首页> 外文期刊>International journal of hydrogen energy >Ex-situ characterisation of water droplet dynamics on the surface of a fuel cell gas diffusion layer through wettability analysis and thermal characterisation
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Ex-situ characterisation of water droplet dynamics on the surface of a fuel cell gas diffusion layer through wettability analysis and thermal characterisation

机译:通过润湿性分析和热表征对燃料电池气体扩散层表面上的水滴动力学进行异位表征

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Understanding the evaporation of water from gas diffusion layers (GDL) is important for polymer electrolyte fuel cell (PEFC) design and operational purposes, particularly for open cathode air-breathing fuel cells where water removal is purely through evaporation. In this work, water droplet dynamics on the surface of a fuel cell GDL is studied by wettability and thermal characterisation. The droplet maintains a fixed contact diameter (pinned) until there is a transition from non-wetting to wetting regime, after which the contact diameter reduced rapidly until complete evaporation occurs. GDL thermal characterisation reveals that temperature variation encountered across the GDL is due to a change in emissivity and increased thermal gradient across the GDL due to its uneven surface. Droplet thermal characterisation reveals that the droplets have a cooling effect on the surrounding GDL when introduced at room temperature and the cooling effect is more exacerbated with an increase in GDL temperature. This work provides insight into the dynamics of water evaporation on GDLs which could be effective in developing water and heat management strategies in PEFCs, as water droplets are expected to experience similar pinning and cooling effect to that observed in this work within the cathode gas channels of PEFCs. This is particularly relevant to passive open-cathode cells. (C) 2017 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:了解气体从气体扩散层(GDL)的蒸发对于聚合物电解质燃料电池(PEFC)的设计和操作目的非常重要,特别是对于开放式阴极呼吸式燃料电池,其中的水是完全通过蒸发去除的。在这项工作中,通过润湿性和热特性研究了燃料电池GDL表面的水滴动力学。液滴保持固定的接触直径(固定),直到从非润湿状态过渡到润湿状态,此后接触直径迅速减小,直到发生完全蒸发。 GDL热特征表明,GDL上遇到的温度变化是由于发射率的变化和表面不平整导致GDL上的热梯度增加所致。液滴的热特性表明,在室温下引入时,液滴对周围的GDL具有冷却作用,并且随着GDL温度的升高,冷却作用会更加加剧。这项工作提供了对GDL上水蒸发动力学的洞察力,这可能会有效地开发PEFC中的水和热管理策略,因为预计水滴会在该阴极的阴极气体通道中经历与这项工作中观察到的类似的钉扎和冷却效果。 PEFC。这与无源开放式阴极电池特别相关。 (C)2017氢能出版物有限公司。由Elsevier Ltd.出版。保留所有权利。

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