Abstract
In this paper, the cyclic plasticity and fatigue crack initiation behaviour of a tempered martensite ferritic steel under thermo-mechanical fatigue conditions is examined by means of micromechanical finite element modelling. The crystal plasticity-based model explicitly reflects the microstructure of the material, measured by electronic backscatter diffraction. The predicted cyclic thermo-mechanical response agrees well with experiments under both in-phase and out-of-phase conditions. A thermo-mechanical fatigue indicator parameter, with stress triaxiality and temperature taken into account, is developed to predict fatigue crack initiation. In the fatigue crack initiation simulation, the out-of-phase thermo-mechanical response is identified to be more dangerous than in-phase response, which is consistent with experimental failure data. It is shown that the behaviour of thermo-mechanical fatigue can be effectively predicted at the microstructural level and this can lead to a more accurate assessment procedure for power plant components.
| Original language | English |
|---|---|
| Pages (from-to) | 192-202 |
| Number of pages | 11 |
| Journal | International Journal of Fatigue |
| Volume | 87 |
| DOIs | |
| Publication status | Published - 1 Jun 2016 |
Keywords
- Crystal plasticity
- Fatigue crack initiation
- Finite element
- Tempered martensite ferritic steels
- Thermo-mechanical fatigue
Authors (Note for portal: view the doc link for the full list of authors)
- Authors
- Li, DF,Barrett, RA,O'Donoghue, PE,Hyde, CJ,O'Dowd, NP,Leen, SB