TY - JOUR
T1 - The plastic strain energy density-based fatigue life prediction method incorporating geometric-mechanical-microstructural characteristic parameters of machined surface integrity
AU - Liu, Shuyao
AU - Wang, Xibin
AU - Wang, Pai
AU - Chen, Hongtao
AU - Wang, Yong
AU - Liu, Zhibing
AU - Liu, Xiaochao
N1 - Publisher Copyright:
© 2025 The Authors
PY - 2025/12
Y1 - 2025/12
N2 - Surface integrity critically influences the fatigue life of load-bearing components, directly determining their safe service performance. To investigate the quantitative relationship between surface integrity and fatigue life, a representative volume element (RVE) model incorporating geometric-mechanical-microstructural surface integrity characteristics is established using crystal plasticity finite element method (CPFEM). Based on this model, the plastic strain energy density of machined surfaces is computed for fatigue life prediction. A surface plastic strain energy density-based (SPSED) fatigue life prediction method was proposed and validated by tensile fatigue and torsional fatigue experiment. For tensile fatigue, the prediction error was 51.46 % using the average plastic strain energy density (APSED) method, compared to 21.84 % when employing the SPSED approach. For torsional fatigue, the SPSED method achieved a prediction error of 18.64 %. Fractographic analysis of torsional fatigue specimens combined with stress intensity factor calculations revealed the fatigue process and surface integrity effects. Results indicate that specimens with anti-fatigue surface integrity exhibit slower circumferential crack propagation and enhance Mode III cracking, which lead to shear- dominated smooth surfaces in the instantaneous fracture zone. Conversely, specimens with shorter fatigue lives demonstrate greater influence of normal stresses, hence showing cleavage steps and dimples in the instantaneous fracture zone.
AB - Surface integrity critically influences the fatigue life of load-bearing components, directly determining their safe service performance. To investigate the quantitative relationship between surface integrity and fatigue life, a representative volume element (RVE) model incorporating geometric-mechanical-microstructural surface integrity characteristics is established using crystal plasticity finite element method (CPFEM). Based on this model, the plastic strain energy density of machined surfaces is computed for fatigue life prediction. A surface plastic strain energy density-based (SPSED) fatigue life prediction method was proposed and validated by tensile fatigue and torsional fatigue experiment. For tensile fatigue, the prediction error was 51.46 % using the average plastic strain energy density (APSED) method, compared to 21.84 % when employing the SPSED approach. For torsional fatigue, the SPSED method achieved a prediction error of 18.64 %. Fractographic analysis of torsional fatigue specimens combined with stress intensity factor calculations revealed the fatigue process and surface integrity effects. Results indicate that specimens with anti-fatigue surface integrity exhibit slower circumferential crack propagation and enhance Mode III cracking, which lead to shear- dominated smooth surfaces in the instantaneous fracture zone. Conversely, specimens with shorter fatigue lives demonstrate greater influence of normal stresses, hence showing cleavage steps and dimples in the instantaneous fracture zone.
KW - Fatigue life
KW - Fractographic analysis
KW - Plastic strain energy density
KW - Surface integrity
UR - https://www.scopus.com/pages/publications/105016779489
U2 - 10.1016/j.rineng.2025.107299
DO - 10.1016/j.rineng.2025.107299
M3 - Article
AN - SCOPUS:105016779489
SN - 2590-1230
VL - 28
JO - Results in Engineering
JF - Results in Engineering
M1 - 107299
ER -