A two-scale three-dimensional approach for degradation and failure in polycrystalline materials is presented. The method involves the component level and the grain scale. The damageinduced softening at the macroscale is modelled employing an initial stress boundary element approach. The microscopic degradation is explicitly modelled associating Representative Volume Elements (RVEs) to relevant points of the macro continuum and employing a cohesive-frictional 3D grain-boundary formulation to simulate intergranular degradation and failure in the Voronoi morphology. Macro-strains are downscaled as RVEs' periodic boundary conditions, while overall macro-stresses are obtained upscaling the micro-stress field via volume averages. The comparison between effective macro-stresses for the damaged and undamaged RVEs allows to define a macroscopic measure of local material degradation. Some attention is devoted to avoiding pathological damage localization at the macro-scale. The multiscale processing algorithm is described and some preliminary results are illustrated.

Benedetti, I., Aliabadi, M.H. (2015). A multiscale approach to polycrystalline materials damage and failure. In J. Alfaiate, M.H. Aliabadi (a cura di), Advances in Fracture and Damage Mechanics XIII (pp. 33-36). Trans Tech [10.4028/www.scientific.net/KEM.627.33].

A multiscale approach to polycrystalline materials damage and failure

BENEDETTI, Ivano;
2015-01-01

Abstract

A two-scale three-dimensional approach for degradation and failure in polycrystalline materials is presented. The method involves the component level and the grain scale. The damageinduced softening at the macroscale is modelled employing an initial stress boundary element approach. The microscopic degradation is explicitly modelled associating Representative Volume Elements (RVEs) to relevant points of the macro continuum and employing a cohesive-frictional 3D grain-boundary formulation to simulate intergranular degradation and failure in the Voronoi morphology. Macro-strains are downscaled as RVEs' periodic boundary conditions, while overall macro-stresses are obtained upscaling the micro-stress field via volume averages. The comparison between effective macro-stresses for the damaged and undamaged RVEs allows to define a macroscopic measure of local material degradation. Some attention is devoted to avoiding pathological damage localization at the macro-scale. The multiscale processing algorithm is described and some preliminary results are illustrated.
2015
Settore ING-IND/04 - Costruzioni E Strutture Aerospaziali
Benedetti, I., Aliabadi, M.H. (2015). A multiscale approach to polycrystalline materials damage and failure. In J. Alfaiate, M.H. Aliabadi (a cura di), Advances in Fracture and Damage Mechanics XIII (pp. 33-36). Trans Tech [10.4028/www.scientific.net/KEM.627.33].
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/10447/100096
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