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Optimization of gas diffusion layer in high temperature PEMFC with the focuses on thickness and porosity

机译:高温PEMFC气体扩散层的优化与厚度和孔隙率

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摘要

Wide ranges of thickness (e.g. 100-400 mu m) and porosity (e.g. 30-70%) of gas diffusion layer (GDL) in a high temperature proton exchange membrane fuel cell (HT-PEMFC) are available in the literature. However, the effects of GDL porosity and thickness on electron conduction and gas distribution uniformity (under the rib and under the channel) are unclear. In this study, a numerical non-isothermal 3D model was developed. After model validation, parametric analyses were performed to investigate the effects of thickness and porosity on flow uniformity (under the rib and under the channel), diffusion flux and ohmic resistance. It is found that both the flow uniformity and ohmic resistance increase with increasing thickness and porosity. However, the thickness and porosity have opposite influence on diffusion flux, which decreases with increasing GDL thickness but increases with increasing porosity. Unlike the previous research suggesting thin GDL with high porosity, optimal GDL thickness and porosity are found in the present study. The appropriate GDL thicknesses for anode and cathode are 80-120 mu m and 140-170 mu m respectively while the optimal value for GDL porosity is 35-45%. This study clearly demonstrates that we can further achieve a performance increment of 7.7% by carefully controlling the thickness and porosity of GDL.
机译:在文献中,可以获得高温质子交换膜燃料电池(HT-PEMFC)中的气体扩散层(GDL)的宽范围(例如100-400μm)和孔隙率(例如30-70%)。然而,GDL孔隙率和厚度对电子传导和气体分布均匀性的影响(肋骨下方和通道下方)尚不清楚。在该研究中,开发了一种数值非等温3D模型。在模型验证之后,进行参数分析以研究厚度和孔隙率在流动均匀性上的影响(在肋骨下方和通道下方),扩散通量和欧姆抗性。发现流动均匀性和欧姆电阻随着厚度和孔隙率的增加而增加。然而,厚度和孔隙率对扩散通量的影响相反,这随着GDL厚度的增加而降低,但随着孔隙率的增加而增加。与先前的研究不同,表明具有高孔隙率的薄GDL,本研究发现了最佳GDL厚度和孔隙率。阳极和阴极的适当GDL厚度分别为80-120μm和140-170μm,而GDL孔隙率的最佳值为35-45%。本研究清楚地表明,通过小心地控制GDL的厚度和孔隙,我们可以进一步实现7.7%的性能增量。

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