Achieving exceptional strength-toughness synergy in aluminum/copper welded joint by coaxial infrared-blue hybrid laser

材料科学 微观结构 极限抗拉强度 激光器 复合材料 同轴 变形(气象学) 吸收(声学) 扩散 焊接 位错 韧性 接头(建筑物) 扩散焊 激光束焊接 冶金 联轴节(管道) 搭接接头 拉伸试验 马朗戈尼效应 激光功率缩放 固溶强化 选择性激光熔化
作者
Tian Li,Mingjun Zhang,Wang Zeng,Longzhou Dai,Bo Cheng,Ying Niu,Qiang Guo,Kaiming Wang,Heqing Li,Xiang Wu,Xiaochun Liu,Rong Huang
出处
期刊:Optics and Laser Technology [Elsevier BV]
卷期号:198: 114739-114739 被引量:2
标识
DOI:10.1016/j.optlastec.2026.114739
摘要

For the problem of low energy coupling efficiency and weak interface bonding strength in aluminum-copper laser welding, a novel infrared-blue hybrid laser technology was adopted to conduct research on aluminum/copper lap welding. The synergistic enhancement mechanism of joint strength and toughness was revealed by combination of in-situ tensile test in SEM and theoretical calculations. The results showed that the increase of molten depth and the shape of root-like structure were closely related to the energy density of the infrared-blue hybrid laser, which indirectly confirmed the promoting effect of blue laser on the energy absorption of the infrared laser. Under the appropriate blue laser irradiation, the combined effect of the Marangoni effect and recoil pressure suppressed the diffusion behavior of Cu elements, thereby effectively improving the microstructure uniformity within the molten pool. The enhancement of Al/Cu interfacial bonding strength was attributed to the dislocation strengthening and grain refinement strengthening at the interface, while the migration of cracks into the copper matrix during in-situ tensile process was due to the driving effect of the root-like molten pool, and the deformation strengthening in the copper matrix further compensated the toughness of the joint. The molten pool microstructure formed under blue laser assistance not only enhanced the joint’s strength and toughness, but also was beneficial for improving the electrical conductivity of the joint. Among them, the maximum shear tensile strength and toughness of the joint were increased by 29.4% and 24.2%, respectively.
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