Phase field modeling of underloads induced fatigue crack acceleration

被引:0
作者
Wang, Hao [1 ]
Shi, Tong [1 ]
Huang, Qiyu [1 ]
Liu, Xiaoben [1 ]
机构
[1] China Univ Petr, Natl Engn Res Ctr Pipeline Safety, MOE Key Lab Petr Engn, Beijing Key Lab Urban Oil & Gas Distribut Technol, Beijing, Peoples R China
基金
中国国家自然科学基金;
关键词
Phase field fracture; Fatigue; Underload; Crack growth acceleration; BRITTLE-FRACTURE; GROWTH; PROPAGATION; FORMULATION; PLASTICITY;
D O I
10.1016/j.ijfatigue.2024.108547
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
This study proposes a novel methodology to model the fatigue crack growth acceleration under underloads using a phase field fracture framework. In this model, fatigue crack growth is characterized by the degradation of fracture toughness, with an emphasis on employing a representative loading strategy instead of explicit cyclic loading, thus accelerating simulations of high-cycle fatigue. The model integrates a zone-based crack acceleration approach that responds to single-cycle underload. Notably, the model adeptly captures the dynamics described by the Paris-Erdogan law. Post-underload crack growth acceleration is simulated by identifying an acceleration zone near the crack tip, inspired by existing models based on the plastic zone. This zone is defined by a strain energy density threshold, and the underload ratio governs the rate of fatigue damage accumulation attenuation within this area. The implementation leverages the UMAT user subroutine in Abaqus, utilizing coupled temperature-displacement elements where temperature analogously represents the phase field parameter. Experimental validation of the model confirms its ability to accurately reflect the loss of fatigue life and the acceleration of crack growth rates in compact tension and middle tension specimens. Additionally, the model shows promise for extension to periodic underloads, highlighting its potential for simulating real-world fatigue scenarios effectively.
引用
收藏
页数:10
相关论文
共 50 条
[21]   An efficient implementation of a phase field model for fatigue crack growth [J].
Yan, Sikang ;
Schreiber, Christoph ;
Mueller, Ralf .
INTERNATIONAL JOURNAL OF FRACTURE, 2022, 237 (1-2) :47-60
[22]   Micromechanical modeling of fatigue crack initiation in polycrystals [J].
Boeff, Martin ;
ul Hassan, Hamad ;
Hartmaier, Alexander .
JOURNAL OF MATERIALS RESEARCH, 2017, 32 (23) :4375-4386
[23]   Phase field modeling of crack propagation in shape memory ceramics Application to zirconia [J].
Moshkelgosha, Ehsan ;
Mamivand, Mahmood .
COMPUTATIONAL MATERIALS SCIENCE, 2020, 174
[24]   Phase-field model for fatigue crack growth in piezoelectrics: Energetically consistent boundary condition [J].
Tan, Yu ;
Rao, Wei ;
Wan, Ke ;
Peng, Kun ;
Zhao, Jianjun ;
Li, Xiangyu .
INTERNATIONAL JOURNAL OF SOLIDS AND STRUCTURES, 2025, 316
[25]   Phase-field modeling of crack growth and interaction in rock [J].
Xu, Bin ;
Xu, Tao ;
Xue, Yanchao ;
Heap, Michael J. ;
Ranjith, P. G. ;
Wasantha, P. L. P. ;
Li, Zhiguo .
GEOMECHANICS AND GEOPHYSICS FOR GEO-ENERGY AND GEO-RESOURCES, 2022, 8 (06)
[26]   Phase-field modeling of crack propagation in multiphase systems [J].
Schneider, Daniel ;
Schoof, Ephraim ;
Huang, Yunfei ;
Selzer, Michael ;
Nestler, Britta .
COMPUTER METHODS IN APPLIED MECHANICS AND ENGINEERING, 2016, 312 :186-195
[27]   Phase-field modeling of crack propagation in polycrystalline materials [J].
Emdadi, Arezoo ;
Zaeem, Mohsen Asle .
COMPUTATIONAL MATERIALS SCIENCE, 2021, 186
[28]   A phase field model for hydrogen-assisted fatigue [J].
Golahmar, Alireza ;
Kristensen, Philip K. ;
Niordson, Christian F. ;
Martinez-Paneda, Emilio .
INTERNATIONAL JOURNAL OF FATIGUE, 2022, 154
[29]   Phase field simulation of fatigue crack propagation under complex load situations [J].
Schreiber, Christoph ;
Mueller, Ralf ;
Kuhn, Charlotte .
ARCHIVE OF APPLIED MECHANICS, 2021, 91 (02) :563-577
[30]   Applications of Phase Field Methods in Modeling Fatigue Fracture and Performance Improvement Strategies: A Review [J].
Cui, Haitao ;
Du, Chenyu ;
Zhang, Hongjian .
METALS, 2023, 13 (04)