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Effective transport coefficients in PEM fuel cell catalyst and gas diffusion layers: Beyond Bruggeman approximation

机译:PEM燃料电池催化剂和气体扩散层中的有效传输系数:超越Bruggeman近似

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摘要

The Bruggeman approximation has widely been used for estimating the effective conductivity and diffu-sivity of both the catalyst and gas diffusion layers of polymer electrolyte membrane (PEM) fuel cells. This approximation is based on the Bruggeman's Effective Medium Theory [Bruggeman D. Berechnung vers-chiedener physikalischer konstanten von heterogenen substanzen. Ann Phys (Leipzig) 1935;24:636-79], which provides empirical correlation for the effective properties of a composite system. Since it is an empirical correlation, a unique correlation based on the Bruggeman approximation does not always hold for the PEM fuel cell effective properties. Rather, the Bruggeman correlation is a cell specific and experiment dependent correlation that depends on structure, phase composition, water saturation, experimental parameters, etc. Further, this correlation needs to be combined with other correlations to estimate the effective diffusivities. In this article, a set of mathematical formulations has been proposed for the effective transport properties in both the catalyst and gas diffusion layers of a PEM fuel cell. The effective conductivity and diffusivity expressions are derived from the mathematical formulations of the Hashin Coated Sphere model [Hashin Z. The elastic moduli of heterogeneous materials. J Appl Mech 1962;29:143-50], which provides an identical mathematical foundation for each of these effective properties rather than an empirical correlation and avoid to use of multiple correlations together. The present model formulations agree well with the results available in literature for the limiting case. Hence, the proposed formulations for the effective transport properties will be a useful estimating tool in the numerical modeling of PEM fuel cells.
机译:Bruggeman近似已广泛用于估计聚合物电解质膜(PEM)燃料电池的催化剂层和气体扩散层的有效电导率和扩散率。该近似基于布鲁格曼有效媒介理论[Bruggeman D. Berechnung vers-chiedener physikalischer konstanten von heterogenen substanzen。 Ann Phys(Leipzig)1935; 24:636-79],它为复合系统的有效特性提供了经验相关性。由于这是经验相关,因此基于Bruggeman近似的唯一相关并不总是对PEM燃料电池有效特性成立。相反,Bruggeman相关性是特定于细胞且依赖于实验的相关性,它取决于结构,相组成,水饱和度,实验参数等。此外,此相关性需要与其他相关性结合起来以估计有效扩散率。在本文中,针对PEM燃料电池的催化剂层和气体扩散层中的有效传输性能,提出了一组数学公式。有效的电导率和扩散率表达式是从Hashin涂层球体模型[Hashin Z.异质材料的弹性模量]的数学公式得出的。 J Appl Mech 1962; 29:143-50],它为这些有效属性中的每一个提供了相同的数学基础,而不是经验相关性,并且避免一起使用多个相关性。本模型公式与极限情况下文献中的结果非常吻合。因此,所提出的有效传输性能的公式将成为PEM燃料电池数值建模中的有用估算工具。

著录项

  • 来源
    《Applied Energy》 |2010年第9期|P.2785-2796|共12页
  • 作者单位

    Department of Mechanical and Mechatronics Engineering. University of Waterloo, 200 University Avenue West, Waterloo, ON, Canada N2L 3G1 Institute for Fuel Cell Innovation, National Research Council, Vancouver, BC, Canada VST 1W5;

    rnDepartment of Mechanical and Mechatronics Engineering. University of Waterloo, 200 University Avenue West, Waterloo, ON, Canada N2L 3G1;

    rnInstitute for Fuel Cell Innovation, National Research Council, Vancouver, BC, Canada VST 1W5;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    bruggeman approximation; effective conductivity; effective diffusivity; hashin-shtrikmanbounds; PEM fuel cell; porous media;

    机译:布鲁格曼近似有效电导率有效扩散率hashin-shtrikmanbounds;PEM燃料电池;多孔介质;

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