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Experimental performance evaluation of a combustion heat-assisted catalytic flat plate fuel reformer for fuel cell grade hydrogen

机译:燃料电池级氢气燃烧热辅助催化平板燃料重整器的实验性能评估

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Combining exothermic catalytic combustion heat on one side of a very high heat convective thin flat plate and endothermic catalytic reforming reaction on the other side, catalytic flat plate provides excellent heat integration into a compact fuel reformer system. Based on a two-dimensional computational fluid dynamics (CFD) model simulation results, a real world compact catalytic flat plate fuel reformer was built and experimentally evaluated its performance, for generating fuel cell grade hydrogen, in an actual high temperature polymer electrolyte membrane (PEM) fuel cell system. The two-dimensional CFD model helps to optimize various design parameters necessary to build the actual compact reformer and eliminated the uncertainties of heat and mass transfer coefficient values arise in one-dimensional CFD model. The performance of the compact catalytic flat plate fuel reformer was evaluated using a 5-cell high temperature PEM fuel cell stack at 160 degrees C with reformate fed directly from the reformer to the anode stream of fuel cell stack. For performance comparison, a 5-cell high temperature PEM fuel cell stack was first evaluated with industry-standard pure hydrogen (0% CO) as well as with various percentage of CO mixed hydrogen (2% CO and 5% CO). Experimental results showed that if the average cell voltage drop within 0.03-0.05 mV of a 5-cell high temperature PEM fuel cell stack would be acceptable then the reformate can be used at 160 degrees C instead of pure hydrogen. The experimental results also indicated that the reformer will be able to provide actual fuel cell grade hydrogen that could be directly pumped from the compact catalytic flat plate fuel reformer into the high temperature PEM fuel cell stack. Copyright (C) 2015, Hydrogen Energy Publications, LLC. Published by Elsevier Ltd. All rights reserved.
机译:将极高热对流薄平板的一侧放热催化燃烧热与另一侧吸热催化重整反应结合在一起,催化平板可将出色的热量整合到紧凑的燃料重整系统中。基于二维计算流体动力学(CFD)模型模拟​​结果,构建了一个现实世界的紧凑型催化平板燃料重整器,并通过实验评估了其在实际高温聚合物电解质膜(PEM)中产生燃料电池级氢气的性能)燃料电池系统。二维CFD模型有助于优化构建实际紧凑型重整器所需的各种设计参数,并消除一维CFD模型中出现的传热系数和传质系数值的不确定性。使用重整产物直接从重整器进料到燃料电池堆阳极流的重整产物,在160摄氏度下使用5芯高温PEM燃料电池堆评估了紧凑型催化平板燃料重整器的性能。为了进行性能比较,首先使用行业标准的纯氢(0%CO)以及各种百分比的CO混合氢(2%CO和5%CO)对5芯高温PEM燃料电池堆进行评估。实验结果表明,如果5芯高温PEM燃料电池组的平均电池电压降落在0.03-0.05 mV以内是可以接受的,则重整产品可在160摄氏度下代替纯氢使用。实验结果还表明,重整炉将能够提供实际的燃料电池级氢气,可以将其直接从紧凑型催化平板燃料重整炉中泵送到高温PEM燃料电池堆中。 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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