TY - JOUR
T1 - Fatigue crack growth behavior and mechanism of AlSi7Mg alloy prepared by laser powder bed fusion
AU - Liu, Ying
AU - Wang, Yongxin
AU - Luo, Xian
AU - Xu, Zeng
AU - Zhang, Yichen
AU - Ran, Gang
AU - Wang, Hong
N1 - Publisher Copyright:
© 2025 Elsevier Ltd.
PY - 2026/3
Y1 - 2026/3
N2 - Laser powder bed fusion (LPBF) fabricated AlSi7Mg alloy possesses refined microstructure that provide enhanced strength and toughness, yet its fatigue crack growth (FCG) behavior during service remains insufficiently understood. This study employs multi-scale characterization methods to investigate the FCG behavior and underlying mechanisms in LPBFed AlSi7Mg alloy with crack propagation directions both parallel and perpendicular to the building direction (BD). The results demonstrate pronounced anisotropy in the FCG response of LPBFed AlSi7Mg alloy. Under cyclic loading, crack growth with the propagation direction perpendicular to the BD remains governed by microstructural constraints. In contrast, specimens with crack propagation parallel to the BD exhibit a transition in crack growth behavior from microstructural to microstructural dominance. This shift in the governing mechanism leads to a corresponding change in crack growth rates. Furthermore, the observed anisotropy primarily originates from the distinct dislocation density evolution between the two specimen orientations. In specimens with crack growth perpendicular to the BD, high-density dislocation tangles form a barrier network during early propagation stages. With continued cycling, dislocations accumulate at grain boundaries, intensifying local stress concentrations and ultimately accelerating crack advancement. Conversely, in specimens with crack growth parallel to the BD, dislocations initially shear through Si precipitates, creating low-resistance paths. During later stages, however, the formation of dislocation walls promotes crack tip blunting, driving the transition from microstructure-controlled to plasticity-dominated crack growth mechanism.
AB - Laser powder bed fusion (LPBF) fabricated AlSi7Mg alloy possesses refined microstructure that provide enhanced strength and toughness, yet its fatigue crack growth (FCG) behavior during service remains insufficiently understood. This study employs multi-scale characterization methods to investigate the FCG behavior and underlying mechanisms in LPBFed AlSi7Mg alloy with crack propagation directions both parallel and perpendicular to the building direction (BD). The results demonstrate pronounced anisotropy in the FCG response of LPBFed AlSi7Mg alloy. Under cyclic loading, crack growth with the propagation direction perpendicular to the BD remains governed by microstructural constraints. In contrast, specimens with crack propagation parallel to the BD exhibit a transition in crack growth behavior from microstructural to microstructural dominance. This shift in the governing mechanism leads to a corresponding change in crack growth rates. Furthermore, the observed anisotropy primarily originates from the distinct dislocation density evolution between the two specimen orientations. In specimens with crack growth perpendicular to the BD, high-density dislocation tangles form a barrier network during early propagation stages. With continued cycling, dislocations accumulate at grain boundaries, intensifying local stress concentrations and ultimately accelerating crack advancement. Conversely, in specimens with crack growth parallel to the BD, dislocations initially shear through Si precipitates, creating low-resistance paths. During later stages, however, the formation of dislocation walls promotes crack tip blunting, driving the transition from microstructure-controlled to plasticity-dominated crack growth mechanism.
KW - AlSi7Mg alloy
KW - Anisotropy
KW - Fatigue crack growth
KW - Laser powder bed fusion
UR - https://www.scopus.com/pages/publications/105020912434
U2 - 10.1016/j.ijfatigue.2025.109355
DO - 10.1016/j.ijfatigue.2025.109355
M3 - 文章
AN - SCOPUS:105020912434
SN - 0142-1123
VL - 204
JO - International Journal of Fatigue
JF - International Journal of Fatigue
M1 - 109355
ER -