首页> 外文期刊>The journal of physical chemistry, C. Nanomaterials and interfaces >Morphology Effects on Nonisotropic Thermal Conduction of Aligned Single-Walled and Multi-Walled Carbon Nanotubes in Polymer Nanocomposites
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Morphology Effects on Nonisotropic Thermal Conduction of Aligned Single-Walled and Multi-Walled Carbon Nanotubes in Polymer Nanocomposites

机译:形态对聚合物纳米复合材料中排列的单壁和多壁碳纳米管非等向热传导的影响

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摘要

Carbon nanotube (CNT)-CNT contact and CNT distribution effects on anisotropic thermal transport in aligned CNT-polymer nanocomposites (PNCs) are studied using an off-lattice Monte Carlo numerical simulation. Inter-CNT contact and the associated thermal boundary resistance are shown here to significantly affect transport properties of PNCs, including anisotropy ratios. Previous studies have considered the effective thermal conductivities of CNT-PNCs using only a very large CNT-CNT thermal boundary resistance (TBR) compared to that of the CNT-matrix TBR as a limiting case. As CNT-CNT TBR is currently an unquantified parameter for CNT-polymer systems, and because it may be reduced by various techniques, heat transport with CNTs in contact is studied for a wide range of CNT-CNT TBR values, varying from 2 to 25 x 10~(-8) m~2 K/W. The degree of CNT-CNT contact, CNT spatial distribution, and CNT-CNT TBR relative to CNT-matrix TBR are considered for 1 -20% volume fraction of aligned single-walled and multi-walled CNTs. When CNT-CNT contact is significant or CNT-CNT TBR is low (relative to the CNT-matrix TBR), then heat transport is dominated by CNT-CNT contact effects, rather than CNT-matrix interfacial effects. As an example, effective nanocomposite thermal conductivity parallel to the CNT axis is shown to increase by up to ~4x due to CNT-CNT contact effects. A critical value of CNT-CNT TBR is identified that controls whether the addition of conductive CNTs in the insulating polymer increases or decreases thermal transport. These simulation results can be very useful for developing techniques to enhance the effective thermal conductivity of composites using conductive nanomaterials embedded in (polymer) matrices, and assist experimentalists in interpreting heat conduction measurements.
机译:使用非晶格蒙特卡洛数值模拟研究了碳纳米管(CNT)-CNT接触和CNT分布对取向CNT-聚合物纳米复合材料(PNCs)中各向异性传热的影响。此处显示CNT之间的接触和相关的热边界电阻会显着影响PNC的传输性能,包括各向异性比率。先前的研究已经考虑了仅使用非常大的CNT-CNT热边界电阻(TBR)来限制CNT-PNC的有效导热率的问题。由于CNT-CNT TBR目前是CNT聚合物系统的未量化参数,并且由于可以通过各种技术降低该参数,因此针对CNT-CNT TBR的宽范围(从2到25)变化,研究了与CNT接触时的传热x 10〜(-8)米〜2 K / W。对于对齐的单壁和多壁CNT的1 -20%的体积分数,考虑了CNT-CNT接触程度,CNT空间分布和CNT-CNT TBR相对于CNT-基质TBR的程度。当CNT-CNT接触显着或CNT-CNT TBR较低(相对于CNT-基质TBR)时,热传递主要由CNT-CNT接触效应而不是CNT-基质界面效应控制。例如,由于CNT-CNT的接触效应,平行于CNT轴的有效纳米复合材料导热系数增加了约4倍。确定CNT-CNT TBR的临界值,该临界值控制在绝缘聚合物中添加导电CNT是增加还是减少热传递。这些仿真结果对于开发使用嵌入在(聚合物)基质中的导电纳米材料来增强复合材料的有效导热系数的技术非常有用,并有助于实验人员解释导热测量结果。

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