Fracture initiation in multi-phase materials: a statistical characterization of microstructural damage sites
arXiv:1603.08898 · doi:10.1016/j.msea.2016.06.082
Abstract
Understanding the microstructural influence on the failure mechanisms in multi-phase materials calls for the identification of the worst-case scenario. This necessitates a statistical approach. By performing simulations directly based on micrographs, such an approach becomes feasible. This is applied here to extract the average microstructure around damage sites.
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Cited by in corpus (5)
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- On the critical role of martensite hardening behavior in the paradox of local and global ductility in dual-phase steels
- Improving the initial guess for the Newton-Raphson protocol in time-dependent simulations
- On the effect of strain and triaxiality on void evolution in a heterogeneous microstructure -- A statistical and single void study of damage in DP800
- Efficient topology optimization using compatibility projection in micromechanical homogenization