TY - JOUR
T1 - Enhancing fatigue resistance of additively manufactured novel Ni-based superalloy via crystal orientation and intergranular strain compatibility
T2 - An experimental and numerical investigation
AU - Meng, Hang
AU - Wang, Peiyan
AU - Wang, Jianyu
AU - Guo, Yanjun
AU - Yang, Weizhu
AU - Huo, Shihui
AU - Dong, Jianglin
AU - Zhang, Ping
AU - Zhang, Ke
AU - Yue, Zhufeng
N1 - Publisher Copyright:
© 2026 Elsevier B.V.
PY - 2026/7/25
Y1 - 2026/7/25
N2 - To assess the viability of additively manufactured (AM) alloys in reusable liquid rocket engines, a novel Ni-based superalloy with a complex microstructure was prepared via selective laser melting. The effect of the AM sample microstructure on fatigue crack initiation and propagation was quantitatively elucidated via experimental characterization and crystal plasticity (CP) simulation. The findings indicate that the AM sample exhibited enhanced low cycle fatigue performance compared to traditional wrought (W R ) samples. Specifically, in the initiation stage, the < 001 > texture orientation along the build direction promoted intergranular strain compatibility in AM samples. Meanwhile, the high geometric compatibility factor between adjacent grains disperses local slip accumulation. This synergistic effect promotes a more uniform distribution of plastic deformation, resulting in a longer initiation life than W R samples. In contrast, W R samples exhibit early crack initiation due to strong strain localization caused by the large elastic modulus gradient at twin boundaries. During the propagation stage, the similar grain orientations of the AM samples resulted in a small difference in the transgranular crack deflection angle, which accelerated the propagation of fatigue cracks. The large orientation difference between adjacent grains in the W R sample caused a significant deflection of the crack propagation path, which in turn reduced the crack propagation rate. Overall, although the W R sample exhibited stronger resistance to crack propagation, its early severe strain localization accelerated damage accumulation and limited overall fatigue performance. Finally, the Coffin-Manson equation based on accumulated plastic slip correction achieves accurate prediction of cross-scale life in both AM and W R samples.
AB - To assess the viability of additively manufactured (AM) alloys in reusable liquid rocket engines, a novel Ni-based superalloy with a complex microstructure was prepared via selective laser melting. The effect of the AM sample microstructure on fatigue crack initiation and propagation was quantitatively elucidated via experimental characterization and crystal plasticity (CP) simulation. The findings indicate that the AM sample exhibited enhanced low cycle fatigue performance compared to traditional wrought (W R ) samples. Specifically, in the initiation stage, the < 001 > texture orientation along the build direction promoted intergranular strain compatibility in AM samples. Meanwhile, the high geometric compatibility factor between adjacent grains disperses local slip accumulation. This synergistic effect promotes a more uniform distribution of plastic deformation, resulting in a longer initiation life than W R samples. In contrast, W R samples exhibit early crack initiation due to strong strain localization caused by the large elastic modulus gradient at twin boundaries. During the propagation stage, the similar grain orientations of the AM samples resulted in a small difference in the transgranular crack deflection angle, which accelerated the propagation of fatigue cracks. The large orientation difference between adjacent grains in the W R sample caused a significant deflection of the crack propagation path, which in turn reduced the crack propagation rate. Overall, although the W R sample exhibited stronger resistance to crack propagation, its early severe strain localization accelerated damage accumulation and limited overall fatigue performance. Finally, the Coffin-Manson equation based on accumulated plastic slip correction achieves accurate prediction of cross-scale life in both AM and W R samples.
KW - Additive manufacturing
KW - Crack propagation
KW - Fatigue crack initiation
KW - Low cycle fatigue
KW - Ni-based superalloy
UR - https://www.scopus.com/pages/publications/105047279506
U2 - 10.1016/j.addma.2026.105347
DO - 10.1016/j.addma.2026.105347
M3 - 文章
AN - SCOPUS:105047279506
SN - 2214-8604
VL - 128
JO - Additive Manufacturing
JF - Additive Manufacturing
M1 - 105347
ER -