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4D imaging of chemo-mechanical membrane degradation in polymer electrolyte fuel cells-Part 1: Understanding and evading edge failures
被引:16
|作者:
Chen, Yixuan
[1
]
Singh, Yadvinder
[1
,2
]
Ramani, Dilip
[1
]
Orfino, Francesco P.
[1
]
Dutta, Monica
[2
]
Kjeang, Erik
[1
]
机构:
[1] Simon Fraser Univ, Sch Mechatron Syst Engn, Fuel Cell Res Lab FCReL, 250-13450 102 Ave, Surrey, BC V3T 0A3, Canada
[2] Ballard Power Syst, 9000 Glenlyon Pkwy, Burnaby, BC V5J 5J8, Canada
基金:
加拿大自然科学与工程研究理事会;
加拿大创新基金会;
关键词:
Fuel cell;
Membrane durability;
Edge design;
Mechanical degradation;
Chemical degradation;
X-ray computed tomography;
PROTON-EXCHANGE MEMBRANE;
CATALYST COATED MEMBRANES;
MECHANICAL-PROPERTIES;
CHEMICAL DEGRADATION;
WATER DISTRIBUTION;
DURABILITY;
LAYER;
VISUALIZATION;
MORPHOLOGY;
RADICALS;
D O I:
10.1016/j.jpowsour.2021.230674
中图分类号:
O64 [物理化学(理论化学)、化学物理学];
学科分类号:
070304 ;
081704 ;
摘要:
This work is a two-part article series on chemo-mechanical membrane degradation in fuel cells, wherein the present work in Part 1 investigates edge failure and Part 2 investigates failure within the active area of an edge protected cell. Membrane electrode assembly (MEA) edges are sensitive regions that can cause premature failure. Here, two different MEA frame designs are implemented to study their robustness during a combined chemical/ mechanical membrane degradation accelerated stress test. 4D in situ visualization by periodic, identical-location X-ray computed tomography is performed to understand and thus mitigate the design issues responsible for edge failures. Interfacial interaction of adhesive-containing polyimide gasket and MEA and non-uniform load distribution along MEA edges are identified as the two key contributors to premature edge failures, which introduce significant cell voltage decay due to permanent membrane deformation. Edge failure mitigation is demonstrated by using a non-adhesive sub-gasket along with increased gasket coverage area, which leads to: (i) delayed onset of edge failure; (ii) five times reduction in edge crack size; (iii) elimination of membrane tearing; and (iv) minimal impact of edge failures on cell performance, thus enabling a robust MEA edge wherein the performance impacting failure is shifted to the more important active area regions.
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