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PERCOLATION EFFECTS ON THE THERMAL CONDUCTIVITY OF 3D NANOTUBE COMPOSITES

机译:渗透对3D纳米管复合材料导热性的影响

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We analyze thermal transport in three-dimensional (3D) nano-composites composed of carbon nanotube (CNT) dispersions to investigate percolation effects on the effective thermal conductivity of these composites. Thermal transport simulations for the randomly distributed nanotubes inside the host substrate are based on the diffusive Fourier conduction theory. The numerical model incorporates the effect of substrate-CNT conductivity ratio and the interfacial resistance due to tube-tube and tube-substrate contact, which are the most critical parameters governing thermal transport properties. Numerical predictions of effective thermal conductivity are in excellent agreement with the linear response theory and effective medium approximation (EMA) when assumptions of theory are incorporated in the model. The trends for the variation of effective thermal conductivity with increasing nanotube density are in broad agreement with previous experimental observations. Our numerical results also show that the onset of thermal percolation is gradual and largely dependent on the tube-to-substrate conductivity ratio and interfacial resistance at tube-tube and tube-substrate contact.
机译:我们分析了由碳纳米管(CNT)分散体组成的三维(3D)纳米复合材料中的热传递,以研究渗滤对这些复合材料有效导热率的影响。主体衬底内部随机分布的纳米管的热输运模拟基于扩散傅里叶传导理论。数值模型结合了基板与碳纳米管电导率之比的影响以及由于管与管以及管与基板之间的接触而产生的界面电阻,这是控制热传输特性的最关键参数。当模型中包含理论假设时,有效导热系数的数值预测与线性响应理论和有效介质近似值(EMA)完全一致。有效导热系数随纳米管密度的增加而变化的趋势与以前的实验观察结果基本一致。我们的数值结果还表明,热渗流的发生是渐进的,并且在很大程度上取决于管与基底的电导率比以及管与管和管与基底接触时的界面电阻。

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