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Experimental validation of variable temperature flow field concept for proton exchange membrane fuel cells

机译:质子交换膜燃料电池可变温度流场概念的实验验证

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Variable temperature flow field concept allows maintaining close to 100% relative humidity along the entire flow field of the anode and the cathode side without external humidification using water generated during fuel cell operation for internal reactant humidification. This work deals with the experimental validation of the variable temperature flow field concept on a five-segment single cell. The experimental setup provides insight into the membrane water transport, temperature distribution on the current collectors and inside the channels, and the current density distribution along the cell. Variable temperature flow field operation with dry reactants is compared to isothermal operation with partially and fully humidified reactants. The polarization curve comparison shows that the variable temperature flow field operating efficiency is similar or better than the commonly used isothermal configuration with fully humidified reactants. The main contribution of the variable temperature flow field concept, when compared to isothermal operation, is the reduction of the mass transport losses at higher currents, since the generated water is evaporated in the stream of reactants, thereby minimizing the problem of liquid water removal from the cell. (C) 2017 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:可变温度流场概念允许沿着阳极和阴极侧的整个流场保持接近100%的相对湿度,而无需外部加湿,而使用燃料电池运行期间产生的水进行内部反应物加湿。这项工作涉及在五段单电池上的可变温度流场概念的实验验证。实验设置提供了对膜水传输,集电器和通道内部温度分布以及沿电池的电流密度分布的洞察力。将使用干反应物的可变温度流场操作与使用部分和完全湿润的反应物的等温操作进行比较。极化曲线比较表明,可变温度流场的工作效率与具有完全加湿的反应物的常用等温配置相似或更好。与等温运行相比,可变温度流场概念的主要贡献在于降低了在较高电流下的传质损失,因为生成的水在反应物流中蒸发,从而最大程度地减少了从中去除液态水的问题。细胞。 (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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