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Challenges in Computational Modeling of Two-Phase Transport in Polymer Electrolyte Fuel Cells Flow Channels: A Review

机译:聚合物电解质燃料电池流道中两相输运的计算建模挑战:综述

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Excess of liquid water in gas channels of polymer electrolyte fuel cells is responsible for malfunctioning of these devices. Not only it decreases their efficiency via partial blockage of reactants and pressure drop, but it can also lead to the irreversible damage due to oxygen starvation in case of complete channel flooding or full coverage of the gas diffusion layer with a liquid film. Liquid water evacuation is carried out via airflow in gas channels. Several experimental and computational techniques have been applied to date for the analysis of the coupled airflow-water behavior in order to understand the impact of fuel cell design and operation regimes upon the liquid water accumulation. Considerable progress has been achieved with the development of sophisticated computational fluid dynamics (CFD) tools. Nevertheless, the complexity of the problem under consideration leaves several issues unresolved. In this paper, analysis techniques applied to liquid water-airflow transport in fuel cells gas channels are reviewed and most important results are summarized. Computationally efficient, yet strongly simplified analytical models are discussed. Afterwards, CFD approaches including the conventional fixed grid (Eulerian) and the novel embedded Eulerian-Lagrangian models are described. Critical comparative assessment of the existing methods is provided at the end of the paper and the unresolved issues are highlighted.
机译:聚合物电解质燃料电池的气体通道中的液态水过多是造成这些设备故障的原因。它不仅会由于反应物的部分堵塞和压力下降而降低其效率,而且还会在通道完全溢流或气体扩散层完全覆盖有液膜的情况下,由于缺氧而导致不可逆转的损坏。液体水的排空是通过气体通道中的气流进行的。迄今为止,已经应用了几种实验和计算技术来分析气流与水的耦合行为,以了解燃料电池设计和运行方式对液态水积聚的影响。随着复杂的计算流体动力学(CFD)工具的开发,已经取得了可观的进步。但是,所考虑问题的复杂性使得一些问题尚未解决。本文综述了应用于燃料电池气体通道中液态水-空气流传输的分析技术,并总结了最重要的结果。讨论了计算效率高但简化的分析模型。之后,介绍了包括常规固定网格(欧拉)和新型嵌入式欧拉-拉格朗日模型在内的CFD方法。本文末尾提供了对现有方法的关键比较评估,并突出了未解决的问题。

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