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MODELING OF HEAT REMOVAL IN A SINGLE-CHANNEL MICROSCALE FUEL CELL

机译:单通道微型燃料电池的除热建模

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摘要

Considerable waste heat is generated via the oxygen reduction reaction in polymer electrolyte membrane fuel cells. Consequently, heat generation and removal in conventional fuel cell architectures has been carefully investigated in order to achieve effective thermal management. Here we present a novel microscale fuel cell design that utilizes a half-membrane electrode assembly. In this design, a single fuel/electrolyte stream provides an additional pathway for heat removal that is not present in traditional fuel cell architectures. The model presented here investigates heat removal over a range of inlet fuel temperatures. Heat generation densities are determined experimentally for all inlet fuel temperatures. The simulations presented here predict thermal profiles throughout this microscale fuel cell design. Simulation results show that the fuel stream dominates heat removal at room temperature. As inlet fuel temperature increases, the majority of heat removal occurs via convection with the ambient air. The model also shows that heat transfer through the oxidant channel is minimal over the range of inlet fuel temperatures.
机译:在聚合物电解质膜燃料电池中,通过氧还原反应产生大量废热。因此,已经对常规燃料电池结构中的热量产生和去除进行了仔细研究,以实现有效的热管理。在这里,我们提出了一种利用半膜电极组件的新型微型燃料电池设计。在这种设计中,单个燃料/电解质流提供了传统燃料电池体系结构中不存在的用于散热的附加途径。此处介绍的模型研究了进气燃料温度范围内的热量去除。对于所有入口燃料温度,通过实验确定热量产生密度。此处提供的模拟可预测整个微型燃料电池设计的热分布。仿真结果表明,在室温下,燃料流占主导地位。随着进口燃料温度的升高,大部分热量的排出是通过与周围空气对流进行的。该模型还显示,在进口燃料温度范围内,通过氧化剂通道的热传递最小。

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