Zhou Zixiang, Chen Jiqiang, Ren Jieke, Miao Jiale, Xing Ting, Zhong Shibiao, Guan Renguo
Faculty of Materials, Metallurgy and Chemistry, Jiangxi University of Science and Technology, Ganzhou, China.
State Key Laboratory of Comprehensive Utilization of Low-Grade Refractory Gold Ores, Xiamen, China.
3D Print Addit Manuf. 2024 Jun 18;11(3):e1324-e1333. doi: 10.1089/3dp.2022.0348. eCollection 2024 Jun.
The microstructure, mechanical properties (tensile, fatigue, etc.) and the anisotropies of the Al-Mg alloy fabricated by wire arc additive manufacturing are studied in this work. The results show that the microstructure of the deposited alloy is composed of coarse columnar grains in the inner-layer region and fine equiaxed grains in the interlayer region. The tensile and fatigue properties exhibit strong anisotropies. The ultimate tensile strength (258 MPa), yield strength (140 MPa), elongation (21.3%), and fatigue life (2.56 × 10) of the sample along travel direction (0° direction) are the best, whereas those of the sample along the deposited direction (90° direction) are the lowest and those of the sample along 45° direction are the medium. It is found that the lowest strength and elongation of the sample in the deposited direction can be attributed to the large weak bonding areas between the deposition layers, whereas the lowest fatigue property is associated with the fatigue crack propagation along the grain boundaries of the columnar grains.
本文研究了电弧增材制造的Al-Mg合金的微观结构、力学性能(拉伸、疲劳等)及各向异性。结果表明,沉积合金的微观结构由内层区域的粗大柱状晶粒和层间区域的细小等轴晶粒组成。拉伸和疲劳性能表现出很强的各向异性。沿行进方向(0°方向)的样品的极限抗拉强度(258MPa)、屈服强度(140MPa)、伸长率(21.3%)和疲劳寿命(2.56×10)最佳,而沿沉积方向(90°方向)的样品的这些性能最低,沿45°方向的样品的性能则处于中等水平。研究发现,沉积方向上样品的最低强度和伸长率可归因于沉积层之间较大的弱结合区域,而最低疲劳性能与沿柱状晶晶界的疲劳裂纹扩展有关。