耐久性
汽车工业
汽车工程
燃料电池
商业化
电压
工程类
计算机科学
电气工程
航空航天工程
数据库
化学工程
法学
政治学
作者
Tsuyoshi Takahashi,Takeshi Ikeda,Kazuya Murata,Osamu Hotaka,Shigeki Hasegawa,Yuya Tachikawa,Masamichi Nishihara,Junko Matsuda,Hironori Nakajima,Stephen Matthew Lyth,Akari Hayashi,Kazunari Sasaki
出处
期刊:Journal of The Electrochemical Society
[The Electrochemical Society]
日期:2022-04-01
卷期号:169 (4): 044523-044523
被引量:24
标识
DOI:10.1149/1945-7111/ac662d
摘要
System durability is crucially important for the successful commercialization of fuel cell electric vehicles (FCEVs). Conventional accelerated durability testing protocols employ relatively high voltage to hasten carbon corrosion and/or platinum catalyst degradation. However, high voltages are strictly avoided in commercialized FCEVs such as the Toyota MIRAI to minimize these degradation modes. As such, conventional durability tests are not representative of real-world FCEV driving conditions. Here, modified start-stop and load cycle durability tests are conducted on prototype fuel cell stacks intended for incorporation into commercial FCEVs. Polarization curves are evaluated at beginning of test (BOT) and end of test (EOT), and the degradation mechanisms are elucidated by separating the overvoltages at both 0.2 and 2.2 A cm −2 . Using our modified durability protocols with a maximum cell voltage of 0.9 V, the prototype fuel cell stacks easily meet durability targets for automotive applications, corresponding to 15-year operation and 200,000 km driving range. These findings have been applied successfully in the development of new fuel cell systems for FCEVs, in particular the second-generation Toyota MIRAI.
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