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Performance evaluation of Enhanced Cross flow Split Serpentine Flow Field design for higher active area PEM fuel cells

机译:增强跨流量分裂蛇形流场设计的性能评价,用于更高有源区PEM燃料电池

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The present work aims to study the efficacy of the Enhanced Cross Flow Split Serpentine Flow Field (ECSSFF) design for higher active area fuel cells. It is carried out by simulating the fuel cells with active areas of 50 cm(2), 100 cm(2), 150 cm(2) and 200 cm(2) using ECSSFF design as cathode channel and parallel design as anode channel. Performance of these cells are also compared against the performance of cells with triple serpentine flow design on cathode side. The results demonstrate the superiority of ECSSFF for all active areas in terms of offering higher currents, lower pressure drop and higher power output. The percentage increase in the net power output with ECSSFF design over TSFF design increases from 4.5% to 13.5% with increase in cell area from 50 cm(2) to 200 cm(2). The percentage drop in net power density with increase in active area for ECSSFF design is almost 55% less compared to that with triple serpentine design.The study establishes that the ECSSFF is a potential flow field design to be considered for higher area fuel cells for large scale power production. (C) 2020 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:本作工作旨在研究增强的交叉流分裂蛇形流场(ECSSFF)设计对较高的有源区域燃料电池的功效。通过使用Ecssff设计为阴极通道和并联设计作为阴极通道和平行设计,通过模拟具有50cm(2),100cm(2),150cm(2)和200cm(2)的有源区域的燃料电池来进行。这些细胞的性能也与阴极侧的三蛇形流动设计进行了比较了细胞的性能。结果表明,在提供更高的电流,较低的压降和更高的功率输出方面,ECSSFF的优越性。通过TSFF设计与ECSSFF设计的净功率输出增加的百分比从4.5%增加到13.5%,细胞面积增加到50厘米(2)至200厘米(2)。与Triple Serpentine设计相比,ECSEF设计的活性面积增加净功率密度下降的百分比下降差距差异几乎55%。该研究确定了ECSFF是一个潜在的流场设计,可以考虑更高的区域燃料电池尺度电力生产。 (c)2020氢能源出版物LLC。 elsevier有限公司出版。保留所有权利。

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