中子成像
电解质
气体扩散
材料科学
扩散
氢
水运
核工程
化学
中子
水流
环境科学
核物理学
热力学
物理
电极
环境工程
物理化学
有机化学
工程类
作者
Maximilian Maier,J. Dodwell,Ralf Ziesche,Chun Tan,Thomas M. M. Heenan,Jude O. Majasan,Nikolay Kardjilov,Henning Markötter,Ingo Manke,Luis Castanheira,Gareth Hinds,Paul R. Shearing,Dan J. L. Brett
标识
DOI:10.1016/j.jpowsour.2020.227968
摘要
The increasing use of intermittent renewable energy sources calls for novel approaches to large-scale energy conversion and storage. Hydrogen can be readily stored and produced from renewable sources using polymer electrolyte membrane water electrolysers (PEMWEs). Mass transport of water and product gas in the liquid-gas diffusion layer (LGDL) is critical for PEMWE performance, particularly at high current densities. In this work, neutron radiography is deployed to measure the spatial distribution of water within three different LGDLs, while X-ray micro-computed tomography (XCT) is used to characterize the microstructure of the LGDL materials. The combination of these two techniques yields valuable insight into water transport within the LGDL. Significant local water heterogeneity is observed and a link between flow-field geometry/location and LGDL mass transport is identified. It is further shown that the pore volume in these LGDLs is significantly under-utilized, pointing the way towards design optimisation of LGDL materials and architectures.
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