A computational and experimental comparison on the nucleation of fatigue cracks in statistical volume elements

Date

2020-04-05

Supervisor/s

Journal Title

Journal ISSN

Volume Title

Publisher

Elsevier

Department

Type

Article

ISSN

0142-1123

Format

Free to read from

Citation

Kakandar E, Barrios A, Michler J, et al., (2020) A computational and experimental comparison on the nucleation of fatigue cracks in statistical volume elements. International Journal of Fatigue, Volume 137, August 2020, Article number 105633

Abstract

The failure of micron-scale metallic components presents significant variability as a result of their size being comparable to microstructural length scales. Indeed, these components do not represent the bulk of the material but correspond to statistical volume elements (SVEs). This work investigates the role of SVEs on fatigue crack nucleation with a novel comparison between microbeam experiments and microstructure-sensitive simulations. We recreate multiple microstructural computational realizations to estimate fatigue crack nucleation lives and orientations by means of physics-based crystal plasticity models. We demonstrate a unique approach to validate microstructure sensitive models and quantify the fatigue crack stochasticity associated with small volumes.

Description

Software Description

Software Language

Github

Keywords

Crystal plasticity, Mesoscale model, lMicrostructure, Fatigue, MEMS

DOI

Rights

Attribution-NonCommercial-NoDerivatives 4.0 International

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