改性装置制备环氧/SiC复合材料的导电和导热性能

A. Nassar, Mostafa Salem, I. El-batanony, E. Nassar
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引用次数: 1

摘要

本研究采用离心混合法制备环氧复合材料。从实验和理论两方面研究了碳化硅(SiC)作为增强材料的重量百分比(wt. %)、SiC粒度和混合速度对电导率和导热性的影响。发现陶瓷颗粒在样品边缘周围的完美分散得到了显著改善,并提高了电导率和导热率。随着粒径、SiC wt. %和混合速度的减小,两者均增大。这可以归因于陶瓷颗粒与环氧树脂之间产生的颗粒间的毗邻和电子的传递。因此,该聚合物复合材料具有成本可接受、重量轻、制备容易等优点,具有大规模生产的前景,可考虑用于工业换热。与碳颗粒相比,金属颗粒和陶瓷颗粒在提高聚合物纳米复合材料的导热性方面更有效。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Electrical and Thermal Conductivity Performance of epoxy/SiC composite prepared by a modified apparatus
In this study, epoxy composites are prepared by the centrifugal mixing method. The effects of Silicon Carbide (SiC) as a reinforcement material due to its weight percentage (wt. %), SiC particle sizes and mixing speed on electrical and thermal conductivity are investigated both experimentally and theoretically. The perfect dispersion of ceramic particles on the surrounding of the sample edge is found to be improved significantly and increases both electrical and thermal Conductivity. Additionally, both are increased with the decrease in the particle size, SiC wt. % and the mixing speed. It can be attributed to the particle to particle adjoining that is created between ceramic particles and epoxy and the electron transporting. Therefore, as the manufacturing of the polymer composite on large scale is more promising ascribable its acceptable cost, low weight and could prepare ease, it can be considered for the industrial heat transfer. Compared to carbonic particles, metallic and ceramic particles are more effective at enhancing the thermal conductivities of polymer nanocomposites.
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