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The development of compression moldable polymer composite bipolar plates for fuel cells.

机译:用于燃料电池的可压缩模塑的聚合物复合双极板的开发。

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摘要

The development, design, and modeling of a rapid continuous processing scheme is developed to economically manufacture conductive polymer composite bipolar plates for fuel cells. Bipolar plates are required to possess several important properties for fuel cell operation, with the most sought after being electrical conductivity and mechanical strength. The polymer composite material generated at Virginia Tech is based on material generated by a wet-lay process and uses polyethylene terepthalate (PET) or polyphenylene sulfide (PPS) as the binder, although PPS is mainly used. In order to reach sufficient conductivity for use in generating bipolar plates, the polymer is doped with high levels of conductive graphite particles in the range of 70-80 wt%. The polymer system is reinforced with 6-9 wt% glass or carbon fibers. When compression molded into a solid, flat preform, the wet-lay material exhibits excellent bulk (in-plane) conductivity (> 250 S/cm). The material also exhibits tensile and flexural strengths of 57.5 and 95.8 MPa, respectively, higher than other polymer composite material being considered for bipolar plate production. However, formability and through-plane conductivity needs improvement.; The laminate bipolar plates developed at Virginia Tech are made using wet-lay material in the core and a thermoplastic/graphite mixture on the surfaces. The wet-lay material provides mechanical integrity, while a powder form of PVDF or PPS and graphite mixture added to the surfaces to improve through-plane conductivity and formability.; The manufacturing scheme for the production of laminate bipolar plates is based on the pre-consolidation of the wet-lay material, which establishes a solid, flat surface for the continuous addition of laminate powder. Because the laminate powder only requires heating, radiation heating is used in the process design to pre-heat the preform prior to compression molding. The heated preform passes underneath a press, where forming of channels takes place along with cooling of the bipolar plate. It is estimated that the entire process can take one minute to produce a bipolar plate. The cost of manufacturing a bipolar plate is estimated to be {dollar}8/kW, below the goal of {dollar}10/kW. The annual production is determined to be 250,000, with over 500,000 possible depending on certain design factors.
机译:开发了快速连续处理方案的开发,设计和建模以经济地制造用于燃料电池的导电聚合物复合双极板。双极板需要具有燃料电池操作的几个重要特性,其中最需要的是导电性和机械强度。弗吉尼亚理工大学生产的聚合物复合材料是基于湿铺法生产的材料,尽管主要使用聚对苯二甲酸乙二酯(PET)或聚苯硫醚(PPS)作为粘合剂。为了达到用于产生双极板的足够的电导率,该聚合物掺杂有70-80重量%范围内的高含量的导电石墨颗粒。聚合物体系由6-9 wt%的玻璃纤维或碳纤维增强。当将其压缩成型为实心的扁平预成型坯时,湿式铺层材料具有出色的体积(面内)电导率(> 250 S / cm)。该材料还显示出分别为57.5和95.8 MPa的拉伸和弯曲强度,高于被认为用于双极板生产的其他聚合物复合材料。然而,可成形性和贯穿平面的导电性需要改进。弗吉尼亚理工大学开发的层压双极板是使用芯层中的湿铺材料和表面上的热塑性/石墨混合物制成的。湿法铺层材料具有机械完整性,而粉末状的PVDF或PPS和石墨混合物则添加到表面,以改善贯穿面的导电性和可成型性。用于生产层压双极板的制造方案基于湿铺材料的预固结,该固结为连续添加层压粉建立了坚实,平坦的表面。由于层压粉仅需要加热,因此在工艺设计中使用辐射加热在压缩成型之前预热预成型坯。加热的预成型件在压机下方通过,在此通道的形成与双极板的冷却一起发生。估计整个过程可能需要一分钟才能生产出双极板。估计制造双极板的成本为8美元/千瓦,低于10美元/千瓦的目标。确定的年产量为250,000,根据某些设计因素可能超过500,000。

著录项

  • 作者

    Cunningham, Brent.;

  • 作者单位

    Virginia Polytechnic Institute and State University.;

  • 授予单位 Virginia Polytechnic Institute and State University.;
  • 学科 Engineering Chemical.
  • 学位 Ph.D.
  • 年度 2007
  • 页码 206 p.
  • 总页数 206
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 化工过程(物理过程及物理化学过程);
  • 关键词

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