TY - JOUR
T1 - Femtosecond laser shock peening of ultra-thin-walled Ti-6Al-4V
T2 - study on surface integrity and high cycle fatigue mechanism
AU - Wang, Rongping
AU - Zhang, Xinbin
AU - He, Peng
AU - Wang, Wenhe
AU - Chen, Wenhua
AU - Wei, Xiaolong
AU - Pan, Xinlei
AU - Zhou, Liucheng
N1 - Publisher Copyright:
© 2025 The Authors.
PY - 2025/7/1
Y1 - 2025/7/1
N2 - Ultra-thin-walled structural components are widely used in aeroengines, but they are prone to high-cycle fatigue (HCF) failure due to cyclic alternating stresses during operation. While various surface treatment technologies have been developed to address this challenge, issues such as excessive macroscopic deformation due to limited machining precision remain unresolved. To improve the surface integrity and fatigue resistance of ultrathin-walled Ti–6Al–4V titanium alloys, this study innovatively regulates the energy and impact numbers of femtosecond laser shock peening (FLSP) technology. By controlling the deformation to within 0.15 mm, the fatigue limit of the material was successfully increased by 15.2 %. This improvement is attributed to the generation of a high-amplitude compressive residual stress (CRS) layer approximately 100 μm deep at the surface. Microstructural evolution and dislocation behavior analysis revealed that a single femtosecond laser shock peening (FS-1) significantly refined the grain structure and increased dislocation density, while triple femtosecond laser shock peening (FS-3) reduced dislocation density through a dynamic recrystallization (DRX) recovery mechanism. The uniform stress field induced by FLSP promoted crack initiation in the subsurface layer, and the multi-scale fracture features formed by FS-3 effectively reduced crack propagation and enhanced energy dissipation, further improving fatigue resistance. This work provides a novel technological approach and theoretical guidance for surface strengthening of ultra-thin-walled components.
AB - Ultra-thin-walled structural components are widely used in aeroengines, but they are prone to high-cycle fatigue (HCF) failure due to cyclic alternating stresses during operation. While various surface treatment technologies have been developed to address this challenge, issues such as excessive macroscopic deformation due to limited machining precision remain unresolved. To improve the surface integrity and fatigue resistance of ultrathin-walled Ti–6Al–4V titanium alloys, this study innovatively regulates the energy and impact numbers of femtosecond laser shock peening (FLSP) technology. By controlling the deformation to within 0.15 mm, the fatigue limit of the material was successfully increased by 15.2 %. This improvement is attributed to the generation of a high-amplitude compressive residual stress (CRS) layer approximately 100 μm deep at the surface. Microstructural evolution and dislocation behavior analysis revealed that a single femtosecond laser shock peening (FS-1) significantly refined the grain structure and increased dislocation density, while triple femtosecond laser shock peening (FS-3) reduced dislocation density through a dynamic recrystallization (DRX) recovery mechanism. The uniform stress field induced by FLSP promoted crack initiation in the subsurface layer, and the multi-scale fracture features formed by FS-3 effectively reduced crack propagation and enhanced energy dissipation, further improving fatigue resistance. This work provides a novel technological approach and theoretical guidance for surface strengthening of ultra-thin-walled components.
KW - Femtosecond laser shock peening
KW - High cycle fatigue performance
KW - Surface integrity
KW - Ultra-thin-walled Ti–6Al–4V alloy
UR - https://www.scopus.com/pages/publications/105025438245
U2 - 10.1016/j.jmrt.2025.07.065
DO - 10.1016/j.jmrt.2025.07.065
M3 - 文章
AN - SCOPUS:105025438245
SN - 2238-7854
VL - 37
SP - 4136
EP - 4152
JO - Journal of Materials Research and Technology
JF - Journal of Materials Research and Technology
ER -