Analysis of Internal Stress Distribution and Mechanics Characteristics of Pre-existing Cavity in Brittle Rock Under Triaxial Cyclic Loading

In order to reveal the internal stress distribution and failure characteristics of a pre-existing cylindrical cavity in granite under triaxial cyclic loading, bonded particle models containing a cavity were established to investigate the variation in crack propagation, stress distribution, number of...

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Main Authors: Xiang Zhou, Jiangteng Li, Hang Lin
Format: Article
Language:English
Published: Frontiers Media S.A. 2020-02-01
Series:Frontiers in Earth Science
Subjects:
Online Access:https://www.frontiersin.org/article/10.3389/feart.2020.00033/full
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spelling doaj-cab39e9e62884e1a9df9c23ff250aa832020-11-25T00:15:36ZengFrontiers Media S.A.Frontiers in Earth Science2296-64632020-02-01810.3389/feart.2020.00033497104Analysis of Internal Stress Distribution and Mechanics Characteristics of Pre-existing Cavity in Brittle Rock Under Triaxial Cyclic LoadingXiang ZhouJiangteng LiHang LinIn order to reveal the internal stress distribution and failure characteristics of a pre-existing cylindrical cavity in granite under triaxial cyclic loading, bonded particle models containing a cavity were established to investigate the variation in crack propagation, stress distribution, number of micro-cracks, elastic modulus, and Poisson’s ratio with an increase in cavity diameter. The results show that the cavity diameter has a significant effect on the tensile cracks, compression-shear failure zone, and compressive stress distribution. The peak strength decreases as the diameter of the cavity increases. However, the number of cracks increases and the plastic deformation increases more obviously. With the increase of the cyclic axial stress, the decrease rate of the elastic modulus shows the rule of “first slow, fast later,” and the Poisson’s ratio increases. The distribution of local stress of σ1,σ2, andσ3 explains the behavior of the cracks around the cylindrical cavity well.https://www.frontiersin.org/article/10.3389/feart.2020.00033/fulltriaxial cyclic loadinggranitecrack propagationbonded particle modelfailure characteristics
collection DOAJ
language English
format Article
sources DOAJ
author Xiang Zhou
Jiangteng Li
Hang Lin
spellingShingle Xiang Zhou
Jiangteng Li
Hang Lin
Analysis of Internal Stress Distribution and Mechanics Characteristics of Pre-existing Cavity in Brittle Rock Under Triaxial Cyclic Loading
Frontiers in Earth Science
triaxial cyclic loading
granite
crack propagation
bonded particle model
failure characteristics
author_facet Xiang Zhou
Jiangteng Li
Hang Lin
author_sort Xiang Zhou
title Analysis of Internal Stress Distribution and Mechanics Characteristics of Pre-existing Cavity in Brittle Rock Under Triaxial Cyclic Loading
title_short Analysis of Internal Stress Distribution and Mechanics Characteristics of Pre-existing Cavity in Brittle Rock Under Triaxial Cyclic Loading
title_full Analysis of Internal Stress Distribution and Mechanics Characteristics of Pre-existing Cavity in Brittle Rock Under Triaxial Cyclic Loading
title_fullStr Analysis of Internal Stress Distribution and Mechanics Characteristics of Pre-existing Cavity in Brittle Rock Under Triaxial Cyclic Loading
title_full_unstemmed Analysis of Internal Stress Distribution and Mechanics Characteristics of Pre-existing Cavity in Brittle Rock Under Triaxial Cyclic Loading
title_sort analysis of internal stress distribution and mechanics characteristics of pre-existing cavity in brittle rock under triaxial cyclic loading
publisher Frontiers Media S.A.
series Frontiers in Earth Science
issn 2296-6463
publishDate 2020-02-01
description In order to reveal the internal stress distribution and failure characteristics of a pre-existing cylindrical cavity in granite under triaxial cyclic loading, bonded particle models containing a cavity were established to investigate the variation in crack propagation, stress distribution, number of micro-cracks, elastic modulus, and Poisson’s ratio with an increase in cavity diameter. The results show that the cavity diameter has a significant effect on the tensile cracks, compression-shear failure zone, and compressive stress distribution. The peak strength decreases as the diameter of the cavity increases. However, the number of cracks increases and the plastic deformation increases more obviously. With the increase of the cyclic axial stress, the decrease rate of the elastic modulus shows the rule of “first slow, fast later,” and the Poisson’s ratio increases. The distribution of local stress of σ1,σ2, andσ3 explains the behavior of the cracks around the cylindrical cavity well.
topic triaxial cyclic loading
granite
crack propagation
bonded particle model
failure characteristics
url https://www.frontiersin.org/article/10.3389/feart.2020.00033/full
work_keys_str_mv AT xiangzhou analysisofinternalstressdistributionandmechanicscharacteristicsofpreexistingcavityinbrittlerockundertriaxialcyclicloading
AT jiangtengli analysisofinternalstressdistributionandmechanicscharacteristicsofpreexistingcavityinbrittlerockundertriaxialcyclicloading
AT hanglin analysisofinternalstressdistributionandmechanicscharacteristicsofpreexistingcavityinbrittlerockundertriaxialcyclicloading
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