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Carbon dioxide (hydrogen sulfide) membrane separations and WGS membrane reactor modeling for fuel cells.

机译:燃料电池的二氧化碳(硫化氢)膜分离和WGS膜反应器建模。

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Acid-gas removal is of great importance in many environmental or energy-related processes. Compared to current commercial technologies, membrane-based CO2 and H2S capture has the advantages of low energy consumption, low weight and space requirement, simplicity of installation/operation, and high process flexibility. However, the large-scale application of the membrane separation technology is limited by the relatively low transport properties.; In this study, CO2 (H2S)-selective polymeric membranes with high permeability and high selectivity have been studied based on the facilitated transport mechanism. The membrane showed facilitated effect for both CO2 and H2S. A CO2 permeability of above 2000 Barrers, a CO2/H2 selectivity of greater than 40, and a CO2/N2 selectivity of greater than 200 at 100--150°C were observed. As a result of higher reaction rate and smaller diffusing compound, the H2S permeability and H2S/H2 selectivity were about three times higher than those properties for CO2. The novel CO2-selective membrane has been applied to capture CO 2 from flue gas and natural gas. In the CO2 capture experiments from a gas mixture with N2 and H2, a permeate CO 2 dry concentration of greater than 98% was obtained by using steam as the sweep gas. In CO2/CH4 separation, decent CO 2 transport properties were obtained with a feed pressure up to 500 psia. With the thin-film composite membrane structure, significant increase on the CO2 flux was achieved with the decrease of the selective layer thickness.; With the continuous removal of CO2, CO2-selective water-gas-shift (WGS) membrane reactor is a promising approach to enhance CO conversion and increase the purity of H2 at process pressure under relatively low temperature. The simultaneous reaction and transport process in the countercurrent WGS membrane reactor was simulated by using a one-dimensional non-isothermal model. The modeling results show that a CO concentration of less than 10 ppm and a H2 recovery of greater than 97% are achievable from reforming syngases. In an experimental study, the reversible WGS was shifted forward by removing CO2 so that the CO concentration was significantly decreased to less than 10 ppm. The modeling results agreed well with the experimental data.
机译:在许多与环境或能源相关的过程中,去除酸气至关重要。与目前的商业技术相比,基于膜的CO2和H2S捕集具有以下优势:能耗低,重量和空间要求低,安装/操作简单以及工艺灵活性高。然而,膜分离技术的大规模应用受到相对较低的运输性能的限制。在这项研究中,基于便利的传输机理,已经研究了具有高渗透性和高选择性的CO2(H2S)选择性聚合物膜。该膜对CO2和H2S均显示出促进作用。在100--150°C下观察到的CO2渗透率高于2000 Barrers,CO2 / H2选择性大于40,CO2 / N2选择性大于200。由于较高的反应速率和较小的扩散化合物,H2S的渗透性和H2S / H2的选择性约为CO2的三倍。新型的CO2选择性膜已被应用于从烟气和天然气中捕获CO 2。在从含N2和H2的气体混合物中捕获CO2的实验中,通过使用蒸汽作为吹扫气,获得的渗透性CO 2干燥浓度大于98%。在CO2 / CH4分离中,进料压力高达500 psia,获得了不错的CO 2传输性能。对于薄膜复合膜结构,随着选择性层厚度的减小,CO2通量显着增加。随着CO2的不断去除,CO2选择性水煤气变换(WGS)膜反应器是一种在较低的工艺压力下提高CO转化率并提高H2纯度的有前途的方法。利用一维非等温模型模拟了逆流WGS膜反应器中的同时反应和传输过程。模拟结果表明,通过重整合成气可实现低于10 ppm的CO浓度和高于97%的H2回收率。在一项实验研究中,通过去除CO2使可逆WGS向前移动,以使CO浓度显着降低至小于10 ppm。建模结果与实验数据吻合良好。

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