Cheng Jian, Xing Yunhao, Dong Enjie, Zhao Linjie, Liu Henan, Chang Tingyu, Chen Mingjun, Wang Jinghe, Lu Junwen, Wan Jun
State Key Laboratory of Robotics and System, Harbin Institute of Technology, Harbin 150001, China.
Aircraft Repair & Overhaul Plant, Civil Aviation Flight University of China, Guanghan 618307, China.
Materials (Basel). 2022 Aug 11;15(16):5522. doi: 10.3390/ma15165522.
With the development of society and the economy, there is an increasing demand for surface treatment techniques that can efficiently utilize metal materials to obtain good performances in the fields of mechanical engineering and the aerospace industry. The laser metal deposition (LMD) technique for cladding has become a research focus in recent years because of its lower dilution rate, small heat-effect zone and good metallurgical bonding between the coating and substrate. This paper reviews the simulation technology for the melt pool's grain growth mechanism, temperature and stress distribution that are directly related to defect formation in LMD technology. At the same time, the defect suppression method and the performance improvement method of the cladded layer in LMD technology are introduced. Finally, it is pointed out that the active selection of materials according to the required performance, combined with the controllable processing technology, to form the corresponding microstructure, and finally, to actively realize the expected function, is the future development direction of LMD technology.
随着社会和经济的发展,在机械工程和航空航天工业领域,对能够有效利用金属材料以获得良好性能的表面处理技术的需求日益增长。用于熔覆的激光金属沉积(LMD)技术因其稀释率低、热影响区小以及涂层与基体之间良好的冶金结合,近年来已成为研究热点。本文综述了与LMD技术中缺陷形成直接相关的熔池晶粒生长机制、温度和应力分布的模拟技术。同时,介绍了LMD技术中熔覆层的缺陷抑制方法和性能改善方法。最后指出,根据所需性能主动选择材料,结合可控加工技术,形成相应微观结构,并最终主动实现预期功能,是LMD技术未来的发展方向。