材料科学
复合材料
热导率
散热膏
硅橡胶
复合数
磁场
热的
固化(化学)
热稳定性
物理
量子力学
气象学
作者
Qi Wu,Jianyin Miao,Wen‐Jun Li,Qi Yang,Yanpei Huang,Zhendong Fu,Le Yang
出处
期刊:Materials
[Multidisciplinary Digital Publishing Institute]
日期:2022-01-19
卷期号:15 (3): 735-735
被引量:23
摘要
Thermal interface materials with high thermal conductivity and low hardness are crucial to the heat dissipation of high-power electronics. In this study, a high magnetic field was used to align the milled carbon fibers (CFs, 150 μm) in silicone rubber matrix to fabricate thermal interface materials with an ordered and discontinuous structure. The relationship among the magnetic field density, the alignment degree of CFs, and the properties of the resulting composites was explored by experimental study and theoretical analysis. The results showed higher alignment degree and enhanced thermal conductivity of composites under increased magnetic flux density within a certain curing time. When the magnetic flux density increased to 9 T, the CFs showed perfect alignment and the composite showed a high thermal conductivity of 11.76 W/(m·K) with only 20 vol% CF loading, owing to the ordered structure. Meanwhile, due to the low filler loading and discontinuous structure, a low hardness of 60~70 (shore 00) was also realized. Their thermal management performance was further confirmed in a test system, revealing promising applications for magnetic aligned CF-rubber composites in thermal interface materials.
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