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A printed circuit board approach to measuring current distribution in a fuel cell

机译:一种用于测量燃料电池中电流分布的印刷电路板方法

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A new method of measuring current distribution in a polymer electrolyte fuel cell of active area 100 cm~2 has been demonstrated, using a printed circuit board (PCB) technology to segment the current collector and flow field. The PCB technique was demonstrated to be an effective approach to fabricating a segmented electrode and provide a useful tool for analysing cell performance at different reactant gas flow rates and humidification strategies. In this initial chapter of work with the segmented cell, we describe measured effects on current distribution of cathode and anode gas stream humidification levels in a hydrogen/air cell, utilizing a Nafion~(TM) 117 membrane and single serpentine channel flow fields, and operating at relatively high gas flow rates. Effects of the stoichiometric flow of air are also shown. A clear trend is seen, apparently typical for a thick ionomeric membrane, of lowering in membrane resistance down the flow channel, bringing about the highest local current density near the air outlet. This trend is reversed at low stoichiometric flows of air. At an air flow rate less than three times stoichiometry, the local performance starts to drop significantly from inlet to outlet, as local oxygen concentration drop overshadows the lowering in resistance along the direction of flow.
机译:已经证明了一种使用印刷电路板(PCB)技术分割集电器和流场的测量活动区域100 cm〜2的聚合物电解质燃料电池中电流分布的新方法。事实证明,PCB技术是一种制造分段电极的有效方法,并为分析不同反应气体流速和加湿策略下的电池性能提供了有用的工具。在分段电池的工作的最初这一章中,我们描述了利用Nafion〜(TM)117膜和单个蛇形通道流场对氢/空气电池中阴极和阳极气流加湿水平的电流分布的测量影响,以及在较高的气体流速下运行。还显示了空气的化学计量流量的影响。可以看到明显的趋势,这显然是厚的离聚物膜的典型趋势,即降低了流道下游的膜电阻,从而在出风口附近产生了最高的局部电流密度。在低化学计量空气流量下,这种趋势被逆转。在空气流量小于化学计量比的三倍的情况下,局部性能开始从进口到出口显着下降,因为局部氧气浓度下降掩盖了沿流动方向的阻力降低。

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