TY - JOUR
T1 - Simultaneous improvement of low-cycle and high-cycle fatigue performance of LPBF IN718 alloy via pre-aging laser polishing
AU - Zhang, Qirui
AU - Chen, Wei
AU - Li, Xing
AU - Wang, Yimeng
AU - Xin, Mingze
AU - Zhang, Jikui
AU - Guan, Yingchun
N1 - Publisher Copyright:
© 2025 The Author(s). Published by Informa UK Limited, trading as Taylor & Francis Group.
PY - 2025
Y1 - 2025
N2 - Additive-manufactured superalloys face persistent fatigue limitations due to synergistic effects of surface defects, residual stresses, and anisotropic microstructures. Here, we develop a pre-aging laser polishing (PRAP) strategy that fundamentally restructures fatigue resistance mechanisms. Results reveal that PRAP enhances both low-cycle fatigue (LCF) (∼10⁴ cycles) and high-cycle fatigue (HCF) (>10⁶ cycles), with the HCF life extended by up to 70% while maintaining strength-ductility balance. Moreover, it preserves high yield strength (Δσ < 3% reduction) while boosting ductility (11% increase). Advanced microstructure characterisation demonstrates that PRAP uniquely achieves: (1) stabilised dislocation cell structures without detrimental tensile stresses, (2) elimination of columnar grain morphology, and (3) precipitate-mediated pinning that enhances cyclic stability. These nanoscale cells function as crack-blocking deformation units, as evidenced by in situ SEM fatigue testing. Remarkably, PRAP introduces a dual enhancement mechanism including suppression of crack nucleation in the HCF regime and stabilisation of cyclic plasticity under LCF large-strain deformation, overcoming the traditional strength-ductility-fatigue trade-off in AM superalloys.
AB - Additive-manufactured superalloys face persistent fatigue limitations due to synergistic effects of surface defects, residual stresses, and anisotropic microstructures. Here, we develop a pre-aging laser polishing (PRAP) strategy that fundamentally restructures fatigue resistance mechanisms. Results reveal that PRAP enhances both low-cycle fatigue (LCF) (∼10⁴ cycles) and high-cycle fatigue (HCF) (>10⁶ cycles), with the HCF life extended by up to 70% while maintaining strength-ductility balance. Moreover, it preserves high yield strength (Δσ < 3% reduction) while boosting ductility (11% increase). Advanced microstructure characterisation demonstrates that PRAP uniquely achieves: (1) stabilised dislocation cell structures without detrimental tensile stresses, (2) elimination of columnar grain morphology, and (3) precipitate-mediated pinning that enhances cyclic stability. These nanoscale cells function as crack-blocking deformation units, as evidenced by in situ SEM fatigue testing. Remarkably, PRAP introduces a dual enhancement mechanism including suppression of crack nucleation in the HCF regime and stabilisation of cyclic plasticity under LCF large-strain deformation, overcoming the traditional strength-ductility-fatigue trade-off in AM superalloys.
KW - IN718 superalloy
KW - Pre-aging laser polishing
KW - additive manufacturing
KW - dislocation cell structure
KW - fatigue performance
KW - microstructural stability
UR - https://www.scopus.com/pages/publications/105025880397
U2 - 10.1080/17452759.2025.2589473
DO - 10.1080/17452759.2025.2589473
M3 - 文章
AN - SCOPUS:105025880397
SN - 1745-2759
VL - 20
JO - Virtual and Physical Prototyping
JF - Virtual and Physical Prototyping
IS - 1
M1 - e2589473
ER -