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MODELING AND SIMULATIONS OF DEFORMATION AND TRANSPORT IN PEM FUEL CELLS

机译:PEM燃料电池变形和运输的建模与仿真

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Performance degradation and durability of PEM fuel cells depend strongly upon transport and deformation characteristics of their components especially the polymer membrane. Physical properties of the membrane, such as its ionic conductivity and Young's modulus depend on its water content, which varies significantly with operating conditions and during transients. Recent studies indicate that cyclic transients may induce hygrothermal fatigue that leads to the ultimate failure of the membrane shortening its lifetime, and thus, hindering the reliable use PEM fuel cells for automotive applications. In this work, we present two-dimensional simulations and analysis of coupled deformation and transport in PEM fuel cells. A two-dimensional cross-section of anode and cathode gas diffusion layers, and the membrane sandwiched between them is modeled using Maxwell-Stefan equations in the gas diffusion layers, Biot's poroelasticity and Darcy's law for deformation and water transport in the membrane and Ohm's law for ionic currents in the membrane and electric currents in the gas diffusion electrodes. Steady-state deformation and transport of water in the membrane, transient responses to step changes in load and relative humidity of the anode and cathode are obtained from simulation experiments, which are conducted by means of a commercial finite-element package, COMSOL Multiphysics.
机译:PEM燃料电池的性能劣化和耐久性强烈地取决于其组分的尤其是聚合物膜的运输和变形特性。膜的物理性质,例如离子电导率和杨氏模量依赖于其水含量,其在操作条件和瞬态期间显着变化。最近的研究表明,循环瞬变可以诱导湿热疲劳,从而导致薄膜缩短其寿命的最终失效,从而阻碍了用于汽车应用的可靠使用PEM燃料电池。在这项工作中,我们在PEM燃料电池中呈现二维模拟和分析耦合变形和传输。阳极和阴极气体扩散层的二维横截面,以及夹在它们之间的膜在气体扩散层中的Maxwell-Stefan方程,Biot的Porelasticity和Darcy的变形法中的变形和水运输中的制模建模,在膜和欧姆的法律中用于膜中的离子电流和气体扩散电极中的电流。膜中的稳态变形和运输,瞬态响应阳极和阴极的负载和相对湿度的慢性湿度,通过商业有限元封装,COMSOL多发性进行仿真实验。

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