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Numerical study of reactant gas transport phenomena and cell performance of proton exchange membrane fuel cells

机译:质子交换膜燃料电池反应气体输运现象及电池性能的数值研究

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摘要

A two-dimensional numerical model has been established to investigate the performance of the PEM fuel cells. Parameters used in the analysis include the porosity and thickness of the gas diffuser layer (GDL). Results show that increasing the porosity of gas diffusion layer causes the increasing of mass transfer of fuel and air and results in a higher reaction rate. Therefore, a better performance of the fuel cell and more fuel consumption rate are observed. It is also demonstrated that the performance of the fuel cell increases with a decrease in the thickness of gas diffusion layer. The effects of liquid water condensation and flow directions of fuel and air are also considered in this analysis. Predicted results show that the performance of the PEM fuel cell without consideration of liquid water effect is always higher than that with consideration of liquid water effect. In addition, the performance of fuel cell with co-flow pattern of fuel and air is larger than that with counter flow.
机译:已经建立了二维数值模型来研究PEM燃料电池的性能。分析中使用的参数包括气体扩散层(GDL)的孔隙率和厚度。结果表明,增加气体扩散层的孔隙率会导致燃料和空气的传质增加,并导致更高的反应速率。因此,观察到燃料电池的更好的性能和更多的燃料消耗率。还证明了燃料电池的性能随着气体扩散层厚度的减小而增加。在此分析中还考虑了液态水冷凝的影响以及燃料和空气的流向。预测结果表明,不考虑液态水效应的PEM燃料电池的性能始终高于考虑液态水效应的PEM燃料电池的性能。另外,具有燃料和空气的并流模式的燃料电池的性能大于具有逆流的燃料电池的性能。

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