CO2N2混合气体在硅橡胶膜中的渗透性能表征

Hisham M. Ettouney, Ghazi Al-Enezi, S.E.M. Hamam , R. Hughes
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引用次数: 10

摘要

测定了硅橡胶膜对CO2N2混合气体的分离特性。分析是作为原料气的组成、流量和压力的函数进行的。给出了组分渗透率和分离系数随上述参数变化的结果。采用完全混合模型计算组分渗透率。在研究压力范围内的数据分析表明,纯CO2气体在硅橡胶中的渗透系数比纯N2气体高15倍。对于混合气体,这种行为完全改变,在低进料压力和进料流中低CO2摩尔分数下计算的分离因子比纯气体的分离因子低2到3倍。在较高的进料压力和进料流中较高的CO2摩尔分数下,上述行为被逆转;混合气体的分离系数现在比纯气体的分离系数高。对比硅橡胶膜和醋酸纤维素膜对CO2N2混合气体的渗透特性,发现两种气体的渗透率和分离因子的范围和数值相近。然而,在纯气体渗透的情况下,醋酸纤维素膜的分离系数要高得多。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Characterization of the permeation properties of CO2N2 gas mixtures in silicone rubber membranes

The separation characteristics of silicone rubber membranes are determined for CO2N2 gas mixtures. The analysis is performed as a function of composition, flow rate and pressure of the feed gas. Results are presented in terms of the variation in component permeability and separation factor as a function of the above parameters. Component permeabilities are calculated using the complete mixing model. Data analysis over the studied pressure range shows that the permeability coefficient of pure CO2 gas in silicone rubber is 15 times higher than that of pure N2 gas. This behaviour is completely altered for a mixture of the gases, where the calculated separation factors at low feed pressures and low CO2 mole fractions in the feed stream are two- to three-fold lower than the separation factors for the pure gases. At higher feed pressures and high CO2 mole fractions in the feed stream, the above behaviour is reversed; the separation factors for the gas mixture are now higher than those for the pure gases. Comparison of the permeation characteristics of silicone rubber and cellulose acetate membranes for CO2N2 gas mixtures shows similar ranges and values for the gas permeabilities and separation factors. However, much higher separation factors are obtained for the cellulose acetate membrane in the case of pure gas permeation.

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