Gas Permeation Modeling through a Multilayer Hollow Fiber Composite Membrane

A. E. Amooghin, S. Mirrezaei, Hamidreza Sanaeepur, M. Sharifzadeh
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引用次数: 9

Abstract

In this study, a time-dependent 2D axisymmetric model of a multilayer hollow fiber composite membrane for gas separation is proposed. In spite of the common multilayer membranes, which a dense layer coated on a porous support layer and subjected into the feed stream, here, the porous support is exposed to the feed gas. In this regard, the governing equations of species transport are developed for model domains and then solved by a finite element method (FEM). Gas permeation properties of pure H2 , O2 , N2 , CH4 , CO2 and He are calculated and validated with experimental data with good conformity. Obtained results indicate that with increasing the temperature, the permeability and diffusion coefficient increased while the solubility decreased. Moreover, the permeability and solubility variations with temperature for a heavier gas, CO2 , were higher than those for the lighter ones, while the diffusion coefficient variation with temperature for the lither gas, such as He, was more than the heavier ones. By increasing the CO2 feed stream temperature from 25 to 75°C, its permeability and diffusion coefficient increased respectively from 245 to 307 Barrer and from 205 to 282×10-12 m2 /s, while the CO2 solubility decreased from 0.85 to 0.76 cm3.cm3.bar1. In the case of He and for the same temperature variation range, its permeability and diffusion coefficient increased respectively from 39 to 42 Barrer and from 2180 to 2834 10-12 m2 /s, while the solubility of He decreased from 0.013 to 0.011 cm3 .cm-3.bar-1.
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多层中空纤维复合膜的气体渗透模拟
本文建立了多层中空纤维复合气体分离膜的二维时变轴对称模型。尽管常见的多层膜,其致密层涂覆在多孔支撑层上并置于进料流中,但在这里,多孔支撑暴露于原料气中。为此,建立了模型域的物种输运控制方程,并用有限元法求解。计算了纯H2、O2、N2、CH4、CO2和He的气体渗透特性,并与实验数据进行了验证,结果吻合较好。结果表明,随着温度的升高,渗透系数和扩散系数增大,溶解度降低。此外,较重气体CO2的渗透率和溶解度随温度的变化大于较轻气体,而较轻气体(如He)的扩散系数随温度的变化大于较重气体。将CO2进料流温度从25℃提高到75℃,其渗透系数和扩散系数分别从245 ~ 307 Barrer和205 ~ 282×10-12 m2 /s增加,CO2溶解度从0.85 ~ 0.76 cm3.cm3.bar1下降。在相同温度变化范围内,He的渗透率和扩散系数分别从39 ~ 42 Barrer和2180 ~ 2834 10 ~ 12 m2 /s增加,而He的溶解度从0.013 ~ 0.011 cm3 .cm-3 bar-1下降。
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来源期刊
Journal of Membrane Science and Research
Journal of Membrane Science and Research Materials Science-Materials Science (miscellaneous)
CiteScore
4.00
自引率
0.00%
发文量
1
审稿时长
8 weeks
期刊介绍: The Journal of Membrane Science and Research (JMSR) is an Open Access journal with Free of Charge publication policy, which provides a focal point for academic and industrial chemical and polymer engineers, chemists, materials scientists, and membranologists working on both membranes and membrane processes, particularly for four major sectors, including Energy, Water, Environment and Food. The journal publishes original research and reviews on membranes (organic, inorganic, liquid and etc.) and membrane processes (MF, UF, NF, RO, ED, Dialysis, MD, PV, CDI, FO, GP, VP and etc.), membrane formation/structure/performance, fouling, module/process design, and processes/applications in various areas. Primary emphasis is on structure, function, and performance of essentially non-biological membranes.
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