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Increased Performance of PEFCs with Engineered Mass-Transport Pathways

机译:通过工程设计的大众运输途径提高PEFC的性能

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The present experimental study investigates the introduction of laser-cut perforations designed to create engineered pathways for improved gas and liquid transport in the diffusion media (DM) of polymer electrolyte fuel cells (PEFCs). Conceptually, the perforations allow for increased gas and vapor access to the catalyst layer (CL) at low current, and at high current they act as water conduits for removing excess liquid water. If not properly engineered, however, perforations lead to excessive flooding or dryout, depending on the conditions. The effect of perforation diameters of 100 μm and 300 urn was studied using steady state polarization testing, electrochemical impedance spectroscopy (E1S), and limiting current analysis. Each of these experimental methods lends insight into the observed performance changes between the different cells. It was found that perforations are beneficial under low-humidity conditions, increasing the limiting current by up to 7% compared to the unaltered DM. Optimization of the perforation diameter is critical to produce similarly beneficial results with high-humidity conditions.
机译:本实验研究调查了激光切割穿孔的引入,这些穿孔旨在为改善聚合物电解质燃料电池(PEFC)的扩散介质(DM)中的气体和液体传输创建工程途径。从概念上讲,穿孔允许在低电流下增加进入催化剂层(CL)的气体和蒸气,而在高电流下,它们充当去除多余液态水的水导管。但是,如果设计不当,则视情况而定,穿孔会导致过多的水浸或变干。使用稳态极化测试,电化学阻抗谱(E1S)和极限电流分析研究了100μm和300 um的射孔直径的影响。这些实验方法中的每一种都有助于深入了解不同单元之间观察到的性能变化。发现穿孔在低湿度条件下是有益的,与未改变的DM相比,极限电流增加了高达7%。穿孔直径的优化对于在高湿度条件下产生类似的有益结果至关重要。

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