结块
阴极
传质
电化学
质子交换膜燃料电池
溶解
电流密度
电极
大规模运输
氧气输送
催化作用
材料科学
化学
电导率
化学工程
氧气
复合材料
色谱法
物理化学
工程物理
物理
有机化学
工程类
量子力学
作者
M. S. Moore,Phillip Wardlaw,Peter J. Dobson,Jason J. Boisvert,Andreas Pütz,Raymond J. Spiteri,Marc Secanell
摘要
A 2D(1D) multi-scale membrane electrode assembly mathematical model is proposed to study the effect of micro-scale transport losses due to catalyst aggregation in the cathode catalyst layer of a fuel cell. In order to develop an analytical expression for micro-scale transport losses, previous agglomerate models assumed an oxygen reduction reaction order of one and neglected any proton transport effects. In this article, a numerical micro-scale spherical ionomer-filled agglomerate model is integrated with a two-dimensional membrane electrode assembly model in order to develop a flexible framework to study different charge, mass, and kinetic transport models that cannot generally be analyzed with an analytical formulation. Results show that there is a significant interplay between scales and that changes in micro-scale agglomerate properties can significantly affect agglomerate effectiveness and current density distributions in the catalyst layer while not significantly affecting overall cell performance. Using the proposed framework, the effects of: a) proton conductivity inside agglomerates, b) a non-equilibrium oxygen dissolution boundary condition, and c) electrochemical models with different oxygen reaction orders, are studied.
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