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Parametric and optimization study of a PEM fuel cell performance using three-dimensional computational fluid dynamics model

机译:使用三维计算流体动力学模型对PEM燃料电池性能进行参数和优化研究

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摘要

A full three-dimensional, non-isothermal computational fluid dynamics model of a proton exchange membrane (PEM) fuel cell with straight flow field channels has been developed. This comprehensive model accounts for the major transport phenomena in a PEM fuel cell: convective and diffusive heat and mass transfer, electrode kinetics, and potential fields. The new feature of the algorithm developed in this work is its capability for accurate calculation of the local activation overpotentials, which in turn results in improved prediction of the local current density distribution. The model is shown to be able to understand the many interacting, complex electrochemical, and transport phenomena that cannot be studied experimentally. This model is used to study the effects of several operating, design, and material parameters on fuel cell performance. Detailed analyses of the fuel cell performance under various operating conditions have been conducted and examined. The analysis helped identifying critical parameters and shed insight into the physical mechanisms leading to a fuel cell performance under various operating conditions.
机译:已开发了具有直流场通道的质子交换膜(PEM)燃料电池的完整三维非等温计算流体动力学模型。这个综合模型解释了PEM燃料电池中的主要传输现象:对流和扩散传热与传质,电极动力学和势场。在这项工作中开发的算法的新功能是其能够准确计算局部激活超电势的能力,进而可以改善对局部电流密度分布的预测。该模型显示出能够理解许多无法通过实验研究的相互作用,复杂的电化学和传输现象。该模型用于研究几种运行,设计和材料参数对燃料电池性能的影响。已经对各种工况下的燃料电池性能进行了详细分析,并进行了检查。该分析有助于确定关键参数,并深入了解导致各种工作条件下燃料电池性能的物理机制。

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