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Water management in direct methanol fuel cells

机译:直接甲醇燃料电池中的水管理

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Water management is an important challenge in portable direct methanol fuel cells. Reducing the water and methanol loss from the anode to the cathode enables the use of highly concentrated methanol solutions to achieve enhanced performances. In this work, the results of a simulation study using a previous developed model for DMFCs are presented. Particular attention is devoted to the water distribution across the cell. The influence of different parameters (such as the cathode relative humidity (RH), the methanol concentration and the membrane, catalyst layer and diffusion media thicknesses) over the water transport and on the cell performance is studied. The analytical solutions of the net water transport coefficient, for different values of the cathode relative humidity are successfully compared with recent published experimental data putting in evidence that humidified cathodes contribute to a decrease on the water crossover. As a result of the modelling results, a tailored MEA build-up with the common available commercial materials is proposed to achieve low methanol and water crossover and high power density, operating at relatively high methanol concentrations. A thick anode catalyst layer to promote methanol oxidation, a thin anode gas diffusion layer as methanol carrier to the catalyst layer and a thin polymer membrane to lower the water crossover coefficient between the anode and cathode are suggested.
机译:在便携式直接甲醇燃料电池中,水管理是一项重要的挑战。减少从阳极到阴极的水和甲醇的损失,可以使用高浓度的甲醇溶液来实现更高的性能。在这项工作中,展示了使用先前开发的DMFC模型进行仿真研究的结果。特别注意整个单元中的水分布。研究了不同参数(例如阴极相对湿度(RH),甲醇浓度以及膜,催化剂层和扩散介质厚度)对水传输和电池性能的影响。成功地将阴极不同相对湿度下的净水传输系数的解析解与最近发表的实验数据进行了比较,结果证明湿润的阴极有助于减少水的渗透。作为建模结果的结果,提出了使用常见的市售材料量身定制的MEA构造,以在相对较高的甲醇浓度下实现较低的甲醇和水交叉以及高功率密度。建议使用厚的阳极催化剂层来促进甲醇氧化,使用薄的阳极气体扩散层作为催化剂层的甲醇载体,并建议使用薄的聚合物膜来降低阳极和阴极之间的水交换系数。

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