首页> 外文期刊>Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics >Applying a micromechanics approach for predicting thermal conducting properties of carbon nanotube-metal nanocomposites
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Applying a micromechanics approach for predicting thermal conducting properties of carbon nanotube-metal nanocomposites

机译:应用微机械方法来预测碳纳米管金属纳米复合材料的热传导性能

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摘要

Heat dissipation is a very important issue in the harsh thermal loads affecting the reliability of structures. In this study, the thermal conducting behavior of carbon nanotube (CNT)-reinforced metal matrix nanocomposites (MMNCs) has been analyzed using a micromechanical model based on the method of cell (MOC) approach. The critical role of interfacial thermal resistance between the CNT and metal matrix in the MMNC thermal conducting response has been extensively explored. Also, the effects of volume fraction, length, diameter and curvature of CNTs have been investigated. It has been found that forming a perfect CNT/matrix interface contact would enhance remarkably the overall thermal conductivities. Generally, the axial thermal conductivity of the CNT-reinforced MMNCs can be increased with (i) rising CNT length and (ii) using straight CNTs. Moreover, the transverse thermal conductivity of these nanocomposite materials are improved with (i) rising CNT diameter and (ii) using wavy CNTs. Besides, increasing CNT volume fraction leads to a significant increment in the effective thermal conductivities in the presence of a perfect bonding at the CNT/matrix interface. Effective thermal conductivities of the MMNCs estimated by the MOC approach have been compared with those predicted by the effective medium and Halpin-Tsai models. A quite good agreement has been observed between the predictions of the MOC approach and experimental data. (C) 2019 Elsevier B.V. All rights reserved.
机译:散热是影响结构可靠性的苛刻热负荷中的一个非常重要的问题。在该研究中,使用基于细胞(MOC)方法的微机械模型分析了碳纳米管(CNT) - 胁迫金属基质纳米复合材料(MMNC)的热传导行为。广泛探索CNT和金属基质之间的界面热阻在MMNC热导流响应中的界面热阻的关键作用。此外,研究了CNT的体积分数,长度,直径和曲率的影响。已经发现,形成完美的CNT /矩阵界面触点将显着增强整体热导率。通常,CNT增强MMNC的轴向导热率可以随(i)上升的CNT长度和(II)使用直线CNT来增加。此外,使用波状CNT的(i)(i)增加(i)的横向导热率和(i)的横向导热率和(i)的横向导热性。此外,在CNT /矩阵界面在CNT /矩阵界面的完美粘合情况下,增加CNT体积分数导致有效的热导体中的显着增量。将通过MOC方法估计的MMNC的有效热导体与有效培养基和Halpin-Tsai模型预测的MMNC进行了比较。在MOC方法和实验数据的预测之间观察到了相当愉快的一致性。 (c)2019 Elsevier B.v.保留所有权利。

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