TY - JOUR
T1 - Microstructure control and high-temperature mechanical response of TA15 titanium alloy fabricated by selective laser melting
AU - Yang, Xiawei
AU - Shen, Dingyi
AU - Wang, Qiyuan
AU - Su, Yu
AU - Liu, Yuluan
AU - Guo, Zhenguo
AU - Xiong, Ran
AU - Meng, Yongsheng
AU - Feng, Ziwei
AU - Hao, Sijie
AU - Ma, Tiejun
AU - Li, Wenya
N1 - Publisher Copyright:
© 2025 Elsevier Ltd.
PY - 2025/12
Y1 - 2025/12
N2 - In this study, the TA15 titanium alloy specimen was manufactured by selective laser melting (SLM) technology. The forming mechanism and microstructure of SLM-produced TA15 components were analyzed by numerical simulations and experimental methods. Abaqus software was employed to clarify the temperature field characteristics during SLM process, and a thermal conduction model was developed. The results showed that the peak temperature within melt pool exceeds the β-transus during SLM, which promotes dynamic recrystallization and Widmanstätten α structures. The microstructure of the SLM-produced TA15 components was almost entirely composed of the α phase, with the β phase present in only 0.6 % and 0.5 % in scanning and building directions, respectively. The microstructure exhibited a high degree of uniformity, with grains displaying various orientations, and grains had no obvious local plastic deformation with few substructures. In the SLM process of TA15 titanium alloy, rapid temperature fluctuations are observed, accompanied by uniform heat distribution and symmetrically arranged temperature field centered around the heat source. The temperature gradient ahead of the heat source is less steep than that behind it. Additionally, the tensile test of TA15 titanium alloy produced by SLM was carried out at 500 °C, microscopic holes are generated at grain boundaries. The specimen had obvious plastic deformation before tensile fracture, and fracture mode was mainly ductile fracture. It was worth noting that the tensile strength of the specimen exceeds 800 MPa, and hardness of the samples is similar in two directions, with an average hardness of 420.2 ± 12.6 HV and 400.6 ± 22.5 HV, showing that TA15 titanium alloy processed by SLM has excellent mechanical properties.
AB - In this study, the TA15 titanium alloy specimen was manufactured by selective laser melting (SLM) technology. The forming mechanism and microstructure of SLM-produced TA15 components were analyzed by numerical simulations and experimental methods. Abaqus software was employed to clarify the temperature field characteristics during SLM process, and a thermal conduction model was developed. The results showed that the peak temperature within melt pool exceeds the β-transus during SLM, which promotes dynamic recrystallization and Widmanstätten α structures. The microstructure of the SLM-produced TA15 components was almost entirely composed of the α phase, with the β phase present in only 0.6 % and 0.5 % in scanning and building directions, respectively. The microstructure exhibited a high degree of uniformity, with grains displaying various orientations, and grains had no obvious local plastic deformation with few substructures. In the SLM process of TA15 titanium alloy, rapid temperature fluctuations are observed, accompanied by uniform heat distribution and symmetrically arranged temperature field centered around the heat source. The temperature gradient ahead of the heat source is less steep than that behind it. Additionally, the tensile test of TA15 titanium alloy produced by SLM was carried out at 500 °C, microscopic holes are generated at grain boundaries. The specimen had obvious plastic deformation before tensile fracture, and fracture mode was mainly ductile fracture. It was worth noting that the tensile strength of the specimen exceeds 800 MPa, and hardness of the samples is similar in two directions, with an average hardness of 420.2 ± 12.6 HV and 400.6 ± 22.5 HV, showing that TA15 titanium alloy processed by SLM has excellent mechanical properties.
KW - Mechanical properties
KW - Microstructure evolution
KW - Numerical simulation
KW - Selective laser melting
KW - TA15 titanium alloy
UR - https://www.scopus.com/pages/publications/105019791287
U2 - 10.1016/j.mtcomm.2025.114072
DO - 10.1016/j.mtcomm.2025.114072
M3 - 文章
AN - SCOPUS:105019791287
SN - 2352-4928
VL - 49
JO - Materials Today Communications
JF - Materials Today Communications
M1 - 114072
ER -