A physically-based model of cyclic responses for martensitic steels with the hierarchical lath structure under different loading modes

Author:

Zhao PengORCID,Xuan Fu-Zhen,Wang ChengORCID

Funder

National Natural Science Foundation of China

Publisher

Elsevier BV

Subject

Mechanical Engineering,Mechanics of Materials,Condensed Matter Physics

Reference60 articles.

1. Fatigue behavior of rail steel-a comparison between strain and stress controlled loading;Ahlström;Wear,2005

2. A dislocation-based model for high temperature cyclic viscoplasticity of 9–12Cr steels;Barrett;Comp. Mater. Sci.,2014

3. A physically-based constitutive model for high temperature microstructural degradation under cyclic deformation;Barrett;Int. J. Fatigue,2017

4. A study of the creep behavior of modified 9Cr–1Mo steel using continuum-damage modeling;Basirat;Int. J. Plast.,2012

5. Quantitative investigation of microstructural evolution of two melts of the martensitic rotor steel X12CrMoWVNbN10-1-1 during long-term creep;Blum;VGB PowerTech,2000

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