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An Energy-Equivalent d(+)/d(−) Damage Model with Enhanced Microcrack Closure-Reopening Capabilities for Cohesive-Frictional Materials

In this paper, an energy-equivalent orthotropic d(+)/d(−) damage model for cohesive-frictional materials is formulated. Two essential mechanical features are addressed, the damage-induced anisotropy and the microcrack closure-reopening (MCR) effects, in order to provide an enhancement of the origina...

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Autores principales: Cervera, Miguel, Tesei, Claudia
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5507001/
https://www.ncbi.nlm.nih.gov/pubmed/28772793
http://dx.doi.org/10.3390/ma10040433
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author Cervera, Miguel
Tesei, Claudia
author_facet Cervera, Miguel
Tesei, Claudia
author_sort Cervera, Miguel
collection PubMed
description In this paper, an energy-equivalent orthotropic d(+)/d(−) damage model for cohesive-frictional materials is formulated. Two essential mechanical features are addressed, the damage-induced anisotropy and the microcrack closure-reopening (MCR) effects, in order to provide an enhancement of the original d(+)/d(−) model proposed by Faria et al. 1998, while keeping its high algorithmic efficiency unaltered. First, in order to ensure the symmetry and positive definiteness of the secant operator, the new formulation is developed in an energy-equivalence framework. This proves thermodynamic consistency and allows one to describe a fundamental feature of the orthotropic damage models, i.e., the reduction of the Poisson’s ratio throughout the damage process. Secondly, a “multidirectional” damage procedure is presented to extend the MCR capabilities of the original model. The fundamental aspects of this approach, devised for generic cyclic conditions, lie in maintaining only two scalar damage variables in the constitutive law, while preserving memory of the degradation directionality. The enhanced unilateral capabilities are explored with reference to the problem of a panel subjected to in-plane cyclic shear, with or without vertical pre-compression; depending on the ratio between shear and pre-compression, an absent, a partial or a complete stiffness recovery is simulated with the new multidirectional procedure.
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spelling pubmed-55070012017-07-28 An Energy-Equivalent d(+)/d(−) Damage Model with Enhanced Microcrack Closure-Reopening Capabilities for Cohesive-Frictional Materials Cervera, Miguel Tesei, Claudia Materials (Basel) Article In this paper, an energy-equivalent orthotropic d(+)/d(−) damage model for cohesive-frictional materials is formulated. Two essential mechanical features are addressed, the damage-induced anisotropy and the microcrack closure-reopening (MCR) effects, in order to provide an enhancement of the original d(+)/d(−) model proposed by Faria et al. 1998, while keeping its high algorithmic efficiency unaltered. First, in order to ensure the symmetry and positive definiteness of the secant operator, the new formulation is developed in an energy-equivalence framework. This proves thermodynamic consistency and allows one to describe a fundamental feature of the orthotropic damage models, i.e., the reduction of the Poisson’s ratio throughout the damage process. Secondly, a “multidirectional” damage procedure is presented to extend the MCR capabilities of the original model. The fundamental aspects of this approach, devised for generic cyclic conditions, lie in maintaining only two scalar damage variables in the constitutive law, while preserving memory of the degradation directionality. The enhanced unilateral capabilities are explored with reference to the problem of a panel subjected to in-plane cyclic shear, with or without vertical pre-compression; depending on the ratio between shear and pre-compression, an absent, a partial or a complete stiffness recovery is simulated with the new multidirectional procedure. MDPI 2017-04-20 /pmc/articles/PMC5507001/ /pubmed/28772793 http://dx.doi.org/10.3390/ma10040433 Text en © 2017 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Cervera, Miguel
Tesei, Claudia
An Energy-Equivalent d(+)/d(−) Damage Model with Enhanced Microcrack Closure-Reopening Capabilities for Cohesive-Frictional Materials
title An Energy-Equivalent d(+)/d(−) Damage Model with Enhanced Microcrack Closure-Reopening Capabilities for Cohesive-Frictional Materials
title_full An Energy-Equivalent d(+)/d(−) Damage Model with Enhanced Microcrack Closure-Reopening Capabilities for Cohesive-Frictional Materials
title_fullStr An Energy-Equivalent d(+)/d(−) Damage Model with Enhanced Microcrack Closure-Reopening Capabilities for Cohesive-Frictional Materials
title_full_unstemmed An Energy-Equivalent d(+)/d(−) Damage Model with Enhanced Microcrack Closure-Reopening Capabilities for Cohesive-Frictional Materials
title_short An Energy-Equivalent d(+)/d(−) Damage Model with Enhanced Microcrack Closure-Reopening Capabilities for Cohesive-Frictional Materials
title_sort energy-equivalent d(+)/d(−) damage model with enhanced microcrack closure-reopening capabilities for cohesive-frictional materials
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5507001/
https://www.ncbi.nlm.nih.gov/pubmed/28772793
http://dx.doi.org/10.3390/ma10040433
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