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Metal foams as flow distributors in comparison with serpentine and parallel flow fields in proton exchange membrane electrolyzer cells

机译:金属泡沫作为流动分配器,与质子交换膜电解槽细胞中的蛇纹石和平行流场相比

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摘要

The arrangement of flow field in a proton exchange membrane electrolyzer cell (PEMEC) plays a significant role on distribution of reactants over the active area of electro-catalyst and transfer of products toward the outlet of PEMEC. In this paper, the performance of a PEMEC with metal foam as flow distributer is investigated and compared with two common flow fields. A numerical analysis is conducted based on a three-dimensional model of an electrolyzer with parallel pattern flow field (model A), double path serpentine flow field (model B), parallel flow field and metal foam as a flow distributor (model C), and a simple channel that is filled with metal foam (model D). The performance of four different models are compared to each other in terms of current density, temperature, hydrogen mass fraction and pressure drop distribution. The current density for model A, model B, model C, and model D at voltage of 1.55?V are 0.3, 0.41, 0.43 and 0.44 A/cm2, respectively. The results indicate that model D has the best performance in comparison with other models in terms of pressure drop and uniformity of hydrogen mass fraction and temperature. There is no significant difference between models B, C, and D in terms of current density, but the pressure drop in the model B, model C and model D are 736, 9.72, and 4.917?kPa, respectively. It is concluded that utilization of metal foams has advantages such as high electrical conductivity and low weight, and an appropriate foam permeability should be selected to optimize the pressure drop.
机译:质子交换膜电解质细胞(PEMEC)中的流场的排列在电催化剂的有源区域上的反应物分布和产物转移到Pemec的出口上起着重要作用。在本文中,研究了与金属泡沫作为流动分配器的Pemec的性能,并与两个常见的流场进行比较。基于具有平行图案流场(模型A),双径蛇形流场(Model B),并联流场和金属泡沫作为流量分配器(型号C)的电解槽的三维模型进行数值分析。和一个充满金属泡沫的简单渠道(D型)。在电流密度,温度,氢气质量分数和压降分布方面相互比较四种不同模型的性能。模型A,模型B,型号C和模型D的电流密度分别为0.3,0.41,0.43和0.44A / cm2。结果表明,在压力下降和氢质量分数和温度均匀的情况下,模型D与其他模型相比,具有最佳性能。模型B,C和D在电流密度方面没有显着差异,但模型B,型号C和Model D中的压降分别为736,9.72和4.917?KPA。得出结论,金属泡沫的利用具有高电导率和低重量的优点,应选择适当的泡沫渗透率以优化压降。

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