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Please use this identifier to cite or link to this item: http://dspace.ucuenca.edu.ec/handle/123456789/37896
Title: A phase-field model for ductile fracture with shear bands: a parallel implementation
Other Titles: 
Authors: Houzeaux, Guillaume
Samaniego Alvarado, Esteban Patricio
Samaniego, Cristóbal
Vázquez, Mariano
Ulloa, Jacinto
Rodriguez Manzano, Mario Patricio
metadata.dc.ucuenca.correspondencia: Samaniego, Cristóbal, cristobal.samaniego@bsc.es
Keywords: Ductile fracture
Parallel implementation
Phase-field
Shear band
metadata.dc.ucuenca.areaconocimientofrascatiamplio: 2. Ingeniería y Tecnología
metadata.dc.ucuenca.areaconocimientofrascatidetallado: 2.1.1 Ingeniería Civil
metadata.dc.ucuenca.areaconocimientofrascatiespecifico: 2.1 Ingeniería Civil
metadata.dc.ucuenca.areaconocimientounescoamplio: 07 - Ingeniería, Industria y Construcción
metadata.dc.ucuenca.areaconocimientounescodetallado: 0711 - Ingeniería y Procesos Químicos
metadata.dc.ucuenca.areaconocimientounescoespecifico: 071 - Ingeniería y Profesiones Afines
Issue Date: 2021
metadata.dc.ucuenca.embargoend: 31-Jan-2023
metadata.dc.ucuenca.volumen: Volumen 200
metadata.dc.source: International Journal of Mechanical Sciences
metadata.dc.identifier.doi: 10.1016/j.ijmecsci.2021.106424
metadata.dc.type: ARTÍCULO
Abstract: 
Modeling complex material failure with competing mechanisms is a difficult task that often leads to mathematical and numerical challenges. This work contributes to the study of localized failure mechanisms by means of phase fields in a variational framework: in addition to the treatment of brittle and ductile fracture, done in previous work, we consider the case of shear band formation followed by ductile fracture. To achieve this, a new degradation function is introduced, which distinguishes between two successive failure mechanisms: (i) plastic strain localization and (ii) ductile fracture. Specifically, the onset of elastic damage is delayed to allow for the formation of shear bands driven by plastic deformations, thus accounting for the mechanisms that precede the coalescence of voids and microcracks into macroscopic ductile fractures. Once a critical degradation value has been reached, a phase-field model is introduced to capture the (regularized) kinematics of macroscopic cracks. To tackle the issue of potentially high computational cost, we propose a parallel implementation of the phase-field approach based on an iterative algorithm. The algorithm was implemented within the Alya system, a high performance computational mechanics code. Several examples show the capabilities of our implementation. We pay special attention to the ability to capture different failure mechanisms
URI: http://dspace.ucuenca.edu.ec/handle/123456789/37896
https://www.sciencedirect.com/science/article/abs/pii/S0020740321001594
metadata.dc.ucuenca.urifuente: https://www.sciencedirect.com/journal/international-journal-of-mechanical-sciences/vol/200/suppl/C
ISSN: 0020-7403
Appears in Collections:Artículos

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