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首页> 外文期刊>Journal of power sources >Electrochemical reaction and performance of proton exchange membrane fuel cells with a novel cathode flow channel shape
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Electrochemical reaction and performance of proton exchange membrane fuel cells with a novel cathode flow channel shape

机译:新型阴极流道形状的质子交换膜燃料电池的电化学反应及性能

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This study focuses on the investigation of the electrochemical reaction along a novel cathode flow channel of PEM fuel cells with various shoulder/channel (S/C) ratios at the outlet port. A three-dimensional mathematical model, considering conservation principles of mass, momentum, species and electric current is employed. Local variations of important model variables such as reactant concentration and local current density are presented by contour plots to elucidate the effects of channel geometry on transport process, catalyst reaction and cell performance. The potential fields of solid and membrane phases are also resolved in the cell domain and the driving force of the electrochemical reactions - the catalyst activation overpotential - is harnessed in modeling. Numerical calculations reveal the influence of the cathode channel configuration on the local distributions of various model variables. The results also show the dependence between optimal channel configuration and cell operating condition. At a medium reaction rate, the reaction sites underneath the shoulder region generate more current than the channel region. Therefore, a convergent channel configuration with a larger S/C ratio at the outlet port develops more current because such a design facilitates the electron transport and enhances local activation overpotential. However, as the cell voltage decreases and the reaction rate increases, such configuration loses its merit gradually as the requirement for a higher reactant concentration is more important and the reaction sites underneath the channel region have a higher reaction rate. Consequently, the divergent channel configuration with a lower S/C ratio of 0.67 performs better at a cell voltage of 0.22 V.
机译:这项研究的重点是研究沿PEM燃料电池新型阴极流道的电化学反应,该流道在出口处具有各种肩/槽(S / C)比。考虑了质量,动量,种类和电流的守恒原理的三维数学模型。等高线图显示了重要模型变量的局部变化,例如反应物浓度和局部电流密度,以阐明通道几何形状对运输过程,催化剂反应和电池性能的影响。固相和膜相的势场也在细胞域内得到解析,并且在建模中利用了电化学反应的驱动力-催化剂活化超电势。数值计算揭示了阴极通道配置对各种模型变量的局部分布的影响。结果还显示最佳信道配置和小区工作条件之间的依赖性。在中等反应速率下,肩部区域下方的反应部位产生的电流大于通道区域。因此,在出口处具有较大S / C比的会聚通道配置会产生更多电流,因为这种设计有助于电子传输并增强局部激活超电势。但是,随着电池电压的降低和反应速率的增加,这种配置逐渐失去其优点,因为对更高反应物浓度的要求变得更加重要,并且沟道区下方的反应部位具有更高的反应速率。因此,具有较低的S / C比0.67的发散通道配置在单元电压为0.22 V时表现更好。

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