材料科学
极限抗拉强度
膜
复合材料
降级(电信)
断裂韧性
韧性
脆性
耐久性
肿胀 的
电解质
质子交换膜燃料电池
聚合物
化学
电极
电信
生物化学
物理化学
计算机科学
作者
Alireza Sadeghi Alavijeh,Marc‐Antoni Goulet,Ramin M.H. Khorasany,Jeetinder Ghataurah,Chan Lim,Michael Lauritzen,Erik Kjeang,G. G. Wang,R. K. N. D. Rajapakse
出处
期刊:Fuel Cells
[Wiley]
日期:2014-11-28
卷期号:15 (1): 204-213
被引量:76
标识
DOI:10.1002/fuce.201400040
摘要
Abstract The mechanical stability of catalyst coated membranes (CCMs) is an important factor for the overall durability and lifetime of polymer electrolyte fuel cells. In this article, the evolution of the mechanical properties of degraded CCMs is comprehensively assessed. A combined chemical and mechanical accelerated stress test (AST) was applied to simulate field operation and rapidly generate partially degraded CCM samples for tensile and expansion experiments under both room and fuel cell conditions. The tensile results indicated significant reductions in ultimate tensile strength, toughness, and fracture strain as a function of AST cycles, accompanied by a mild increase in elastic modulus. The increased brittleness and reduced fracture toughness of the CCM, caused primarily by chemical membrane degradation, is expected to play an important role in the ultimate failure of the fuel cell. The expansion tests revealed a linear decay in hygrothermal expansion, similar in magnitude to the loss of mechanical strength. The decline in CCM sensitivity to environmental changes leads to non‐uniform swelling and contraction that may exacerbate local degradation. Interestingly, the hygrothermal expansion in the late stages of degradation coincided with the fracture strain, which correlates to in situ development of fractures in chemically weakened membranes.
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