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Multiscale modeling of the coupled electromechanical behavior of multifunctional nanocomposites

机译:多功能纳米复合材料耦合机电行为的多尺度建模

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In this first time effort, we developed a multiscale coupled electromechanical model capable of computing the piezoresistive properties of carbon nanotube (CNT)-reinforced composites. Monte-Carlo based algorithm was used to generate representative volume elements (RVEs) randomly filled with CNTs surrounded by the polymer matrix. The coupling between the applied mechanical load and the resulting electrical response was treated in a sequential manner in two steps. Firstly, a three-dimensional finite element model of the RVE was developed to determine the structural response of the nanocomposite system under different loading conditions. The results of the finite element model were then used to update the locations of the CNTs in the deformed AVE. Secondly, an electrical model based on the modified nodal analysis technique was developed to calculate the corresponding electrical conductivity of the nanocomposite. The developed model was successfully used to determine the piezoresistive behavior of CNT-epoxy composite under tension, compression, and shear loads. The results show that the composite gauge factor can reach up to 3.95 and is sensitive to the loading direction and CNT volume fraction. The predictions of the current model are in good agreement with the experimental findings of earlier studies, verifying its validity.
机译:在这第一次工作中,我们开发了一种多尺度耦合机电模型,能够计算碳纳米管(CNT)增强复合材料的压阻特性。基于Monte-Carlo的算法用于生成代表性的体积元素(RVE),该体积元素随机填充有被聚合物基质包围的CNT。分两步按顺序处理施加的机械负载和产生的电响应之间的耦合。首先,建立了RVE的三维有限元模型,以确定在不同载荷条件下纳米复合系统的结构响应。然后将有限元模型的结果用于更新变形AVE中CNT的位置。其次,建立了基于改进的节点分析技术的电模型,以计算纳米复合材料的相应电导率。开发的模型已成功用于确定CNT-环氧复合材料在拉伸,压缩和剪切载荷下的压阻行为。结果表明,复合规格因子可达3.95,对加载方向和CNT的体积分数敏感。当前模型的预测与早期研究的实验结果非常吻合,证明了其有效性。

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