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Hydrogen production from ammonia decomposition over a commercial Ru/Al2O3 catalyst in a microchannel reactor: Experimental validation and CFD simulation

机译:在微通道反应器中通过商品化Ru / Al2O3催化剂在氨气中分解制氢:实验验证和CFD模拟

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In this work, an integrated experimental and CFD modelling technique was used to evaluate a microchannel reactor producing hydrogen from ammonia decomposition using a commercial Ru/Al2O3 catalyst. The microchannel reactor performance was first assessed in a series of experiments varying the reaction temperature (723-873 K) and ammonia flow rates (100-500 Nml min(-1)) at atmospheric pressure. A global rate expression based on Temkin-Pyzhev kinetics that accurately predicts the entire experimental operating space was established using a model-based technique with parameter refinement and estimation. The kinetic model provided the reaction source term for subsequent CFD simulations aiming to obtain a more fundamental understanding of the reaction-coupled transport phenomena within the microchannel reactor. The transport processes and reactor performance were discussed in detail using velocity, temperature, and species concentration profiles. Finally, the influence of mass transport limitations within the various regions of the microchannel reactor was evaluated and discussed by means of dimensionless numbers vis-a-vis Damkohler and Fourier numbers. Overall, results presented in this paper provide valuable data for the efficient design of ammonia-fuelled microchannel reactors for hydrogen generation aimed at portable and distributed fuel cell applications. Copyright (C) 2015, Hydrogen Energy Publications, LLC. Published by Elsevier Ltd. All rights reserved.
机译:在这项工作中,使用集成的实验和CFD建模技术评估使用工业Ru / Al2O3催化剂由氨分解产生氢气的微通道反应器。首先在一系列实验中评估微通道反应器的性能,这些实验在大气压下改变反应温度(723-873 K)和氨流速(100-500 Nml min(-1))。使用具有参数细化和估计的基于模型的技术,建立了基于Temkin-Pyzhev动力学的全局速率表达式,该表达式可以准确地预测整个实验操作空间。动力学模型为后续的CFD模拟提供了反应源项,旨在获得对微通道反应器内反应耦合的传输现象的更基本的了解。使用速度,温度和物质浓度曲线详细讨论了运输过程和反应器性能。最后,通过相对于Damkohler和Fourier数的无量纲数,评估和讨论了微通道反应器各个区域内传质限制的影响。总体而言,本文介绍的结果为针对便携式和分布式燃料电池应用的氨燃料微通道反应器高效设计制氢提供了有价值的数据。 Hydrogen Energy Publications,LLC版权所有(C)2015。由Elsevier Ltd.出版。保留所有权利。

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