Effect of Injection Flow on Conductive Network in Polypropylene-carbon-filler Composite Bipolar Plates

R. Yeetsorn, M. Fowler, C. Tzoganakis
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引用次数: 2

Abstract

Bipolar plates have been manufactured by different techniques, such as high performance drilling, compression molding, metal stamping, and injection molding processes. The bipolar plates should be produced via a standard mass production technique in a one-step process, since this can reduce the cost structure of fuel cell stacks, significantly contributed by the bipolar plates. Polypropylene/three-carbon-filler composites were selected for bipolar plate production through an injection molding process for this research work. Although the conductive injection moldable composites can be produced for a bipolar plate application, their electrical conductivity, especially through plane conductivity, has not yet achieved a commercial target. For that reason, a simulation of fiber orientation in an injecting plaque using the finite element simulation program Moldex 3D was carried out with the support of Compuplast Canada Inc. to investigate the effect of an injection flow on fiber orientation in conductive networks. Even the simulation output cannot clearly elucidate the orientation of carbon fibers in the composites containing hybrid fillers as the experimental results showed. Further improvements in the development of conductive networks in injected composite bipolar plates can be achieved, for example, through tailoring of a particular injection mold geometry for the bipolar plate production.
注射流动对聚丙烯-碳填料复合双极板导电网络的影响
双极板已经通过不同的技术制造,如高性能钻孔、压缩成型、金属冲压和注射成型工艺。双极板应该通过标准的批量生产技术在一步工艺中生产,因为这可以降低燃料电池堆的成本结构,这是双极板的重要贡献。本研究选择聚丙烯/三碳填料复合材料通过注射成型工艺生产双极板。虽然导电注塑复合材料可以用于双极板的应用,但其导电性,特别是通过平面导电性,尚未达到商业目标。因此,在Compuplast Canada Inc.的支持下,使用有限元模拟程序Moldex 3D模拟了注射斑块中的纤维取向,以研究注射流量对导电网络中纤维取向的影响。即使是模拟结果也不能像实验结果那样清楚地阐明混杂填料复合材料中碳纤维的取向。例如,通过为双极板生产定制特定的注射模具几何形状,可以实现在注射复合双极板中导电网络的进一步改进。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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