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Modeling water management in polymer-electrolyte fuel cells.

机译:建模聚合物电解质燃料电池中的水管理。

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In this dissertation, a macrohomogeneous model is developed to explore water management in polymer-electrolyte fuel cells (PEFCs). PEFCs are on the forefront to becoming the energy-delivery devices of the future. However, they suffer from many problems, including low efficiency. This efficiency is directly associated with the issue of the fuel-cell water balance and water management, where PEFC operation is a balance between membrane dehydration and cathode flooding, among other things. The mathematical model developed here takes these issues into account by quantifying the relevant phenomena that occur in the various PEFC sandwich layers: membrane, catalyst layers, and diffusion media.; For each of the layers, physical and then mathematical models are developed. Such an undertaking involves the identification of the controlling phenomena and issues that should be considered, and then their mathematical description. The developed layer models are complex enough to account for many of the experimentally observed effects such as Schroder's paradox and two-phase flow, while remaining simple enough to use in an overall PEFC simulation. In addition, such issues as membrane stress and constraint are examined, some of them for the first time in the literature.; The proposed model is validated by comparison of computational results with experimental data, including PEFC water balance and polarization curves. The results of the simulations allow for the explanation of observed effects. It is clearly shown how important anode humidification is to overall fuel-cell performance, and also how the effects of flooding can be minimized by changes in material properties such as gas-diffusion-layer wettability, as well as in system design, such as the inclusion of a microporous layer. The model, its analysis, and results provide a route for optimization and mitigation of the technical hurdles currently facing PEFCs.
机译:本文建立了宏观均匀模型,以探讨聚合物电解质燃料电池(PEFC)中的水管理。 PEFC在成为未来的能源输送设备方面处于最前沿。然而,它们遭受许多问题,包括效率低下。这种效率与燃料电池水平衡和水管理的问题直接相关,其中PEFC操作是膜脱水和阴极溢流之间的平衡。这里开发的数学模型通过量化在各种PEFC夹心层中发生的相关现象(膜,催化剂层和扩散介质)考虑了这些问题。对于每一层,先建立物理模型,然后建立数学模型。这项工作涉及确定控制现象和应考虑的问题,然后对其进行数学描述。开发的层模型非常复杂,足以解决许多实验观察到的影响,例如Schroder悖论和两相流,同时保持足够简单,可用于整体PEFC模拟。此外,还研究了膜应力和约束等问题,其中一些是文献首次报道。通过将计算结果与实验数据(包括PEFC水平衡和极化曲线)进行比较,验证了该模型的有效性。仿真结果可以解释观察到的效果。清楚地显示出阳极加湿对整个燃料电池性能的重要性,以及如何通过改变材料特性(例如,气体扩散层的可湿性)以及系统设计(例如:包含微孔层。该模型,其分析和结果为优化和缓解当前PEFC面临的技术障碍提供了一条途径。

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