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Frontiers of Chemical Science and Engineering

ISSN 2095-0179

ISSN 2095-0187(Online)

CN 11-5981/TQ

邮发代号 80-969

2019 Impact Factor: 3.552

Frontiers of Chemical Engineering in China  2009, Vol. 3 Issue (1): 68-72   https://doi.org/10.1007/s11705-009-0130-8
  RESEARCH ARTICLE 本期目录
Effects of baffles on separation of aqueous ethanol solution with hollow fibers
Effects of baffles on separation of aqueous ethanol solution with hollow fibers
Zhihong YANG1, Guoliang ZHANG1(), Lan LIN1, Danping REN1, Qin MENG2, Hongzi ZHANG2
1. College of Biological and Environmental Engineering, Zhejiang University of Technology, Hangzhou 310014, China; 2. College of Materials Science and Chemical Engineering, Zhejiang University, Hangzhou 310027, China
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Abstract

The effects of baffles on the operation and mass-transfer characteristics in novel hollow fiber membrane contactor used in distillation were investigated. Hollow fiber membranes, coated with a 7 μm polydimethyl-siloxane, were operated as structural packing in the separation of ethanol-water solutions. The parallel flow mode was chosen for separation due to the stronger driving force of the concentration difference, in which liquid flows through the lumens of the fibers and vapor flows countercurrent-wise outside the fibers. Two baffles were installed on the shell side of the membrane contactors to enhance separation, which had a round shape with a semi-lunar hole. The results show that both baffled and unbaffled membrane contactors gave better, more productive separations than traditional packing in distillation, such as the excellent Sulzer Gauze BX structured packing. The baffled membrane contactors performed better than unbaffled ones, especially at high vapor velocities. The minimal HTU of membrane contactor with baffles could reach as low as 4.5 cm, and almost all the contactors could work well above the limit where flooding normally occurs in conventional cases. Theoretical analysis predicted that baffles helped membrane module to obtain a higher mass-transfer coefficient and a smaller mass-transfer resistance. Finally, theoretical mass-transfer coefficient and experimental value were compared as well as the contribution of each individual mass-transfer coefficients among liquid, gas and membrane.

Key wordshollow fiber    membrane contactor    baffle    mass-transfer    ethanol-water
收稿日期: 2008-08-22      出版日期: 2009-03-05
Corresponding Author(s): ZHANG Guoliang,Email:guoliangz@zjut.edu.cn   
 引用本文:   
. Effects of baffles on separation of aqueous ethanol solution with hollow fibers[J]. Frontiers of Chemical Engineering in China, 2009, 3(1): 68-72.
Zhihong YANG, Guoliang ZHANG, Lan LIN, Danping REN, Qin MENG, Hongzi ZHANG. Effects of baffles on separation of aqueous ethanol solution with hollow fibers. Front Chem Eng Chin, 2009, 3(1): 68-72.
 链接本文:  
https://academic.hep.com.cn/fcse/CN/10.1007/s11705-009-0130-8
https://academic.hep.com.cn/fcse/CN/Y2009/V3/I1/68
Fig.1  
Fig.2  
Fig.3  
Fig.4  
Fig.5  
lower velocityhigher velocity
no baffletwo bafflesno baffletwo baffles
flow velocity/(cm?s-1)vG1 = 69.1vG2 = 62.5vG1 = 118.1vG2 = 121.3
individual mass-transfer coeffcient
liquid/(cm?s-1)kL1 =6.28×10-4kL2 =5.49×10-4kL1 =9.73×10-4kL2 =8.25×10-4
vapor/(cm?s-1)kG1 =2.00kG2 =2.04kG1 =3.16kG2 =3.36
membrane/(cm?s-1)kM =1
Tab.1  
Fig.6  
1 Kreulen H, Smolers C A, Versteeg G F, Van Swaai W P M. Microporous hollow fiber membrane modules as gas-liquid contactors. Part 2. Physical mass transfer with processes. J Membr Sci , 1993, 78: 217-238
doi: 10.1016/0376-7388(93)80002-F
2 Prasad R, Sirkar K K. Hollow fiber solvent extraction: Performance and design. J Membr Sci , 1990, 50: 153-175
doi: 10.1016/S0376-7388(00)80313-0
3 Alan G, Hwang S T. Hollow fiber membrane contactors. J Membr Sci , 1999, 159: 61-106
doi: 10.1016/S0376-7388(99)00040-X
4 Majumdar S, Guha A K, Sirkar K K. Fule oil desalting by hydrogel hollow fiber membrane. J Membr Sci , 2002, 202: 253-256
doi: 10.1016/S0376-7388(01)00726-8
5 Zhang G, Cussler E L. Distillation in hollow fibers. AIChE J , 2003, 49: 2344-2351
doi: 10.1002/aic.690490910
6 Zhang G, Cussler E L. Hollow fibers as structured distillation packing. J Membr Sci , 2003, 215: 185-193
doi: 10.1016/S0376-7388(02)00612-9
7 Zhang G, Lin L, Meng Q. Distillation of methanol-water solution in hollow fibers. Sep & Purif Technol , 2007, 56: 143-149
doi: 10.1016/j.seppur.2007.01.016
8 Zhang G, Lin L, Meng Q. Separation of alcohol-water solution by distillation through hollow fibers. Ind Eng Chem Res , 2007, 46: 7820-7825
doi: 10.1021/ie061611o
9 TreybalR E. Mass Transfer Operations, 3rd ed., McGrawHill, New York, 1980
10 Keller K H, Stein T R. A two-dimensional analysis of porous membrane transport. Math Biosci , 1967, 1: 421-437
doi: 10.1016/0025-5564(67)90012-0
11 Mahmud H, Kumar A, Narbaitz R M, Matsuura T. Highly VOC-selective hollow fiber membranes for separation by vapor permeation. J Membr Sci , 2000, 217: 99-116
12 Johnson D W, Semmens M J, Gulliver J S. Diffusive transport across unconfined hollow fiber membranes, J Membr Sci , 1997, 128: 67-81
doi: 10.1016/S0376-7388(96)00323-7
13 Kister H Z. Distillation Design. New York: McGraw-Hill, 1992
14 Sulzer Chemtech. Structural packings for distillation and absorption, Product Bulletin . 22.13.06.40-111, 00-70
15 Cussler E L. Diffusion: Mass transfer in fluid systems. London: Cambridge University Press, 1984
16 Yang D, Barbero R S, Devlin D J, Cussler E L, Colling C W, Carrera Martin E. Hollow fibers as structured packing for olefin/paraffin separations. J Membr Sci , 2006, 279: 61-69
doi: 10.1016/j.memsci.2005.11.033
17 Steiner L, Hartland S. A new type of agitated liquid/liquid extraction column with enhanced coalescence plates. Sep Sci Technol , 1980, 15: 907-923
doi: 10.1080/01496398008076277
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