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首页> 外文期刊>Applied thermal engineering: Design, processes, equipment, economics >Experimental evaluation of cell temperature effects on miniature, air-breathing PEM fuel cells
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Experimental evaluation of cell temperature effects on miniature, air-breathing PEM fuel cells

机译:电池温度对微型,可呼吸的PEM燃料电池的影响的实验评估

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The impact of temperature on air-breathing, polymer electrolyte membrane (PEM) fuel cells is investigated using polarization and impedance spectroscopy. Three active area sizes of 5 cm~2, 10 cm~2, and 25 cm~2 in both forced convection and air-breathing cathode configurations are presented. The cell design incorporates a large thermal body which can conduct heat away from the active membrane area and minimize the influence of self-heating; allowing for active and precise control of temperature regardless of the current density. Polarization and electrochemical impedance spectroscopy (EIS) results show that at higher current densities, elevated temperature increases the buoyancy of the air around the cell, which improves the air-breathing fuel cell performance. However, the opposite is true for lower current densities as membrane dehydration becomes more prevalent at higher temperatures. Temperature plays a larger role in air-breathing fuel cell performance than the actual size of the cell, whereas both cell temperature and size influence the cell performance for forced convection fuel cells. The discussions presented here provide guidelines for thermal engineering of practical air-breathing fuel cells as a promising portable energy source for the future.
机译:使用极化和阻抗谱研究了温度对空气呼吸,聚合物电解质膜(PEM)燃料电池的影响。给出了在强制对流和空气呼吸阴极配置下三​​种有效面积大小分别为5 cm〜2、10 cm〜2和25 cm〜2。电池设计采用了一个大型的热体,可以将热量从活性膜区域传导出去,并使自热的影响降到最低。无论电流密度如何,都可以进行主动和精确的温度控制。极化和电化学阻抗谱(EIS)结果表明,在较高的电流密度下,升高的温度会增加电池周围空气的浮力,从而改善空气呼吸型燃料电池的性能。但是,对于较低的电流密度,情况恰恰相反,因为在较高温度下膜脱水变得越来越普遍。温度在空气呼吸型燃料电池的性能中比实际的电池尺寸起更大的作用,而电池温度和尺寸都会影响强制对流燃料电池的电池性能。此处讨论的内容为实用的呼吸式燃料电池热工程提供了指导,可作为未来的有希望的便携式能源。

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