4.2 Article Proceedings Paper

Fabrication of Multiscale-Alumina Particles Reinforced Copper Matrix Composites with High-Energy Ball Milling and Hot Pressing

期刊

INTEGRATED FERROELECTRICS
卷 226, 期 1, 页码 113-124

出版社

TAYLOR & FRANCIS LTD
DOI: 10.1080/10584587.2022.2061199

关键词

High energy ball milling; powder metallurgy; copper matrix composites; Al2O3 particles

资金

  1. Program for Innovative Research Team (in Science and Technology) in the University of Yunnan Province [14051693]
  2. Basic Research Project of Yunnan Province [202021AS070049, 202102AB080004]

向作者/读者索取更多资源

In this study, multiscale-alumina particles reinforced copper matrix composites were successfully fabricated, and the strength and ductility of the materials were improved by enhancing the interfacial bonding. The results of this research can provide reference for improving the mechanical properties of other composite materials.
Cu-Al2O3 composite materials combining the good electrical of copper matrix and the high hardness of Al2O3 ceramic particles show great performance in electronics, electrical sliding contacts fields. However, the relationship of a dilemma between strength and ductility has become a limitation for the development of copper matrix composites. The previous works indicated that fine grain powders can improve interfacial bonding between the copper matrix and Al2O3 particles to further enhance strength while maintaining ductility. In the present work, the multiscale-alumina particles reinforced copper matrix composites were successfully fabricated by mixing high-energy ball milling and consolidation of hot-press sintering. SEM and TEM were used to observe the powder morphology and microstructure of Cu-Al2O3 composites. The results show that the reinforcing phase Al2O3 particles are uniformly dispersed in the copper matrix, which improves interfacial bonding between the copper matrix and Al2O3 particles. Especially, the micro Al2O3 particles play an important role in achieving an excellent tradeoff of strength and ductility in the Cu-Al2O3 composite. In addition, the microhardness of Cu-Al2O3 composites can be greatly improved by using the high-energy ball milling and hot-press sintering process. The research idea of this paper can provide a reference for other composite materials that need to improve mechanical properties.

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