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Predicting the thermal conductivity of polypropylene-multiwall carbon nanotubes using the Krenchel model

机译:使用Krenchel模型预测聚丙烯-多壁碳纳米管的热导率

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The thermal conductivity of particulate composite models is well documented in the literature. This paper attempts to fit the experimental data for the thermal conductivity of polymer nanocomposites to a three-phase Krenchel model. The use of this model is applicable for structures that consist of a polymer matrix, a nanofiller, and an interfacial layer around the nanoparticles. The effect of Kapitza’s thermal resistance is implemented in the model along with the assumption that the nanofillers are cylindrical and well connected to each other; however, no parameters related to any type of dispersants or the dispersion techniques are stated in the model. The results of the three-phase Krenchel model were validated using the experimental data of thermal conductivity of multiwall carbon nanotubes embedded in polypropylene matrix nanocomposites. It was found that the model was in good agreement with the experimental thermal conductivity data. Moreover, the results from the model showed that the filler geometrical packing factor was 0.75; consequently, the carbon nanotubes formed bundles of several cylindrical tubes. The length of the interface between the nanotubes and the polymer matrix was around 1 ?. Finally, the thermal conductivity of the composite bundle cylinder was 21.63 W/(m K).
机译:颗粒复合材料模型的热导率已在文献中充分记录。本文尝试将聚合物纳米复合材料导热系数的实验数据拟合到三相Krenchel模型。该模型的使用适用于由聚合物基质,纳米填料和围绕纳米颗粒的界面层组成的结构。在模型中实现了Kapitza的热阻效应,并假设了纳米填料是圆柱形的并且相互连接良好。但是,模型中未列出与任何类型的分散剂或分散技术有关的参数。利用嵌入聚丙烯基纳米复合材料中的多壁碳纳米管的热导率实验数据验证了三相克伦切尔模型的结果。发现该模型与实验热导率数据非常吻合。此外,该模型的结果表明,填料的几何堆积系数为0.75;因此,碳纳米管形成了几个圆柱形管束。纳米管和聚合物基体之间的界面长度约为1λ。最终,复合束圆筒的热导率为21.63W /(m·K)。

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