Grain boundary stresses in elastic materials
Samir El Shawish, Timon Mede

TL;DR
This paper introduces an analytical model for intergranular normal stresses in elastic polycrystalline materials, enabling prediction of local stresses based on grain boundary characteristics and material properties, validated against finite element simulations.
Contribution
The paper presents a novel perturbative analytical model for intergranular stresses in elastic polycrystals, accounting for complex grain boundary geometries and orientations.
Findings
Model accurately predicts intergranular normal stresses.
Validated against finite element simulations.
Applicable to various grain boundary types and loading conditions.
Abstract
A simple analytical model of intergranular normal stresses is proposed for a general elastic polycrystalline material with arbitrary shaped and randomly oriented grains under uniform loading. The model provides algebraic expressions for the local grain-boundary-normal stress and the corresponding uncertainties, as a function of the grain-boundary type, its inclination with respect to the direction of external loading and material-elasticity parameters. The knowledge of intergranular normal stresses is a necessary prerequisite in any local damage modeling approach, e.g., to predict the intergranular stress-corrosion cracking, grain-boundary sliding or fatigue-crack-initiation sites in structural materials. The model is derived in a perturbative manner, starting with the exact solution of a simple setup and later successively refining it to account for higher order complexities of…
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Taxonomy
TopicsFatigue and fracture mechanics · Metal Forming Simulation Techniques · Material Properties and Failure Mechanisms
