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碳化物涂层石墨/铝复合材料的界面结构及其对热导率和强度的影响。

Interfacial Structure of Carbide-Coated Graphite/Al Composites and Its Effect on Thermal Conductivity and Strength.

作者信息

Jia Hao, Fan Jianzhong, Liu Yanqiang, Zhao Yuehong, Nie Junhui, Wei Shaohua

机构信息

GRINM Metal Composites Technology Co. Ltd., Beijing 101407, China.

General Research Institute for Non-Ferrous Metals, Beijing 100088, China.

出版信息

Materials (Basel). 2021 Mar 31;14(7):1721. doi: 10.3390/ma14071721.

Abstract

Graphite/Al composites had attracted significant attention for thermal management applications due to their excellent thermal properties. However, the improvement of thermal properties was restricted by the insufficient wettability between graphite and Al. In this study, silicon carbide and titanium carbide coatings have been uniformly coated on the graphite by the reactive sputtering method, and Graphite/Al laminate composites were fabricated by a hot isostatic pressing process to investigate the influence on thermal conductivity and mechanical properties. The results show that carbide coating can effectively improve the interfacial thermal conductance of SiC@Graphite/Al and TiC@Graphite/Al composites by 9.8 times and 3.4 times, respectively. After surface modification, the in-plane thermal conductivity (TC) of the composites with different volume fractions are all exceeding the 90% of the predictions. In comparison, SiC is more conducive to improving the thermal conductivity of composite materials, since the thermal conductivity of the 28.7 vol.% SiC@Graphite/Al reached the highest value of 499 W/m·K, while TiC is favorable for improving the mechanical properties. The finding is beneficial to the understanding of carbide coating engineering in the Graphite/Al composites.

摘要

石墨/铝复合材料因其优异的热性能在热管理应用中受到了广泛关注。然而,由于石墨与铝之间润湿性不足,其热性能的提升受到了限制。在本研究中,通过反应溅射法在石墨上均匀涂覆了碳化硅和碳化钛涂层,并采用热等静压工艺制备了石墨/铝层状复合材料,以研究其对热导率和力学性能的影响。结果表明,碳化物涂层可分别有效提高SiC@石墨/铝和TiC@石墨/铝复合材料的界面热导9.8倍和3.4倍。表面改性后,不同体积分数复合材料的面内热导率均超过预测值的90%。相比之下,SiC更有利于提高复合材料的热导率,因为28.7 vol.%的SiC@石墨/铝热导率达到了499 W/m·K的最高值,而TiC有利于提高力学性能。这一发现有助于理解石墨/铝复合材料中的碳化物涂层工程。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b5b8/8037059/7aa3dc166d58/materials-14-01721-g001.jpg

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