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Modeling of steam permeation through the high temperature proton-Conducting ceramic membranes

机译:高温质子导电陶瓷膜蒸汽渗透的建模

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The BaCeO3-based perovskite oxide can be applied as a steam-permeable membrane due to their noticeable mixed oxygen ion and proton conducting properties. In this article, a transient model of the steam permeation through the BaCe0.9Y0.1O3- perovskite membrane at elevated temperatures has been developed with the Poisson-Nernst-Planck equations for analyzing the steam permeation process, in which the distribution of charged defects in the membrane is carefully considered. The effects of the operating temperature, the membrane thickness, the steam partial pressure, and the electric potential difference between two membrane sides during the steam permeation have been simulated and discussed. The modeling results indicate there exists a maximum value of the spontaneous electric potential difference with the temperature rise and the external electric potential can obviously increase the steam flux. The model is validated using the experimental results from literature under steady state operational conditions. (c) 2018 American Institute of Chemical Engineers AIChE J, 65: 777-782, 2019
机译:由于其明显的混合氧离子和质子传导性能,可以将BaceO3的钙钛矿氧化物作为蒸汽渗透膜施加。在本文中,通过Bace0.9y0.1O3-Perovskite膜在升高温度下的瞬态模型已经采用泊松 - 内部普通方程式开发,用于分析蒸汽渗透过程,其中带电缺陷的分布薄膜被仔细考虑。模拟并讨论了在蒸汽渗透过程中的两个膜侧面的操作温度,膜厚度,蒸汽分压和电势差的影响。建模结果表明,与温度升高的自发电位差存在最大值,外部电位明显增加蒸汽通量。使用稳态运行条件下的文献的实验结果验证该模型。 (c)2018美国化学工程师研究所Aiche J,65:777-782,2019

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