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Micromechanical fatigue experiments for validation of microstructure-sensitive fatigue simulation models

A. Durmaz, E. Natkowski, N. Arnaudov, P. Sonnweber-Ribic, S. Weihe, S. Münstermann, C. Eberl, P. Gumbsch

International Journal of Fatigue, 160, 106824, (2022)

DOI: 10.1016/j.ijfatigue.2022.106824

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Crack initiation governs high cycle fatigue life and is sensitive to microstructural details. While corresponding microstructure-sensitive models are available, their validation is difficult. We propose a validation framework where a fatigue test is mimicked in a sub-modeling simulation by embedding the measured microstructure into the specimen geometry and adopting an approximation of the experimental boundary conditions. Exemplary, a phenomenological crystal plasticity model was applied to predict deformation in ferritic steel (EN1.4003). Hotspots in commonly used fatigue indicator parameter maps are compared with damage segmented from micrographs. Along with the data, the framework is published for benchmarking future micromechanical fatigue models.

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{"type":"article", "name":"a.durmaz20227", "author":"A. Durmaz and E. Natkowski and N. Arnaudov and P. Sonnweber-Ribic and S. Weihe and S. Münstermann and C. Eberl and P. Gumbsch", "title":"Micromechanical fatigue experiments for validation of microstructuresensitive fatigue simulation models", "journal":"International Journal of Fatigue", "volume":"160", "OPTnumber":"", "OPTmonth":"7", "year":"2022", "OPTpages":"106824", "OPTnote":"", "OPTkey":"fatigue damage; crystal plasticity; ferritic steel; micromechanical testing; validation", "DOI":"10.1016/j.ijfatigue.2022.106824"}
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