Phase field simulation of fatigue crack propagation under complex load situations

被引:35
作者
Schreiber, Christoph [1 ]
Mueller, Ralf [1 ]
Kuhn, Charlotte [2 ]
机构
[1] Tech Univ Kaiserslautern, Kaiserslautern, Germany
[2] Univ Stuttgart, Stuttgart, Germany
关键词
Phase field; Fatigue crack growth; Various amplitude loading; Finite elements; DAMAGE; MODEL; FRACTURE; BRITTLE; FORMULATION; DEGRADATION; MECHANICS; GROWTH;
D O I
10.1007/s00419-020-01821-0
中图分类号
O3 [力学];
学科分类号
08 ; 0801 ;
摘要
Within this work, we utilize the framework of phase field modeling for fracture in order to handle a very crucial issue in terms of designing technical structures, namely the phenomenon of fatigue crack growth. So far, phase field fracture models were applied to a number of problems in the field of fracture mechanics and were proven to yield reliable results even for complex crack problems. For crack growth due to cyclic fatigue, our basic approach considers an additional energy contribution entering the regularized energy density function accounting for crack driving forces associated with fatigue damage. With other words, the crack surface energy is not solely in competition with the time-dependent elastic strain energy but also with a contribution consisting of accumulated energies, which enables crack extension even for small maximum loads. The load time function applied to a certain structure has an essential effect on its fatigue life. Besides the pure magnitude of a certain load cycle, it is highly decisive at which point of the fatigue life a certain load cycle is applied. Furthermore, the level of the mean load has a significant effect. We show that the model developed within this study is able to predict realistic fatigue crack growth behavior in terms of accurate growth rates and also to account for mean stress effects and different stress ratios. These are important properties that must be treated accurately in order to yield an accurate model for arbitrary load sequences, where various amplitude loading occurs.
引用
收藏
页码:563 / 577
页数:15
相关论文
共 50 条
[21]   Cohesive zone modeling of fatigue crack propagation in slab track interface under cyclic temperature load [J].
Zhang, Jiawei ;
Zhu, Shengyang ;
Cai, Chengbiao ;
Wang, Mingze ;
Zhao, Hong .
ENGINEERING FAILURE ANALYSIS, 2022, 134
[22]   Numerical Investigation on Crack Propagation and Fatigue Life Estimation of Shield Lining under Train Vibration Load [J].
Tian, Long-gang ;
Cheng, Zi-ling ;
Hu, Zhi-qiang .
SHOCK AND VIBRATION, 2021, 2021
[23]   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
[24]   Simulation of the propagation speed of prefabricated crack in ceramic sample under flame thermal shock by the phase-field method [J].
Pan, Wei ;
Abdelmoula, Radhi ;
Li, Jia ;
Cheng, Changzheng .
JOURNAL OF ENGINEERING MATHEMATICS, 2025, 152 (01)
[25]   Crack propagation methodology under complex loadings [J].
Dompierre, Benoit ;
Mesbah, Majid ;
Wyart, Eric .
ENGINEERING FRACTURE MECHANICS, 2015, 142 :287-302
[26]   Phase field cohesive zone modeling for fatigue crack propagation in quasi-brittle materials [J].
Baktheer, Abedulgader ;
Martinez-Paneda, Emilio ;
Aldakheel, Fadi .
COMPUTER METHODS IN APPLIED MECHANICS AND ENGINEERING, 2024, 422
[27]   Phase field modelling of anisotropic crack propagation [J].
Thanh Tung Nguyen ;
Rethore, Julien ;
Baietto, Marie-Christine .
EUROPEAN JOURNAL OF MECHANICS A-SOLIDS, 2017, 65 :279-288
[28]   A computational framework for crack propagation along contact interfaces and surfaces under load [J].
Athanasiadis, Ignatios ;
Shvarts, Andrei G. ;
Ullah, Zahur ;
Lewandowski, Karol ;
Pearce, Chris J. ;
Kaczmarczyk, Lukasz .
COMPUTER METHODS IN APPLIED MECHANICS AND ENGINEERING, 2023, 414
[29]   Simulation of fatigue crack propagation in railway axles [J].
Beretta, S ;
Carboni, M .
FATIGUE AND FRACTURE MECHANICS, 34TH VOLUME, 2005, (1461) :368-381
[30]   Modelling crack initiation in bituminous binders under a rotational shear fatigue load [J].
Gao, Yangming ;
Li, Linglin ;
Zhang, Yuqing .
INTERNATIONAL JOURNAL OF FATIGUE, 2020, 139