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Computational fluid dynamics modeling of polymer electrolyte membrane fuel cells

机译:聚合物电解质膜燃料电池的计算流体动力学建模

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摘要

A detailed steady-state isothermal two-dimensional model of a proton exchange membrane fuel cell has been developed. A finite element method was used to solve this multi-component transport model coupled with flow in porous medium, charge balance, electrochemical kinetics, and a rigorous water balance in the membrane. The model-predicted fuel cell performance curves are compared with published experimental results and a good agreement was found. The complex water balance in the membrane was investigated and the operating conditions where the membrane becomes dehydrated were identified. The effects of channel width and bipolar plate shoulder dimensions, porosity, and the relative humidity of the inlet streams on the fuel cell performance are evaluated. It was found that smaller width channels and bipolar plate shoulders were required for high current density operations. As the electrode area under the bipolar plate shoulder increases, the fuel cell benefits more from higher porosity electrodes. The anode gas stream's relative humidity was found to be more critical for fuel cell performance than the cathode gas relative humidity.
机译:已经开发了质子交换膜燃料电池的详细的稳态等温二维模型。使用有限元方法来解决此多组分传输模型,并结合多孔介质中的流动,电荷平衡,电化学动力学和膜中严格的水平衡。将模型预测的燃料电池性能曲线与已发表的实验结果进行比较,发现了很好的一致性。研究了膜中复杂的水平衡,并确定了膜脱水的操作条件。评估了通道宽度和双极板肩尺寸,孔隙率以及进气流的相对湿度对燃料电池性能的影响。已经发现,高电流密度操作需要较小宽度的通道和双极板肩。随着双极板肩下电极面积的增加,燃料电池将受益于更高孔隙率的电极。发现阳极气流的相对湿度对燃料电池的性能比阴极气流的相对湿度更为关键。

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