气体分离用碳膜:发展研究

A.S. Damle , S.K. Gangwal, V.K. Venkataraman
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引用次数: 21

摘要

孔径为0.2 μm和1.0 μm的碳膜在商业上可用于液体微过滤应用。这些膜可以通过提供具有1至10nm范围孔隙的气体分离层来修饰气体分离应用。有了这样的孔隙,气体通过克努森扩散分离,单个气体的渗透速率与渗透物质分子量的平方根的比值成反比。本文介绍了从各种有机聚合物前体开始沉积合适层的一些技术。原位聚合技术被认为是最有前途的,用该技术制备的膜样品进行的纯组分测试表明,该技术具有克努森扩散行为。混合气体渗透试验得到的气体分离因子与气体温度和压力有很大关系,表明高压条件下存在明显的粘性流动。
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Carbon membranes for gas separation: Developmental studies

Carbon membranes with 0.2 and 1.0 μm pore sizes are commercially available for liquid microfiltration applications. These membranes may be modified for gas separation applications by providing a gas separation layer with pores in the 1 to 10 nm range. With such pores, gases are separated by Knudsen diffusion with an individual gas species permeation rate inversely proportional to the ratio of the square root of the molecular weight of the permeating species. This paper describes some of the techniques used for depositing a suitable layer starting with various organic polymeric precursors. The in situ polymerization technique was found to be the most promising, and pure component tests with membrane samples prepared with this technique indicated Knudsen diffusion behaviour. The gas separation factors obtained by mixed-gas permeation tests were found to depend strongly on gas temperature and pressure indicating significant viscous flow at high-pressure conditions.

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