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Three-dimensional simulation of polymer electrolyte membrane fuel cells with experimental validation

机译:聚合物电解质膜燃料电池的三维模拟及实验验证

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摘要

From an automotive manufacturer point of view, polymer electrolyte membrane (PEM) fuel cells have evolved, over the past couple of decades, from a laboratory experiment to one of the most probable successors to the internal combustion engine. High efficiency, modularity and local zero emission of greenhouse gases are only some of the advantages of this technology. On the downside, cost, durability targets and the deployment of an hydrogen distribution infrastructure remain challenges to be addressed in order for the fuel cell electric vehicle to make it into mass production. This work presents the comprehensive 3D modeling approach of the AVL FIRE fuel cell module, including coupled thermal, electric, fluidic, and electrochemical phenomena. The model is validated with experimental data obtained on a full size industrial PEM fuel cell designed by PSA. A good agreement between simulation and experiment can be achieved in average as well as local current densities proving the validity of the model. Shortcomings of the model in predicting the fuel cell performance for different inlet gas humidities are identified indicating that further improvement of the membrane model is required.
机译:从汽车制造商的角度来看,在过去的几十年中,聚合物电解质膜(PEM)燃料电池已经从实验室实验发展成为内燃机最可能的继任者之一。高效,模块化和温室气体局部零排放只是该技术的部分优势。不利的一面是,成本,耐用性目标和氢分配基础设施的部署仍然是要解决的挑战,以使燃料电池电动汽车实现量产。这项工作提出了AVL FIRE燃料电池模块的全面3D建模方法,包括热,电,流体和电化学现象。通过在PSA设计的全尺寸工业PEM燃料电池上获得的实验数据验证了该模型。平均和局部电流密度可以证明仿真和实验之间的良好一致性,证明了该模型的有效性。确定了该模型在针对不同进气湿度的情况下预测燃料电池性能的缺点,这表明需要进一步改进膜模型。

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