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Modeling an ordered nanostructured cathode catalyst layer for proton exchange membrane fuel cells

机译:为质子交换膜燃料电池建模有序的纳米结构阴极催化剂层

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摘要

A 3D mathematical model of an ordered nanostructured cathode catalyst layer (CCL) has been developed for proton exchange membrane (PEM) fuel cells. In an ordered nanostructured CCL, carbon nanotubes (CNTs) are used as support materia for Pt catalyst, upon which a thin layer of proton-conducting polymer (Nafion) is deposited, which are then aligned along the main transport direction (perpendicular to the membrane) of various species. The model considers all the relevant processes in different phases of an ordered nanostructured CCL. In addition, the effect of Knudsen diffusion is accounted in the model. The model can predict not only the performance of an ordered nanostructured CCL at various operating and design conditions but also can predict the distributions of various fields in different phases of an ordered nanostructured CCL. The predicted nanostructured CCL performance with estimated membrane overpotential is validated with measured data found in the literature, and a good agreement is obtained between the model prediction and measured result. Moreover, a parametric study is conducted to investigate the effect of key design parameters on the performance of an ordered nanostructured CCL. In the absence of liquid water, it is found that oxygen diffusion in the pore phase is not the limiting factor for the performance of an ordered nanostructured CCL, owing to its parallel gas pores and high porosity. However, the transport of dissolved oxygen through the Nafion phase has a significant effect on the performance of an ordered nanostructured CCL. Further, it is found that increasing the spacing between CNTs results in a considerable drop in the performance of an ordered nanostructured CCL at the base case conditions considered in the simulation.
机译:已开发出用于质子交换膜(PEM)燃料电池的有序纳米结构阴极催化剂层(CCL)的3D数学模型。在有序的纳米结构CCL中,碳纳米管(CNT)用作Pt催化剂的载体材料,在其上沉积了一层质子传导聚合物(Nafion)薄层,然后沿主传输方向(垂直于膜)排列)的各种物种。该模型考虑了有序纳米结构CCL不同阶段的所有相关过程。另外,在模型中考虑了克努森扩散的影响。该模型不仅可以预测有序纳米结构化覆铜板在各种操作和设计条件下的性能,还可以预测有序纳米结构化覆铜板在不同阶段的各个场的分布。利用文献中的测量数据验证了具有估计的膜超电势的预测的纳米结构CCL性能,并且在模型预测和测量结果之间获得了良好的一致性。此外,进行了一项参数研究,以研究关键设计参数对有序纳米结构CCL性能的影响。在没有液态水的情况下,由于其平行的气孔和高孔隙率,发现孔隙相中的氧扩散不是限制有序纳米结构CCL性能的限制因素。但是,溶解的氧通过Nafion相的传输对有序纳米结构CCL的性能有重大影响。此外,发现在模拟中考虑的基本情况下,增加CNT之间的间距导致有序的纳米结构CCL的性能显着下降。

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