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OXYGEN TRANSPORT RESISTANCES INDUCED BY RIB/CHANNEL GEOMETRY

机译:肋骨/通道几何形状引起的输氧阻力

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The influences of rib/channel geometries on the oxygen transport resistances in a polymer electrolyte fuel cell (PEFC) were investigated through experimental and numerical analyses. A limiting current method was used for evaluating the oxygen transport resistances, which could be separated into two parts. One was macro transport resistances, which were defined as pressure-dependent resistances and the other was micro transport resistances, which were defined as pressure- independent resistances. Both of resistances significantly increased with wider rib/channel widths. Also, the increase in micro transport resistances was more significant than that in macro transport resistances in the lower Platinum (Pt) loading. The numerical model implementing oxygen transport resistances near Pt surface was well correlated with experimental results. The validation results revealed that both in-plane and through-plane reaction distribution became inhomogeneous due to the oxygen concentration distribution induced by rib/channel geometry, resulting in the increase in both oxygen transport resistances. The through-plane reaction distribution also suggested that the micro transport resistances increased due to larger oxygen flux per Pt surface area under low Pt loading. Moreover, the model was applied to verify the impact of oxygen transport resistances on cell performance with lower Pt loading. It was found that the increase in oxygen transport resistances due to larger oxygen flux per Pt surface area lowered the cell performance under high current density operation.
机译:通过实验和数值分析研究了肋/通道的几何形状对聚合物电解质燃料电池(PEFC)中的氧输运阻力的影响。使用极限电流法评估氧气的传输阻力,可以将其分为两部分。一个是宏观传输电阻,定义为压力相关电阻,另一个是微传输电阻,定义为压力独立电阻。随着肋/通道宽度的增加,两个电阻都显着增加。同样,在较低的铂(Pt)负载下,微输运阻力的增加比宏观输运阻力的增加更为显着。在Pt表面附近实现氧气传输阻力的数值模型与实验结果紧密相关。验证结果表明,由于肋/通道几何结构引起的氧浓度分布,面内和面内反应分布均变得不均匀,从而导致氧传输阻力均增加。贯穿平面的反应分布还表明,由于在低Pt负载下每Pt表面积的氧气通量更大,因此微传输阻力增加。此外,该模型用于验证氧气输送阻力对较低Pt负载下电池性能的影响。已经发现,由于每Pt表面积上更大的氧气通量而引起的氧气输送阻力的增加降低了在高电流密度操作下的电池性能。

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