Recent development in degradation mechanisms of proton exchange membrane fuel cells for vehicle applications: problems, progress, and perspectives

Zikuo Liu , Shanshan Cai , Zhengkai Tu , Siew Hwa Chan
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Abstract

Due to its zero emissions, high efficiency and low noise, proton exchange membrane fuel cell (PEMFC) is full of potential for the application of vehicle power source. Nonetheless, its lifespan and durability remain multiple obstacles to be solved before widespread commercialization. Frequent exposure to non-rated operating conditions could considerably accelerate the degradation of the PEMFC in various forms, thus reducing its durability. This paper first analyses degradation mechanisms of PEMFCs under typical automotive operating conditions, including idling, startup-shutdown, dynamic loads, and cold start. The corresponding accelerated stress testing methods are also discussed. Then, as the impurities existed in the reaction gas source and generated from the degradation of the PEMFC itself may occur under all automotive conditions, the degradation mechanisms caused by impurity contamination are classified and reviewed in detail. After that, the techniques proposed by researchers to enhance the durability of PEMFCs are presented from four aspects: membrane electrode assembly (MEA) materials, bipolar plates and flow fields design, stack assembly, and cell control strategies. The challenges in the field and the prospects for the future are summarized and analyzed at the end. The aim of this work is to provide guidelines for improving the durability of PEMFCs in vehicle applications.

车辆应用质子交换膜燃料电池降解机制的最新发展:问题、进展和前景
质子交换膜燃料电池(PEMFC)具有零排放、高效率和低噪音的特点,在汽车动力源的应用方面潜力巨大。然而,在广泛商业化之前,质子交换膜燃料电池的寿命和耐用性仍是亟待解决的多重障碍。经常暴露在非额定工作条件下会大大加速 PEMFC 各种形式的降解,从而降低其耐用性。本文首先分析了 PEMFC 在典型汽车运行条件下的降解机制,包括怠速、启动-关机、动态负载和冷启动。同时还讨论了相应的加速应力测试方法。然后,由于反应气源中存在的杂质和 PEMFC 自身降解产生的杂质可能会在所有汽车条件下发生,因此对杂质污染引起的降解机制进行了分类和详细评述。随后,从膜电极组件(MEA)材料、双极板和流场设计、堆栈组件和电池控制策略四个方面介绍了研究人员提出的提高 PEMFC 耐久性的技术。最后总结并分析了该领域面临的挑战和未来前景。这项工作的目的是为提高 PEMFC 在车辆应用中的耐用性提供指导。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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