首页> 外文期刊>Proceedings of the Institution of Mechanical Engineers >An integrated exploration of thermal and water management dynamics on the performance of a stand-alone 5-kW Ballard fuel-cell system for its scale-up design
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An integrated exploration of thermal and water management dynamics on the performance of a stand-alone 5-kW Ballard fuel-cell system for its scale-up design

机译:针对规模化设计的独立5 kW Ballard燃料电池系统的性能对热和水管理动力学的综合探索

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摘要

A semi-empirical dynamic model with a generalized modeling framework is presented in this paper for the optimal design of a proton-exchange membrane fuel-cell system in order to bring out the importance of thermal and water management dynamics. Numerous electrochemical models exist in the literature presently predict the static and dynamic behavior at a specified operated conditions. However, those models have not considered the influence of both thermal and water management dynamics on the cell polarization and performance behavior. Hence an integrated exploration is done to illustrate the combined effect of operating temperature and membrane hydration over the steady state and dynamic behavior of the fuel-cell stack system. Benchmark data obtained from a stand-alone 5-kW Ballard fuel-cell power system using Nafion 117 membrane are taken to validate the predicted results over a wide range of operating conditions. The influence of stack-operating temperature over the membrane dynamics is investigated, and a similar trend is followed to analyze the temperature dynamics for the effect of dehydrated membrane. Thereby, the optimal operating condition of the stack is determined in terms of thermal and water management dynamics that facilitate the scale-up design of a fuel-cell stack system.
机译:本文提出了一种具有通用建模框架的半经验动力学模型,用于质子交换膜燃料电池系统的优化设计,以揭示热量和水管理动力学的重要性。文献中存在许多电化学模型,目前可以预测特定操作条件下的静态和动态行为。但是,这些模型没有考虑热和水管理动力学对细胞极化和性能行为的影响。因此,进行了综合探索以说明工作温度和膜水合作用对燃料电池堆系统的稳态和动态行为的综合影响。从使用Nafion 117膜的独立5 kW Ballard燃料电池动力系统获得的基准数据用于验证在各种运行条件下的预测结果。研究了堆垛操作温度对膜动力学的影响,并遵循类似的趋势来分析温度动力学对脱水膜的影响。因此,根据有助于燃料电池堆系统的按比例放大设计的热和水管理动力学来确定堆的最佳操作条件。

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