Effects of laser power on microstructure and mechanical properties of titanium alloy fabricated by laser-arc hybrid additive manufacturing

Yuhang Chen, Juan Fu, Yong Zhao, Feiyun Wang, Fugang Chen, Guoqiang Chen, Yonghui Qin
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Abstract

Laser-arc hybrid additive manufacturing (LAHAM) based on the synergistic interaction of laser and arc has vast potential applications due to the advantages of high precision and fast manufacturing speed. Titanium alloy is a kind of indispensable material in the aerospace and marine industries because of its superior performance. This study primarily investigates the effect of laser power on formability, microstructure evolution, and mechanical properties of Ti-6Al-4V, a titanium alloy fabricated by LAHAM. The results indicate that the material utilization of the Ti-6Al-4V wire first increases and then decreases with the increasing laser power, reaching a maximum value of 95.48% at a power of 1500 W. As laser power increases, the acicular martensite α′ content in the LAHAM samples decreases, while the α phase increases and exhibits a coarsening phenomenon. Tensile strength increases with the rise in laser power, reaching a maximum horizontal tensile strength of 1080 MPa and a maximum vertical tensile strength of 1100 MPa. However, elongation decreases with increasing laser power. Microhardness decreases with the rise in laser power. The increase in laser power enhances the bonding between deposition layers, significantly improving the tensile strength of the specimens.
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激光功率对激光-电弧混合增材制造钛合金微观结构和机械性能的影响
基于激光和电弧协同作用的激光电弧混合快速成型技术(LAHAM)具有精度高、制造速度快等优点,具有广阔的应用前景。钛合金因其优异的性能成为航空航天和船舶工业中不可或缺的材料。本研究主要探讨了激光功率对 LAHAM 制造的钛合金 Ti-6Al-4V 的成形性、微观结构演变和机械性能的影响。结果表明,随着激光功率的增大,Ti-6Al-4V 金属丝的材料利用率先增大后减小,在功率为 1500 W 时达到最大值 95.48%。随着激光功率的增加,LAHAM 样品中的针状马氏体 α′ 含量降低,而 α 相增加并出现粗化现象。拉伸强度随着激光功率的增加而增加,水平拉伸强度最大值为 1080 兆帕,垂直拉伸强度最大值为 1100 兆帕。然而,伸长率会随着激光功率的增加而降低。显微硬度随着激光功率的增加而降低。激光功率的增加增强了沉积层之间的粘合,显著提高了试样的抗拉强度。
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