TY - JOUR
T1 - A novel defect-related cyclic damage model driven by strain energy density for LPBF titanium alloy
AU - Pan, Jinchao
AU - Hu, Dianyin
AU - Zhou, Liucheng
AU - Zhao, Yan
AU - Peng, Guanyun
AU - Wang, Rongqiao
N1 - Publisher Copyright:
© 2023
PY - 2024/1/23
Y1 - 2024/1/23
N2 - The unavoidable defects in additive manufacturing (AM) material have an impact on the deformation behavior and fatigue lifetime. In this study, a series of experiments on Laser powder bed fusion (LPBF) Ti-6Al-4 V under symmetrical tension–compression cyclic loading were conducted, and the corresponding damage mechanism was then investigated. It is revealed that due to the nucleation, growth, and coalescence of micro-voids, LPBF Ti-6Al-4 V exhibits accelerated softening behavior after reaching cyclic stability. Based on the physical mechanism, a cyclic damage model with a critical initiation criterion was developed using fracture mechanics principles, in which plastic strain energy as the driving parameter is introduced to describe the defect evolution, and the void's closure effect during the tension–compression cycle is considered. Experimental validation has demonstrated that the damage model can accurately predict the cyclic stress–strain curves for LPBF Ti-6Al-4 V vertical and horizontal specimens, with errors in predicting crack initiation and growth lifetime falling within the ± 1.6 and ± 2.5 scatter bands.
AB - The unavoidable defects in additive manufacturing (AM) material have an impact on the deformation behavior and fatigue lifetime. In this study, a series of experiments on Laser powder bed fusion (LPBF) Ti-6Al-4 V under symmetrical tension–compression cyclic loading were conducted, and the corresponding damage mechanism was then investigated. It is revealed that due to the nucleation, growth, and coalescence of micro-voids, LPBF Ti-6Al-4 V exhibits accelerated softening behavior after reaching cyclic stability. Based on the physical mechanism, a cyclic damage model with a critical initiation criterion was developed using fracture mechanics principles, in which plastic strain energy as the driving parameter is introduced to describe the defect evolution, and the void's closure effect during the tension–compression cycle is considered. Experimental validation has demonstrated that the damage model can accurately predict the cyclic stress–strain curves for LPBF Ti-6Al-4 V vertical and horizontal specimens, with errors in predicting crack initiation and growth lifetime falling within the ± 1.6 and ± 2.5 scatter bands.
KW - Damage model
KW - Defect
KW - Fatigue lifetime
KW - Laser powder bed fusion
KW - Tension–compression cycle
UR - https://www.scopus.com/pages/publications/85181015280
U2 - 10.1016/j.engfracmech.2023.109793
DO - 10.1016/j.engfracmech.2023.109793
M3 - 文章
AN - SCOPUS:85181015280
SN - 0013-7944
VL - 295
JO - Engineering Fracture Mechanics
JF - Engineering Fracture Mechanics
M1 - 109793
ER -