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Modeling of mesoscale dispersion effect on the piezoresistivity of carbon nanotube-polymer nanocomposites via 3D computational multiscale micromechanics methods

机译:通过3D计算多尺度微力学方法模拟中尺度分散对碳纳米管-聚合物纳米复合材料压阻的影响

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摘要

In uniaxial tension and compression experiments, carbon nanotube (CNT)-polymer nanocomposites have demonstrated exceptional mechanical and coupled electrostatic properties in the form of piezoresistivity. In order to better understand the correlation of the piezoresistive response with the CNT dispersion at the mesoscale, a 3D computational multiscale micromechanics model based on finite element analysis is constructed to predict the effective macroscale piezoresistive response of CNT/polymer nanocomposites. The key factors that may contribute to the overall piezoresistive response, i.e. the nanoscale electrical tunneling effect, the inherent CNT piezoresistivity and the CNT mesoscale network effect are incorporated in the model based on a 3D multiscale mechanical-electrostatic coupled code. The results not only explain how different nanoscale mechanisms influence the overall macroscale piezoresistive response through the mesoscale CNT network, but also give reason and provide bounds for the wide range of gauge factors found in the literature offering insight regarding how control of the mesoscale CNT networks can be used to tailor nanocomposite piezoresistive response.
机译:在单轴拉伸和压缩实验中,碳纳米管(CNT)聚合物纳米复合材料以压阻性形式表现出优异的机械性能和耦合静电性能。为了更好地了解压阻响应与CNT分散在中尺度上的相关性,构建了基于有限元分析的3D计算多尺度微力学模型,以预测CNT /聚合物纳米复合材料的有效大尺度压阻响应。基于3D多尺度机械-静电耦合代码,可将可能有助于整体压阻响应的关键因素(即纳米级电隧穿效应,固有CNT压阻性和CNT中尺度网络效应)纳入模型中。结果不仅解释了不同的纳米尺度机制如何通过中尺度碳纳米管网络影响整体的宏观压阻响应,而且给出了文献中发现的各种规格因子的原因并提供了界限,从而提供了有关如何控制中尺度碳纳米管网络的见解。用于定制纳米复合材料的压阻响应。

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