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Effects of flow distributor geometry and diffusion layer porosity on reactant gas transport and performance of proton exchange membrane fuel cells

机译:流量分配器的几何形状和扩散层孔隙度对反应气体传输和质子交换膜燃料电池性能的影响

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摘要

A study has been conducted on the effects of flow distributor and diffusion layer geometries and morphologies on the transport phenomena of reactant gas from flow channels to gas diffuser, and on the performance of a proton exchange membrane fuel cell. The emphasis of the analysis is placed on the effects of the cross-section of the channel of the anode flow distributor and the porosity of the gas-diffusion layer. By applying a two-dimensional mass transport model, the effects of the channel width fraction, λ = l_c/l_b, the channel number, N, the porosity of the diffuser layer, ε, and the surface overpotential of the catalyst layer,η, on the resultant current density are investigated. The cell performance is evaluated by the predicted voltage―current density curves. It is disclosed that an increase in either λ, N or ε may lead to a better cell performance. At relatively low overpotential, better uniformity in current density distribution along the width of the cell (x-direction) can be attained. Based on the present results, a correlation of overpotentials is proposed, namely, η_(cr) =0.165λ~(0.0935) N~(0.2033)ε~(0.0856), which may serve as a guideline to justify the validity of a simplified one-dimensional model.
机译:已经进行了关于流量分配器和扩散层的几何形状和形态对反应气体从流动通道向气体扩散器的传输现象的影响以及质子交换膜燃料电池的性能的研究。分析的重点放在阳极流量分配器的通道横截面和气体扩散层孔隙率的影响上。通过应用二维质量传输模型,通道宽度分数λ= l_c / l_b,通道数N,扩散层的孔隙率ε和催化剂层的表面超电势η的影响,研究了由此产生的电流密度。通过预测的电压-电流密度曲线评估电池性能。公开了增加λ,N或ε可以导致更好的电池性能。在相对较低的过电势下,沿电池宽度(x方向)可获得更好的电流密度分布均匀性。在此基础上,提出了超电势的相关性,即η_(cr)=0.165λ〜(0.0935)N〜(0.2033)ε〜(0.0856),可作为简化简化方法有效性的指导。一维模型。

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