主要成果 | 申请专利: (1)一种可移动光纤连接的水下激光冲击强化装置与方法; (2)一种高精度多光束阵列打孔装置与方法; (3)一种复杂曲面激光旋切自适应钻孔装置与方法; (4)激光解键合装置; (5)激光功率自动调节装置; (6)航空钛合金激光冲击强化与机械喷丸复合工艺强化方法; (7)绿光波长激光水下切割硅晶圆的方法及其装置; 论文: (1)Liu, Q., Sun, W., Chu, S., Wang, Y., Zhou, B., Wang, H., & Mao, B. (2025). Quasi-in-situ EBSD study of the thermal stability of gradient twinning microstructure of an AZ31B magnesium alloy processed by laser shock peening. Materials Characterization, 221, 114769. (2)Li, P., Wang, Y., Li, L., Xu, H., Wang, H., Liu, L., & Lin, M. (2025). Effect of Ultralow‐Temperature Extreme Service Conditions on the Plasticity of TA15 Titanium Alloy for Aeronautics. Advanced Engineering Materials, 2402337. (3)Liu, Q., Chu, S., Zhang, X., Wang, Y., Zhao, H., Zhou, B., ... & Mao, B. (2025). Laser shock processing of titanium alloys: A critical review on the microstructure evolution and enhanced engineering performance. Journal of Materials Science & Technology, 209, 262-291. (4)Wang, Y. H., Li, P. F., Yin, J., Li, X. D., Wu, J. C., Peng, Y. C., & Wang, H. (2024). Microstructure and Properties of TA15 Titanium Alloy Fabricated with Laser Treatment and Heat Treatment. 中國機械工程學刊, 45(6), 573-583. (5)Wang, H., Keller, S., Chang, Y., Kashaev, N., Yan, K., Gurevich, E. L., & Ostendorf, A. (2022). Effect of laser shock peening without protective coating on the surface mechanical properties of NiTi alloy. Journal of Alloys and Compounds, 896, 163011. |