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Improved Through-Plane Electrical Conductivity in a Carbon-Filled Thermoplastic via Foaming

机译:通过发泡改善了碳填充热塑性塑料的贯穿平面电导率

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Flow-induced orientation of the conductive fillers in injection molding creates parts with anisotropic electrical conductivity where through-plane conductivity is several orders of magnitude lower than in-plane conductivity.This article provides insight into a novel processing method using a chemical blowing agent to manipulate carbon fiber (CF) orientation within a polymer matrix during injection molding.The study used a fractional factorial experimental design to identify the important processing factors for improving the through-plane electrical conductivity of plates molded from a carbon-filled cyclic olefin copolymer (COC) containing 10 vol% CF and 2 vol% carbon black.The molded COC plates were analyzed for fiber orientation,morphology,and electrical conductivity.With increasing porosity in the molded foam part,it was found that greater out-of-plane fiber orientation and higher electrical conductivity could be achieved.Maximum conductivity and fiber reorientation in the through-plane direction occurred at lower injection flow rate and higher melt temperature.These process conditions correspond with foam flow during filling of the mold cavity,indicating the importance of shear stress on the effectiveness of a fiber being rotated out-of-plane during injection molding.
机译:注射成型过程中导电填料的流动诱导取向会产生具有各向异性导电性的零件,其中通面导电率比面内导电率低几个数量级。本文提供了使用化学发泡剂操纵的新型加工方法的见解。碳纤维(CF)在注塑过程中在聚合物基质中的取向。该研究使用分数阶乘实验设计来确定重要的加工因素,以改善由碳填充的环状烯烃共聚物(COC)模塑的板的贯穿面电导率包含10体积%的CF和2体积%的炭黑。分析了成型的COC板的纤维取向,形态和导电性。随着成型泡沫部件中孔隙率的增加,发现更大的面外纤维取向和通孔中的最大电导率和纤维重新定向在较低的注射流速和较高的熔体温度下会出现负方向。这些工艺条件与模腔填充期间的泡沫流动相对应,这表明剪切应力对纤维在注射成型期间平面外旋转的有效性的重要性。

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