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Numerical simulation of water droplet transport characteristics in cathode channel of proton exchange membrane fuel cell with tapered slope structures

机译:锥形斜坡结构质子交换膜燃料电池阴极通道水滴传输特性的数值模拟

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In proton exchange membrane fuel cells (PEMFC), the design of the cathode flow field is very important, because an excellent flow channel design can not only accelerate the transmission rate of liquid water, but also affect the distribution of electrode reactants and electrode products which influence the electrochemical performance of the fuel cell. This study presents three new channels (models 1,2 and 3), which were created using two unilateral slopes and a bilateral slope structure with tapered tube lengths of 0.4, 1.2 and 0.8 mm, respectively. The dynamic behavior of liquid water under the three design schemes is numerically studied based on the volume of fluid method. And the influence on the performance of fuel cell was analyzed synthetically. The results indicate that the introduction of a tapered and sloping structure can improve the transmission efficiency of the droplets in the flow channel, and the maximum droplet removal time of the new channel can be reduced by 24.4% compare with standard conventional flow channel. The slope structure guides the flow path of water droplet and reduces the occurrence of droplet spatter. Influenced by the slope and tapered structures, the turbulence of airflow near the bottom surface (gas diffusion layer)of the flow channel is enhanced and Oxygen concentration in the cathode is raised, which improves the mass transfer capacity and average current density of reactive surface. In conclusion, the new type of channel with a tapered and sloping structure has a potential to improve the performance of water management in the cathode channel of PEMFC. (C) 2020 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:在质子交换膜燃料电池(PEMFC)中,阴极流场的设计非常重要,因为优异的流动通道设计不仅可以加速液态水的传动速率,而且影响电极反应物的分布和电极产品影响燃料电池的电化学性能。本研究呈现了三种新的通道(模型1,2和3),其使用两个单侧斜坡和双侧斜坡结构产生,分别具有0.4,1.2和0.8mm的锥形管长度。三种设计方案下液态水的动态行为基于流体方法的体积进行了数量的研究。合成分析对燃料电池性能的影响。结果表明,引入锥形和倾斜结构可以提高流动通道中液滴的传输效率,并且可以将新通道的最大液滴去除时间与标准传统流动通道相比减小24.4%。斜率结构引导水滴的流动路径,并减少液滴喷溅的发生。受斜坡和锥形结构的影响,流动通道的底表面(气体扩散层)附近的气流的湍流增强,并且阴极中的氧浓度提高了反应性表面的质量传递能力和平均电流密度。总之,具有锥形和倾斜结构的新型通道具有提高PEMFC阴极通道中水管理性能的潜力。 (c)2020氢能源出版物LLC。 elsevier有限公司出版。保留所有权利。

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