Haofeng Xie, Xiangpeng Tang, Fujia Sun, Rui Zhao, Gangqiang Li, Chao Zhang, Guoliang huang, Shaoli Fu, Bo Peng, Liyan Dong, Hao Chu, Honglei Zhou, Xiaohong Chen, Ping Liu
Laser additive manufactured (LAM-ed) copper alloys with post-heat-treatments own excellent thermal and mechanical properties at ambient temperature. Nevertheless, for high-heat-flux copper alloys, the lack of understanding on microstructural evolution and properties at elevated temperatures. Herein, thermal and tensile properties of LAM-ed copper-chromium-zirconium (CuCrZr) alloy at elevated temperatures were investigated. The remained tangled dislocations, dislocation walls, low stacking fault energies, irregular grain and subgrains, high-dense body-centered-cubic nanoscale Cr and Zr-rich particles, high fraction of high-angle grain boundaries, retarded partial recrystallization and then made the alloys maintain good tensile and thermal properties (tensile strength: 180 MPa, elongation: 6.1%, thermal conductivity: about 290 W·m -1 ·K -1 ) at 600 °C. The present work achieved the synthesis of high-strength and high-thermal conductive copper alloys at elevated temperatures, which can provide engineering applications for high-performance AM-ed metals when serving in extreme environment.