A Study of Multiphase Flow and Heat Transfer in Proton Exchange Membrane Fuel Cells With Perforated Metal Gas Diffusion Layers

T. Berning, Shiro Tanaka
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Abstract

A numerical analysis of a proton exchange membrane fuel cell (PEMFC) that contains a perforated metal plate at the cathode side has been conducted. The model utilizes the Eulerian multi-phase approach to predict the occurrence and transport of liquid water inside the cell. The PEMFC that was modelled contained micro-channels at both anode and cathode side. Results suggest that despite the fact that the inlet gases are fully saturated (RH = 100%), the holes in the metal sheet remain in the single phase, and the predicted maximum current densities are accordingly high. The high thermal conductivity of the metal sheets result in only a moderate temperature increase in the cell, and the fuel cell membrane is predicted to be hydrated under all conditions investigated. The fact that the cathode channel and the holes in the metal sheet remain dry is attributed to the high pressure drop inside the flow channel.
多孔金属气体扩散层质子交换膜燃料电池的多相流动与传热研究
对阴极侧带有穿孔金属板的质子交换膜燃料电池(PEMFC)进行了数值分析。该模型利用欧拉多相法预测细胞内液态水的发生和输送。所模拟的PEMFC在阳极和阴极两侧都包含微通道。结果表明,尽管入口气体完全饱和(RH = 100%),但金属板上的孔仍然处于单相,因此预测的最大电流密度也很高。金属板的高导热性导致电池中温度的适度升高,并且预计燃料电池膜在所有研究条件下都是水合的。阴极通道和金属板上的孔保持干燥的原因是流道内的高压降。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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