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A review of electrical conductivity models for conductive polymer composite

机译:导电聚合物复合材料的电导率模型综述

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Conductive Polymer Composite (CPC) can be considered one of the best material candidates for the bipolar plates in Polymer Electrolyte Membrane (PEM) fuel cells due to its balance between electrical and mechanical properties, low cost and ease of manufacturing. The development of the models has been shown to be important for predicting the electrical properties of the CPCs. The main challenge is to produce a constant electric supply in the fuel cell systems which influence the overall fuel cell performance. Generally, the classical percolation theory describes that the electrical conductivity of the polymer composite is achieved when the volume fraction of the conductive filler is above the specific value, known as percolation threshold phenomena. Current research trends using the General Effective Media (GEM) model show it is the best model to predict the electrical properties of the composite. The main advantage of using the GEM is the model can predict the electrical conductivity for multiple filler systems at high filler loadings. Numerous factors including volume fraction, shape and size, aspect ratio, critical value, and orientation are significant in developing a robust model. Controlling the filler orientations in the CPCs are important as they are able to improve the mechanical performance while enhancing the electrical conductivity of the composite. Orientation can be induced by a few methods such as shear stress, altering die and fillers aspect ratio based on the needs. By controlling the fillers direction, one is able to control both the mechanical and electrical conductivity of the CPCs. However, recent publications seem to suggest that the Fibre Contact Model (FCM) is the latest model that considers the orientation factor in predicting conductivity. A good agreement between experimental results and modelling prediction can be observed using carbon-fibre reinforced polypropylene below and above the percolation threshold. Parallel orientations of the fibres to the extrusion die direction provided better electrical conductivity compared to randomly oriented fillers. This manuscript attempts to discuss other potential models used in predicting the electrical conductivity of the CPCs. (C) 2016 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:导电聚合物复合材料(CPC)因其在电和机械性能,低成本和易于制造之间的平衡而被认为是聚合物电解质膜(PEM)燃料电池中双极板的最佳候选材料之一。已经证明,模型的开发对于预测CPC的电性能很重要。主要挑战是在燃料电池系统中产生恒定的电源,这会影响整体燃料电池的性能。通常,经典的渗滤理论描述了当导电填料的体积分数高于特定值(即渗滤阈值现象)时,可以实现聚合物复合材料的电导率。使用通用有效介质(GEM)模型的当前研究趋势表明,它是预测复合材料电性能的最佳模型。使用GEM的主要优点是该模型可以预测高填充量下多种填充系统的电导率。建立稳健模型时,包括体积分数,形状和大小,纵横比,临界值和方向在内的许多因素都很重要。控制CPC中的填料方向非常重要,因为它们能够改善机械性能,同时增强复合材料的电导率。可以通过几种方法来诱导取向,例如根据需要改变剪切应力,改变模具和填料的长径比。通过控制填充物的方向,可以控制CPC的机械和电导率。但是,最近的出版物似乎表明,光纤接触模型(FCM)是在预测电导率时考虑取向因素的最新模型。在渗流阈值以下和之上,使用碳纤维增强聚丙烯可以观察到实验结果与模型预测之间的良好一致性。与随机取向的填料相比,纤维与挤出模头方向的平行取向提供了更好的导电性。该手稿试图讨论用于预测CPC的电导率的其他电势模型。 (C)2016氢能出版物有限公司。由Elsevier Ltd.出版。保留所有权利。

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