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Hydrogen production in membrane microreactor using chemical looping combustion: A dynamic simulation study

机译:膜微反应器中使用化学循环燃烧制氢的动力学模拟研究

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The current work presents modeling and simulation of a membrane micro-fixed bed reactor to produce and separate hydrogen. In contrast to commonly hydrogen production in chemical looping reforming (CLR), hydrogen is produced here in a reduction cycle of chemical looping combustion without employing steam. After validating the model with experimental data found in the literature, the adapted mathematical model was employed to study the performance of membrane microreactor. The results show that employing membrane assisted chemical looping combustion for reduction cycle, not only separate the valuable hydrogen, but it also increases total hydrogen production. Two dimensional model shows that diffusion fluxes, both axial and radial are important in the microreactor. Temperature analysis shows that total hydrogen production is decreased by increasing temperature. By contrary, permeate flux passing through the membrane is increased at elevated temperatures. More hydrogen may be produced by using a membrane with higher permeability and employing a high surface to volume membrane microreactor. (C) 2016 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:当前的工作提出了膜微固定床反应器生产和分离氢的建模和仿真。与通常在化学回路重整(CLR)中产生氢气相反,此处氢气在化学回路燃烧的还原循环中不使用蒸汽而产生。在用文献中的实验数据验证该模型后,采用适应的数学模型来研究膜微反应器的性能。结果表明,采用膜辅助化学循环燃烧进行还原循环,不仅可以分离出有价值的氢气,而且还可以增加总氢气产量。二维模型表明,轴向和径向扩散通量在微反应器中都很重要。温度分析表明,总氢气产量随温度升高而降低。相反,在升高的温度下,穿过膜的渗透通量增加。通过使用具有较高渗透率的膜并使用高表面积体积的膜微反应器,可以生产更多的氢。 (C)2016氢能出版物有限公司。由Elsevier Ltd.出版。保留所有权利。

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