A mass transfer model for pure alcoholic permeation through the PDMS membrane

被引:2
作者
Mafi, Amirhossein [1 ]
Raisi, Ahmadreza [1 ,2 ]
Hatam, Mohsen [1 ,3 ]
Aroujalian, Abdolreza [1 ,2 ]
机构
[1] Amirkabir Univ Technol, Dept Chem Engn, Tehran Polytech, Tehran, Iran
[2] Amirkabir Univ Technol, Food Proc Engn & Biotechnol Res Ctr, Tehran Polytech, Tehran, Iran
[3] Res Inst Mech, Shiraz, Iran
关键词
Finite element; Mass transfer modeling; Solution-diffusion mechanism; Pervaporation; Free volume theory; SOLUTION-DIFFUSION MODEL; ETHANOL-WATER MIXTURES; AROMA COMPOUNDS RECOVERY; FREE-VOLUME THEORY; HYDROPHOBIC PERVAPORATION; AQUEOUS-SOLUTIONS; ORGANIC-COMPOUNDS; SEPARATION; PREDICTION; TRANSPORT;
D O I
10.1080/19443994.2013.836996
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
This work focuses on the modeling of mass transfer in the pure compound pervaporation through hydrophobic membranes. For this purpose, a mathematical predictive model was established based on the solution-diffusion mechanism. In the sorption step, the Flory-Huggins theory was applied to predict the amount of component absorbed into the membrane. In the diffusion step, the generalized Fick's law with a constant diffusion coefficient and a concentration/temperature-dependent diffusion coefficient was employed to describe the component diffusion across the polydimethylsiloxane (PDMS) membrane. The concentration/temperature-dependent diffusion coefficient was determined using Duda's free volume theory. In order to solve the resulting nonlinear transport equations, both finite difference (FD) and finite element (FE) methods were employed. The proposed model enables to predict the permeation flux as well as the concentration, temperature, and diffusion coefficient profiles inside the membrane. The model was then validated using the experimental data obtained from the pervaporative process of pure substance with the PDMS membrane. The results showed that although both FD and FE approaches were able to solve the dominant equations with appropriate accuracy. The modeling case II was capable of predicting the permeation flux for systems of pure ethanol and isobutanol, respectively. Finally, the effect of feed temperature on the permeation flux was investigated.
引用
收藏
页码:7628 / 7636
页数:9
相关论文
共 32 条
[1]   Recovery of volatile aroma components from orange juice by pervaporation [J].
Aroujalian, Abdolreza ;
Raisi, Ahmadreza .
JOURNAL OF MEMBRANE SCIENCE, 2007, 303 (1-2) :154-161
[2]   Pervaporation of a model apple juice aroma solution: Comparison of membrane performance [J].
Borjesson, J ;
Karlsson, HOE ;
Tragardh, G .
JOURNAL OF MEMBRANE SCIENCE, 1996, 119 (02) :229-239
[3]  
Flory J. P., 1953, PRINCIPLES POLYM CHE
[4]   PREDICTION OF POLYMER-SOLVENT DIFFUSION BEHAVIOR USING FREE-VOLUME THEORY [J].
HONG, SU .
INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH, 1995, 34 (07) :2536-2544
[5]   A Modified Solution-Diffusion Model and Its Application in the Pervaporation Separation of Alkane/Thiophenes Mixtures with PDMS Membrane [J].
Huang, Junqi ;
Li, Jiding ;
Zhan, Xia ;
Chen, Cuixian .
JOURNAL OF APPLIED POLYMER SCIENCE, 2008, 110 (05) :3140-3148
[6]   Pervaporation dehydration of ethanol-water mixtures with chitosan/hydroxyethylcellulose (CS/HEC) composite membranes I. Effect of operating conditions [J].
Jiraratananon, R ;
Chanachai, A ;
Huang, RYM ;
Uttapap, D .
JOURNAL OF MEMBRANE SCIENCE, 2002, 195 (02) :143-151
[7]   THEORY OF REVERSE-OSMOSIS AND SOME OTHER MEMBRANE PERMEATION OPERATIONS [J].
LEE, CH .
JOURNAL OF APPLIED POLYMER SCIENCE, 1975, 19 (01) :83-95
[8]   Scale-up of pervaporation for the recovery of natural aroma compounds in the food industry Part 2:: optimisation and integration [J].
Lipnizki, F ;
Olsson, J ;
Trägårdh, G .
JOURNAL OF FOOD ENGINEERING, 2002, 54 (03) :197-205
[9]   Modelling of pervaporation:: Models to analyze and predict the mass transport in pervaporation [J].
Lipnizki, F ;
Trägårdh, G .
SEPARATION AND PURIFICATION METHODS, 2001, 30 (01) :49-125
[10]   Simulation and process design of pervaporation plate-and-frame modules to recover organic compounds from waste water [J].
Lipnizki, F ;
Field, RW .
CHEMICAL ENGINEERING RESEARCH & DESIGN, 1999, 77 (A3) :231-240