Thermal conductivity of Graphene-polymer composites: implications for thermal management

被引:0
|
作者
Qirong Yang
Zhenglin Zhang
Xuefei Gong
Erren Yao
Ting Liu
Yuan Zhang
Hansen Zou
机构
[1] Qingdao University,College of Mechanic and Electronic Engineering
[2] Shanghai Maritime University,Institute of Thermal Engineering
[3] Xi’an Jiaotong University,School of Energy and Power Engineering
来源
Heat and Mass Transfer | 2020年 / 56卷
关键词
Graphene-polymer composites; Graphene; Thermal conductivity; Molecular dynamics; Melt blending;
D O I
暂无
中图分类号
学科分类号
摘要
Due to the high thermal conductivity, graphene could be used as a filler in matrix materials to improve the thermal performance. In this paper, the thermal conductivity and interfacial interaction of graphene/polyamide (GE/PA6), graphene/polypropylene (GE/PP) and graphene/high density polyethylene (GE/HDPE) composites with different graphene mass fractions were studied by melt-blending experiments and reverse non-equilibrium molecular dynamics. The results show that the filling of graphene effectively improves the thermal conductivity of the three polymers, and the comprehensive improvement effect is GE/PA6 > GE/PP > GE/HDPE. Simulation results show that the thermal conductivity of GE/PA6, GE/PP and GE/HDPE composites vary in the same trend as the experimental results. The interfacial thermal conductivity and interaction energy of the three composites are GE/PA6 > GE/PP > GE/HDPE. This study provides guidance for exploring the filling effect of graphene in polymer and preparing polymer materials with better thermal conductivity.
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页码:1931 / 1945
页数:14
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