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Multiphase Transport Phenomena in the Diffusion Zone of a PEM Fuel Cell

机译:PEM燃料电池扩散区中的多相输运现象

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摘要

In this paper, a thorough model for the porous diffusion layer of a polymer electrolyte fuel cell (PEFC) is presented that accounts for multicomponent species diffusion, transport and formation of liquid water, heat transfer, and electronic current transfer. The governing equations are written in nondimensional form to generalize the results. The set of partial differential equations is solved based on the finite volume method. The effect of downscaling of channel width, current collector rib width, and diffusion layer thickness on the performance of polymer electrolyte membrane (PEM) fuel cells is systematically investigated, and optimum geometric length ratios (i.e., optimum diffusion layer thicknesses, optimum channel, and rib widths) are identified at decreasing length scales. A performance number is introduced to quantify losses attributed to mass transfer, the presence of liquid water, charge transfer, and heat transfer. Based on this model it is found that microchannels (e.g., as part of a tree network channel system in a double-staircase PEM fuel cell) together with diffusion layers that are thinner than conventional layers can provide substantially improved current densities compared to conventional channels with diameters on the order of 1 mm, since the transport processes occur at reduced length scales. Possible performance improvements of 29, 53, and 96 % are reported.
机译:在本文中,提出了用于聚合物电解质燃料电池(PEFC)的多孔扩散层的详尽模型,该模型说明了多组分物质的扩散,液态水的传输和形成,传热和电子流的传递。控制方程以无量纲形式编写,以概括结果。基于有限体积法求解偏微分方程组。系统研究了通道宽度,集电器肋宽度和扩散层厚度的缩减对聚合物电解质膜(PEM)燃料电池性能的影响,并确定了最佳的几何长度比(即,最佳的扩散层厚度,最佳的通道和肋骨宽度)以递减的长度比例进行标识。引入性能数字来量化归因于传质,液态水的存在,电荷传递和热传递的损失。基于此模型,发现微通道(例如,作为双楼梯PEM燃料电池中的树形网络通道系统的一部分)与比常规层薄的扩散层相比,可提供比传统通道显着改善的电流密度。由于运输过程以减小的长度尺度发生,因此直径约为1mm。据报告,性能可能会提高29%,53%和96%。

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