A coupled elastoplastic damage model for brittle rocks

Brittle rock contains an important plastic deformation, which causes microcracks when coupled with stress-induced damage. A new coupled elastoplastic damage model is established in order to discuss the damage behaviors found in brittle rock, based on theoretical analysis and experiments. Micromechan...

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Main Authors: Zheng Li, Yundong Shou, Deping Guo, Filippo Berto
Format: Article
Language:English
Published: Gruppo Italiano Frattura 2020-07-01
Series:Frattura ed Integrità Strutturale
Subjects:
Online Access:https://www.fracturae.com/index.php/fis/article/view/2808/3053
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spelling doaj-2260e5463d344bb894b70599ff934f0b2020-11-25T03:50:09ZengGruppo Italiano FratturaFrattura ed Integrità Strutturale1971-89932020-07-01145344645610.3221/IGF-ESIS.53.3510.3221/IGF-ESIS.53.35A coupled elastoplastic damage model for brittle rocksZheng LiYundong ShouDeping GuoFilippo BertoBrittle rock contains an important plastic deformation, which causes microcracks when coupled with stress-induced damage. A new coupled elastoplastic damage model is established in order to discuss the damage behaviors found in brittle rock, based on theoretical analysis and experiments. Micromechanic considerations determine the effective elastic properties of anisotropic damaged geomaterials. An energy-based damage criterion is used to deduce the damage initiation and the damage evolution law of the brittle rocks. Moreover, the non-linear unified strength criterion is modified. It takes anisotropic damage and the effects of intermediate principal stress into account, in order to determine both the yield and plastic potential functions. The non-associated plastic flow rule is utilized. The consistency condition of plastic and damage is applied in the coupled process. The damage evolution rule and the coupled plastic damage of brittle rock are conceived within the framework of irreversible thermodynamics. By comparing the simulations and the experimental data from limestone that was subjected to various loading paths, a strong connection between the numerical simulations and experimental data is therefore obtained. The numerical results show that the new model is able to describe the main features of the mechanical properties observed in brittle rock.https://www.fracturae.com/index.php/fis/article/view/2808/3053coupled elastoplastic damage modelnon-associated plastic flow ruleanisotropic damage behaviorsbrittle rock
collection DOAJ
language English
format Article
sources DOAJ
author Zheng Li
Yundong Shou
Deping Guo
Filippo Berto
spellingShingle Zheng Li
Yundong Shou
Deping Guo
Filippo Berto
A coupled elastoplastic damage model for brittle rocks
Frattura ed Integrità Strutturale
coupled elastoplastic damage model
non-associated plastic flow rule
anisotropic damage behaviors
brittle rock
author_facet Zheng Li
Yundong Shou
Deping Guo
Filippo Berto
author_sort Zheng Li
title A coupled elastoplastic damage model for brittle rocks
title_short A coupled elastoplastic damage model for brittle rocks
title_full A coupled elastoplastic damage model for brittle rocks
title_fullStr A coupled elastoplastic damage model for brittle rocks
title_full_unstemmed A coupled elastoplastic damage model for brittle rocks
title_sort coupled elastoplastic damage model for brittle rocks
publisher Gruppo Italiano Frattura
series Frattura ed Integrità Strutturale
issn 1971-8993
publishDate 2020-07-01
description Brittle rock contains an important plastic deformation, which causes microcracks when coupled with stress-induced damage. A new coupled elastoplastic damage model is established in order to discuss the damage behaviors found in brittle rock, based on theoretical analysis and experiments. Micromechanic considerations determine the effective elastic properties of anisotropic damaged geomaterials. An energy-based damage criterion is used to deduce the damage initiation and the damage evolution law of the brittle rocks. Moreover, the non-linear unified strength criterion is modified. It takes anisotropic damage and the effects of intermediate principal stress into account, in order to determine both the yield and plastic potential functions. The non-associated plastic flow rule is utilized. The consistency condition of plastic and damage is applied in the coupled process. The damage evolution rule and the coupled plastic damage of brittle rock are conceived within the framework of irreversible thermodynamics. By comparing the simulations and the experimental data from limestone that was subjected to various loading paths, a strong connection between the numerical simulations and experimental data is therefore obtained. The numerical results show that the new model is able to describe the main features of the mechanical properties observed in brittle rock.
topic coupled elastoplastic damage model
non-associated plastic flow rule
anisotropic damage behaviors
brittle rock
url https://www.fracturae.com/index.php/fis/article/view/2808/3053
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AT filippoberto acoupledelastoplasticdamagemodelforbrittlerocks
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AT yundongshou coupledelastoplasticdamagemodelforbrittlerocks
AT depingguo coupledelastoplasticdamagemodelforbrittlerocks
AT filippoberto coupledelastoplasticdamagemodelforbrittlerocks
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