TY - JOUR
T1 - Research on creep performance evaluation method of single crystal turbine blades based on crystal plastic slip theory
AU - Zhao, Yanchao
AU - Chen, Hanlin
AU - Guo, Jie
AU - Zhong, Yuhao
AU - Han, Chen
AU - Ding, Xiaofei
AU - Li, Lei
N1 - Publisher Copyright:
© 2026 Elsevier Ltd.
PY - 2026/9/10
Y1 - 2026/9/10
N2 - Crystal plastic slip and microstructural evolution are the primary mechanisms governing creep failure in single-crystal superalloys. Based on these failure characteristics, this paper focuses on the engineering application and full‑chain implementation of creep performance evaluation technology for full‑scale single‑crystal turbine blades based on material micromechanical behavior, establishing the engineering practical application system of this micromechanical model to full‑scale single‑crystal turbine blades. First, a dual-damage-parameter creep constitutive model considering crystal slip is adopted, and its temperature-dependent parameters are accurately calibrated via a genetic algorithm based on creep test data covering the actual service temperature range of turbine blades. Second, a creep UMAT subroutine is developed for finite element simulation of full-scale nickel-based single-crystal high-pressure turbine blades. Third, the accuracy of the creep life evaluation method is verified using standard creep test data of smooth blade regions. This work realizes the engineering application of the micromechanical creep model to full-scale single-crystal turbine blades, forms a full-chain technical system including multi-temperature creep testing, temperature-dependent parameter calibration, and full-component life verification, and provides a practical approach for the structural integrity assessment of aero-engine components.
AB - Crystal plastic slip and microstructural evolution are the primary mechanisms governing creep failure in single-crystal superalloys. Based on these failure characteristics, this paper focuses on the engineering application and full‑chain implementation of creep performance evaluation technology for full‑scale single‑crystal turbine blades based on material micromechanical behavior, establishing the engineering practical application system of this micromechanical model to full‑scale single‑crystal turbine blades. First, a dual-damage-parameter creep constitutive model considering crystal slip is adopted, and its temperature-dependent parameters are accurately calibrated via a genetic algorithm based on creep test data covering the actual service temperature range of turbine blades. Second, a creep UMAT subroutine is developed for finite element simulation of full-scale nickel-based single-crystal high-pressure turbine blades. Third, the accuracy of the creep life evaluation method is verified using standard creep test data of smooth blade regions. This work realizes the engineering application of the micromechanical creep model to full-scale single-crystal turbine blades, forms a full-chain technical system including multi-temperature creep testing, temperature-dependent parameter calibration, and full-component life verification, and provides a practical approach for the structural integrity assessment of aero-engine components.
KW - Creep Constitutive Model
KW - Crystal Plasticity Theory
KW - Genetic Algorithm Parameter Optimization
KW - Single-Crystal Turbine Blades
UR - https://www.scopus.com/pages/publications/105041284683
U2 - 10.1016/j.engfracmech.2026.112325
DO - 10.1016/j.engfracmech.2026.112325
M3 - 文献综述
AN - SCOPUS:105041284683
SN - 0013-7944
VL - 344
JO - Engineering Fracture Mechanics
JF - Engineering Fracture Mechanics
M1 - 112325
ER -