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Multiscale modeling of effective electrical conductivity of short carbon fiber-carbon nanotube-polymer matrix hybrid composites

机译:短碳纤维-碳纳米管-聚合物基杂化复合材料有效电导率的多尺度模拟

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摘要

Epoxy matrix reinforced with conventional microscale short carbon fibers (SCFs) and carbon nanotubes (CNTs) form a hybrid material system where the characteristic length scales of SCFs and CNTs differ by multiple orders of magnitude. Several recent studies show that the addition of CNTs into a non-conducting polymer matrix improves both structural performance such as modulus, strength and fracture toughness and functional response such as electrical and thermal conductivities of the resulting nano-composite. In this study, a physics-based hierarchical multiscale modeling approach is presented to calculate the effective electrical conductivity of SCF-CNT-polymer hybrid composites. A dual step procedure is adopted to couple the effects of nano- and micro-scale so as to estimate the effective electrical properties of the composite. First, CNTs are dispersed into the non-conducting polymer matrix to obtain an electrically conductive CNT-epoxy composite. The effective electrical conductivity of CNT-epoxy composite is modeled using a physics-based formulation for both randomly distributed and vertically aligned cases of CNTs and the results are verified with the measured data available in the literature. In the second step, SCFs are randomly distributed in the CNT-epoxy composite and the effective electrical conductivity of the resulting SCF-CNT-epoxy hybrid composite is estimated using a micromechanics based self-consistent approach considering SCFs as microscopic inhomogeneities.
机译:用常规的微米级短碳纤维(SCF)和碳纳米管(CNT)增强的环氧树脂基质形成混合材料系统,其中SCF和CNT的特征长度尺度相差多个数量级。最近的几项研究表明,将碳纳米管添加到不导电的聚合物基体中既可以改善结构性能(例如模量,强度和断裂韧性),也可以改善功能响应(例如所得纳米复合材料的电导率和导热率)。在这项研究中,提出了一种基于物理学的分层多尺度建模方法来计算SCF-CNT-聚合物杂化复合材料的有效电导率。采用双步骤程序耦合纳米级和微米级的效应,以估计复合材料的有效电学性能。首先,将CNT分散到不导电的聚合物基体中以获得导电的CNT-环氧树脂复合材料。 CNT-环氧树脂复合材料的有效电导率是使用基于物理学的公式对CNT的随机分布和垂直排列的情况进行建模的,并用文献中提供的测量数据验证了结果。在第二步中,将SCF随机分布在CNT-环氧复合材料中,并使用基于微力学的自洽方法,将SCF视为微观不均匀性,估算所得SCF-CNT-环氧杂化复合材料的有效电导率。

著录项

  • 来源
    《Materials & design》 |2016年第1期|129-136|共8页
  • 作者

    G. Pal; S. Kumar;

  • 作者单位

    Institute Center for Energy (iEnergy), Department of Mechanical and Materials Engineering, Masdar Institute of Science and Technology, PO Box 54224, Abu Dhabi, UAE,Department of Civil Engineering, Amity University, Noida, India;

    Institute Center for Energy (iEnergy), Department of Mechanical and Materials Engineering, Masdar Institute of Science and Technology, PO Box 54224, Abu Dhabi, UAE,Department of Mechanical Engineering, Massachusetts Institute of Technology, Cambridge, MA 02139-4307;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Hybrid composites; Carbon nanotubes; Short carbon fibers; Electrical conductivity; Multiscale modeling;

    机译:混合复合材料;碳纳米管;短碳纤维;电导率;多尺度建模;

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