TY - JOUR
T1 - Prestrain and annealing effects on superalloy deformation
T2 - experiment and modelling
AU - Men, Mingliang
AU - Meng, Bao
AU - Han, Jinquan
AU - Zhu, Yu
AU - Wan, Min
N1 - Publisher Copyright:
© 2025 Elsevier Ltd
PY - 2025/10/1
Y1 - 2025/10/1
N2 - Accurate understanding of coupled deformation and annealing behavior is crucial for design and optimization of multi-pass forming. The two-stage uniaxial tensile tests with intermediate annealing were performed to explore the deformation behavior and microstructure evolution of the GH5188 superalloy. Experimental results reveal that increasing prestrain enhances yield strength but reduces the elongation and hardening exponent due to dislocation accumulation. A significant improvement in ductility and work-hardening is observed only under conditions of large prestrain and high annealing temperature. The enhancement is primarily attributed to the dislocation density reduction and the formation of abundant annealing twins during annealing. Furthermore, a new dislocation density-based constitutive model was developed, in which the parameters are characterized as the function of prestrain and annealing temperature. The model can accurately predict stress-strain relationships under varying prestrain and annealing processes, with an accuracy exceeding 93 %. Finite element simulations of a multi-pass forming process for a thin-walled superalloy part were carried out. Compared with the non-annealed condition, the predicted results based on the developed model align more accurately with the experimental observations, demonstrating the ability to capture the effects of deformation and annealing and its effectiveness in the actual forming application. This work provides a physically grounded modeling approach and theoretical support for optimizing multi-pass forming of alloys.
AB - Accurate understanding of coupled deformation and annealing behavior is crucial for design and optimization of multi-pass forming. The two-stage uniaxial tensile tests with intermediate annealing were performed to explore the deformation behavior and microstructure evolution of the GH5188 superalloy. Experimental results reveal that increasing prestrain enhances yield strength but reduces the elongation and hardening exponent due to dislocation accumulation. A significant improvement in ductility and work-hardening is observed only under conditions of large prestrain and high annealing temperature. The enhancement is primarily attributed to the dislocation density reduction and the formation of abundant annealing twins during annealing. Furthermore, a new dislocation density-based constitutive model was developed, in which the parameters are characterized as the function of prestrain and annealing temperature. The model can accurately predict stress-strain relationships under varying prestrain and annealing processes, with an accuracy exceeding 93 %. Finite element simulations of a multi-pass forming process for a thin-walled superalloy part were carried out. Compared with the non-annealed condition, the predicted results based on the developed model align more accurately with the experimental observations, demonstrating the ability to capture the effects of deformation and annealing and its effectiveness in the actual forming application. This work provides a physically grounded modeling approach and theoretical support for optimizing multi-pass forming of alloys.
KW - Annealing twins
KW - Constitutive modeling
KW - Dislocation density
KW - Intermediate annealing
KW - Microstructure evolution
KW - Multi-pass deformation
UR - https://www.scopus.com/pages/publications/105011583852
U2 - 10.1016/j.ijmecsci.2025.110633
DO - 10.1016/j.ijmecsci.2025.110633
M3 - 文章
AN - SCOPUS:105011583852
SN - 0020-7403
VL - 303
JO - International Journal of Mechanical Sciences
JF - International Journal of Mechanical Sciences
M1 - 110633
ER -