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Performance improvement of proton exchange membrane fuel cells with compressed nickel foam as flow field structure

机译:用压缩镍泡沫作为流场结构的质子交换膜燃料电池的性能改进

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In order to improve the performance of proton exchange membrane fuel cell (PEMFC), the compressed nickel foam as flow field structure was applied to the fuel cell. The fuel cell test system was built and the performance of fuel cells with nickel foam flow field with different thicknesses were tested and analyzed by electrochemical active surface area (EASA), electrochemical impedance and polarization curve. And its operating parameters were optimized to improve the performance of PEMFC. Our results show that the membrane electrode assembly (MEA) can show a larger catalytic active area and uniformity of gas diffusion can be improved by using the nickel foam flow field instead of the conventional graphite serpentine flow field, and the impedance characteristic of 110PPI nickel foam can be improved by increasing the compression ratio of the original material. What's more, the polarization characteristic and power output performance of PEMFC with nickel foam flow field were improved by optimizing the operating parameters. Using the optimized operating parameters (cell temperature = 80 degrees C; humidification temperature = 75 degrees C; stoichiometric ratio = 2; back pressure = 0.23 Map), a peak power density of 1.89 W cm(-2) was obtained with an output voltage of 0.46 V. (C) 2020 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:为了改善质子交换膜燃料电池(PEMFC)的性能,将压缩镍泡沫作为流场结构施加到燃料电池。通过电化学活性表面积(EASA),电化学阻抗和偏振曲线进行燃料电池测试系统构建和具有不同厚度的镍泡沫流场的燃料电池的性能。其操作参数被优化以提高PEMFC的性能。我们的结果表明,通过使用镍泡沫流场而不是传统的石墨蛇流场,可以提高膜电极组件(MEA)可以提高较大的催化源区域和气体扩散的均匀性,以及110ppi镍泡沫的阻抗特性可以通过增加原始材料的压缩比来改善。此外,通过优化操作参数,改善了PEMFC与镍泡沫流场的偏振特性和功率输出性能。使用优化的操作参数(单元格温度= 80℃;加湿温度= 75℃;化学计量比率= 2;背压= 0.23映射),获得1.89W cm(-2)的峰值功率密度,输出电压0.46 V.(c)2020氢能量出版物LLC。 elsevier有限公司出版。保留所有权利。

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