Yan Anru, Atif Abbas Mirza, Wang Xiaobo, Lan Tian, Wang Zhiyong
Institute of Laser Engineering, Beijing University of Technology, Beijing 100124, China.
Institute of Atomic and Molecular Science, Shaanxi University of Science & Technology, Xi'an 710021, China.
Materials (Basel). 2022 Sep 8;15(18):6230. doi: 10.3390/ma15186230.
Selective laser melting (SLM) of pure molybdenum encounters all the difficulties of SLM metals due to its intrinsic properties (high melting point, high ductile-to-brittle transition temperature and high surface tension). In this work, we studied the influence of key factors such as powder morphology and processing parameters on SLM fabricated pure molybdenum. Pure molybdenum with a relative density of 99.1% was fabricated by SLM using optimized processing parameters. The formation mechanisms for densification behavior and crack growth behaviors are systematically analyzed. Electron backscattered diffraction analysis indicates that the interlocking grain boundary structure and stretch columnar grains can increase bonding force and inhibit crack growth. The balling and cracking can be reduced by adding support structure and suppressing oxygen content. The hardness of SLM-fabricated molybdenum exceeding 260 HV, which is 30-37% higher than Mo prepared by conventional manufacturing methods, mainly attributed to the fine grains and dislocation strengthening in the SLM process. The bending strength of SLM-ed Mo reached 280 ± 52 Mpa. The fracture mode of SLM Mo was intergranular. This study provides a new route for the fabrication of refractory metals with a complex structure.
由于纯钼本身的特性(高熔点、高韧脆转变温度和高表面张力),其选择性激光熔化(SLM)过程面临着SLM金属所具有的各种困难。在本研究中,我们研究了粉末形态和加工参数等关键因素对SLM制备纯钼的影响。通过SLM使用优化的加工参数制备出了相对密度为99.1%的纯钼。系统地分析了致密化行为和裂纹扩展行为的形成机制。电子背散射衍射分析表明,互锁的晶界结构和拉伸柱状晶粒可以增加结合力并抑制裂纹扩展。通过添加支撑结构和抑制氧含量可以减少球化和裂纹。SLM制备的钼硬度超过260 HV,比传统制造方法制备的钼高30 - 37%,这主要归因于SLM过程中的细晶和位错强化。SLM加工的钼的弯曲强度达到280±52 Mpa。SLM钼的断裂模式为沿晶断裂。本研究为复杂结构难熔金属的制备提供了一条新途径。