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首页> 外文期刊>International journal of hydrogen energy >Investigation of degradation mechanisms in PEM fuel cells caused by low-temperature cycles
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Investigation of degradation mechanisms in PEM fuel cells caused by low-temperature cycles

机译:低温循环引起的PEM燃料电池降解机制研究

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Environmental influences, especially temperatures below the freezing point, can affect the performance and long-term stability of PEMFCs. Within the scope of this research, a completely new test procedure was developed to characterize PEMFC single cells with respect to their long-term stability at temperature cycles between 80 degrees C and-10 degrees C. Using this procedure, the behavior of PEMFC single cells (active surface area of 43.6 cm2) with different cathode-ionomer-to-carbon (I/C) weight ratios (0.5/1.0/1.5) was evaluated. The generated in-situ measurement data clearly demonstrate that the performance of each PEMFC single cell changes individually as a function of the cathode I/C-ratio during the 120 stress cycles. While the MEA with an I/C ratio of 0.5 showed a power loss of-1.49%, the MEAs with an I/C ratio of 1.0 and 1.5 showed a power loss of about-7.75% and-24.7%, respectively. The subsequent post-mortem ex-situ analyses clearly showed how the test procedure and the different I/C-ratios affected the changes in the catalyst layers (CL). The destructive mechanisms responsible for the changes can be divided into two categories: One part was driven by rapid enthalpy change leading to mechanical failure, and the other part, which led to the reduction of cathode CL thickness, was driven by rapid potential changes and potential shifts (overpotentials). This reduction in cathode CL thickness ultimately leads to an accumulation and excessive load of ionomer in the direction of GDL, resulting in a reduction in pore size, a shift in the core reaction area, and high O2 transport resistance. (C) 2021 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:环境影响,尤其是低于冰点的温度,可以影响PEMFC的性能和长期稳定性。在本研究的范围内,开发了一种全新的测试程序,以在80℃和-10摄氏度的温度循环中表征PEMFC单细胞。使用该程序,PEMFC单细胞的行为(有关不同阴极离子离聚物 - 碳(I / C)重量比(0.5 / 1.0 / 1.5)的有源表面积为43.6cm 2)。所产生的原位测量数据清楚地表明,每个PEMFC单电池的性能随着120应力循环期间的阴极I / C比而单独变化。虽然具有0.5的I / C比的MEA显示出-1.49%的功率损失,但I / C比为1.0和1.5的测量显示,分别为约7.75%和-24.7%的功率损失。随后的验尸前原位分析清楚地表明了测试程序和不同I / C比率如何影响催化剂层(CL)的变化。负责变化的破坏性机制可分为两类:一部分是通过快速焓变的驱动导致机械故障的驱动,而另一部分导致阴极CL厚度的减少,通过快速潜在的变化和潜力驱动转移(超势)。阴极Cl厚度的这种降低最终导致GDL方向上的离聚物的积累和过量负载,导致孔径的降低,核心反应区域的变化和高O2传输性。 (c)2021氢能出版物LLC。 elsevier有限公司出版。保留所有权利。

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