j xi,j). This is Eq. (5-29). 125 5.D1. New Problem in 3rd Edition. Dx M ,d a) Dx B,d 1.00 2, 000 0.19 2280 0 0 Dx E,d 0.978 2, 000 0.31 Dx P ,d 1 0.994 12, 000 0.27 D 3638.16 x i,d D 19.44 5937.6 kg/h b) assume NK (Methanol and n-butanol) do not distribute (all methanol in top and all butanol in bottom). wt frac. in distillate: M = 0.38399, E = 0.61273, P = 0.00327, B = 0.0. wt. frac Bx M ,B 0 Bx B,B 1.0 12, 000 0.23 Bx E ,B 1 0.978 12, 000 0.31 Bx P ,B 0.994 12, 000 0.27 x i,b 0 B 0 2760.0 0.4553 81.84 0.0135 3220.56 0.5312 x i,b B 6062.4 kg hr Check B+D=F, OK. 5.D2. New Problem in 3rd Edition. y4 yi P Raoult’s Law Antoine’s Eqn. log10 VP Dew Point condition is xi yi P VPi 0.30, y 5 xi A 0.5, y 6 0.20, P 760 mmHg VPi x i B T C 1 (from Raoult’s Law) 126 B (from Antoine’s Eqn) T C Combine with Dew Point condition y5P y6P y4P 1 B B B VPi 10 A4 10 A 4 T C4 10 0.30 760 10 6.809 5 A5 T C5 10 A6 6 T C6 0.50 760 935.86 T 238.73 10 6.853 0.20 760 1064.8 T 233.01 10 6.876 1171.17 1 T 224.41 Using Goal Seek in Excel, T = 41.3ºC 5.D3. Assume that ethanol is HK. Then assume that HNK’s are totally in the bottoms. x M,dist .99, x E,dist .01 2195.6 = (.998) (0.22) (10,000) = Dx MD D 2195.6 2195.6 2217.78 and B x MD .99 Bottoms: MeOH: .0021 (.22) (10,000) = 4.4 4.4 x Mbot 0.0006 7782.22 1.0 .18 10, 000 x n propanol,bot 0.2313 7782.22 1.0 .13 10, 000 x n butanol,bot .1670 7782.22 x EtOH,bot 1 x MeOH,bot x n p,bot x nbut,bot 0.6011 5.D4. a. .99 F z C5 F D 7782.22 D x C5,dist (1), and .01 Fz C5 =B x C5,bot (2) .98 F z C6,bot Bx C6,bot (3), and .02 F z C6 D z C6,dist (4) Assume all heptane in bottoms Fz C7 Bx bot,C6 (5), x dist,C7 0 (6) Take Eqs. 1, 4 & 6: .99 (1000) (.4) = Dx C5d .02 (1000) (.3) = D x C6d 0 = D x C7,dist Dx l,dist b. D 402 kg moles/hr B = F – D = 1000 – 402 = 598 x C7,dist 0 x C5,d x C6,d .99 1000 .4 0.9851 402 1 0.9851 0.0149 127 x C7,bot 1000 .3 1.0 598 .98 1000 .3 x C6,bot c. 5.D5. 0.5017 0.4916 598 x C5,bot 1 .5017 .4916 0.0067 L = (L/D)D = (2.5) (402) = 1005 V = L + D = 1005 + 402 = 1407 At feed stage: L = L + .6F = 1005 + 600 = 1605 V = V - .4F = 1407 – 400 = 1007 Assume all methanol and ethanol in distillate. Dx MeOH,dist 0.55 100 0.01 150 Dx EtOH,dist 0.21 100 Dx prop,dist 0.993 Dx bu tan ol,dis 0.03 150 0.23 100 1 0.995 56.5 25.5 0.26 150 0.01 100 61.57 0.70 150 0.53 D 144.1 B Check: F1 F2 D 105.9 Bx Pr op,bot 1 0.993 Bx but,dist .23 100 .26 150 0.995 .01 100 0.7 150 0.434 105.47 Check = 105.90 Mole fractions: x M ,bot 0 , x E ,bot x but,bot 1 x prop,bot 0.9959 Dx MeOH ,dist 56.5 x M ,dist x E,dist x p,dist x But,dist 0, x prop,bot D 144.1 25.5 0.1767 144.1 61.566 0.427 144.1 0.53 144.1 0.0037 Check = 1.000 0.434 105.90 0.0041 0.392 OK 5.D6. This is 8.D1. in 1st ed. 128 129 5.D7. Assume 100% recovery C 2 , & propylene in distillate. Assume 100% recovery pentane & hexane in bottoms. Comp. Distillate C2 Propylene: n-C3 n-C4 C5 & C6 0.3 (1000) + 0.02 (1500) 0.006 (1000) + 0.001 (1500) (0.991) [1000 (0.45) + 1500 (0.249)] (0.02) [1000 (0.154) + 1500 (0.40)] 0 Bottoms flow rate = F1 x B,C2 0, x B,propylene F2 D x B,C5 0, x B,C3 1000 0.09 = 330 = 7.5 = 816.0885 = 15.08 = 15.08 D= = 1168.7 .009 1000 0.45 1500 0.18 1331.33 xD 0.2824 0.0064 0.06983 0.0129 0.0 2500 1168.7 1331.3 kg/h x B,C4 5.D8. kg/h 1500 0.249 1331.3 .98 1000 .154 1500 .40 1331.3 0.2704, x B,C6 0.0056 0.5550 1500 .15 1331.31 0.1690 8.D.6. in 1st edition. Assume all benzene is in the distillate. 130 131 5.D.9. New Problem in 3rd Edition. 132 5.D10. New Problem in 3rd Edition. At the bubble point x C5 .40 , x C6 .60 , p yi 760 mmHg , y C5 1.0 y C6 K 5 x C5 K 6 x C6 1.0 133 or VPC5 Ptot x C5 0.40 10 TºC 20 VPC6 Ptot 6.853 1.0 , VPC5 x C5 x C6 1064.8 T 233.01 0.60 10 (C5 term) x (.4) 441.03 × .4 = 176.4 6.876 VPC6 x C6 Ptot 1171.17 T 224.41 + 760 C6 term x (.6) 121.387 × .6 = SUM 249.23 420.28 × .6 = 252.17 760.21 Final result is: 51 1270.095 × .4 = 508.04 + 5.D11. Was problem 6.D2 in 2nd edition SPE. Since x i known, want yi 1 K i p BP x i K ref p old Find new pressure from, K ref p new Kixi Use ethane, or n-pentane as reference. First guess: Try K C5 1.0, p 115 kPa K NC7 0.13 Ki xi K C2 29 0.1 K rep p new Ki xi K C5 p new 29 1.0 .35 0.13 .55 1.0 ~ 0.3 p new 3.32 8.0 0.1 0.3 .35 3.32 p too low. 440 kPa , K NC7 0.042 0.55 0.042 K C2 8.0 0.927 0.3 .032 p new 400 kPa, K nC7 0.045 K C2 0.927 K i x i 8.7 0.1 0.32 0.35 0.045 0.55 1.004 8.7 Answer (within accuracy DePriester Chart) = 400 kPa 5.D12. Was problem 6.D3 in 2nd edition SPE. a. Highest B.P. Temp. is pure n-octane. K C8 b. Lowest B.P. Temp. is pure n-hexane. K C6 1.0, T 174 C 1.0, T 110 C 5.D13. Was problem 6.D6 in 2nd edition SPE. Let 1 = n-butane, 2 = n-pentane and 3 = n-hexane. p = 101.3 kPa. Bubble Point: First guess. K1 1 at T 1 , K 2 1 at T 36 , K 3 1 at T 68 . Tfirst K1 z1T1 3.6, K 2 .2 1 1.08, K 3 .5 36 0.36. Choose 2 as ref. Eq. (6-14) is: K 2 Tnew Tnew 29 C. K1 2.7, K 5 Eq. (6-14) is: K 2 Tnew Tnew 28.8 K1 K1x1 38 .2 3.6 1.8 1.368 0.26, and 0.789 1.013 2.7, K8 .3 68 Kixi .5 1.08 .3 .36 1.368 0.789 1.013 0.779 0.255, and Kx i i 1.006. OK. TBP 28.8 C. 5. E1. This is 8.E4. in 1st edition. 134 135 136 5.H1. New Problem in 3rd Edition. Same program as 5.H5 except do not list y values as distillate. Different input in spreadsheet – see below. Ternary Distillation: Constant relative volatility. Step off stages from bottom up. Use whole stages. System has A = LK, B = HK and C = HNK C5H9 alpha Alpha CA-B 3.58 alpha B-B 1.86 B 1 feedstage 8 zA 0.35 z B 0.4 z C 0.25 epsilon (values for 0.00000001 N loop( F 200 q 1 L/D 6 convergence 100 df(HNK frac frac rec B in dist 0.996 guess frac rec C bot 1 recovery) 0.9 frac rec A in dist 0.961 D 67.59011 B 132.4099 L/V 0.857143 Lbar/Vbar 1.279858988 Mass balance xAdist 0.995264 xBdist 0.004734 xCdist 1.56E-06 values Mass balance xAbot 0.020618 xBbot 0.601768 xCbot 0.377614 values 137 Stage by stage calculations i xA yA 1 0.020618 2 0.041225 3 0.072406 4 0.11662 5 0.175066 6 0.245778 7 0.322624 8 0.396885 9 0.515565 10 0.633439 11 0.738112 12 0.822076 13 0.883953 14 0.926687 15 0.954865 16 0.97287 17 0.984143 18 0.991109 0.046992 0.0869 0.143487 0.218289 0.308791 0.407144 0.502187 0.584094 0.685129 0.774848 0.846817 0.899855 0.936484 0.960636 0.97607 0.985732 0.991702 0.995362 xB yB xC yC 0.601768 0.7125981 0.377614 0.688364 0.7538807 0.270411 0.720619 0.7419438 0.206975 0.711292 0.6917342 0.172088 0.672062 0.6158891 0.152873 0.612801 0.5274175 0.141421 0.543675 0.4396808 0.1337 0.475123 0.3632905 0.127992 0.42305 0.2920855 0.061385 0.339977 0.2160685 0.026583 0.251291 0.1497869 0.010597 0.173962 0.098934 0.003962 0.114634 0.0630978 0.001413 0.072825 0.0392226 0.000488 0.044971 0.0238835 0.000164 0.027075 0.0142529 5.45E-05 0.015839 0.0082925 1.77E-05 0.008886 0.0046363 5.57E-06 0.240409437 0.159219617 0.114569647 0.089976459 0.075319919 0.0654388 0.058132319 0.05261578 0.02278591 0.009083172 0.003395923 0.001211305 0.000418127 0.000141178 4.69552E-05 1.54307E-05 4.9941E-06 1.56158E-06 Calc frac recovery C in bottoms 0.9999979 j 5.H2. New Problem in 3rd Edition. The spreadsheet is, Ternary Distillation with Constant relative volatility. Step off stages from top down. System has A = LNK, B = LK and C = HK alpha A-B 2.25 alpha B-B 1 Alpha C-B 0.21 feedstage zA 0.25 zB 0.35 zC 0.4 epsilon (values for F 100 q 1 L/D 0.3 N loop( convergence frac rec B in dist 0.9 frac rec C in bot 0.97 df(LNK frac recovery) Guess: frac rec A in dist 1 D 57.66689 B 42.35298 L/V 0.230769 Lbar/Vbar xAdist 0.43295 xBdist 0.546241 xCdist 0.020809 Mass balance values xAbot 0.001251 xBbot 0.082639 xCbot 0.91611 Mass balance values Stage by stage calculations i xA yA xB yB xC yC 1 0.229688 0.43295 0.65203 0.546241 0.118282 0.020809168 2 0.180904 0.386044 0.601681 0.570654 0.217416 0.043302907 3 0.16005 0.374786 0.537147 0.559034 0.302804 0.066179941 4 0.147137 0.369973 0.486906 0.544142 0.365957 0.085884852 5 0.13893 0.366993 0.453607 0.532548 0.407464 0.100458716 6 0.133981 0.365099 0.433372 0.524864 0.432647 0.1100371 7 0.062603 0.208987 0.425676 0.631573 0.511721 0.159440004 8 0.021494 0.097273 0.308019 0.619528 0.670486 0.283199293 9 0.004909 0.032934 0.146011 0.435383 0.84908 0.531682943 10 0.000766 0.006976 0.044919 0.181823 0.954315 0.811200627 Calc frac recovery A in distillate 0.998702 j Note x1 = xbot 3 6 0.0001 10 0.9 1.565105 Note y1 = xdist 2 138 5.H.3. New Problem in 3rd Edition. (L/D)min = 0.26761 by trial and error using spreadsheet in Table 5.A1.. 5.H.4. New Problem in 3rd Edition. Ternary Distillation with Constant relative volatility. Step off stages from top down. System has A = LK, B = sandwich and C = HK 5.G.e. alpha A-B 1.4 alpha B-B 1 Alpha C-B 0.7 feedstage zA 0.25 zB 0.35 zC 0.4 epsilon (values for F 100 q 1 L/D 5 N loop( convergence frac rec B in dist 0.583 frac rec C in bot 0.995 df(LNK frac recovery) Guess: frac rec A in dist 0.95 D 44.10818 B 55.89182 L/V 0.833333 Lbar/Vbar xAdist 0.532853 xBdist 0.462613 xCdist 0.004534 Mass balance values xAbot 0.026781 xBbot 0.261129 xCbot 0.71209 Mass balance values Stage by stage calculations i xA yA xB yB xC yC 1 0.447934 0.532853 0.544443 0.462613 0.007623 0.004534307 2 0.378937 0.462087 0.609404 0.530804 0.011659 0.007108533 3 0.325116 0.40459 0.658055 0.584939 0.016829 0.010471366 4 0.284385 0.359739 0.692247 0.625481 0.023368 0.01477984 5 0.254167 0.325796 0.71427 0.653975 0.031563 0.020228923 6 0.231958 0.300615 0.726286 0.672327 0.041757 0.027058086 7 0.215598 0.282107 0.730061 0.68234 0.054342 0.035552935 8 0.203353 0.268473 0.726901 0.685486 0.069746 0.046040694 9 0.193893 0.258269 0.717703 0.682853 0.088403 0.058877558 10 0.18623 0.250387 0.703059 0.675188 0.110711 0.074425299 11 0.179649 0.244001 0.683384 0.662985 0.136967 0.093014635 12 0.173652 0.238516 0.65905 0.646589 0.167298 0.114894592 13 0.167915 0.233519 0.630501 0.62631 0.201584 0.140170911 14 0.162254 0.228738 0.598352 0.602519 0.239393 0.168742359 15 0.156599 0.224021 0.563437 0.575729 0.279964 0.200250121 16 0.150964 0.219308 0.526798 0.546633 0.322237 0.234059083 17 0.145428 0.214612 0.489617 0.516101 0.364955 0.269286831 18 0.140099 0.209999 0.453098 0.485116 0.406803 0.304884695 19 0.135091 0.205558 0.418339 0.454684 0.446571 0.339758041 20 0.100543 0.157965 0.402362 0.45154 0.497094 0.39049513 21 0.071479 0.116121 0.372448 0.43219 0.556074 0.45168881 22 0.048123 0.080918 0.329669 0.395957 0.622209 0.523124245 23 0.030232 0.05263 0.276757 0.344144 0.693012 0.603226557 24 0.017191 0.03096 0.2177 0.280057 0.765109 0.688982619 Mass balance: fraction stage, A, B, C calculated at bottom, % error B 0.264616 0.026781 0.261129 0.71209 6.65242E-09 Calc frac recovery A in distillate 0.940127 j 4 19 1E-10 100 0.8 1.21119 Note y1 = xdist Part d. Fractional recovery of B in distillate. is 0.725. Note that B goes through a maximum of close to 1% on stages 7 and 8. Ternary Distillation with Constant relative volatility. Step off stages from top down. System has A = LK, B = trace sandwich and C = HK 5.G.e. Part d. alpha A-B 1.4 alpha B-B 1 Alpha C-B 0.7 feedstage 19 139 zA 0.38 zB 0.02 zC 0.6 epsilon (values for F 100 q 1 L/D 4 N loop( convergence frac rec B in dist 0.725 frac rec C in bot 0.995 df(LNK frac recovery) Guess: frac rec A in dist 0.99 D 39.37044 B 60.62956 L/V 0.8 Lbar/Vbar xAdist 0.95555 xBdist 0.03683 xCdist 0.00762 Mass balance values xAbot 0.00626 xBbot 0.009071 xCbot 0.984668 Mass balance values Stage by stage calculations i xA yA xB yB xC yC 1 0.934659 0.95555 0.050434 0.03683 0.014907 0.00761993 2 0.909255 0.938837 0.064694 0.047713 0.026051 0.013449322 3 0.878109 0.918514 0.079128 0.059121 0.042762 0.02236485 4 0.839847 0.893598 0.092985 0.070669 0.067168 0.035733649 5 0.793216 0.862987 0.105202 0.081754 0.101582 0.055258739 6 0.737611 0.825683 0.114471 0.091527 0.147918 0.082789801 7 0.673775 0.781199 0.119471 0.098942 0.206753 0.119858439 8 0.604361 0.73013 0.119295 0.102943 0.276345 0.166926476 9 0.53382 0.674599 0.113888 0.102802 0.352293 0.222599678 10 0.467334 0.618166 0.104227 0.098476 0.428438 0.283358088 11 0.409234 0.564978 0.092025 0.090748 0.498741 0.344274648 12 0.361849 0.518497 0.079126 0.080986 0.559026 0.400517103 13 0.325379 0.480589 0.066982 0.070666 0.607639 0.448744495 14 0.298551 0.451414 0.056436 0.060951 0.645013 0.487634893 15 0.279454 0.429951 0.047786 0.052515 0.67276 0.517534464 16 0.266162 0.414673 0.040972 0.045595 0.692866 0.539732259 17 0.257043 0.40404 0.035754 0.040143 0.707203 0.555816779 18 0.250839 0.396745 0.031838 0.035969 0.717324 0.567286133 19 0.246633 0.391781 0.028939 0.032836 0.724428 0.575383054 20 0.193371 0.320667 0.029598 0.035058 0.777031 0.644274899 21 0.145301 0.251 0.029111 0.03592 0.825588 0.713080242 22 0.105056 0.188125 0.027585 0.035283 0.867359 0.776592117 23 0.073452 0.135485 0.025264 0.033287 0.901284 0.831228269 24 0.049874 0.094147 0.022436 0.030252 0.92769 0.875601733 25 0.032959 0.063306 0.019353 0.026552 0.947688 0.910141552 26 0.02117 0.041182 0.016207 0.02252 0.962623 0.93629802 27 0.013123 0.025762 0.013125 0.018405 0.973752 0.955833007 28 0.00771 0.015236 0.010183 0.014373 0.982107 0.970390508 29 0.004108 0.008156 0.007421 0.010525 0.988471 0.981318291 Mass balance: fraction stage, A, B, C calculated at bottom, % error B 0.402462 0.00626 0.009071 0.984668 5.53216E-07 Calc frac recovery A in distillate 0.990012 j 16 1E-10 100 0.8 1.308 Note y1 = xdist 5.H.5. New Problem in 3rd Edition. Ternary Distillation with Bubble point Calc. Step off stages from bottom up. System has A = LK, B = HK and C = HNK feedstage 5 zA 0.3 zB 0.3 zC 0.4 epsilon 1E-08 F 100 q 1 L/D 8 N loop 100 frac rec B in bot 0.997 guess frac rec C bot 1 df 0.9 140 frac rec A in dist K const. aT1 nB=A -1280557 nPen=B -1524891 nHex=C -1778901 aT2 0 0 0 0.995 aT6 7.94986 7.33129 6.96783 Trebguess ap1 -0.96455 -0.89143 -0.84634 500 ap2 0 0 0 p, psia ap3 0 0 0 14.7 D xAdist xAbot 29.940006 B 0.9969938 xBdist 0.002141 xBbot 70.05999 L/V 0.003006 xCdist 0.42692 xCbot 0.88889 Lbar/Vbar 1.26 2.2E-07 0.57094 stage 1 2 3 4 5 6 7 8 9 10 xA 0.002141 0.0086951 0.0291201 0.0853111 0.214736 0.4743433 0.7600825 0.920961 0.9779073 0.994401 xB 0.42692 0.613018 0.714099 0.717438 0.617813 0.483106 0.233736 0.078451 0.022047 0.005596 xC 0.57094 0.37829 0.25678 0.19725 0.16745 0.04255 0.00618 0.00059 4.6E-05 3.4E-06 yA 0.0103991 0.0361347 0.1069354 0.270011 0.5324156 0.786406 0.9294091 0.980028 0.9946891 0.9986729 Distillate mole fracs = y values Calc frac recovery C in bottoms yB 0.6614042 0.7887656 0.7929732 0.6674458 0.4297616 0.2080991 0.0700679 0.0199309 0.0053079 0.0013269 yC 0.3282 0.1751 0.10009 0.06254 0.03782 0.00549 0.00052 4.1E-05 3E-06 2.2E-07 T 582.283 570.622 561.854 551.835 536.481 513.748 498.351 491.769 489.686 489.103 KB 1.549247 1.286692 1.110453 0.930318 0.695617 0.430752 0.299774 0.254057 0.240759 0.237137 0.9986729 0.00133 2.2E-07 0.9999998 j 3 Option Explicit Sub Ternary_bottom_up_BP() ' Ternary distillation with constant alpha. Frac recoveries of LK and HK given. ' There is a HNK present and its frac rec in bottoms is guessed. Sheets("Sheet1").Select Range("A18", "I150").Clear Dim i, j, k, feedstage, N As Integer Dim AaT1, AaT6, Aap1, BaT1, BaT6, Bap1, CaT1, CaT6, Cap1 As Double Dim F, fracBbot, fracCbot, q, LoverD, LoverV As Double Dim LbaroverVbar, D, B, L, V, Lbar, Vbar, Eqsum, fracAdist As Double Dim xA, xB, xC, yA, yB, yC, zA, zB, zC, xAbot, xBbot, xCbot As Double Dim DxA, DxB, DxC, BxA, BxB, BxC, xAdist, xBdist, xCdist As Double Dim fracCbotcalc, difference, epsilon, df As Double Dim T, p, Tinit, KA, KB, KC, sum As Double 'Input data AaT1 = Cells(9, 2).Value AaT6 = Cells(9, 4).Value Aap1 = Cells(9, 5).Value BaT1 = Cells(10, 2).Value BaT6 = Cells(10, 4).Value Bap1 = Cells(10, 5).Value CaT1 = Cells(11, 2).Value CaT6 = Cells(11, 4).Value Cap1 = Cells(11, 5).Value feedstage = Cells(3, 8).Value F = Cells(5, 2).Value 141 q = Cells(5, 4).Value LoverD = Cells(5, 6).Value zA = Cells(4, 2).Value zB = Cells(4, 4).Value zC = Cells(4, 6).Value fracBbot = Cells(6, 3).Value fracCbot = Cells(6, 6).Value fracAdist = Cells(7, 4).Value epsilon = Cells(4, 8).Value N = Cells(5, 8).Value df = Cells(6, 8).Value p = Cells(7, 8).Value Tinit = Cells(7, 6).Value ' The For loop (remainder of program) is to obtain convergence of guess of ' fractional recovery of A in distillate. For j = 1 To N ' Calculate compositions and flow rates. DxA = F * zA * fracAdist DxB = F * zB * (1 - fracBbot) DxC = F * zC * (1 - fracCbot) BxA = F * zA * (1 - fracAdist) BxB = F * zB * fracBbot BxC = F * zC * fracCbot D = DxA + DxB + DxC B = BxA + BxB + BxC xAdist = DxA / D xBdist = DxB / D xCdist = DxC / D xAbot = BxA / B xBbot = BxB / B xCbot = BxC / B L = LoverD * D V=L+D LoverV = L / V Lbar = L + q * F Vbar = Lbar - B LbaroverVbar = Lbar / Vbar ' Print values of flowrates and mole fractions Cells(13, 2) = D Cells(13, 4) = B Cells(13, 6) = LoverV Cells(13, 8) = LbaroverVbar Cells(14, 2) = xAdist Cells(14, 4) = xBdist Cells(14, 6) = xCdist Cells(15, 2) = xAbot Cells(15, 4) = xBbot Cells(15, 6) = xCbot ' initialize (reboiler =1) and start loops i=1 xA = xAbot 142 xB = xBbot xC = xCbot T = Tinit ' Calculations in stripping section: equilibrium then operating. Do While i < feedstage ' Bubble point calculaton For k = 1 To 10 KB = 1 KA = Exp((AaT1 / (T * T)) + AaT6 + (Aap1 * Log(p))) KB = Exp((BaT1 / (T * T)) + BaT6 + (Bap1 * Log(p))) KC = Exp((CaT1 / (T * T)) + CaT6 + (Cap1 * Log(p))) yA = KA * xA yB = KB * xB yC = KC * xC sum = yA + yB + yC KB = KB / sum T = Sqr(BaT1 / (Log(KB) - BaT6 - (Bap1 * Log(p)))) Next k ' Print values Cells(i + 17, 1).Value = i Cells(i + 17, 2).Value = xA Cells(i + 17, 3).Value = yA Cells(i + 17, 4).Value = xB Cells(i + 17, 5).Value = yB Cells(i + 17, 6).Value = xC Cells(i + 17, 7).Value = yC Cells(i + 17, 8).Value = T Cells(i + 17, 9).Value = KB ' Bottom operating line i=i+1 xA = yA / LbaroverVbar + (1 - (1 / LbaroverVbar)) * xAbot xB = yB / LbaroverVbar + (1 - (1 / LbaroverVbar)) * xBbot xC = yC / LbaroverVbar + (1 - (1 / LbaroverVbar)) * xCbot Loop ' Calculations in enriching section Do For k = 1 To 10 ' Bubble point calculation KA = Exp((AaT1 / (T * T)) + AaT6 + (Aap1 * Log(p))) KB = Exp((BaT1 / (T * T)) + BaT6 + (Bap1 * Log(p))) KC = Exp((CaT1 / (T * T)) + CaT6 + (Cap1 * Log(p))) yA = KA * xA yB = KB * xB yC = KC * xC sum = yA + yB + yC KB = KB / sum T = Sqr(BaT1 / (Log(KB) - BaT6 - (Bap1 * Log(p)))) Next k ' Print values Cells(i + 17, 1).Value = i Cells(i + 17, 2).Value = xA 143 Cells(i + 17, 3).Value = yA Cells(i + 17, 4).Value = xB Cells(i + 17, 5).Value = yB Cells(i + 17, 6).Value = xC Cells(i + 17, 7).Value = yC Cells(i + 17, 8).Value = T Cells(i + 17, 9).Value = KB ' Test for feed stage too low If xA < 0 Or xB < 0 Or xC < 0 Then Cells(i + 18, 3) = "Feed stage too low" Exit For End If i=i+1 ' Test for too many stages, which may mean reflux rate is too low. If i > 100 Then Cells(i + 18, 2).Value = "Too many stages" Exit For End If ' Top operating line xA = yA / LoverV - ((1 / LoverV) - 1) * xAdist xB = yB / LoverV - ((1 / LoverV) - 1) * xBdist xC = yC / LoverV - ((1 / LoverV) - 1) * xCdist ' Test for calculations being done. Loop While yA < xAdist ' Fractional recovery of C based on stage-by-stage calculation. fracCbotcalc = 1 - (yC * D) / (F * zC) difference = fracCbot - fracCbotcalc If Abs(difference) < epsilon Then Exit For fracCbot = fracCbot + df * (fracCbotcalc - fracCbot) ' Test if have convergence of fractional recovery of C. Next j Cells(i + 19, 1).Value = "Calc frac recovery C in bottoms" Cells(i + 19, 5).Value = fracCbot Cells(i + 19, 6).Value = "j" Cells(i + 19, 7).Value = j Cells(i + 18, 1).Value = "Distillate mole fracs = y values" Cells(i + 18, 5).Value = yA Cells(i + 18, 6).Value = yB Cells(i + 18, 7).Value = yC End Sub 144 Chapter 6 New Problems and new solutions are listed as new immediately after the solution number. These new problems are: 6A1, 6A5, 6D3, 6D4, 6G4-6G7. 6.A1. New Problem in 3rd Edition. Trial and error. Try a feed stage and determine the distillate and bottoms mole fractions of the key components. Repeat for additional feed stages. The feed stage that produces the best separation is the optimum feed stage for this value of N. 6.A5. New Problem in 3rd Edition. Trial and error. Pick an N that you think is close (a systematic method to do this is described in Chapter 7). Find the optimum feed stage. If you need more separation to meet specifications, increase N, and if you exceed specifications, try decreasing N. For an initial estimate of the optimum feed location for the new N, assume that the ratio (Optimum feed stage)/(total number of stages) is constant. Continue process until specifications are met or slightly exceeded. 6.C1. a. With a side stream, mass balance is, Vj y j L j x j Sx S Vj 1 , y j 1 L j 1x j Fjz j 1 where L j is the flow into the stage below, L j (6-4) to (6-6) are unchanged. Note that the L j b. Now L jh j Lj Vj 1 Fj h Fj 1 L j x j , Eqs. input into the matrix will be changed. L jh j S jh j in the E.B. and j D j Fk k 1 k Substituting into EB we find DEj x j . Since L j x j Sx S L j S, x S Qj D hj j 1 k 1 1 Sk , L j j hj 1 SK h j k j 1 k 1 Vj 1 1 j 1 D FK h j k 1 j 1 k 1 j 1 Fk k FK h j 1 Sk 1 SK h j 6.C2. Partial condenser mass balances is: Dy1 L1x1 V2 y 2 F1z1 This becomes, DK1 V2 K 2 2 F1z1 1 1 L1 L2 Thus, B1 1 DK1 L1 , C1 (6-7) K 2 V2 L2 , and D1 (6-8) F1z1 Note that only B1 differs. 6.D1. For n-pentane from Example 6-1, T = 60°C, K C5 Matrix: L3 1825, L 4 450 B, V2 j = 1 (total condenser), V3 1.05, L1 V4 L2 825 kmole/hr, 1375. 145 1.05 1375 K 2 V2 C1 L2 j 2, C 2 B2 1 825 j 1 K 3 V3 1.05 1375 L3 1825 V2 K 2 2.75, A 2 L2 j 3, C 3 B3 L4 450 1.791, A 3 L3 1.75 1 2.75 0 6.D2. 1,C5 p = 5 atm: z C2 0 0.791 1 0 1.791 0 to 0.08, z C3 0.33, z C4 yi 1, K C4 5.4 0.08 yi 1.7 0.33 12 , K C2 0 2,C5 0 3,C5 350 4,C5 0 0.49, z C5 0.10 yi 1.0. 506.5 kPa 0.47, K C5 0.47 0.49 Kixi 0.14 0.14 0.10 K C3 20 4.6, K C4 1.7 1.37 1.237 0.35, K C5 1.237 0.10 0.368 0.4521 0.1715 0.0 1.0016 OK Propane Matrix Analysis: K C3 D3 Fz c3 V2 V3 L1 0 1.7, K C4 K C3 Tnew Tnew 350 1. DePriester Chart. 5.4, K C3 Need lower T. 0 0 1,C5 x i . Want Pick C 3 as ref. 5 atm 101.3 kPa atm Try T = 20°C. K C2 1, D 4 0 4.208 As sat’d liquid & for bp calculate z i 1 Guess: Want K C3 1000 0.35 3.208 1 1.67, D1 825 are in Example 6-1. 4,C5 st Fz C51 4.208, A 4 L4 1.67 L1 550 3.208 1, D 3 1 V4 K 4 1 0 1.05 1375 V3 K 3 D 1 0.791 1, D 2 K 4 V4 4 Reboiler , B 4 Values for 1.75 , B1 1.37, B 330, D1 V4 L1 D L3 L 2 F Total Condenser (1): D V5 D2 V6 1025 2025 L4 F D 1000 410 D4 L1 L2 D5 D6 590 L6 0 D 1435 L3 L5 146 B1 1 D L1 1.40, C1 Stage 2. A2 Stage 3. A 3 1, B2 1, B3 V2 K 2 1 L3 Stage 4: A4 1, B 4 1 Stage 5: A5 1, B5 1 Reboiler (Stage 6). A 6 V4 K 4 L5 1, B6 2.918 0 1 1435 1.37 L3 2025 V4 K 4 1435 1.37 L4 2025 V5 K 5 V6 K 6 1435 1.37 V6 K 6 L6 590 0 0 0 0 -0.9708 0 0 0 0 0 0.9708 0 0 1 0 0 0 -1 0 0 0 0 0.9708 0.9708 3.32 =4.32 L6 1.9708 1.918 0.9708 L5 =1.9708, C 5 1 1025 V3 K 3 =1.9708, C 4 L4 Mass balance matrix. 1.40 -1.918 -1 =1.9708, C 3 V5 K 5 1.37 1435 =2.918, C 2 L2 V3 K 3 1 K 2 V2 L 2 1.9708 0.9708 0 1.9708 -3.32 -1 4.32 6.D3. New Problem in 3rd Edition. p = 5 atm = 506.5 kPa z C2 0.08, z C3 0.33, z C4 0.49, z C5 0.10 As sat’d liquid & for bp calculation at z i Result is: Tbp 12 , K C2 4.6, K C3 =1.37, K C4 n-butane Matrix Analysis: K C4 D3 Fz c3 V2 V3 490, D1 V4 V5 x i . Calculation is same as in 5.D11 to obtain T. 0.35, B D2 V6 D4 L1 0.35, K C5 F D 1000 410 D5 D6 A2 Stage3. A 3 Stage 4. 1, B 2 1, B3 A4 1 1, B 4 1 V2 K 2 L2 V3 K 3 L3 1 =1.49, C 2 =1.2480, C 3 V4 K 4 L4 L6 D 1435 L1 Stage 2. 590 0 D 1025 L 2 , L3 L 2 F 2025 D Total Condenser (1): B1 1 D L1 1.40, C1 K 2 V2 L 2 L1 0.10 =1.2480, C 4 L4 L5 0.35 1435 V3 K 3 L3 1025 1435 0.35 2025 1435 0.35 V4 K 4 L4 2025 V5 K 5 L5 0.49 0.2480 0.2480 0.2480 147 Stage5: A 5 1, B5 V5 K 5 1 L5 Reboiler (Stage 6). A 6 1, B 6 Mass balance matrix. 1.40 -0.49 V6 K 6 1 L6 1435 0.35 V6 K 6 =1.2480, C 5 L6 =1.8513 0 0 0 0 0 0 0 0 0 -1 1.49 -0.248 0 1 1.248 0.248 1 0 0 0 0 0 -1 1.248 -0.851 0 0 0 0 -1 5 60 300 6.D4. New Problem in 3rd Edition. L 1.248 L D D V L D 360 Saturated liquid feed: V V 360; L 0.8513 590 L F 0.248 0 1.851 400 1 L1 V1 V1 L, L 2 0, V2 L, L3 L, L 4 V, V3 B V, V4 F D 40 V 2 L2 V3 3 yi V4 Bubble Pt. Set z i F 1.0 or Ki xi L3 xi yi Ki xi 1.0 M 3.58, E 2.17, NP 1, NB 0.412 4 yi b. xi i xi Eq. (5-30), zi i .3 3.58 Then and y nP K nP z NP i .25 2.17 NP zi y x i nP .35 1.0 0.1 .412 2.0077 0.35 1.0 0.1743 2.0077 0.1743 0.4981 0.35 148 KM c. M NP K nB Matrix for n-butanol Stage 1. A1 , B1 1, B 2 L2 300 V4 K 4 C3 F3z nBut Stage 4. A 4 1.2 1 0 0 d. y 1 j 2 j=3 1.8468 40 10 1 V4 K 4 2.8468, C 4 , D 4 B 0 0.2463 1.2463 0.1847 1 1.1847 0 1 1.2, V21 V12 B2 A2 D2 C 2 V11 V13 B3 V23 V33 D3 A3 0 2 0 3 10 4 0 1 1 .2463 1.2 1.2463 1 V12 0 1 V13 10 1.8468 1.04105 .20525 .20525 0 0.1847 0.1539 1.2 V3 2 1.1847 1 A3V22 C3 V12 0 0, V31 V3 A 2 V2 V32 1 2.8468 B1 0 0 1.8468 V11 V22 0 1.1847 360 0.2052 1 B4 0.2052 0 0.1847, D 2 400 L3 100 .1 0.2463, D1 360 .2052 V3 K 3 1 K NP 1.2463 L2 L3 L4 D3 V2 K 2 V3 K 3 1, B3 nB NP 1 0.2 1.2, 360 0.2052 1 1.0809, K n-B 0.1 V2 K 2 C2 Stage 3. A 3 1.7832; K E 0.2052, z nB 1 D L1 C1 Stage 2. A 2 K NP 1.04105 0 0.1539 1.0308 1 0 1.0308 9.7014 1.7740 149 V14 j=4 B4 V24 D4 V34 e. VP V3 3 A 4 V23 C4 V13 2.8468 V14 0 1.7740 1 9.7014 1.0728 1.0728 9.0428 not needed. 9.0428 (bottoms flow rate) V24 N 3NB V23 V33 4 9.7014 2 NB V22 V33 3 0 0.1539 25.743 3.9619 1NB V22 V31 2 0 .20525 3.9619 0.8132 VP VP nP Ptot K nP 760 1.7740 9.0428 n 200 760 0.4981 760 378.5 mmHg 5.2983, n 378.5 1 66.8 273.16 Linear Interpolation: 5.9362 TbP 5.2983 273.16 25.743 in mmHg Need to interpolate VP data. We know n VP 6.F1. 1 4,NB K nP Raoult’s Law A4 1T 5.9362, n 400 2.9415E 3 5.99146 1 82.0+273.16 2.9415E 3 2.8163E 3 5.2983 5.99146 351.74 or TbP 2.81563E 3 2.9415E 3 0.00284 78.6 C. Plots of vapor pressure are available in Maxwell (see Table 2-2 for reference) while tabulated values are in Perry’s K VPi p tot . Dew point calculation on feed gives 245.7°F. Overall Mass Balances: D = 30, L = 5D = 150 V = L + D = 180, V V F 180 100 80 , L L 150 , B = F – D = 70 First Trial Values Stage T L V KB KT Kx 245.7 70 = B 80 2.307 1.042 4 0.534 245.7 150 180 2.307 1.042 3 0.534 245.7 150 180 2.307 1.042 2 0.534 1 245.7 150 30 = D 2.307 1.042 0.534 Stage 4 3 2 1 Stage 4 3 2 1 C -2.705 -2.8404 -2.8404 Benzene B 3.705 3.8404 3.8404 1.2 C -1.191 -1.2504 -1.2504 Toluene B 2.191 2.2504 2.2504 1.2 A -1 -1 -1 A -1 -1 -1 - D 0 35 0 0 D 0 40 0 0 ℓ 7.9886 29.5978 57.058 135.6569 ℓ 27.1651 59.5188 61.5875 64.1742 150 Stage 4 3 2 1 6.G1. 6.G2. C -.6103 -.6408 -.6408 Xylenes B 1.6103 1.6408 1.6408 1.2 A -1 -1 - D 0 25 0 0 ℓ 22.7361 36.6120 21.1971 11.3193 Using Peng-Robinson. Aspen-Plus solution: Stage T1°C L kmol/h V 1 38.31 825 0 2 69.16 557.3 3 107.02 4 140.92 C4 C5 C8 x1 y1 0.360 0.6568 0.6013 0.3424 0.0386 0.00083 1375 x2 y2 0.0993 0.3601 0.4499 0.6013 0.4508 0.0386 1533.9 1107.3 x3 y3 0.03355 0.2288 0.1731 0.5251 0.7934 0.2461 450 1083.9 x4 y4 0.00436 0.04568 0.0429 0.2271 0.9528 0.7272 1. What VLE package did you use? Peng- Robinson. 2. Report the following values: Temperature of condenser = - 2.77 oC Temperature of reboiler = 79.97 oC Distillate product mole fractions C2 0.3636, C3 Bottoms product mole fractions C2 1.2 E 13, C3 0.6360, C4 0.0004 0.000492, C4 0.9995 3. Was the specified feed stage the optimum feed stage? Yes No If no, the feed stage should be: a. closer to the condenser, b. closer to the reboiler. 4. Which tray gives the largest column diameter (in meters) with sieve trays when one uses the originally specified feed stage? Tray # 28 Diameter = 0.792 m. 5. Which components in the original problem are the key components? LK = Propane, HK = butane 6. Change one specification in the operating conditions (keep original number of stages, feed location, feed flow, feed composition, feed pressure, feed temperature/fraction vaporized constant) to make ethane the light key and propane the heavy key. What operating parameter did you change, and what is its new value? D = 20 Temperature of condenser = - 31.54 oC Temperature of reboiler = 50.87 oC Distillate product mole fractions C2 0.9955, C3 0.00448, C4 1.32 E 07 Bottoms product mole fractions C2 0.00112, C3 0.4364, C4 0.5625 151 6.G3. For column 1 report the following: a. Final value of L/D 1.8 b. Split fractions of ethanol (distillate) 0.9999 and n-propanol (bottoms) 0.9913 c. Mole fractions in bottoms 1.70 E-5, 0.00871, 0.9913 d. Mole fractions in distillate 0.4545, 0.5383, 0.00714 For column 2: a. Optimum feed location in the column. 18 b. Mole fractions in bottoms 0.00689, 0.9800, 0.0131 c. Mole fractions in distillate 0.9917, 0.0083, 0.0 6.G4. New Problem in 3rd Edition. 1. Temperature of condenser = 389.9_ K. Temperature of reboiler = __547.4 K Qcondenser = _-772260____cal/sec, Qreboiler = _____912459__cal/sec Distillate product mole fractions: B= 0.23529, T= 0.76471, BiP = 0.12E-08_________ Bottoms product mole fractions:_B = 0.5 E-10, T = 0.67 E-08, BiP= 1.0000_________ 2. Was the specified feed stage the optimum feed stage? Yes No x If no, the feed stage should be: a. closer to the condenser, b. closer to the reboiler. a__ (Note: Do minimum number of simulations to answer these questions. Do not optimize.) 3. Which tray gives the largest column diameter with sieve trays when one uses the originally specified feed stage? Aspen Tray #__16______Column Diameter =______2.28____meters [Use the default values for number of passes (1), tray spacing (0.6096 m), minimum downcomer area (0.10), foaming factor (1), and over-design factor (1). Set the fractional approach to flooding at 0.65. Use the “Fair” design method for flooding.] 4. Which components in the original problem are the key components (label light and heavy keys) _____LK = toluene, HK = biphenyl_____________________________________________ 5. Change one specification in the operating conditions (keep N, feed location, feed flow, feed composition, feed pressure, feed temperature or fraction vaporized constant at original conditions) to make benzene the light key and toluene the heavy key. Also increase the reflux ratio to 4.0. What operating parameter did you change (not including the reflux ratio), and what is its new value? D = 40________ Temperature of condenser = _368.9____ K, Temperature of reboiler = 407.7____ K Distillate product mole fractions: _B = 0.9283, T = 0.07173, BiP = 0.8 E-19________ Bottoms product mole fractions: _B = 0.01793, T = 0.79457, BiP = 0.1875_________ 6.G.5. New Problem in 3rd Edition. 1. Temperature of condenser = _121.07___ K. Temperature of reboiler = _166.23___ K Qcondenser = ____-757506.6____cal/sec, Qreboiler = ______1058466.75____cal/sec Distillate product mole fractions:__B = 0.9779, T = 0.22070, pxy = 0.6004 E-05__ Bottoms product mole fractions:___B = 0.0055189, T = 0.55698, pxy = 0.43750___ 2. Was the specified feed stage the optimum feed stage? Yes No x If no, the feed stage should be: a. closer to the condenser, b. closer to the reboiler. a (Note: Do minimum number of simulations to answer these questions. Do not optimize.) 3. Which tray gives the largest column diameter with sieve trays when one uses the originally specified feed stage? Aspen Tray #____24______Column Diameter =______2.28___meters 152 [Use the default values for number of passes (1), tray spacing (0.6096 m), minimum downcomer area (0.10), foaming factor (1), and over-design factor (1). Set the fractional approach to flooding at 0.7. Use the “Fair” design method for flooding.] 4. Which components in the original problem are the key components (label light and heavy keys) ________benzene = LK, toluene = HK______________________ 5. Change one specification in the operating conditions (keep N, feed location, feed flow, feed composition, feed pressure, feed temperature or fraction vaporized constant) to make toluene the light key and p-xylene the heavy key. What operating parameter did you change, and what is its new value?__D=260______ Temperature of condenser = _142.2____ K, Temperature of reboiler = _183.98__ K Distillate product mole fractions: _B = 0.30769, T = 0.68850, Pxy = 0.003805________ Bottoms product mole fractions: __B= 0.3177 E-06, T = 0.007066, Pxy = 0.99293_____ 6.G.6. New Problem in 3rd Edition. Part a. L D 27 . b. L D 60 . c. D = 147, S = 453 (liquid) distillate mole fracs: E = 0.99007, B = 0.00993, P = 0.5 E-9 side stream mole fracs: E = 0.0009845, B = 0.98930, P = 0.000854 bottoms mole fracs: E = 0.7 E-14, B = 0.00043, P = 0.99957 d. distillate : E = 0.89146, B = 0.10854, P = 0.556 E-8 side: E = 0.041845, B = 0.95794, P = 0.000218 bottoms: E = 0.1 E-14, B = 0.0001095, P = 0.99989 Since vapor mole fraction ethane > liquid mole fraction (ethane is LK), have more ethane in vapor side stream. e. The separation of n-pentane and n-butane is much more difficult than between ethane and nbutane. Thus side stream purity is less. Also feed has lot more pentane than ethane, which makes side stream below feed less pure. 6.G.7. New Problem in 3rd edition. 1. Report the following values: Temperature of condenser = _373.28____ K. Temperature of reboiler = ___411.75___ K Qcondenser = _-829828_____cal/sec, Qreboiler = ____1012650_____cal/sec Distillate product mole fractions: M = 0.59998, E = 0.36184, NP = 0.038177, NB = 0.3087E -05 Bottoms product mole fractions: M= 0.2042E-04, E = 0.03816, NP = 0.46182, NB = 0.50000_ 2. Was the specified feed stage the optimum feed stage? Yes No X If no, the feed stage should be: a. closer to the condenser, b. closer to the reboiler. Answer a (Note: Do minimum number of simulations to answer these questions. Do not optimize.) 3. Which tray gives the largest column diameter with sieve trays when one uses the originally specified feed stage? Aspen Tray #_____18_____Column Diameter =___1.77____meters [Use the default values for number of passes (1), tray spacing (0.6096 m), minimum downcomer area (0.10), foaming factor (1), and over-design factor (1). Set the fractional approach to flooding at 0.7. Use the “Fair” design method for flooding.] 4. Which components in the original problem are the key components (label light and heavy keys) ______________LK = ethanol, HK = n-propanol_______________________ 153 5. Change one specification in the operating conditions (keep N, feed location, feed flow, feed composition, feed pressure, feed temperature or fraction vaporized constant) to make methanol the light key and ethanol the heavy key. What operating parameter did you change, and what is its new value?_____D = 60____ Temperature of condenser = __368.66__ K, Temperature of reboiler = _404.23___ K Distillate product mole fractions: M = 0.97858, E = 0.021417, NP = 0.155 E-07, NB = 0.1 E-10_ Bottoms product mole fractions: M = 0.0091787, E = 0.27654, NP = 0.35714, NB = 0.35714__ 154 Chapter 7 New Problems and new solutions are listed as new immediately after the solution number. These new problems are: 7.A1, 7.A4, 7.D2, 7.D10, 7.D11, 7.D14, 7.D21, 7.G1. 7.A1. New problem in 3rd edition. f. none of the above. 7.A.4. New problem in 3rd edition. a. estimate fractional recoveries nonkeys at total reflux. 7.C4. Use yi, j 1 K i x i, j 1 . Then substituting into Eq. (7-20), we have Vmin K i x i, j which is L min x i, j Vmin K i x i, j L min x ij 1 Vmin K i K HK 1 1 L min x ij 1 Dx i,dist where K i 1 Kx i,dist , or L min x i, j L min c Total flow rate L min is L min i 1 L min x ij K HK . Rearranging, i 1 i c Dx i,dist V K i 1 min HK L min 1 i (A) 1 i i Vmin K HK L min Vmin K1 i Dx i,dist Vmin K HK L min 1 Bx i ,bot L min By a similar analysis obtain, Let Dx i,dist (B) 1 i Vmin K L (C) L L min L min Add Eqs. (A) and (B), and use external mass balance, qF L feed L min c From Eqs. (A) and (C) we have L min 7.C5. VF For saturated vapor feed have 1/ i 1 Dx i,dist 1/ Fz i c i (7-33 analogue) i L i i (7-29 analogue) L F . For binary system Eq. (7-33) is, z 1 1 1 i 1 L min 2 1 z2 2 Clearing fractions we obtain 1 2 z 2 z 1 1 2 2 1 After some algebra this z 2 Solutions are, 1 1 0 or For sat’d liq’d VF 1 z 2 2 2 1 z 1 1 2 2 0 z2 0 . Clear fractions and equation is linear. 155 x 1 x n 7.D1. dist x 1 x a. Eq. (7-16), N min n bot .992 .008 .014 .986 10.36 n AB n 2.4 This includes the partial reboiler. Eq. (7-40a) gives, x 1 x n z 1 z N f ,min b. Saturated liquid: Vf dist n B zB T B B zT 0 T , 1.0 2.4 zB zB T 5.97 n 2.4 AB After clearing fractions and solving for .008 .4 .6 feed 0 . Eq. (7-33) becomes T .992 n zT 2.4 .4 1.0 .6 1.53846 Which does lie between the α’s of the keys. To use Eq. (7-29) we need D. From mass balances (Eq. (3-3)). z D Eq (7-29) is: x bot x dist Vmin B x bot .4 .014 F .992 .014 Dx Bdist T Dx Tdist B Vmin L min c. L D Using Eq. 7-42b, 1.1 L D N 3.9468 kg moles/hr . T 2.4 3.9468 .992 2.4 1.53846 Vmin D 6.9013 . min 10 1.9234 , x 1.0 3.9468 .008 1 1.53846 L D min 1.75 L D L D min L D 1 10.848 0.0598 N min 0.5563 N 1 .5563 N min Solving for N, N 24.6 (includes reboiler) 1 .5563 N F,min 5.97 From Eq. (7-40b), N F N 24.6 14.2 N min 10.36 Try stage 14 from top for feed stage. 7.D.2. New problem in 3rd edition. p 5 atm, z C2 Saturated liquid and for bp. Calc., z i 0.08, z C3 x i . Want Pick C 3 as reference (this is arbitrary). 5 atm 1st Guess: Want K C3 1 (light key), K C4 yi 101.3 0.33, z C4 0.49, z C5 0.10 1.0 . kPa 506.5 kPa atm 1 (heavy key). Use DePriester Chart. 156 20 C , K C2 Try T yi 1.7 , K C4 5.4 , K C3 5.4 0.8 1.7 0.33 0.47 , K C5 0.47 0.49 0.14 0.10 0.432 0.561 0.230 0.014 1.237 K C3 20 1.7 Need lower T. K C3 Tnew 1.237 Kixi Tnew 12 , K C2 yi n N MIN b) C2 C4 0.35, K C5 C4 HK be reference. 0.10 1.37 0.35 C3C4 3.914 0.997 0.998 0.003 0.002 12.01874 n 3.914 i 0 C4 C4 1.0, 3.914 0.33 13.14 i 3.914 Solve for φ. Find φ = 1.74 (Note i VMIN 0.1 0.35 C5 C4 0.286 VMIN . In Eq (7-33) divide through by F. 13.14 0.08 zi 8.808 (includes PR). 1.36456 4.6 0.35 13.143, Sat’d liquid feed VMIN Eq (7-29) 1.37 0.368 0.4521 0.175 0.0 1.0016 For remainder, let a) 4.6, K C4 0.14 Dx i,dist 1.0 0.49 1.0 3.914 LK HK 0.10 0.286 0.286 HK HK ) . Assume all C 2 in distillate & all C 5 in bottoms i Dx i,C2 Dx i Dx i 80, Dx i,C5 C3 C4 0 0.997 1000 0.33 1 0.998 1000 0.49 D VMIN c) 13.14 80 329.01 3.914 13.14 1.74 L MIN VMIN L MIN Eq (7-42b) N N Dx i,d 0.98 409.99 0.98 1.0 0 683.23 kmole h 3.914 1.74 1.0 1.74 D 273.24; L D MIN 0.6664 1.15 L D Ordinate Gilliland 329.01 MIN 0.7664 0.7664 0.6664 1.7664 N MIN 0.05662 0.545827 0.591422 0.05662 N 1 0.5608 8.808 1 0.5608 0.002743 0.05662 0.56079 21.33 (include PR) 157 Dx LK Dx HK n N F,MIN Eq. (7-40b) n N F,min NF N min N 1 N min AB x 1 x n 7.D4. x 1 x N min a.) dist bot log xA xB n n3.914 .552 NF xA xB d xA xB d xA xB bot bot .01773 0.98227 y L D L D min 13 .36 .64 1.287 y* 10.02 0.9915 y* 0.9915 0.6 x 1 1 x (L/V) min = 0.534, c.) Abscissa = .545 .455 .9915 .0085 (L/V)min = * z = .6 bot AB 1 N min n AB n 2.4 b.) Feed is saturated liquid, feed line is vertical. y* xA xB d log xA xB 4.552 21.33 11 (approximate) 8.808 7.D3. At total reflux use Fenske Eq. (7-11). N min AB 329.01 0.98 0.33 0.49 n LK HK log Rearrange, log dist z LK z HK 0.7826 x z 0.6 L D L V min 1 L V 1.144 min 2.2286 1.144 0.336 L D 1 3.2286 From Eq. (7-42b) N N min 0.002743 0.545827 0.591422 0.336 0.3553 ordinate N 1 0.336 N min ordinate 10.022 0.3553 N 16.1 1 ordinate 1 0.3553 10.022 0.3474 From fitted curve ordinate = 0.3474, N 16.2 1 .3474 Error = 25-16 25 36% low. Aspen Plus equilibrium data is not α = 2.4. Note that α = 2.24 may be a better fit. 158 log 7.D5. Fenske Eq. is: N min xD 1 xD xB 1 xB log 30, 7.D6. N min 1.30 and x D xD 1 xD log Fenske Eq.: N min xD 1 xD 0.984, this is x B xB 1 xB log 2.4 .4 x 1 1 x xD L V xD min Then, x .01 .99 .993 .616 z .993 .4 1.15 1.746 0.636 , 0.4 . L D L V 1 L V min 1.746 . min 2.01 act L D Gilliland Correlation: Abscissa L D 2.01 1.746 min L D 1 3.01 N N min N 10.82 Ordinate 0.557 N 1 N 1 Clear fractions, and find N = 25.3 (including partial reboiler). 7.D7. p 5 atm. From the solution to problem 6.D9: Tbp K C2 Let C 4 4.6, K C3 1.37, K C4 HK reference. z i i Eq. 7-33, 0 i Want LK HK 0.35, K C5 0.10 0.02 0.008 8.7121 1.36456 4.6 0.35 13.143, C2-C4 0.10 0.35 C4 C4 6.38 1.0 0.286 Vmin 13.14 0.08 13.14 3.914 .0878 12 C n 3.914 C5 C4 Sat’d/liquid feed, Vmin 3.01 3.914 0.35 0.98 0.992 C3 C 4 a) Eq. (7-15), Including PR N min C4 .264 1.37 HK be reference. n b) 10.82 2.4 .616 1.4 .4 y* L D 1 0.229 .993 .007 log log Determine y in equilibrium with feed z y* xB 1 xB xD 1 xD Solving for x B , we obtain: x B Since N min xD 1 xD N min or 3.914 0.33 3.914 1.0 HK HK 1.0 .49 1.0 . Converge to 0.10 0.286 0.286 = 1.74. 159 Dx i C2 Dx i C4 Fzi 0.98 1000 0.33 C3 .008 1000 0.49 13.14 80 Eq. (7-29), Vmin 80, Dx i 323.4 3.914 3.92, Dx i C5 323.4 0 3.92 1.0 0 671.05 13.14 1.74 3.914 1.74 1.0 1.74 D Dx i,d 407.32, Lmin Vmin D 263.73, L D min c) L D 1.2 L D N Eq. (7-42b), N min 0.002743 0.545827 0.591422 0.073 0.073 0.073 0.5402 15.05, incl. PR. Nfeed ~ 9 1 0.5402 a. Can do this graphically, or can calculate slope of a line from y x x D .992 to intersection of feed line and equilibrium, or use Underwood. Easiest to calculate slope. Feed line y z F .4 . Equilibrium: x y y V c. min N min .992 .3755 1.2 Ordinate 22.83 N L .958 , xB 1 xB D L V min L D 27.4 , Abscissa L D 22.83 1 L V .992 .005 .008 .995 n 1.11 n This is 95.9 stages plus partial reboiler. L D .3755 .4 1.11 .6 .992 .4 xD 1 xD n b. .4 1 y L min L D 1 96.9 27.4 22.83 27.4 1 .161 N min or N 181.9 which includes partial reboiler. N 1 This separation would probably not be done by distillation. LF Fz Feed 80% liquid, L F .8F, , Slope VF .2F. Feed line: y x VF VF 7.D9. a. 0.777 0.647 1.777 N 1 0.5402 6.38 N 7.D8. 0.777 . Ordinate Gilliland min 0.647 See Graph. .47 L V L D b. c. N min 6 L D L Min top op line is tangent. 3 4 min 1 min L V min V slope min 0.5175 1 .5175 .8 0.386 0.8 0 8 2 4 0.5175 1.0725 eq. contacts. See graph. 1.05 1.0725 1.1262 . Abscissa, Gilliland Correlation is actual 160 L D L D min 1.1262 1.0725 0.053666 2.1262 2.1262 L D 1 Ordinate ~ 0.63 from graph. From eq. (7-42b), Ordinate 0.02524 0.545827 0.591422 0.02524 (agrees with graph). N min ordinate 6.75 0.6396 Then N 20.5 1 ordinate 1 0.6396 Need 20 eqs. contacts + P.R. N F,min 6 20.5 18 N F,min from graph = 6. N F N N min 6.75 0.002743 0.02524 0.6396 (7-40b) 7.D10. a) New problem in 3rd edition. Eq. (7-15) n N MIN FR E ,dist FR B,bot 1 FR E ,dist 1 FR B,bot n EB 161 0.989 0.998 n EB b) N MIN 0.011 0.002 N MIN 13.14 n 13.14 4.159 is known.. PB 2.5756 N MIN Dx D 4.159 FR B,bot N MIN 1 FR B,bot c) 4.159 3.91. PB Eq. (7-17) FR P ,dist 10.7114 PB 3.91 0.998 3.91 0.002 4.159 0.3677 FR i,dist Fzi i Ethane Dx DE 0.989 100 0.3 29.67 Propane Dx DP 0.3677 100 0.33 12.134 n-butane Dx DB 0.002 100 0.37 3 D i 1 0.074 Dx i,d 41.878 kmol h Also accept D = 0 since total reflux. 7.D.11. New problem in 3rd edition. D 200 zn 0.35 z iP 0.4 z NP 2 V1 0.25 1 B Use Underwood Eqns. – Case A Assume LNK (propane) is all in distillate. b) Vfeed F 1 q Eq. (7-33). F 1 F since q i F zi Dx p,dist Fz p 20 0 where φ is between α’s of two keys (B and H) i 1.0 > φ > 0.2. Equation is, 2.04 0.2 1.0 .35 1.0 2.04 1.0 Solving for φ obtain φ = 0.62185. 0.20 0.45 0.20 162 Then Vmin Dx B,dist Dx i,dist . Find D from fractional recoveries. 0.99 100 .35 34.65 Dx p,dist 20 Dx H ,dist 1 0.98 100 .45 0.9 D VMIN L min 7.D12. 2.04 20 55.55 1.0 34.65 0.2 0.9 2.04 0.62188 1.0 0.62188 0.2 0.62188 VMIN D 64.4314 and L D min 1.1599 A = benzene (LK), AB 2.25, FR A,dist B = toluene (HK), BB 1.0, FR B,bot C = cumene (HNK), CB 0.210 0.98 0.99 n a. Use Fenske eqn. at total reflux. N min FR A ,dist 1 FR B,bot 1 FR A ,dist FR B,bot n 0.98 0.02 n N min 0.01 0.99 AC FR A ,dist N min where AB 2.25 CB 0.21 AC AC 1 FR A ,dist AB 10.47 n 2.25 N min FR C,bot 119.98 10.71 10.47 10.71 FR C,bot 0.98 10.47 10.71 0.02 (We can also substitute into Eq. (7-17)). N min AC FR C,dist FR B,bot 0, 100 Find Vfeed 0.21 N min CB 1 FR B,bot b. Underwood equations – Case B analysis Feed is sat. vapor. q 1 . All cumene goes to bottoms. F 1 q .99 .01 F 100 , 10.47 0.21 Vfeed 2.25 40 1.0 30 0.21 30 2.25 1.0 0.21 8.1 10 10.47 C i 1 i 12 0 Fz1 1 1.6516. 163 C Vmin Dx A,dist 100 0.4 0.98 i 1 From mass balance, L min 100 0.3 0.01 1.0 39.2 2.25 1.6516 1 1.6516 1.25 2.71 min ordinate = 0.46. With N min L D xA xB Underwood: Vf V V Dx B,d Dx T,d Vmin L min dist D 39.6 min 2.71 feed AB n 2.25 N feed N gives N feed 1 .9899 0.0101 5.30. 10.25. Use stage 10 or 11. .99 .02 99 , FR C 1 FR C 0.0204 .01 .98 log 99 0.0204 log 4851 5.438 log TC log 1 0.21 2.5 .25 0, 0 1.526 or 0.3374. Use zA zB 0.9899, xB 39.6 0.9899 0.4 n 0.0101 0.3 min N min 107.2 0.155 . From Figure 7-3 the min 39.2 min 1 FR T L D n min N min Use Fenske eq. FR T L min x A ,dist 7.D13. 39.6 3.39 L D 1 n N feed 0, D 10.47, we find N = 20.24. To find N feed , we need N feed N feed i,dist 0 146.78 D 146.78 39.6 107.2 , abscissa for Gilliland correlation N feed Fz1 FR 0.4, Dx C,dist 2.25 39.2 Vmin L D 1.25 L D where Dx i,dist 1 39.2, Dx B,dist Vmin c. Dx i,dist i 2.5 1.0 .30 1.0 0.21 45 21 0.3374 as it is between keys. Vmin Fz B 3 i 1 1 Dx i,d 1 25 (assume all benzene in dist.) .99 Fz T 2.5 25 29.7, Dx c,d 1.0 29.7 0.02 Fz c 0.9, D .21 9 2.5 0.3374 1.0 0.3374 0.21 0.3374 V D 16.64 and L D min 0.2993 55.6 72.24 164 N Gilliland: Ordinate N min 9 5.438 0.3562 N 1 10 Abscissa ~ .29 (original Gilliland) or .36 (Liddle) L L L If use 0.29 have, 0.29 0.29 D D min D If use Abscissa = 0.36, L .29 0.2993 D L 1 .29 .36 .2993 D .83 1.03 which are quite different. Safer to use 1 .36 higher value. If 2.25, N min is same. Underwood Eq. gives BT Vmin 72.68 , L min 29.40 44.78 1.492 Which is 2.7% different than for BT 1.4666 or 0.3367. Use 0.3367. V D 17.084 and L D min 0.3073 2.5. 7.D14. New problem in 3rd edition. Use Gilliland correlation to find the value of the minimum reflux ratio, (L/D)min = 1.4 FR B,dist FR C,bot n 7-D15. 1 FR B,dist Fenske: Eq. (7-15), N min Dx d ,tol N F,min 1 .21 0.8238 167 Dx d ,benz 0.9992 397 Dx d ,cum 0.0001 436 x LK x HK dist n LK-HK .0008 .0001 2.25 n .21 6.89 .21 6.89 1 .21 .9999 .0001 .9992 .9999 1 TC N min TC 1 FR C ,bot FR tol,dist BC where FR C ,bot n 1 FR C,bot n N min TC Eq. (7-17), FR T ,dist n z LK z HK 0.8238, and FR tol,bot 6.89 x dist 137.57 396.68 0.2568 0.7418 .0436 D n 0.1762 534.294 0.0008 .7418 .397 .000815 .0436 n 2.25 .21 1.94 . Underwood: Use a Case C analysis since toluene is a sandwich key. 3 2.25 397 1.0 167 .21 436 1Fz1 Eq. (7-33): 0 VF is, 0 i 1 2.25 1.00 .21 1 1.216 and 0.3373 which lie between α’s. 165 Eq. (7-29): Vmin 3 Dx i,dist i 1 Write for For i 2.25 396.88 becomes Vmin 1.0 Dx tol 2.25 i .21 0.436 1.0 .21 1.216 and for 0.3373. Obtain 2 eqns and 2 unknowns: Vmin and Dx tol,dist . 1.216 , Vmin .3373, Vmin 863.525 4.629 Dx tol . For 466.15 1.509 Dx tol . Solving simultaneously, Vmin 563.84, Dx tol 64.740 D Dx i,d 396.88 64.74 .436 L min Vmin D 101.79 and L D L D L D min 462.056 min 0.2203 1.2 .2203 0.445 L D 1 2.2 N N min Ord. .245 (Original Gilliland) N 1 Obtain N = 9.45 (includes reboiler) N F,min 2.91 N 9.45 2.66 (Use stage 3) Estimate N F N min 6.89 Gilliland Abscissa n 7.D16. a. Fenske: N min b. Underwood: x x 1 x dist EP Vfeed 2.1 .6 1.0 4 2.1 1.0 To find D: D 1 x bot n Fz E z xD 1.0 F z p 1.0 EP 1 .99 .992 .01 .008 n 2.1 n , 0 or xB F xB , zE .6, z P 1.44 . Use .6 .008 .99 .008 1000 1.0 .008 D 2.1 1.44 1.00 1.44 c. Use Gilliland: Ordinate N N min Sounds harder than it is: 0 f Vmin L D 1285.3, D 2.13 min .30 12.69 VF F F 3.132 0.558 N 1 31 L D L D min Abscissa ~ 0.8 (Original Gilliland), L D L D 1 7.D17. V V 602.85 . Then 2.1 .99 1888.12, L min Vfeed 1.44 which is between 1.0 and 2.1 Vmin Vmin .4, 12.69 i zi , tol-xy 3.03, - xy xy 2.4 1 i 166 Expand & Solve for , 0 tol z tol xy tol xy Result is linear, xy tol tol z tol tol xy z xy i Vmin Then z xy Dx i,dist z D , 3.03 3.03 .1 0.3 .9 3.03 3.03 .3 0.5 .7 3.03 3.03 .5 .7 .5 3.03 3.03 .7 .3 .9 3.03 .996 3.03 3.03 3.03 .9 .1 3.03 2.51870 1 2.51870 3.03 .996 .004 3.03 1.88316 1 1.88316 D .004 3.03 1.503722 1 1.50372 3.03 .996 .004 3.03 1.25155 1 1.25155 90.2834 1.071806 54.93685 3.03 .996 70.0405 1.25155 Vmin L min .004 49.7976 1.503722 , L min 1 3.03 .996 29.5547 1.88316 0.988 Vmin 9.3117 2.51870 xB 1 xy z .008 F 1.0 .004 D z tol 0.1 D xB xD i Vmin sin ce 1 z tol tol z tol 77.6383 D D 3.03 .996 .004 3.03 1.071808 1 1.071808 98.0683 117.739 D 129.08 100 D L 45.625 D min 4.8997 48.0836 1.6269 48.2707 0.96934 47.6985 0.68101 38.7990 0.429 Check for z = 0.5. Slope xD L V xD L y* V y y* .5 = z min y* x D .5 min where xF 1 1 xF 0.75186 0.996 0.75186 x As z 0.996 0.5 L L L V .4922 D V L 1 L V 1 4922 min , although L D min , Vmin , thus Qc Q R,min min Vmin 0.4922 0.96934 Perfect as expected. also. 167 FR A ,dist FR B,bot n 1 FR A ,dist Fenske: Eq. (7-15): N min 7.D18.a. n Where A = propane, B = butane, 1 FR B,bot AB 1/ .49 AB 2.04 . (Note value α.) .9854 .8791 n .0146 .1209 N min 8.7 n 2.04 For N F,min assume no LNK is bot and no HNK in distillate D = .229 + (.9854) (.368) + (.1209) (.322) = .631 .9854 .368 .1209 .322 x prop 0.575, x C4 .631 .631 x C3 x C4 n N F,min z C3 zC4 dist n .575 .0617 n F .368 .322 2.94 0.713 C3-C4 Underwood Eqns. (Case A.) 0 0.0617 1 Vfeed Fz1 for 1.0 .49 1 0 9.92 .229 f 9.92 L min 1.0 9.92 .229 0.6213 , Vmin Find 1.0 .368 N .081 0.10 .49 1.0 .363 .10 .49 .0389 9.92 .6213 1.0 .6213 .49 .6213 D 1.057 .631 .426, L D min 0.676 Vmin Gilliland Correlation (Fig.7-3): abscissa Ordinate .49 322 L / D (L / D) min L/D 1 1.057 0.33 N min .32 (Original Gilliland, ~.36 Liddle). Find N = 13.24 (14.13 Liddle) N 1 b. With N = 20, ordinate to Gilliland correlation is, N N min 20 8.7 0.538 N 1 21 Abscissa = 0.1. Since L D min 0.676, solve for L/D = 0.862. c. FR C 6 N min C6 C3 FR C 3 dist 1 where FR C 6 FR C 3 C6 C3 0.10 dist 0.0156 1 0.0156 N min C6C3 bot bot 0.10, FR C3bot 1 FR C3dist 0.0156, and N min 8.7. 8.7 0.10 8.7 0.00000013 , FR C6 bot 0.99999987 168 For all practical purposes all C6 in bottoms at total reflux. d. FR C3dist 0.999, L / D 1.5, FR B,bot n N min 1) 2) 0.8791 FR C3dist FR C 4 bot 1 FR C3dist n .999 .8791 n 1 FR C 4bot .001 .1209 12.47 0.713 C3C 4 For D assume all LNK in dist, No HNK in dist D = 0.299 + (0.999) (0.368) + (0.1209) (0.322) = 0.6356 f Now 0 9.92 .229 1.0 .368 9.92 .49 .332 1 .081 .1 .49 .1 Which is same [φ depends only on feed & α’s]. Thus, same φ = 0.6213 Vmin L min 7.D19. 9.92 0.229 1.0 0.368 0.49 4689 ?? 9.92 .6213 1 .6213 .49 .6213 1.0709 0.6356 Use Figure 7-3. Ordinate L D N 0.4345 N min 25 11 N 1 L D L D min 1.0709 0.6848. Very little change. 0.5385 26 0.08 with L D 2.2286 . L D L D 1 Abscissa approximated between original & fitted curves. Then Abscissa 7.D20. a) Distillate Dx Bdist x dist Find Fz B min 5, Dx Tdist 1.0 becomes Fz T 5 15 D D min 1.97 15 , 0.57895 0.07018 1.0 D = 57.001 kmoles/hr, B = 100 – D = 42.999 n b) Can use Fenske eq. (7-11) or alternatives. N min AB xylene cumene Xylene balance, Fz x x,bot 35 xA xB dist xA xB bot n AB A xylene B cumene K xy K xy K tol xy 0.330 K cum K cum K tol cum 0.210 57.00 0.57895 0.0465, x cum,bot 1 .0465 1.57143 42.999 x x,bot 0.9535 169 n N min 0.57895 0.07018 0.04650 0.9534 11.35 n 1.57143 This is # equil contacts at total reflux. Dx x ,dist 57.001 0.57895 c) Alternative: FR xy,dist Fz x 35 1 FR C,bot Dx C,dist 57.001 0.07018 Fz C 45 n Use Eq. 7-15. N min 0.088896 , FR cum,bot 0.91110 FR B,bot 1 FR A dist n n N min FR A dist 0.94288 1 FR B,bot AB , A xylene B cumene 0.94288 0.91110 0.057122 0.088896 n 1.57143 11.35 7.D21. New problem in 3rd edition. Assume all ethanol in distillate and all n-butanol in bottoms. Dx E ,dist Dx i Fz E 100 .3 30 Fz ip Frac Rec iP dist P,dist Dx n P,dist Fz nP Dx n B,dist 0 100 .25 .986 1 Frac Rec nP dist 24.65 100 .35 .008 0.28 0 D Dx i,dist 54.93 xE,dist = xE,dist/D = 0.5461, xi-P,dist = xi-P,dist/D = 0.4488, xn-P,dist = xn-P,dist/D = 0.0051 Bx E ,bot Bx i P,bot 0 0 Fz iP 1-Frac Rec iP dist 100 .25 .014 0.35 100 .35 0.992 34.72 Bx n P,bot Fz nP Frac Rec nP bot Bx n B,bot Fz n B 100 0.10 10.0 B = 45.07 x i,bot Bx i,bot B xi-P,bot = Bxi-P,bot /B = 0.0108, xn-P,bot = Bxn-P,bot /B = 0.7704, xn-B,bot = Bxn-B,bot /B = 0.2188 170 FR ip,dist FR nP ,bot n b. Fenske eq. (7-15) 1 FR iP ,dist N Min n N min n iP nP .986 .992 .014 0.008 n 1.86 This includes PR x iP x nP n N F,MIN Eq. 7 40a , N F,MIN c. 1 FR nP ,bot n 8733 9.0748 0.62058 0.62058 z iP z nP dist n 14.62 0.4488 0.25 0.0051 0.35 0.62058 n iP-NP 7.76 Underwood Equation: Assume NKs do NOT distribute: Case A. i Fz i Eq. (7-33) Vfeed i Vfeed For saturated vapor z i i F divide (7-33) by F. 1 , which becomes i E nP 1 zE iP nP ENP 1 z iP nP NP iP NP 3.58 0.3 z NP NB NP NP NP 1.86 0.25 z NB NB NP 1 0.35 0.412 0.10 3.58 1.86 1 0.412 Solve for φ between α values of keys. LK = i-propanol, HK=n-propanol. 1.0 1.86 . From Goal Seek on spreadsheet 1.48648 i Then from Eq. (7-29) Vmin Dx i,dist where Dx i,dist Thus, want values from part a. i VMIN L MIN d. L D 1.1 VMIN 3.58 30 1.86 24.65 1.0 0.28 0 173.47 3.58 1.48648 1.86 1.48648 1.0 1.48648 D 173.47 54.93 118.54 , L D MIN 118.54 54.93 2.16 L D Min Gilliland abscissa, x or L D L D 1 MIN L D 1 x L D L D MIN L D L D MIN L D MIN L D 1 1 L D 1 1 L D MIN 1 1.1 1 1 1.1 L D MIN 1.1 1 1 1.1 2.16 1 0.0683 171 N From Eq. 7-42b, Assuming 7.F2 N MIN 0.5456 N 1 N 1 0.5456 0.5456 N MIN NF N F,MIN N N MIN NF 7.76 33.4 33.4 N includes PR 17.7 or Stage 18 below total condenser. 14.62 Equilibrium data is available in a variety of sources such as Perry’s Handbook. Data used here is from Perry’s (3rd ed.), p. 574. a) Need to obtain avg. α from equilibrium data. yN2 1 x N2 0.1397 0.9615 x 0.0385, y 0.1397, 4.055 1 y N2 x N2 0.8603 0.0385 x N2 0.4783, y x N2 .9190, y N2 n Fenske N min xD .9770, 4.01 3.744 avg top&bot b) 0.7893 (needed for part b) x 1 x x 1 x n 1/ 2 dist = .9770 .0810 .0230 .9191 3.744 3.875 n bot .998 .002 .001 .999 n 3.875 AB 9.685 z where x* is in equilibrium with feed y z 0.79 xD x * From equilibrium data x* ~ 0.48. L V min L 0.40 .998 .79 0.66667 L V min 0.40 , D min 1 L V min 1 0.40 .998 .48 L V min L / D 1.1 c) L/D Gilliland Correlation: abscissa Original correlation, ordinate N 0.7333 min L D L D 1 L D min 0.06666 1.7333 0.0385 N min 0.6 N = 25.7 including PR. Need 25 equil. Stages N 1 7.G.1. New problem in 3rd edition. a. At total reflux N MIN 9 b. L D MIN 0.92 172 Chapter 8 New Problems and new solutions are listed as new immediately after the solution number. These new problems are: 8.A1, 8.A2, 8A7, 8A12, 8.D1, 8D6, 8D12, 8.D13, 8D15, 8D17, 8D20, 8.D22, 8D23 to 8.D25, 8.E1, 8G1-8G5, 8.H3. 8.A1. New Problem in 3rd edition. a. 2-pressure distillation 8.A2. New Problem in 3rd edition. b. extractive distillation 8.A7. New Problem in 3rd edition. If there are volatile and non-volatile organics, a single equilibrium contact gives an organic layer that contains no non-volatiles. Extra stages do not increase the separation. If there is entrainment, a second stage may be useful. 8A.12. New Problem in 3rd edition. Steam distillation is normally operated with 2 liquid phases in the still pot and in the settler after the condenser. There is usually no reflux. Azeotropic distillation is normally operated with one liquid phase in the column and in the reboiler, but with 2 liquid phases in the condenser and settler. One of the liquid phases is refluxed to the azeotropic column. 8.C2. y org x org org w in water p org x org in w yw x w At solubility pt. x w in w pw x w in w .975 and x org in w H org x org x org H org VP VP w xw xw .025, x org in org Vapor pressures (Perry & Green, 1984). N-butanol: T = 70.1°C 84.3°C l00.8°C VP = 100 mm Hg 200 400 VP w org VP w x org x org in org in w .573 117.5°C 760 mm Hg Water: T = 100.8°C, VP = 782 mm Hg, T = 84.3, VP ~ 421.8 mm Hg VPorg VPorg 400 200 at 84.3°C: 0.474 , at 100.8: 0.5115 VPw 421.8 VPw 782 For org w use average between 92 and 100°C. Can linearly interpolate at T = 96°C, VPorg / VPw 0.501 , w org in w From y w w o 1 org w in w 1 xw w o org w in w 0.501 .573 .025 11.483 1 11.483 0.0871x w 1 xw 1 0.9129x w generate equilibrium curve, xw 1.0 .995 yw 1.0 .9495 0.8961 .990 At constant x w , the calculated y w 0.0871 .985 .980 0.8512 0.8102 .975 0.7726 y w ,exp eri min tal . Difference at x B approximately .7726 .752 .752 100 0.975 is 2.74% . These equations work better for mixtures which are more completely immiscible. 173 8.D1. New Problem in 3rd edition. Top Op. Eq., y L V x 1 L V xD, xD L L D 4 V 1 L D 5 xB 0.11 (from diagram). Need 2 equil. Stages. .8 , y intercept x 0 1 L V xD .975 .2 .975 .195 Graph for problem 8.D1. 8.D2. The columns are sketched in the Solution to Problem 8-C2. B1 is butanol phase and B 2 is water product. Two equilibrium diagrams are shown. a. F B1 B2 , Fz B1x B 1 B2 x B2 174 B1 b. z x B2 x B1 .28 .995 x B2 L Col. 1. Bottom Op: y V Feed: 70% Liquid, q = .7, Top y L V x V L x V 1 q 7 .3 0.995 .436 0.995 0 min 0 1256.55 1 x B1 , Intersects y .7 q 1 F B1 3 x x B1 0.04 . . Intersects y = x = z = .28. x B2 V L y intercept x Note that reflux is x 0 L 1 From Figure 8-D2a: 3743.45 , B2 .04 .995 1 L x B2 V 0.562 , L V 1.23 .562 0.69 0.307 0.573 . Optimum feed stage = 3. Need about 3 stages + partial reboiler. L Stripper (Column 2): y L V V V 2 B V L x2 V 2 V B 1 2 V B 2 1 x B2 1.132 .132 8.57 Construction is shown in Figure 8-D2b. Need 1 2/3 eq. contacts or P.R. + 2/3 equil. stage. 175 8.D3. a) y = 0.4, x = 0.09 from graph. B) V/F = 0.3 L 20 = Fz = Vy + Lx 20 = 0.4 V + 0.09 (100 – V) V 11 .31 35.48 kg moles / h L = 64.52 kg moles/h F zw x w 100 0.99 0.999 yw xw 1 V/F .7 7 V V V/F .3 3 L F 7 .99 y x z x V V 3 0.3 See Enlarged figure [Be careful with scales] y w 0.969, x w 0.999 100 = F = V + L V F V 0.969 0.999 Use Table 8-2 to find = 30 V, Tdrum @ y w kg moles/hr hr 0.40, x w 0.09 , L = 70 and Tdrum ~ 108 C 176 8.D4. Compositions x 100 0.975 [Shown on Figure 8-D3a] L and 88 = Fz = L x L F z x L x 100 .88 0.573 = 76.37 kmoles/hr, L 23.63 kmoles/hr x x .975 0.573 a) Water conc. W is 0.975. 200 = F = W + B W = 200 – B Water balance: (200) (.8) = Fz = W(0.975) + B (0.04) Solve: B = 37.433 kmol/hr, W = 162.567 kmol/hr V B V B 1 5 L L b) L V , Bot. Op. Eq. y x 1 xB . V V B 4 V V L 8.D5. F 0.573 , x Goes through y x xB 177 Plot operating line: If y = 1, x 1 0.25 .04 1.25 PR + 2 stages mores than sufficient. (see graph) 0.75 0.04 c) L V Slope 1.332 min 0.573 0.04 V 1 1 L V 3.012 min L V L V 1 0.332 0.808 178 8.D6. New Problem in 3rd Edition. F D, x dist Reflux L V B, x bot 8.D.6 Part a) F D F .65 D b) B .975D .02B z F V xB xD xB 100 .65 .02 V B B 136.124, Reflux L L V V 170.155. Or V F D L 136.124 100 65.969 170.155 L V B V B 1 4 1 1.25 V V V B 4 c) L y Goes through V y L x x V 1 xB xB Calculate arbitrary point at x .6 y 1.25 .6 .25 .02 See Figure: Need 2 stages + PR d) 65.969 .975 .02 What is V B MIN ? V B .745 V MIN L V 1 L V MAX 1 3.0894 On graph. 179 180 8.D7. y W x W in organic yA y A x A in organic x A in organic W A in organic 0.9636 0.372 W A in organic 8.D8. 0.0364, y W 1 0.0364 0.628, x W in organic =1-0.628=0.372 44.69 0.0364 0.628 Convert wt frac to mole frac. MW C8 H14 O 72 14 16 102 and MW water Basis 1000 kg 0.994 wt frac. ether: 988 kg W = 54.889 kg moles 12 kg E = 0.118 kg moles x W in organic .998 y = 0.959 ether: 41 kg W = 2.278 kg moles 959 kg E = 9.402 kg moles y W 0.155 y W x W in org W - E in org .195 .033 yE x E z(wt) = 0.004 water: V min 1 1 y equil w feed xD min L V 7.026 7.026 0.022 1 x L V L D 1 min .805 .967 4 kg W = 0.222 kg moles 996 kg E = 9.765 kg moles z W 0.022 x xD L 18 6 kg W = .333 kg moles 994 kg E = 9.745 Total = 10.078 x W in organic 0.033 0.012 wt frac. ether: y in equil w feed 0.9636 z 0.138 6.026 0.022 .998 .138 .998 .022 7.467; min Generate following equilibrium data using L D 0.882 11.20; act w E in org L V 0.918 act 7.026 : xW 0 0.01 .022 .033 yW 0 0.066 0.137 0.195 181 Top Op. line: y L x V Where L/V = 0.918, x D Bottom: From y x 1 L xD V .998 , and y = intercept = (1 - .918) (.998) = 0.082 x B to intersection of feed line and top operating line. xB Obtain x B 0.0004 wt frac.: 0.4 kg W = 0.022 kg moles 999.6 kg E = 9.800 kg mole 0.0023 See plot in Figure: Optimum feed is top stage. Need 4 8.D9. Convert to Mole fractions: MW C6 H14 O 72 14 16 102; MWwater 3 5 equil. Contacts. 18 Basis for all conversions is1000 kg soln. Top Layer Separator = 0.994 wt frac. ether 6 kg W = 0.333 kmole 994 kg ether = 9.745 kmol Total = 10.078 kmol 0.333 Mole frac. x w in org 0.033 10.078 182 xD 0.998 0.033 Bottom Layer separator is 988 kg W = 54.889 kmol = 0.012 wt frac. ether 12 kg E = 0.118 kmol Mole frac. x W in org z = 0.02 0.998 xD 41 kg W = 2.278 kmol Vapor into Condenser is 959 kg E = 9.402 kmol yazeotrope = 0.959 wt frac. ether Mole frac. y W y W x W in org W E in organ phase Feed is y W 0.195 0.195 0.033 y E x E in org 1 .195 7.026 1 0.033 0.02 mole frac water = z. In equil. With feed: in org y x *f L V L D xD min act xD 0.02 1 y z x 0.998 0.02 * f 0.988 0.002896 2 L D min 114.36 , L V Plot on graph, and plot top op. line: x 0, y 0.00868. x 0.04, y 0 0 0.9913 .04 L V L 0.9828 , D min L D act 1 0.01 0.066 0.00868 x x 1 L V 57.18 , 0.9913 L D Top Op. y L V x 1 L / V x D,W through y When x = 0, y = 0.00868 7.026x Eq. Data. y . Generate curve, 1 6.026x x y 0.002896 7.026 6.026 0.02 x D,W 0.022 0.137 0.998 . 0.033 0.195 0.04833 0.03, y .9913 0.03 0.00868 x W ,bot is at intersection y = z = 0.0208 top op. line, x W,bot 0.0123 Step off stages from top down. 1 equil stage is sufficient. But with this very high reflux rate consider alternatives. 183 8.D10. a. VP C10 x C10 VP W xW 760 Assume the water layer is pure, x W 1.0. Try 95.5°C, VPC10 60, VPW 645.7. (.99) (60) = 645.7 = 705.1. Too low. Try higher temperature. The attached plot of VP vs. T allows estimation of vapor pressure. (Note: a plot of log (VP) vs 1/T will be easier to interpolate and extrapolate.) 97.0°C: VPC10 63, VPW 682.07 , (.99) (63) + 682.07 = 744.4 97.5°C: VPC10 T = 97.6 gives VPW 65, VPW 694.57 , (.99) (65) + 694.57 = 758.9 697.1 which will be too high. Thus T = 97.5°C is close enough. 184 b. nw n org p tot VPorg x org VPorg x org 760 65 .99 10.81 65 .99 This is significantly less than in Example 8-2 where 296.8/4.12 = 72.04 mol decane are used. Difference is due to higher n-decane concentration in liquid. 8-D11. x F,org 0.9, 95% recovery → 5% left. Octanol left = 0.05 (.9) (1.0) = 0.045 kmol/h Nonvolatiles in bottoms = 0.10 kmol/h octanol water x oc tan ol in org xF 0.045 1.10 0.045 0.3103 W steam 185 a) Water VP can be fit to log10 VP T = 95.5 log 0 645.67 T = 100 log10 760 B A A A 273.16 T B over short ranges T. T in C, VP is mmHg. 273.16 95.5 B 2.8808 273.16 100 2.8100 A B 368.66 (1) A B 373.16 (2) To solve for A and B, subtract 1 from 2 B B B = 2164.42 0.07080 0.00003271B 368.66 373.16 B A 2.8808 8.68105 373.16 Now find T for which p tot VPW x W VPO x O 760 mm Hg where x W 1.0, x O 0.3103 On Spread Sheet find T = 99.782°C VP O x O 19.075 b) y O 0.025098 0.3103 0.007788 p tot 760 754.072 yW x 1.0 0.99220 760 a) Moles octanol = F z O .95 1.0 0.90 0.95 0.855 kmol/h b) Moles water nW Check Eq. (8-18): n W n org yW y org 0.855 19.075 0.3103 8.D12. New Problem in 3rd edition. All cases a) D2 40 1.0 .65 .65 .55 D1 280 .35 .01 D1 B1 0.9922 0.007788 760 60, B2 108.93 19.075 0.3103 40 , D 2 B2 108.93 x P,B2 x P,dist1 x P,dist1 x P,dist 2 140 D1 140 40 180 . b) 0.855 Total feed Col 1 = 246 1400 1440. Total feed Col 1 = 1500 186 8.D13. New Problem in 3rd edition. F1 D, x dist V L V L F2 B, x bot Part a. F1 F2 D B Water: F1z1 F2 z 2 100 80 D B Dx dist Bx bot 100 .84 80 .20 Solve simultaneously, D = 99.25 and B = 80.75 V b) V B 121.125, L V B 201.875 B V Since feed 2 is saturated liquid L L F2 121.875 c) Doing Mass balance around top V y F1z1 y L Lx Dx dist Dx dist F1z1 V D 0.975 B 0.04 V 121.125 Doing Mass balance around bottom V y Bx bot y V L V x Lx F2 z 2 F2 z 2 Bx bot V These two equations are equivalent. Slope L y d) Bot. op. line: L V V V B V L x V V B 1 x B . Goes through y 1 V B L x xB . 5 3 . Plot Bot Op. line. 121.875 1.0062 V 121.125 At intersection F2 feed line and bot op. line (at x .2, y 0.306667 ) with slope 1.0062 2 stages + PR is more than sufficient (See graph). Op. line above feed 2: Slope 187 Graph for 8.D13. 8.D14. Figure is on next page. F Part b. B1 B1 c) D2 F B2 , Fz z x B2 x B1 z x b2 x B2 x b1 x b1 D1 D2 B1x EB1 0.85 0.006 F 0.992 0.006 x b2 x d1 x d1 xd2 B2 100 B2 x E 100 B2 85.60 , B2 F B1 14.40 kmol/h 0.85 0.992 0.006 0.449 0.006 0.992 0.449 0.75 21.196 35.596 kmol/h 188 D2 D1 xE 101.3 kPa 1333 F zE 0.75 0.449 kPa 0.85 ethanol Water Ethanol 99.4 mole % water 99.2 mole % B1 8.D.15. Part a) New Problem in 3rd Edition. p org VPoc tan ol x oc tan ol =Ptotal where x oc tan ol is mole fraction octanol in organic phase. At 0.05 atm and boiling T, porg 0.05 atm. 38 mmHg From Antoine equation, log10 VP oc tan ol 6.8379 1310.62 T 136.05 T 129.8C, VPoctanol 80.905 mmHg At Since p org p org 38 0.470 VPbenzene 80.905 Average mole wt solids and non volatile organics can be calculated. Basis 100 kg mol octanol 15 130.23 0.470 15 85 mol octanol mol non-volatiles 130.23 MW 0.470 b) 38 mmHg, x octanol,mole 15 85 15 MW 654.04 130.23 MW 130.23 95% recovery is true on both mass and mole basis. Distillate octanol flow rate 0.95 100 0.15 14.25 kg h. Since MWoc tan ol 130.23, this is 14.25 130.23 In waste there are 0.05 15 0.109 kmol h. 0.75 kg hr octanol and 85 kg h (organics + solids), or 85.75 kg h total. Wt frac octanol 0.75 85.75 0.00875. 0.75 130.23 Mole frac. octanol in waste 0.0424 0.75 130.23 85 654.04 189 c) For equilibrium in still pot VP oct x oct in org VPw 1.0 The still pot is perfectly mixed; thus x oct in org Since water boils at 100°C when P p tot x oct in waste 760 mmHg . 0.0424 mole frac. 760 mmHg, T < 100°C. Eq. (8-15) becomes VPoct 0.0424 VPw 1.0 760 Substituting in the Antoine equations for octanol and water and solving with a spread sheet, T = 99.97°C. VPoct 19.27 mmHg and VPw 759.18 mmHg. d) n oct From Eq. (8-18), VPoct x oct nw p tot VPoct x oct From spread sheet n oct n w Since n oct 0.001076 0.109 kmol h, n w water 101.27 n oct 0.001076 101.27 kmol h kmol 18.016 kg kmol 1824.5 kg h water in distillate. kmol This is a lot of steam! 8.D16. Distillate 1: 0.997 EtOH, 0.0002 solvent. Calculate x d1,W Distillate 2: 0.999 water, 0.00035 solvent. Calculate x D2 E F = 100, x F,E 0.81, sat'd liq'd, x F,solv 1 .9972 0.0028 1 0.99935 0.00065 0 Find D1 , D 2 , M where Makeup is pure solvent. 0 Water: x W M Fz W D1x D1W D 2 x D2W 0 Ethanol: Mx E,M Fz E D1x d1,E D 2 x d 2,E Ethylene Glycol: Mx Esolv 1.0 Fz solv Solving water & ethanol balances obtain: D 2 From Ethylene Glycol balance, M 81.2316 0.0002 D1x d1,solv Dx d 2,solv 18.7913 and D1 81.2316 kmol/h. 18.7913 0.00035 0.02282 kmol/h Can also use overall balance instead of EG bal. Then M D1 D 2 F 18.7913 81.2316 100 0.2290 , OK 8.D17. New Problem in 3rd edition. Since everything now exits the bottoms, B = S + F, and x A = FzA/(S+F), xB = FzB/(S+F), xsolvent = S/(S+F). 8.D18. Ethanol Product: Water Product: F 100, z E 0.997E, 0.0002 solvent, 0.0028 water 0.9990W, 0.00035 solvent, 0.00065 ethanol 0.20 z W 0.80 190 Water bal: x WM M Fz W PE x EP,W E bal: x EM M Fz E EG 0 x M,solvent M Fz solv PE x EP,E M 8.D19. (B) PW x WP,E PE x EP,solv Solve A & B for PE & PW : (A) PW x WP,W PW x WP,solv where x M,solvent 80.0240 kmol/h, PE PW 80.0240 0.00035 Overall: F H Ethanol: Fz E 0 B1x E,bot 2 B2 x E,bot 2 0 Fz H H 1.0 B1x H,bot1 B2 0 Hexane: B1 0.03201 kmoles/h do M.B. in wts. B2 where H = makeup hexane. Solving simultaneously, B1 8.D20. New Problem in 3rd edition. a. 1000 0.8094 20.0074 kmol/h 20.0074 0.0002 M.B. around System. Since everything in wt. units 1.0 8000.04, B2 1000 F Ex E,Ethanol prod 2000.04 and H 0.08 kg/h. E W Wx E,wprod 809.4 0.998E 0.0001W 808.3 E 811.0 kmol h 0.9979 W F E 1000 811 189.0 b) V V Fx WF boilup ratio L L Ex W ,Ethanol prod 1000 0.1906 y w ,1 V E Pr od 811.0 0.002 0.300 629.93 811.0 629.93 0.777 V E Pr od. 629.93 811.0 1440.93 L F sat 'd liquid feed 1440.93 1000 440.93 If CMO strictly valid then, L reflux 440.93 Can also estimate L from _ settler Pentane flow rate in V1 Ethanol flow rate in V1 Ethanol lost in Water Product. Pentane flow rate y P,1V1 629.93 0.6455 406.62 191 Ethanol flow rate in V1 y E,1V1 629.93 0.0555 E in V1 E lost x E,reflux L from settler to Col1 Ethanol lost in water product Lfrom _ settler _ calculation W prod x E in Wprod 189.0 .0001 1. CMO not totally valid 2. There is some water in reflux 3. K dE value may be incorrect. Ethanol returned to distillation column V1 y E1 WPr od x E,W Pr od 34.96 0.0189 Using average estimate for L 0 Then 34.91 0.0189 441.6 Match not perfect because: c. 34.96 440.93 441.6 2 34.19 kmol h. 441.3 441.3 x E in pentane x E,pentane Then since assume K d 0.0792 x E,Re flux,pantane _ layer 1, x E,Water layer 0.0792 192 d. x E,water 0.0792 V1 V W 0.5 V 0.5W L 1 L 283.5 V 94.5 y E1 y E1 W 94.5 kmol h. W V 283.5 kmol h. 3 L 0.0792 W .0001 V 283.5 .0792 189.0 .0001 94.5 0.237 189.0 x E,W Pr od 0.0001 8.D21. 193 L Bottom: V V B 1 1.5 L L 1 xB .Goes through y V B 0.5 V V Feed line = Horizontal (q = 0). Through y = x = z = 0.4 Top. MB: yV Lx Dx D and V L D y 3, y L x x x x B with slope = 3 L 1 x D goes through y x x D 0.975 V V Intersects Feed line where bottom op line does. Opt. Feed #1 above reboiler. 3 equilibrium stages + PR is sufficient. 8.D22. New Problem in 3rd edition. D, x dist Reflux L V B F Part a. F D Part b. yV y D B & Fz z x bot x dist x bot F Dx dist Bx bot 0.20 0.08 0.975 0.08 100 13.41 kmol/h and B Lx Dx dist L V x D V x dist Substitute in D Points on operating line: y x x dist F, L B, thus slope L V L V L to obtain y 0.975 and x Alternative point is at feed line (y = z = 0.2) & x V 86.59 x bot 1 0, y intercept L V 1 x dist L V x dist 0.08 B F 86.59 100 1 0.8659 0.975 0.1307 Part c. Need 2 Stages. See graph. Part d. Pinch at feed line intersection with equilibrium is at x V x 0.8659 y intercept 0.02 . 194 Figure for problem 8D22. 195 8.D23. New Problem in 3rd edition. Water phase XNM = 0.086 N.M. Phase NM xw = 0.312 W F Water Product Nitro Methane Product Part a. External balances F NM Pr od WPr od NM : F .25 NM Pr od .25 .01 .98 .01 NM Pr od .98 100 WPr od .01 24.74, WProd 75.26 a. W Column: z = .25, horizontal feed line L L Top y NM x NM 1 x NM ,bot ,col NM Mass balance through top of W column V V and around col. NM. Can easily show that 196 y NM x NM x NM,bot,col NM But do not know L/V so cannot plot yet. Bottom operating line looks familiar: y NM x NM x NM,bot,col w V L x V 1 x NM ,bot col w 0.01 L V B 1 54 V V B 14 col w L y NM 5 Can plot bottom operating line. Arbitrary point: x 0.2, y 5 0.2 .01 .96 Now can plot top operating line from intersection of bottom operating line and feed line to point y NM x NM x NM,bot,col w 0.01 See graph. Need PR + ~ 1 2 stage. Build PR + 1 stage. yw b. NM Column is a stripping column: L V To plot, V 1 B V B col NM yw xw xw .3, y w Need PR + ~ 1 c. W col. Want V. V 1 3 3 B 0.02 1 .3 3 .02 0.3933 xw 0.3 is arbitrary point stages. 100 V, V= V 1 x w ,bot ,col NM 3 V B B V to cond. from Wcol NM col want V. V= L V 4 x w,bot,NM _ col 4 L V xw B 3 NM Pr od 1 WProd 1 75.26 18.81 4 4 118.81 kmol hr 3 24.74 74.22 kmol hr . To condenser. 197 Graph for 8.D23. 198 8.D24. New Problem in 3rd edition. From Equilibrium, y bu tan ol Overall Mass Balance: 100 F V B Butanol MB: 100 0.025 V .092 2.5 .092 V 0.092 at x bu tan ol 0.004 B .004 F V .004 2.1 .088V V 23.864, B 76.136 kmol hr This problem can also be solved graphically, but using basic mass balances is easier. 8.D25. New Problem in 3rd edition. Part a) VPbenzene x benzene where x benzene is porg mole fraction benzene in organic. At boiling T, p org From Antoine equation, log10 VP At T 93 C, VPbenzene p org 1.0 atm. 1211.033 6.90565 benzene T 220.790 1112.44 mmHg . Since 760, x ben,mole p org 760 0.683 VPbenzene 1112.44 Average mole wt solids and non volatile organics can be calculated. Basis 100 kg 0.683 0.683 b) Moles benzene Moles benzene + Moles non-volatiles 20 80 20 80 .683 20 78.11 MW 78.11 MW 78.11 1 .683 20 78.11 20 80 78.11 MW MW 673.2 90% recovery is true on both mass and mole basis. Distillate benzene flow rate 0.9 100 0.2 18.0 kg h . Since MWbenzene 78.11, this is 18 78.11 0.230 kmol h In waste there are 2.0 kg/h benzene and 80 kg/h (organics + solids), or 82 kg/h total. Wt frac benzene 2 82 0.0244 2 78.11 Mole frac. benzene 0.1773 2 78.11 80 673.2 c) For equilibrium in still pot VP b x b in org VPw 1.0 The still pot is perfectly mixed; thus, x b in org Since water boils at 100ºC when P boils at 80.1ºC, but mole fracs low. p tot x b in waste 760 mmHg 0.1773 mole frac. 760 mmHg, T 100 C . Benzene is more volatile and Antoine equation for water: log10 VPw 8.68105 2164.42 273.16 T 760 VPb 0.1773 VPw 1.0 Substituting in the Antoine equations for benzene and water and solving with a spread sheet, T 92.0411 C . VPben 1082.5 mmHg and VPw 568.1 mmHg. Eq (8-15) becomes 199 d) n ben From Eq. (8-18), VPben x ben nw p tot VPben x ben From spread sheet n ben n w n ben Since 0.337876 0.230 kmol hr, n w water 0.6807 n ben 0.337876 kmol 18.016 kg kmol kmol n ben e. To vaporize benzene condense moles water ben 0.6807 kmol hr 12.264 kg h water in distillate. . w This occurs at 92.0411 C 365.1911K; From Perry’s table 2-237, H hg h hf H h kJ kg T = 360 886.7 498.7 388 T = 370 898.6 518.1 380.5 5.1911 0.0911 w 5 x 380.5 388 2265.67 2278.3 Moles water condensed 2278.3 388 384.1 kJ 30, 002 kJ kmol. 10 kg Note: 8th edition, Table 2-193 is very slightly different after unit conversion. T = 360 2663 384.7 2278.3 Water Table 2-352. T = 370 2671 405.88 2265.67 Linear interpolate 2277.8 kJ kg 41,037 kJ kmol 0.230 30, 002 kg h water in waste 0.1682 kmol h water (in waste) 41037 0.1682 18.016 3.029 kg h 200 8.E.1. New Problem in 3rd edition. Water phase XNM = 0.086 N.M. Phase F2 xw = 0.312 NM W Water Product Nitro Methane Product 250 Part a. F1 F2 NM balance PNM PW F1z1NM F2 z 2 NM PMN x NM Prod Pw x NM mol frac 135.5 8 127.5 135.5 PNM Pw b. F1 PNM PNM .98 250 PNM w Pr od NM mol frac Pw 0.01 0.01 .97PNM 2.5 133 .97 137.11 kmol hr 250 137.11 112.89 Column W – Use y NM vs. x NM (water phase) plot. Top operating line y NM L V Bottom Operating Line y NM L V L V V B V B 1 43 V V B 13 water col water col x NM 1 L V x NM L V V 4. L V wcol water col F2 z NM 2 x NM NM Pr od Vwcol 1 x NM Water Pr od V B col w 37.63 V . B B col w 150.52 L F1 201 y Top IS NOT from x x NM 0.98 to intersection feed and bottom operating line. NM Pr od Instead from intersection of feed and bottom operating line with slope L V L F1 V 50.52 37.63 1.32 25 . Optimum feed is top stage. Need PR + 1 stage. c. Column NM. Top y Bottom yw L V L V yw xw NM col xw NMcol F1z1,NM 1 L V NM x w col xw L V xw 1 xw NMcol in WM Prod. L 0.02. V W,W Prod. V B 1 2.00 V V B Draw bottom operating line. Top is through intersection bottom operating line and feed line F 2 . Slope L V 0.906 (see item d). Need 2 stages + PR. Optimum feed is stage above PR. d. Column W: PW V Bcol w NM Pr od 112.89 V B Bcol w 1 3 112.89 L V Bcol w Saturated liquid feed: V Column NM: 37.63 V 37.63 V B hr. PNM 1 50.52. Bcol NM 137.11 2.0 V B V L F kmol V B 1.0, L V L 150.52. V B B 137.11 kmol hr, L 2.0 137.11 274.22 V 137.11, L L 150 124.22 , L V 0.906. Minimum boilup rate NM column gives combination bottom & top operating lines to go through Saturated liquid feed V e. reflux point: y W 0.5, x w 0.312 . From bottom operating line intersection with feed line y INTER L x z2 0.15 is L 1 x W ,NM Prod V V Slope of top operating line to reflux point is L F2 L 0.5 y INTER V V B Guess V B z2 0.312 0.15 V 1 L V L V 1 V . Calc V & L & L V V V B B 137.11 V B . Calc y int er Calc L V L V B L F2 V Check is two calculated values L V are same. 202 Spreadsheet. V B MIN 0.6105, L V 0.846 Graph for Problem 8.E1. 203 8.E2. Balances at mixing point for F & R. To Butanol Column: Overall: FT F R Water: FT z T,W 100 R Fz W Rx W,reflux R .573 z T,W FT z T,W 30 0.573R 30 100 R External balances: 100 = W + B, water: 30 = 0.995W + 0.02 B Solve simultaneously: W = 28.72 & B = 71.28 kmol/h Butanol Col: FT V B 1.90, V 1.90B 135.432 L y R zT V B x FT 206.712, x W,butonal F L V 1.5263 0.02 206.712 100 106.712 106.712 0.573 30 0.4409 206.712 Vertical feed line at z T intersects bot. operating Line at y = 0.67 (see graph) Water Col. V B 0.1143, y L V L V x V B V B 1 V V B 9.748 L V 1 x B,water,watercol, y x x B,W watercol 0.995 See graph, y leaving column = 0.8 204 205 8.E3. Basis: 1000 kg sea water (1 h): 965 kg water kmol 18.016 kg 35 kg NaCl kmol 58.45 kg 53.5635 kmol, x F,W 0.98894 0.5988 kmol, x F,salt 0.011056 Total 54.1623 Water Condensate = (0.60) (53.5635) = 32.1381 kmol/h = n W Water Remaining 53.5635 – 32.1381 = 21.4254 21.4254 kg moles W Waste Water is 0.9728 mole frac. water 21.4254+0.5988 salt a. In still, organic phase is pure decane. VPC10 VPW x W p tot 760 mmHg where x W 0.9728 . Try T = 99°C. VPC10 ~ 68, VPW 733.2 mm Hg 68 + (0.9728) (433.2) = 781.27 mm Hg, which is too high. Converge to T ~ 98.2°C. 707.27 0.9728 nW yW pW VPW x W b. Distillate: 10.4225 n org y org p org VPorg x org 66 1.0 (This calculation is at 98°C, not 98.2, but will be close.) 206 n C10 8.F1. 32.1381 kmol water/h 10.425 mol water/mol organic 3.0819 kmol h C10 in distillate V.P. Data n-nonane (p. 3-59 Perry & Green, 1984) VP = 20 T = 51.2 40 66 60 75.5 100 88.1 200 107.5 400 128.2 See Solution problem 8.D10 for plot. MWnC9 1984), nonane enthalpies are, 128.25 . hliquid 671.3 KJ/kg 722.5 Hgas 998.2 1036.5 T 360 K 380 K 760 mm Hg 150.8°C From p. 3-268 (Perry & Green, Water VP is given in Problem 8-D10 and on p. 3-45 of Perry and Green (1984). a. Try 95.0°C. VPC9 127 mm Hg, VPW 633.9 . Assume water is pure. Pressure: (.99) (127) + (1.0) 633.9 = 759.6. Close enough and lucky! b. p tot nW n org VPorg x org 760 127 .99 127 .99 VPorg x org 5.045 mol water/mol nonane c. Need to calculate the energy required to vaporize the nonane. T = 273 + 95 = 368 K. By linear interpolation for pure nonane: h1 ~ 691.78, Hgas ~ 1013.52. nonane 321.74 KJ/kg Table 3-302 of Perry and Green (1984): h liq,W 397.36, H vap W 2667.8, W 2270.44 KJ/kg mol water condensed C9 321.74 KJ/kg 128.25 kg/kmol mol C9 vaporized W 2270.44 KJ/kg 18.016 kg/kmol b. Now, VPC9 .020 VPW 1.009 760. Temperature will be higher. Try 99°C: VPC9 149 mm Hg, VPW 733.24 (149) (.020) + 733.24 = 736.22 which is too low. Try 99.9ºC: VPC9 154, VPW 757.29 154 (.020) + 7570.29 = 760.37. Close enough. The low nonane conc. reduces nonane partial pressure and operation is much closer to 100°C. p tot VPorg x org 760 154 .02 nW 245.75 n org 154 .02 VPorg x org Need lot more steam! 207 8.F2. n-nonane water F = 1000 95% n-nonane organic waste steam water a) Basis: 1 hour All junk in feed (0.50 kmol) is in bottoms Organic Bottoms is 0.95 n-C9 0.5 junk 1.45 (see part C) .95 x C9,bot ,org 0.65517 1.45 b) Still T. p W p org p tot 102.633 kPa 770 mm Hg pW porg VPW (T)x W where x W K C9 T x c9,org,bot K C9 T 1 0.65517 770 mm Hg Procedure: Guess T, determine VPW & K C8 VP W 504.481K C9 check if pressure eq. is valid 770 mm Hg? 0.16 (DePriester Chart) 652.62 80.717 738.34 Need higher T T = 97°C, VPW 682.07 and K C9 0.17 682.07 + 85.762 = 767.83 slightly low, but close enough Try T = 96°C VPW 504.481 K C9 T 657.62, K C9 c) 9.50 kmol n-nonane × .90 = 8.55 kmol n-nonane in distillate. 9.5 – 8.55 = 0.95 kmol n-C9 in bottoms n org p org 85.762 n org 8.55 d) Eq. (8-18) 0.12567, n W 68.031 kmol water nW p W 682.07 0.12567 0.12567 e) EB simplies to W n W,condensed n W ,condensed nonane C9 W n org,dist. where λ’s are at 97°C = 370 K. n org,dist. 8.55 kmol C9 W 208 From Perry’s 6th ed. Table 3-268 or 7th ed. Table 2-292, nonane λ’s are: h g h f , @ 360 K, 998.2 671.3 326.9 kJ/kg 380 K, 1036.5 722.5 326.9 314 @ 370 K, λ ≈ 320.45 kJ/kg 2 MW C9 128.258 . Then at 370 K, kJ 128.258 kg 41,100.3 kJ/kmol kg kmol Water 370 K: (Perry’s 6th Ed., Table 3-302). kJ 18.016 kg kJ 2671 405.8 2265.2 40,809.84 W kg kmol kg 41,100.3 n W ,cond 8.55 8.611 kmol water 40,809.84 C9 320.45 314.0 kJ/kg 8.G.1. New Problem in 3rd Edition. 1. Final makeup solvent flow rate _________0.02__________ kmol/h. 2. Final value solvent recycle rate (B2) __1400___kmol/h and L/D in col 1 _0.100_. 3. Final values of flow rates D1 _140.0_, B1 _1460.02_, and D2 __60.02___ kmol/h. 4. Mole fractions in stream D1 _Pyr=0.0084259, W=0.99157, Bisphenol=.49E-10_ 5. Mole fractions in stream D2 _Pyr = 0.98001, W = 0.019654, Bisphen = .000333___ 6. Mole fractions in stream B1 _Pyr=0.040287, W= 0.0008079, Bisphen = 0.95890_ 7. Mole fractions in stream B2 (solvent recycle stream) Pyr = .526E-8, W = .2E-12, Bisphenol = 1.0000__ 8. Heat load in cooler on solvent recycle line__-0.15216E8___ cal/s. 8.G2. New Problem in 3rd edition. Aspen Plus Residue Plot 4.0 atm using NRTL Pressure can have major effect on VLE for non-ideal systems. Compare T-xy diagrams for acetone MEK at 1.0 and 4.0 atm. Also compare residue curves for acetone-MEK-MIBK at 1.0 & 4.0 atm. 209 210 211 8.G3. New Problem in 3rd edition. a. Final reflux ratio column 1___0.01_ and final reflux ratio column 2 _0.01_______. If these values are not 0.01 you are not finished with Part B. b. Flow rates furfural product ___166.0___ kmol/h and water product ___34.0__ kmol/h. c. Boilup rate in column 2 _____8.0________ kmol/h. d. Mole fraction furfural in furfural product ____0.99816___& mole fraction water in water product ___0.99102____. e. Flow rate of distillate from column 1 _____42.10_____ kmol/h. f. Column 1 condenser temperature __370.3___K, & column 1 reboiler temp. __433.59__ K. g. Outlet temperature of decanter ____375.2______ K. h. Molar ratio of water phase/total liquid in decanter _____0.8393_____ 8.G.4. New Problem in 3rd edition. Column 1: a. Bottoms product mole fraction acetonitrile______0.99915______ b. Distillate flow rate ___240____ kmol/h and bottoms flow rate ___170____kmol/h. c. Distillate mole fraction acetonitrile ____0.67910___________ . Column 2: a. Distillate flow rate ___210_______ kmol/h, and reflux ratio ___1.2____. b. Bottoms product mole fraction water______0.99517______________ . c. Distillate mole fraction acetonitrile _____.77542__________ . 8G5. New Problem in 3rd edition. Results are residue curves and profiles of mole fraction vs plate location. For an equal molar feed, N = 10 does not give the desired purity even if L/D = 10. N = 50 does work with L/D = 2, but not for L/D = 1.0. 8.H1. Part b. Was 8.D12 in 2nd edition of SPE. Use Eq. (8-25b) with 2.4, BB 1.0, BC 0.21. AB A = benzene, B = toluene, C = cumene. Results from Spreadsheet: Stage: Reboiler: x A 0.0003 x B 0.0097 1 0.003298 0.04443 2 0.03137 0.176085 3 0.18019 0.42145 4 0.46126 0.44952 5 0.70274 0.28536 6 0.85421 0.14453 7 0.93403 0.06585 8 0.97145 0.028535 9 0.98791 0.012091 10 0.99493 0.005074 11 0.99788 0.00212 12 0.99912 0.000885 x C 0.990 0.95227 0.79255 0.39836 0.08923 0.01189 0.001265 0.000121 1.102 E-5 9.802 E-7 8.637 E-8 7.580 E-9 6.641 E-10 8.H2. Was 8.D13 in 2nd edition of SPE. Use a spreadsheet with Eq. (8-30) as recursion equation. Result is shown in Figure. The VBA program was given in Example 8-3. The results obtained for the starting conditions given are: k xA xB xC 1 0.990 0.001 0.009 100 0.9763 0.0017 0.0220 200 0.9431 0.0029 0.0534 300 0.8630 0.0049 0.1331 212 400 450 475 500 600 0.6740 0.5044 0.3946 0.2696 0.00042 0.0077 0.0089 0.0092 0.0089 0.00095 0.3183 0.4867 0.5962 0.7214 0.9986 Results for other starting conditions are shown in the figure. 213 Figure for problem 8H2. 8H.3. New Problem in 3rd edition. The spread sheet including the first 10 time steps and time steps 600 to 610, and the VBA program are listed. Part a 214 Simple distillation calc (residue curves) with BP calcs. aT1 aT6 ap1 -1166846 7.72668 -0.92213 -1280557 7.94986 -0.96455 -1481583 7.58071 -0.93159 -1524891 7.33129 -0.89143 -1778901 6.96783 -0.84634 iB nB iP nP nhex Residue curve calc. x1iB sumx time step 1 2 3 4 5 6 7 8 9 10 0.98 1 xiB 0.98 0.979883 0.979764 0.979645 0.979525 0.979405 0.979283 0.979161 0.979037 0.978913 600 601 602 603 604 605 606 607 608 609 610 0.009754 0.009586 0.009418 0.009253 0.009089 0.008927 0.008766 0.008608 0.008451 0.008296 0.008142 0.071054 0.069204 0.067391 0.065615 0.063874 0.06217 0.060502 0.058869 0.057271 0.055708 0.054179 h x1nB T1guess,R xnB 0.01 0.010032 0.010065 0.010097 0.01013 0.010162 0.010195 0.010228 0.010261 0.010294 0 0 0 0 0 0 0 0 0 0 0 0.01 0.01 500 xiP 0 0 0 0 0 0 0 0 0 0 0.919192 0.92121 0.923191 0.925133 0.927037 0.928903 0.930732 0.932524 0.934279 0.935997 0.937678 N x1iP p,psia xnP 0.01 0.010085 0.010171 0.010258 0.010345 0.010433 0.010522 0.010612 0.010702 0.010793 1000 0 14.7 x nHex 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 542.3988 542.71 543.0165 543.3183 543.6155 543.9078 544.1955 544.4783 544.7563 545.0295 545.2978 epsilon 1E-09 x1nP 0.01 x1nHex 0 TR 472.0604 472.0642 472.068 472.0718 472.0757 472.0797 472.0836 472.0876 472.0916 472.0956 Option Explicit Sub Residue_Curve_BPcalc() ' K value data for nbutane,ibutane, ipentane,npentane and nhexane included. ' Only want 3 for residue curve. Thus, set x values = 0 for 2 components. ' The reference component is nbutane. Dim i, N, j As Integer Dim h, epsilon, xiB, xnB, xiP, xnP, xnHex As Double Dim T, p, aT1iB, aT6iB, ap1iB, aT1nB, aT6nB, Ap1nB As Double Dim aT1iP, aT6iP, ap1iP, aT1nP, aT6nP, ap1nP, aT1nHex, aT6nHex, ap1nHex As Double Dim KiB, KnB, KiP, KnP, KnHex, Ksum, chksum, inside As Double Dim yiB, ynB, yiP, ynP, ynHex As Double Sheets("Sheet1").Select 215 Range("A15", "G1045").Clear aT1iB = Cells(5, 2).Value aT6iB = Cells(5, 3).Value ap1iB = Cells(5, 4).Value aT1nB = Cells(6, 2).Value aT6nB = Cells(6, 3).Value Ap1nB = Cells(6, 4).Value aT1iP = Cells(7, 2).Value aT6iP = Cells(7, 3).Value ap1iP = Cells(7, 4).Value aT1nP = Cells(8, 2).Value aT6nP = Cells(8, 3).Value ap1nP = Cells(8, 4).Value aT1nHex = Cells(9, 2).Value aT6nHex = Cells(9, 3).Value ap1nHex = Cells(9, 4).Value h = Cells(11, 4).Value N = Cells(11, 6).Value epsilon = Cells(11, 8).Value xiB = Cells(12, 2).Value xnB = Cells(12, 4).Value xiP = Cells(12, 6).Value xnP = Cells(12, 8).Value xnHex = Cells(13, 8).Value T = Cells(13, 4).Value p = Cells(13, 6).Value For i = 1 To N j=i+1 Do KiB = Exp((aT1iB / (T * T)) + aT6iB + (ap1iB * Log(p))) KnB = Exp((aT1nB / (T * T)) + aT6nB + (Ap1nB * Log(p))) KiP = Exp((aT1iP / (T * T)) + aT6iP + (ap1iP * Log(p))) KnP = Exp((aT1nP / (T * T)) + aT6nP + (ap1nP * Log(p))) KnHex = Exp((aT1nHex / (T * T)) + aT6nHex + (ap1nHex * Log(p))) Ksum = KiB * xiB + KnB * xnB + KiP * xiP + KnP * xnP + KnHex * xnHex KnB = KnB / Ksum inside = aT1nB / (Log(KnB) - aT6nB - (Ap1nB * Log(p))) T = Sqr(inside) chksum = Ksum - 1 Loop While Abs(chksum) > epsilon Cells(13 + i + 1, 1).Value = i Cells(13 + i + 1, 2).Value = xiB Cells(13 + i + 1, 3).Value = xnB Cells(13 + i + 1, 4).Value = xiP Cells(13 + i + 1, 5).Value = xnP Cells(13 + i + 1, 6).Value = xnHex Cells(13 + i + 1, 7).Value = T yiB = xiB * KiB 216 ynB = xnB * KnB yiP = xiP * KiP ynP = xnP * KnP ynHex = xnHex * KnHex xiB = xiB + (h * (xiB - yiB)) xnB = xnB + (h * (xnB - ynB)) xiP = xiP + (h * (xiP - yiP)) xnP = xnP + (h * (xnP - ynP)) xnHex = xnHex + (h * (xnHex - ynHex)) Next i End Sub 217 Chapter 9 New Problems and new solutions are listed as new immediately after the solution number. These new problems are: 9.A4, 9.A5, 9C1, 9D1, 9.D5, 9.D8, 9D11, 9D13, 9D18, 9D19, 9D21, 9D22, 9D25, 9E2, 9.H1. 9.A4. New Problem in 3rd edition. Answer is g. 9.A5. New Problem in 3rd edition. Answer is c. 9.A6. b. The same. 9.B1. Multi Stage F, x F , x Davg , N, L / D, Treflux , P Single Stage F, x F , x Davg , P F, x F , x Wf , N, L / D, Tr , P F, x F , x D tot , P F, x F , Wfinal , N, L / D, Tr , P F, x F , x wf , P F, x F , D tot , N, L / D, Tr , P F, x Wf , Wfinal , P F, x F , x Davg , x Wf , N, Tr , P x F , x Davg , D tot , P F, x F , x Davg , x Wf , L / D, Tr , P x F , x Wf , Wfinal , P x F , x Davg , D tot , N, L / D, Tr , P x F , x Wf , D tot , P x F , x Davg , D tot , x Wf , N, Tr , P F, x F , x Davg , x W x F , x Davg , D tot , x Wf , L / D, Tr , P etc. x F , x Davg , Wfinal , N, L / D, Tr , P x F , x Wfinal , Wfinal , N, L D, Tr , P etc. 9.B2. a. Replace the column with one containing more trays or more packing. b. Retray or repack existing column. c. Run a batch in several steps. For example, take the feed and operate so that the desired bottoms concentration is met. Collect all the distillate and use this as the feed for a second batch. Operate so that the distillate for this run meets specifications. The bottoms from this run can be used as feed for a 3rd run, or it can be mixed with the next feed batch. An alternate is to first collect distillate of desired purity. Then collect distillate which does not meet purity requirements while bottoms is reduced to the desired purity. The material not meeting requirements is then mixed with fresh feed for next batch. Other operating variations are possible. d. Hook up two batch stills in series – Either to run 1 batch or to run separate batches (second still takes distillate from first as the charge). e. See if product specifications can be relaxed. f. Reducing the pressure increases the relative volatility and may help. However, one must watch for earlier flooding. 9.C.1. Rayleigh eqn xF Wfinal F exp x W,fin d xW xD xW 218 Because x D constant, can integrate analytically. xF xF d xW xD x w ,final Wfinal n xD xW F exp Wfinal xD xF xD F x W ,final xD xD xD xD xF x W ,final xF x W ,final D Wfinal x W,final xD F xD Wfinal Fx F Solve for n x w ,final n F Mass balances are xW D xD xF x W ,final Thus results are identical. 9.C2. External balances over entire cycle Fz Dx Dfinal Wx wAvg and F = D + W a. Ignoring holdup on stages and in reboiler - Out = Accum in accumulator is - x w dD x w dD which becomes, dD Rearrange, Ddx D dx D D D final dD x Dfinal D F D xD xF xW dx D xw xD xD d Dx D x D dD and integrate, which is, n D final F x D final xF dx D xD xw b. Assume CMO and draw mass balance envelop around bottom of the column. L y y L V L V V x x B Lx Vy Bx w B xw V L V 1 xw 219 xF Wfinal rd 9.D.1. New Problem in 3 Edition. Eq. (9-9) F exp x W,final From Simpson’s rule 0.1 0.00346 Area 0.00346 0.05173 0.1 y 4 x 0.00346 y-x 0.03096 .34 0.4416 y-x 1 6 From equilibrium curve (Table 2-1). x y dx y 1 x y x 0.005173 x 0.1 1 y-x 36.366 3.469 2.9273 0.027498 .28827 .3416 The y values are found by linear interpolation of data in Table 2-1. For example, at x = 0.00346, linearly interpolated first 2 data pts Table 2-1. 0.170 y x for x 0.19. 0.019 0.170 y 0.00346 0.03096 For x = 0.00346, 0.019 For y at x = 0.1, y = 0.4375 +[ (.4704 - .4375)/(.1238 - .0966)](.10 - .0966) = 0.4416 [Alternatively, could fit equilibrium data to constant α.] 0.1 0.00346 Area 36.366 6 Wfinal 0.5 exp D total 0.5 .2125 F xF x DAvg 9.D2. Rayleigh equation is Wfinal 0.8555 0.2125 kmol .5 .1 D avg .75 0.8555 0.2875 kmol Wfinal x W ,final F exp - 2.9273 .2125 .00346 0.2875 0.1714 dx y-x Most of values of 1/(y – x) are listed in Example 9-1. From Table 2-7 can easily generate values for x = .55: y = 0.805, y – x = .255. (y – x)-1 = 3.92. The mid-point for Simpson’s rule is at x = .65. Then from Eq. (9-12) and values in Example 9-1, .75 dx .2 3.92 4 5.13 6.89 1.044 x 6 .55 y Wfinal x Davg 100e Fx F .55 1.044 35.20, D total 75 Wfinal x final D total F Wfinal Operating equation is y 64.8 35.2 0.55 64.8 A graphical integration counting squares gives x Davg 9.D3. 4 3.469 L V x 1 220 L V 0.859 0.861. x D where L V L0 D 1 L0 D 0.65 This is y = 0.65 x + 0.35 x D We have two equil. stages (stillpot and one in the column). From McCabe-Thiele diagram we can get the values of x D which are related to x W . Pick x D and get x W from figure. From this we can generate the following table (only two values are shown in Figure). xD 0.90 0.895 0.85 0.837 0.720 0.70 x w ,final xW Raleigh Equation: D total x Davg 3.205 3.077 2.193 2.096 1.754 1.748 Wfinal xF F x wfinal 100 39.7 Wfinal x wf 0.36 ] 3.077 4 2.096 6 F Wfinal Fx F 0.588 0.570 0.394 0.360 0.150 0.128 .57 .15 dx w xD 1/(xD-xW) [Midpoint x w Simpson’s rule (Eq. (9-12)). xf xW dx xD xw , Wfinal 1.754 Fe 0.925 0.925 39.7 kmol 60.3 kmol 100 0.57 D total 39.7 0.15 60.3 221 0.847 9.D4. Wfinal 2.0 kg moles, x F 0.4 . Find F, x DAvg , D total 0.8, x wf x 1 y(equil) y 1 16.66 y x 4.76 7.143 .4 .6 .8 x 0.80 0.86 16.666 0.70 0.80 10 0.60 0.74 7.143 0.50 0.67 5.882 0.40 0.61 4.76 Can use Simpson’s Rule (Eq. 9-12) or evaluate numerically. xF dx 0.4 4.76 4 7.143 16.666 x 6 x Wfin y Wfinal F Rayleigh eqn xF exp x Wfin D total 2.0 F Wfin Fx F x D AVG exp dx y x 3.3333 Wf x Wfin 56.063 kmol 56.068 0.8 2.0 .4 54.063 Wfinal a) 3.3333 54.063 kmol D total 9.D.5. New Problem for 3rd Edition F exp xF x w ,fin dx y x Can use Simpson’s rule, eq. (9-12) with equilibrium values from plot. 1 1 f x w ,final 2.7397 y x 0.028 0.645 0.28 f x w ,fin f xF xF 1 2 y x 1 0.705 0.52 0.40 1 1 y x 0.735 0.52 0.52 x 3.2787 4.65116 222 0.815 xF xF dx x w ,fin y x 0.52 0.28 3exp y D,avg b. Settler: 6 f x w ,fin 2.7397 4 3.2787 6 Wfin x w fin 0.8202 D V,tot D1 DV,tot y D,avt Use eq. (9-13) n WF F 6 20.5056 1.321 , DV,tot F Wfin 0.8202 1.6790 0.7088 D2 1.6790 D1x 2 D1 D2 x B Solving simultaneously, D 2 9.D6. f xF 0.24 4.65116 3 0.44033 Fz Wfin x w fin D V,tot 4f x w avg D2 1.6790 0.7088 0.567 and D1 1 1 n 1.112 x W ,F 1 x F x F 1 x W ,f 223 0.573 D1 0.975 D 2 n 1 xf 1 x W ,f a) F = 1.3, x F n .6, x Wf WF 1 1 3 1.4 WF 1.3 Fx F .3 4 WF .4 n .6 7 1.3 0.6 0.3036 0.3 0.6914 1.3 0.3036 0.2335 Wf 0.81725 0.81725 0.3 3.5 0.8125 0.6, x DAVG 0.75 2.0, x F 0.8948 0.5596 1.4544 .7 0.3036 kmol Wfin x Wf 3.5 0.6 x D AVG Since 2.4 F Wfin b) Now Wf 3.5 F n 0.2335 x DAVG c) .3, F Wfin x D AVG Fx F 0.6914 x D AVG Wfin Wfin x Wf , F x D AVG xF x W ,f . Then Eq. (9-13) becomes n 0.75 .6 0.75 x Wf L D 1/ 2, L V L D 1 1 L D 3 x D AVG xf 1 x D AVG x Wf 1.4 F x D AVG 0.5025 . Wfinal Solution is x w fin 9.D7. n x D AVG xf .6 1 x Wf 1 x Wf 1.212 kmol. .75 0.5025 1 xD xW 1 xW xD 0.11 0.10 0.09 0.44 0.38 0.26 4 n slope . Pick series x D values. Plot enriching section op xD 0.49 x Wf .4 2.0 .75 0.60 x Wf line. Step off two stages. Find x W . Calculate 0.56 n xW , determine dx xF x Wf xD xW f 1/.45 = 2.2222 Interpolate 2.361 1/.40 = 2.50 0.06 0.05 0.02 1 .38 2.6316 1 .33 3.0303 1/.24 = 4.1666 Simpson’s Rule dx xF x Wfin xD xW xF x Wf 6 f x WF 0.10 0.02 6 224 0.02 4f x W 4.1666 4 2.6316 0.06 2.361 f xF 0.10 0.22739 WFinal x DAvg 4.0 exp Fx F 0.22739 Wf x Wf 4 0.7966 4 .1 F Wf 3.1864 0.02 4 3.1864 9.D8. New Problem 3rd Edition. a) Op. Eqn. L y v x 4 L L 1 xd , x d .8@ y D D 5 From McCabe-Thiele plot x w final ~ 0.075 L V 10 b) F Wfinal 10 .4 Substitute in for D tot D tot F xF Wfinal , 4.0 3.1864 1 L V xd x , y Intercept Wfinal D tot x D 0.075 10 D tot .8 D tot .8 .075 4.483 Wfinal 225 1 L V xD .2 .8 10 D tot Wfinal x w final 4.0 10 .075 0.4133 5.517 0.075 Wfinal .8 D tot .16 9.D8. Figure 9.D8. Part C. Trial & Error to 3 stages ending at x F y INtercept 0.645 1 L V xD 1 0.4 (See figure) L V .8 226 1 L V 9.D9. a. L .645 V .8 .19375, .80625 L L L V .15375 D V L 1 L V 1 .19375 Initial Mass balances: F F xF D total x D D total W or 20 D total W x Wf or 8 .975 D total 0.24 W .28 W Solving simultaneously: D total 3.453 and W 16.547 Can also use Rayleigh equation to obtain same result. (Use of the Rayleigh equation for this type problem is illustrated in the Solution to Problem 9-D14.) b. Vapor in equilibrium with x Wf must be within the two phase region. x Minimum is when y x . This is x Wf ,min 227 0.21 . See graph. y x 9.D10. L L x D , Slope, L V L D V V Plot on McCabe-Thiele graph for series of x D values. Op. Eq., y Simpson’s rule, 1 1 xD xW dx W xF x W ,fin x xd at x W xW 6 6 or Wfinal n 10 e x D,avg Wfinal xF F x W ,fin 1.2491 .52, x W 0.52 0.20 0.32 Rayleigh eq. xF xd xW xW xF Wfinal xD 2.67 10 0.52 D total 228 xW x F x W ,fin 2 xD 1.2491 F Wfinal 2.8677 0.2 7.132 .36 1 Fe 2.8677 and D total Wfinal x Wfinal xf ) / 2 4 5.95 4 3.70 dx W 15 .20, and (x Wfin 1 xD 10 0.28677 Fx F x Wfin 1 LD 7.132 0.648 xW x W ,fin xD xW 0.70 0.65 0.60 0.50 0.40 0.30 0.55 0.405 0.25 0.094 0.055 0.035 x D-x W 0.15 0.245 0.35 0.406 0.345 0.265 229 1/(x D-x W) 6.666 4.082 2.857 2.463 2.899 3.774 xW 1 x F = 0.52 xD xW 5.95 xF x Wfin 3.70 = 0.36 2 x W ,fin = 0.20 2.67 S 9D11. New Problem in 3rd edition. Eq. (9-17) x butanol Inital W dx pot y x butanol final Note W water Equation is in terms of butanol. 1.0 dx but pot S Simpson’s rule – need y at x pot W y but .6 1.0, .8, .6 butanol. x but x water y water y but 1 1.0 .8 0 .2 0 0.565 1.0 0.435 .6 .4 y but 1.0 2.2999 3.333 0.70 0.30 .4 3.333 4 2.299 1.0 6 0.9019 W 1.804 kmol. 0.90191 S More accurate if done in 2 steps. Thus add points below: x but xw .9 .7 .1 .3 1 0.8 .8 .6 .2 6 .2 6 yw .42 0.66 2.299 4 1.7241 1 3.3333 4 2.9412 230 1 .58 .34 y but 1.7241 2.9412 0.33985 2.299 Total Area = .91975. S = 1.8395 y but 0.5799 xF 9.D12. Wfinal dx F exp - y x x Wfinal xF xF dx x Wfinal y x x Wfin dx y D tot 0.32 x 6 4 y x 0.48, x Wfinal x W final 1 1 y x 2 xF 0.16, x avg x Wfinal 1 0.16 0.36 0.20 0.32 0.545 0.225 4.444 0.48 0.66 0.18 5.555 5.555 Fx F 1.51 (y-x) y x 5.0 , Wfinal Wfin x Wfin 3.0 exp 3.0 0.48 D tot y (from graph) y-x 0.7 0.61 0.37 0.3 0.37 0.29 0.4 0.24 0.08 Simpson’s Rule xF 0.4 0.08 x w ,fin F exp Two Liquids. 0.93826 F xF x D,AVG b) 3.333 4 2.7027 6 D total x L L x 0.573 and x L D total L x 0.662 k/moles 0.662 0.16 0.571 Wfinal n F xf x w final dx y x 1 y x 3.333 2.7027 3.448 3.448 0.93826 D total F Wfinal 3.1305 Wfinal x w ,final 1.51 2.338 9.D.13. New Problem for 3rd Edition. a) Rayleigh equation: x xF 0.32 2 y (from eq. data) 2.338 x DAVG , Wfinal y x x Wfinal x F x 5.0 4 4.444 F Wfinal 1 6 xF xF x Wfinal 4.8695 0.6057 0.975 L D total D total x DAVG 231 L D total L .573 L .975 D total .6057 D total .6057 .573 L 9.D14. a. p org pw 0.3963 0.975 0.573 L D total .3963 VPC10 x C10 , and assuming water is pure, p W 760 , p org 4.4732 VPW . VPC10 x C10 VPW 760 Vapor pressure data for C10 was shown in solution to Problem 8.D10. Guess 99.5ºC. VPW 746.52, VPC10 ~ 70.5 mm Hg 7 + 746.5 = 753.5 < 760 At 100ºC VPC10 ~ 70.5 and VPW 760 . 7.05 + 760 = 767.05 > 760 6.5 By linear interpolation: T 99.5 .5 99.74 ºC 13.55 b. Use Mass balances. Initially 9 moles n-decane, 1 mole non-volatile a .1 Final: a mol n-decane where 1 ; thus, a .111 mol 1 a .9 Wfinal 1.111 mol (Water free) D total F Wfinal 10 1.111 8.889 kmol Alternate Solution: Raleigh Eq. with xF xD 1: Wfinal F exp x W,final c. nW Wfinal F exp D total F Wfinal D org p tot n .1 dx 1 xW n .9 F exp n 1-x W xF x W ,final .111 F 1.111 8.889. Same result as mass balance. VPorg x org in org VPorg x org in org Should really calculate numerically from integral for most accuracy D nW p tot VPorg x org in org VPorg x org in org 0 dn org However, estimate at final conditions with VPndecane ~ 70.25 (from part a) nW 760 70.25 .1 n org 70.25 .1 This should be a good estimate. 9.D15. 107.185 Column is similar to figure in Solution to 9.D13, but with 1 stage in column. a) For finding Wfin & D tot don’t actually need to step off stages. Just want to make sure x Wfinal is obtainable – I checked this at total reflux – It works. Use Mass balances: F x F D tot x d Wfin x Wfin Substitute in F D tot Wfinal 232 Then, Wfinal Solution is Wfinal F xD xD xF 100 0.975 0.48 0.975 0.08 x Wfin 55.307 kmol, D tot F Wfinal b) Need to draw operating lines until: initial 44.673 2 stages gives x Feed . final 2 stages gives x W,final . Then L/V = slope. Initial – There will be a pinch at point reflux is returned. y xd y int ercept 0.975 0.41 L V Initial Slope 0.579 xD 0 0.975 0 Final: A few trials resulted in final result. y xd y int ercept 0.975 0.17 L V final Slope 0.826 xd 0 0.975 0 233 9.D16. a. Need L/V so that 3 stages go from x F error) was used to find this). L V .84 .57 a .84 0 .3214 and b. Need L/V so that 3 stages go from x wfinal trial-and-error was used to find line. L V c. F D total F x feed .84 .13 b Wfinal D total x D .84 0 10 D total Wfinal x wfinal 0.84 . This is line a in Figure (trial-and- .4 to x D .8452 and L V L D a 1 0.08 to x D D L V b 1 .4737 a 0.84 (see line b in Figure). Again, L V L a b L V 5.4615 b Wfinal 4 .84 D total .08 Wfinal Solving simultaneously, Wfinal = 5.789 kmol and D total 4.211 kmol. The Rayleigh equation could be used, is not needed, but gives the same result. x init 9.D17. Eq. (9-17), S W 1.0 . Start 1 kmol and keep 1 kmol. Add water as boil. x W ,initial x W ,final dx tan k y Note balance is on original solvent, methanol. Use equilibrium data from Table 2-7. Generate table of methanol mole fractions: x 1.0 0.611 0.222 0.11611 0.01 y 1.0 0.830 .588 .450 0.07 1/y 1.0 1.20489 1.6722 2.222 14.9254 Use Simpson’s rule in two steps. Step 1 (x from 1.0 → 0.222) 234 0.778 1.0 4 1.20489 1.6722 0.97143. 6 Step 2 (x from 0.222 → 0.01) 0.216 1.6722 4 2.222 14.9254 0.9005. 6 Total = 1.87194 = S/W with W = 1. n rd 9.D.18. New Problem 3 Edition Eq. (9-14) y D ,final F D final y D ,final F D final yF dy y x dy exp y yF x F D final y D ,final dy y x exp yF Read x values from equilibrium diagram or interpolate from Table 2-1. y x y-x 1 0.1 0.3 0.5 Area 0.008 0.045 0.155 0.092 .255 .345 0.5 0.1 10.87 4 3.92 6 0.5 D final exp C total F Dfinal y x 10.87 3.92 2.90 2.90 1.963 0.0702 kmol 1.963 0.4298 kmol Ethanol MB: x C,avg F yF Dfinal y D,final C total x C,avg D final y D,final 0.5 0.1 C total 0.0702 0.5 0.4298 9.D19. New problem in 3rd edition. VPw x w VPoct x oct Ptot , or in mm Hg, 526.123 1.0 9.D20. Was 9.D18 in 2nd edition. x F,C5 0.35 & x W,final,C5 F yF 0.05 : x C5,AVG 10.964 .6 0.20, x C8,AVG 235 0.00346 mole frac ethanol 532.7 0.80, p 101.3 kPa. B.P. yi 1.0 . For average mole fractions, the BP calculation converges to T = Ki xi 84º with K C5 3.7 and K C8 0.30 from the DePriester charts. The close enough to estimate α. K C5 3.7 12.33 C5 C8 K C8 0.30 Eq. (9-13), n Wf 1 F 11.33 0.35 0.95 0.5573, Wfin Wfin F D total 0.05 0.65 n F Wfin Fx F x D,Avg Wfin x W ,fin L x 1 V x D & slope 0.5847 0.95 0.5573 1.5 1.5 0.8359 0.8359 kmol 0.6641 kmol 1.5 .35 D total 9.D.21. New Problem for 3rd Edition. y 0.65 n 0.98 which is yi 0.8359 0.05 0.7276 0.6641 L D 1.0 L D L V 1 L D 12 L x D , but x D varies. Thus, plot series operating lines of arbitrary V 1 2. With a total of 21 equilibrium contacts there will be a pinch where the operating line intersects the equilibrium curve. This intersection is x W for this x D value. xW xD xD 1 xW xD .7 .6 .5 .4 .3 .2 .067 .05 .038 .027 .018 .01 Want to integrate from x W,final Plot 1 xD xW x W ,final xF Area .633 .55 .462 .373 .282 .19 0.02 to x F xw 1.5798 1.818 2.1645 2.6801 3.5461 5.26316 0.06 and want middle point at x W vs x W and find values. 0.02, 0.06, 1 xD xW 1 xD xW 0.06 0.02 6 3.23; x W,Avg 0.04, 1 xD 1.65 3.23 4 2.1 1.65 236 0.08853 xW 2.1 0.04 . Wfinal F exp Area D total 2.5 exp F Wfinal 0.08853 0.2118 2.288 x D,Avg 237 F xF Wfinal x W ,final D total 0.492 9.D.22. New Problem for 3rd Edition. t OP 9.D23. Prelim. Calc. Feed; Avg MW MWavg D tot 0.1 MW 0.1 46 1000 kg 20.8 kg mol L L D toperating = __1.49 to 1.50 QR E 0.9 MW 0.9 18 h water 20.80 kg/mol 48.0769 kmol 23 2 5 0.4 V 1 L D 53 All op. lines have slope 0.4. Can draw op. line to x W . Ten stages will go from x D to x W because have large number of stages. Thus, do not need to step off stages. 238 From Graph can create table of 1/(xd – 1/xw) versus xW. xD xW xd xw 1 0.665 0.10 0.630 0.08 0.499 0.052 x Avg 0.565 0.550 0.447 xd xw 1.770 1.8182 2.237 0.440 0.278 0.140 0.057 0.400 0.258 0.130 0.053 2.500 3.876 7.692 18.868 0.040 0.020 0.010 0.004 239 Simpson’s Rule: x F 0.1, x W,final xF dx W x Wfin xd 0.004, x W,Avg xF x Wfin xW xd 6 WFinal F D total x DAVG xF exp x Wfin F WFinal Fx F 1 6 0.096 0.104 2 xW 4 x Wfin 18.868 4 2.237 dx W xd xW 0.052 1 xd 1 xW 1.770 0.62289; Wfinal x AVG xd xW 0.4734 48.0769 0.62289 48.0769 29.9466 18.1303 kmole WFinal x Wfin 4.80769 D total 29.9466 0.004 18.1303 240 xF 0.2586 29.9466 9.D24. Was 9D22 in 2nd edition. a) F D total Wfin and Fx F =D total x D Fx F D total D total x D x Wfin +Fx Wfin 0.62 0.45 0.85 0.45 3.0 Wx Wfin D total xF x Wfin xD x Wfin 1.275 kmol, Wfin F F D total 1.725 kmol b) Want operating line where 2 equil. contacts gives x w fin 0.45 . y L L xD . V V Surprisingly, with 2 contacts T & E not needed. – Start stepping off stages from top & from bottom simultaneously. The intersection point must be on op. line as is y x x D . L V Slope 0.85 0.44 0.85 0 0.482, Figure for 9.D24. 9.D25. New Problem in 3rd edition. Mix together F F1 F2 2.5 241 L L L V D V L 1 L V x 0.932 1 xF F1x F1 F2 x F2 xF w FINAL n F xF x FIN 6 x w Final 0.8 2.5 dx xw final xF 2.5 y 1 y xF x AVG x 0.32 x y x w ,FIN y 1 x x w ,AVG Wfinal 3.333 4 2.666 D area Fe F Wfinal Then from 0.2 to 0.1 with F 1.151, x WFIN1 Now F x y WFIN1 1 y x 0.1 0.4 3.3333 0.15 0.51 2.7777 0.2 0.575 2.6666 F2 0.1 6 Wfinal2 0.6166 Fx F x DAVG WFIN x w FIN .2 2.666 4 2.703 6 Ftot x tot 3.030 0.55026 WFINAL1 = F1e-area = 1.5 .5769 = .865 D1 F1 WFinal,1 0.635, x D,AVG ,1 0.865 1.0 1.865, xF 3.3333 4 2.7777 2.666 Fe D2 area F 1.865 0.7518 Wfinal2 Wfin 2 x Wfin 2.5 .32 242 .865 .2 0.635 0.285185 1.4022 1.865 1.4022 1.4022 .1 1.09775 D total Higher distillate mole fraction. 1.5 .4 0.2 Total D total Total x D,AVG 0.578 D D1 F2 y x 0.2 0.575 2.666 0.3 0.67 2.703 0.4 0.73 3.03 x w ,F 1.349 kmol 1 y x Values are from methanol-water equilibrium data. 2.817 2.5 0.5398 First go from 0.4 to 0.2 with F1 Part b) y 1 y x 0.1 0.4 3.333 0.21 .585 2.666 0.32 .675 2.817 6 0.21 2 4 x .22 x w FIN 0.46275 .635 .46275 1.09775 0.6010 Part c) Go from 0.4 to 0.1 for F1 1 x y 0.1 0.4 0.25 0.62 0.4 0.73 0.3 y x 6 3.3333 2.7027 3.030 Wfinal 3.3333 4 2.7027 1.5 exp .8587 3.030 0.8587 0.6356 F1 For F2 go from 0.2 to 0.1. Same as 2nd part of Part b. Wfinal area F2 e 0.28518 1.0 .75187 0.75187 F2 Wfinal total 1.3874 Wfinal Wfin , F1 D total F1 F2 Wfinal tot 1.11255 F2 Differs from b – Numerical error! Ftot .32 x DAVG 1.3874 .1 0.59436 1.11255 Should be same as part b. There are numerical errors in use of Simpson’s rule. More accurate for .4 to .1 is .4 → .2 (Area = .55026) + .2 →.1 (Area = .285185) Total Area = 0.835445, Wfinal1 F1 e area 1.5 .433681 0.65052 Then 1.40239 , D total Wfin total 2.5 1.40239 1.09761 2.5 .32 x D AVG 1.40239 .1 1.09761 0.60109 Same as for Part b. 9.D.26. New Problem for 3rd Edition. L D 4, L V final a&b) final L D 45 2 3, L V 1 L D 53 0.4 0.7 . Step off 2 stages. 0.7 draw op. line slope = 0.8. Two stages gives 0.11 (See graph (labeled 9.D.c)) x w final Also, draw a few lines with x D 2 stages. b) Generate Table x D , x w , 1 x D Plot 23 0.8 For Part b, draw op. lines with slope 0.4 for arbitrary x D For Part a, From x D L D 1 xD Find 2 areas xw 0.7 and L V between 0.4 and 0.8 . Find x w values with xw vs x w . Note there is a break in curve at x D 1. from x F 2. from x w 0.6 to x w 0.185 0.185to x w final Area 1. Simpson’s rule. x w avg 0.6 0.185 2 243 0.110 0.3925 . 0.7 x w 0.185 to 0.110 1 From graph Area 1 Area 2. 0.6 0.185 6 1 xD xw xD 2.37 . xw x w avg 3.56 4 2.37 1.942 1.0363 curve is straight line. Thus, Area = width x Avg height 1.6949 1.942 0.185 0.110 2 0.13638 Total area = 1.1726. Rayleigh eqn., c) n Wfinal F x w final 1.1726 Wfinal 100 e D total F Wfinal x D,AVG Fx F dx w xF xD xw 1.1726 3.0955 6.9045 Wfinal x Wfinal D total 6.0 3.0955 0.11 6.9045 244 0.8197 L/D 2/3 2/3 2/3 2/3 2/3 -4.0 xD 0.9 .85 0.8 0.75 0.7 0.7 0.7 xw 0.65 0.48 0.36 0.253 0.185 0.145 0.110 x w ,final 245 1 xD xw 4.0 2.703 2.273 2.012 1.942 1.8018 1.6949 9.D.25. New Problem for 3rd Edition. From the methanol-water equilibrium data, the following table can be obtained. 246 xM 1.0 .8 .6 yM 1.0 .92 .825 1 yM 1.0 1.08696 1.21212 x pot ,Initial S W x pot ,final dx MeOH y MeOH .4 Simpson’s rule: 1.0 4 1.08696 1.2121 6 0.4373W 0.8747 kmol S 0.4373 9.E1. octanol water xF pot 0.90, F=1.0 kmole 1 0.95 .9 Final octanol in pot 1.0 0.1 0.1 Nonvolatiles in pot x oct,W,final steam log10 VPW 0.045 kmol 0.045 0.145 0.3103 2164.42 8.68105 , T C, VPW mmHg 273.16 T 0.3103, x W, in W 1.0, T 99.782 C from a) Final conditions x oct, in org problem 8.D11. Initial conditions: x oct,in org 0.90, x W in W solution 1.0 x i VPi 1.0 atm 760 mm Hg From spread sheet find T = 99.377ºC b) Wfinal,org c) Dorg F 1 z 1 x Wfin F Wfinal 0.8550 D org nW d) Eq. (9-24) p tot Estimate VPoct at average T p tot VPoct VP VP 0 nW 1.0 oct 1.0 0.9 1 0.3103 n org oct x oct x oct dn oct (99.782 99.377) / 2 D org 0 dn oct x oct 0.1450 D org dn org 0 247 p tot VPoct 99.5795 , VPoc tan ol D org 0 dn oct x oct D org 18.87 mm Hg to F 1.0, n org F W, x org dn org W W 1 Step-by-Step integration, n org F 1 x org x org 1 x feed 1 0.1 F W dn org dn org x org dn oct Avg x org x org,avg 0 1.0 .9 > 0.1 .1 .9 .8888 0.2 .1 .8 0.875 0.3 0.4 0.5 0.6 0.7 0.8 0.855 .1 .7 .1 .6 .1 .5 .1 .4 .1 .3 .1 0.055 .2 0.145 0.8944 0.11181 > 0.8819 > 0.8661 > 0.8452 > 0.81666 > 0.775 > 0.7083 > 0.58333 0.50 0.3103 > 0.40517 0.11339 0.8571 0.11546 0.8333 0.1183 0.8000 0.12245 0.750 0.12903 0.6666 0.14118 0.17143 0.1357 1.1588 nW p tot VPorg Porg O dn org x org D org 760 18.8666 1.15882 0.8550 45.826 kmol e. Continuous had 108.93 kmoles water/kmole organic fed. The continuous always operates at lowest octanol mole fraction in liquid & thus y oct is always at lowest value. Thus, requires more water to carry over octanol then the batch operation. 9.E2. New Problem in 3rd edition. Parts a & b. See solution to problem 8.D25. mol B 78.11 x benz mol B 78.11 80 673.2 c. Find T from Eq. 8-15 With Spread Sheet: SPE, Problem 9E5. Solution for temperature T deg C 92.04234 Do step by step Antoine VP values VPW A,B,C 8.68105 2164.42 273.16 2.754418 568.0906 VPben A,B,C 6.90565 1211.033 220.79 3.034461 1082.583 X ben 0.17727 xw 1 ptot 760 Eq8 -5E-05 Goal seek B6 to zero changing B2 massbeninit 20 massbenfin 2 248 dmorg-sum dnw/dnorg 9-23 d) 18 massben-still 2.960203 dnw 2 dmassorg 0.037898 1 Use Spread Sheet for each time dn W dn org Eq. 9-23 step. Did the addition of steps off-line in table below. nW dn W for n org still init 20 78.11 n benz 2 78.11 Step-by-step integration. still final Set dm org 1 kg. Values from spreadsheet. Mass benz still, 777 (kg) dm org kg Initial T 0 → 1 1 → 2 2 → 3 3 4 5 6 7 8 9 10 11 12 13 14 15 16 17 → 18 18 final T d) 20 → 19 19 → 18 18 → 17 17 16 15 14 13 12 11 10 9 8 7 6 5 4 3 → 2 2 dn W divide all values by 78.11 kmol .664431 .677266 .691548 .707537 .725558 .746073 .769462 .79657 .828276 .865852 .91108 .966543 1.036129 1.12596 1.246275 1.415548 1.670846 2.098857 2.960203 TºC from spreadsheet 75.99 76.27 76.577 76.91 77.269 77.66 78.0996 78.58 79.12 79.715 80.39 81.156 82.03398 83.0487 84.2358 85.6435 87.339 89.422 92.04 For accuracy add time steps 1 to 17 + (time steps 0 & 18)/2. This is then identical to the use of average values of dm for every step. Steps_1 to 17 0.5 Steps _ 0 17.2794168 18 1.8122565 n W 19.0916733 78.11 18.016 4.4034 kg water Compared to continuous, nw = 12.3, batch requires less because benzene mole fraction is higher in batch operation for most of batch. If we take final cut and used that value for entire operation, 18.016 dn W 18 kg benzene overhead 12.3 same as continuous. 78.011 e) To vaporize (n ben ben ) / w varies since T is different. For accuracy, do for each dm org and find λ values at these T. x d ,fin 9.E3. Simpson’s Rule: xF dx d xd xB 0.13 6 1 xd 249 4 xB x d .63 xd 1 xB x d 0.565 xd xB x D 0.50 Generate table from graph 1 xd xB xd xB 0.3 0.36 3.0303 0.2 0.597 2.5189 0.1 0.565 2.15 0.04 0.500 2.004 x init 9.E4. Wfinal F exp x W ,fin 0.13 6 3.0303 4 2.15 D final Fe 1 e B F Dfinal x B,avg 0.2954 2.004 0.2954 7.442 gmole 2.558 mole. F xF Dx D,fin 5.0 4.6886 B 2.558 dx y x T & E since dilution effects F & x init . Dilute with 5 kg water → Start with 6, x init Dilute with 4 kg water → Start 5, x init Dilute with 3.5 → Start 4.5, x init 16 15 0.1667 0.2 1 4.5 0.2222 Dilute with 2.75 → Start with 3.75, x init 1 3.75 0.26667 Dilute with 1.75 → Start with 2.75, x init 1 2.75 0.364 250 0.1218 For each dilution want to integrate using Simpson’s rule until find Wfinal need values of 1 y x at x init , x avg , and x final are determined in the following table. 1.0. Thus, 0.01 for each dilution. These values Table of Values for Integrations Dilute 5 kg Water 4 kg Water 3.5 kg Water 1.75 kg Water 2.75 kg Water Integrations: Dilute 5 kg: Wfinal Dilute 4 kg: Wfin Dilute 3.5: Wfin Dilute 1.75: Wfin Dilute 2.75: Wfin x 0.16667 0.08833 0.01 0.200 0.105 0.01 0.2222 0.11611 0.01 0.364 0.1870 0.01 y 0.537671 0.38708 0.067 0.579 0.428 0.067 0.598 0.450 0.067 0.706 0.563 0.067 y-x 0.3710 0.29875 0.057 0.379 0.3230 0.057 0.376 0.334 0.057 0.342 0.376 0.057 1/(y – x) 2.695412 3.34724 17.544 2.63 3.095975 17.544 2.6596 2.994 17.544 2.923977 2.6596 17.544 0.2666 0.138 0.01 0.636 0.493 0.067 0.369 0.355 0.057 2.7100 2.8169 17.544 Use Simpson’s rule for each addition. 0.15667 2.695412 4 3.34724 17.544 0.87809 6 6 exp -0.87809 2.4934 . Value is too high. Want 1.0 kg. 0.19 32.5579 1.031 6 5 exp -1.031 1.783 too high 0.2122 32.1796 1.138 6 4.5 exp -1.138 1.442 too high .354 31.106 1.833 6 2.75 exp -1.835 0.4389 too low .2566 31.52 1.348 6 3.75 exp -1.348 0.9740 Close to desired 1.0 kg. Thus, 2.75 kg water. The final still pot is 99% water so have (.99) (.974) = 0.964 moles water remaining. Moles of water distilled off is 2.75 – 0.964 = 1.786. 9.H.1. New Problem in 3rd edition. This problem is challenging for students because they must first derive the forms of the equations they need to use. 251 A. Define. The system is the simple still pot shown in Figure 9-1. Find Wfinal, D, xA,Wfinal, and xA,dist,avg. B. Explore. At first it may appear that the problem in Part a is under specified since there are now five unknowns. However, in specifying the problem based on the fractional recovery of benzene in the distillate we have added the equation for the definition of fractional recovery of A in the distillate. This equation is most conveniently written as, FzA (1 – Frac. Rec. A in distillate) = Wfinal xA,Wfinal (9-35a) which becomes, Wfinal = FzA (1 – Frac. Rec. A in distillate)/ xA,Wfinal (9-35b) C. Plan. If we write Eq. (9-13) for A and substitute in Eq. (9-35b) we obtain Eq. (9-36), 0 1 AB 1 n x A ,W ,final 1 x A ,F 1 x A ,F n x A ,F 1 x A ,W ,final 1 x A ,W ,final n z A 1 Frac. Rec. A.dist x A ,W ,final Part a. In a spreadsheet Eq. (9-36) is easily solved for xA,Wfinal using Goal Seek. Then W final can be determined from Eq. (9-35b). Then DTotal is determined from Eq. (9-11) and xA,dist,avg is determined from Eq. (9-10) written for component A or from the fractional recovery. Part b. Now solve Eq. (9-36) for frac. rec. of A in distillate using Goal Seek. For both parts a and b can use fractional recovery values and DTotal to find xA,dist,avg = FzA(Frac Rec. A in distillate)/ DTotal D. Do It. Because Eq. (9-36) for xA,Wfinal is nonlinear, it is easiest to solve this problem with a spreadsheet and use Goal Seek to solve Eq. (9-36). The spreadsheets are shown below. Part a F 5 zA 0.37 The 0.37 is in cell D2 alpha AC 10.71 frac rec A in distillate 0.75 xA,Wfin 0.143185 9-36 term 1 -1.25687 term 2 -0.3075 term 3 0.436926 Eq 9-36 -1.7E-05 Use Goal seek Wfinal from 9-35b 3.230095 D total 1.769905 xAdist,avg 0.78394 Part a. Use Goal Seek for cell B8, setting it equal to zero by varying cell B5 (xA,Wfin). Part b. Use Goal Seek for cell B8, setting it equal to zero by varying cell C4. Part b F 5 alpha AC 10.71 frac rec A in distillate xA,Wfin 0.05 9-36 term 1 -2.41222 zA 0.37 The 0.37 is in cell D2 -0.41074 term 3 0.930081 term 2 0.658942 Eq 9-36 -0.00023 Use Goal seek Wfinal from 9-35b 2.586992 D total 2.413008 xAdist,avg 0.713073 Part a. Use Goal Seek for cell B8, setting it equal to zero by varying cell B5. Part b. Use Goal Seek for cell B8, setting it equal to zero by varying cell C4 (frac rec A in distillate). 252 SPE 3rd Edition Solution Manual Chapter 10 New Problems and new solutions are listed as new immediately after the solution number. These new problems are: 10A4, 10A5, 10A7, 10A12, 10A17, 10C4, 10C5, 10D13, 10D19, 10D21, 10G110G4. 10.A9. 10.A13. A good packing will have: good contact between liquid and vapor, high surface area, low pressure drop, inert, inexpensive, and self-wetting. Marbles have low surface area, poor contact and relatively high ∆p. Figure 10-25 shows that if viscosity increases the ordinate increases and ∆p/foot increases. 10.A14. a.Want low F since this gives low ∆p. b. F decreases as size increases. c. Ceramics have much thicker walls than metal or plastic. Ceramics are used in corrosive environments. 10.A16. 1. a. fewer; 2.b. larger; 3. a. lower 10.A.17. Answer is c. 10.B1. 10.B3. The trick is to have maximum and minimum positions of the valve with a larger area for vapor flow at the maximum position. a. Use a cage to prevent excess movement. b. Use feet. c. Have a flap that moves up and down. d. Use a spring to provide force and maximum position. e. Sliding valve controlled by an external feedback mechanism. f. Two flaps to make a roof. Many other ideas can be generated. Some possible candidates: Bottle caps Bent bottle caps Natural sponge Synthetic sponge SOS pads Scotch brite pads Steel wool Cooper cleaning pads Miscellaneous junk Broken crockery or glassware Plastic coated wire Tin foil - crushed Cut up tubing (Tygon) Glass tubing (broken) String - balls lines tied together Crushed beer cans Cut up - crushed beer cans lines twisted lines stretched taught Coal Rope Egg shells Styrofoam packing material Old seat cushions frayed rope Rope tied into bow ties Porous rock pieces 253 10.C1. Nuts/bolts/screws/nails Metal filings Wood shavings Kindling Left-over redwood Pumice Ash from Mt. St. Helens Ashes from coal stove Pieces of cement block Pieces of brick Staples Pop-tops Window screens, rolled up Chicken or barbed wire Old watch bands - twisted Bent wire coat hangers Christmas Tree Ornaments Corn cobs Cookie cutters Combination of the above L/V constant since L/D const. Thus L/G const. In F v only n changes. From Perfect Gas G P MWv . Thus, F v increases as P . However, curve is almost v RT flat in this range and Cs,bflood ~ constant. Law G MWv u flood Then V Thus, L D 10.C2. Dia u flood P since P 1 D and D F .5 1 G G L D V Then, F L 0.2 20 / Dia 2 .5 C sb flood F xD z xD F 1 xB L so V G . F F P P P , and exponent = ½ See derivation in solution to Problem 10.C1. L V D 1 D L D 1 F xD xD z xB Then from Eq. (10-16) L 4F 1 D Dia Since Dia 10.C3. F1/ 2 , Dia 1/ 2 3600 p fraction u flood L D 1 Plot points based on ∆p and xD z xD xB 1/ 2 1/ 2 L G G L on Figure 10-25. From ordinate values calculate F for each point. Use an average value. 254 10.C4. New Problem in 3rd edition. Part of the operating lines become closer to the equilibrium curve. Thus, for the same separation more stages are needed. Fortunately, this effect is often small. 10.C5. New Problem in 3rd edition. You can show this by proving that the minimum reflux ratio (Figure 10-18A) or the minimum boilup ratio (Figure 10-19A) must increase compared to the base cases. These ratios increase because cooling the entire feed (Figure 10-18A) or heating the entire feed (Figure 10-19A) automatically changes the feed line and moves the minimum reflux (Figure 10-18A) or minimum boilup (Figure 10-19A) operating lines towards the y = x line. This means larger minimum external reflux ratio or larger minimum boilup ratio. 10.D1. K C6 y/x and K C7 1 y Solve simultaneously. x 1 x 1 K C7 K C6 K C7 KC6 T 149 C 169 171 KC7 1.0 1.3 1.34 193 K C6 x Bounds are K C6 Pick T and generate equilibrium curve. o , y .72 .75 - 1.0 x y 1.0 .483 .424 1.0 .63 0.568 0 0 Average temperature is T = 171ºC = 444.1 K. y x .568 .424 1.786 1 y 1 x .432 .576 Viscosity equation and terms are given in Example 10-1. 1 1 log10 C6 362.79 .935, T 207.09 log10 n C7 MIX 436.73 1 1 T 232.53 .5 n .116 1.0 and K C7 .5 n .127 .895, C6 0.16 . C7 0.127 . 2.107, MIX 1.0 . 0.122. From Eq. (10-6) for 0.217, E o 0.730 . The higher pressure results in higher temperatures and lower viscosities. This increases the predicted column efficiency by 24%. 10.D2. T v 98.4 273.1 371.5 K (almost pure n-heptane at bottom). 1 100.2 pMW 0.684 62.4 0.205 lb/ft 3 , L RT 1.314 371.5 42.68 lb/ft 3 , 20 Need L V . First, find y at intersection of operating lines. L .999 y Top Operating Line Slope .8 V .999 .5 y .999 .8 .499 0.5998 Then, L 0.5998 0.001 V 0.5 0.001 1.20 255 L L MWL L G V MWv V Fv 1.2 . This is at bottom where MWL ~ MWv . 0.5 L v G L 0.5 .205 1.2 0.08317 42.68 0.2 From Figure 10-16, Csb u flood 0.32, C sb 42.68 0.205 0.29 0.32 20 0.205 Saturated liquid feed V V 0.2 12.5 0.29 20 0.5 4.19 2500. Use η = .90 1/ 2 4 2500 1.314 371.5 D 12.35 ft .90 3600 1 .75 4.19 Somewhat larger. Would design at bottom of column. Use a 12 ft. diameter column. 10.D3. New 12’ dia col. First, redo entrainment calculation. L 0.5 0.205 0.0832 , L 1.2 V 3000 V 42.68 For Fig. 10-17 need % flood. In problem 12.D2 designed for 75% flood. D Use 12 feet: 1.2, F g 1/ 2 const 11.78 , const1/ 2 75% flood % flood e 1.2 1/ 2 10.202 /12.0. % flood 0.022 3000 L A total 12.0 0.9, A active v0 t tray weir Dia 0.726 , 0.726 12 ft weir 90.48 ft 2 , A hole 0.078 in, 3 16 holes, d 0 t tray v 9.05 h p ,d ry Lg 3067.48 4 113.1 ft 2 113.1 1 .2 VMW v 3600 10.20 1 0.9 113.1 11.3 ft 2 Ad Table 10.2, 2 1/ 2 72.3% . Then Fig. 10-17, ψ = 0.022. 67.48 , L e 1 1 .022 This is reasonable amount. 14 gauge, 11.78 .75 37.51 ft s , C0 0.003 37.51 3067.48 2 0.1 90.48 9.05 ft2 2.4 0.759 (unchanged from Ex. 10-3) 0.205 100.2 7.48 42.68 8.71 ft 60 59.87 1 0.01 42.68 0.759 2 2.086 in 897.8 gpm 256 Abscissa Lg 897.8 2.5 weir 8.71 Parameter w Dia 4.01 2.5 0.726, Fweir Fig.10 20 Eq. (10-26), h crest 0.092 1.03 With 1″ gap, A du 8.71 12 h du Eq. (12-27), h dc 897.8 2.083 in 8.71 0.726 ft 2 2 897.8 0.56 1.03 2/3 4.248 in 449 0.726 2.086 2 2.083 0 4.248 10.417 h dc,aereated 10.417 0.5 11.3 10.417 3600 42.68 t res 3067.48 100.2 12 0.040 12.5 Weeping, Eq. (10-32), h Eq. (10-31), LHS h h 2.086 0.0625 2 2.083 0 =4.904 This is OK. 0.0625 in 42.68 3 16 p,dry x OK, but close to distance between trays. 20.83 2.148 4.083 RHS 0.10392 0.25119 4.083 0.021675 4.083 LHS > RHS Operation is slightly marginal with high downcomer backup. 1.5 Increase apron gap to 1.5 inches: A du 8.71 ft 1.089 ft 2 12 h du1.5 gap h dc 0.56 v o,bal Given Wvalve 2 449 1.089 p,valve C v Wvalve 2g K vA v 0.08 lb, Av Cv 1 12 1.888 in 16.11 inch, OK 1/ 2 (10-36) v g 32.3 ft s 2 , K v,closed Pressure drop in terms of inches of liquid of density h 0.7682, OK 2.086 2 2.083 1.888 8.05 in h dc,areated 10.D4. 897.8 2 Wvalve Kv v Av 2g L L 0.02182 ft 2 , 33C v L 1.25, K v,open 5.5 : v 02 v 0.1917 lb ft 3 , L 41.12 lb ft 3 257 1/ 2 1.25 .08 2 32.2 v o,bal,closed 6.83 ft sec 33 0.2182 .1917 1/ 2 1.25 .08 2 32.2 v o,bal,open 16.73 ft sec 5.5 0.218 .1917 At balance point, h 1.25 0.8 lb C v Wvalve p,valve AL 0.2182 ft 3 41.14 lb ft L 0.1115 ft closed: h 33 .1917 p,valve 2.39 10 open: h 3 v 02 ft 5.5 .1917 p,valve 4 10.D6. 6.83 2.87 10 v 02 for v 0 2 32.2 41.12 3.98 10 10.D5. 1.338 in liquid v 02 for v 0 2 32.2 41.12 3 v 02 ft 2 v 02 inches 16.73 4.78 10 3 v 02 inches Do calculation at total reflux. From a McCabe-Thiele diagram (not shown). Total # Contacts = 4.2 N = Total – 1 (P.R.) = 3.2 Length 1 HETP 0.31 m N 3.2 From Fenske eq. and definition of HETP z HETP n x x 1 x n n x 1 x 1 x dist AB x dist 1 x bot n bot .987 .013 .008 .992 9.150 z = 3.5 meters. Obtain: a. α = 2.315, HETP = 0.321 b. α = 2.61, HETP = 0.367 c. AVG 2.315 2.61 1/ 2 2.4581 and HETPAVG 0.344 Can also use McCabe-Thiele diagrams although the solution shown is easier. 10.D7. Current: F v 0.090, 12 spacing, Ordinate 0.2 U nf const., const. 0.2 U nf 0.2 6.0 New: L Vnew 1.11 L V old , then L G new 1.11 L G old , F v,new 1.11F v,old 0.0999 Trays Spacing 24″, Ordinate ~ 0.32, Ordinate = U nf × Const. 258 U Nf 10.D8. At Ordinate 0.32 Const 0.2 6 Fv 0.5, Csb,f 1 0.12 0.2 Uf1 C sb L Since L 0.12 G pV 0.2 6.0 G 20 9.6 ft s nRT, G Fv 0.5 V 10.D9. L 20 RT G ,new 0.5 G ,old 1 0.5 0.25; C sb ~ 0.18 4 U f 1,new C sb,new G ,old C sb,new old 0.18 U f 1,old C sb,old G ,new C sb,old new 0.12 U fl,new G 0.12 MWv p n 0.5 New Condition: 4 3 2 2 3 3 6 18 ft/s Mass Balance: D F D z xB 0.6 0.01 0.59656 x D x B 0.999 0.01 596.56 kmol/h, B 403.44 L V 0.6, V L D V D 0.6V D 596.56 V 1491.47 kmol h 0.4 0.4 L V D 491.41 kmol h At top: At top of col. V WL WV 1491.41 kmol L V since pure MeOH, same mol. wt. 0.6 32.04 kg MeOH lbm 2.046 lbm h kmol kg Assume ideal gas. Top of column is essentially pure MeOH. lb 1 atm 32.04 n MWM p lbmol MWM v 3 V RT ft atm 0.7302 607.79 R lbmol R where pure MeOH boils at 64.5 C L At top 1 0.2 20 MWv G 6.0 G MeOH h 0.07219 lbm ft 3 1.8 R 607.79 R K 1 kg 2.2046 lbm 28317 cm 3 0.7914 g cm 3 1000g kg ft 3 24 0.0773 64.5 337.66K 105, 346 49.405 lbm ft 3 19.0 259 1/ 2 WL Fv G WG 0.07219 .6 L 0.28 0.2 U flood C sb 20 0.2 19 V frac u flood 3600 ft 3600 s h s Use either 10 ft (slightly higher frac flood) or 11 ft – (lower frac. flood). 0.90 0.07219 lbm ft 3 D = 10.27ft 3.0, y= Ref. Bonilla (1993). L Dact .9 0.66667 .9 .4 2 L D min x 1+ -1 x 1.75 , L V 0.875D , L avg Generalize Llow min L D act 7.25 0.4 x, y feed L L V 0.46667 V L 1.75 1 L V 1 .46667 1 L D L V min 1.75D , Llow Lavg M where L D n MWv V 0.875 0.636 2.75 actual or Llow D p MWv L D min 0.875 0.5 Lavg M 10.D11. a. Since Liquid & Vapor have the same mole fractions L G G 23 0.3273 At Minimum (Pinch Point), Llow V L low 0.75 , at z 0.46667 , L D 1 L V xD pV = nRT, 7.25 ft s 4 105, 346 lbm h D min 0.07219 4V lbm h V L V 49.405 0.07219 0.28 20 V Use Eq. 10-14 (Modified), D 10.D10. 0.02294 49.405 Fig 10-16 with 18″ tray spacing: Csb L 1/ 2 RT , R L D min L V 45.6 cm3 atm gmoles-1 o R 1 260 MWv .8 46 1 ATM G V L D L V .2 18 40.4 3D 6750 lb day , L 4500 6750 .6667 1/ 2 L G G 45.6 cm3 atm mol 1 R 1 40.4 g mol .6667 1.393 10 L F = 97 Ordinate This is, 2 F G L 1 .82 97 3 1.393 10 3 .82 1/2 .001393 g cm 3 4500 lb day =0.0275 1 g cm3 L (Table 10-3) .2 G F2 F G 2 2250 460 R L G H2O GF 2D 176 .82 g cm3 1 .82 .197 , from Figure 10-25 (flooding line). gc .52 0.2 1 g cm 3 62.4 lb ft 3 g cm 3 .82 g cm 3 0.5216 lb (s ft 2 ) 8.64 10 4 s day 2 .197 32.2 45067 lb (day ft 2 ) , G .75 GF FIND AREA AND DIAMETER FOR 75% OF FLOODING AREA V .75 G 45067 lb Day ft 2 .75 6750 lb Day .19970 ft 2 D 2 4 .19970 ft 2 , D .5042 ft 6.05 in COLUMN DIAMETER 6.05 5 8 9.68 which is probably OK. PACKING DIAMETER b. From Fig. 10-25, G 2 F G 2 97 0.2 1 .82 1.393 10 G c. ( G .52 3 L 0.2 1 62.4 D 2 4 .3503, L G will be the same; thus D 2 67500 4 1.998 D .6679 ft 0.3503 ft 2 8.01 inches 1/ 2 L G G L V .75 6 , .0275 1.927 10 4 lb (day ft ) 19267 lb (day ft 2 ) AREA L 0.036 0.2230 lb (s ft 2 ) 8.64 104 s day 6750 lb day area G 2 .82 32.2 AREA Area 1/2 g c ) .036 at L G V will be the same, and G will be the same. 3D as before .75 .521 8.64 10 4 67,500 lb day 1.998 ft 2 10 earlier value 1/ 2 1.59 ft 19.14 inches 261 10.D12. a. y L V x 1 L V x D . When x 0, y 1 L V x D 0.1828 . See figure. Need 2 equilibrium stages. Stop where feed line and operating line intersect. HETP 5 / 2 2.5 ft, x B ~ 0.065 b. M is at x in y1 .43 L L M 6.13 L L M 1.58 L L Within accuracy of graph, 3.88 L L V L L L L If try a shorter column with same feed won’t work. L L .8 and must adjust column. L V 1 0.8 10.D.13. New Problem in 3rd edition. Saturated vapor feed in problem 10.D.9 has minimum L/V = (0.999-0.6)/(0.999-0.22)=0.5122. This is (L/D)min = 1.05. The actual L/V = 0.6, which is an L/D = 1.5. Thus, the multiplier M of the minimum was M = (L/D)/(L/D)min = 1.5/1.05 = 1.43. For a saturated liquid feed (L/V)min = (0.999-0.825)/(0.999-0.6) = 0.4361, which corresponds to (L/D)min = 0.7733. If we use the same multiplier, L/D =1.43(0.7733) =1.106 and L/V = 0.525. z xB D 0.6 0.01 Mass Balance: 0.59656 F x D x B 0.999 0.01 D 596.56 kmol/h, B 403.44 . These are same as in 10.D9. At top: L V 0.525, V L D V 0.525V D 262 V L D 596.56 1255.9 kmol h 0.475 0.475 V D 659.4 kmol h WL WV At top of col. V 1255.9 L V since pure MeOH, same mol. wt. kmol 32.04 kg MeOH 2.046 lbm h kmol kg The density and surface tension calculations are the same as in 10.D9. Assume ideal gas. Top of column is essentially pure MeOH. lb 1 atm 32.04 n MWM p lbmol MWM v 3 V RT ft atm 0.7302 607.79 R lbmol R where pure MeOH boils at 64.5 C L MeOH 337.66K Fv G WG L 0.2 U flood C sb 0.07219 .525 Fig 10-16 with 18″ tray spacing: Csb L 20 V 49.405 0.07219 lbm ft 3 49.405 lbm ft 3 1/ 2 0.02007 0.28 19 0.2 0.28 20 V h 19.0 1/ 2 WL lbm 1.8 R 607.79 R K 1 kg 2.2046 lbm 28317 cm 3 0.7914 g cm 3 1000g kg ft 3 24 0.0773 64.5 At top 82, 330 0.525 49.405 0.07219 0.07219 7.25 ft s 4V lbm h Use Eq. 10-14 (Modified), D V frac u flood 3600 4 82, 330 lbm h D 9.08ft ft 0.90 0.07219 lbm ft 0.75 7.25 3600 s h s Probably use 9 ft, which is a slightly higher fraction of flooding. This compares with 10.27 ft for the saturated vapor feed. The smaller diameter column will be less expensive. With a saturated liquid feed and CMO, the vapor flow rate in the bottom of the column is the same as in the top, V = 1255.9 kmol/hr. For problem 10.D9 with a saturated vapor feed, V V F 1491.47 1000 491.47 . Since QR V, 3 QR ,liquid _ feed (1255.9 / 491.7)Q R, vapor_ feed 2.55Q R, vapor_ . feed Thus, in this case there is a significant energy price for reducing the column diameter by this method. 10.D14. D z xB xD xB F 0.4 0.0001 0.998 0.0001 1000 400.7415 , B 1000 D 599.258 kmol/day 263 or V V V 1202.225 At bottom, L L D 1 D 3 400.7415 kmol 1 day 1h 1202.225 kmol day 0.013915 kmol s day 24 h 3600 s V B 1202.225 599.258 1801.483 kmol day L 1801.483 1.49846 V 1202.225 Bottom of column is essentially pure water. Also y boilup Thus L G V in L G is lb (s ft 2 ) L V 1.49846 lb kmol 18.016 kg 2.20462 lb 0.013915 s density water at 100 C s kmol m 3 nRT where 100ºC n G V Fv K G G L lbm ft 3 18.016 lbm ft 3 0.0367 3 ft atm lbmol R 0.7302 671.688 R 671.688 R 1/ 2 L 59.83 3 1.0 L MWw RT 1.8 R 373.16K 35.31454 ft 1 atm p MWw m3 kg W 0.55268 lb s 1 kg kg 2.20462 lb 958.365 Data from Perry’s, 7th ed., p. 2-92. pV xB 1/ 2 0.0367 1.49846 0.03713 59.83 From Fig. 10.25, Ordinate at flooding = 0.18 0.18 G flood F w Area F = 33, 32.2, F 110 Table 10 3 1/ 2 0.15147 0.2 1/ 2 0.3892 lbm s ft 2 0.26 cp from Perry’s p. 2-323. 0.80 G flood 0.80 0.3892 V in lb s G actual lb s ft Diameter b. , gc 110 1.0 0.26 100 G actual 1/ 2 gc 0.18 0.0367 59.83 32.2 G flood Where G L 0.2 0.55268 2 4 area 0.8 0.3892 1/ 2 Diameter Intalox plastic 4 Dia 0.31136 1.77505 ft 2 1.77505 Fint Berl FBerl 1/ 2 1.503 ft 1/ 4 1.503 33 110 1/ 4 1.112 ft 264 lbm ft 3 Fv 10.D15. WL v Wv L 0.03713 from prob. 10.D14 From Fig. 10-16 with 12″ tray spacing , Csb,flood 0.21 0.2 K Csb where σ = surface tension water at 100ºC. 20 Perry’s, 7th ed., p. 2-306 @ 373.15 K, K u flood K L 4V 0.0367 Dia lb s 10 5 dynes 1m 1N 100 cm 0.21 1.2411 59.83 0.0367 0.206 v v 0.2 0.21 58.9 20 v Dia 0.0589 N m 58.9 dynes cm 0.2606 10.52 ft s , u act .8 10.52 8.416 ft s Eq. (10-14) modified for units. V is from Problem 10.D14. lb ft u act 3 ft s 4 0.55268 0.85 0.0367 8.416 1.637 ft . This can be compared to 1.5 ft for packed. Tray columns with this small a diameter are seldom used in industry. 10.D16. F1/4 . F1 From Eq. (10-44). Diameter Diameter (3 ) 98 and F3 Diameter (1 ) 22 Table 10-3 1/ 4 F3 14.54 F1 22 1/ 4 10.0 ft 98 Can also repeat entire calculation which is a lot more work. 10.D17. At the bottom of the column have essentially pure n-heptane. Then, following Example 10-4, we have. p MW 1 100.2 0.205 lb ft 3 v RT 1.314 371.4 Need L V . Since L V operating lines. Then L V .8 1 y where z 1 z 0.6 0 1.2 . .5 0 L L MWL G V MWv 1/ 2 L v G L 1.2 .5, we have y 1.2 1.0 0.6 at intersection of 1.2 0.205 1.684 62.4 1/ 2 0.084 Figure 10-25, Ordinate = 0.05 at ∆p = 0.5 265 0.05 .205 0.684 62.4 32.2 G The value 0.9595 is V V .2 98 .9595 .684 0.205 at 98.4ºC, and Water Water 0.375 . Since feed is a saturated liquid L 0.6944 lbmol/s. 0.6944 100.2 VMWv Area G 0.375 185.5 ft 2 1/ 2 D 4 Area 15.37 ft This is somewhat larger than in Example 10-4. Therefore design at bottom. G G flood 10.D18. L gc ordinate F 0.2 Assume changing p changes only G & ordinate. Then take ratios G flood ,new G ,new G flood ,old G ,old G ,new G ,old ordinate, new ordinate, old p MW RT p MW RT new p new old p old 4 . Assumes small change in T (in Kelvin). T set by boiling conditions (Vapor Press) not by ideal gas law. Fv 0.5 L G G L , 0.5 F v ,new G ,new p new F v ,old L ,old p old 0.5 2.0 , F v,new 2F v,old 0.4 . New Ordinate Value ~ 0.5, old value ~ 0.09 G flood ,new p new ordinate, new p old ordinate, old G flood ,old 4 0.05 0.09 0.5 0.75 10.D.19. New Problem in 3rd edition. Saturated vapor feed in problem 10.D.9 has minimum L/V = (0.999-0.6)/(0.999-0.22)=0.5122. This is (L/D)min = 1.05. The actual L/V = 0.6, which is an L/D = 1.5. Thus, the multiplier M of the minimum was M = (L/D)/(L/D)min = 1.5/1.05 = 1.43. For a saturated liquid feed (L/V) min = (0.9990.825)/(0.999-0.6) = 0.4361, which corresponds to (L/D)min = 0.7733. If we use the same multiplier as in 10.D9, L/D =1.43(0.7733) =1.106 and L/V = 0.525. This is the slope we use in the top section for the 2enthalpy feed. In the middle section of the column at minimum reflux conditions the slope of the middle operating line is L / V (0.825 0.6) / (0.6 0.22) 0.592 . The external mass balances still gives D Lmin ( L / D) min D 0.7733(596.56) the saturated liquid feed V V and L 596.56 kgmoles/hr, B 461.3 and Vmin L Lmin D 403.44 . At minimum reflux 461.3 596.56 1057.86 . At Fliquid . Thus, [( L Fliquid ) / V ]min ( L / V ) min 0.592 and Fliquid ,min 0.592V L 165.06 . Since the total feed rate is 1000, the fraction liquefied is 0.16506. The same fraction can be liquefied at the finite reflux ratios. Thus, Fliq 165.06 and Fvap 834.94 . 266 At top use saturated liquid reflux ratio L V 0.525, V L D V 0.525V D D 596.56 V 1255.9 kmol h 0.475 0.475 This is the same as for problem 10.D13 and the remainder of the calculation of the diameter is identical to that calculation. The result of the calculation at the top of the column is 4 82, 330 lbm h D 9.08ft ft 0.90 0.07219 lbm ft 0.75 7.25 3600 s h s We now need to calculate the vapor flow rate in the bottom. Assuming CMO, in the middle section V V 1255.9 . In the bottom section, 3 V V Fvap 1255.9 834.94 420.96 . Since QR V , QR ,2 enthalpy _ feed (420.96 / 491.7)Q R, vapor_ feed 0.86Q R, vapor_ feed. Thus, in this case the two-enthalpy feed design results in the same reduction in diameter as liquefying the entire feed, and it has energy savings compared to the vapor feed. However, the two enthalpy feed system will require more stages than the other systems. A complete economic analysis is required to determine the most economical system. 10.D20. Use Fig. 10-16 to find C sb . Gas is N 2 . Liquid is ammonia. Since system very dilute, treat as pure ammonia liquid & pure N 2 gas. L WL kg h L kmol h G WG kg h V kmol h MWV 0.61 L g 3 cm 1000 g m 27.36 0.08206 16.642 236 17.03 28.08 16.642 3 610 kg m 3 3 175 atm 28.02 g mol RT Fv 100 cm 1 kg pMW v G MWL L atm mol K 1000L m 253.2 K 3 kg 1000 g 236.0 kg m3 1/ 2 10.35 610 Off chart. Extrapolate using Eq. (10-10e). log10 Csb 0.94506 0.70234 log10 10.35 log10 Csb 1.891 Assume 20 u flood D 0.2 v 2 0.01286 1.0. Then 0.01286 610 236 236 4 V MW V v 0.85, Csb 0.22618 log10 10.35 u op 3600 236.0 kg m3 , u op 0.0162 ft s , u op ,V 0.75 uflood 100 kmol h , MWv 0.01215 28.02 kg kmol 0.01215 ft s , Need to watch units 267 4 100 28.02 D =1.155 m 0.85 236.0 0.01215 3600 1 3.2808 ft 3.79 ft Probably use 4 ft diameter column – (standard size) Using larger diameter helps take into account the uncertainty in extrapolating to find C sb . 10.D.21. New Problem in 3rd edition. The mass balance and flow rate calculations are the same as for problem 10.D14. D z xB xD xB 0.4 0.0001 F V or 400.7415 , B 1000 D 1000 0.998 0.0001 L D 1 D V 1202.225 3 400.7415 kmol 1 day 599.258 kmol/day 1202.225 kmol day 1h 0.013915 kmol s day 24 h 3600 s L/V = 2/3. Top of column is close to pure methanol Thus L G L V 0.66667 G is lb (s ft 2 ) V in Pure MeOH boils at 64.5 C L MeOH lb kmol 32.04 kg 2.20462 lb 0.013915 s s 1.8 R 337.66K K 0.7914 g cm 3 kmol 1 kg 0.98290 lb s 607.79 R 1 kg 2.2046 lbm 28317 cm 3 1000g kg ft 49.405 3 lbm ft 3 59.83 / 49.405 1.211 Assume ideal gas. Top of column is essentially pure MeOH. W L n MWM v V 1 atm p RT Fv MWM G WG L lb lbmol 0.07219 3 ft atm 0.7302 lbmol R 1/ 2 WL 32.04 .66667 0.07219 607.79 R lbm ft 3 1/ 2 0.02548 49.405 From Fig. 10-25, Ordinate at flooding = 0.20 G flood G flood Where methanol G actual 0.20 G L 0.2 F gc 1/ 2 , gc 32.2, F 0.20 0.07219 49.405 32.2 110 1.211 0.34 64.5 C 110 Table 10 3 1/ 2 0.2146 0.2 1/ 2 0.4633 lbm s ft 2 0.34 cp from Perry’s (8th ed.) p. 2-449. 0.80 G flood 0.80 0.4633 0.3706 268 V in lb s Area 0.98290 G actual lb s ft 2 Diameter 0.3706 1/ 2 4 area 2.6521 ft 2 4 2.6521 1/ 2 1.838 ft Note that this is larger than the calculation of 10.D14 at the bottom of the column. Thus, do calculations at top of column. b. Diameter Intalox F = 33, Dia plastic 10.E1. D kmol op time Then V L Berl 1.838 FBerl where D 18.1303 kmol , D kmol hr D 1/ 4 Fint V 0.4V L 2 D 3 1/ 4 33 1.360 ft 110 , L V 0.4 D 0.6V and t op 0.6V Use Fig. 10-25 or Eq. (10-39a) to find flooding at the end of the operation at bottom of column. kg MWliq 2 L lbm s ft L kmol h kmol 2 kg G lbm s ft V kmol h MWvapor kmol At end of operation at bottom of column x 0.004, y 0.036 (pinch) L G MWavg,liq L 0.004 46 18.128 0.4 0.381 19.023 0.996 18.016 18.128 & MWvap 0.036 46 0.964 18.016 19.023 62.4 lbm ft 3 (Essentially pure water). Boils at ~ 100ºC = 373 K p MW G Then 1.0 atm v lbm lbmol 0.038806 3 RT FV 19.023 atm ft 1.314 K lbmol 1/ 2 L G G L 0.381 373 K 0.038806 62.4 lbm ft 3 1/ 2 0.009501 From Eq. 10-39a. log10 ordinate log10 ordinate G 2 From Table 10-3, F 0.6864 & ordinate 0.2059 F 70, 1.6678 1.085 log10 0.009501 G L 0.2 0.29655 log10 F v 2 0.2059 agrees with Fig. 10 25 gc 1.0, g c 32.2, water 100 C ~ 0.26 c p (Perry’s 5th ed., 3-213) 269 G flood From Eq. (10-41), V 70 1.0 0.26 s 12 Then 10.F1. lb l bmol s ft 2 2 0.19635 ft 2 and G act 0.7 G flood 0.0038646 19.023 lbmol 3600s 0.453593 kmol V 0.0038646 6.310665 kmol h hr s h 1.0 lbmol D 18.1303 kmol t op 4.7883 h 287.3 min. 0.6V 0.6 6.310665 yM 1 x M x M 1 yM 0.134 0.98 0.02 0.866 . From Equil. data 0.979 0.05 7.582 , Top 7.582 2.454 0.95 0.021 (Note 40% MeOH is probably wt%) Estimate: n mix x M n M x W n W Feed is 60% M 40% W n mix 0.60 n 0.28 0.40 mix 4.31 0.306 2.454 4.31 Column temperature varies from 64.5º to ~ 98.2 ºC. 64.5+98.2 Avg T= 81.35 C 2 from Perry’s 7th ed., T = 81.35ºC, p. 2-323. liquids M n 0.35 0.28 cp, 1.1837 , W mix 0.35 cp 0.306 1.3195 From O’Connell’s Correlation, Fig. 10-14, Eq. (10-6): E o s ft 2 s kmol Geometric avg Then lbm lbm G 4 0.19635 0.53488 0.7 lbmol Need average Bot : MWvapor 0.53488 0.2 Area ft 2 lbmol Area V 0.5 0.2059 0.03698 62.4 32.2 0.52782 0.27511 log 10 1.3195 Eo 45% 0.044923 log 10 1.3195 2 49.5% If conservative use 45% 10.F2. To use O’Connell’s correlation (Fig. 10-14), need α and viscosity of feed. KM yM x M yM 1 x M . Used Table 2-7 for values. MW K W yW x W x M 1 yM Can estimate a geometric average at bottom, feed & top 0.134 0.98 0.729 0.6 7.582 , MW ,feed x .4 4.035 M W ,bot 0.02 1.866 0.4 0.271 270 0.979 0.05 1/ 3 2.454 , 4.2184 0.75 0.021 Averages can be calculated many other ways. The feed is saturated liquid. From Table 2-7, T = 75.3ºC Viscosities from Perry’s, p. 2-323, W 0.39cp & MeOH 0.30 Note: (MeOH, 40% probably refers to wt % - p. 2-322 Perry’s) Estimate n mix x1 n 1 x 2 n 2 MW ,top n mix .4 avg n 0.30 10.F3. z xB F F .6 n 0.39 4.2184 0.351 Overall Plate effic. = 43.7% Then bot Feed T 1.0465 , mix 0.351 1.481 0.30 0.01 100 36.71 B F D 100 36.71 63.29 lb mol h xD xB 0.8 0.01 At top of column L = D(L/D) = 73.4 and V = L + D = 110.1 L F F3 L Stripping section L L qF where q 4 3 F L 206.7, V L B 143.3 Feed line has slope 4/3 and goes through y x z .3 . Top operating line has slope L/V = D 0.667 and goes through y x xD 0.8 . Bottom operating line goes through y x x b 0.01 and the intersection of top operating line and feed line. McCabe-Thiele solution is shown in Figure. Optimum feed is 8th from top. Need 8 7/8 equilibrium stages plus partial reboiler. 271 Overall Efficiency. For O’Connell Correlation, need yE 1 x E 1 yE x E x 0.019, y x 0.3273, y x .7472, y AVG and Feed Tcol . Using Table 2-1 we find α and following mole fraction. 0.170 .981 0.170 : .830 .019 .5826 .6727 .5826 : .4174 .3273 .7815 .2528 .7815 : .2185 .7472 1/ 3 AVG 1 2 10.575 2.87 1.210 3.324 3 Can estimate μ from p. 99 Ethyl Alcohol Handbook at z .3 .523 wt. frac., 0.55 cp. Thus αμ = 1.83. From O’Connell Correlation E o .42 . N 8.875 .42 Height 22 18 18 21.1 . Thus, need 22 stages plus partial reboiler disengagement 48 (bottom sump) 38.5 ft 4V MW V Diameter Calculation Dia v flooding fraction u flood 3600 Use average values of parameters in stripping and enriching sections. MW v MW eth stripping section: 18.25 yeth MW MW W y W for both MW V and MW L . 21.5 WL L MW L 206.75 20 4135 lb h WV V MW V 143.46 2869.2 lb h 20 0.96225 g ml 60.07 lb ft 3 Bottom Bottoms T =100ºC = 672ºR L P MW V V Fv WL WV V L Enriching section: RT 1.0 4135 2869.2 26.4 MW 20 0.7302 672 R 0.04076 60.07 0.04076 lb ft 3 0.0375, Csb 0.28 . 40.4 WL L MW L 73.42 35 WV V MW V 110.13 35 2569.7 3854.55 lb h 0.766 g ml 47.92 lb ft 3 Distillate Distillate T = 82ºC = T = 639.6ºR; L V P MW V RT 1 35 0.7302 639.6 R 0.05472 lb ft 3 272 Fv K Csb WL WV 20 0.2 V 2569.7 3854.55 L 0.05472 47.92 0.0225, Csb 0.28 , ft/sec. σ, surface tension in dyne/cm. 57th ed. Hdbk of Physics + Chemistry, F-45. Bottoms, σ ~ 46 dyn/cm, Middle, σ ~ 25 dyn/cm, Top σ ~ 18.6 dyn/cm u flood 0.20 stripping: K 0.28 46 20 enriching: K 0.285 18.6 20 K L V V 0.33075 enriching: u flood 0.2809 Dia. 0.2809 ft s 60.07 0.04076 V 12.693 ft s 0.04076 47.90 0.05472 8.31 ft s 0.05472 4V MW V enriching: V MW V 0.20 , ft s stripping: u flood stripping: V MW V 0.33075 ft s 0.90 V 0.75 u flood V 3600 1/ 2 143.46 lbmol h 20 0.04076 lb ft 3 70392.5 110.13 lbmol h 35 0.05472 lb ft 3 70441.37 Diameters: stripping section: Dia = 1.7 ft and enriching section: Dia = 2.1 ft Probably use 2.5 ft diameter since there is little if any cost penalty. 10.F4. Numbers from solution of Problem 10.F3 are used. V lbmol s MWV lb lbmol Cross Sectional Area G lb (s ft 2 ) Bottom: L G L V Top: L G L V MWL MWV 1” metal Pall rings: F 48, MWL MWV 0.15, 1.44 ~ 1 1.44 0.667 ~ 1 0.667 0.15 ψ = Density of water/density of liquid At Top: 61 47.92 1.27 At 81ºC , w 0.35 cp, E y= x d At top 0.8, n MWv y MWE 1/ 2 G L 2 G F G 0.078 F G L 0.2 gc x1 n MIX .8 n .45 MIX 1 y MWw 0.05472 lb ft 3 , G L G 0.45 cp , n L G L gc V 110.13 mol h 2 .2 n .35 , and 0.8 46 MIX .2 18 0.43 40.4 1/ 2 0.02254 0.078 from Figure 10-25 0.078 0.05472 47.92 32.2 48 1.27 0.43 x2 n 47.92 0.667 0.05472 47.92 0.2 1 0.2 1/ 2 0.358 lbm (s ft 2 ) 0.0306 lbmol s 273 D2 4 Area D 4V MW v V MW v , or G 1/ 2 4 0.0306 40.4 G 1/ 2 0.358 2.096 Probably use 2 or 2.5 foot diameter columns. The calculation at the bottom of the column gives a smaller diameter. HETP N Height of Packing, or 1.2 ~ 10 12.0 ft 10.G.1. New Problem in 3rd edition. The result from Wankat (2007a) is listed in the following Table: Results for distillation of vapor feed 5 mole % methanol, 95 mole % water. Distillate is 0.9543 mole fraction methanol and bottoms is 0.9976 mole fraction water. Tray spacing = 0.4572 m. Base case conditions are listed in Tables 1 and 2 in Wankat (2007a). When two trays are listed, they have the same diameters. The decrease in volume and increase in QR are compared to the base case. FL NF,V 0(base) 10 NF,L -- Two-enthalpy feed: 500 11 6 500 12 6 600 12 6 750 13 6 750 16 7 1000 (all liquid) 9 N 20 dia A Vol tray QR 2.84 6.33 55.0 2 1065 Qc, total -12,330 decr Vol -- 20 22 20 20 26 20 2.08 2.07 1.89 1.56 1.56 1.20 -12,340 -12,330 -12340 -12,360 -12,330 -13,680 46.5 % 0.5 % 40.9 % 0 55.8 % 0.5 % 69.6 % 2.3 % 60.3 % 0 82.1% 127 % 3.38 3.38 2.80 1.92 1.91 1.13 29.4 32.5 24.3 16.7 21.8 9.8 2 2 2 2 2 2 1070 1065 1070 1090 1065 2415 Intermediate condenser: FWithdr NF,V NV,with NL,ret N dia A Vol tray 300 11 10 6 20 2.41 4.56 39.6 2 450 11 10 6 20 2.22 3.88 33.7 10/11 QR 1067 1067 Qc, total -12,340 -12,340 Two-enthalpy feed (FL = 600 kmol/hr) plus one intermediate condenser: Fwithdr NF,V NF,L NV,with NL,ret N dia A Vol tray QR,total Qc 100 12 6 5 5 20 1.69 2.23 19.4 2 1073 -12,340 80 12 6 13 6 20 1.72 2.33 20.2 2 1079 -12,345 incr QR -- decr Vol incr QR 28.0 % 0.2 % 38.6 % 0.2 % decr Vol incr QR 64.7 % 0.8 % 63.2 % 1.3 % Two-enthalpy feed (FL=600 kmol/hr, NF,V =12, NF,L=6, N=20) plus two intermediate condensers: Fwthd1 NVwth1 NLret1 Fwthd2 NVwth2 NLret2 dia A Vol tray QR,total Qc decr Vol incr QR 100 5 4 80 13 8 1.50 1.77 15.4 2/6 1081 -12,350 72.1 % 1.6 % Two-enthalpy feed (FL = 680 kmol/hr) plus one intermediate condenser: Fwithdr NF,V NF,L NV,with NL,ret N dia A Vol tray QR,total Qc 100 12 6 5 5 20 1.51 1.79 15.5 6 1081 -12,350 decr Vol incr QR 71.7 % 1.6 % With constant Qc and QR, the two-enthalpy feed with FV = 750 and N = 26 appears to be best. 10.G.2. New Problem in 3rd edition. Results are from Wankat, P. C., "Balancing Diameters of Distillation Column with Vapor Feeds," Ind. Engr Chem. Research, 46, 8813-8826 (2007). 274 Table 1. Simulation conditions and results for base cases. F 1000 kmol / h, D = distillate flow rate kmol/h, N = number of trays + condenser + reboiler, tray spacing = 18 inches = 0.4572 m, operation at 80% of flooding, dia = maximum calculated diameter in m, tray = tray at which max diameter occurred. A = max calculated column area in m 2 , Vol = column volume in m 3 = A(N – 2 +1) (tray spacing) where N – 2 is the number of trays and +1 is for disengagement space for liquid and vapor, Q R and Q c = reboiler and condenser duties in kW, p cond condenser pressure p pressure drop in psi/tray, N feed = optimum feed stage, and condenser is stage 1. Note this solution has a p, each stage. Thus, solution slightly different than students’ solutions. in atm, N Feed N Dia A Vol tray Q R Q c , L1 D D p cond Ethanol (10 mole %). Water (90 mole%) Vapor Feed Base Case: 23 26 2.61 5.35 85.6 2 902 -10,700 8.0 125 1.80 p 0.1 Table 2. Diameters calculated for standard distillation base cases listed in Table 1. Vapor flow rate Vj and liquid flow rate L j are in kmol/hr, diameter is in m, area is m 2 . Tray 2 23 24 35 Ethanol-water, vapor Vj Lj Dia 1125 997 2.61 1082 949 1.99 74.3 950 0.71 79.4 956 0.71 Area 5.35 3.11 0.396 0.396 Table 3. Simulation conditions and results for a distillation column separating a vapor 10 mole % ethanol, 90 % water feed (see Table 1 for base conditions). Partial condenser is stage 1. N F,V and N F,L are optimum feed locations for vapor and liquid portions of the feed, respectively. Decrease in column volume Vol (equal to change in area when the number of stages is unchanged) and increases in Q R are compared to the ethanol-water base case (Table 1). For both runs y D,E N Dia A Vol Tray Q R N F,V N F,L FL 0(base) FL 600 Qc,total 23 -- 36 2.61 2.24 35.8 2 902 N N F,V N F,L 23 17 36 Qc,col Qc,feed condenser Dia A Vol Tray 1.69 2.24 35.8 2 QR 902 0.7901 and x B,W 0.9986. Q C,col -10,700 Q C,tot -10,700 Decr Vol 58.2% Incr Q R 0 10.G3. New Problem in 3rd edition. Part a. S Dia = 2.032 m. Distillate mole fractions (vapor) = 0.22222 Eth, 0.77765 Propane, 0.12383 E-03 B, and 0.28503 E-9 pentane. Bottoms mole fractions = 0.14843 E10 Eth, 0.10132 E-03 Propane, 0.81808 Butane and 0.18182 pentane. Other values are in Table for 10.G4. Part b. Worst backup is 0.232 m on stages 30 and 31. Maximum weir loading is 0.0204 m2/s on plate 31. Part c. Same mole fractions, same Qc and QR. Max backup 0.1614 m in panel A on stages 29 to 32. Maximum weir loading is 0.01183 m2/s on plate 31 of panel A which is acceptable. 10.G4. New Problem in 3rd edition. 275 V feed L feed Qc kW QR kW Max Dia Stage yD,C4 xB,C3 Kmol/s Kmol/s m max dia 0* 1 pass .1(NF=16) -1463 2827 2.032 31 .000124 .000101 0 part d .1(NF=15) -1463 2827 2.032 30 .000115 .0000942 0* 2 pass .1(NF = 16) -1463 2827 2.032 31 .000124 .000101 .01 .09 -1463 2600 1.956 31 .000145 .000119 .02 .08 -1463 2373 1.876 31 .000199 .000163 .03 .07 -1463 2147 1.792 31 .000300 .000246 .04 .06 -1464 1921 1.905 32 .000525 .000429 .05 .05 -1466 1696 1.650 18 .00112 .000915 .06 .04 -1472 1474 1.600 18 .003188 .002609 b. Change N=41 NF,liq=18 NFvap=21 N .03 .07 -1463 2146 1.793 34 .0000817 .0000668 * Values from problem 10.G3. Part c. Tray rating program with Dia = 1.793 m and defaults for tray spacing (0.6096m) & for DC clearance (0.0373m) obtain 0.2207 m backup on tray 34, which is acceptable. Maximum weir loading is 0.01887 m2/s on tray 34 which is acceptable. Part d. Shown above, plus maximum backup is 0.2320 on plate 31 (acceptable) and maximum weir loading is 0.0204 m2/s on plate 31, which is marginal. 276 SPE 3rd Edition Solution Manual Chapter 11 New Problems and new solutions are listed as new immediately after the solution number. These new problems are: 11.A19-11.A22,11.B6, 11.C3, 11.D5,11.D8, 11.G3-11.G4. 11.A3. As feed temperature increases L D MIN increases, hence L/V increases and Q c increases. L V increases and Q R decreases. The number of stages probably decreases. (See Figure 7-3. The abscissa increases as L D min and L/D increase. Thus ordinate drops. Since N MIN is constant, N decreases). 11.A.6. New Problem for 3rd edition. b. A liquid side-stream between the feed and the distillate. c. A vapor side-stream between the feed and the bottoms. 11.A.9. 1 point for b. 2 points for c. If the feed rate is consistently one half the design capacity, the entire economy of scale will be lost. In addition, distillation columns probably operate at lower than design efficiencies. 11.A11. Column 2 would have to be at a lower pressure than column 1. 11.A.12. New Problem for 3rd edition. The heuristics to not do would include items such as: 1. Remove dangerous, corrosive, and reactive components last. 2. Use distillation only for very difficult separations (α < 1.10). And so forth. 0.33 X,T 11.B4. Use heuristics. Hardest separation is xylene-cumene, x ,c 1.57 0.21 C,T Toulene is most abundant. Use heuristics to: Remove toluene early Do hardest separation last One-by-one in overhead If use equil-molal splits: B T X F C Can also derive coupled systems. 277 B X F T C 11.B5. Add in Heuristic 9 for sloppy separation. T T B B X F OR F X C C 11.C.1. New Problem for 3rd edition. Take the log of both sides of Eq. (11-2). log (cost A/cost B) = (exponent) log (size A/size B) log (cost A) – log (cost B) = (exponent) [log (size A) – log (size B)] exponent = [log (cost A) – log (cost B)]/ [log (size A) – log (size B)] 11.D1. NOTE: This solution requires the solution to Problem 10-D1. Estimate α at feed composition x = z = 0.5 1 K c7 a&b. For binary, x c6 , y c6 K c6 x c6 . Use Fig. 2-11. K c6 K c7 T = 168ºC: K c6 1.29, K c7 0.71, x c6 0.50, y c6 (Guess was aided by solution to Problem 10-D1) .645 .5 1.817 .355 .5 n N MIN L V min 0.645 .999 .001 .001 .999 23.13 stages n 1.817 x D y 99 .645 0.7094 x D z .999 .5 278 L L V D c. L D Gilliland: x d. L D 2.441 min 4 2.441 MIN L D 1 0.3703 23.13 N 1 0.37027 1 0.3703 Fig. 11-1. D2 5.91 m 2 . Column Vol 4 cos t $700 m 3 , 7 bar, Eq (11-5), Fp 2.25 1.82 2.3 1.0 Qc $844, 000 .5 10.71 0.00756 7 2.30 $ 209,800 4196 50 1 1 total $1,054,000 500, B 500, L V Vh D gives, Q c $4196 tray 7 2.743 .5 L VH v $131,110 710 5.91 m 2 C P, tray 10.71 0.00756p 69ºC (bp) = 156.2ºF. F 1000, D Energy Bal: 187.3 m 3 3 pD C BM.tray Fig.11-9. m 187.3 m 3 area H $700 C P,tower vol Tray cos t Fig. 11-2. $710 m 2 , area Eq. 11-8. CBM,tower 131,110 11.D2. 37.3 contacts or 36.3 stages N act N eq E o 36.3 0.73 49.7 or 50 stages 24” tray spacing × 50 trays = 100 ft + 4 disengagement H = 104 ft = 31.7 m m D 9 ft 2.743 m 3.2808 ft Tray area 700 kPa 0.3117 5 N N MIN Eq. (7-42b): N 1 L V min 0.8, L D 2000 lbmol h, V V ho 4 2500 Hv h D is pure boiling hexane, H v is vapor. Thus, h D Hv Qc 2500 13,572 Btu/lbmol c6 3.39 107 Btu h 13,572 QR Dh D Bh B Fh F QC Pick 25ºC as basis. hD C PL ,c 6 69 25 hB 1.8 F C C PL,c7 98.4 25 1.8 51.7 44 1.8 4094.6 50.8 73.4 1.8 6711.69 Btu lbmol Feed is a saturated liquid. From Example 10-1, T = 80ºC 279 hF CPL,c6 z c6 CPL,c7 z c7 80 25 1.8 hF 51.7 .5 50.8 .5 55 1.8 QR 500 4094.64 500 6711.69 A 3.423 10 7 Btu h Q U 1000 5073.75 T Btu 110 98.4 C h ft 2 F where U is average from Table 11-2. Condenser: 50 U TAvg 32, 800 ft 2 1.8 F C 3.39 10 7 Qc A 3.39 10 7 3.423 107 Btu h QR Reboiler: 5073.75 Btu lbmol 2850 ft 2 110 70 2 Note these areas are very approximate. For detailed design need a much better estimate of U. A Costs: Condenser 180 156.2 2850 ft 2 1m 2 3.2808 ft 264.8 m 2 2 Fixed Tube Sheet S&T Fig. 11-3, Cost = $125/m2 Reboiler A 32,800 ft 2 1m 2 3.2808 ft 2 3047 m 2 large because of low U. Extrapolate $70/m2 1 atm, Fp Condenser Reboiler 11.D3. 1.0 . Eq. (11-9) CBM 1.0, Fm C BM 3.29 $125 264.8 m 2 m2 3.29 $70 m 2 C BM Cp 1.63 1.66 Fm FQ 3.29 C p $109, 000 $702, 000 304 m 2 $811, 000 Very sensitive to U. Note: This solution requires the solution to Problem 11-D2. lb Q R 3.423 10 7 lb Steam rate, 35, 704.6 h 958.7 h where Q R is from Solution to problem 11-D2. Steam Cost $ 35, 704.6 h Cooling water, lb $20.00 h 1000 lb 3.39 10 7 lb Qc h C p w Tw 1.0 40 $714 h. 847, 500 lb h where Q R is from Solution to problem 11-D2. Water Cost $ h 847, 500 lb $3.00 1 h 1000 gal 8.3 lb gal $306 h 280 11.D4. From Example 11-1 needed 21.09 eq stages + P.R. h pack 21.09 1.1 ft stage 23.2 ft 7.07 m D2 Vol 4 2 h pack 4 15 23.2 4099.6 ft 3 4099.6 ft 1m 3 3 3.2808 ft 3 116.1 m 3 Cp ~ $250 m3 packing Tower 23.2 ft + 2 ft between sections + 2 ft top + 2 ft top = 29.2 ft 1m h = 29.2 ft 8.9 m , Vessel Vol. 146.1 m 3 3.2808 ft Fig. 11.1 Cp $700 m3 for tower From Fig. 11-2 Fp 1.0 1 atm , Tower FM 1 carbon steel , C BM C p 2.25 1.82 $700 146.1 4.07 $416, 312 Packing, Fm 4.1. C BM C p 1.63 1.66 4.1 250 116.1 8.436 244, 855 Total $661,000 Does not include cost distributors, supports, hold down plates, etc. 11.D.5. New Problem for 3rd edition. n = [log (cost A) – log (cost B)]/[ log (size A) – log (size B)] Let size A = 10 m2 and size B = 1.0 m2. The cost A = $400/m2 = ($400/m2)(10 m2) = 4000, and cost B = $2100. n = [log (4000) – log (2100)]/[log (10) – log (1)] = [3.602 – 3.322]/[1 - 0] = 0.28 11.D6. See residue curves in Figure. The recycle is pure MB. Mixing point is determined in same way as in Fig. 11-11. Now mixing point splits into light (L) component methanol on B1 . Thus line LM is extended to 0.0 mole fraction methanol to find location of B1 (0.73333 MB and 0.26667 toluene). We can use mass balance to find point B1 accurately. If D1 is pure methanol, D1 = 50 (all methanol in feed) and B1 = 150. Then from toluene balance 0.2 × 200 = 150 x tol,B1 , which gives x tol,B1 0.266667 . B1 which is toluene product. F Re cycle F2 which is then split into I (Some of which is recycled) and B 2 100 100 M Since D1 contains no toluene B1 0.26667 B1 F .4 D1 Re cycle 0 .4 100 150 kmo h. F2 , D1 M B1 0.26667 For Column 2: B 2 essentially pure toluene, B2 0.266667 F2 B1 OK – Satisfies overall external M.B. D 2 Re cycle F2 D2 B2 50.0 kmol h 0.26667 150 40 150 40 110 10.0, which also satisfies external M.B. 281 11-D7. a.) Proposed Split: Bottoms – Essentially pure toluene Distillate ~ .83 methanol. (See figure for Solution to 11.D7) F 100, z M 0.5, z MB .1, z T .4 Assume all toluene in bottoms & bottoms is pure. B 100 .4 40, D 60 60 x M,dist b.) 50 , x M,dist 0.8333 & x MB,dist 0.166667 Proposed Split. Distillate pure M Bottoms 0.2 MB, 0.8 T (See figure). D 100 .5 50, B 50 Note – Doubtful this will work. 282 11.D.8. New Problem for 3rd edition. Part a. Cost in June 2010 $947, 000 556 397 $1,326, 000 Part b. F 2 x F of Example 11-2. Since Dia Tower F , Dia 2F11 12 ft 2 1m Diameter 17 Volume 488.2m3 CP,tower $550 m3 3.2808 ft 2 16.97 or 17 feet. 5.182m, Tray Area Fig. 11-1, C0p 488.2 m3 21.08m 2 . Cost vol ~ $550 m3 $268,500 Fig. 11-2. Tray cos t area ~ $750 m3 extrapolate , Cp,tray CBM,tower $750 m 2 21.08m2 268,500 2.25 1.82 1.0 1.0 $15,800 tray $1, 093, 000 283 CBM,trays $15,800 36 1.0 1.0 $569, 000 Total bare module cost September 2001 = $1,662,000 In June 2010, Cost $1, 662, 000 556 397 $2,328, 000 Part c. Original feed rate 1000 lbmol h . At Foriginal , cost lbmol $1326 lbmol At 11.G1. 2 x Foriginal , cost lbmol $1164 lbmol - Use Fig. 11-10b as flowsheet. Use NRTL. Feed : 1 atm, sat'd Liq, 100 kmol/h, 0.5 MeOH, 0.4 T, 0.1 MB Fed to Stage 30 Int. Recycle sat’d Liq, 100 kmol/h, 100% MB, fed to Stage 20 Block B1 : N = 46, total condenser, partial reboiler, D = 50, L/D = 3 Dist : 0.999759 MeOH, 0.000241 tol, 1.537 E 0.8 MB Bot : 8.02 E 0.5 MeOH, 0.266586 tol, 0.73333 MB Block B2: N = 85, L/D = 9, B = 40, feed = 41 Dist: 0.0001094 MeOH, 0.0008684 Tol, 0.999022 MB Bot : 2.855 E 35 MeOH, 0.99731 tol, 0.0026888 MB Thus, this is feasible. 11.G2. a) For Fig. 11-10A. Col 1. N 90, N f 41 , L D 8 D 60 Bottom 0.999186 tol 0.000814 MB Dist. 0.99938 tol, 0.000605 MB, Col 2. N 20, N f 10 , L D 2, B 10 Bot .996679 MB, 0.003088 MeOH, 0.000233 toluene If increase L/D in column 1, Col 1. L D Col 2. L D 2, N 24, N f 9, N 90, N f 41, Bot. 0.99941 toluene. 12, Dist. 0.99954 MeOH, Bot. 0.9976 MB Which now meets specifications. Thus Figure 11-10a without recycle is feasible. b.) For Fig. 11-10B – converged N = 30, L/D = 6 Dist. Col 1. 88.7% M & 11.3% T – No MB (azeotrope) Would not converge higher N. Does not appear to work; thus, not feasible. 11.G.3. New Problem for 3rd edition. F 100, 10% Ethanol, 5.0 atm, Sat’d liquid feed N = 10 includes partial reboiler, total condenser, D = 10, L D 2 284 P=1 NF = 5 NF = 6 NF = 7 NF = 8 NF = 9 NF = 10 Pcol = 3 atm Pcol = 5 atm L D 2 NF = 8 NF = 9 NF = 10 L D 2 NF = 8 NF = 9 NF = 10 QR = 52,948 QR = 53,029 53,148 53,175 52896.9 cal/s QR = 67995.5 QR = 68022.1 67794 QC = -78614.5 Qc = - 74274 QR = 76435.3 7646 Qc 76264 71692.8 xD,E = .72033 .74564 .76332 .77539 .78037 .69964 .75453 0.76027 .69695 .74276 .74840 .69411 xB,E = .031085 .028263 .026298 .024957 .024363← .033373 0.027275 0.026637← .033672 .028582 .027955 ← 0.033988 Size optimal feed columns. Sieve tray 1 uses 18 inch tray spacing at 85% approach flooding, Fair calculation method for flooding. Pcol 5 Max diameter tray 2 0.34867m Pcol 3 Max diameter tray 2 0.38070m Pcol 1 Max diameter tray 2 0.46429m Part d. D1. 1.0 atm gives the best separation because the relative volatility is highest. D2. The lowest Qreboiler is 1.0 atm. The effect of pressure on Qreboiler in this problem occurs because the feed is always a saturated liquid at 5.0 atm. For the 5 atm column this feed remains a saturated liquid and the feed line is vertical. At lower column pressures the feed flashes and is a twophase feed in the column. These feed lines have a negative slope. For the feed lines at lower pressures the slopes of the bottom operating lines are steeper, which means lower boilup ratios, Vreboiler/B. This means lower Qreboiler at the lower pressures. Another way to think about this is the flashing feed produces vapor and thus less vapor is required from the reboiler. D3. The lowest absolute value of Qcondenser is 5 atm. All columns have the same D and L/D. Thus, V entering the condenser is the same. At higher pressures the latent heat of vaporization λ is lower. Since Qcondenser = Vλ, the result is a lower absolute value of Qcondenser at the higher pressures. D4. The smallest diameter column is at 5 atm. Vapor density is highest. Part e. Increasing pressure above 1 atm for the same purity requires more stages, but smaller column diameter. Thus capital cost initially goes down. Above 8 atm the column must be designed for high pressure operation, which makes it more expensive. Operating cost may go up if a higher L/D is required to achieve the desired purity. 11.G.4. New Problem for 3rd edition. a. (L/D)min = 1.3962 → L/D = 1.5358. Obtain N (Aspen Notation) = 19 with Nfeed = 9 (on stage). Distillate is 0.75056 ethanol and bottoms is 0.00005987 mole fraction ethanol. Q R = 569,172 cal/s, 285 Qc = - 443187 cal/s, Dia = 1.0755 m, A = 0.90843 m2, H = 11.5824 m, Vol = 10.52 m3 Part b. Note that balancing the flow rates to achieve the desired separation in each column is trial and error. The easiest was to do this is to first find a flow rate that works for the high pressure column (note that D changes every time the flow rate is changed). This gives a value for Q C,high pressure = - QR,low pressure. Then design the low pressure column with this QR. Check that both columns work. The correct flow rate into the high pressure column is between 570.6 and 577.275. The results are reported below with the latter value: High pressure column: F = 577.275 kmol/h, QR = 0.7555(569172) = 430,000 cal/s. N = 20, Nfeed = 9, distillate is 0.75004 mole fraction ethanol and bottoms is 0.00009733 mole fraction ethanol. Q c = 243,900 cal/s, L/D = 1.5618, T cond = 382.16 K, Dia = 0.79443 m, A = 0.49568, H = 12.192 m, Vol = 6.043 m3. Low pressure column: F = 422.725 kmol/h, QR = 243,900 cal/s, N = 19, Nfeed = 9, distillate is 0.75087 mole fraction ethanol and bottoms is 0.00003829 mole fraction ethanol. Qc = -190,627 cal/s, L/D = 1.5803, Tcond = 351.56 K, Treb =373.16 K, Dia = 0.7014 m, A = 0.3864, H = 11.5824 m, Vol = 4.475 m3. Part c. Energy requirement of multieffect distillation system was set at 75.55 % of the single column. This is not optimized, but was set because it was known to work. Cooling is only in the low pressure column of the multieffect system, and is significantly less than with only one column. The total volume of columns is the same; however, this is misleading because volume in the single column would have been less if it was designed at 3.0 atm. The capital cost will be higher for building two columns than one larger one, but energy costs are less. 286 SPE 3rd Edition Solution Manual Chapter 12 New Problems and new solutions are listed as new immediately after the solution number. These new problems are: 12.A5, 12.A6, 12.C2, 12.D1, 12.D3, 12D8, 12D13, 12D19, 12D21, 12D22, 12.G3. 12.A1. By raising T or dropping p can make gas desorb. The direction of transfer of solute controls whether a column is a stripper or absorber. If operating line (on Y vs X) is below equilibrium have a stripper. 12.A5. New Problem in 3rd edition. c. AspenPlus 12.A6. New Problem in 3rd edition. A. a. B. d. C. e. D. h. E. i 12.B1. Calculate: N or y out , or N for A and y out for B, or m, or N for A and m for B, or L/V, or feed composition, or b, or m and b from 2 experiments, or Overall Efficiency. 12.B2. Two feeds, Sidestream, Reboiled absorber, Coupled absorber and stripper (see Figure 12-2), Interstage coolers (absorption) or heaters (strippers), Packed columns, Two different solvents, Two different stripping gases, Add solid adsorbed to solvent (see Chapt. 14). Cross-flow, Co-current flow, Combinations of flow patterns, etc. 12.B3. See Isom and Rogers (1994). 12.C4. Eo Eq 12 22 N equil N actual n 1 E mV Eo (10-1) Eq 12 34 mV L 1 n ( L mV) n L mV n 1 E mV Eo mV 1 L n 1 E mV mV 1 L (10-4) n mV L QED Ref. Lacks, D.J., Chem. Engr. Educ., 302 (Fall 1998). y 12.C5. 12.C6. x 1 1 x When x 0, When x 1, Apply Kremser as x Graphically, L V dx dy , b dx dy 1 dx 0 or x yN MIN dy , m xN 1 , b 1 1 x 2 0 1 1.0 y1 x0 where y N 1 & x N are in equilibrium 287 yN For absorbers L m mV min N Thus as Eq. (12-23) becomes yN yN or mV 1 y1 1 * 1 m y p tot x 0.395 y1 L x 0 .0001 H 0 min L y 3 b 0 x yN V 1 xN min b y1 L x0 V min 0.395 x 0.0002 unknown unknown 1 L x0 y1* mx 0 min L x0 1.186 where y1* mV y1 1 yN 1 b m m which agrees with graphical analysis. 12.D1. New Problem 3rd Edition. min L , yN b for linear. L &1 V mx N 1 Gy N m x0 1 Gy1 L xN .395 0.0001 0.0000395 N xN L yN G 1 0.004 Since x N unknown, unknown 5 1 y N 1 y1* y1 y1* mV L n n 5 1 39.5 L 1 unknown. Eq. (12-30) or (12-31) easiest to use n Eq. 12-30 y*N 0.004 0.0000395 0.0002 0.0000395 L n 39.5 mV L mV L 39.5 L n 1 39.5 L n 24.67 39.5 L L 39.5 288 T & E → be sure L mV L 50 75 65 63 62 xN G yN L 1 mV/L 0.79 0.52668 0.60769 0.62698 0.637097 y1 1 L/mV RHS 1.2658 7.58 1.8987 3.90 1.64557 4.67 1.59494 4.895 1.56962 5.015 100 0.004 0.0002 62 x0 OK 0.0001 0.006229 There are alternative solution paths, but L = 39.5 is not valid, it becomes n1 0 n1 0 . Alternative: Trial-and-error McCabe-Thiele solution. 12.D2. a) L & V constant. 97% rec. H2S 3% left in gas. y out 0.03 0.0012 0.000036 Equil.: y p H 2S 423x p tot 2.5 169.2x M.B. with Const. L & V: 0.0012 V x out b) See Figure. y L V 0.000036 V 0.0012 0.000036 x L V y in V x out L 0.001164 L 10 5.82E 6 2000 x out where y in , x out & y out , x in are on op. line . c) Eq yin 169.2 0.000012 LG x* 7.09E 6 Note that L G min can be calculated from a crude sketch. min y L G y out L 0.0000036 0 200 G act 0 0.0012 0.000036 7.09 E 6 min M 164.124 L G min M = 1.2186 x 289 d) L/G too high – L too high – Liquid too dilute. Need much better solvent (e.g., MEA solution). 12.D3. New Problem 3rd Edition. Mass Balance: Vy IN Lx IN y out V Lx , Equil., y Substitute equil. into M.B. HVx HVx Lx IN Lx p tot p tot Solve p tot b. y out H p tot x out x 10.96 0.274 100 2 10 0.4 10 6 p tot x x 6 10.96 10 0.4 10 HVx L x IN L x IN H 6 0.4 10 16.0 10 6 0.274 atm 6 Can also do graphically, with Kremser equation (trial and error) or by solving mass balance first, L y out x in x out 16 10 6 Then p tot H x out yout 0.274 atm. V 12.D4. Mass bal. yin Vin Lin x in y out V Lx out 290 y out y in L V x in Op. Eq., point yin , x out line. See graph. L V x out L V x in y x out L x 12 0.0002 0.00001 y in 0.00228 L x out V V 0.0, 0.00001 and point y out , x in 0.00228, 0.0002 are on op. Can also use Kremser equation for this problem. 291 12.D5. Since equilibrium is linear in weight ratio units can do either McCabe-Thiele or Kremser solutions. For McCabe-Thiele solution know that points Yout , Xin and Yin , X out are on operating line. McCabe-Thiele diagram is shown in Figure. N = 5.9 stages. HETP = 10/.59 = 1.69 ft. Kremser: Several different forms can be used. We will illustrate with Eq. (12-26) written in ratio units. * YN 1 Yin 0.02, YN+1 mX out 1.5 0.06 0.09 Y1 N Yout 0.50, Y1* mX in n .02 .09 .5 .6 n .02 .5 .09 .6 HETP 1.5 .40 0.60 5.88 h N 10 5.88 1.70 feet 12.D6. First, assume Nitrogen is an ideal gas: 1 lbmol = 359 cu ft at 0˚C and 1 atm 333.16 359 437 cu ft/lbmol at 60˚C 273.16 N 2 flow rate 2500 437 5.72 lbmol/h Water flow rate: Ignore CO 2 in water. MWw 100, 000 18 18 5560 lbmol/h 292 Equilibrium at 60˚C: H = 3410, y = L H PTOT x 3410x 5560 972.0 . External mass balance is: 5.72 L L L y out x in y in x out x in x out 972. 9 10 6 0.00875 V V V Can solve with either McCabe-Thiele diagram or with Kremser Eq. (12-34). The McCabe-Thiele solution is shown in the figure. Note different scales on axes. Need 5 real stages. V Kremser: y N 1 0, y1 0.00875, y1* n mx 0 3410 9.2 10 0.03137 , m V L =3.508 0 0.03137 0.00875 0.03137 1 3.508 N 6 n 1 3.508 5.07 .4 3.508 1 Probably use 6 real stages. G Wt 12.D7. 0.828 wt frac air 1050 G mole Yin Inlet 869.4 29 y in kg gas h 29.98 kmol air/h 0.172 0.172 1 y in 1 0.172 .828 29 Yin ,molar 0.2077 0.3543 17 NH3 0.172 1050 180.6 kg NH 3 2% remains in gas 869.4 kg air/h 0.2077 kg NH 3 kg air 3.612 kg NH 3 293 3.612 17 Yout mole Equilibrium data Table 12-2 - y mole X wt kgNH 3 kgW 0.05 0.075 0.100 0.15 0.20 0.25 0.30 0.40 0.50 0.60 M.B. Ymole 0.007087 869.4 29 p NH 3 p, mmHg p, mmHg PTOT 1.30 760 988 p y mole frac 11.2 17.7 25.1 42.7 64 89.5 119 190 275 380 0.01134 0.017915 0.0254 0.04322 0.06478 0.090587 0.12044 0.19231 0.27834 0.3846 X in L G mol Ymol 17 L wt 17 G mole X wt y Ymole 1 y 0.011466 0.01824 0.02607 0.04517 0.06926 0.09961 0.13694 0.2381 0.3857 0.6250 LX wt GYout , kg NH 3 17 kmol NH 3 Yout Note: Units, although mixed, work in Mass Balance & in Operating equation. See graph. Minimum Solvent Slope L wt,min 0.3543 0.007087 0.477 0 = 0.7279= .7279 17 29.98 Actual Solvent, L wt Op Line Slope 1.5 L min L wt ,min 17 G mole 370.99 kg W h 556.48 L wt 556.48 17 G mole 17 29.98 kg W h 1.092 294 295 12.D8. New Problem 3rd Edition. X IN y out 0 0.002 L Yout p tot 0.002004 2 atm 760. 2 mmHg 1520 mmHg L G G L F2 0.5 .475 air 0.05 mole frac HCl .05 y 0.05263 .95 mol HCl mol air X out F1 1.0, G=.8 y1IN 0.20 mole frac HCl YIN .2 .8 mol HCl =0.25 mol air Assume Water (not total liquid) flow rate is constant in both sections. Assume air flow rate (not total gas) constant is each section. In bottom section G 0.8 mol air h . In top section G 0.8 0.5 .95 1.275 mol air h. Keep X as kg HCl kg water (from equil. data). Convert p to y (mole fraction) to Y (mole ratios). kg HCl y X p kg water p p tot Y kg HCl y kmol air 1 y 0 0 0 0 0.0870 0.000583 3.8355 E-7 3.8355E-7 0.1905 0.016 0.00001053 0.00001053 0.316 0.43 0.0002829 0.0002830 0.47 11.8 0.007763 0.0078240. 0.563 56.4 0.037105 0.038535 0.667 233 .15329 .18104 0.786 840 .55263 1.2353 296 Y vs X equilibrium data is curved. Using these units, we need L in kg water hr and G and G in kmol air hr , and we need to convert the X terms from kg HCl/h to kmol HCl/h. Top Operating Line Y L G(MWHCl ) (L / MWHCl )X GYout , X IN GY (L / MWHCl )X IN L X Yout 0.002004 Goes through (0, 0.002004) 1.275(MWHCl ) Bottom Operating Line GY (L / MWHCl )X out L 0 GYin (L / MWHCl )X L L 0.8MWHCl 0.25 L 0.8MWHCl X out X out G(MWHCl ) G(MWHCl ) a) Feed line saturated gas at Y 0.05263. Two operating lines intersect at feed line. Y X YIN Y1,IN 0.25 X *out Sketch for Min L determination Y L (G (MWHCl )) YF2 X int er sec t L /(G(MWHCl )) 0.002 Yout * From plot X OUT X 0.69 (see figure) L (G(MW)) L MIN L (G(MWHCl )) X *OUT YFIN 0.8(MW) 0.69 (G(MWHCl )) G(MWHCl ) YF2 YF2 YF2 L G G YF2 .25 0.05263 X *OUT YOUT G(MWHCl ) X *OUT X int er sec t (G(MWHCl )) L Bottom operating line: YF2 YF2 L Yout Top operating line: Solve for X int er sec t 0.05263 YOUT X int er sec t L. YF2 YFIN Then YOUT L MIN 0 YFIN G(MW) X * OUT YFIN YF2 G(MW) X *OUT YF2 YOUT 1.275(MW) L MIN / MWHCl 0.05263 0.00200 0.69 0.22883 0.09355 .3224 kg water h Since MWmin = 36.461, Lmin = 11.755 kg/h, L = 1.2407 Lmin = 14.584 kg/h. L/(MW)HCl = 0.40 297 298 b. M.B. F2 YF2 X out X out Top Bottom GYIN (L / MWHCl )X IN F2 YF2 GYIN GYout (L(MWHCl )) 0.475 0.05263 GYout (L / MWHCl )X out X IN 0.8 0.25 1.275 0.002 14.584 / 36.461 (L / MW) 0.4 G (L / MW) 1.275 0.4 G Top goes through 0.8 0 0.5561 kg HCl kg water 0.3137 0.5 X IN 0, Yout 0.002, Slope (L/MWHCl ) G Arbitrary point for plotting: X .4, Y .3137 .4 0.1255 Y .1255 .002 0.1275 Bottom from X out 0.5561, YIN 0.25 To intersection Top Operating and Feed Line. Need ~ 1.6 stages. Opt. Feed for F2 is Stage 1 (Feed 1 is at bottom.) Check Slope bottom .25 0 .5561 .06 0.3137 0.504 0K. 299 Figure for 12.D8. 300 12.D9. Repeat 12.D2 with Kremser. y y1* mx m x0 n Eq. (12-22) m b 169.2, b 0, x 0 mV 0, 169.2 L 0 , y1 x in 0.0012 0 0.000036 0 1 0.846 N 2000 0.846 , L V 200 y out 0.000036, y N 1 200 10 0.0012 0.846 10.69 n 1 0.846 Graphical solution was 10.4. Pretty close! 12.D10. Use Kremser equation such as y A out y A* 1 L mV out y A in N y A* out 4, m 1.414, L V L mV .65, y Ain L mV Equation becomes: 1 y Aout 0, y A* 12.D11. V L y out V L m x Ain out 1.414 .02 .02828 .65 1.414 .459 .02828 Overall mass balance: yin V L x in x out N 1 y in x in .02828 .552 .01267 y out V L x out 1 .65 .01267 0 .02 4.93 10 4 Any of the vapor forms of Kremser equation can be used but problem is trial and error. For example, use Eq. (12-21) inverted for L m V 1 L mV becomes, .27 N 1 y N 1 y1* L 1 mV Set up table and try values of m. y1 y1* 1 1 1 1.2 m 1.2 m 5 m 1.0 1.2 1.3 1.4 1.41 1.415 RHS .1344 0/0 .233 .2658 .2691 .2706 By linear interpolation m = 1.414. Note that m = 1.2 is a trap for the unsuspecting student since L/(mV) = 1.0 and special form of Kremser is required. 12.D12. Note this requires information in Section 13.4. 301 L X in .796 1000 .204 796 kg solvent/h , .256, X out .796 0.025 L G 796 All stages 25,190 0.02564, Y1,in 0.975 0.0316 .0012 1 .0012 .001201 Equilibrium, y = 0.04 x x .05 .10 .15 .20 .25 X 0.0526 .11111 .1765 .25 .3333 y .002 .004 .006 .008 .01 Y .002004 .00402 0.00604 .00806 .0101 Plot weight ratios. Op. Line: Yj L Xj Y0 L Xj 1 G G Slope = - L/G = - 0.0316. Step off stages backwards (start w. stage N) since it is different than other stages and we wouldn’t be sure when to switch if stepping off forwards. Need 4 equilibrium stages. Note: Can also plot y vs X, since y ~ Y and G ~ V 302 12.D13. New Problem 3rd Edition. Strip Vinyl chloride from water at 25ºC and 850 mmHg. H 1243.84x y x 1147.904x p tot 850 760 Want 0.1 ppm water leaving. Entering air is pure, L 1 kmole hr. y x0 * out x IN y out y1 y IN 0 1 y N 1147.904 1 x out yN 5.0 xN x out y1* G b and c. Want y*out 1147.904 x IN 5739.52 0 x0 5739.52 ppm (mole) 1171.33 5.0 0.1 G 2 G MIN mix L G G MIN 0.00085373 L F x *N n 0 585.665 1147.904 1 y out Lx IN For L 1 kmol h , G x IN h 0.00170746 kmol h air 5.0 0 0.1 0 585.665 1147.904 n 1147.904 585.665 d. kmol 585.665 (See figure for part b – labeled HW5 Prob 1b). m = 1147.904. c. Eq. 12-28 N x IN 1 ppm L y out yN x out Gy IN y IN Lx out n 25.0 0.672944 4.78327 G 0.00170746 kmol h 585.665 5.0 0.1 0 2869.76 ppm 0.00286976 mole frac. Probably send waste gas to incinerator. Will require additional fuel to burn. e. All concentrations are dilute enough that L G and equilibrium are straight and operation is very close to isothermal. 303 304 12.D14. a) 95% removal CH4, 5% remains – Constant V: Yout 0.05 0.00129 0.0000645 CH 4 b. yin CH 4 Eq. 0.00129 L V y CH 4 min x* y CH 4 y out p CH 4 3600 x CH 4 p TOT 175 y CH 4 in 0.00129 20.5714 20.5714 20.5714 x CH 4 0.00006271 0.000645 CH 4 x CH 4 x in Slope 0.00129 0.0000645 L V min L V actual c) Ext. bal. x out CH 4 x CH 4 ,out V L 0.00006271 0 1.4 L V min 27.360; L y in x CH 4 ,in V L 100 CH 4 V 19.5429 27.360 V y CH 4 ,out y CH 4 ,in y CH 4 ,out 0.00129 0.0000645 L 2736 d) Use methane values in Kremser eqn. (12-22) to find N 20.57 100 mV m 3600 / 175 20.57, 0.75183; y1* L 2736 0.00129 0 0.0000645 0 n 1 0.75183 N 2736.0 0.00004479 mx 0 b 0 0.75183 6.11 stages n 1 0.75183 e) Now use Argon values with N = 6.11 to find y Ar,out & x Ar,out . m Ar 7700 175 Eq. (12-23) x Ar ,out 44.00, y Ar ,in mV 44 100 L 2736 0.00024 y Ar ,1 0.00024 0 V L yN y Ar,out y Ar,1 y Ar ,in y Ar ,out 1,Ar 0.00024, x Ar ,in 1.6082, 1 1.6082 1 y1* mx 0 1 1.6082 1 1.6082 7.11 x Ar ,0 b Ar 2736 0 7.11 0.60846 0.00024 0.00024 0.60846 100 0.0 0.00024 0.00009397 0.00009397 0.00000534 305 0.00000534 2736 % Argon recovery in liquid 12D15. 100 0.00024 Need equilibrium data. From DePriester chart: K C3 y C3 x C3 1.23 m C3 , K C4 L Butane is a design problem: 100 y C4 x C4 N y N 1 y1* y1 y1* mV L mV L n m C4 0.17 C4 m C4 x 0,C4 .0006 0 .0000072 0 .83 L n mV Propane is simulation: y N 0.34 mV 5.882, mV C 4 L 1.2% of the butane leaves as a gas. Thus, * y1,C4 0.006 0.012 0.0000072, y1,C4 1 60.85% .17 2.39 n 5.882 * 0.0017, y1,C3 1,C3 0, L 1.626, mV C3 0 mV L 0.615 C3 N 1 yN y1 1 y1* y yN * 1 1 y1 L 1 mV , y1 1 L mV yN 1 0.000298 5.7034 12.D16. Was 12.D19 in 2nd edition. . a.) Equil. y CO 2 H CO2 PTOT x CO 2 , H CO 2 25 C 1640 50 mmHg 50 760 0.06579 atm PTOT 1.0 x CO 2 y CO 2 .00035 Feed H CO 2 1640 Equilibrium in column: y CO 2 H CO 2 PTOT x CO 2 1640 0.06579 x CO 2 atm mol frac 2.134 10 7 24982 x CO 2 Basis: L = 1 kmol total/h. Assume L & G constant. Input = 2.1341 × 10-7 kmol CO2/h. 95% removal = (.95) (2.1341 × 10-7) = 2.027395 × 10-7 kmol CO 2 h in outlet gas. 5% CO2 remains in liquid x in x out .05 2.1341 10 7 outlet liquid mole frac 0.106705 10 7 kmol CO 2 h 0.106705 10 1 kmol h 7 0.106705 10 7 b.) 306 Slope y max out 24982 y L V Slope yin 24982 2.1341 10 7 5.3314 10 3 y max y in 5.3314 10 x in x out 2.1341 0.10605 max 3 0 10 7 L Vmax 0 x out x x in L 7 2.1341 10 2.62968 10 V Since L = 1, max 1 Vmin 2.62968 10 4 3.803 10 5 kmol h 4 c.) V 1.5 Vmin 1.5 3.803 105 5.704 10 5 kmol h Conditions for Kremser eq. are satisfied. CO2 Mass Bal: 2.1341 10 7 in 0.106705 10 5 out w. water 5.704 105 yCO2,out y1 y CO 2 ,out Eq. 12-29 2.027395 10 5.704 10 N n 7 3.5543 10 5 x *N xN n yN x *N x0 N 1 0, y1* y1 x *0 3.5543 10 m 24982 0.106705 10 2.1341 10 7 7 3 1.4227 10 7 0 1.4227 10 7 5.3569 1.0 n 12D.17. x *0 L mV m n 3 24982 5.704 10 .0002 1.414 .0002828, 5 L L mV 14.14 Can use variety of forms of Kremser equation, but cannot easily use forms with y*N 1 since y*N 1 mx N and x N is unknown and hard to calculate. Try Eq. (12-21). yN y1 1 y1* .0083 .0002828 * 1 .0005 .0002828 y L 1 mV 36.91 L 1 mV N 1 Do by trial-and-error L/mV RHS 2 15 3 40 2.9 36.699 2.91 37.02 307 Linearly interpolate L/mV = 2.907. Then, L = (2.907) (14.14) = 41.10 kmol/h. 12.D18. a. L, x 0 y p 11.5 p total 1520 0.00757 , x y1 0 1 x1 0.0004, L y1 VT x L yi V xN Bot. of Column: yN 1 y 1 y x 0.00757 0.0127 0.596 .00596 L slope VN 1 100 VT 150 100 , VF Ext. MB: Lx 0 150 0.0004 xN VN K .01, y x0 VF y F 0.003 N 0.0127, 23 50, L 100 VF y F 50 .003 VN 1 y N 1 Lx N 100 .0058 100 VT y1 0.0067 0.0058 L V x yN L 1 V xN, Slope L VN 100 1 100 1.0 308 c. Minimum L. xN yN 1 Eq. y L min yF VN y1 L min L min VT 150 L min 100 slope 1 slope x0 x Pinch is at y F . x F y F 0.596 L min VT L min 0.003 0.596 Slope min 0.51653 VT 0.00503 0.003 0.0004 0.51653 150 0.00503 0 0.51653 77.48 kmol h . 309 12.D19*. New Problem 3rd Edition. Found m and L/V in Example 12-1. L/(mV) = (L/V)/m = 133/105.6 = 1.259, (mV)/L = 0.794, y1* = 105.6×0 = 0 If use Eq. (12-22), N = {ln[(1 - .794)((100-0)/(10-0)) + .794]}/ln[1.259] = 4.5 .000024 12.D20. a) 99% removal H 2 O , 1% left, 1000 .01 0.00024 moles out in L 0.00024 x H 2Sout 0.00000024 1000 Moles H 2S out in gas = (.000024) (1000) (.99) = 0.02376 0.02376 y H 2Sout b) H H 2S Equil. H 2S. y H 2S p tot V 26800 x H 2S 15.5 H CO2 y CO2 p tot 0.02376 x H 2S 1729.03 x H 2S , m H 2S 728 x CO 2 0.00691 3.44 15.5 x CO 2 1729.03 46.9677 x CO 2 , m CO 2 46.9677 Can use Kremser eq. for H 2S design [dilute linear system]. For example, Eq. (12-28) n N 1000 mV x*N 1729.03 3.44 H 2S yN 1 n m 0, x 0 xN x0 * N * N CO 2 x x mV L 1 mV L 1 1 x N ,CO 2 x0 1 0.000024, x N H 2S CO 2 N 1 yN 1,CO2 , with N mCO2 H 2S 0.00000024 H 2S 0.16813 2.4807 0, x 0 2.4807 and 5.9479 L n 5.9479 unknown, x*N For CO 2 . x N mV 0.16813, .000024 .00000024 1 0.16813 N c) H 2S L mV mV L n L x *N x *N x0 xN L mV 1 0.000038 Kremser (12-31) 46.9677 3.44 mV L CO 2 1000 0.16157 CO 2 mV L N mV L 1 0.000038 1 0.16157 1 .16157 3.4807 0.000031916 CO 2 Little amount of CO 2 310 23.78 12.D21. New Problem 3rd Edition. Abs. y Stripper y out 23.78 y y IN Abs y Slope 5 0.2 x x 4.756x 118.90x 0.00098 4.756 x EQ L MIN G L MIN x IN 735.302 Abs 100 0.00001 x L act m y IN y1* mx IN Eq. (12-22). N 0.00098, y1 4.756 .00001 y N 1 y1* y1 y1* mV L n N abs 459.56 kmol h 735.302 kmol h V y abs,IN y abs,out 100 0.00098 0.000079 735.302 Kremser Eq. 1 100 4.5956 4.5956 0.00001 L abs x abs,out n 0.000079 0.00020605 1.6 L abs,MIN L abs x abs,IN 735.302 0.00001 x abs,out 1 0.00098 0.00020605 7.353 x abs,out External M.B. yN 0.00098 4.756 Operating line Slope 0.000079 L V slope equilibrium x strip,IN 4.756, b y out 0.00013253 0, L mV 7.353 4.756 1.5460, mV L 0.64681 0.000079 0.00004756 mV L n L mV .35319 0.00098 0.00004766 0.000079 .00004756 0.64681 n 1.5460 n 11.1216 2.40889 n 1.5460 0.4357 5.53 311 Stripper 118.90 = Slope Equilibrium y EQ y L x out 0.015758 = Slope Operating line VMIN y IN 0 118.90x N 118.90 0.00013253 0.00001 x IN x out,abs 0.00013253 x0 118.90 L 0.015758 0 V VMIN ,Strip VStrip y Strip out 128.6037 0.00013253 0.00001 MIN Strip 735.302 L Strip 128.6037 1.5 5.718 VStrip y Strip IN 5.718 kmol h. 128.6037 8.576 kmol h. L Strip x Strip IN x Strip out 0 735.302 0.00013253 0.00001 VStrip yStrip,IN yStrip,out 8.576 x *N 0.010506, 0 yN 1 118.9 Kremser (12-28) n 1 N x *N x *N x0 xN L mV L mV n mV L n 0.00013253 0 0.00001 0 0.27889 N , L 735.302 mV 118.90 8.576 0.721106 4.54 n 1.38676 12.D22. New Problem 3rd Edition. K 0.22. y L 75, V 150, L V External M.B.: Lx N xN Vy1 V L Lx 0 yN 1 Vy N y1 0.721106 Kx 0.22x. Plot e.g., at x 0.006, y 0.00132 0.5 1 2 0.003 0.0004 0.0052 Points x 0 , y1 0, 0.0004 , and x N , y N 1 0.0052, 0.003 are on op. line. Plot Op. Line. See graph (labeled 12.D.b). 2 stages more than sufficient. 312 313 12D23. Apparatus similar to Figure 12-2, except part of treated gas is heated and used as stripping gas. Absorber: Work in terms of mole ratios. Yi n .15 .85 0.1765, Yout 0.005 .995 G 1400 .85 Equilibrium: y 0.00502, X in 1190 mol carrier gas/day, L 800 .995 0.005 .995 0.00502 796 mol solvent/day .5x . Convert to mole ratios x 0 X 0 .0526 .1111 .1765 .25 .05 .1 .15 .2 Plot ratios on McCabe-Thiele diagram L Absorber: Op. Line: Y X Yout G External balance Absorber: 796 .00502 y 0 .025 .05 .075 .1 L X in , Y 0 .0256 .0526 .0811 .1111 L 0.669 G G 1190 .1765 1190 00502 796 X out X out Abs 0.2614 Step off stages as shown in figure. Need 8 equilibrium stages. Stripper: Yin .00502 same as Yout abs , Xin 0.2614 same as Xout abs X out 0.00502 same as X in abs , L 796 mol solvent day, have 4 stages Stripper equilibrium: y = 3 x. Convert to mole ratios. x 0 .025 .05 .075 .1 .15 X 0 .0256 .0526 .0811 .111 .1765 y 0 .075 .15 .225 .3 .45 Y 0 .0811 .1765 .290 .4286 .818 Problem is trial-and-error. Select Yout . Draw operating line from Yout , X in to Yin , X out . See if need 4 stages. When need exactly 4 stages, L/G = slope. From Figure, final result shown: G strip L slope 796 1.0998 723.7 mol carrier gas/day. Yout strip ~ 0.287 mol ratio 314 315 12.E1. Convert ppm(wt) to mole fraction: ppm 10 6 wt frac Basis 1000 g. of steam: Feed Liquid 1000 ppm = 0.001 wt frac mole frac Liquid Water lg Nitrobenzene 0.00812 gmole 999 g water = 55.4507 F L F C where C 28.1 10 L mV S Vout 99 61.8 18.0314 37.2g water , C 2.0648 mol 95.7219 2.0648 97.7867 mol h Outlet: Basis 1000 g 28.1 ppm 28.1 10 S 0.9998535 Total 55.4588 mol 1000g Avg mol. wt 55.4588 1726 g h 95.7219 mol h L V 0.0001465 6 wt. frac. moles 3 Mol frac. 4 g nitrobenzene 2.2825 10 999.9997 18.016 55.5062 1000 28.1 10 3 g water 55.5064 mol 99 18.016 5.495 mol h . 4.11 10 6 ~ 1.0 Equil. y mx b, b 0, m H p tot 28.0 Kremser Eq. – Several forms can be used. → Use Eq. 12-28. 97.7867 mV yN 1 b 0 0.63555, 1.5734 , x *N m 28.0 5.495 L n 1 N Effic x0 xN L mV x *N x *N L mV mV n L N Eq 5.763 5.763 0.524 N act 11 Ref. Hwang et al, IEC Research, 31 (7) 1992, 1753 & 1759. 12-F1. H = 59.3 (Perry’s 4th ed., p 14-4). y H 59.3 x 11.86x PTOT 5 To be absolutely correct should convert this to mole ratios, although at these low concentrations could use mole fractions with small error. y x Y , X 1 y 1 x 316 x in x y X Y 0 0 0 0 .001 .01186 .001001 .012 .0015 .01779 .001501 .01810 .002 .02372 .002003 .0243 Change specified conditions to mole ratios. 0, X in 0; yin .02, Yin .02041; y out .002; Yout .002003; x out .001, X out See Figure for plot of operating line, equilibrium and stages. N = 3.3 Height 5 ft HETP 1.515 N 3.3 equil stage Yin Yout L .02041 .002003 18.4 G X out X in .001001 0 If use mole fractions find L/V = 18.0 12.F2. K E 26.0, K p 0.6, K After one pass of mass balance obtain: .001001 0.019 317 xi,1 ethane 0.032 pentane 0.005 octane 0.963 xi,2 xi,3 0.035 0.033 0.031 0.162 0.934 0.805 yi,1 0.975 0.003 0.021 yi,2 yi,3 0.962 0.885 0.019 0.099 0.019 0.016 For new temperature used multi-variant Newtonian convergence. T1,New 73.90 F, T2,New 80.93 F, T3,New 2.G1. a) N 4, L 570, y A,out 0.00317 b) N 8, L 500, y A,out 0.00315 while with L c) N 16, L 490, y A,out d) Have a pinch point. 0.002978 while with L 490, y A 480, y A 99.15 F. 0.00358 0.00337 12.G2. Used Peng-Robinson. a. Total number of stages required 8 b. Feed stage location for the solvent 1 c. Feed stage location for stream A 8 d. Feed stage location for stream B 6 e. Outlet mole fractions of gas stream leaving absorber 0.9991009, 0.00024691, 0.00019067, 0.0004617 f. Outlet mole fractions of liquid leaving absorber 0.012878, 0.0310992, 0.0198928, 0.93612992 g. Outlet gas flow rate 161.6478 kmol/h h. Outlet liquid flow rate 213.352 kmol/h i. Highest temperature in column 19.1287 ˚C and stage it occurs on 8 12.G.3. New Problem 3rd Edition. Used NRTL. Column pressure = 1.0 atm. Feed gas flow rate = 752 kmol/h. Feed gas temperature = 100oC. Liquid feed temperature = 75oC. Recovery of isopropyl alcohol = 0.98000. T1 = 302.5K, T2 = 298.6K, T3 = 299.9K, T4 = 301.9K, T5 = 303.3K. Leaving gas: G = 802.2 kmol/h, Mole fractions: IPA = 0.02443, W = 0.033836, N2 = 0.93721 Leaving liquid: L = 149.8 kmol/h, Mole fractions: IPA = 0.002671, W = 0.99638, N2 = 0.000950 Column diameter = 1.5455 m. 318 SPE 3rd Edition Solution Manual Chapter 13 New Problems and new solutions are listed as new immediately after the solution number. These new problems are: 13.A12, 13.A13, 13.D3, 13.D5, 13D6, 13D10, 13D22, 13D30-13D34, 13D36-13D42, 13.E2, 13.E3, 13.G1, 13.G2 . Chapters 13 and 14 from the 2nd edition were rearranged to place all the extraction material into chapter 13 and the material for other separations in Chapter 14. Thus, the numbers of many problems have changed. 13.A3. The amount of solvent should be increased. This will decrease F/S and move the mixing point M towards S. As a result the saturated extract product E N will be moved down (less solute). The difference point ∆ will be moved towards the triangular diagram. The combined effect will be that fewer stages are required. By adjusting F/S a condition requiring exactly two stages can be found. 13.A5. The vertical axis will be the extract phase and the hypotenuse will be the raffinate phase. These will be connected by tie lines. Usual procedure can be used. 13.A7. Situation where E = R and ∆ point is at infinity. All operating lines are parallel. However, this does not correspond to minimum number of stages in extraction. 13.A.11 c. 13.A12. a. C will be spread out and go into both raffinate and extract streams. b. C will concentrate around the feed edge. If C is very dilute in the feed, can concentrate C. Then by stopping the feed but continuing to flow solvents, solutes A and B can be removed. Solute C can now be collected by withdrawing a stream near the feed stage. 13.B1. Specify: T, p, z A , z B , F, x Ao , x B , y A N , y BN plus: y B1 , R, E, N F x B N , R, E, N F x A N , R, E, N F R, E, y B1 , x A N N, N F , y A1 , E N, N F , x B N , R N, N F , x A N , R, etc. Could also not be given one of standard variables (such as solvent concentration). 13.B2. a). One can build stages which are cross-flow (e.g. see Figure 12-12) within a countercurrent cascade. This effectively increases stage efficiency. Not that upward flowing less dense liquid will be mixed. b.) Build chambered stages within a counter-current cascade to prevent mixing of the dense liquid and give better cross flow on each stage. c.) Put in baffles to prevent MIXING of both less and more dense liquids. This will be more effective if counter-current is arranged so that flow across stages is always in same direction (see sketch) 319 13.C.7. Start by defining ∆ and the coordinates of ∆ as: E o R1 , x A E o y Ao R1x A1 , x D E o y Do nd rd Removing ∆ from 2 and 3 equations we obtain Assume that E o Rj xA E o y Ao R 1 x A1 Eo R1 (13-43a) xD E o y Do R 1 x D1 Eo R1 (13-43b) R 1 . Next write the three independent mass balances around stages 1 to j. Ej , 1 R1x D1 xA R j 1x A j 1 E j y Aj , xD R j 1x D j 1 E j y Dj These equations are now in a form similar to the form of the mixing equations developed previously. To develop the three point form of a straight line use the first equation to remove ∆ from the other two equations, solve for R j 1 E j in each of these equations, and finally set the results equal to each other. The development proceeds as follows: Use Ej R j 1 to remove ∆ from the other mass balances. Ej Rj 1 xA Solve for R j 1 R j 1x A j 1 Ej , Rj Ej 1 E j yA j , E j yAj xA xAj 1 xA , Rj Rj Ej 1 1 xD R j 1x Dj 1 yDj xD xDj 1 xD Finally, set these equations equal to each other. yA j x A yDj x D yA j x A rearrange to: xAj 1 xA xDj 1 xD xDj xD yAj 1 xA x Dj 1 xD E j y Dj This last equation says that the slope of the line between the points xD , xA y D j , y A j and is equal to the slope of the line between the points x D j 1 , x A j 1 and x D , x A and thus the lines are colinear. Furthermore, the lever-arm rule is valid for this system. 13.D1. a. If we have a single column with only pure solvent then 320 R y x E 44, R is on op. line. E R 1 2.273 0.0037 . Thus, cannot get to x o Op line intersect equilibrium at x b. Now E and point x N , y N x N yN 1 E 100 , Slope R E 0.001, 0.0 0.012 . 74 and R E 1.35 . 44 30 44 0 0.001, but y N 30 0.004 0.00162 74 At x 0.001, equilibrium value of y 1.613 x 0.001613 . Alternative works, but have pinch point and need very large number of stages. Still want x N 1 c. This alternative (Say use 25 kg/min of 0.004 butanol) 44 0 25 .004 yN 1 0.00145 which is below equilibrium point. 69 Now R E 100 69 1.449 m equil 1.613 Thus, this will work. Obtain 0.00145 69 0.012 100 0.001 100 0.0174 69 Op line closer to equilibrium – require lot more stages. 20 0.004 If use 20 kg/min of 0.004 butanol: y N 1 0.00125 64 0.00125 64 0.011 100 R E 100 64 1.5625 , y1 0.01844 64 Will also work. Becoming close to pinch at top equil y1* 0.019356 y1 If 15 kg/min, y N 15 .004 1 0.0010, R E 59 1.0010 59 y1 0.011 100 100 59 1.6949 0.1964 59 y1* m eq 0.19356 Won’t work. Thus, there is a small range where option c will work, but with many stages. 13.D2. R 20, E 20, x IN Kremser equation Eq (13-11) x F , y IN 0, m R 20 mE 8.333 20 y1 yN y1 8.3333 x F y 1 1 * 1 y1* 1 8.3333 x F 8.3333, b 0.12 , y1* R mE N 1 R mE 1-0.12 1- 0.12 3 0, N mx 0 b 2 8.3333 x F , y N+1 7.3460 x F , → y1 0 0.9873 x F 321 Rx F Mass balance, Recovery = 1 x N x F Rx N Ey1 , x N 0.01269 x F 20 0.9873 , which is higher than 0.963 obtained in cross-flow. 13.D3. New Problem in 3rd edition. From M.B. R .013 Where R = 100 and the unknowns are E and yout. y out and Equilibrium: S 1.613 x out E E .001 1.613 .007 R .013 .007 y out 20 x F 19.746 x F R .007 0.01129 100 0.006 0.001 E y out 0.01129 0.001 58.309 kg h Alternative Solution: 1 Equilibrium Stage y 1.613x 1.613 y y out 0.01129 R from graph E E R 0.001 0.01129 E 0.013 0.007 R 1.715 1.715 58.309 .001 x out .007 x .013 Another alternative solution: 322 E, y1 Op. Line: Eq. R, x 0 x y x0 R y2 R E Slope Points x1 , y 2 , y2 y1,in y1,IN x1 x0 x 0 , y1 T & E in this configuration Slope If Eq. line is straight, can Use Kremser with N=1. Both representations are correct. Treating similar to a flash is easier. 13.D4. E But x1 and y1 unknown x where y 2 R On Op. Line R, x1 E, y 2 y1 y1 1 Or E x1 known, N = 1 Since concentrations are low, use wt. fractions and total flow rates. Equilibrium: y 0.828 x or m 0.828 R 550 lb h, E mE R 700 lb h, x 0 1.0538 and R mE * 1 y b n 0.828 .0097 mE 1 R yN R 1 E R x0 E xN n N .0003 550 0 1 0.0003, .00046 0.0075 0.00803 y N 1 y1* y1 y1* n y1 0.00046, y N .94893 mx IN Kremser Eq. (13-11b), N 0.0097, x N mE R R mE 0.0097 700 .0077316 .0538 .0004716 550 700 1.5038 33.6 n .94893 13.D5. New problem in 3rd edition. Part a) Can do with Kremser eq or graphically. y m x b, m 0.828, b 0 R 400 R 400, E 560, mE 0.828 560 x0 0.005, x N 0.0003, y N+1 0.0001, 0.862664 mE 1 R .862664 1.159 323 R Since 1.0 , can use equation such as 13-11b mE y1* m x 0 b 0.828 0.005 0.00414 n y N 1 y1* y1 y1* mE R 1 N n n 1 1.1592 N where y1 yN R x0 1 E 1.52637 N mE R R mE 0.0001 0.00414 0.0034571 0.00414 xN 1.1592 n0.862664 400 0.0001 0.005 0.0003 560 0.003457 10.332 0.14773 Alternate solution: Eq. (12-28) becomes L R, V yN x *N 1 E , N b n 0.0001 m 1 x *N x *N x0 xN R mE 0.000120773 , N 0.828 R mE n mE R 1.52637 10.332 .14773 b) y1* 0.828 x 0 0.828 0.005 0.00414 Equil. y E yN R E 0.0001 1 xN y1 y1 Part b. R x0 E 100 yN min R 1 0.005 E 140 Kremser Eq. min yN x0 xN 1 0.00414 0.0001 0.005 0.0003 slope x0 0.0003 13.D6. New problem in 3rd edition. Part a. Ey N 1 Rx 0 Ey1 Rx N y1* R Slope = 0.828 0.005 E MIN R 0.85957 400 0.85957 0.85957 465.3 kg h Ext. M.B. xN 0.0002 100 140 0.0005 0.003414 324 Convert x L R x L R y y yN E, x *N V 1 m 0.0002 1.208 0.00016556 100 0.5913 mV mE 1.208 140 Lots of different forms can be used. n N For example n 1 N 0.4087 N x *N x *N L mV n mV L n Becomes x0 x0 L 1 mV x0 xN R mE x *N x *N R mE n mE R 0.005 0.00016556 0.0005 0.00016556 1 n 0.5913 0.5913 1.8717 0.5254 Eq. Part c. y EQ 3.6 y 1.208x 1.208x 0.00604 y R E MIN y N 1 0.0002 y 1.208x xN R 0.0005 x slope x0 0.005 0.00604 0.0002 1.29777 0.005 0.0005 R 100 E MIN 77.05 1.29777 1.29777 Maximum extract out y EQ x 0 0.00604. Part d. The roles of extract and diluents are switched in the two problems, which changes the definitions of y and x. E MIN 13.D7. Equilibrium: N 30, R 500, y N y 0.828x, m 1 0.0002, x 0 0.828, x *N yN 1 0.0111, x N .828 0.00037 0.00024155 325 Since rather dilute and linear equilibrium use one of the Kremser equations. n N Where E 500 x *N x *N R ME (12-28 (modified)) mE n R x0 x *N xN x *N R/mE 1.21 83.756 . Solution is trial-and-error. Calculated N Negative-Not possible Need 0.8626 .929 .9435 .945015 700 650 640 639 xo xN R mE 1 R mE 1 17.01 E too high 26.175 E too high 29.84 E too high 30.30 E too low By linear interpolation need E ~ 639.6 kg/h. Can use other forms of the Kremser equation. Was 13.D10 in 2nd edition. x is raffinate R L Convert Kremser y y extract, V E 13.D8. a) Use 12-31 xN x *N Other forms OK x 0 * N x *N 1 xN x0 1 b) x yn KE R KE R m 1 mV L mV L 1 K 1 R E x0 3 0 30.488 25 100 30.488 25 1 R x0 xN 0.00001376 3 100 Can use External balance or Kremser to find y out y1 KE R 1 1 Ey N 0 1 KE R 0.00092 3 K, b N 1 1 Ey1 13.D9. mx 100 25 y1 xN 0.00092 0.00001379 0.003625 Assume very dilute, R = 1500 kg/h, E = 750 kg/h Equil. Y K d X becomes y K d x From Table 13-3. K d,oleic 99% recovery oleic: moleic 4.14, K d,linoleic .99 .0025 1500 md,linoleic 2.17 y1,oleic 750 → y 1,oleic .00495 326 Use Kremser, Eq. (13-11b). y1* m oleic E 4.14 750 R 1500 4.14 .0025 m oleic x 0,oleic n N For linoleic acid: yN 1 0, N y N 1 y1* y1 y1* mE R 1 2.07 0.01035 mE R 5.44 R n mE R 1500 m lin E 750 2.17 5.44, y1* Can use Eq. (13-11a): y1 .00651 Recovery of linoleic: m L x 0,L yN y1* 1 2.17 003 R mE N R 1 mE .07834 .00651 1 y1* y1 .9216 , .00651 .40866 Re c .003 1500 1 .00124796 → y1linoleic 0.00526 .00526 750 → Rec = 0.877 th 13.D10. New problem in 4 edition. Analytical or graphical solution OK. Stage 1 F1x F1 E i Equilibrium x 2,out 1.02 x1 Fx F1 1.02 E R1 x1 Mix with Feed 2 1.02 E R1 1.02 50 R 1 x1 E2 y 2,in E 2 y 2,out y 2,out 1.02 x 2,out 0.0099338 100 R2 R 3,in R 1 x1 100 0.015 F xF R 1 x1 1.02 E 2 Ey1,out y1,out x1 Stage 2 y1,in 151 100 0.0099338 R 2 x 2,out , R1 0.006579, R 2 R2 R1 F1 F1 100 100 100 70 170 327 x 3,in x 3,in Stage 3 x 3,out x 4,out y 4,out 0.006579 100 0.005 70 170 0.0059286 E3 y3,in E 3 y3,out R 3 x 3,out 1.02 x 3,out R 3 x 3,in 1.02 E 3 R 4 x 4,out y 4,out x F2 F2 R 3,in R 3 x 3,in y3,out Stage 4 x 2,out R 2 E4 170 0.0059286 R3 y 4,in 1.02 50 E 4 y 4,out 170 0.00456 R 4 x 4,out , R 4 R3 170 1.02 x 4,out R 4 x 4,out 1.02 E 4 1.02 x 4out 170 0.00456 R4 51 170 0.003508 0.003578 328 329 13.D11. R R F 2501, E Equilibrium: K D E 1000 1.57 . For dilute this becomes m xN R Abietic Acid Recovery: xN .0475 .0475 R 2501 Top op. Eq.: y Goes through pt x 0 Bottom Op. Eq.: y 0.0000190 , y1 R E x R x yN R 1 y1 E x3 1 0.17594 Rx in .0475 .05 F x F .05 1.0 .05 E 1000 R 2500 E 1000 0.0000025 y 4 0, y*1 1 1.2399 0.00742 Ey in 2.5 x N through point x N , y N 1 1.2399 0 0.00742 y1 Overall bal. 0.00742 .95 1.0 0.5 x0 E m 1.613, R mE 1.2399 , y N Eq. (13-11a) 13.D13. a. R y1 0, y1 . Slope E Need 8 ½ stages (see Figure). 13.D12. .95 F x F K D in wt. frac. units. Ey out mxin 1 0 , R E 0.00742 0.17594 4 0.00742 10 0.0046 R 0.006114 5 0.006114 10 0.1 1000 0.003 xy . 90% recovery, 10% left x ,out 2.501 0.00154 0.3 kg out 0.0003 330 O xy For ortho, y max 95% recovery, 5% left 0.15 0.005 0.25 , x O,out 0.00025 0.00075 R E For para 0.05 1000 0.005 0.00075 0 max,ortho y max 0.08 0.003 0.00024 R 0.00024 0 E 0.003 0.0003 max,para b. The p-xylene recovery controls. E 1.5 11250 16875 , 0.1579 0.005 0.00025 1000 E min 0.08888 0.08888 11, 250 R 0.0592592 E Can use Kremser eq. (13-11b) for ρ-xy to find N n N mE 1 R y N 1 y1* y1 y1* mE R R mE m 0.080, R E 0.0592592, y N 1 0 , y1* mx o,p 0.080 0.003 0.00024 Mass balance: 90% entering ρ-xy leaves w. solvent. 0.9 1000 0.003 y1 0.00016 wt frac 16,875 R 0.0592592 R mE .080 1.35 0.74074, n 0.300106 , R 0.0592592 mE 0.080 mE n 331 n 0 0.00024 0.00016 0.00024 .35 N 1.35 n 0.30 4.012 0.300106 0.30016 Note: Can use other forms of Kremser eq if desired. c. For o-xy check if recovery > 95% R 1 * y1 unknown, y N 1 0 y1 y1 mE Eq. (13-11a) N 1 y1* mx 0 0.15 0.005 0.00075 y N 1 y1* R 1 mE R 0.0592592 0.39506, N 4.012 mE 0.15 1 y1 yN 1 y1* 1 R mE N R mE External M.B. y1* 1 Ey1 R xN Rx 0 xN 1 Ey N 1 0.39506 0.00075 16875 .00029194 R a) 5.012 0.0029194 R x0 5 Ey1 1000 % Recovery 13.D14. (was 14.D4. in 2nd ed.) 1 0.39506 0.00075 Ey1 Rx 0 100 S 10.0 2 MF F 15.0 3 SM 7.3584 E 5 98.53% Once have M, use trial-and-error to find tie through M. (final result is shown). This gives E and R. y A .115, yw 0.04, xA .23, xw .73. b) Plot raffinate, R x A .1 . Find tie line through this point (not trial-and-error). This gives E. Draw Line ER. Intersection with line SF gives M. S S MF . Find S 85.7 kg/h. F 15.0 SM 332 13.D15. Since dilute, use Kremser equations. Assume units are weight fractions. a) Column 1 at 40ºC. x N 0.0008, N 11,, x 0 0.01, E 1000,, R 100 Equilibrium: m 0.1022, thus y1* mx 0 0.001022. Kremser (Eq. 13-11a): 1 1.022 0.93664 12 y N 1 0.001022 1 1 1.022 This simplifies to: y1 .093664y N 1 .00092628 y1 1 0.001022 External MB: y N 1E Rx o which simplifies to: yN y1E Rx N , y N 1 1 1000 Solve 2 eqs and 2 unknowns: y1,coll b) Column 2 at 25ºC: y N y1,col2 yN 1,col1 1,col2 y1,col1 .6929 10 5 , x 0 1 1000 1 1000 y1 .08 1000 y1 .92 0.00092693, y N+1,coll 0.6929 10 5 0.00092693 , 0, N 9, m 0.0328, E 1000, y1* mx 0 0 Use Kremser to solve for R´. This is trial and error. For example, Using Eq. (13-11a), R R 1 1 * 0.0328 1000 y1 y1 mE 0.007475 N 1 10 y N 1 y1* R R 1 1 mE 32.8 R 50 60 50.5 50.35 RHS 0.007855 0.001981 0.007307 0.007467 Within error R´ = 50.35 y N 1E R x 0 y1E .92693 0 .006929 xN R 50.35 0.0183 333 c) Could be practical if m’s were larger, and have bigger shift in m. A similar scheme is used commercially for citric acid. Not practical here since have to pump around too much solvent. In addition, benzene is carcinogenic and would probably not be used as solvent. R E 10 8 1.25, R mE 13.D16. a.) * 1 y y1 m x A0 1.613 0.01 0.01613 0.0002 0.01613 xA 1.25 1.613 0.77495 0.01613. Use Eq. (13-11a), 1 0.77495 1 x A0 0.77495 E yN E 1 R R b.) Graphical check works fine (not shown) yj 13.D17. x6 Note: x6 R Ej xj y IN 0.27044 → y1 7 R E0 y1 x j 1, 7.02498 E R 10 Ej 2 0.01182 4 5 0.0018 (See graph) x N,countercurrent 0.000702 even though use more total solvent. 334 13.D18. (was 14.D2. in 2nd ed.) Lever arm rule: Plot S, F, R and E. Draw lines SF and RE. Intersection is point M. S MF 20.3 F SM 4.5 Or Mass Bal. S + R = M and S y A Solve simultaneously 4.511 → S F xA 100 4.511 M x A ( S .15 451.1 kg/h .5 F .21 M ) S = 483.3 335 Difference is due to accuracy in reading numbers. Lever-Arm Rule more accurate! 13.D19. Equil. Kd Acetone y0 xN FD 1000 .9 yA x A 0 1 Y0 0.287 0.158 1.816 0, x 1 0.10 wt frac 900 kg/h water, FS FD FS 900 1364.1 0.005 X N+1 X1 0.10 .9 1371 .995 0.005 0.995 0.00503 0.1111 1364.1 kg/h chloroform. 0.6598 Equil. 336 XA xA yA = 1.86 xA YA 0 0 0 0 0.01 0.03 0.0101 0.0309 0.01816 0.05448 0.01850 0.0576 0.05 0.0526 0.0908 0.09987 0.07 0.0753 0.1271 0.1456 0.09 0.9890 0.1634 0.1954 0.1 0.1111 0.1816 0.2219 External M.B. FD FS XN 1 Y6 FD FS X1 YN or YN 0.6598 0.1111 0.06999, y N Results pretty close to 13.D43. 2 1 2 vs 2 2 3 0.6598 .00503 YN 1 YN 0.0655 w i accuracy of graphs. Note: The graph below should read acetone, not acetic acid as the solute. 337 13.D20. a) Batch Operation – Mix together & settle. Find fraction recovered: R R Operating Eq.: y x x 0 , R 5, S 4, x 0 x F S S Which is, y 1.25 x 1.25 x F Equilibrium y 8.333 x, m Eq. (13-21) written for batch 8.333 x R̂ Sˆ x 0 m Frac. Rec 1 0.1304 0.8696 b) Continuous solvent addition: Sˆ 1 n x t ,final x t ,feed Eq. (13-28) Rˆ t m x t,final x F Recovery = 99.87%. exp 0.8 8.33 y iN 1.25 x F Rˆ Sˆ 0.8 0 9.583 1 8.333 n 0.1304 x F x t ,final xF 0.00127 338 13.D21 (Was 14.D1 in 2nd ed.) a. Let A = methylcyclohexane and D = n-heptane. Mass Balances: F1 F2 S M or M 350 F1 x AF 1 Then F2 x AF S y AS 2 x AM 1 F1 x A F F2 x A F F1 x D F M F2 x D F 1 x DM M x AM , F1 x DF 1 2 2 F2 x DF S y DS 2 M x DM S y AS 100 .6 50 .2 0 S y DS 350 100 4 50 .8 0 M 350 0.2 0.229 Plot M. Find tie line through M. (See figure.) This gives location of points E and R. Find x DR 0.48, x AR 0.42, y AE 0.06, y DE 0.05 . b. Mass balances: M E R and Mx AM Ey AE Rx A R Solving simultaneously: E = 214 and R = 136 kg/h 13.D.22. New problem in 3rd edition. 1 Af D s2 4 0.411 and Pperf 2 With interface at center, heavy phase flow area is 1 D s D 5 2.630 2 r θ Chord .1 .4115 Ds 2 0.5115 Center r Interface α (length = C) arc θ r .1 α C/2 C 2 2 .1 C 2 1.00326 m 339 2 Draw right triangle for interface below center to calculate new perimeter. 0.1 .1 sin .1955 11.274 r .5115 Then angle of arc, 180 2 157.452 3.14159 0.5115 157.452 r Length of arc 1.4056 180 180 Perf C arc length 2.4089m Mensuration formulas are from CRC Standard Mathematical Table. Re settler 4Q c Perf 4 0.006 998 c 2.4089 0.95 10 3 10, 466 Interference somewhat more likely than in Example 13-5. 13.D23 (was 14.D7. in 2nd ed.) Pyrdine F x AF Plot M on line FS . y p 0.223, a) F S 500 300 M S y AO 500 .3 0 M x AM → x AM 150 800 0.1875 By T & E find tie line through M (Use Conjugate line) x p 0.84 ; y w 0.02, x w 0.84 ; Mass balances: R1 E1 800 , 0.84R M 0.02E 0.43M Solve simultaneously, E1 ~ 400, R1 ~ 400 (Note: More accurate than pyrdine values.) R 1 S2 b) R1x A1 S2 y A0 60 x pyr M 2 700 Find tie line by T & E: y pyr2 MB: R 2xw2 E2 yw 2 R2 Solve simultaneously: E 2 400 300 700 400 0.15 0.053 ; y w 2 M x m2w → 0.945 R 2 M 60 M 2 x AM 2 0.086 0.120; x pyr2 E2 M2 0.005, x w 2 0.005 E 2 0.945 700 0.48 700 346 and R 2 354 340 341 13.D24 (was 14.D10. in 2nd ed.) a) Feed 40% MCH 55% n-heptane, F = 200. Solvent 95% aniline & 5% n-heptane, Stotal 600 . S F M 800 S Lever arm rule: 3 F FM MS . Find M (Easy way is divide line FS into 4 parts) Use tie line through M to find points E & R (T & E) Extract: y MCH ~ 0.045, Raffinate:x MCH ~ 0.36 wt fracs Mass balance E + R = 800 = M and lever arm rule Solve simultaneously: b) E MR R ME . Measure distances on figure. R = 124.61 kg/h, E = 800 – R = 675.39 2 stage cross flow. Stage 1: F = 200, ρ = 300, S 3 FM F 2 MS . Find point M. Tie line through M gives points R1 and E1. Mass balance 500 Find: F S R1 M R1 E1 and lever arm rule 207.04 kg h , E1 R1 E 1M 1 E1 M 1R 1 292.95 Note: Isotherms are very sensitive. Thus, calculation is not extremely accurate. Stage 2: Mass balance R 1 S2 M2 507.04 R2 E 2 and lever arm S2 M 2R1 E1 M 2S 2 Find M 2 and from tie line through M 2 find R 2 . Then can find R2 and E2 from mass balance (given above) and new application of lever arm rule, Solving simultaneously, R 2 R2 E 2M E2 R 2M 196.16 kg h. E 2 310.88 342 13.D25 (was 14.D9. in 2nd ed.) a. Draw lines from S to F and from R 1 to E N . Intersection gives point M (see Figure). Then from lever-arm, b. S FM F SM 1.25 → S ∆ is at intersection of lines E N R N 1 1.25 2000 2500 and E 0 R1 . Then step off stages as shown. Need 2 stages. 343 13.D26. (was 14.D6. in 2nd ed.) Guess a value for M and step off stages. Repeat until need 3 stages. After three trials found M shown in Figure. This required 3 1/10 stages which is close enough. Extract Composition: Acetic Acid = 10.5%, Water = 3.5%. Raffinate Composition: Acetic Acid = 5%, Water = 93% Solvent Flow Rate: F S F Raffinate Flow Rate: R1 E 0 EN Extract Flow Rate: 1.112 y AE y wE0 0 E0 MF F E0M R1 M R1 R 1 5600, R 1 2000 5600 772 770 kg/h. 6830 0 (Pure solvent) . Step off stages 211.2 kg/h & lever arm: Solve simultaneously, R1 2000 S 2000 → S = 5600 kg/h . Find M. Line RM intersects sat’d extract at E N , y A N Lines F E N & R1E 0 intersect at M.B. E N E0 F S R1 13.D27 (was 14.D12. in 2nd ed.) Lever arm rule: SM SF 15 57 64.25, E N 0.18 3 more than enough. Need ~ 2 ¼ EN MR 1 R1 ENM 2.287 (from graph). 146.95 kg/h 344 345 13.D28 (was 14.D14. in 2nd ed.) To find ∆: 1) Plot E N and R N 2) Ej Rj EN 1 E N x AN xA RN F 1 1500 1 R N 1x A N 1 0.06666 3) ∆ is on line through points E N and R N 1 . Plot ∆. Or, use lever-rule. RN R N 1E N 1 EN 1.5 Step off three stages starting at point E N . This gives points R 1 x A1 Mass Balance: E 0 0.275, x D1 RN E 0 0.13 and R1 1 E N → E 0 1000 0.4 Solving simultaneously, R 1 13.D29 (was 14.D16. in 2nd ed.) 0.675 and E 0 y A1 R1 EN R 1 0.275 655 kg/h, E 0 .13, and y D 0 RN 1 0.0 . R 1 1500 2500 0.2 2155 kg/h a) Plot Points F, S, E N and R 1 Find ∆ point at intersection of lines FE N and R 1S 2 stages is more than enough. (see graph) b) Draw lines FS and E N NOT calc. value E 2 R1 . Intersection is mixing point M F dist. S to M S F 0.786 1000 0.786 1272 kg/h. dist F to M Mass balance Give S F + S = M and Lever arm 0.786 346 Alternate: Overall MB, F S M and Diluent mass balance, 650 F x F,D S yS,D M x M,D 0.28 M M Solve simultaneously: 2321 and S 1321 kg/h. But this is less accurate. 13.D.30. New problem in 3rd edition. Equation (13-59) becomes Qc /Ai < ut /(1 + safety factor). Using the equals sign and solving for the safety factor Sf we have, Sf = ut Ai / Qc -1 = 0.00172 (1.0)(4.0)/.006 – 1 = 0.1467 where Ai = Ds Ls. Thus safety factor is 14.67% instead of 20%. This may still be acceptable. 50 13.D.31. New problem in 3rd edition. Soln. A. Kremser Soln. R mE 0.30998 1.0 161.3 R 50, E 100, m 1.613, b 0, y 2 0.0, x 0 0.01 For example, Use 13-11. yN y1 x1 Soln. b.) 1 y1* y1 * 1 y 1 1 R mE N R mE y1* 1 mx 0 becomes 0.01613 0.01613 .7633696 y1 m b 0.01613 y1 0.01613 0 0.01613 1 0.30998 1 0.30998 2 0.7633696 0.00381684 0.00381684 0.0023663 1.613 Do mass balances and equilibrium for single stage. 347 Sy IN Fx F Sy Fx 0 0.5 100y 50x also y x 1.613 . Solve simultaneously and obtain identical result. Soln. c. Do graphically as single stage system. Soln. d. Do graphically as counter-current system, N=1. Solution is valid, but awkward. 13.D.32. New problem in 3rd edition. Fixed Dispersed Phase. Q sol Q feed Q feed Q tol At feed conditions tol Q sol Q tol Q feed Q feed Q feed Q feed 0.6 .006 Q sol Q feed Q sol .006 .6 .006 1 Q feed Equation 13-48 operation in ambivalent range. a) .6 tol .3 L 1 0.3 From Example 13.5 L L H 0.375 H L 0.625 1.6 Q sol Q feed 1 Q sol Q feed .375 865 0.95 10 998. 0.59 10 3 0.3 3 1.10235 0.375 The 1.10235 0.6614 0.625 Either phase can be dispersed. 1.0 b) 0.5 , also ambivalent range d 2.0 .5 Either phase dispersed 1.10235 1.10235 .5 2.0 c) .6667. According to 13-48 at border. d 3.0 .6667 water probably dispersed 1.10235 2.2 .3333 5.0 d) .8333 Equation (13-48), water (heavy) dispersed. d 6.0 0.8333 1.10235 5.5 water dispersed. 0.16667 13.D.33. New problem in 3rd edition. t re s Vliq Qd Qc 1.5 min 90s Qd Qc 0.0072 m3 s , Vliq 90 s 0.0072 m3 s Note that there is a 1 inch air gap at top Vliq H t 0.0254 d 2tan k 4 0.648 , H t Vliq 2d tan k 0.0254 Using Goal Seek d tan k d 2tan k 4 0.648m3 2d tan k 0.648 0.7489 and H tan k 1.4978 348 13.D.34. New problem in 3rd edition. N = 500 rpm = 8.335 rps d i 0.20 d tan k 0.2 0.8279 0.16558 m Use water values for Re L ,estimate M d i2 N 998 kg m3 and w 2 0.16558 L 8.335 998 Curve b in Figure 13-32 again predicts a constant N p0 Then from Equation (13-52), P P 4.0 M 2 8.335 2 N P0 .16558 M 5 40 d 5i g c where g c 1.0 0.95 10 3 kg m s w 240, 064 3 0.95 10 L M 0.034587 N 1.0 and 8.335. (A) M will be fairly close to c 998 since Q W 5QToluene (see Equation (13-53)). W The series of messy terms for Equation (13-56a) can be calculated. Since the tank dimensions and physical properties are the same as in Example 13-5, the only term on the RHS of Equation (13-56a) that is different is P. Thus the result in the same as Equation B in Example 13-5, d 0.0576 P 0.3 (B) In addition to Equations A and B, we need to solve Equation (13-53) (C) 1 d c 865 d 998 1 d M d d M Solving equations A, B and C with Goal Seek we obtain Then solving Equation C, M d 1 d d 0.146 and d 0.146 865 c d d,feed 0.874. 0.854 998 978.6 Equation (B) P 0.3 2.876 P 33.84 W. d 0.05076 nd 13.D35 (was 14.D11. in 2 edition) From Eq. (12-46), E1 K 1 E2K 2 B1 1 , C1 , D1 R 0 x 0 R1 R2 (Eq. 6-6) For 1 < j < N A j 1, B j (Eq. 12-48) For Stage N A N Example 13-4: R 0 1000, x A0 For Acetic Acid, K A j 1, B N 0.35, x D,0 E jK j 1 Rj ENKN 1 E j 1K j , Cj RN Rj , DN 6 , EN 0.65, N 1 FN z N 1 , Dj Fjz j 0 1 E N 1y N 1475, yA,N 1 1 0, yD,N+1 0 y Aj x A j : Use Fig. 14-4 to estimate K A, j . K A1 K A4 0.03 0.1 0.12 0.5 0.3, K A 2 0.15 0.14 0.33, K A 3 0.09 0.21 0.16 0.43 0.5, K A 5 0.5, K A 6 0.5, 0.24 0.28 0.32 For first guess assume constant E 1475 and R 1000. Then C1 D1 B1 1 E 1K A1 R1 E 2K 2 1475 R2 1000 R D x A ,0 1 0.33 1000 0.35 1475 0.3 1000 1.4425 0.48675 350 349 and so forth with D6 1 DN 475 0 2 0 . Thus matrix for acetic acid is, 3 -0.48675 0 1475 1475 4 0 0 0 0 0 0 0 1.4425 2 -1 3 0 4 0 0 -1 5 0 0 0 -1 6 0 0 0 0 1000 .33 .43 1000 1 -1 1475 1000 1475 .43 0.5 1000 1 6 0 1 1 5 1475 1000 1475 0.5 1000 1475 1 1000 0 0.5 1475 0.5 1000 1 -1 1475 1000 0.5 0.5 13.D.36. Part a. New problem in 3rd edition. See figure Forg C Aq ,0 FAq * org ,1 Min Forg,Min Forg b. C 0.736 FAq 1.4 147.2 Operating line goes through CAq,N Corg,1 See Figure. C Aq ,N C * org ,N 1 0.10 0.008 0.133 0.008 0.736 200 L h 206.08 , 147.2 Forg 206.08 FAq 200 0.008 and Corg,N 1 0.736 L h 1.0304 0.008 with slope 1.0304. 0.097 3 stages more than enough. ~2 3 4 stages needed. 350 Part c. MW Zr NO3 4 91.22 4 14.0067 3 15.994 MW water 2 1.00797 15.994 18.00994 351 Basis 1 liter 0.10 mol Zr NO3 4 Have 33.917g Zr NO3 and 1000 g 33.917 4 966.083 g water 966.083 18.00994 53.64 mol water .1 Mole frac. Zr NO 3 4 0.00186 53.64 .1 33.9179 Mass frac. Zr NO 3 4 0.033917 1000 g System is dilute if consider mole fraction, less so if use mass fractions. If densities are constant, then constant flow rates is valid. Even with variable density, solving problem with mole fractions and constant molar flow rates would be accurate. This would require converting equilibrium data to mole fractions. Use of fractions with concentrations in mol/L is NOT correct. which is 13.D.37. New problem in 3rd edition. Part a. HETPlarge-scale = HETPpilot (Dlarge/Dpilot)0.38 = (0.24 m) (1.1 m/.05 m).038 = 0.78 m flarge-scale = fpilot (Dpilot/Dlarge)0.14 = (1.4 s-1)(.05 m/1.1 m)0.14 = 0.91 s-1 Part b. HETPlarge-scale = HETPpilot (Dlarge/Dpilot)0 = HETPpilot = 0.24 m flarge-scale = fpilot (Dpilot/Dlarge)0 = fpilot = 1.4 s-1 c. Use of the more conservative design developed for difficult systems (n 1 = 0.38, n2 = 0.14) results in a much higher HETP and thus a much taller column and more expensive column than use of the design procedure for easy systems (n1 = 0, n2 = 0). Considerably more data is needed for a large variety of systems to determine best design practice. If a variable speed motor is used in the large-scale system the difference in predicted optimum frequency is not as serious because the system can tuned to find the optimum frequency. New problem in 3rd edition. 13.D.38. MWwater 18.02, F 1.0 kmol hr , MWtoluene S 92.14 , m 0.06 kmol hr. C toluene C raffinate C water 0.00023 , x IN 20.8 y IN 0 → x out Fx in / F Sm Note m m. m is equilibrium in mole fraction units. Assume extract has properties toluene and raffinate properties of water. F x IN m Fx out Sy out and C extract kmole benzoic m 3 extract 20.8 kmole benzoic m 3 raffinate Units on m are y out m x out 1 865 kg tol m 3 92.14 kg toluene kmol toluene 1 998 kgW m 3 18.02 kgW kmol W 122.71 kmol benzoic kmol extract kmol benzoic kmol raffinate 352 1.0 0.00023 x out 1.0 0.0000275 , y out 0.06 122.71 If use m 20.8 find x out 13.D.39. Feed is 0.1 1 equil. stage 1 .00023 122.71 0.0000275 1 .06 20.8 0.00337 0.000102, WRONG! New problem in 3rd edition. CC 4 , 0.9 AA. F 10 kmol h . Solvent pure. S 10 kmol h. Lever arm: S 10 F 10 1 FM SM x F,CC , Alternatively x M ,CC 4 x M ,CC 4 x S,CC 4 4 S F 1 Then x M,CC 4 0.05 Find Mixing Point M. [The figure is shown at the end of problem 13D39 as the single stage mixing line.] Phases split along the line –TE to find the line through M Rafinate: x CC 4 0.041, x AA 0.54 . Extract: yCC 4 0.095, y AA 0.07 Overall Balance: E+R+=F+S+=20 CCℓ4 Balance: .095E+0.041R = (0.0) S+0.1 for F=1.0 Solve simultaneously, R 16.6667, E 20 R 3.3333 NOTE: Since CCℓ4 mole fracs can be read more accurately, the CCℓ4 balance is probably more accurate than the acetic acid balance equations. 13.D.40. S1 S 2 CCℓ4 1 2 E1 R1 = R2 single stage = 16.6667 Mix with S2 = 10 (pure) E2 x M 2 ,acetic 16.6667 R1 SM 2 10 S R 1M 2 x M2,AA R2 x R 1 ,acetic x M 2 ,AA x Sacetic x M 2 acetic 0.54 0 x M 2 ,AA .54 1.6667 2.6667 .3375 Find M2 and by trial and error find a tie line though M2. See figure on next page. Extract 2, yCC 4 0.046 y AA 0.065 Raffinate 2, R2 CC 4 E2 x CC 4 x AA R 1 S 16.6667 10 balance Substitution R2 0.018 19.40 and E 2 0.018R 2 0.018 R 2 0.57 26.6667 0.0046E 2 0.041 16.6667 0.046 26.6667 R 2 0.0 10 0.68333 7.16 kmol h . 353 354 13.D41. New problem in 3rd edition. R N 1 F 10, x CC 4,N 1 0.1, x AA,N E0 S 14.5, 1 1.0 , y CC y TEA,0 0.9 0.091 4,N Mixing. Use lever arm rule. 1.45 14.5 S FM 10 F SM xN x M ,CC 1,CC 4 xN 1,CC x M ,CC S y S,CC F SF 1 4 4 x M ,CC 4 y S,CC .1 4 4 4 1.45 0 0.041 2.45 Find M. Draw E N MR 1 line. See figure on next page. Raffinate: x1,CC 4 0.008 x1,AA .58 Passing Streams E N R N 1 & E O R 1 intersect at . Very close to parallel. Use parallel lines to step off stages. Estimate # Stages = 3. Flow rates 24.5 F S E 3 R 1 CC 4 balance. F .1 E3 S 0 1.0 E 3 .091 R1 0.008 1.0 24.5 0.008 9.69 kmol h , R 1 24.5 9.69 14.81 .091 .008 Can compare to 13.G.2 Part c. Extract 10.066 and Raffinate 14.433 Extract Mole fraction y TEA 0.841 x CC 4 0.0913 y AA 0.067 Raffinate Mole fraction x TEA Two results are reasonably close. .418 x CC 4 0.0056 x AA .577 355 356 13.D42. a. First, plot points EN and R1 on the saturated extract and saturated raffinate curves, respectively. Second, Find point Δ at the intersection of lines FENΔ and R1SΔ. Third, step off equilibrium stages. Need about 3. See graph. Part b. Easiest: use the lever-arm rule. Find mixing point M at the intersection of lines FS and ENR1.Then S FM 0.81 F 1235kg / h F SM Can also write 3 mass balances (overall, pyridine, and water) and solve for the unknown flow rates F, EN and R1. Unfortunately, this will not be very accurate because it is difficult to read the water values accurately. 13D.43 (was 14.D5. in 2nd ed.) Plot points for F, S Use lever-arm rule to find point M. E 0 , and R 1 (on saturated raffinate line) E0M F 1000 S 1371 FM Line R 1M intersects the saturated extract curve at E N . x acetone 0.067 . Lines FE N and R 1E 0 intersect at ∆ (a second piece of paper was attached to find ∆ accurately). Step off stages. 3 is more than sufficient. Need about 2 & 2/3 stages. This is close to the 2 + ½ estimated in problem 13.D19 with a McCabe-Thiele analysis. 357 358 K Dm 13.E1. Since E K Do R y m,N Estimate: E E 0.05, K Do 1 20, E 200, F 1 1 ortho goes up column and since K D M yo,N 1 0, x m,0 E .52F and R 200.52 and R Recoveries: 0.15, R 20.48, .92 .52 1 x ortho,N x o,0 E R 1 meta goes down. 0 R .48F R 20 E 200.52 E y ortho,1 or y ortho,1 0.09974 and R 20.48 E 200 0.1024 0.002386 0.00203 .94 .48 1 Rx meta,N or x meta,N .02179 Plot equilibrium curves and operating lines (see Figure) Feed cannot be 3rd stage since cannot get x m N desired. Cannot be 5 as will be past intersection of R E and meta op lines. Thus feed must be 4th stage. Do not get match of total number of stages. Need 8 1/3 for ortho and ~ 5 2/3 for meta. A very slight adjustment of recovery meta will change this. (Meta is approaching a pinch point at feed stage). 93% recovery was not enough. Therefore, need ~ 93.5% recovery with ~ 8 stages. 359 13.E.2. New problem in 3rd edition. Part a. x N,p Part b. xy 0.04 .004 Paraxylene: 96% recovery. 4% p-xy left in diluent 0.00016 wt. frac. y Ka 0.080 m, E 20, 000, R x Eq. (12-28) converted to extraction notation is convenient. L n x0 xN R mE 1 N n x0 n N Part c. x *N x *N ortho-xy m 0.004 0.00016 xN xN x *N x0 * N x R yN x *N V m 1 0. Thus E mE R 0.00016, .625 R 1000 mE 0.080 20, 000 2.3025 0.006, x *N 0, 0.625 4.899 0.470 0.150, x 0 1000 R mE n 1 .625 Eq. (12-31) Converted: Part d. m-xy 0.004, x N .375 , mE 0.150 20000 R 1000 3 1 mE R 1 mE R N 1 1 3 0.006 1.842 E - 5 1 35.899 Alternative Solutions are presented below for meta-xylene. m 0.050, x 0 0.005, x*N 0, N 4.899 E 20,000, mE R R 1000, b 0 0.05 20, 000 1 1000 Must use special form. But the L mV 1 form in terms of x is not available. Thus, need to derive, or translate or find in another source. Looking at development of Eq. (12-12). N x x0 x N Solving for N, N x0 xN x Where Δx is determined in same way Δy was determined for Eq. (12-12), L y1 x0 b y1 V x x j x j 1 const x0 L V L V Alternatively, x yN 1 L xN V L V b yN 1 L V xN 360 Translating to this extraction problem, x0 N And solving for xN, x N xN L V x0 x x0 0.005 N 1 5.899 R E , yN 1 0, x xN xN xN 0.0008476 Alternative Solution: Redefine terms to match Eq. 12-12 [Relating y to solvent and x to raffinate is arbitrary. Switch these definitions.] y N 1 meta xylene in hexane 0.005 y1 m 1 1 Kd 0.05 mxy out is unknown 20, b yN 1 y1 0, L N y1 E x 0 is now inlet solvent 20, 000; L V x0 b L 20, 000 mV 20 1000 4.899 y1 20 0 0 1, V 1000 0 361 Solve for y1, yN y1 0.005 1 5.899 5.899 0.0008476 This is actually x N in normal notation. Part e. Shown for normal notation. pxy equil slope = 0.080 y EQ 0.080 .004 0.00032 y yN 1 0 x 0,pxy x x N ,pxy 0.004 0.00016 0.00032 0 Slope Operating line R Slope E MIN 0.004 0.00016 R 0.08333 , E MIN 0.08333 0.08333 1000 0.08333 12, 000 kg h 13.E.3. New problem in 3rd edition. Part a. Plot the equilibrium data and points F and S. Straight line from power F to point S passes through mixing point M. Since amounts of F and S are equal, M is at the half-way point of the line. Find tie line through M by trial-and-error. This is difficult since tie line is very sensitive. Approximately, raffinate x AR and extract y AE Mass Balances: 0.326 x DR 0.575 0.046 y DE 0.058 E R S E 40 R 40 E Ey AE Rx A,S Sy A,s Fx AF 20 0 Solve simultaneously, E 18.0 kg , R 20 .4 8 22.0 kg. Part b. First add solvent until reach saturated raffinate curve at intersection with FS line. Initial Raffinate x AR 0.36, x D 0.54 R INIT x AR R init Fx AF SINIT x AS 8 x AR 8 0.36 20 .4 SINIT 0 8 22.22 kg SINIT R INIT F 2.22 kg Second, use Eq. (13-27) for the continuous solvent addition batch extraction. 362 x t ,final ,A S R x t ,feed ,A dx t ,A yA x t,feed,A is the raffinate after solvent addition to form two phases x t,feed,A 0.36 , x t ,final,A x A,initial raffinate 0.292 From equilibrium find values y A (extract), Approximate values are: x A,t yA 0.048 0.046 0.045 0.36 0.326 0.292 0.292 1y 20.8 21.7 22.22 dx A 0.36 0.292 yA 6 0.36 Sadded 1.47R t 20.8 4 21.7 1.47 Eq. A In the derivation R t is assumed constant, R t Sadded 22.22 R t,INIT 22.22 kg 32.66 kg With this approximation E Sadded . 32.66 kg Solute mass balance R t x A,INIT Sadded y A,added R t x A,final y A,added y A ,Avg 0, x A,INIT Ey A,Avg 0.36, x A,final 22.22 0.36 0.292 32.66 0.292 0.046 If we do not assume R is constant, then Eq. (13-27) is x t ,A Sadded d R x t ,A dS added 0 yA x t ,INITIAL ,raf We would need to do a numerical integration with a calculation of R x t,A versus y A . this can be done, but is challenging. 13.G.1. New problem in 3rd edition. Extract 1: flow 3.90769, xTRA Raffinate 1: flow Extract 1: Raffinate 2: 0.84986, xcarbontet 16.03923, x TEA flow flow 0.085102, xAcetic acid 0.41361, x carbontet 11.63396, x TEA 0.91426, x carbontet 14.40527, x TEA 0.065042 0.041332, x Acetic Acid 0.036586, x Acetic Acid 0.54506 0.049149 0.41633, x carbontet =0.016472, x Acetic Acid =0.56719 . Entering carbon tet 0.10 10 1.0 kmoles hr Leaving in raffinate 0.016472 14.40527 In Out in Raffinate Extracted % extracted = 76.27% 0.23728 0.7627 363 13.G.2. New problem in 3rd edition. Part a, 3 stage cross-flow. All flow rates are kmol/h Total Flow rate TEA flow CCl4 flow Acetic flow Extract 1 3.961 3.366 .3371 .2576 Extract 2 11.634 10.637 .4256 .5718 Extract 3 11.052 10.419 .1554 .4777 Raffinate 3 13.353 5.580 .0819 7.693 Carbon tet remaining in raffinate 3 is 0.0819 kmol/h. Since carbon tet feed was 1.0 kmol/h, 0.9181 kmol/h was extracted. Fraction extracted = 0.9181/1.0 = 0.9181. Part b. 3 stage counter-current with S = 10 kmol/h. Extract 1 4.9142 3.723 .7242 Raffinate 3 15.086 6.277 .2758 .4672 8.533 Carbon tet remaining in raffinate 3 is 0.2758 kmol/h. Since carbon tet feed was 1.0 kmol/h, 0.7242 kmol/h was extracted. Fraction extracted = 0.7242/1.0 = 0.7242. Part c. 3 stage counter-current with S set to give same fraction extracted as in part a (0.9181) and outlet raffinate carbon tet flow rate of 0.0819 kmol/h. This is trial-and-error. First trial: S = 20 and CCl4 raf 3 flow rate = 0.0289 Second trial: S = 18 and CCl4 raf 3 flow rate = 0.04045 Third trial: S = 16 and CCl4 raf 3 flow rate = 0.0590 Fourth trial: S = 14 and CCl4 raf 3 flow rate = 0.0908 Fifth trial: S = 14.5 and CCl4 raf 3 flow rate = 0.08104 This is close enough. Final Results: Extract 1 10.066 8.469 0.9189 .6786 Raffinate 3 14.433 6.031 0.0810 8.321 364 SPE 3rd Edition Solution Manual Chapter 14 New Problems and new solutions are listed as new immediately after the solution number. These new problems are:14.A3, 14.A4, 14.C5, 14.D6, 14.D9, 14.D11, 14.D15-14D17, 14.E2, 14.E3. Chapters 13 and 14 from the 2nd edition were rearranged to place all the extraction material into chapter 13 and the material for other separations in Chapter 14. Thus, the numbers of many problems have changed. 14.C.5. New problem in 3rd edition. Part a. y y, x x, m 1, F U, S where F, U, S, O, R, E are kg Eq. (13-27b) becomes U U y x x F y IN O O U and (13-21) x x IN y IN 1 U O and y = x O Part b. Eq. (13-29b) becomes O 1 n x t ,final x t ,feed U K Where K y x at equilibrium = 1.0 in washing. n 14.D1. (was 13D29 in 2nd ed.) a) Translate eq. (12-28), U mO 1 N O, R U, E x *N x *N x0 xN O U mO n mO U Note: x in wt frac. translates to x in kg m 3 if densities are constant. Densities cancel. For washing equilibrium is equal overflow & underflow concentrations. Thus, m = 1, b = 0 yN 1 b H 2SO 4 x *N y N 1 0, x 0 1.0, x N 0.09 m U 40 mO 1 0.8 and 1.25 mO 1.0 50 U 0.8 n 1.0 0 0.09 0 1 0.8 N 0.8 4.96 n 1 0.8 b) HCℓ Use Eq. (12-31) or (14-8) xN x0 N 1 1 xN x *N x0 * N mO U mO U 4.96, N 1 x 1 1 0.75 mO 1.0 50 U 40 mO U mO U N 1 1 1.25 1 1.255.96 1.25, x *N HC 0.0674 kg m 3 yN 1HC m b 0 Alternative: 363 xN Note: x0 xN x0 HC =0.09 H 2 SO 4 Thus, if one is clever and realizes change will be same for HCℓ & H 2SO 4 since mO U & N are identical , don’t need to use Kremser eqn for part b. 14.D2. (was 13.D22 in 2nd ed.) a. 1000 cc sand = 400 cc underflow liquid. This is about 400 g = 0.4 kg liquid. Equil: y = x. Use nomenclature of Table 13-4. U U Operating Eq. y j xj 1 y in x out O O U .4 Slope 0.8. Goes through point (y = 0, x = 0.002) O .5 Overall bal. O yin U x in U x out O y out O .4 0.035 .4 .002 .5 yout → y out .0140 .0008 .5 0.0264 Need 6 2/3 Stages – See Graph (Can also use Kremser eq.) b. Mass Balance: Op. Eq.: U xj yj O j y jin U Oj xj U xj y jin O jy j U Oj xj 1 U 2 slope , x out 0.002 (see graph) O Obtain approximately same separation, but use much more wash water. (was 13D23 in 2nd ed.) U 14.D3. 1 0.4, O 0.2, 364 y y 4 y 3 2 y 1 2 1 U=3 x 4 3 U=3 4 O y Basis: O 2 3 y 0 in 3 2 4 in 4 0 O y 2 in 2 2 0 O 2 1 y 0 in 1 1 kg CaCO 3 solids Feed Mole frac. can be arbitrary. Pick x 0 U x iN M.B. O yiN U y out x out U x out 0.01 as basis O y out U x iN y iN O O y out , x out at Equil (y = x) line x in , yin Point Slope Op line x in , 0 is on op line U 3 O 2 See graph. Find Recovery 1 x4 0.00127 x0 0.01 0.127 x4 1 0.127 0.873 x0 Recovery is significantly better with counter-current process. 365 14.D4. (was 13D24 in 2nd ed.) 0.8 0.8 0.2 0.8, 1 4, O 4000 kg/h 366 U F1 1000 kg h dry solids U F2 UT In section 2: Slope U F1 UT yj O Intermediate feed at x Slope xj L liquid L solid kg .8 h .2 U F2 1 1.0 3200 1600 U F1 O xF xj 1 kg liquid h kg liquid 2.5 kg liquid 4800 h UT y0 x1 O h 4800 4000 1.2 Goes through point y0 , x1 UT O In Section 1: y j 2000 4 kg liquid L liquid kg solid 2.5 L solid 1.0 0, 0.006 0.02 U F1 yN U F1 O 1600 4000 O xN 1 y N , x N+1 0.4 . Goes through point Also intersects Section 2 op. line at feed line. (Or calculate y N from mass balance). Equilibrium is y = x. Step off stages (see Figure). Need 5.4 equilibrium stages. Opt. Feed is 4 th. 14.D5. (was 13D25 in 2nd ed.) F1: 1000 kg dry 0.8, 1 0.2 1 1 kg dry L solid h 2.25 0.2 L L under flow kg dry 1 1 F2 : 2000 4000 h 2.5 0.2 2000 L h L h F1 5 wt % F2 2 wt % 367 2000L Liquid Volumes: total 0.8 liq h 3200 L liq 4000 0.8 liq h 5 wt % 2 wt % h 4800 FT : Total liqd h L liq 1600 underflow U0 ON 1 4000 kg h , y N x0 144 4800 Ext. MB, U 0, 1 f 4000 1.2, O 4800 y1 U0 x 0 1 1600 U0x0 U O O U xN O mx 0 n 1 0.8333 N where kg liq h 1.0 kg L f 0.05 kg N a 0H kg liq 3200 0.02 0.006 UNx N Convert to Kremser O V, U L, m 1, y1* Eq. (12-30) h U 0x 0 0.030 , x N specified ON 1 y N kg liquid O1 y1 x0 x0 xN 4800 4000 0.030 0.006 0.030, mV L 0 0.030 0.0288 0.030 n 1.2 4000 4800 0.0288 0.8333 0.83333 8.83 or 9 stages Use 2 feeds! 14.D.6. New problem in 3rd Edition. 2.5 kg wet is 1 kg dry solids-insoluble, and 1.5 kg underflow liquid. 1 kg dry solids Part a. 10 kg total 4 kg dry insoluble solids 2.5 kg total 1.5 kg liquid 6 kg liquid. , Ov 10 kg liquid. kg dry solids Before 1st mixing: 0.05 frac BaS 6 kg liquid 0.3 kg BaS 0.3 kg BaS 0.01875 mass frac in U & Ov. 1st Mix: 16 kg liquid total U 4 kg dry solids Settle – (6 kg liquid in U) 2nd Mix Pure Water 0.01875 0.1125 kg BaS 0.1125 kg BaS 0.00703 mass frac in U & Ov. 16 kg liquid Settle – (6 kg liquid in U) 0.00703 0.0421875 kg BaS 0.0421875kg 0.00264 mass frac BaS in U and Ov. 3rd Mix Pure Water 16 kg liquid Part b. Result is same. Can also be done graphically. Part c. Countercurrent. Easiest solution approach is to use Kremser equation. x N x *N 1 m Ov U N 1 * x 0 x N 1 m Ov U 368 External M.B. N 3, x 0 xN x0 x0U y N 1Ov y1 14.D7. 0.05, m 1, Ov 1 30 6 1 30 6 U x0 (was 13D27 in 2nd ed.) Operating Eq.: 0.05 0.00641 4 xNU xN U Ov O xj yN 1 m 0 0.0003205 y1Ov 6 0.05 0.0003205 30 xj Equilibrium: yj 6, x *N 30, U y j,in U O xj 0.009936 y j wt. fractions 1 Basis 1000 cc wet sand. U .4 vol water 1000 cm 3 wet sand vol sand wet .4 O = 0.2 kg. Thus, each operating line has slope Each op line goes through pt. y j,in , x j x0 0.035, y N,in yN xN 0.002, yS,in y N , y 2,in 1,in .2 1.0 g kg cc 1000 g 0.4 kg 2. 1 yN 2,in 0 y N 1 , y1,in yN 2 Start at stage N where x N = 0.002. Find y N then work backwards to stage N-2. This gives inlets for first 3 stages so can then work forward (see Figure). Note: that stages 5 and N-2 are not connected. 8 stages gives more than enough separation, but 7 is not enough. 369 14.D8. (was 13D28 in 2nd ed.) Use Kremser equation Fsolv Fsolid .95, y mx is equilibrium with m = 1.18, and N = 11. Recovery is 1 x N x0 . Eq. (12-31) becomes x *N m Fsolv yN * N * N 1 xN x xN x0 x x0 0 . m m Fsolv Fsolid 1 1 xN 1.18 .95 1.121. Then Fsolid N 1 m Fsolv Fsolid 1 1.121 x0 1 12 1.121 0.041 Thus Recovery = 0.959 14.D.9. New problem in 3rd Edition. Assume FSolid and Fsolvent are constant despite removal of sugar from solid. FSolid FSolid xF Fsolv Eq. (13-21) becomes x a. Fsolv 1.0, x F 3.0, 0.055, y solv,IN y solv ,IN mE FSolid Fsolv 13 0.055 1 1.18 0.01211 , y 3 3 b. x = 0.004. Solve for Fsolv . xm E Fsolv Fsolv FSolid mE x L Slurry stream 0.055 0.004 1.0 ySolv,IN 14.D10. (was 13D30 in 2nd ed.) 1.18 .004 G H 2 stream 120 lb h x 1 x Yin G Yin X out y Y lb CH 4 lb H 2 Yout 120 10.805 kg CONSTANT CONSTANT , 100 0 100 lb h of H 2 Operating Line. Must work in weight ratios. Y x 0.0143 wt frac. x x mE x 1.18 0.01211 y solv,IN xF xF 1.18, FSolid Fsolv x FSolid 0, m E 1 y in in , 30 100 X in L G X x in 1 x in 0.30, Yout L G X in Yout 0 lb CH 4 lb H 2 out out .05 .95 .0527 L X out 0.30 0.0527 0.206 , x out X .206 1 X 1.206 0.171 370 Operating line becomes, L Y X Yout where G Equilibrium Curve: L 120 G 100 y = 1.2 x becomes x 0 .05 .10 .15 .20 .25 Y Y 1 1.2 X X 1 → Y 1.2 X 1 .2 X Plot Y vs X X Y 0 0 .0526 .0038 .1111 .1364 .1765 .2195 .2500 .3158 .3333 .4286 See Figure for Plot. Need 5 1/8 stages. 14.D.11. New problem in 3rd Edition. 10,000 kg h wet solids, 1 frac vol dry solids. Basis 1 m 3 wet solids : Weight liquid + weight solids 1.20 and goes through X in , Yout . 1.0 frac. vol. liquid , 1000 kg m3 1.0 1 1500 kg m 3 0.4 400 kg Thus 400 1300 900 kg 1300 kg total m 3 wet solids. of weight is underflow liquid, U 14.D12. (was 13D32 in 2nd ed.) Fsolv Fsolid 400 1300 10, 000 kg h 3076.9 . 1.36 371 Op. Eq.: Fsolid y Fsolv x Fsolid y1 Fsolv Where y and x are kg m 3 . y xF x0 m E x is equilibrium. x 0 , x N 1 .975 x F .025 x 0 , y N 1 0, x *N 0, N 5, Fsolv Fsolid Can use any of Kremser equations such as Eq. (12-31). m Fsolv 1 * xN xN Fsolid 1 1.36 m 0.025 N 1 6 * x0 xN 1 1.36 m m Fsolv 1Fsolid 1.36 Which becomes: 0.1582 m 6 1.36 m 0.975 0 Find m = 1.313 1 1.313 1.36 .025 0.025005 which is OK. Check: 6 1 1.313 1.36 14.D13. (was 13D33 in 2nd ed.) a) x Use Eq. (13-21), R̂ Sˆ 10 12.5 R̂ Sˆ x 0 0.8, m E m 1.18 y in Rˆ Sˆ g L in liqd , x g L in solid Frac. Rec. 1 0.404040 0.5959596 x t ,final Sˆ 1 n b) Eq. (13-29b) mE x t ,feed Rˆ x t,final x F exp , equil. y m E x, y in 0.8 x F 0 1.18 0.8 0.8 1.98 0 xF 0.4040 x F 0.228779 x F , Frac Rec = 1 – 0.228779 = 0.7712 1.25 1.18 14.D14. (was 13D34 in 2nd ed.) BaSO 4 coal BaS 2 CO 2 Equil: Soln conc in underflow = soln conc in overflow. Thus really washing Equil : y x, m 1, b 0 U 350 O 2075 kg h in sol. kg h , y in Eq. (12-29) 14.D.15. 1.5 kg solution kg insoluble solid 0.0, x *N N 0, y1 n xN U0 x0 525 kg soln., x in xN O x *N x0 n L mV 525 2075 x *0 0.20, x out 0.2 0.00001 0.00001 0.0506, x *0 n 0.00001 .2 .0506 n 525 1.0 2075 New problem in 3rd Edition. With 1000 kg/h dry solids U 1.5 1000 0.0506 6.99 or 7.0 1500 kg h a) Can use Kremser eq. with large N to find Ov Min or a sketch 372 y1* Equilibrium is y 0 y1* U y yN x Ov U 0 0 b. Ov 1.2 Ov Min U 1500 Ov 1782 Kremser: Eq. (12-28) x0 Min x0 xN Min 1 .99 .15 0.15 xN 0.15 0.0015 1500 Ov Min .15 0 10101 1.0101 1485 0.0015 1782 0.84175 y y V Ov x x L U xN 0.0015, x *N n 0, x 0 .15, m 1, U Ov x0 xN U m Ov 1 N n x *N x *N 0.84175 U m Ov m U Ov 0.15 0 .84175 .0015 0 2.81 N 16.33 1 .17227 n .84175 In theory, can use McCabe-Thiele, but it is difficult to accurately step off this large number of stages. U 1500 c. Ov 2000, .75 m 1 Ov 2000 n 1 .75 100 .75 N 11.29 1 n .75 n 1 .84175 N act 15 E overall N eq 11.29 N sub actual 15 0.753 For m E use N = 15 and change mE with same equation n N 1 .75 mE n 100 .75 mE mE .75 373 Vary mE until N = 15. m E .911 On a McCabe-Thiele diagram this is trial and error. Kremser is much easier. 14.D.16. New problem in 3rd Edition. Part a. U 2 kg, O 2 kg, x IN 0.06, y IN 0 Solution (translation of Eq. (13-21)) is U x x IN y IN 1 U O 1 .06 0 2 .03 O Part b. Want x 0.005 O is unknown, x IN 0.06, y N 0, U 2 Solve for O x O U U x O O x IN y IN , 0.06 0.005 2 O x y IN U x IN O x O 14.D.17. New problem in 3rd Edition. K = 1 Eq (13–28) becomes O x t ,final x t ,feed exp Part b. U 2, U x t,final O 14.D18. O U 2, x t,feed O Part c. 2, x t,feed 0.06 e x IN x x y IN 22 kg water 0.005 0 Part a. U U n x t ,final x t ,feed 0.06 1 0.02207 0.06, x t,final 0.005 U n x t ,final x t ,feed 2 n 0.005 0.06 4.97 kg x in Part a. O normal batch in Part b. One equilibrium stage. F 1000, x A N+1 E 0 y A,0 .2, S 662, y AS y DS 0 F x A,N+1 0.12 (same as Example 14-2) E0 F Plot M. By trial and error find tie line through M (Final result shown in Figure). y A1 .238, y D1 0; x A1 .078, x D1 .656 x A,M Flow rates: Diluent balance: R1x D1 R1 F x D,N+1 x D1 E1 M R1 F x D,N+1 1219.5 1662 1219.5 442.5 374 14.D19. This problem is essentially a repeat of Example 14-2, except using exactly 3 stages. Clearly, x A1 0.04 since now have more stages. F, E 0 and M are unchanged. Problem is trial-and-error. Guess location of R 1 . Find E N and ∆. Step off 3 stages and see if have correct location of E N . x A1 14.D20. 0.026 and y A3 The third and final trial is shown in the figure. 0.38. Although this is leaching, this cross-flow problem is very similar to cross-flow extraction. We can derive R j 1 x A j 1 E j,in y A j,in x A Mj R j 1 E j,in M Stage 1: Rj R0 1 E j,in where R j 1000, E1,in M j x A Mj 421, x A0 xAj yA j yA j .2 y a1,in 0 , x AM1 200 1421 .1407 Find M on line SR 0 at x AM1 (see Figure). By trial-and-error find tie line through M. 375 This gives E1 and R 1. Find y A1 R1 Stage 2: x A M 2 y A2 .18, x A2 R2 Stage 3: x A M 3 R3 .35, x A1 1421 .1407 .35 0 0.085 1254.9 421 .058, from tie line , M 2 1675.9 0.085 .18 .058 .18 1305 .058 1421 1254.9 .113 .35 1254.9 .113 .113, M1 0 1726 1675.9 1305.0 0.044 , y A,3 1726 0.044 .09 .03 .09 14.D21. a. Basis 1 kg mix in underflow: x NaC values .09, x A3 .03, M3 1726 1323.3 kg/h 0.8 1.0 0.2 yNaC crystals Since crystals are pure NaCℓ, NaOH is in liquid only. Since 20% of the underflow is liquid, x NaOH 0.2 y NaOH . Generate equilibrium table. 376 x NaOH Soln (y) Mass frac NaOH 0 0.004 0.008 0.012 0.016 0.020 0.024 0.028 0.032 0.036 0 .02 .04 .06 .08 .10 .12 .14 .16 .18 y NaC x NaC .270 .253 .236 .219 .203 .187 .171 .156 .141 .126 .854 .8506 .8472 .8438 .8406 .8374 .8342 .8312 .8282 .8252 Feed is 45 wt% NaCℓ crystals. x values: NaCℓ (soln) = 0.5193, NaOH (soln) = 0.099, water 1-0.51930.099 = 0.3817. Since feed is 55% liquid, x F,NaOH 0.55 y NaOH 0.099 y NaOH 0.099 0.55 0.18 , y NaC 0.126 From the equilibrium data F = 100, S = 20, Plot F & S and find M. FM 20 , SM 100 Tie line through M gives E & R. E RM 1.119 R EM (measured on figure) E R 120 1.119 R R 120 R 56.63 kg/min, E 63.37 kg/min R : Raffinate 0.833 E : Extract y NaC x NaC , 0.026 0.16, y NaOH x NaOH 0.135 The underflow is z wt frac crystals (Pure NaCℓ) + (1-z) wt frac solution y NaC 0.16 is soln in equil z 1.0 Thus, 1 z 0.16 z 0.333 0.16 0.84 was 80% solids in problem statement. c. Same M. Plot R1 draw line R1 0.833 M to EN EN R1 80.1% OK . 2 stages more than sufficient 120 1.137 R 1 EN R 1M 103.5 R1 ENM 91.0 R1 120 1.137 377 R1 56.14 R1 : x1,NaC E N : y NaC E 63.86 kg/min, N kg/min 0.845, x1,NaOH 0.01 0.152 y NaOH 0.147 378 379 14.E1a. This is difficult part – converting data Basis 1 lb oil-free solids y oil 1.0 0.9 0.8 0.7 0.6 0.5 0.4 0.35 0.3 0.28 0 0.1 0.2 0.3 0.4 0.5 0.6 0.65 0.70 0.72 Note: ysolids 1.0 x solids z ysolvent 0.20 .242 .283 .339 0.405 0.489 0.600 0.672 0.765 0.810 1 z 0.830 0.80515 0.7794 0.74683 0.71174 0.67159 0.625 0.598086 0.56657 0.552486 y oil z x oil 1 z 0 0.01948 0.044115 0.07595 0.1153 0.16420 0.2250 0.26124 0.303399 0.3222 0 for all streams, Z = lb solution/lb oil free solids. Plot data on triangular diagram. See Figure 14.E1a, b, c, d, e. b&c. F + S = M1 = 1500 F x oil,F S yoil,S 1000 M1x oil,M , x oil,M1 0.252 1500 0.168 See Figure 14.E1a, b, c, d, e. Check: Lever Arm Extract E1 , yoil,1 Mass Balances: M 1S F 2 M 1F S 1 0.34; Raffinate: x oil,1 0.092 and x solids,1 1500 0.34 E1 +0.922 R 1 R1 E1 Extract: MB: R 1 , 252 1040.3, Finish step c) Stage 2: R1 S2 x oil,M 2 . Find tie line through M1. M2 E1 0.730 459.7 lb 1540.3 , R1 0.092 M2 xoil,M 0.062 . Plot M 2 and find tie line through M 2 . yoil 2 1540.3 0.115; Raffinate: x oil,2 E2 R 2 , 95.7 0.025 and x solids,2 0.115 E 2 0.80 . 0.025 R 2 R 2 904.8 lb, E 2 635.5 lb d & e – Same answer as b & c but R & E are flowrates. f. See Figure 14.E1f. 3 stages is more than enough. Need ~ 2 1 3 equil stages. 380 Lines E N R N 1 and E 0 R 1 intersect at . 381 382 14.E.2. New problem in 3rd Edition. Converting data is the difficult part, but is obviously identical to Problem 14.E.1. Basis 1 kg oil-free solids x solids y oil ysolvent z 0.20 1.0 x oil 1 z 0.830 y oil z 1 z 0 1.0 0.1 0.9 .242 0.80515 0.01948 0.2 0.8 .283 0.7794 0.044115 0.3 0.7 .339 0.74683 0.07595 0.4 0.6 0.405 0.71174 0.1153 0.5 0.5 0.489 0.67159 0.16420 0.6 0.4 0.600 0.625 0.2250 0.65 0.35 0.672 0.598086 0.26124 0.70 0.3 0.765 0.56657 0.303399 0.72 0.28 0.810 0.552486 0.3222 Approximate solution, use Eq. (13-29a) Oil balance: S Rt 0 x t ,final x c ,feed dx t y S = Mass Solvent, R t Mass raffinate (solids + solute) x = Mass frac. solute (oil) in raffinate y = Mass frac. solute (oil) in raffinate in extract (solvent) a) M is now at saturated raffinate curve. x oil,M 0.21, x solids,M 0.63 Mass balance F + S = M Solids .748F + (0) (S) = 0.63M M 0.748 F 1187.3 kg R initial 0.63 S 187.3 kg b) Now mixing is from S to a point on raffinate curve. From equilibrium curve in solution to 14.E.1. 383 x oil y oil 0.21 0.1625 0.115 0.0675 0.02 1 y oil .54 .498 .40 .28 0.1 Insoluble Solids M.B. Initial 0.748, F = 100, Final 0.81, 1.852 2.0080 2.50 3.57 10.0 R t final .81 R t final 748 R tfinal 923.5 kg Raffinate is 0.81 solids, 0.02 oil and 0.17 solvent Solvent remaining in raffinate is 0.17 923.5 157.0 kg Needs to be recovered by evaporation. Do Simpson’s rule in 2 parts. 0.21 0.115 1.852 4 2.008 2.50 6 1 0.115 0.02 6 2 Sadded 2.50 4 3.57 .1961 0.4241 10 0.6202 0.6202 R t , but what is R t ? Eq. (13-29a) assumes R t Const. Use average value of R t . R t ,avg or Sadded Stotal 1 R t init R t ,final 1187.3 923.5 1055.4 2 0.6202 R t,avg 0.6202 1055.4 654.6 Initial addition + Sadded Extract amt S Stotal Sremain in raffinate Oil in extract x F,0.1 F x final,oil R t,final 187.3 654.6 841.9 157.0 841.9 684.9 by solvent 0.252 1000 0.02 923.5 233.5 Total wt extract 684.9 233.5 918.4 yoil 233.5 918.4 0.254 ysolvent 0.746 14.E.3. New problem in 3rd Edition. Solid Matrix is insoluble. Solids = (.748) 1000 = 748 kg. R t not Constant, but Solid is. Solids Rt x Solids ydS d R xA Solids d xA x Solids 384 x final ,A x Solids S Solids d x A x Solids y x A ,raf ,init x Solids ,raf ,init Changes limits integration. x oil 0.21, x Solids x oil 0.63, x oil x Solids 0.115, x Solids 0.21 0.63 .3333 0.705, x oil x Solids 0.115 .705 0.163 x oil 0.02, x Solids 0.81, x oil x Solids 0.02 0.81 0.0247 Numbers for use in Simpson’s rule are from Solution 14.E.2. .3333 0.163 6 1 0.163 0.0247 6 2 Sadded Stotal 1.852 4 2.008 2.50 2.50 4 3.57 Solids total integral 10 0.3515 0.6173 Total 0.9688 748 0.9688 724.6 kg initial added 187.3 724.6 911.9 kg Extract Amount Solvent Stotal Sraf ,final 911.9 157 Oil in extract = 0.252 (1000) – 0.02 (923.5) = 233.5 Total weight extract 754.9 233.5 988.4 754.9 kg wt frac solvent = 0.764, wt frac oil = 0.236 385 Chapter 15 Solution Manual Since this is a new chapter, all problems are new. A. Discussion Problems. 15.A1. The mole fraction water is constant but since the temperature within the vessel varies the total molar density Cm varies and the water concentration = Cw = ywCm also varies. Thus, Eq. (1510a) incorrectly predicts molecular diffusion. Equation (15-10b) predicts no molecular diffusion because dyw/dz = 0. B. Generation of Alternatives. 15.B1. For example, one could operate with both inflow and outflow at the bottom of the tube. If flow is controlled with a constant head tank, the height of liquid in the tube will be very close to constant. C. Derivations. 15.C4. Substitute in q = (μ Re)/(4ρ) into Eq. (15-35d) and obtain δ = [(3μ2Re)/(4ρ2g)]1/3. 15.C5. Start with Eq. 15-52a), set vB=0 and solve for yAvA. Then NA = Cm yAvA. Substitute in the expression for yAvA and Eq. (15-52e) for JA. This gives the desired result. 15.C6. This problem is included to show that one can derive the expressions in books. There is a lot of algebra, but the derivation works. First, can expand the derivative, AB 2 (1 2 x1 1 x1 x [B (A x12 ) B ) x1 ]2 Then take the derivative and expand all terms. The denominator becomes [ A ( A B) x1 ]3 [ Bx2 Ax1 ]3 and the numerator simplifies to 2 A2 B 2 x2 . Multiply by x1. Q.E.D. * 15.C7. With CMO and y as mole fraction, vmol y Av A yB vB y Av A (1 y A )vB 0 . Since NA = -NB, CAvA = -CBvB and for an ideal gas Ci = yi Cm. The total molar concentration Cm is constant. Then, vA = -(1-yA)vB/yA (Eq. A) In terms of mass fractions yA =(yA,mass/MWA)/[yA,mass/MWA + (1 – yA,mass)/MWB]. (Eq. B) Substitute Eq. B into Eq. A and simplify. (1 y A, mass ) / MWB vA vB (Eq. C) y A, mass / MWA * Then in mass terms vmass * vmass y A,mass vA yB ,mass vB which after substituting in Eq. C and simplifying (1 y A,mass ) ( MWA / MWB )(1 y A,mass ) vB . (Eq. D) * If MWA = MWB, vmass = 0. We can write vB = NBCB = NByBCm = NBCm(1 – yA) (Eq. E) where the y are mole fractions. Substituting Eq. B into Eq. E and then substituting this into Eq. D, we obtain 1 y A , mass MW A Cm N B (1 y A , mass ) (1 y A , mass ) MW B MW B * vmass (Eq. F) y A , mass / MW A (1 y A , mass ) / MW B * Since yA,mass varies throughout the distillation, vmass is different for each stage. 386 D. Problems. 15.D1. Dprop,water = 0.87E-9 m2/s. Eq. (15-9), J A , z dC A ( D AB / L )(C A , L C A ,0 ) . If C A,0 = 1.2 dz kg/m3 is the known value, C A, L can be larger or smaller than C A,0 . For smaller C A, L we have D AB C A, L =1.2 – (0.2E-5)(0.0001)/0.87E-9 = 0.9701 If it is larger value, then C A, L =1.2 +(0.2E-5)(0.0001)/0.87E-9 = 1.430 15.D2. Taking the ratio of Eq. (15-23c) at the unknown T and at T =298.16, exp[ Eo / (TR )] = 1.52E-09 for T = 335.18K. Flux D (T ) D (298.16) exp[ Eo / (298.16 R )] J A, z D AB dC A dz ( D AB / L )(C A , L C A ,0 ) (1.52 10 9 / 0.0001)(0.9701 1.2) 0.35 10 The temperature can be found with Goal Seek from a spread sheet, but one has to trick Goal Seek into working. Multiply the desired and the calculated fluxes by 1,000,000 and have Goal Seek match these two values. 15.D3.a. 0.181cm2/s, b. 0.198 cm2/s, c. 0.0725 cm2/s, d. 0.198 cm2/s 15.D4. a. 0.0875 cm2/s, b. 0.096 cm2/s, c. 0.175 cm2/s, d. 0.096 cm2/s. 15.D5. Use Arrhenius form in Eq. (15-23c) but for mole fraction 0.0332 instead of infinite dilution. Write the equation for both known temperatures and divide one of these equations by the other. The constant Do divides out. Take the natural log of both sides and solve for E/R. The result is E/R ln D AB (T1 ) D AB (T2 ) / 1 1 T2 T1 The constant Do can be found from the known conditions at T 1 Do DAB (T1 ) / exp[ E / ( RT1 )] Or from the known conditions at T 2. The results are: E/R = 1348.3, E = 2677.6 cal/mol, DAB (x=0.0332, T=300) = 1.313×10-9m2/s. 15.D6. Same equations as in 15.D5. At 298.16 K for the infinite dilution value set C sucrose = 0. Final results are Eo = 4953.8 cal/mol, DAB(infinite dilution, T = 320K) = 0.925×10-9m2/s. 15.D7. For an ideal solution the term in brackets in Eq. (15-22) is equal to 1.0. Write this equation for two of the xA values with the corresponding diffusivities (e.g., x = 0.0332 with D = 1.007×10-9 m2/s and x = 0.7617 with D = 1.226×10-9m2/s). Then have two equations with the two unknowns: o o o o and DBA . Solve for the two unknowns. Results are DAB = 0.998×10-9 m2/s and DBA = DAB -9 2 1.308×10 m /s. Check results with the other two mole fractions and find that the fit is good. 15.D8. From http://www.engineeringtoolbox.com/ the density of methanol at bp is 750.5 kg/m3 (used a linear interpolation), which means partial molar volume = 1/(density/MW)= 0.0426 kg/m3. Viscosity of water is 1.0 cp = 0.001 Pa s = 0.001 kg/(m·∙s). a. With φB = 2.26, DAB = 1.43×10-9 m2/s. b. With φB = 2.26, DAB = 1.56×10-9 m2/s. 387 5 15.D9. Combining Eqs. (15-35b) (15-35d), vvertical ,max,liq 0.5 9 gq 2 / 1/3 Assume that the bulk is pure water with infinite dilution of ethanol. From Perry’s Chemical Engineer’s Handbook, 8th edition, (p. 2-305) at 1.0 bar (0.1 MPa) water has ρW,m,liq = 55.212 kmol/m3 →ρW,liq=994.64 kg/m3 and ρW,m,vapor = 0.032769kmol/m3 → ρW,vapor = 0.5903 kg/m3. The water boils at 372.76K. At this temperature, from p. 2-432, the viscosity of liquid water in Pa·∙s is, exp[ 52,843 3703.6 / T 5.866 ln T (5.879 10 29 )T 10 ] 2.807 10 4 Pa s W ,liq The viscosity of the vapor at 372.76K is (p. 2-426) (1.7096 10 8 )T 1.1146 1.2561 10 5 Pa s or kg/(m·∙s). W , vapor Now we can calculate the vertical velocity of the liquid water for q = 7.5×10-6m2/s (remember to use liquid properties). vvertical ,max,liq 2 0.5 9 gq / 1/3 0.5 9(994.64)(9.81)(7.5 E 6) 2 1/3 0.0002807 0.130 m / s A check of the units show they work. The modified Reynolds number (using gas properties) is, Re d tube ( v gas vliq , y ,max ) (0.10)(0.5903)(0.81 0.130) The gas phase Schmidt number is Sc gas 1.256 10 / D EW 5 3195.6 The viscosity and density were found earlier. gas The diffusivity of ethanol and water in the vapor phase at 372.76K and 1.0 bar = 0.98717 atm can be estimated from the Chapman-Enskog theory with the parameters in Table 15-2. This value of DEW = 1.658×10-5 m2/s. Then Scgas = 1.283. Since both Re and Scgas are in the range for Eq. (15-47a), the modified Sherwood number is, k p d tube ( pB )lm 0.0328(Re ) 0.77 Scgas 0.33 DAB ptot 0.0328(3195.6).77 (1.283).33 17.79 15.D10. From the Chapman-Enskog theory DNH3-air = 2.05×10-5m2/s at 318.16K and p = 1.2 atm. Problem 15.D10a, 3rd ed. MW A 28.9 MW B 17 const 1.86E-07 T 318.16 p 1.2 T^3/2 5675.033 sigma A 3.711 sigma B 2.9 sigma AB 3.3055 eos A/kB 78.6 eps B/kB 558.3 eps AB/kB 209.4812 kT/EpsAB 1.5188 Col integ 1.197 Linear interpolation table 15-2 D AB 2.05E-05 D, cm^2/s 2.05E-01 The concentration at z = L is CNH3 (L) = CNH3 (z = 0) + JNH3L/DNH3-air. Results are 0.0002483 kmol/m3 and 0.0002117 kmol/m3. 15D11. D = JL/ΔC = 4.114×10-5m2/s. Set up spreadsheet to obtain this value. Since the collision integral was entered manually, had to do several iterations. After 6 iterations T = 396.2K (see spreadsheet, and note that collision integral does not exactly match the value of kT/εAB. 388 Problem 15.D11, 3rd ed. MW A 28.9 MW B T 396.1642 p sigma A 3.711 sigma B eos A/kB 78.6 eps B/kB kT/EpsAB 1.891168 Col integ D AB 4.11E-05 D desired 4.11E-05 chkB7-B8 chk x E5 Problem MW A T sigma A eos A/kB kT/EpsAB D AB D desired 17 const 1.86E-07 0.9 T^3/2 7885.202 2.9 sigma AB 3.3055 558.3 eps AB/kB 209.4812 1.1069 Linear interpolation table 15-2 1.90E-10 1.90E-05 Goal seek to zero changing B3 15.D11, 3rd ed. 28.9 396.164199034186 3.711 78.6 =B3/F5 =F2*F3*SQRT(1/B2+1/D2)/(D3*F4*F4*D6) 0.00004114 MW B p sigma B eps B/kB Col integ 17 0.9 2.9 558.3 1.1069 const T^3/2 sigma AB eps AB/kB Linear interpolation in Table 15-2 0.0000001858 =B3*SQRT(B3) =0.5*(B4+D4) =SQRT(B5*D5) chkB7-B8 =B7-B8 chk x E5 =100000*D8 Goal seek to zero changing B3 15.D12*. From http://www.engineeringtoolbox.com/ viscosity is 1.0 cp = 0.001 Pa·∙s = 0.001 kg/(m·∙s). At 298.16 K, DAB = 1.114 m2/s. Density water = 998.3 kg/m3, viscosity water = 0.001 kg/(ms). Calculate δ = 0.000115282 m, vy,avg = 0.04338 m/s, Re = 19.966. This is a long residence time with Re< 20 so there are no ripples. Shavg = 3.41 and kavg = 3.295E-05 m/s, and 0.000168 kg/s carbon dioxide are absorbed. 15.D13. From http://www.engineeringtoolbox.com/ viscosity is 1.0 cp = 0.001 Pa·∙s = 0.001 kg/(m·∙s). At 298.16 K, DAB = 1.114 m2/s. Density water = 998.3 kg/m3, viscosity water = 0.001 kg/(m·∙s). Calculate δ = 0.0001663 m, vy,avg = 0.090241 m/s, Re = 59.898. This is a long residence time, laminar flow, with no surfactant so there are ripples. Shavg = 5.8 and kavg = 3.89E-05 m/s, and 0.000198 kg/s carbon dioxide are absorbed 15.D14. From http://www.engineeringtoolbox.com/ viscosity is 1.0 cp = 0.001 Pa·∙s = 0.001 kg/(m·∙s). At 298.16 K, DAB = 1.114 m2/s. Density water = 998.3 kg/m3, viscosity water = 0.001 kg/(m·∙s). Calculate δ = 0.0007717 m, vy,avg = 1.9441 m/s, Re = 5989.8. This is turbulent flow with 1300 < Re < 8300. Scliq = 899.2, Shavg = 255.5 and kavg = 0.0003689 m/s, and 0.00188 kg/s carbon dioxide are absorbed 15.D15. From http://www.engineeringtoolbox.com/ viscosity is 1.0 cp = 0.001 Pa s = 0.001 kg/(m·∙s). At 298.16 K, DAB = 1.114 m2/s. Density water = 998.3 kg/m3, viscosity water = 0.001 kg/(m·∙s). Calculate δ = 0.000115282 m, vy,avg = 0.04338 m/s, Re = 19.966. This is a short residence time with Re< 20 so there are no ripples. Shavg = 9.942 and kavg = 9.61E-05 m/s, 7.851E-09 kg/s carbon dioxide are absorbed. 15.D16. From http://www.engineeringtoolbox.com/ viscosity is 1.0 cp = 0.001 Pa·∙s = 0.001 kg/(m·∙s). At 298.16 K, DAB = 1.114 m2/s. Density water = 998.3 kg/m3, viscosity water = 0.001 kg/(m·∙s). 389 Calculate δ = 0.0001663 m, vy,avg = 0.090241 m/s, Re = 59.898. This is a long residence time, laminar flow, with surfactant so there are no ripples. Sh avg = 3.41 and kavg = 2.28E-05 m/s, and 0.0001165 kg/s carbon dioxide are absorbed. 15.D17. Used a spreadsheet set up to solve Example 15-6. For δ = 0.001 meter one obtains xNH3 = 0.04988, yNH3,surface = .21593, Nwater = 0.5393, NNH3 = 0.0228307. The concentrations are the same as in Example 15-6, but the fluxes are 10× larger. 15.D18. Part a. For two part solution need values at xE = 0.25 and 0.35. The average molecular weights are calculated as in Example 15-5, and are used to determine the average molar densities. The Fickian diffusivities are estimated by interpolating between values given in the Table in Example 15-5. The activity coefficients are determined in the same way as in Example 15-5. Then the Maxwell-Stefan diffusivities are found by the same method. The values are listed below DEW, m2/s γE ,kmol/m3 DEW , m2/s XE = 0.25 25.0 36.28 0.633×10-9 1.9028 1.495×10-9 -9 XE = 0.35 27.8 31.62 0.625×10 1.5553 1.609×10-9 Write Eq. (15-61c) for both intervals. For Δz from xE = 0.2 to 0.3 we obtain (values at xE = 0.2 and 0.3 are in Example 15-5), MWavg zN E m 36.28(1.495 10 9 )[1.7083(0.3) 2.1582(0.2)] 9.3445 10 9 1.9028(0.25) From xE = 0.3 to 0.4 (interval is over length δ- Δz) we obtain, 31.62(1.609 10 9 )[1.4338(0.4) 1.7083(0.3)] (0.00068 z) N E 5.7027 10 1.5553(0.35) Adding the two equations to remove the unknown Δz and then solving for NE and Δz,, we obtain NE = -2.128×10-5kmol/s and Δz = 0.0004223m 9 Part b. Since the interval Δz is greater than the interval δ – Δz = 0.0002577m, we subdivide the interval from xE = 0.2 to 0.3 into 2 parts. The values needed are given below. MWavg XE = 0.225 XE = 0.275 ,kmol/m3 37.625 34.99 z1 N E m 24.3 25.7 Equation (15-61c) is now written 3 times: DEW, m2/s γE 0.659×10-9 0.624×10-9 5.5371 10 2.01976 1.79959 3.9846 10 z2 N E DEW , m2/s 1.482×10-9 1.532×10-9 9 9 ( z1 z2 ) N E 5.7027 10 9 and solved for the 3 unknowns Δz1, Δz2, and NE. Obtain NE = -2.2389×10-5kmol/s, Δz1 = , 0.0002473, and Δz2 = 0.0001780m. 15.D19 (Optional, Unsteady diffusion) At the average C = 0.001 mol/L Dsucrose Equation becomes CA C A,0 1 erf 0.5228 10 5 cm 2 / s . z 4(0.5228 10 5 )t Numerical values of C A / C A,0 are easily obtained with a spreadsheet or with the use of Table 17-7. 390 z, cm 0 0.01 0.05 0.1 0.2 0.3 0.4 0.5 0.6 0.7 0.8 0.9 1.0 1.2 1.4 1.6 1.8 2.0 3.0 3.5 3.56 4.00 5.0 t = 1000 s 1 0.9221 0.6249 0.3281 0.0505 0.00335 9.16E-05 1.009E-06 t = 10000 s 1 0.9753 0.8771 0.7571 0.5362 0.3535 0.2161 0.1220 0.6352 0.0304 0.0134 0.00538 0.00198 0.000206 1.49E-05 7.49E-07 7.61E-12 t = 100000 s 1 0.9922 0.9610 0.9221 0.8449 0.7692 0.6957 0.6249 0.5574 0.4936 0.4346 0.3788 0.3281 0.2406 0.1710 0.1177 0.0784 0.0505 0.00335 6.20E-04 4.99E-04 9.16E-05 1.01E-06 6.2E-10 Part b. C 1.0 10 6 when C / C0 5.0 10 4 , which for t = 100000 s occurs for a thickness of <3.56 cm (Goal Seek gives 3.559 cm). Thus, at this time a layer 3.56 cm or thicker appears to be infinitely thick. Part c. C 1.0 10 6 when C / C0 5.0 10 4 , which for =0.10 cm occurs at t = 78.938 s (done with Goal Seek on spreadsheet). H. Spreadsheet Problems 15H1. Let A = air, B = hydrogen, and C = ammonia. Then NC = -NA – NB. Substitute this expression into Eqs. (15-65a, b) m yA z m yB z yB yC yA D AB D AC D AC yB yB DBA DBC NA NA yA yA D AB D AC yA yC yB DBA DBC DBC NB NB Determine NB from the 1st equation and NA from the second. 391 m NB m NA yA z yB z yB D AB yC D AC yA D AB yA D AC yA D BA yC D BC yB D BA yB D BC yA NA D AC yB NB D BC Put these equations and the values for mole fractions at the boundaries, diffusivities, ρm, and Δz = δ into a spread sheet. Guess a value for NA,guess, calculate NB and NA,calc, and use Goal Seek to make NA,guess - NA,calc = 0 by changing the value of N A,guess. Results Nair = -6.209E-5, NH2 = 14.026E-5, and NNH3 = -7.817E-5 kmol/s. As expected hydrogen diffuses in the positive direction and ammonia in the negative direction. The surprise is the substantial negative diffusion rate of air. (Spreadsheet shown in 15.H4, but with different numbers.) 15.H2. Used a spreadsheet set up to solve Example 15-6. For a bulk gas that is 40% air, 15 % NH3 and 45% water obtain xNH3 = 0.05596, yNH3,surface = .24225, Nwater = 0.032964, NNH3 = 0.001955 kmol/s 15.H3a. See solution to 15.H1 for procedure and 15.H4 for example spreadsheet. Results: Nair = -1.87E-8, NH2 = 2.98E-7, NNH3 = -2.80E-7 kmol/s. b. For ammonia Deff = 1.5656E-5 m2/s. Estimating dC/dz with the difference approximation for a very dilute solution, N = J = -Deff ρm Δy/(Δz)= -(1.5656E-5)(0.08928 kmol/m3)(.002)/(.01m) = -2.80E7 kmol/s. Thus, this is accurate. For hydrogen and air Dair-H2 = 3.0550E-5 m2/s. Then Nair = Jair = (3.0550E-5)(0.08928 kmol/m3)(-0.001)/(.01m) = 2.73E-7 kmol/s. The same value is obtained for hydrogen. The hydrogen value is close, but the air value is not close. Conclusion: Use the Maxwell-Stefan approach. 15.H4. See solution to 15.H1 for procedure. Results: Nair = -5.903E-5, NH2 = 14.069E-5, NNH3 = 8.166E-5 kmol/s. Note the substantial negative diffusion of air despite the zero “driving force.” The air is dragged along with the ammonia. The spreadsheet is given below (labeled as 15.D22), first with the numbers, and then with the formulas. 392 HW 15-D22, A=air, B=H2, T 3rd Ed. SPE C = NH3 273.000000000 p D AB 1 atm D AB 0.000061100 D AC 1 atm 0.000030550 D AC NA guess 2.000000000 0.000019800 DBC 1 atm 0.000009900 DBC 0.000074800 0.000037400 -0.000059028 del z 0.010000000 ρ yA z=0 yA z=δ yA avg ρΔyA/δz 0.520000000 0.520000000 0.520000000 0.000000000 NB NA calc chk NA-Nacalc 100000 chk NC 0.000140693 -0.000059028 0.000000000 0.000000000 -0.000081665 y B z=0 yB z=δ yB avg ρΔ yB/δz 0.089278949 0.480000000 y C z=0 0.000000000 yC z=δ 0.240000000 yC avg -4.285389534 0.000000000 0.480000000 0.240000000 kmol/s kmol/s Goal seek to zero change B10 HW 15-D22, A=air, B=H2, T 3rd Ed. SPE C = NH3 273 p 2 D AB 1 atm D AB 0.0000611 =B7/D3 D AC 1 atm D AC 0.0000198 =D7/D3 NA guess -0.0000590279043468439 del z 0.01 ρ =D3/(0.0820575*B3) yA z=0 yA z=δ yA avg ρΔyA/δz 0.52 0.52 =(B14+B15)/2 =-D12*(B14-B15)/B12 y B z=0 yB z=δ yB avg ρΔ yB/δz 0.48 y C z=0 =B9*B11/D3 yC z=δ =(D14+D15)/2 yC avg =-D12*(D14-D15)/B12 NB =(B17+(D16/B8+F16/D8+B16/D8)*B10)/(B16/B8-B16/D8) NA calc =(D17+(B16/B8+F16/F8+D16/F8)*B19)/(D16/B8-D16/F8) chk NA-Nacalc =B20-B10 100000 chk =100000*B21 NC =-B19-B20 DBC 1 atm 0.0000748 DBC =F7/D3 =1-B14-D14 =1-B15-D15 =(F14+F15)/2 kmol/s kmol/s Goal seek to zero change B10 393 SPE 3rd Solution Manual Chapter 16 New Problems and new solutions are listed as new immediately after the solution number. These new problems are: 16.A1, 16.A7, 16.A8, 16.C2 16C4, 16.C5, 16.D3, 16.D9, 16.D16 to 16.D22, 16.G116.G3, 16.H1-16.H2. Chapter 16 was chapter 15 in the 2nd edition. Problems from that edition have the same problem number, but the chapter number is now 16 (e.g., problem 15.D6 is now 16.D6). x 16.C3. (was problem 15C3 in the 2nd edition.) Equilibrium y , Operating y = x, 1 1 x y out n OG y in dy y * y . Substitute in for y* and let x = y (total reflux operating line) dy y 1 y n OG 1 y out 1 n OG 1 1 y y 1 y in 1 1 y out 1 n y2 y2 1 y y y 1 y dy 1 n OG dy y out y out 1 dy y 1 y in y in 1 y in 1 n y out 1 y in 1 which becomes Eq. (16-81). 16.C4. New problem in 3rd edition. With extract dispersed, E MD Since y IN y IN y M,OUT y IN y*M,OUT y M,OUT 0, E MD y * M,OUT Mixer mass balance with y IN Solving for x M,OUT : Then, y*M ,OUT E M ,D 0, Fx IN F x IN x M ,OUT m F x IN m x M,OUT S yM,OUT F x M,OUT S y M ,OUT F S y M ,OUT F y M ,OUT y where y*M,OUT * M ,OUT y M ,OUT m F x IN S y M ,OUT F y M ,OUT E M ,D m x IN 1 mS E MD F 395 External MB y IN E S,D 0 F x IN yS,IN yS,OUT yS,IN * S,OUT y S yS,OUT Equil : y*S,OUT Substituting: y*S,OUT y S,IN E S,D y S,IN Substitute in y S,IN y S,OUT m y S,OUT S m x IN F y S,OUT y S,IN 1 E SD 1 E MD m x IN mS 1 E MD F E MD m x S,OUT y S,OUT S y S,OUT F x IN y M ,OUT F x S,OUT m E SD x IN mS E SD F and do some algebra to obtain, mS 1 F mS 1 E SD F E SD 1 E MD m x IN mS E MD F 1 The definition of the total stage efficiency is, E total,D x D IN x D ,S,OUT x D IN * D ,S,OUT x y*S,OUT Equilibrium: m x IN y IN y S,OUT y S,OUT y IN * S,OUT y *S,OUT S F y S,OUT E total,D m x IN y with y IN 0 yS,OUT . Substitute into definition. y S,OUT x IN S y S,OUT F m 1 S y S,OUT F x IN Which after substituting in yS,OUT and doing some algebra, becomes. E MD E total 1 m SE MD F 1 E SD 1 E MD m S E MD F mS F mS 1 F E MD E SD 1 E MD mS 1 F 16.D1. (was problem 15.D1 in the 2nd edition) The corrected value of H G,E 1.41 ft is given in Example 16-2. From the results of Examples 16-1 and 16-2 and from Eq. (16-38), 396 2.61 0.15 0.15 2.61 0.83 0.85 ft 2.2 2.2 mV Eq. (16-27a) H OG H L H G where V L 8 5 L The value of m (the slope of the equilibrium curve) varies throughout the enriching section. From the McCabe-Thiele diagram used to prepare Figure 16-4A values of m were found from y 0.442 y* .63 to y x D 0.8 y* 0.82 . H L,E,cor y y* m H OG y* - y 1 y* y Arithmetic Average: H L,E,Initial 0.442 0.63 0.441 2.01 0.5315 0.598 0.406 1.96 0.621 0.66 0.449 2.02 0.7105 .727 .5144 2.11 0.8 .822 .745 2.42 0.188 5.32 0.0665 15.04 0.039 25.641 0.0165 60.606 0.022 45.45 1 H OG 2.01 1.96 2.02 2.11 2.42 5 Geometric Average: H OG 2.01 1.96 2.02 15 2.11 2.42 2.10 2.10 No difference! To find n OG do Simpson’s rule in 2 parts because of the unusual shape of 1 y* n OG ,1 0.179 6 0.179 n OG ,2 6 5.32 4 15.04 25.641 25.641 4 60.606 y vs. y. 2.718 45.45 9.353 n OG n OG,1 n OG,2 12.072 , h E H OG n OG 25.35 This is reasonably close to the 26.1 ft estimated in Example 16-1. 16.D2. (was problem 15.D2 in the 2nd edition) a. The physical properties and use of Figure 10-25 calculated in Example 16-2 are unchanged. Now F = 48. G flood 2 141, F 1 55, Dcol 12 48 14 F 2 1 20 G flood 2 F 1 Dia 1 b. In Eq. (16-37) 12 F 2 48 Dia 2 20 1.16 0.749 lb ft 2 4.68 5.83 ft 14 2 same . Estimate h p ~ 10 ft (we know it will be less than before), SC,V is unchanged, terms in denominator are unchanged. H G ,E 1 1 hp 1 10 2 hp 2 10 13 13 H G ,E 2 55 10 141 22 13 1.33 0.40 ft 397 1 In Eq. (16-38), 0.045 , 2 0.07 , h p 1 10 , h p 2 22 . Cf ,L , and SC,L unchanged. H L,E 1 1 hp 1 2 hp 2 0.15 H L,E 2 0.045 10 0.07 22 16.D3. New problem in 3rd edition. In the enriching section, HETP H OG ln(mV / L) / [(mV / L ) 1] and H OG 0.15 0.83 0.47 ft H L mV / L H G With H L 0.827, H G 1.33, m / ( L / V ) 0.63 / (5 / 8), H OG 2.16, and HETP = 2.15 (from Example 16-2). With the same mass transfer coefficients, but m = 0.577, H OG [0.577 / (5 / 8)]0.83 1.33 2.10 and HETP 2.10 ln(0.9232) / (.9232 1) 2.19 ft A 24.4% increase in both mass transfer coefficients gives H L HG 1.244(0.83) 1.033 and 1.244(1.33) 1.65 . [0.63 / (5 / 8)]1.033 1.65 2.69 and HETP 2.69 ln[0.63 / (5 / 8)] / [0.63 / (5 / 8) 1] 2.68 . With the same mass transfer coefficients, but with m = 0.577, H OG For m = 0.63, H OG 2.61 and HETP = 2.71. A 24.4% decrease in both mass transfer coefficients gives: For m = 0.63, H L 0.63, H G 1.01, H OG 1.65, HETP 1.64 For m = 0.577, H L 0.63, H G 1.01, H OG 1.59, HETP 1.65 . Clearly, the variation in mass transfer coefficients results in a large range for HETP (from 1.64 to 2.69 feet for m = 0.63) while the small change in m had little effect. To be safe the larger value of HETP = 2.69 would be used. This is a safety factor of 1.20. Note that Bolles and Fair (1982) recommend a safety factor of up to 1.70. 16.D4. (was problem 15.D4 in the 2nd edition) q Feed line: Top: y L V x .6, q .6 q-1 .4 1 L V Since we have total reboiler, ys,in 1.5 . Plot this and operating lines (see figure). x D where y intercept Bottom goes through y x 0.04 xB L L D 0.9 V 1 L D 1.9 1 L D xD 0.474 0.484 0.04 . 398 dy nG For L HG V HL enriching 0.474 y AI y A from 2.568 V HL From figure generate following table. yA Stripping: .04 .3225 .605 Enriching: .605 .7625 .92 Simpson’s rule, n G ,S .315 6 .565 6 .605, y E,out .92 33.33 1 2.26 n slope 4.17 .8 yAI yAI-yA 1/(yAi-yA) .13 0.09 11.111 .46 .1375 7.2727 .63 .025 40.00 .62 .015 66.66 .80 .0375 26.66 .95 .03 33.333 16.D5. (was problem 15.D5 in the 2nd edition) a) 1 1.3 11.11 4 7.2727 66.66 4 26.66 Eq. (16-81), n OG y E,in section, Eq. (16-16) draw line of 1.3 .770 to get y I and x I . For stripping section slope is 0.8 L HG n G ,E , where y S,out 7.55 , h strip 40 10.8 , h E HG n G Total Reflux. y out .956 1 .65 .65 1 .956 n H G n G,S 1.3 10.8 0.956, yin 9.8 ft. 14.1 ft 0.65 .65 1 .956 1 399 n OG 6 1.4904 4.0257 b) Finite reflux. Plot op. line. Find y & y* (see graph). Use Simpson’s rule in 2 parts. y y* 0.783 0.82225 0.8615 .90075 0.94 0.842 0.8795 .9125 .943 .973 y* y 0.059 0.05725 0.051 0.04225 0.033 4.0257, H OG 1 y* y 16.949 17.467 19.608 23.6686 30.303 n OG1 n OG 2 0.8615 0.783 6 0.94 0.8615 6 16.949 4 17.467 19.608 4 23.6686 19.608 30.303 1.3924 1.89166 n OG 3.2841 c) Changes in L/V in equation connecting HETP and H OG 400 401 16.D6. (was problem 15.D6 in the 2nd edition) a. n OG 11.11 3.56 14.67 H OG h n OG 7.47 14.67 0.509 m b. From McCabe-Thiele diagram we find the following y y* y* - y 1/(y* - y) 0.016 .0267 0.017 93.46 0.066 0.1067 0.0407 24.57 0.116 0.1815 0.0655 15.27 .494 .623 .129 7.752 .872 .9201 0.0481 20.79 .922 .9523 .0303 33.00 .972 .9832 .0112 89.29 Do integration with Simpson’s rule in three parts. .1 .756 n OG 93.46 4 24.57 15.27 15.27 7.752 4 20.79 6 6 .1 20.79 4 33.0 89.29 15.97 6 The difference is because of inaccuracies in Simpson’s rule. 16.D7. (was problem 15.D7 in the 2nd edition) Bottoms x A xA 0.1 Distillate .9 0.1 , equil. y From equilibrium data in 4.D7. @ x A y out partial reboiler xD 0.262 yin With total condenser, 0.9 yA x A Find average Bottom 1 yA 0.262 0.1 3.195 , 0.738 0.9 Geometric Avg., Eq. (16-81), 1 xA .929 0.9 dist 3.195 1.454 avg n OG . From data in 4.D7., y* 1 1 2.155 H OG h n OG 16.D8. (was problem 15.D8 in the 2nd edition) .071 0.1 12 0.9. 1.454 2.155 0.9 1 0.262 n 0.929 when x 0.262 1 0.9 n 0.262 1 0.9 1 4.80 0.42 m m H Ptot 22500 855 26.3 402 L 26.3 .0011 max V .0011 .0001 L y out x in V x *A ,out 0, L 28.93 , x out 26.04 . Basis V = 1, then L = 26.04. act V 26.04 .001 L 26.04 mV 26.316 0.9895 Use Colburn Eq. (16-34b), 1 0.0011 0 n OL n 0.010488 0.010488 0.0001 0 h 0.84 9.51 0.02604 .9895 9.51 7.99 m Can check with Eq. (16-63) and get same n OL 16.D9. New problem in 3rd edition. For example, if nO ED 1, we have for the perfectly mixed model, nO ED 1/ 2 1 nO ED For the plug flow model, EMD 1 exp( nO ED ) 1 exp( 1) EMD For same value of nO ED 0.632 the plug flow model always predicts a higher stage efficiency. 16.D10. (was problem 15.D10 in the 2 nd edition) y in n OG y out dy y y * . For both cases y* y in dy n OG y y out n For both countercurrent and cocurrent 0, and y y* y in n y out 0.01 0.0001 y , then 4.6 Note that n OG is same because of irreversible reaction. c. Flow rates enter into solution only as a check that at least the stoichiometric amount of sulfuric acid is available to neutralize the ammonia. 16.D11. (was problem 15.D11 in the 2nd edition) From Eq. (16-72) with irreversible reaction, n OG n y A in n y A out 50.0 ppm 0.01 ppm 8.517 for both cocurrent and countercurrent. 16.D12. a. (was problem 15.D12 in the 2nd edition) L .013 .00004 G min L .0053 G Use Eq. (16-57), 15 L G yin min 0.013, y*in m H p tot 2.7 1.1 2.4545, y mx 2.4453 (see Figure) 36.679, x out m x out y in y out L G 0.0003533 0.0008672, yout 0.00004, y*out 0 403 y y* .01296 n OG b. 0.0121328, in y* out .0121328 n 0.0120928 y .00004 6.1246 , h .00004 4.59 ft Cocurrent. Operating and equilibrium lines shown in figure. Lowest y out is at intersection point = 0.00081. For y out x out y in y out m L V 2.4545 L V 36.679 n OG 0.00085 , .013 .00085 36.679 0.00033125, y*Aout mx out 0.000813 0.0669184 . Use Eq. (16-20), 1 0.013 0.000813 1.0669184 1.0669184 h 1.98 ft 0.0669184 0.00085 0.000813 5.496 16.D13. (was problem 15.D13 in 2nd edition) a. Same conditions as Example 16-3. Assume same H OL . If operation is possible, find n OG & y out . Dilute – Use Eq. 16-70. m = 30.36 (Example 16-3) y*out m x out b 30.36 0.001 0.03036 mV L 30.36 15 1 mV 1 L 2.024 , n OG Lx in Mass bal. y out n OG L V Vyin x in 1 y in n Lx out L V mV L y in y *out y out * out y mV L Vy out x out n 3.024 1 15 0 0.03082 15 0.001 0.03082 0.03036 0.01582 mV 3.024 0.01582 0.03036 L Not possible, term inside brackets is negative. b) Same conditions as Example 16-3 except x out 0.002 . Assume same H OL . If operation is possible, then 404 y*out m x out 30.36 .002 y out 15 0 0.03082 1 n OG c) Same conditions, except L V * out y 15 0 n 1.759 1.759 1 exp Then: x x x 0.8, 0.03082 0.0091 0.01882 0.0091 0.656 0.759 Use equilibrium data shown in Figure 4-16, n 1 E MV h A active 30 0.8, K y a 1 2 n 1 .77 2 12 30 0.16, K y a n 1 .69 .8 2 12 m 1 K ya k xa k ya 1 0.415 1 330.62 k xa k ya 0.01, m 0.01882 30 and b 2 12 . V K ya Solving simultaneously, k x a b. x still not possible 0.759 K y aA active h V [Eq. (16-77)] where V A c 1 Eq. (16-6a), 30.36 40 40 0.0003 16.D14. (was problem 15.D14 in the 2nd edition) a. x 0.8, m 0.415; x 0.16, m 1.5 Mixed: E MV 2.024 0.0003 0.0091 , mV L 0.03082 1 n OG 0.00082 0.00082 0.06072 40 and x out 30.36 0.0003 y out 15 0.002 0.03082 0.06072 n 3.024 3.024 0.06072 , x 0.16, 330.62 where 1 2 263.5 1 1.5 1 263.5 k xa k ya 1408.19 and k y a 0.8 366.317 142.18 & E MV 6.06. Then from Eq. (16-6a), K y a 0.468 from Eq. 16-77. 16-D15. (was problem 15.D1 in the 2 nd edition) Assume feed to Example 16-4 is sat’d liquid, z = 0.5, & 2.5 .5 separation complete x D ~ 1, x B ~ 0 . x F z 0.5, y f 0.7143 1 1.5 .5 xD 1, L 1 0.7143 Vmin 1 0.5 At x 0.5714 , x B .5, y intersection op lines L V L V Calculate at x x 1 0.6 0 actual 0.5 0 L 0, L V V x D 0.7143 0 max .8 .5 0.5 0 .2 1.0 1.4286 0.6 1.2 0.1, 0.3, 0.7 in example , 0.9 405 x 0.1 Sect L/V Strip m 1 1 x 1.2 2.5 1 .15 0.3 Strip 1.2 1.8904 2 1.1891 2.5 .8 2.5 1 1.05 0.9 Enrich .8 const. V A active h 0.3 0.7 0.9 1.767 E pt 0.6348 n .6348 0.971 1.0092 n 1.3447 n 1.767 0.971 1.0092 n 0.971 1.3447 0.971 1.767 L mV n E MV L mV 1 n 1 E pt x 0.1 1.3447 0.97. Calculate Ept. Solve Eq. (16-78) E pt and then K y a from Eq. (16-76a), K y a mV 1.0092 0.453 2 L 0.6348 0.5949 2 2.5 1 1.35 E mV Eq. 15 80 2 1 .45 0.7 Enrich 2 1 0.5891 1 0.6802 1 0.731 1 0.7733 K ya 133.42 171.02 196.9 222.65 16.D16. New problem in 3rd edition. Using Simpson’s rule the new value for A1= 7.18, the new value for A2 = 10.85 and the new total area = 18.03. Then the calculated height of the enriching section (0.4054 m)(18.03) = 7.31 m compared to the previous result of 7.95 m. This is an error of 8.1 %. Thus, a rather small error in mole fractions becomes a larger error. 16.D17. New problem in 3rd edition. Relative errors in k G a 24.4% . Same relative errors in H G and H L . In the enrichment section the slope of the mass transfer line is Slope L HG 5 0.4054 24.4% V HL 8 0.253 24.4% 406 a) If H L correct but H G varies by Value at HG 24.4%, range of slope is from 1.242 to 0.761. 0.4054 is slope = 1.0015. At top: If equilibrium line straight from azeotrope to point x = 0.7472, y = 0.7815, then can fit this portion of equilibrium as, y MT line y If s 1.242, If s 1.0015, If s 0.761, 0.7668x 0.2085 sx b. Since y x 0.8, b 0.8 1 s b 1.7936 b 1.6012 b 1.4088 All calculations at y A 0.8. mass transfer line, y sx y I at intersection equilibrium, y b x y 0.7668x 0.2085 and b s 407 Substitute in for x, yI yI 0.7668 b 0.2085 s Solve for y I 0.7668b s .7668 1 s 0.2085 yI 1 yI s 1.242, b 1.7936 : yI 0.81356 y yI 0.013565 y 73.72 s = 1.0015, b = 1.6012: 0.812426 0.01246 s = 0.761, b = 1.4038: 0.80842 0.008419 80.48* 118.78 *83.3 in Example 16.1 since numbers rounded first. Amount of error depends on distance between equilibrium and operating lines. Less error if closer, but more impact on 1 y AI y I . Assume same relative errors: H L no error, H G higher, H L no error, 1 y AI yA 80.48 73.72 error H G lower, 80.48 1 y AI yA 8.4% 118.78 80.48 error 80.48 47.6% Assume error in H is same every point. Thus enriching area can be a lot different than calculated. But if H G is down by 24.4%, area is up by 47.6% so there is some cancellation of error. b. If H L & H G both vary could have s 1.634 and b yI Area H GE y 0.493, 1 yI y 2.1072 . Thus, y I 0.81493, = 66.97 66.97 19.6 16.31. 80.48 1.24(0.4054) 0.503 m, z H G,E n G,E Since 8.20 m which is a 3.2 % increase. 16.D18. New problem in 3rd edition. a. Equilibrium is y = mx. Value of m is unknown, but Cextract = mconc units Craffinate with mconc _ units 20.8 kmol _ Benzoic / m 3extract kmol _ Benzoic / m 3raffinate . We need m in 408 mol Benzoic / mol extract mmole fraction units mol Benzoic / mol raffinate mconc _ units ( mmole _ fraction _ units MWextract )( extract . The resulting conversion is, raffinate MWraffinate ) Since the system is dilute, extract properties are essentially the same as pure solvent and raffinate properties are essentially the same as diluent. m = (20.8)(92.14/865)(1000/18) = 123.1 Note that y = xD and EMy = EMD. EMy = (yin-yout)/(yin-yout*) where yout* = m xout = (123.1)(1.99E-06) = .000245 EMy = (0-.000230)/(0-.000245) = 0.939 b. From Eq. (16-76b), nO-ED = EMy/(1-EMy) = 0.939/(1 – 0.939) = 15.393 nO KO KO ED QD ED a nO ED a Vmixer D MWD ED QD D h D2 / 4 , Vmixer (0.75) 0.75 2 / 4 0.331m3 / (Vmixer MWD ) (15.393)(.0012)(865) / [(0.331)(92.14)] 0.524 kmol / s m 2 mol frac disp Note that K O ED m 2dispersed / m 3total volume a is larger than in Example 16-5 because the residence time Vmixer 37.45s is shorter than the 361 s in Example 16-5. Thus, this problem (Q D Q C ) d requires much more vigorous mixing. t res c. Differential Model exp E MD n OED n OED KO ED a nO ED QD 1 exp 1 E MD n 0.061 D n OED 0.061 2.797 n OED 2.797 / (Vmixer MWD ) (2.7969)(.0012)(865) / [(0.331)(92.14)] 0.0952 kmol / s m 2 mol frac disp d. Use of mixed models: If use K O nO KO ED QD ED a Vmixer D MWD ED a m 2dispersed / m 3 total volume 0.524 from mixed staged model, then 15.393 and with differential model 409 E MD 1 exp wrong results. 16.D19. n OED 1 exp( 15.393) .9999998 . Obviously, mixing models gives New problem in 3rd edition. C D in C D out a. E MD ,Conc with C*D,out * C D in C D ,out CD,in 0.000 , CD,out C*D,out mCD CC,out nO .00023 KO ED a nO ED QD nO ED ED D 0.00536 0.0002578 .892 .0002578 ED 1 nO 0.00023 , CC,out 0.0481 CC,out E MD b. E MD,Conc mCD CC,out E MD,Conc 0.892 1 E MD,Conc 0.108 8.26 / (Vmixer MWD ) (8.26)(.0012)(865) / [(0.331)(92.14)] 0.2811 kmol / s m 2 kmol/m 3 m 2 dispersed / m 3 total volume c. Differential Model: E MD,Conc 1 exp n OED → exp n OED KO ED a nO ED n .108 QD D n OED 2.2256 1 E MD,Conc n OED 0.108 2.2256 / (Vmixer MWD ) (2.2256)(.0012)(865) / [(0.331)(92.14)] 0.0757 kmol / s m 2 kmol/m 3 16.D.20. m 2 dispersed / m 3 total volume d. E MD,Conc 1 exp n OED New Problem in 3rd Edition. 1 exp 8.26 a. Eq. (16-92). Terms: 0.167, Dbenzoic-water d 0.99974 2.2 10-9 C CD 4 3 2 . 6 8 A C (from Example 16-6) di 2 0.2070 16.6667 g Note 9.807 2 5.8632 N in rps 410 di 0.2070 dp 0.0002524 820.13 dp 0.0002524 d tank 0.8279 D d pg 0.00030487 865 0.0002524 9.807 96.447 0.0222 kC 0.00001237 2.2 10 0.0002524 x 0.00030487 12 Significantly higher. But Note: With same k d 0.001905. 96.447 820.13 1 5 4 0.167 12 2 0.014801 0.06, so correlation may not be valid. Same d 1 1 1 K LD kD m CD k C 1 1 K LD 0.001905 1 0.014801 20.8 K LD 0.0005181 & K LD a E MD 5 12 432.68 1 K OED a b. 9 1930.2 2.0586 s 1 865 2.0568 92.14 19.13 19.31 20.31 which agrees with guess for residence time. 0.951, Resistance (dispersed) = Resistance (continuous) Sum of resistances 1 0.001905 1 524.9 1404.5 0.000712 1929.4 Gives K LD 1 1929.4 0.0005181 % resistance from dispersed 524.9 1929.4 100 27.2% This is a significant contribution because of significantly higher predicted continuous phase mass transfer coefficient. c. If k D is ignored , K LD k C mCD 0.014801 20.8 0.000712 Note that this is significantly too high. d. To be safe, use lower estimate of E MD . Note that d is really too large for use of Eq. (16-92). 16.D.21. New problem in 3rd edition. In settler velocity approaches zero ( u t 0.00172 in Example 13-5, but d p 0.000204 not 0.000150 assumed). Thus u t ~ 0.00495 m s and Eq. (16-88a) is reasonable approximation. Sh C k C d Dbenzoic-water 2.0 where in settler d 0.0002524 411 kC Using 2.0 2.2 10 K LD ~ k C mCD 9 0.0002524 5 1.7433 10 1.7433 10 1 20.8 5 8.381 10 7 ms If the interface in the settler is at the centerline, then the volume of aqueous phase is 1 D S2 4 L S . From Example 13-5, DS 2 1.023m and LS 4DS . Then Volume aqueous phase 1.682 m3 . The water residence time is 280.3s. Entering total velocity is 0.0072 m3 s and 1.682 m3 0.006 m3 s d 0.167 leaving mixer. A drop that starts at the bottom of the water phase travels a vertical distance of DS 2 0.5115 m to reach the interface. This requires 0.5115 m 0.00495 m s 103.2s. Assume equal distribution of drops. Everything (half the drops) above interface are collected very quickly. All drops collected in 103.2 280.3 0.368 fraction of settler. If average over this fraction is 0.5 d,IN , then D,avg 0.5 0.167 0.368 0.031. 6 a 6 0.031 d dp K OED a 737 and K LD a 0.0002524 D settler n OED,settler K LD a Vsettler Q D settler MWD 0.0058 settler ~ 0.000618 865 0.000618 92.14 3.364 0.0012 0.0058 865 92.14 16.D.22. 1.7314. 865 92.14 Since settler is not well mixed, E settler,D 1 exp This is high because of long residence time. 0.0058 1.734 0.823 New problem in 3rd edition. a) E SD y M,OUT yS,OUT y M,OUT * S,OUT y y*M,OUT 0.82, E MD y IN y M ,OUT y M ,OUT y IN * M ,OUT y*M ,OUT y 0.794 mx raf ,OUT . From Example 16.5 in mole fraction units m 123.1. Mixer mass balance with y IN 0 (Example 16.5) is Fx F Sy M,OUT Fx C,OUT 3 In Example 13.5 feed is 0.006 m s and solvent is 0.0012 m3 s S 0.0012 m3 s 865 kg m3 F 92.14 kg kmol 0.006 m3 s 998 kg m3 x M ,OUT x feed S F y OUT 0.01127 kmol s 18.02 kg kmol 0.00026 0.01127 0.3323 0.3323kmol s y OUT Then substitute into E MD y M ,OUT 123.1 0.00026 0.03390 y M ,OUT 0.794 412 Solving, we obtain x M,OUT y M,OUT m E MD For settler, Settler M.B. is, y M,OUT 0.00589 y*S,OUT Sy M,OUT x S,OUT 0.00589. 123.1 0.794 m x S,OUT Fx M,OUT SyS,OUT S x M ,OUT x S,OUT 6.027E 5. y S,OUT F 6.027E 5 Fx S,OUT y M ,OUT 0.03390 yS,OUT 0.00589 Substitute into equation for E SD 0.82 0.00589 yS,OUT 0.00589 123.1 6.027E 5 Solving, we obtain yS,OUT From Mass Balance, x S,OUT 6.027E 5 0.006174. 0.03390 0.006174 0.00589 * S,OUT y m x S,OUT E Total,D b) 0.00019967 0.03390y S,OUT From 16.C4 123.1 5.0653E 5 yS,OUT 0.006174 * S,OUT 0.006235 y mS F 123.1 5.0653E 5 0.01127 0.3323 0.006235 0.99015 4.17495 E Total,D 0.794 0.82 1 0.794 4.17495 1 1 4.1794 0.794 1 4.17495 0.82 4.17495 0.794 0.82 1 0.794 4.17495 1 .99003 16.G1 and 16.G2. New problems in Chapter 16. Aspen Plus runs showed that N =13 (Aspen Plus notation) with feed on Nfeed = 11 (optimum location) gave ethanol mole fractions of xD = 0.7990 and xB = 0.020298. These values are within the specified tolerances. The stripping section starts with the vapor leaving the reboiler (yin,strip = yreb = 0.18709) and ends at the intersection of the two operating lines. This last value can be determined by calculating the points on the operating lines (xn, yn+1). For example n = 1, x1 and y2 are on the enriching section operating line. When the slope changes from 0.61 in the top to 2.07 in the bottom, the intersection point has been passed. This occurs for yout,strip = y11 = 0.44631. The mole fractions of ethanol in the liquid and vapor leaving each stage (Aspen stage notation is used) are: 413 Stage 1 2 3 4 5 6 7 8 9 10 11 12 13 x 0.79904 0.77157 0.74561 0.71971 0.69245 0.66203 0.62575 0.57882 0.51135 0.40050 0.22553 0.10033 0.020289 y 0.81824 0.79904 0.78189 0.76569 0.74957 0.73263 0.71375 0.69129 0.66233 0.62090 0.55339 0.44631 0.18709 Equilibrium: Calculation m The equilibrium parameter m is the average slope of the equilibrium curve from x (calculated at y) to xI. At the reboiler y = 0.18709 for x = 0.020289, and y* = 0.44631 for xoper =0.10033. Then yavg = 0.3167. The slope can be determined by taking the chord from x = 0.04 (y*= 0.29209) to x = .05 (y*= 0.33018). m = (0.33018 – 0.29209)/0.01 = 3.809. The equilibrium values are from Analysis in Aspen Plus. At yout,strip = 0.44631, xoper = 0.22553, y*= 0.55339, and yavg = 0.49985. m = (0.50405 – 0.49482)/(0.15 – 0.14) or m = 0.923. To use Simpson’s rule for the first integral in Eq. (16-22a) we also need an average m for the y and y* values calculated at the average between yin,strip and yout,stip, which is y = 0.3167. At this y, xop = 0.1659 (determined from the stripping section operating line) and y*=0.5174. The average between y and y* = 0.41705. m = (0.42921 – 0.41012)/(0.09 – 0.08) = 1.909. The second integral in Eq. (16-22a) is the usual estimation from Simpson’s rule of the nOG integral, y A ,out dy A / ( y A * y A ) = (0.2835/6)(0.44631 – 0.18709)[1/(0.44631 – 0.18709) + 4/(0.5174 - 0.3167) HG y A ,in + 1/(0.55339 – 0.44631)] = 0.4057 m The first integral in Eq. (16-22a) can also be estimated from Simpson’s rule, y A ,out ( H L / ( L / V )) mdy A / ( y A * y A ) = (0.1067/2.032){[(0.44631 – 0.18709)/6]× y A ,in [3.8577(3.809) + 4(4.983)(1.909) + 9.3388(0.923)]} = 0.1393 Then h = .4057 + 0.1393 = 0.545 m, which is somewhat more than the 0.507 m calculated in Example 16-1. Note that the Aspen Plus calculation does not assume CMO whereas the calculation in Example 16-1 did, but the calculation here required an assumption of how to calculate m. Thus, it is difficult to say which is more accurate. 16.G2. New problem in 3rd edition. Enriching section yin,enrich = yout,strip = 0.44631, and yout,enrich = xD =x1 = 0.79904. At yin,enrich = yout,strip = 0.44631, the calculation of m is the same as done previously for yout,strip: xoper = 0.22553, y*= 0.55339, and yavg = 0.49985; m = (0.50405 – 0.49482)/(0.15 – 0.14) = 0.923. At yout,enrich = xD =x1 = 0.79904, y* = 0.81824, and yavg = .80864; m = (0.81180 – 0.80481)/0.01 = 0.699. In Example 16-1 the enriching section integration was done with Simpson’s rule in two parts. From yin,enrich to y = 0.725 and from y = 0.725 to yout,enrich. For the calculation here we will use y = 0.71375, which is in the table of data from Aspen Plus, as a convenient break mole fraction to do the integration in two parts. For y = 0.71375, xoper = 0.66203, y*= 0.73263, and to find m, yavg = 0.72319. m = (0.72623 – 0.72101)/(0.01) = 0.522. 414 The average y from yin,enrich = 0.44631 to y = 0.71375 is 0.58003, xoper = 0.44423, y* = 0.63659, and to find m, yavg = 0.60831. m = (0.61020 – 0.6067)/(0.01) = 0.350. For the 2nd integral in Eq. (16-22a) integrated from yin,enrich = 0.44631 to y = 0.71375 we obtain, y A ,out dy A / ( y A * y A ) = (0.4054/6)[.71375 - .44631][1/(.55339-.44631) + 4/(.63659 -.58003) + HG y A ,in 1/(.73263-.71375)] = 2.404 m Same integral integrated from y = 0.71375 to yout,enrich = 0.79904. The average y from y = 0.71375 to yout,enrich = 0.79904 is 0.75640, xoper = 0.73068, y* = 0.77246, and to find m, yavg = 0.76443. m = (0.76587 – 0.75985)/(0.01) = 0.602. =(0.4054/6)[.79904 - .71375][ 1/(.73263-.71375) + 4/(.77246 -.75640) + 1/(.81824 - .79904)] = 2.041 Total for integral 2 = 4.445 m For first integral from yin,enrich = 0.44631 to y = 0.71375 we obtain, y A ,out ( H L / ( L / V )) mdy A / ( y A * y A ) = (0.253/0.625)[(0.71375 – 0.44631)/6][(0.923)(9.388) + y A ,in 4(0.350)(62.2665) + (0.522)(52.966)] = 1.102 Same integral integrated from y = 0.71375 to yout,enrich = 0.79904, y A ,out ( H L / ( L / V )) mdy A / ( y A * y A ) = (0.253/0.625)[(0.79904 - 0.71375)/6][(0.522)(52.966) + y A ,in 4(.602)(18.2815) + (.699)(52.0833)] = 0.870 Total for integral 1 = 1.972 m Total height of enriching section = 4.445 + 1.972 = 6.417 m Total height of packing = 0.545 (from 16.G1) + 6.417 = 6.962 m. This is less than the total of 8.457 m calculated in Example 16-1. However, it does agree reasonably well with the number of stages (11) in the column since, 11 × HETP (estimated = 0.655 m in Example 16-2) = 7.208. Both this result and Example 16-1 require calculating a small difference and then taking the inverse of this number. This type of calculation can cause very significant errors. The graphical calculation was based on accurate experimental measurements of the equilibrium data, and this data is probably more accurate than the NRTL correlation used in the computer. On the other hand, calculation errors are probably larger in the graphical than in the computer calculation. Both calculations depend significantly on the accuracy of the mass transfer data (HL and HG), which can easily have errors greater than 20%, which can cause even larger errors in calculation of NTU and HTU or in HETP (see problem 16.D16) for the staged calculation. 415 16.G3. New problem in 3rd edition. Part b. Equilibrium stage optimum. (L/D)min = 5.1, L/D = 6.12, N = 33, NF = 14, 1 section, yC4,dist = 0.008556, xC3,bot = 0.005706, Dia = 1.804 m on plate 32, minimum diameter = 1.565m on tray 14. Part c. VPLUG optimum. N = 33, NF = 14, yC4,dist = 0.007953, xC3,bot = 0.005302, Dia = 1.812 m on plate 32, DC backup/tray spacing = 0.391, weir loading = 0.021m2/s. Note that this separation is better than the equilibrium result. Part d. MIXED optimum. N = 49, NF = 22, yC4,dist = 0.007651, xC3,bot = 0.00510, Dia = 1.808 m on plate 48, DC backup/tray spacing = 0.390, weir loading = 0.021m2/s. Note that this separation require significantly more stages than both the equilibrium-stage and the plug flow results. 16.H1 and 16H.2. New problems in 3rd edition. Fit for the ethanol-water VLE was done in Appendix B of Chapter 2. The spread sheet for both problems is given below with a y value chosen in the enriching section (ignore the stripping section operating line values). Overall mass balances to find D and B were done with Eqs. (3-3) and (3-1). L and V were determined at the total condenser and flows in the stripping section were determined at the feed stage with the calculated value of q. L bar = L + q F. The intersection point of the two operating lines was determined from Eq. (4-38). yreb is the start of the stripping section and is the y value in equilibrium (yeq) with y = x = xB. In the stripping section the value of 1/(yeq – y) was determined at the start of the stripping section (yreb), at the end of the stripping section (yintersection), and at the average of these two values. Then Simpson’s rule was used to calculate nOG,strip = 1.57787 from Eq. (16-24b). To determine HOG from Eq. (16-27a) an average slope m of the equilibrium curve is required. The slope of the chord from the equilibrium y at the intersection point of the two operating lines to the reboiler vapor that is in equilibrium with xB, mstrip ( y eq ( xint er sec tion) y reboiler) / ( xint ersec tion x B) = 1.95, and HOG,strip = 1.265. The resulting height of the stripping section, 1.998 feet, is somewhat more than the 1.66 feet determined in Example 16-1. In the enriching section a similar procedure was used except the integration to find nOG,enrich was done in two parts. The average slope of the equilibrium curve was determined from, menrich ( y1 y equilibrium( xint ersec tion)) / ( x D xint ersec tion) = 0.4558 with y1 xD . The resulting value of HOG,enrich = 1.935. The resulting height of the enriching section, 29.35 feet, is somewhat more than the 26.1 feet determined in Example 16-1 and more than the 25.35 feet determined in problem 16.D1. Note: in both 16.H1 and 16.H2 the average slope of the equilibrium curve m has to be calculated with fairly large chords, not by taking the derivative of the 6th order polynomial fit to the VLE. The reason is that the fit oscillates around the experimental data points and the slopes will fluctuate greatly. 416 417 SPE 3rd Edition Solution Manual Chapter 17. New Problems and new solutions are listed as new immediately after the solution number. These new problems are: 17A2, 17A7-17A9, 17B2, 17C4,17D3, 17D8, 17D10-17D13, 17D15b-h, 17D1617D18, 17E1, 17H2-17H7. Chapter 17 was chapter 16 in the 2nd edition. Problems from that edition have the same problem number, but the chapter number is now 17 (e.g., problem 16.D6 is now 17.D6). Figures in the solutions to these old problems still have the designation of chapter 16. 17.A2. New problem in 3rd edition. Change the value of thetatot in the spreadsheet until the area matches the desired value. This can be done as a manual trial and error or a loop can be added to the spreadsheet. 17.A7. New problem in 3rd edition. Part a. Increase the stirrer speed. If no gel, increasing stirring increases mass transfer coefficient k which reduces M and hence xw is reduced. This reduces xp increasing retention R. Part b. Decrease the stirrer speed. This reduces k, increases M and xw. When xw > xgel, a gel forms and R increases (probably to l.0) . 17.A8. New problem in 3rd edition. Since there is a gel the retention of the low molecular weight compound also increases. 17.A9. New problem in 3rd edition. Do not invest. Osmotic pressure can often be ignored in UF because with large molecules with high molecular weight the mole fraction is always low even if the weight fraction is high. With low mole fraction the osmotic pressure is low. If there is a concentrated salt with a low molecular weight the mole fraction will be high and the osmotic pressure cannot be ignored. 17.B1. Look at Suk, D.E. and Matsuura, T. (2006) ‘Membrane-based hybrid processes: a review’, Sep. Sci. Technol. Vol. 41, pp.595–626 for additional processes. 17.B.2. New problem in 3rd edition. One possible approach is as follows: Increase stirring to increase the mass transfer coefficient and reduce the wall concentration to prevent gel formation. Then use a permeate in series cascade with recycle of the retentate from the second module in series back to the feed of the first module. The low molecular weight product is the permeate from the second module. The intermediate molecular weight polypeptide product is the retentate from the first module. 17.D1. PCO 2 15 10 cc STP cm 10 pr PCH4 0.48 10 10 PCO2 PCH4 31.25 a) Generate RT curve from Eq. 17-6a. pp yp 1 1 yP pr yr 1 yP AB AB 1 10 6 m tm cm 2 s cm Hg pH 12 atm pP ˆ CO AB 1 pL 2 ˆ CH 12 76.0 0.2 atm 4 912.0 cm Hg 15.2 cm Hg 1.0, p p p r 0.016666 y P 1.5042 0.5042 y P 31.25-30.25 y P 418 RT Curve yP yr Op. Eq., FP FIN 0 0 0.1 0.20 0.00515 0.01114 0.30 0.01830 0.40 0.5 0.02721 0.03882 0.6 0.7 0.05504 0.08000 0.8 0.9 1.0 0.12492 0.2349 1.0 y out y out PCO2 t ms cc STP cm FP FP b. 1000 FIN gmole 1 hr h 3600 s 0.0002859 cc STP J CO 2 Fin Fin,1 FP1 2.125 0.32 Fin 0, y P .15 .32 yP pr yr 0.402, y out 0.46875 0.25625 0.0276 CO 2 conc. (17-2b) pP yP 0.088888 L 0.46875 2.125 .10 15.2 cm Hg 0.402 0.0002859 cc STP cm 2 s gmol s 1.0 gmole 2 cm s 1000 cc 22.4 LSTP FP y P,CO 2 FP 1 0.32 912 cm Hg 0.0276 1 10 cm cm s cm Hg Area 0.15 CO 2 mole frac 0.10, y P Answer (from graph) 2 J CO 2 FP FIN Plot two arbitrary points: 4 FP y IN Slope 10 15 10 y out y IN y out FP FIN yP J CO2 J CO2 1 FP FIN yP 0.32 1.2764 E 8 gmole s cm 2 2.80 10 6 cm 2 0.32 kgmole/hr , Fout Fin FP 1 0.32 0.68 kgmole/hr. 1 kgmole/hr 1 2 FP,part a Stage 1. FP1 Fin1 1 2 0.32 0.16 0.16 1.00 FP 2 , Fout1 0.16 , yin ,1 Fin2 FP1 1 0.16 0.84 Fin ,2 0.15 RT curve is unchanged! 1 .16 0.84 Op. Line: Slope 5.25 0.16 0.16 Find arbitrary points to plot line: 0.15 If y out ,1 0, y p 0.9375 (off graph). 0.16 419 If y out,1 0.04, y p y out,1 If 5.25 0.04 0.08, y p 5.25 0.08 Answer (from graph): Stage 2 FP 2 0.16 Fin 2 0.84 0.7275 0.9375 y P,1 0.5175 0.625, y out,1 0.1905, 0.0595 y in2 0.0595 FP2 Fin2 0.1905 yin,2 0.3123 1 0.1905 4.2500 . Plot curve 0.1905 Answer: y P2 0.250, yout 2 0.015 (see graph) Stage 15 10 10 cm 3 STP 912 0.0595 15.2 0.625 0.0006715 1 10 4 cm 2s 1L 1 mol JCO 2 J CO 2 2.9976 E 8 1000 cc 22.4 cm 2s mol 1 h FP1 0.16 1000 0.04444 mol s h 3600s FP1 0.625 Area 1 92.67m 2 JCO 2 ,1 Slope J CO 2 0.9375 Stage 2: J CO 2 ,2 15 1010 1 10 JCO 2 ,2 4 912 0.015 13.2 0.250 1L J CO 2 1 0.0001482 6.6161 E 8 3 1000 cm 22.4 lh FP 2 0.1905 840 mol h 3600 s FP 2 y P 2 Area 2 1, 680, 000 cm 2 JCO 2 ,2 1: cm 3 STP cm 2s mol cm 2s 0.04445 mol s 168 m 2 It is interesting to compare parts a and b. Part a: 1 stage Area 280m 2 y out,CO 2 0.0276 or 97.24% CH 4 y P,CO 2 Part b: 2 stage 0.402 Total Area 260.67m 2 y out 0.015 or 98.5% CH 4 y P1 0.625 y P2 0.250 420 17.D2. a. yP Slope 1 FP Fin y in , yP FP Fin FP Fin .7 2.333 , When y out .3 y out y out 0, y P y in 0.2 CO2 , FP Fin 0.2 0.3 .3 0.6667 421 When yP y in 0.2 0.286 1 FP Fin .7 RT curve is same as in Problem 17.D1. Draw op line. From graph: y P,CO2 0.53, y r y out,CO2 b. 0, y out J CO2 J CO 2 15 10 10 pP yP t ms cm 3 STP cm 76 cm Hg 1 10 4 cm cm 2s cm Hg J CO 2 A PA p r y r 0.06 0.002148 atm cm 3 STP 2 cm s 60 atm 0.06 FP , FP Fin Fin 0.6 1000 cm 3 STP 0.6 mol s 0.53 3 1 mol cm STP 0.002148 22.4 L STP cm 2s L STP 3.3 0.53 mol s atm . 3, 254, 000 cm 2 Or 325.4 m 2 . Very sensitive to y P & y r values. Can also calculate J Check: Fin Fin x in FP Fout , 2 FP y P J CO 2 0.6 Fout Fout y out , 0 .4 FP ˆJ J CH 4 . A Fout 1.4 2 0.2 0.6 0.53 1.4 0.016 .402 , OK 422 17.D3. New problem in 3rd edition Since no concentration polarization x w J solv K solv t ms pr pp a xr R and M.B. xp xp xp x out 1 xF 1 R xp Then pr 1 R x out 415.4 a xr xp , 1 R x out , R , xF x out Then, pp K solv t ms 1 x out , xp J solv pr Solve for xr 1 0.22, x F K solv t ms 33.29, J solv 415.4 0.9804 0.0077 0.0077 0.22 0.78 1 0.9804 0.22 0.0098175 0.0001924 1.1 15.446 0.0098175 0.0001924 33.29 17.D4. Partially new problem in 3rd edition. 13.72 atm. 423 a. xw M exp ( J solv / xr 1 xP Mxr xP 1 pr 3.6 E 3.6 E K solv solv ) k pP 4.625 / 997000 g/m 3 exp 6.94 10 Mxr xP a 1.069 0.054 75 2 pr pp 3.6 E 1.069 0.054 4 3.6 E 4 59.895 4.625 J solv t ms 1.069 xP 4 4 5 a Mxr Since 73 xP 1.0689 .054 K solv K A , K A K solv and 3.6 E KA t ms 4 59.895 2.29 1 atm 0.0665 g 2 m s atm K solv t ms g KA m s atm 0.029 g t ms 2.29 atm 1 m 2s c. Write Eq. (17-37a) for old and new situations – Divide new by old. Obtain 0.0665 2 0.75 k new k old new Everything else divides out. Since rpm , old k new 17.D5. a. K solv t ms J solv pr RT eq., R k old .75 2000 0.000117m / s 1000 1.5 10 3 g 2 cm s pP 1 102 atm 1.47 10 5 g 1 FP Fin 1 x P x out , Op eq., x P cm 2 s atm x out x in FP Fin FP Fin Solve simultaneously & obtain Eq. (17-26), which with M = 1 is 1 R x in 0.003 0.05 xP xP 0.000272 , x out 0.091 1 R 1 0.997 0.45 1 R 1 xP x P pr xr pP xP xr xP a 1 0.000272 0.091 0.000272 0.000272 102 0.091 0.000272 59.895 b. Plot the RT curve and operating line xP xP a 1 pr pP xr M 1 a 1 xP See graph. Intersection occurs at x r J solv K solv t ms pr pP 1 , xP 0.0585, x P a M xr 1 3.44 atm xr 1 x in 0.000752 xP 424 425 J solv 1.47 10 2 5 g 78 atm cm s atm FP 1 x P , FP A J solv 2 3 2 Fin 3 4 1000 g kg g cm 2 s 3.36 10 6 cm 2 2 9.91 10 g cm s Eq. (17-45) can be written as J solv / k solv n xg 336 m 2 n xr n x r . Slope = k and intercept = k n x g cm J solv / solv 0.052 0.037 0.026 0.0134 See Figure. Plot J solv / solv Intercept Stirred cell data: cP J solv / J solv g L, solv wt frac xr min n xg Slope J solv 0.000991 3.33 kg s 4 Plot J solvent vs 17.D7. 5 kg s 3.33 kg s 1 7.52 10 A 17.D6. 59.895 atm 3 0.0585-7.52 10 -4 dextran 0.012 0.03 0.06 0.135 versus ln xr 0.0185 0.01596 K solv t ms J solv p 23.1 / (997 g / L ) n xr 4.423 3.507 2.813 2.00 1.159, which is x g 69.25 3.0 23.1 0.314 . g 2 m s bar L 0.0232 2 m s bar 426 J A ~ J solv c P Mc With 0.00696 g (m 2 s) . Also, J A 0.0232 0.30 1, 1 R c Spiral Wound: JA Solving for M c JA 0.00696 c out J solv 10 (0.0232) J so l v c P 0.03 → R c 0.97 M c cout 1 R c J solv cP 1.0 c out 1 R c 8 0.030 K solv J solv M c cout 1 R c J solv t ms p 4.1660 80.8g / (m 2s) 23.1 3.5 Since osmotic pressure is ignored, M c does not effect solvent flux in UF. yp 1 He H 2 rd 17.D8. New problem in 3 edition From 17-6b, y rHe He H 2 Check y rH 2 1 y PH Then 2 1 y PH H 2 He y rHe b Pr 2 H 2 He b. Pp 1 H 2 He pp pr 1 y rH 2 1 0.975 c y r ,He 0.025 0.07656 y F,He (1 yP .9234 0.07656 OK. y PHe 1 2.8314 .975 1 2 0.05 0.07656 1 .07656 3.8314 1 .2 .025 3.8314 y rout He 1 1 10 y FHe y F,He 1 1 yp 1 y P He 0.5152 Use solution in Eqs. (17-9) to (17-10e) pp .75 a 1 .2 .261 1 1 pr .25 1 Pr 0.2610 , p p p r 0.2 90.8 10 10 .739 0.2 .975 1 0.021397 0.025 .261 .739 0.25 .279475 y rHe y PH 23.7 10 PHe PH 2 Pp .739 .2 3 ) .261 .05 b b2 4ac 2a Must use minus sign to have positive y p . y PHe .25 2.3648 .05 1 .25 .25 1.4874 0.0522 1.4874 2.212359 .49377 2 .15763 4.7296 2.3648 1.4874 1.645 4.7296 0.00333 427 y r,He y F,He y PHe 1 1 c. Solve RT eq. (17-6b) for y p : y r 0 yr pp 1 1 yp y 2p pr pp 1 1 c yr yr pr y rH2 .9234, 1 yr pr y rHe y PHe y rHe FP y PH FP A 0.025, 2 .06 .739 .80786 .65264 y p,H 2 0.004842 0.1813 0.05, y H2 IN .95 .5152 0.975 FIN pr yr pp yp tm s 51.52 m3 STP h 1h h m3 3600 s 90.8 10 10 cm 3 cm 3 STP 14311.11 14311.11 2 a. yp yr PH 2 A s cm 3 STP s STP cm cm 2s cm Hg A 17.D9. 1 yp pr c y He,IN 1000000 cm 3 Pp y P,H 2 1 .2956 0.05 0.06 0.004842 0.06 51.52m 3 STP PH 2 Pr y r,H 2 1 .739 .2 1 .80786 y rHe 0.07656 y p,H 2 FP y PH tm s pp 1 0.01566 4ac 2a y FHe Use 17-5a written as FP 1 100m3 STP / h. FIN For Part A pp b2 Use + sign for positive y p , d. y p2 0.1478 .06 .261 b yp .739 .2 pr b pr 0.10001 b pp 1 .25 pp 1 a a .05 3 .00333 555,186 cm 2 .975 1.0 10 4 cm 380 .9234 76 .975 cm Hg 55.52 m 2 Plot the data on a semilog plot in the form of J solv / solv J solv L / (m 2 h) 428 J solv xr k n xg . From graph, slope When x r k n xr. Intercept 18.3 and k 18.3 k n xg 0, J solv / n xg k solv 2 =J solv 82.9 L m h 23.0 g m 2s 4.53 5.08 m / s xg k n xg L 5.08 2 m h m 2 s 23.0g / (m s) k n xg 92.8% The value of xg is very sensitive. b. There is only one point further out on the ℓn axis. Any error in point is greatly amplified in the least squares regression. Hence, another point in this region would be most useful. The higher the concentration, the better. 17.D10. a) New problem in 3rd edition 2700 800 3.375 , a b 1 c yin 1 yp 3.8884 1 Solve RT eq. and op. eq. simultaneously pp 0.3 .5 1 2.375 1.6116 pr 0.7 2 pp pr yN 1 1 1 1 3.375 .25 3.8884 2 .7 2.375 .3 .25 1 2 .7 .7 .7 3.8884 1.20536 4 1.6116 1.20536 2 1.6116 .5 , use minus sign to have yp between 0 and 1.. 429 yp 3.8884 2 1.6116 From op. eq.: y r b) Since F̂p y p,A A 15.1196 4 1.6116 1.205 y IN yp 1 PA A ˆ A t ms 1 PA ˆ A p r y r pp yp .365295 .7 pr yr F̂p y p,A t ms .3 0.365295 .25 0.2006 .7 pp yp ˆ . Since F IN 1 mol s, Fˆp FˆIN 0.3 mol s mol 0.365295 1.2 10 4 cm s 3 cm STP cm 1.0 L STP 1 2 L STP 10 3 cm 3 STP cm s cm Hg 22.4 mol 0.3 A 2700 10 10 76 cm Hg atm A A c) F̂p y p,A t ms PA ˆ A p r y r pp y2 , Fˆ p Fˆ IN mol s 0.325 1.2 10 4 cm xp Gelling occurs at a solvent flux of J solv Then x gel solv 5200 2.0 0.175 0.5 0.325 atm 9.0823 104 cm 2 17.D11. New problem in 3rd edition. J solv atm 0.4 mol s 1 3 cm STP cm 22.4L STP 1.0 L STP 76 cm Hg 2700 1010 2 cm s cm Hg mol 10 3 cm 3STP atm A J solv .5 .365295 6.569 104 cm 2 0.4 A 2.0 .2006 L 2 m day x out exp (J solv / 997 g 0 since R 0 x IN 1 0.001 .6 0.0016667 5200 L/(m 2 day ) which is day L 86400 s solv ) k 1.0, x out 60.0 g m2s 0.0016667 exp 17.D12. New problem in 3rd edition p p / p r 1.0 4.5 . 60.00g / (m 2 s) 997000g / m 3 2.89 10 5 m / s PHe He H 2 PH 2 0.01334 0.261. Use Eq. (17-6b), 430 y p ,He p 1 He H 2 1 yp pr y r ,He 1 1 yp Eq. (17-7c) .261 y FHe y rHE .2 .254 y p He y rHe .1 .254 a) If x p x in , cut .55 , perfectly mixed (17-27) 1 R 0.55, what value R required. Find R (including concentration 0.00050 & polarization effect). From Eq (17-27), x p xp 0.25446 1 R xn xp R x IN 1 0.353 17.D13. New problem in 3rd edition .035 NaCl Rejection 1 1 .1 4.5 .261 1 .1 0.1 .261 1 x IN x p → R x IN xp x IN x IN x IN 0.035 0.0005 xp xp Rx IN which gives 0.035 .55 .0005 0.035 0.001 0.9935 b) If c) If R° (inherent rejection coefficient with M = 1) for part b is R 0.992, what was value of M that gave R 0.9869 MA 1 M CaseB . R Case B 1 1 R CaseA . Let A be highly stirred RA R M CaseA xp 0.0016, M CaseB 17.D14. wB 0.55 , R xpR RT curve: y w Feed xp 0.035 M CaseA 1 R CaseB 1.0 1 0.9869 1 R CaseA 1 0.992 wB 1 xw wB 43 (mole frac). Since x w ,IN B x IN 141.6 cal 0.9869 1.6375 43 x w 1 xw 1 42 x w 0.10, only need RT curve below 0.10. Create table and plot xw yw 0.10 0.08 0.05 0.03 0.01 0.0025 0.001 0.8269 0.78299 0.6935 0.571 0.3028 0.0973 0.0413 kcal g 1000 cal 0.9 10.5 .55 .001 74.12 g mol 0.1 9.72 10.5 kcal mol 10.42 kcal mol 431 C PB 0.625 1 1000 0.046 , C PW 74.12 CP,in MW feed xW , F MWW a) Assume y P and C PL,in 0.9 0.046 xB , F MWB 1 1000 0.1 0.018 Tout where Tin 0.5 10.5 Tout 30 then, x in 1 0.018 0.0435 kcal mol C 0.5 9.72 P molar ratio. Slope Op line 18.016 0.1(18.016) 0.9(74.12) 0.5 to calculate λp Tin 1.0 68.51 10.11 0.0435 10.11 30 0.129. This is a 6.75 , and op line goes through point (mole fractions) 0.10 0.775. Plot operating line. From graph, y P 0.57, x out 0.129 (mole fraction water). This value of yp is reasonably close to our assumption. x out 0, y P Fp / FF ( Fp MW p ) / ( FF MWF ) 0.031 ( MW p / MWF ) 432 MWp y p ,W MWW y p , B MWB = 0.57(18.016) + 0.43 (74.12) = 42.13 .129(42.13 / 68.51) Area b) Cut Permeate Rate 0.08 x in,w Then P Tin c) Tout Flux ( 0.0791 100 lb h) 0.2 lb h ft 2 39.53 ft 2 0.10 1 cut Slope 0.0791 in (lb/h)/(lb/h). 0.92 11.5. Find y P 0.68 from graph. cut 0.08 0.32 10.5 0.68 9.72 9.97 C PL,in x out P 0.05, x P FP Fin P 30 0.08 0.0435kcal / (mol o C) 9.97 kcal mol 48.3 C 0.6935 (From RT table or graph). x in x out 0.10 0.05 yP x out 0.6935 0.05 0.3065 10.5 0.6935 9.72 0.0777 9.959 433 Tin Tout C PL,in 17.D15. Parts b to h are new in 3rd edition xP 0, x r,out Fout Fin Fin FP Fin Fout 1 0.0777 0.0435 RT curve: xP Fin x r ,in FP x P Mass balance perfectly mixed Since 30 C 47.8 C 1 R M xr 0. Fout x r ,out x r,in FP 0.8 . Then Fin Fin Fin Fout 1 x r ,out 0.10 0.125 , Fout 0.8Fin 0.8 Alternate graphical solution gives same result. 6.5 xP 9.959 1 0.8 80 kg h Op. line xP -4 xr x r,in 0.10 0.125 xr x r,out xP 1 RT curve FP Fin FP Fin x r ,out Slope x r ,in FP Fin 0.8 4 0.2 When x r,out 0, x P x r,in 0.10 FP Fin 0.2 b. Area = Fp / Jsolv = (20kg/h)(1 L)/0.997 kg)(24h/day)/ (2500 L/m2 day) = 0.193 m2. c. Gel formation occurs when x w = 0.5 and xw = M xout = 0.125 M. M = 0.5/0.125 = 4.0 d. Gel formation occurs when xw = 0.5 and xw = M xout = M xF / (1 – θ’) = 1.2 (0.1)/(1 – θ’) Then 1 – θ’ = 0.12/0.5 = 0.24 and θ’ = 0.76. e. Gel formation occurs when x w = 0.5 and xw = M xout = 1.2 xF / (1 – θ’) = 1.2 xF / (1 – 0.2). Obtain xF = 0.333. xr,out = xF / (1 – θ’) = 0.3333/0.8 = 0.416 f. We have xr,out = xF /(1 – θ’) = 0.20/0.75 = 0.26667. M = xgel / xr,out = 0.5/0.26667 = 1.875. First occurs when Jsolv = 2500 = k ln (M). Obtain k = 3977 L/(m2 day) = 4.603×10-5 m/s. g. M = 1.875 and k = 3977. Since we change the pressures, J changes which will change M. However with constant stirring k is constant. First, assume no gel and calculate J and M. pr pp K Jsolv 2500 L (m 2 kg) L J solv K solv , solv 2083.33 2 t ms t ms p r pp 2.2 1.0 bar m day bar Then, without gel, J solv 2083.33 3.4 1.0 5000 L m 2 d ay From Eq. (17-34) M = exp (Jsolv / k) = 3.516. 434 0.5 0.2. Then, x w 3.516 0.2 Mx F 1 0.878, gel forms. .8 0.2 xF With a gel, previous work is incorrect. Set R = 1.0, x p = 0, x r 0.25, 1 .8 And from Eq. (17-45), Jsolv = k ln (xgel/xr) = 3977 ln (0.5/0.25) = 2756.6 L/(m2 day) Note: The same answer is obtained in parts g and h if convert to J´solv and use k in m/s. h. J solv k n x gel .5 k n xr Case C, R C MB x IN xp J solv 1 R C x out K solv pr tms 1.387 152 1.1 m d ay pr pp 1 RB pr pp a M C xout Equation: log P log P 2446.6 L (m 2 d ay) 0.27027 1.0, p p,B 1.0 .061 14.1 .024 10.96 B 0.0007505] 1.1, p r,B 12.06 3.27 b 18.71 g m 2s 42 , P 10000, 1.6232 0.27875 1.9 4a b 4a b 1.9020 2b b 0.95100 , a 0.16805 logP 0.951 log 0.27027 xp b a log 10, 000 8, log C 0.0001, a log 0.0001 log 1.9 .74 0.01230 15.446[ 3.27 .01230 log 42 0.5 n 0.2 0.2, x r 15.2 1 RC pp 0.26, x F 0.976, M B 1.1, p r,C 17.D17. New Problem in 3rd edition. a) log a log P b , P b) If L 2 0.0093 0.26 .74 1 .939 .26 0.0007505 1 1 RC 3977, Case B, R 0B .939, p p,C For Experiment C. M C x out 3977 xr 17.D16. a) New problem in 3rd edition b) k Gel forms since it did previously, .16805 0.90309 log 0.16805 0.28509 .951 0.16805 PO2 1.93 Barrers 435 17.D.18. New problem in 3rd edition. Ideal Gas: Vol% = Mole % PN2 250, PCO2 FP 2700, PHe 300, PHe 3 0.4 m3 s. FIN FIN 550 1.0 m s 10 2 cm 10 3 106 cm3 s , FP 3 m 76 cm Hg Part A pr 2.5 atm Part B pr 76 cm Hg t ms 0.8 mil Eq. (17-11d) 10 190 cm Hg atm pp 0.4 76 .00254 cm FP A 30.4 cm Hg Need to guess value of FP A or of y P , Pi t ms p p Since CO 2 has highest permeability, CO 2 will be concentrated; thus, guess y p,CO2 y r ,CO 2 Then y p,CO 2 ,guess 1 FP A guess Then, PCO 2 y IN ,CO 2 1 t ms y p,CO 2 76 cm Hg 0.002032 cm mil Pi t ms p r K m,i pp .4 106 cm3 s yCO2,IN 0.4 and y IN,CO2 where p r y r.CO 2 0.40 0.4. p p y p,CO 2 Use FP A in Eq. (17-11d) to calculate all K mi Then check y IN,i y r,i 1 K mi 1 1.0 ? Put in Spread Sheet. Can use Goal Seek to force Results: a. y P,N2 y r,N2 b. .15037, y P,CO2 .3164, y r,CO2 .54446, yP,He .3037, y r,He y r,i 1.0 as change y P,CO2 . .3351, yP,H 2 .06099, y r,H2 .3189 .27154, .999885 1.0000766 Same answers for mole fractions since p r p p is same. yF N2 F,cm3/s pr, cm Hg P N2 P He Fp yp CO2 Fp/A K N2 K CO2 306 2008 HW 8 Problem 2 0.25 1000000 190 0.000000025 0.00000003 400000 change yp to 0.544455884 0.003983763 yF CO2 tm, cm pp, cm Hg P CO2 P H2 yF 0.4 He 0.002032 theta 76 0.00000027 0.000000055 get sum=1 yr CO2 A, cm 2 A, m 2 0.475237299 y r N2 1.792765611 yr CO2 0.05 yF H2 0.4 0.3 0.303696077 100407575.7 10040.75757 0.316417678 0.303696077 436 K He K H2 0.549397235 yr He 0.851323363 yr H2 Goal seek Sum 0.150373483 0.544455884 0.033509684 0.271546029 0.99988508 yp N2 yp CO2 yp He yp H2 sum 0.060993544 0.318969314 1.000076613 17.E1. New problem in 3rd edition For dilute systems J solvent Transfer Eq. (17-7c) R 1 xp x out 1 J total solution , FIN Fp xF x out 0.022 0.056 FIN xp x out 0.00032 0.056 0.00032 0.9943 , J s u c rose 0.056 J solventx p Fout , Basis: FIN Fp 1.0 0.6106 J solvent x solution p Permeate 0.997 0.4 x p 0.997 0.4 0.00032 0.99713 kg L Initial assumption is OK. J solv J solv / solv (3.923 g / m 2 s) / (997 g / L) 0.003935 L / ( m 2 s) permate (3.923g / m 2 s)(0.00032) J sucrose b) Eq. (17-27) 0.00126g / (m 2s) 1 xp K water water solute K sucrose x p pr Mxr pp xp Mxr xp a 1 .00032 0.056 0.00032 w s 0.00032 60.0 1.1 From Eq. (17-16c), K water pr c. pp a Mxr 59.895 1.0 .056 Eq. (17-18) K sucrose Solution 1. R 1 M 1 R Then RT equation is xp 1 R x out M xr Operating Equation is (17-23) xp 0.00032 xp 0.0706 g 0.00126 J sucrose tms g sucrose xp 3.923 60 1.1 g water J solv tms K water t ms 0.056 0.00032 59.895 3.131 0.056 0.00032 xp 1 0.6393 x out 1 2.1 1 0.9943 m 2 s atm 0.0226 g sucrose m 2s wt frac 0.98803 0.01197 x out x out xF .39 .61 x out 0.022 0.61 0.036066 Solve RT & operating equation simultaneously. x out 0.05537 , x p 0.000663 437 Check R pr t ms 60 1.1 0K 0.98803 x out K water J water = 0.0706 xp 1 a M xr pp 59.895[ 2.1 0.05537 0.00243 g (m2 s) 3.67 0.000663 / (1 .000663) Alternatively, J sucrose K sucrose Mx r t ms 3.67g/(m 2s) 0.000663] J water x p / (1 x p ) J sucrose J sucrose xp xp 0.0226[ 2.1 (0.05537) 0.000663] 0.00261 g m 2s 6.9% different xp xp Solution 2. RT Eq. (17-21), x r 2.1 1 xr Simplifies to, Linearize x r @ x p Slope = 3.140 59.895 0.997 0.0003 xr 0.02509 3.140 59.895 .997 1 xp 0.02509 . Note xp = 0.0003 is an arbitrary point. 0.01196 0.01196 x r or x p Solve simultaneouly with Operating Equation xF 1 xp x out 0.6393 x out 0.036066 0.05538 , x p 1 2.1 391.66 x p Then linear form of RT equation is x p x out 3.140 .997 60 1.1 x p 186.5 x p 185.391 0.0003 xp 1 0.01196 x out 0.0006623 . Very close to value obtained with retention analysis. C PL,in FP 17.E2. (was 16.D11 in 2nd ed.) Eq. (17-59b): Fin Tin Tout , Tin Tout 85 25 60 P Stage 1. Assume y P ~ .05 water, 0.95 ethanol P 0.95 For Feed CPL,in w 0.05 E 0.1 CPL,w 55 C 0.1 4.1915 2290.3 kJ kg (See Example 17-9) 0.9 CPL,E 0.9 2.7595 kJ kg K 2.903 kJ kg K Where average temperature from 25 to 85 is 55ºC and C P values are from Perry’s 7th, pp. 2306 and pp. 2-237. FP1 2.903 Fin 2290.3 60 0.0760 and FP1 0.0760 100 7.60 kg hr . 438 Op. line intersects y P x out 1 Slope Op. Eq. is, y P 0.10 (water wt. frac.) x IN 1 0.760 12.16 0.0760 0.1 12.16 x out 12.16 x out 1.32 0.0760 If y P 1, x out 0.32 12.16 0.0263 Plot Op. Line on Figure 16-17a and find intersection: y P1 0.66, x out1 x 2,in 0.055 (water values) Fout1 Fin 2 100 7.60 92.40 kg h Stage 1 Trial 2. Since yp ≠ yp, assumed, do a second trial. yP 0.66 water, 0.34 E, FP1 2.903 60 F1in 1892 FP1 0.0921 100 w 0.34 9.21 kg h , Fout1 9.86 , y P 0.0921 0.086 If y P 0.66 E 0.66 2359 0.34 985 1892 kJ kg 0.0921 1 0.0921 Slope P 100 9.21 91.79 kg h 0.1 9.86 x out 0.0921 9.86 xout 1.086 1, x out 0.00872 9.86 Plot operating line and determine (from graph) y P1 0.64, x out1 x in 2 value of yp is close to the assumed value of 0.66. Can proceed to stage 2. Stage 2: Estimate y P For x in 2 2 0.50 (water), 0.050, CPL,in FP2 2.967 Fin 2 1672 Fout 2 60 0.05 4.1915 0.50 .1065 90.66 1 0.1065 0.1065 1672 E 2.967 9.64 kg h 8.40 0.050 8.40 x out 0.4421 0.1065 0.4421 . Draw op. line. Intersection gives y P 0.34 For x out 2 use MB. x out 2 , 8.40 x out w 0.95 2.903 8.10 kg hr , Slope 90.66 9.64 0, y P 0.50 0.1065, Fin 2 yP If x out P 0.05 water. This Fin 2 x in 2 Fout 2 FP2 y P2 90.66 0.050 9.64 0.34 81.00 x out 2 ,w 0.0155 or x out,2 ,ETOH 0.9845. This is a close as we can get graphically. 9.21 0.64 9.64 0.34 Mixed Permeate: y p,mix 0.487 wt frac water 9.21 9.64 439 FP Area kg 1000 g h kg J g h m2 , J from Fig. 16-17b based on x out Stage 1 J 0.8333 g h m 2 , A1 Stage 2 J 0.208 g h m 2 , A 2 9.34 1000 g h 0.8333 9.64 1000 11, 208 m2 46, 346 m2 0.208 Other flow patterns will reduce area. Area is large because of low flux caused by low ethanol permeation rate. 17.F1. RT eqn., y x x 1 1 x x Benz 0.2, 18.3, y x Benz 0.1, 6.66, y Operating equation Slope 1 , x Benz 0.3, 18.3 .2 1 17.3 .2 6.66 .1 1 5.66 .1 .9 .1 16.6, y 16.6 .3 1 15.6 .3 0.87676 0.8266 0.4253 . Plot RT equation. 9 . Plot on graph. Find y PBenz ~ 0.844, x out,Benz ~ 0.238 440 P CPL,in y Pbenz benz 1 y Pbenz x Pbenxw CPLbenz iP 0.844 94.27 1 x benz,in CPL ,iP 1 0.844 164 0.3 0.423 .7 0.73 105.15 cal g 0.6379 cal g C 441 Tin Tout P C PL,in 50 C 0.1 105.15 66.48 C 0.6379 17.H1. (was 16.G1 in 2nd edition) This is set up for Area being the unknown and cut being known. Problem 17.H1 Fr,in 10000.000000 yin,A 0.2500 cut=Fp/Fin 0.2500 tmem,cm 0.002540 pr,cm Hg 300.0000 pp,cm Hg 30.0000 yin,B 0.5500 P,A 0.0000000200 Fptot 2500.000000 yin,C 0.2000 P,B 0.0000000050 Fr,out 7500.000000 P,C 0.0000000025 Guess values of A or equivalently Fp/A until sum y,r and sum u,p are = 1.00 Fp/A 0.0007059 (this is final result) KA 2.507328 KB 0.7720 KC 0.4015 sum x eq y,r,A 0.181576 y,p,A 0.455271198 y,r,B 0.583244 y,p,B 0.450268647 y,r,C 0.235190 y,p,C 0.094429331 Area, cm2 3541578.1 sum y,r 1.000010 sum y,p 9.999692E-01 These results agree very well with Geankoplis’ results. 17.H.2. New problem in 3rd edition Part a) y p 0.5243, y r,out 0.0610, A b) y p,avg 0.6193, y r,out 3, 200,152 cm 2 0.0203, A 2, 636,196 cm 2 17.H3. New problem in 3rd edition Counter –current. Shows final guess for theta. Fin, cm3/s 100000 yin 0.209 thetatot PA/tms 0.003905 pr, cm Hg 114 pp, cm Hg M 15 N 100 yroutguess df 0.9 j=N-i+1 Fr yp yr Area Fp Fp/Fr,j-1 yp Areatot yincalc Fincalc Massbal yrout 100 28600 0.173174301 0.144051968 9710.750234 714 0.024356963 0.235015561 824015.8215 0.208999973 100000 9.09495E-13 0.144051968 99 98 29314 30028 0.1738615 0.174547 0.1447613 0.14547 9664.4075 9618.879 1428 2142 0.0475556 0.069677 97 30742 0.1752323 0.1461768 9574.1438 2856 0.0907935 0.714 PB/tms 76 0.2 erroracc 0.00175 0.0000001 96 95 94 31456 32170 32884 0.175916 0.1765981 0.17727918 0.146883 0.147588 0.14829195 9530.183 9486.978 9444.50995 3570 4284 4998 0.110973 0.1302761 0.14875885 442 17.H4. New problem in 3rd edition The spread sheet equations are shown below for part b. Part a agreed with problem 17.D14. Part b answers: yp,W = 0.412, θ = 0.2122, xout,W = 0.0160, θ’= 0.158, Area = 79.0 ft2. Note that if the starting guess for yp,W is too high, Goal Seek will converge on an answer with yp,W > 1, which is obviously not physically possible. 17.H5. This problem is very similar to Example 17.7. It is easiest to solve on a spreadsheet, which is shown below. The results are shown in the spreadsheet. New problem in 3rd edition 443 444 17.H6. New problem in 3rd edition The spreadsheet is similar to that for problem 17.H5 and is shown below, 17.H.7. The same spread sheet that was used in problems 17.H5 is used. 445 446 SPE 3rd Edition Solution Manual Chapter 18. New Problems and new solutions are listed as new immediately after the solution number. These new problems are: 18.A3, 18.A16, 18.B4, 18.C4, 18.C14, 18.D3, 18.D8, 18D9, 18D14, 18D15, 18D18, 18D21, 18D24, 18D25, 18.D29, 18.D30, 18.F1, 18.H1-18.H2. Chapter 18 was chapter 17 in the 2nd edition. Most problems from that edition have the same problem number, but the chapter number is now 18 (e.g., problem 17.D6 is now 18.D6). 18.A1. 1c; 2 b; 3a 18.A.2. 1c; 2a; 3b 18.A.3. New problem in 3rd edition. One barrier is lack of knowledge. Most chemical engineers are not trained in use of adsorption, chromatography, and ion exchange. Thus, they do not think of these processes as a potential solution. A second barrier is the simulation tools are not as developed and widely available as the simulation tools for equilibrium staged separations such as distillation. 18.A4. Regeneration is too difficult. 18.A5. In the SMB the mass transfer zone between the two solutes stays inside the cascade. In a chromatograph the MTZ exits the column and must either be completely separated, which requires a significant amount of desorbent, or recycled appropriately. 18.A7. d 18.A.8. New problem in 3rd edition. The LUB approach assumes constant pattern behavior. Linear systems do not have constant pattern behavior. 18.A9. 18.A10. d e 18.B.4. New problem in 3rd edition. There are obviously many possibilities. One is to develop sorption processes that use an energy separation processes (e.g., pressure or temperature) to produce purge or desorbent from the feed so that a separate purge or desorbent does not have to be added. 18.C1. T 1 e Vavailable P B 18.C4. e 1 e 1 f cry 1 e 1 P1 clay P e e e P4 1 P1 f f cry P2 1 f cry f cry 1 cry 1 e P2 f cry P2 P1 K di Vcol. 1 f cry f f cry f P2 (same as 18-3b) rd New problem in 3 edition. Amount in mobile phase = e (Vol. Col. Segment) Amount in pores = 0 (no pores) Amount exchanged Δz A c cRT Δy K DE No 1 Obtain, u ion e c e Δz a c Δx cT term because c RT is equivalent/L ε e Δz A c Δx c T v int er ε e Δz A c c T Δx Δz A c c RT Δy K DE v int er Simplify to, u ion (18-44) c RT y 1 K DE x ecT 445 18.C7. CA 1 C AF 2 z uAt 1 erf 4E eff t u A v inter 12 Sketch of break through: erf (a) .9 a 1.164 95% t final 5% tw t st t1 erf (a) At 5% point, 0.90 a 1.164 1.164 L 4E t st u A v 12 Or let u A t st 2.328 E t st x1 12 st t , uAx 2 1 uA 12 x2 By definition, Use u A t final uA v 12 12 L u A t st v 2.328 E 12 u 1A2 v1 2 x1 2.328 L 2 0. E u At v 4Lu A 2u A 2.328 Let L 4E t final E 1 2 u 1A2 2.328 v1 2 x1 1.164 and at 95%, 12 fin t , then x 2 t MTZ t final t st x 22 E 1 2 u 1A2 v1 2 2.328 2 E u A v 2u A 4L u A x12 sign for both (has to be to have positive times). 446 4u 2 A 4u 2 A x 2 2 x 2 1 2 2.328 E 1 2 u 1A2 v v 2 12 2.328E 1 2 u 1A2 2.328 E 1 2 u 1A2 2 v t MTZ x 2 2 x 2 1 E uA 4L u A 2.328 12 2 4L u A v 2 E uA v E uA v E uA 2.328 2 2.328 v 2.328E 1 2 u 1A2 v1 2 4 2 12 2.328E 1 2 u 1A2 2 12 v 2.328 2.328 2 E uA v 4L u A 4L u A 4L u A 4u 2A 2 If 4L 2.328 E v t MTZ 2 2.328 E 12 v1 2 u A 18C9. New problem in 3rd edition. For Figure 18-7B, In L In – Out = Accumulation t vinter A c CT,after x i,after Out Accumulation very reasonable since E is usually small , t vinter A cCT,before x i,before LA c yi,after yi,before CRT LAc x i,after CT,after Note that C RT is constant. After dividing both sides by v int er x i ,afterC T ,after x i ,beforeC L C RT y i ,after y i ,before x i,before CT,before t A c , mass balance is T ,before L x i ,afterC T ,after x t t For Figure 18-7B with a total ion wave, L u total ion v int er t The first and third terms in the mass balance cancel each other. Thus, L C RT y i,after y i,before 0 t Which requires, yi,after yi,before C i ,before T , before 18.C10. 447 1 A v1 2 v2 v2 F v3 3 B u A ,i C A ,i L i u A1 M 1A u port vF u BL C B,i Vi u B2 M 2 B u port v B,prod u A3 M 3A u port vD u B4 M 4 B u port v3 v4 v4 4 v A ,prod v1 CB v2 M 2B u port CA v2 C A v3 M 3A u port CA v 2 vF M 3A u port CA M 2B If all 18.D1. Rearrange: vD (2) M 3A u port CB M 2B CB v4 M 3A CA v1 where v 4 u B4 CB v1 Thus (1) M 2B u port vF u port vD CB CA vF Subtract eq. (2) from (1), Then CA u A1 CA M 4B u port CB M1A u port CA M 4B u port M 1A u port M 4B M 1A CB CA CB CA M 1A CA M 4B CB M 3A CA D vD F vF Mi 1.0, M 4B CB D F pA 1 qA q MAX 1 CB pA 1 CA 1 q MAX K A 1 CB 1 CA vf M 2B CB M 3A CA 1.0 . Plot p A q A vs. p A 448 296 K p/q 135.863 278.679 478.666 696.073 939.619 1116.143 1189.735 p 275.788 1137.645 2413.145 3757.6116 5239.9722 6274.1772 6687.8589 480 K p/q 1786.943 1709.129 1974.657 2309.538 2778.150 3011.134 3122.979 p 637.7598 1296.2036 2378.6716 3709.3486 5329.6030 6246.5981 6687.8589 At 296 K At 480 K Intercept Slope KA 0.163636 1 q max , q max 1 q max 0.163636 1 q max K A 80 80 1 Intercept q max K A 6.1125 0.00204545 Slope KA 1380 0.260606 1 q max K A 1 , q max q max 1 q max 0.260606 1 q max K A 1380 3.8372 0.00018884 449 18.D2. L soln a = 22 liter soln/kg ads = 22 1 kg kg ads 1000 g b = 375 liter soln/g mole anthracene = 375 q max K A,c C A q L a 0.022 K A,C 2.104 L g ads 1 mol mol 178.22 g , thus, K A,C 1 K Ac C A q max 0.022 b 0.10456 2.104 2.104 L g ads L g anth g anth g ads. 18.D.3. New problem in 3rd edition. v inter uj Part a 1 1 e p 1 Kd e v super K ij , u AN 40 1 0.69 5.671 cm min 1782 0.00301 Time AN = L/uAN = 25/5.671 = 4.408 min 40 u DN 5.474, time 1 0.69 1782 0.00316 u c. 40 e 1 0.69 1782K j b. u AN u DN HETP 2 u S,AN L N L u S,DN 4.576 5.567 4Ru N1 2 From (18-83) 104.33 u S,AN N 10885 0.002297 cm 2 From (18-81), 2 width at half height 5.54 peak max N To find width in time units, peak max is in time units = retention L u S,AN 4.40864 min , width 0.09946 min d. time 0.425 width 1/2 height t 18.D4. p s e 40 uj , vinter 1 e v sup er 10.0 v int er 0.43 e 23.26 0.042271 min cm min v int er a) u s 1 1 e p e us 0 1 Kd 1 1 e e (18-15c) p s Kx T f 23.26 0.6027 cm min 0.57 .48 1.0 0.57 0.52 2100 17.46 0.43 0.43 684 t br 200 cm 0.6027 cm min 331.8 min 450 b) Assume wall heat capacity is small: v int er u th 1 e 1 1 e 1 p e u th 1.636 t th,br c) K x t br M.B.in 10.0 e 23.26 .57 .52 2100 2000 C ps F C pf 5.911 cm min 23.26 1.23 g g @80 C , u s 80 200 cm 5.4868 cm min A c cm 2 331.8 min 0.684 g cm 3 10.0 A c 0.684 331.8 33.84 .0011 Alternate: Eq. (18-24) C 80 C 0 0.0011 g tol g fluid 33.84 0.0011 2.611 Cconc → C conc us 0 1 u s 80 0.0011 113.92 5.4868 cm min 1.636 2.603 36.45 min , see figure. 1 C 80 s .43 684 1841 200 cm 5.911 cm min 33.84 min out Simplifying: p 1 u th 1 u th 36.45 33.84 C conc 297.96 .0011 1 0.6027 1 5.4868 2.611 1 5.911 1 5.911 0.1255 wt frac. 113.92 0.1253 wt frac . A very considerable amount of concentration occurs. 451 80º, C = 0 z usol (80ºC) uth 0.0011 C=0 0.0011 331.8 min 0.0011 t Cconc 33.84 36.45 min 0.1255 Cout 0.0011 0 33.84 18.D5. 36.45 vsuper 20 cm min vint er vsuper e 20 0.4 50 cm min For step input w. unfavorable isotherm, get a diffuse wave. v int er Langmuir formula: u s 1 e 1 p 1 e a 1 Kd p s 1 bc e e But now us 1 b .6 1.01 .54 .4 0 50 .6 .46 1.124 kg 1.2 .4 liter 1 0.46 c time, min 2 0.46 c,g/l us, cm/min 18.2437 0 16.676 0.25 14.794 0.50 12.565 0.75 9.997 1.00 7.1813 1.25 1.50 4.3499 2 1.81 50 0.93067 1 0.46 c 2 tout = L/us, min 2.741 min 2.998 3.3797 3.979 5.002 6.9625 11.4944 452 18.D6. a) f u th 1 1 e p f C p f v int er 1 C pf e u th .57 1 .5 .43 C ps e .684 2240 .57 .5 920 1.80 .43 50 cm 12.61 cm min v int er 1 e p e c) p If wall effects are negligible, 0.684 2240 30 b) t thermal,br u s 300K 1 e Kd 1 1 e e p K xy s W C pw eAc 12.61 cm min 3.965 min 30 .57 .57 1 .5 1.0 .5 12.109 .43 .43 u s 350K 6.5298 K xy t br 300K 50 3.0964 min . Exits at c F 3.0964 cm min 4.423 in same eqn. 0.010 . 453 At t = 20, start hot, t br,hot Feed is concentrated. C 350 C 300 50 12.61 20 1 u s 300 1 u th C 350 0.010 3.2989 t 1 u s 350 20 L u s 350 K 1 u th 23.965 min 1 3.0964 1 12.61 1 6.5298 1 12.61 3.2989 0.032989 g L . This continues until breakthrough at 20 50 6.5298 27.6572 minutes 0.032989 18.D6. g/L 0.010 0 t 18.D7. vint er vsuper 16.1478 15 0.434 e 1 1 e p Kd 1 tr L us (A) p s K 4 e 34.56 0.566 0.43 0.566 0.57 1.0 0.434 60 cm 0.3715 cm min 161.49 minutes. Then exits at C F 1 e e 1 27.6572 34.56 cm min v int er a) At 4ºC: u s us 4 C 23.965 0.3715 cm min 1820 0.08943 0.434 161.49 min . Concentration out is zero from t = 0 to t = 0.01 . 454 v int er b) u th 1. 1 e p 1 1 e e e C ps s C pf f WC pw e A c C pf f 34.56 17.293 cm min , 0.566 0.43 0.25 1820 0.434 1.00 1000 60.0 17.293 3.4696 min +1200 u th 1.743 t br,th p L u th Eq. A but with K(60º) u s 60 C 34.56 0.720258 cm min 0.566 0.43 1.743 1820 0.045305 0.434 t br,conc 60 L u s 60 60.0 0.720258 83.3035 min +1200 C=0 60º 60 60º z 0º 60º C=0 uth Elution time: 0 c high 60 chigh cF CF 1 us 4 3.4696 1 u th 0.01 2.6918 0.05783 83.3 C high 1 u s 60 1 u th 1.38839 0.05783 18.D.8. New problem in 3rd edition. Example 18-3: vinter,F 0.3799 cm min , u s v inter,purge,0 C u th vinter,purge, 6.466 cm min , u s vinter,purge,80 C If t purge t purge 0.019796 kmol m3 18.60 and yinter,purge u s vinter,F, 0 C u s v inter,F, 80 C C=0 25.58 18.60 25.58 cm min . 0.3799 0.5225 cm min 4.343 cm min 18.60 4.343 3.158 cm min 25.58 hot purge time and t F is cold feed time, with t hot wave breakthrough vinter,purge 18.56 min (from Example 18-3) then breakthrough equation is u s v Inter,F, 0 C t F u s v Inter,purge,0 C t thermal,breakthro ugh 120 cm 455 120 tF 0.5225 18.56 290.35 min 0.3799 The next feed input at 290.35 + 18.56 = 308.91 min. This starts a cold thermal wave at v Inter,F , u th v Inter,F 4.701 cm min which breaks through in another 25.53 min for total time to cold breakthrough of 308.91 + 25.53 = 334.44 min. The solute is hot, first at v Inter,purge u s 80 , v Inter,purge 18.60 u s 80 ,v inter,F 3.158 cm min after 18.56 minutes. Next solute step is 4.343 25.58 u s vinter,purge, 80 t Exit Time Solute 18.56 u s,F 80 , vinter,F 120 4.343 18.56 tF 4.343 cm min and then t purge t 3.158 120 12.47 min 290.35 18.56 12.47 334.44 Since Exit Time Solute entire time. t 321.38 min. breakthrough cold wave, the solute is at 80°C the Solute exits from 290.35+18.56=308.91 min to 321.38 minutes = 12.47 minutes & it exits at superficial velocity of 8.0 cm min . Mass Balance All solute in = Solute out t F vsuper A c c IN t out vsuper A c c out,AVG tF c out ,AVG t out 290.35 c IN 0.0009 wt frac 12.47 0.02096 wt frac. This is same as peak concentration in Example 18-3, but greater than x out,avg 0.00748. To have same concentrations need to recycle the material exiting at feed concentration in counterflow system. NOTE: Counter flow system has advantages of not contaminating the product end of the column and typically has less spreading of the zone. 18.D.9. New problem in 3rd edition. a. e vinter vSuper e u s,feed,M e 1 e p Kd 0.05 m s. vinter v inter 1 e 1 p s RTK A,p 0.5 0.43 0.1163 m s 0.01712 m s from Eq. (18-27) is same as Example 18-4, M 0.2128 Pressurization Step Feed end (for pressurization) 0.75m (Measured from closed product end) M z after which is 0.75 0.5584 y M after 0.003 0.75 m 4.0 atm 0.2128 1.0 atm 0.1916 m from feed and 4.0 0.5584 m 0.2128 1 1.0 0.001007 Feed Step u sfeed 0.01712 m s 7 sec 0.11984 m 0.1916 m for pressurization step = 0.3114 m. Does not breakthrough in first cycle. From 0 to 0.11984 m, concentration is y F . 456 Blowdown. Measuring from closed top, z before z after 0.4386 m 0.2128 1.0 0.5890 m 4.0 The far end of the feed wave does not get removed from the bed. 0.11984 or 0.75 0.11984 0.6302 m from closed end has z after 1.0 0.6302 0.4386 0.75 0.3114 0.2128 0.8463 m, so it all exits. The mole fraction of this portion is 4.0 y after 1.0 0.2128 1.0 0.003 2.9781 0.00893 4.0 Part of the feed that was pressurized also exits during blowdown. This z after y feed The close wave 1.0 0.2128 1.3431 z before z before 0.5584 m from closed 4.0 (product) end. This is 0.75 0.5584 0.196 m from feed end. This gas entered at an unknown pressure between p L 1.0 and p H 4.0. Can calculate this pressure from Eq. (18-28c) 0.75 p before z before p after z after 1 z before y after,press 0.003 y after,BD 0.001007 0.5584 4.0 4.0 1 0.2128 1.00003 atm 0.75 0.2128 1 0.001007 1.00003 This gas is depressurized to 1.0 & exits column 1 After Pressurization Step. 0.2128 1 0.00300 or essentially the feed composition. 4 Exit from Col y 0.008933 0 .0030 time Part b. Want z after blowdown 0.75, then z before z after p after p before 0.2128 1.0 z before 0.75 0.5584 4.0 from closed end, which is 0.75 0.5584 0.1916 m from feed end. Want the feed to end at this point. During constant pressure feed step, feed travels u s,feed t F 0.01712 t F . Then for pressurization step z after (from feed end) 0.1916 0.1712 t F . From closed end this is 457 0.5584 0.1712 t F 0.5584 0.1712 t F z after z before 0.75 p after p before 0.2128 4 0.5584 or t F 0. 1 Thus, need a purge step if have feed step at constant pressure for complete cleanout. 1 18.D10. a) pt.10 : z after y after 0.4, 0.002 Travels, 0.2128, p before A 3.0 0.4 0.2128 0.5 0.2128 1 3.0 0.000876 1.015128 0.4 m 25.126s 1.0s for blow-down 0.01592 m s b) Start with Arbitrary point at t = 1 sec (end repress) z after 3.0 .48 .2128 2.4763 atm , y after 0.002 26.126s 0.48 (.02 from feed end) 1 p before 1.05128 atm 3.0 0.2128 1 0.00172 .5 2.4763 Dist. Traveled @ t = 30s: 0.02 + 0.01592 × 29s = 0.48168 m For blow-down: distance from closed end = 0.01832 cm z after 0.01832 Purge: u M,purge 0.5 0.5 .2128 1.0 0.026824 , y after ,BD 0.00172 0.007048 3.0 3.0 0.01751 m s . Exits bottom column during purge (point 11) (distance traveled)/upurge 18.D11. .2128 31 s + 0.5-0.026824 0.01751 58.023s If repressurize with product, bed remains clean. Feed step is same as to point 3 (at 0.462 m from feed end) on Figure 18-13. Blowdown then pt. 4 (0.056 m from top) and purge exits at pt. 8 (56.36s) Product gas is cleaner (y = 0), but there is lower productivity – less feed per cycle. See Figure. 458 BD 3 4 y=0 y=0 y = 0.0082 8 18.D12. a) The clean bed receiving feed has a shockwave for Langmuir isotherm. 320 cm 3 min v sup er vsup er r2 A c , where A c 6.366 cm min , vinter vsup er 4 cm 2 50.2654 cm 2 6.366 10.434 14.669 cm min e v int er u sh 1 1 e p Kd 1 p s e e q q after q before c c after c before c after 1 e where c before 50 mol m 3 , q after q c 0, q before 0.190 50 1 0.146 50 0 1.1446 mol kg 14.669 u sh 1 0.566 0.57 1.0 0.566 0.43 0.434 0.434 t br L u sh 1.1446 1820 50 cm 0.5843 cm min 0.5843 cm min 50 85.579 min Outlet concentration is zero until t br then becomes 50. Concentrated solution eluted by dilute soln. Gives diffuse wave for Langmuir isotherm. v u s u diffuse 1 e 1 p 1 e a 1 K p d p 2 1 bc e e us 1 0.566 0.57 1.0 14.669 0.566 0.43 1820 0.19 0.434 0.434 1 0.146 c 2 1.74336 14.669 193.92 1 0.146c 2 Create Table. 459 18.D13. A c 50, u s 3.218, t L us 50 3.218 15.537 min c 0, u s 0.07497 cm min , t c 40, u s 2.491, t 20.071 min c 30, u s 1.737, t 28.779 min c 15, u s 0.7052, t 70.898 c 0.2205, t 226.80 5, u s de xtran, B L us 666.93 min fructose (1) CA v1 u A1 M1u port CB v 2 u B2 M 2 u port (2) C A v3 u A3 M 3 u port CB v 4 u B4 M 4 u port (4) (3) v F,sup er 1000 cm 3 min , vF 2 40 e 4 CB vF Solve eqs. (2) and (3) simultaneously, u port CB M2 M3 CA v2 v3 1 CA 1 1 e e v2 v3 v4 KA 1 .6 1 0.23 .4 M1 CA M2 CB u port u port 0.97 0.7435 0.99 0.4914 1 3.03175 cm min M 4 u port 1.03 3.03175 CB 0.4914 KB 60 3.03175 0.4914 L t sw 19.791 min 6.1079 cm min ; V2,sup er 0.7435 1 .6 1 .69 .4 e 3.03175 CA V1,sup er e 3.955 cm min : V1,sup er 1.01 3.03175 Recycle flow 1 3.03175 M 3 u port 1.9894 cm 3 min 1 0.7435 , C B 0.4914 1.9894 cm min 0.4914 0.99 1.01 0.7435 L t sw u port u port v1 Vol Feed D2 4 v F , v F,super v1 D2 e 4 1988.176 cm 3 min 3070.15 cm 3 min 4.1184; V3,sup er 2070.14 cm 3 min 6.3547; V4,sup er 3194.19 cm 3 min 1988.176 cm3 min 460 D V4,sup er Check: 3194.19 1988.176 1206.0 cm3 min , V1,sup er VD D VF F V4 V1 VF F V2 Extract Product V4 M 1 u port CB CA vF M2 V3 M1 CB CA CB M3 CA .97 .4914 .7435 1.2060 , OK .4914 .99 1.01 .7435 V1 3070.15 1988.18 1081.97 cm 3 min 3194.19 2070.14 1124.05 cm3 min 18.D.14. New problem in 3rd edition. From Eq. (18-40c) K K KK Anderson’s data: 1.2060 F 1.03 .4914 D Raffinate Product M4 M4 CB D 2.9 1.3 H H KK Li KH Li 2.2308 DeChow’s data: K K H 2.63 1.26 2.0873 For the shockwave Eq. (18-46) holds for K+ Since resin is initially in H+ form, x K,before CK,before CT 0 and y K,before a) x K,after CK,after CT y K,after CR ,K,after CRT CR ,K CRT 0. 1.0 1.0 v inter u sh ,K y K ,after 1 C RT K DE ,K x K ,after e CT 1 25 0.42 u sh ,K y K ,before x K ,before L 44.84 min 1 2.2 1 0 u sh 1 1.0 0.42 0.1 1 0 Same for both sets of data since K K H does not enter into equation when initial and feed contain only one ion. b) C t 1.0, u Sh,K 9.542 cm min , t sh 5.24 min c) Ct 1.0, x K,before yK Anderson’s Data: y K ,before y K ,after 0.2, x K,after 0.85. y K values depend on equilibrium parameter. K KH x K 1 K KH 1 x K 2.2308 0.2 1 2.2308 1 0.2 2.2308 0.85 1 1.115 cm min, t sh 2.2308 1 0.85 0.3580 0.9267 461 u sh 25 0.42 1 2.2 1 0.42 1.0 1.0 0.9267 0.3580 0.85 0.2 10.662 , t K L u sh 4.69 min DeChow’s data: y K ,before y K ,after 2.0873 0.2 1 0.3148 2.0873 1 0.2 2.0873 0.85 1 0.9220 2.0873 1 0.85 25 0.42 L u sh 4.95 min 10.100 , t K 1 2.2 0.9220 0.3148 1 1.0 0.42 1.0 0.85 0.2 4.69 4.95 % difference 100 5.55% 4.69 d) There is a difference if either initial or feed contains both ions. System with higher K K H had higher shock velocity. u sh v 18.D15. New problem in 3rd edition. Part a. u sh ,i y i,after 1 c RT K DE x i,after e cT 1 For both Na & K , x i,after y i,before y i,after t center 0 1.0 v u i,sh 1 y i,after 1 c RT K DE x i,after e cT y i,before x i,before For both Na+ and K+: xbefore = 0.4 and xafter = 0.9. For Na+ K Na H xNa (2.0 / 1.3)(0.4) y Na ,before 1 ( K Na H 1) xNa 1 [(2.0 / 1.3) 1](0.4) y Na , after x i,before 25 0.42 5.186 cm min 1 2.2 1 0.42 0.5 L u sh 50 5.186 9.64 min Thus same u sh , u sh Part b. x i,before y i,before K Na H 1 ( K Na H xNa 1) xNa (2.0 / 1.3)(0.9) 1 [(2.0 / 1.3) 1](0.9) 0.506 0.933 462 v u sh ,Na y Na ,after 1 c RT K DE x Na ,after e cT 1 L / ush , Na t Na 50 / 5.98 (25 / 0.42) 1(2.2)(1.0) 0.933 0.506 1 (0.42)(0.5) 0.9 0.4 y Na ,before x Na ,before 5.98 8.36 min . For K+ we obtain, y K ,before y K , after KK H 1 (KK H KK H 1 (KK H u sh ,K Part c. 1) xK L / ush , K (2.9 / 1.3)(0.9) xK 1) xK v 50 / 7.054 (25 / 0.42) 1(2.2)(1.0) 0.953 0.598 1 (0.42)(0.5) 0.9 0.4 y K ,before x K ,before 7.054 7.09 min . 1 c RT dy K DE dx e cT dy Na K Na dx Na 1 dx Na t Na K Na 1 L u shNA KK 1 1 0 xK KK K Na x Na dy K .9 Li KH Li KH Li Li 2 1 x Na 25 0.42 1 2.2 1 0.955 .42 0.5 u Na 5.409 KK 1 xK H xK 2 1 KK 0.855, u K Li Li KH KH Li Li 2 1 xK 25 0.42 1 2.2 1 0.855 .42 0.5 5.979 H 2.0 1.3 1.538, u Na 3.477, t Na 14.38 min 0 KK xK 2 0 dy Na dx K K Na H 2.9 1.3 1 .5 dx Na 1 0.955, 2 2.9 1.3 dy dx 2 9.244 min dx K x Na 1 x Na H 2.0 1.3 1 .5 dy K x Na K Na H 2.0 1.3 dy Na Part e. 0.953 1 [(2.9 / 1.3) 1](0.9) v u 1 Part d. 0.598 1 [(2.9 / 1.3) 1](0.4) y K ,after 1 c RT K DE x K ,after e cT 1 tK (2.9 / 1.3)(0.4) xK H 2.9 1.3 2.231, uK 2.442, tK 20.47 min 0 .9 463 dy Na 1.538 dx Na 1 dy K 0.538 .9 2.231 dx K 1 0.502, 2 1.231 .9 0.698, u 2 7.159, t Na Na uK 6.984 min tK 9.5075, 5.259 min Part f. The velocities and hence the derivatives are equal. Thus, K Na dy Na dx Na 1 K Na KH Li KH Li Li KK dy K Li 2 1 x Na dx K 1 KK Li Li KH KH Li Li 1 xK 2 With xNa = xK. The result from a spreadsheet is x = 0.35056 18.D16. vint er vsup er 15 0.40 e MW p f 37.5 cm s 28.9 g mol 50 kPa 1.0 kg 0.5832 kg m 3 3 m kPa 1000 g 298 K mol K q kg toluene kg carbon . Then, shockwave velocity is is in c kg toluene kg air v int er RT u sh 0.008314 1 1 e p 1 Kd 1 e e e q y s f 37.5 cm s u sh 1 0.6 0.65 1.0 0.6 0.35 0.4 0.4 1500 kg m 3 q 2 0.5832 kg m 3 y 2 q1 y1 37.5 cm s u sh For 1.975 1350.308 q2 y2 u sh ,1 : y1 0, y 2 0, q1 u sh 2 : y1 y2 u sh 2 q1 y1 0.0005, q 2 37.5 u sh ,1 At p 2000 0.0015 1 2200 0.0015 L min 0.47619 0.104976 cm h 0.69767 37.5 0.69767 0.47619 1.975 1350.308 0.0015 0.0005 L min : u sh1t 1 2200 0.0005 0.00002916 cm s 0.47619 1.975 1350.308 0.0005 0.0005, q1 0.47619 0.0015, q 2 2000 .0005 0.00012539 cm s 0.451393 cm h u sh 2 t 10 h where t is in hours. 464 Solve for u sh 2 10 t 0.451393 10 13.03 h 0.451393 0.104976 cm L min u sh1 t 0.104976 13.03 h 1.368 cm h Thus, for any column of partial length we will see a single shockwave exit the column. v sup er 21.0 18.D17. v int er 52.5 cm s 0.4 e pV n RT u sh 2 v Cinit Since u sh1 MW n MW p 28.9 50 V RT 1000 g kg 0.008314 298 C F , Get 2 diffuse waves v int er us 1 1 e p Kd 1 1 y 0.0010 0.00075 0.00050 2nd wave (0.00050) 0.00025 0.00 where 1 e e us p s e f 52.5 0.6 0.35 .6 0.65 1.0 0.4 0.4 q u s cm s y 195.31 0.0001991 284.799 0.0001365 453.515 0.00008573 - add 20 hours 832.466 0.00004671 2000 0.00001914 us y 0.5383 kg m 3 0.001 q y q 2000 y 1 2200y 2 52.5 cm s q 1.975+1350.23 q y y t L u s 25 u s 1500 0.583 125,581s = 34.8835 h 183,117.6s = 50.866 h 291,596.6s = 80.999 h 100.999 h 535,250.5 = 148.681 + 20 = 168.681 h 1285937.96 = 357.205 + 20 = 377.205 h 0.00075 0.00025 z us y us y 0 0 0.005 t 2 us y 0.0005 465 80.999 34.88 0.001 50.866 0 0.00075 0.0005 c · 100.99 · 168.88 0.00025 t 18.D.18. Part a. . New problem in 3rd edition. u S,G 11.12 S cm min is calculated in Example 18-9. 20 0.61 1.0 0.88 u S,F 1 0 8.416 , u From Eq. (18-93), N 4Ru u S,G From Eq. (18-78a) N Part b. 1 u S,F 2 L v E eff u S,F 2 9.771 2 229.465 L 2 229.465 5.0 cm 2 min 2N E eff v 114.73 cm 20 cm min tG L u S,G 114.73 11.25 10.20 min tF L u S,F 114.73 8.416 13.63 min Part c. Eq. (18-80a), K Ag Li t L 1 uS N 13.63 min t ,F K AgK uS,G 0.39 L 18.D19. 377.2 KK a) Ion wave: u total con Li vint er 8.5 2.9 vsuper 1/ 2 , 10.20 min t ,G 229.465 1/ 2 0.673 min 1/ 2 1 229.465 2.93 , y Ag e 1 3.0 0.4 Breakthrough of ion wave, 50 cm 7.5 cm min 0.900 min 2.93 x Ag 1 1.93 x Ag 7.5 cm min 6.667 min 466 b) Shock wave, v int er u sh y Ag after 1 C RT KE x Ag after e CT 1 before: x Ag 0 . after: x Ag y Ag 7.5 cm min 1 2.0 1.0 1.0 u sh 1 0.4 1.2 1.4516 cm min , t sh 7.5 cm min 1 2.0 2.93 1 1.0 0.4 1.2 1 1.93 x 1.0, u s 1 x Ag 0.5, u s x Ag 0, u s 1.0 . y Ag v int er 1 C RT dy KE dx e CT 1 x Ag x Ag before L 50 cm u sh 1.4516 cm min 34.44 min 1.0 c) Diffuse wave: u s u s,Ag y Ag before 7.5 12.208 2.93 v int er 1 2 Ag 3.0965 K Ag -K 1 C RT KE e CT 1 1 cm min K Ag 1 x Ag K 2 7.5 12.208 1 1.93 x Ag L , t out us 2 7.5 50 1.8021 , t out 12.208 1.8021 1 3.86 7.5 L 0.5678 cm min , t out 13.208 us 2 16.147 min 27.745 min 50 0.5678 88.0555 min From spreadsheet: xAg 1 0.9 0.8 0.7 0.6 0.5 0.4 0.3 0.2 0.1 0 18.D20. u_dif,Ag 3.097163211 2.852615804 2.598940969 2.337763116 2.071284133 1.802351071 1.53450084 1.27196632 1.019637556 0.782936124 0.567638906 t_dif,Ag 16.14380534 17.5277722 19.23860549 21.38796684 24.13961427 27.74154314 32.58388572 39.3091764 49.0370324 63.86217015 88.08416667 Was 18D23 in 2nd edition. Table 18-5, K CaK a.) c RT 2.0 eq L , c T 0.02 eq L , x Ca K CaK C RT 0.6183 2.0 CT 0.02 Column: L 75 cm, vsuper 61.83 K Ca K K Li 0.8 at t 5.2 Li 2 2.9 2 0.6183 0. shockwave . 20 cm min , vinter 20 .4 50 cm min 467 p Feed: u sh 0, 0.4, K E e v int er , before: x Ca C RT K E y 1 x e CT from Eq. (18-43) y Ca u sh 1.0 50 1 2.0 0.971965 1 1.0 0.4 .02 0.8 x Ca K Ca C RT CT 0.8 0.971965 75 0.16407 cm min , t br b.) Regenerate: at 500 min → Ion wave at vint er New 0 , after: x Ca 0, y Ca u sh 50 cm min takes 75 50 457.1 min 1.5 min. 1.2366 y Ca unchanged. Use Eq. (18-43) with new value K Ca C RT CT . 0.9689677 . Obtain diffuse wave. 3 v imter dy Ca 1.2336 1 y Ca 1 x Ca u diffuse where 3 C RT K E dy Ca dx Ca 1 x Ca 1 y Ca 1 C T e dx Ca (Wankat, 1990, Eq. (9-25b)). dy Ca 50 At x Ca 0, 1.2366, u Ca 6.96088 cm min 1.0 2.0 dx Ca 1 1.2366 0.4 1.0 75 cm t out 10.7745 min (slow wave) 6.96088 At x Ca 0.96897, and y Ca 0.971965 dy Ca 3 1.2336 0.028035 dx Ca 0.03103 3 1.96897 0.908386 1.971965 50 9.022 cm min , t out 2.0 1.0 1 0.908386 1.0 0.4 At x Ca 0.5, y Ca 0.534927 75 u Ca dy Ca 1.2336 0.465073 dx Ca u Ca .5 3 18.D.21. New problem in 3rd edition. vF u port , C Tol M2 M3 C Tol 1.5 8.312898 min (fast wave) 0.97013 1.534927 50 2.0 1.0 1 0.97013 1.0 0.4 Cy 3 9.022 75 8.546 cm min , t out 8.546 8.776 min . (in-between) 1 1 1 e p e Kd 1 1 e 0.132234 p K Tol 300 e 468 0.0061 e 2175.2696 300 K Tol 300 K C xy 1 vF .95 .10007 0.6479 v F 0.6479 cm min , L u port t SW 64.79 cm 1.05 .132234 0.95 .6479 C xy 6.1447 cm min , v3 v 2 v F 5.14476 0.10017 0.6479 C Tol .95 4.6547 0.132234 v2 M 2 u port v1 M1 u port v4 M 4 u port C xy 1.05 0.6479 v Tol prod v2 v1 6.7914 0.10017 6.1447 4.6547 1.4900 v xy,prod v4 v3 6.7914 5.14476 1.6466 Check: vOut 18.D22. 0.10017 1.63627 0.68930 12.1092 u port vD E eff v sup er 0.0105 e 2115.1052 300 12.1092 8.5972 , K xy 300 K v4 v1 6.7914 4.6547 v tol prod ED v xy,prod u s2 dp 6 k M,c 20 cm 3 min cm us 1 0 v 1 2 3.1366 , v total in K 2 1 K 2.035 D F 2.1367 vD 3.1367 vF , where 6.366 cm min , 15.915 e 2.1367, dp 1 6 k m,c k m,c a p v sup er v OK. 15.915 cm min 7.821 cm min e E eff 0.15 Eq. (17-69) X cm 7.821 min 2 0.6 0.69 5.52 min C 1 CF 2 Argument of erf, a 1 0.4 2 8.063 cm 2 min z ust 1 erf 4 E eff u s t v int er 12 for step up 200 7.821 t 15.849 t 12 469 Step down: 1 X L, t 8 L u s t 8u s 1 erf 2 12 4 E eff u s t 8 v int er 323.04 7.821 t Argument of erf , a 15.849 t Total Solution X X L If t 25.573 min us X If t X 1 1 and X 2 L 8u s 2 2 1.998 4 X 31.2835 a 341.89 12 1 2 0.979235 0.0084 cF See also Problem 18.G1. cF 1 2 0.499 c 1.44473, erf a 12 1 2 50 0.970835 Cinitial 1 .983186 1 .998 24.975 . 0.95847 e p Kd 1 CF1 X z, t 17.5 e 1 e CF1X z, t 28 1.63627 0.68930 12.1092 0.132234 p K Tol 300 e 8.5972 , K xy 300 K 1 0.0084 48.54 1 0.0061 e 2175.2696 300 C xy (300K) 0.999 0.983186 , X Cinitial Tol K Tol 300 K c 2.773, erf 0.979236 0.970835 , c 18.D23. Was 18D24 in 2nd edition. Cout 12 532.13 468.663 1.95847 25.0 (for smaller t, can ignore X ) 63.96 31.2765 29.575, a 1.69189, erf a 18.D.24. New problem in 3rd edition. vF u port , C Tol (300K ) M2 M3 1 C C 0.50 or c 1 2, a 0, X c xy 0 , c cF 7.358 12 279.6 For higher t, X = 1.0, 0.999 Peak at 25.575 12 123.03 0, a 1 1.000 33.575, a us 1 a 126.792 0.0105 e 2115.1052 300 12.1092 0.10017 470 vF u port .90 .10007 1.4812 v F 1.10 .132234 M 2 u port C xy (300K) v1 M1 u port C Tol (300K) v4 v2 v1 vD v4 Check: vOut v4 v1 13.3084 cm min , v3 0.10017 1.4812 .90 10.0812 0.132234 13.3084 10.0812 v3 v tol prod v xy,prod v2 vF 12.3084 16.2655 0.10017 16.2655 12.3084 16.2655 10.0812 148.12 cm 3.2272 1.10 1.4812 M 4 u port C xy (300) v xy,prod u port t SW 0.90 1.4812 v2 vTol prod 1.4812 cm min , L 3.9571 6.1843, 7.1843 , v total in vF D F vD 6.1843 7.1843 OK. 18.D.25. New problem in 3rd edition. Zones 2 & 3 are same as in 18.D.24 since at 300 K u port 0.6479 v F 0.6479 cm min , L u port t SW 64.79 cm v2 6.1447 , v3 v1 M1 u port CTol 273 K M1 5.14476 0.5 and M 4 and v 4 M 4 u port C xy 350 K 2.0 (reciprocal values). K Tol 273K 0.0061 exp 2175.2695 273 17.612 K xy 350K 0.0105 exp 2115.1052 350 4.423 1 C Tol 273K 1 C xy 350K v1 0.2135 1.63627 0.68930 4.423 0.5 0.6479 0.07259 vTol prod 0.07259 1.63627 0.68930 17.612 v2 4.4627 , v 4 1.6820 , v xy prod v1 v4 v3 2.0 0.6479 0.2135 0.9260 , v D v4 v1 6.0707 1.608 D / F 1.608 18.D26. a) N u sD 2 4Ru s u sA 1.0 1 5.8 u s,B , R 0.147059 , u v 1.5 , u s A 1 1 1.0 s KA 6.5 0.15385 0.15045 471 4 1.5 0.15045 Need N b) t R ,A t ,A CA C A ,max 17689 , L 0.0067873 L 884.45 uA 0.15385 L 1 uA N 5748.88 95.813 min t tR 2 2 t 2 exp 0.05 N 884.45 cm. 95.813 min 12 exp t,min CA CA,max 12 1 0.7204 min 17689 t 95.813 2 0.7204 2 p 2 90 92 94 95 95.813 96 97 7.27E-15 8.3E-7 0.0421 0.52898 1.00 0.9669 0.2573 CA 0.33 X A L, t CF 18.D27. 18.D28. a) u p 2 25.0 cm L t center 35.4 min b) Large-Scale system 1.0 0.33 X A L, t 1 .55 X A L, t .8t F 0.55 0 X A L, t 0.706 cm min , L MTZ,lab u pt MTZ t MTZ, LS d 2p ,LS D eff 1.0 t MTZ,lab d 2p ,lab D eff 0.12 t MTZ,LS Independent of velocity 0.4t F 69.44 2.8 tF 0.706 2.8 1.9774 cm 2 69.44 2 194.44 min v super u p ,LS e u p ,lab LS v super e lab 12 4 9 3 → u p,Ls 0.706 4 3 0.941 cm min lab L MTZ,larg e scale u p t MTZ 0.941 cm min 194.44 min 183.03 cm For frac. bed use = 0.80 & symmetrical pattern, 0.5 183.03 0.5 L MTZ L 457.6 cm 4.576 m , t br t center 1 Frac bed use 1 .8 t center 457.6 L up 486.27 min , t br 486.27 194.44 0.941 2 This is length of feed time if column is completely regenerated. 18D.29. K CaK a.) c RT K Ca 5.2 Li K K Li 2 2.9 2.5 eq L , cT 2 t MTZ 2 389.05 min . 0.6183 0.03 eq L , x Ca 0.7 at t 0. 472 K CaK C RT 0.6183 2.5 CT 0.03 Column: L p Feed: u sh 90 cm, vsuper 0, e shockwave . 51.525 25 cm min , 0.39, K E y Ca (1 y Ca ) 25 / .39 64.10 cm min 1.0 v int er , before: x Ca C RT K E y 1 x e CT from Equilibrium, vinter 0, y Ca 0 , after: x Ca K Ca K C RT x Ca CT (1 x Ca ) 2 2 0.7 400.75 Solve this for unknown y value. I used a spreadsheet. yCa 0.95128 u sh 64.1 1 2.5 0.95128 1 1.0 0.39 .03 0.7 b.) Regenerate: Ion wave at vint er New K CaK C RT (0.6183)(2.5) CT 1.1 0.22000 cm min , t br 35.0 / 0.39 1.4057 y Ca old y and with new value K Ca C RT CT 400.75 , find x Ca 90 409.10 min u sh 89.74 cm min takes 90 1.003 min. 89.74 0.95128 unchanged. Use equilibrium with y Ca (1 y Ca ) 2 K Ca K C RT x Ca CT (1 x Ca ) 2 to 0.94251 . Obtain diffuse wave. 3 v imter dy Ca 1.4057 1 y Ca 1 x Ca u diffuse where 3 C RT K E dy Ca dx Ca 1 x Ca 1 y Ca 1 C T e dx Ca (Wankat, 1990, Eq. (9-25b)). dy Ca 89.74 At x Ca 0, 1.4057, u Ca 9.7631 cm min 1.0 2.5 dx Ca 1 1.4057 0.39 1.1 As an alternative can do numerical calculation of derivative. At x = 0, y = 0. x = 0.001, y = 0.001404 and y / x (0.001404 0) / (0.001 0) 1.404 , which is reasonably close. 90 cm 9.22 min (slow wave) 9.7631 At x Ca 0.94251, and y Ca 0.95128 t out dy Ca dx Ca 1.4057 0.04872 0.05749 3 3 1.94251 1.95128 0.85169 473 89.74 15.049 cm min , t out 2.5 1.0 1 0.85169 1.1 0.39 From equilibrium, at the arbitrary value x Ca 0.5, y Ca u Ca dy Ca 1.4057 1 0.55544 dx Ca 3 .5 3 1.5 15.049 5.981min (fast wave) 0.55544 0.95282 1.55544 89.74 2.5 1.0 1 0.95282 1.1 0.39 u Ca 90 13.695 cm min , t out 90 13.695 6.572 min . This is in-between the other two waves. c. To not have a diffuse wave must have K CaK C RT (0.6183)(2.5) CT CT 1.0 This requires CT > 1.546. 18.D30. New Problem in 3rd edition. K K H KK Li KH Li DeChow’s data: K K H 2.63 1.26 2.0873 a.) This will be a shock wave since K+ is more concentrated in the feed to the column than it is initially and KK-H > 1. v inter u sh ,K y K ,after 1 C RT K E ,K x K ,after e CT 1 Ct 1.0, x K,before yK y K ,before y K ,after u sh tK 0.2, x K,after 1 0.85. y K values depend on equilibrium parameter. K KH 1 x K 2.0873 1 0.2 2.0873 0.85 1 x K ,before K KH x K 2.0873 0.2 1 y K ,before 2.0873 1 0.85 0.3148 0.9220 25 0.42 0.9220 0.3148 1.0 0.85 0.2 1 2.2 1 0.42 1.0 L u sh 49.5 min All three times are the same for the shock wave. 10.100 cm/min, 474 b.) This will be a diffuse wave since K+ is less concentrated in the feed to the column than it is initially and KK-H > 1. v inter u diffuse,K 1 dy K 1 C RT K E,K dx K e CT dy K 2.0873 K KH (1 ( K KH At xK = 0.15, dxK u diffuse,K 25 / 0.42 2.2(1) dy K 1 (0.42)(1.0) dx K 1) xK ) 2 25 / 0.42 2.2(1) dy K 1 (0.42)(1.0) dx K 1.543 [1 (1.0873)(0.15)]2 59.524 dy 1 5.238 K dx K 59.524 1 5.238(1.543) 6.554cm / min Thus, at xK = 0.15, tK = L/udiffuse,K = 500/6.554 = 76.29 min. Then at xK = 0.5 we obtain dy K 2.0873 K KH (1 ( K KH 1) xK ) 59.524 u diffuse,K dy 1 5.238 K dx K dxK 2 0.876 [1 (1.0873)(0.5)]2 59.524 10.65cm / min 1 5.238(0.876) Thus, at xK = 0.5, tK = L/udiffuse,K = 500/10.65 = 46.94 min. Then at xK = 0.8 we obtain dy K dxK u diffuse,K K KH (1 ( K KH 59.524 dy 1 5.238 K dx K 1) xK ) 2 0.5970 59.524 1 5.238(0.597) 14.42cm / min tK = L/udiffuse,K = 500/14.42 = 34.67 min. 18.D31. New problem in 3rd edition. a. vSuper 10 vint er 10 .4 25, e 0.4, L 30.0 475 c RT 2.4, 1.10, KK 2.9 Na 1 25 y K ,after 1 c RT K DE x K ,after e cT y K ,before b. u sh,exp t c. L MTZ L t center u sh t MTZ 1 0 1 0 7.75 min . , t center ,measured 7.31 min 7.31 7.75 100 6.00% 7.31 30 7.31 4.10 cm min . 4.10 7.57 7.06 Frac. bed use (symmetric wave) L MTZ l arg e scale 1 2.4 1.0 .4 1.1 1 x K ,before 3.783 cm min, t center,exp ected % error d. 1.45 2.0 v int er u sh ,K u sh,K cT L MTZLab 2.093 cm 1 0.5 L MTZ L d 2p v Super D eff 16 d 2p l arg e scale d 2p v Super D eff 0.965 d 2p Lab Lab Lab 200 D eff L MTZ,Lab 100 D eff With same beads assume no change in D eff . L MTZ,larg e scale 16 2 2.093 cm frac bed use 1 0.5 L MTZ L 1 0.5 66.98 200 t center Breakthrough start time v inter,large scale u sh u sh ,lab ,exp tl v inter,lab scale Breakthrough start time 0.5 t MTZ L u sh 2580 ft 3 , h=2580/860=3ft., End View 0.833 0.5 L MTZ u sh 8.2 [200 0.5(66.98)] / 8.20 18.F1. New problem in 3rd edition. Constraints: w L wLh 66.98 cm 860 ft 2 p0 20.31min T max 500 C 6 atm 932 F 88.14 psia 73.14 psig Weight vessel Di ts L 0.8 D i t s Seider etal, s Eq.16 59 h w Seider etal. (2004), Eq. (16.61) 476 Pd exp 0.60608 0.91615 n p0 0.0015655 n p0 2 96.66 psig Wall thickness tp (Eq. 16.60) s Relate w to h.: 2SE 1.2 Pd 2 13,100 1 3.7057E 3 D i 1.2 96.66 490 lbm ft 3 0.284 lbm in 3 p. 529 (Seider et al, 2004) cos cos 90 D 96.66 D i S 13.100 psi p. 529 with SA-387B steel, E = 1.0 where Weight Pd D i 3.7057E 3 D 0.5h 1.5 3 r 0.5w r w D w r D D cos 90 860 D cos 90 cos D in ft. (In Spreadsheet A cos cos 1 1 cos 3 D cos 0.8D 3D 3 1 D 3.7057 E 3 D 490 1 In Spreadsheet, angle is in radius 90 2 D Weight Width L 3.5 33655 1.80 477.0 3.7 31358 2.17 397.1 3.8 30735.9 2.33 368.7 3.9 30325. 2.49 345.1 4 30070.31 2.65 325 4.1 29933 2.7947 307.7 4.2 29889 2.939 292.6 4.3 29918 3.08 279.2 6 35103 5.196 165 8 44837 7.42 115.96 10 56197 9.54 90.15 12 68940 11.62 74.02 14 83144 13.67 62.88 Goal seek L = 60 D = 14.64 ft Weight = 88052.75 Width = 14.333 L = 60 From Seider et al, p. 527: Cp Cv (Eq. 16.53) horizontal (Eq. 16.55) CpL From p. 531, Fm Fm C v Bare module factor, FBm CBm 0.20294 2 118,323 → Cp 1.0 in 2000 Cp 144, 711 in mid 2000 118323 2724 121047 3.05 for horizontal Cp Fm Absorbent: p. 553 Cp 0.04333 n w 2724 1.2 for low-alloy steel, C v Installed Cost: Calc C p with Fm 0.054266 ft CPL in mid 2000 (MS = 1103) exp 8.717 0.2330 n w 1580 D ts 1.0, 2000 $60 ft 3 , Cp 3.05 1.0 1.0 1.2 60 2580 1 $393, 400 $154,800 477 18.G1. Was 17G1 in 2nd edition. Figures are labeled 17G1. 478 479 480 18.G2. Was 17G2 in 2nd edition. a.) With QDS with 50 nodes find t center t MTZ 18.G3. 6.0 3.13 4.52 min 2.87 min Was 17G3 in 2nd edition. Find D F 1.0. D 141.55 E R CA 0.343 and CB 0.219 Eq. (17.31a) u port a) vF M 2B CB e t sw 141.55 cm 3 min v1,int er v1,sup er Dc 2 4 0.4 10 2 4 4.5057 cm min 4.5057 1 0.219 L u port CA vint er Recycle Rate M 3A CA F vF u port F. u A1 2.7295 cm min 1 0.343 50 2.7295 18.32 min M1u port 2.7295 cm min 2.7295 7.9577 cm min 0.343 0.4 v1,int er 3.18308 cm min 3.18308 10 2 4 250 cm 3 min Obtained raffinate = 96.6% and extract = 94.3%. b) One approach is to keep a symmetric cycle. Then D = 283.1 and E F E R 212.325 2 Flow optimizer can be used to give t sw ~ 9.1 and Recycle rate ~ 500. Depending on values obtain raffinate and extract > 97%. 18.G4. Was 17G4 in 2nd edition. Figure below is labeled 17G4. 18G5. Was 17G5 in 2nd edition. Figure below is labeled 17G5. 481 482 483 18.G6. Was 17G6 in 2nd edition. a. k m,a p 1.5 min1 , L 25.0 cm 484 v sup er 20.2 ml min Eq. (18-66) 2.0 m 2 4 6.366 cm min 6.366 cm min 19.1 1.5 min -1 Satisfied, but close. Thus some bypasses but most undergoes equilibration. 18.G7. 25.0 cm < 4.5 Was 17G7 in 2nd edition. Figure is labeled 17.G7. 485 18H1. New problem in 3rd edition. Spreadsheets with numbers and formulas shown. 486 487 18.H.2. New problem in 3rd edition. The spreadsheets are shown on the next pages. They are based on the previous, but includes both a step up and a step down. Because of the quirk in Excel not allowing negative arguments, it was set up with multiple solution paths. The correct solution occurs when there are numbers. Time, min 15 20 22.5 25 C 0 .0134 1.798 24.96 25.5726 27.5 25.0 30 33.575 42.32 48.52 24.97 35 37.5 11.13 1.114 40 .040 488 489 490