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Development of a Polymer Composite with High Electrical Conductivity and Improved Impact Strength for the Application as Bipolar Plate

机译:具有高导电性的聚合物复合材料的研制,以及作为双极板的应用的改善冲击强度

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Bipolar plates constitute the most important structural component in fuel cell stacks. Highly filled thermoplastic composites with high electrical conductivity obtain an increasing importance in the design of bipolar plates as alternative to conventional metallic systems. Thermoplastics (e.g. PP) have suitable properties such as a good processability, chemical resistance, light weight and low production costs. As thermoplastics have low electrical conductivities, conductive fillers have to be included in the matrix. A high content of such fillers (e.g. graphite) in excess of 80 wt.-% is necessary to achieve the desired electrical properties. However, materials with such high filler contents embrittle readily. The workability in injection and compression molding is difficult and the mechanical stability is insufficient in case of strain deformation. As consequence, material failure and an inacceptable amount of damaged goods can be observed during the processing. As no suitable thermoplastic system is available for better mechanical properties, the induction and dispersion of a rubber phase in the thermoplastic matrix can be used to increase the impact strength of the conductive composite. In this research work a ternary composite, based on PP as matrix, EPDM as impact modifier and synthetic graphite as conductive filler, was developed. The material was produced using a 26 mm co-rotating, intermeshing twin-screw extruder. The amounts of PP, EPDM and graphite were varied systematically and a process window was defined that enables improved impact strength and high electrical conductivity of the new material. The results indicate that impact strength can be enhanced by about 99 % with an EPDM content of 30 wt.-% in the PP matrix. The electrical conductivity decreases in a small range with increasing content of EPDM, but the conductivity is still excellent for producing bipolar plates.
机译:双极板构成燃料电池堆中最重要的结构部件。具有高导电性的高度填充的热塑性复合材料在双极板设计中获得了越来越重要的,作为传统金属系统的替代。热塑性塑料(例如PP)具有合适的性能,例如良好的加工性,耐化学性,重量轻,生产成本低。随着热塑性塑料具有低电导率,导电填料必须包括在基质中。需要高80重量%的填料(例如石墨)的高含量,以达到所需的电性能是必要的。然而,具有如此高填充物内容物的材料容易蚕食。在应变变形的情况下,注射和压缩成型中的可加工性难以困难,并且在应变变形的情况下,机械稳定性不足。因此,在处理期间,可以观察到物质故障和可靠的损坏货物。由于没有合适的热塑性系统可用于更好的机械性能,因此可以使用橡胶相中在热塑性基质中的诱导和分散来增加导电复合材料的冲击强度。在本研究中,开发了基于PP作为矩阵,EPDM作为抗冲改性剂和合成石墨作为导电填料的三元复合材料。使用26mm共旋转的啮合双螺杆挤出机生产材料。系统地改变PP,EPDM和石墨的量,定义了一种过程窗口,使得能够改善新材料的冲击强度和高电导率。结果表明,在PP矩阵中,通过EPDM含量为30重量%的冲击强度约为99%。电导率在较小范围内降低,随着EPDM的增加,但导电率仍然优异的生产双极板。

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