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首页> 外文期刊>Journal of power sources >Investigation of degradation mechanisms of a high-temperature polymer-electrolyte-membrane fuel cell stack by electrochemical impedance spectroscopy
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Investigation of degradation mechanisms of a high-temperature polymer-electrolyte-membrane fuel cell stack by electrochemical impedance spectroscopy

机译:电化学阻抗谱研究高温聚合物-电解质-膜燃料电池堆的降解机理

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Retaining optimum acid-contents in membranes and electrodes is critical to maintaining the performance and durability of acid-doped high-temperature (HT) polymer-electrolyte-membrane fuel cells (PEMFCs). Since the distribution of acids is influenced by the operating and compression conditions of the stack, there is great demand for understanding the behavior of individual membrane-electrode-assemblies (MEAs) while operating the cells in a stack. In this study, an in-situ diagnosis method using electrochemical impedance spectroscopy (EIS) is implemented during the durability test of an HT-PEMFC stack. Adopting a lumped equivalent-circuit model, the specific parameters are obtained from EIS results, and the changes of the values are compared with the performance loss of individual MEA. From this analysis it can be concluded that the main cause of performance degradation of the stack is due to the loss of electrolytes in the cathode, which leads to an increase in the proton transport resistance of cathode catalyst layers. In addition to the proton transport loss in the cathode, the charge transfer resistance of the oxygen reduction reaction has contributed to the performance decay of the stack. The causes of the increase in the cathode charge transfer resistance for each cell of the stack are discussed.
机译:在膜和电极中保持最佳的酸含量对于维持酸掺杂的高温(HT)聚合物-电解质-膜燃料电池(PEMFC)的性能和耐久性至关重要。由于酸的分布受电池堆的操作和压缩条件的影响,因此在理解电池在电池堆中操作时各个膜电极组件(MEA)的行为有很大的需求。在这项研究中,在HT-PEMFC电池组的耐久性测试过程中,采用了电化学阻抗谱(EIS)的现场诊断方法。采用集总等效电路模型,从EIS结果获得特定参数,并将值的变化与单个MEA的性能损失进行比较。从该分析可以得出结论,电池堆性能下降的主要原因是由于阴极中电解质的损失,这导致阴极催化剂层的质子传输阻力增加。除了在阴极中的质子传输损失之外,氧还原反应的电荷转移阻力也导致了电池堆的性能下降。讨论了堆叠中每个电池的阴极电荷转移电阻增加的原因。

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