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The impact of thermal conductivity and diffusion rates on water vapor transport through gas diffusion layers

机译:导热系数和扩散速率对水蒸气通过气体扩散层传输的影响

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摘要

Proper water management in a hydrogen-fueled polymer electrolyte membrane (PEM) fuel cell is critical for performance and durability. A mathematical model has been developed to elucidate the effect of thermal conductivity and water vapor diffusion coefficient in the gas diffusion layers (GDLs). The fraction of product water removed in the vapor phase through the GDL as a function of GDL properties/set of material and component parameters and operating conditions has been calculated. The current model enables identification of conditions wherein condensation occurs in each GDL component. The model predicts the temperature gradient across various components of a PEM fuel cell, providing insight into the overall mechanism of water transport in a given cell design. The water condensation conditions and transport mode in the GDL components depend on the combination of water vapor diffusion coefficients and thermal conductivities of the GDL components. Different types of GDLs and water transport scenarios are defined in this work, based on water condensation in the GDL and fraction of water that the GDL removes through the vapor phase, respectively.
机译:氢燃料聚合物电解质膜(PEM)燃料电池中适当的水管理对于性能和耐用性至关重要。已经开发出数学模型来阐明气体扩散层(GDL)中的热导率和水蒸气扩散系数的影响。已计算出通过GDL在气相中去除的产品水分数与GDL属性/材料和组件参数集以及操作条件的关系。当前模型可以识别每个GDL组件中发生冷凝的条件。该模型可预测PEM燃料电池各个组件之间的温度梯度,从而深入了解给定电池设计中水传输的总体机理。 GDL组分中的水凝结条件和传输方式取决于水蒸气扩散系数和GDL组分的热导率的组合。在这项工作中,分别基于GDL中的水冷凝和GDL通过汽相除去的部分水,定义了不同类型的GDL和水传输方案。

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