TY - JOUR
T1 - Microstructural evolution and impact properties of vacuum laser welded near-alpha Ti-6Al-3Nb-2Zr-1Mo titanium alloy
T2 - Effect of base metal microstructure
AU - Xu, Yali
AU - Zhang, Shuaifeng
AU - Liu, Haibin
AU - Cao, Xuefeng
AU - Wang, Weichao
AU - Yu, Wei
AU - Li, Jinshan
AU - Lai, Minjie
N1 - Publisher Copyright:
© 2025 Elsevier B.V.
PY - 2025/9
Y1 - 2025/9
N2 - The advancement of high-power laser welding has significantly improved the penetration capability for welding titanium and its alloys. In this study, four 25 mm-thick near-alpha Ti-6Al-3Nb-2Zr-1Mo titanium alloy plates with two distinct base metal microstructures (equiaxed and bimodal) were welded using vacuum laser beam welding. The microstructure evolution and impact properties of the laser welded joints were investigated. The results show that the impact toughness of the weld zone, heat affected zone, and base metal in joints with bimodal base metal is higher than that in joints with equiaxed base metal. The lowest impact toughness for the joints with bimodal base metal is in the weld zone, which is 41.63 J, owing to the formation of abundant acicular α′ martensite. For the joints with equiaxed base metal, the impact toughness of the weld zone is comparable with that of the base metal, which is attributed to a more tortuous crack propagation path. The microstructure of the base metal significantly influences the microstructure evolution of the joints. In joints with bimodal base metal, the grain size of the primary β in the weld zone is larger due to fewer nucleation sites in the heat affected zone near the fusion line. This results in the formation of thicker acicular α’ martensite, which enhances twin generation and dislocation movement, thus increasing the absorbed impact energy and impact toughness.
AB - The advancement of high-power laser welding has significantly improved the penetration capability for welding titanium and its alloys. In this study, four 25 mm-thick near-alpha Ti-6Al-3Nb-2Zr-1Mo titanium alloy plates with two distinct base metal microstructures (equiaxed and bimodal) were welded using vacuum laser beam welding. The microstructure evolution and impact properties of the laser welded joints were investigated. The results show that the impact toughness of the weld zone, heat affected zone, and base metal in joints with bimodal base metal is higher than that in joints with equiaxed base metal. The lowest impact toughness for the joints with bimodal base metal is in the weld zone, which is 41.63 J, owing to the formation of abundant acicular α′ martensite. For the joints with equiaxed base metal, the impact toughness of the weld zone is comparable with that of the base metal, which is attributed to a more tortuous crack propagation path. The microstructure of the base metal significantly influences the microstructure evolution of the joints. In joints with bimodal base metal, the grain size of the primary β in the weld zone is larger due to fewer nucleation sites in the heat affected zone near the fusion line. This results in the formation of thicker acicular α’ martensite, which enhances twin generation and dislocation movement, thus increasing the absorbed impact energy and impact toughness.
KW - Deformation mechanism
KW - Laser welding
KW - Titanium alloys
KW - impact toughness
UR - http://www.scopus.com/inward/record.url?scp=105005096371&partnerID=8YFLogxK
U2 - 10.1016/j.msea.2025.148495
DO - 10.1016/j.msea.2025.148495
M3 - 文章
AN - SCOPUS:105005096371
SN - 0921-5093
VL - 939
JO - Materials Science and Engineering: A
JF - Materials Science and Engineering: A
M1 - 148495
ER -