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Optimization of blocked flow field performance of proton exchange membrane fuel cell with auxiliary channels

机译:辅助通道质子交换膜燃料电池阻塞流场性能优化

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摘要

The flow field optimization design is one of the important methods to improve the performance of proton exchange membrane fuel cell (PEMFC). In this study, a new structure with staggered blocks on the parallel flow channels of PEMFC and auxiliary flow channels under the ribs is proposed. Through numerical calculation method, the effect of blocks auxiliary flow field (BAFF) on pressure drop, reactant distribution and liquid water removal in the fuel cells are investigated. The results show that when the operating voltage is 0.5 V, the current density of BAFF is 21.74 higher than that of the straight parallel flow field (SPFF), and the power density reaches 0.65 W cm~(-2). BAFF improves performance by equalizing the pressure drop across sub-channels, promoting the uniform distribution of reactant, and enhancing transport across the ribs. In addition, through parameter analysis, it is found that BAFF can discharge liquid water in time at the conditions of high humid-ification, high current density and low temperature, which ensures the output performance of the fuel cell and improves the durability of the fuel cell. This paper provides new ideas for the improvement of PEMFC flow field design, which is beneficial to the development of PEMFC with high current density.
机译:流场优化设计是提高质子交换膜燃料电池(PEMFC)性能的重要方法之一。该文提出了一种在质子交换膜燃料电池平行流道上交错块体和肋下辅助流道的新结构。通过数值计算方法,研究了块辅助流场(BAFF)对燃料电池压降、反应物分布和液态水去除的影响。结果表明:当工作电压为0.5 V时,BAFF的电流密度比直线平行流场(SPFF)高21.74%,功率密度达到0.65 W cm~(-2);BAFF 通过平衡子通道的压降、促进反应物的均匀分布和增强跨肋的传输来提高性能。此外,通过参数分析发现,BAFF在高加湿、高电流密度、低温条件下都能及时排出液态水,保证了燃料电池的输出性能,提高了燃料电池的耐久性。本文为PEMFC流场设计的改进提供了新的思路,有利于高电流密度PEMFC的发展。

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