Influence of Three-Dimensional Stress Field Variation on Fracture Evolution Characteristics of a Roof

Excavation disturbance on the dynamic variation of the three-dimensional stress field is the main cause for the dynamic disasters of the surrounding rock mass of the roof. The stress condition in the surrounding rock mass of the roof during entry excavation and its impact on entry stability are syst...

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Main Authors: Xuyang Shi, Zhaolin Li, Qingxiang Cai, Wei Zhou, Wenshuai Li
Format: Article
Language:English
Published: Hindawi-Wiley 2020-01-01
Series:Geofluids
Online Access:http://dx.doi.org/10.1155/2020/8810619
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spelling doaj-0757208ee3b24705ac2b5854e8b728722021-01-11T02:21:18ZengHindawi-WileyGeofluids1468-81232020-01-01202010.1155/2020/8810619Influence of Three-Dimensional Stress Field Variation on Fracture Evolution Characteristics of a RoofXuyang Shi0Zhaolin Li1Qingxiang Cai2Wei Zhou3Wenshuai Li4School of MinesSchool of MinesSchool of MinesSchool of MinesState Key Laboratory for Geomechanics and Deep Underground EngineeringExcavation disturbance on the dynamic variation of the three-dimensional stress field is the main cause for the dynamic disasters of the surrounding rock mass of the roof. The stress condition in the surrounding rock mass of the roof during entry excavation and its impact on entry stability are systemically studied in this study. It is found that the surrounding rock mass of the roof is mainly influenced by the combined effect of the stress unloading and stress transference induced by entry excavation. A servo-controlled true triaxial material testing system is used to conduct the true triaxial loading and unloading experiments of rocks under different stress paths. The influence of different stress paths, especially the variation of the principal stress direction, on the mechanical characteristics and fracture characteristics of rocks is investigated. The results indicate that the variation of the principal stress direction has a significant impact on the macroscopic fracture characteristics of the rock. The main macroscopic fracture plane of the rock highly depends on the intermediate principal stress. The fracture evolution of the roof rock mass during entry excavation is analyzed. The results show that the change of the three-dimensional stress field induces the formation of complex fracture networks in the surrounding rock mass of the roof. The roof is likely to dislocate horizontally and collapse. The corners of the entry are seriously damaged. Based on the above findings, a support scheme is proposed to maintain the stability of a gob-side entry. The field experience suggests that the support scheme can achieve good results.http://dx.doi.org/10.1155/2020/8810619
collection DOAJ
language English
format Article
sources DOAJ
author Xuyang Shi
Zhaolin Li
Qingxiang Cai
Wei Zhou
Wenshuai Li
spellingShingle Xuyang Shi
Zhaolin Li
Qingxiang Cai
Wei Zhou
Wenshuai Li
Influence of Three-Dimensional Stress Field Variation on Fracture Evolution Characteristics of a Roof
Geofluids
author_facet Xuyang Shi
Zhaolin Li
Qingxiang Cai
Wei Zhou
Wenshuai Li
author_sort Xuyang Shi
title Influence of Three-Dimensional Stress Field Variation on Fracture Evolution Characteristics of a Roof
title_short Influence of Three-Dimensional Stress Field Variation on Fracture Evolution Characteristics of a Roof
title_full Influence of Three-Dimensional Stress Field Variation on Fracture Evolution Characteristics of a Roof
title_fullStr Influence of Three-Dimensional Stress Field Variation on Fracture Evolution Characteristics of a Roof
title_full_unstemmed Influence of Three-Dimensional Stress Field Variation on Fracture Evolution Characteristics of a Roof
title_sort influence of three-dimensional stress field variation on fracture evolution characteristics of a roof
publisher Hindawi-Wiley
series Geofluids
issn 1468-8123
publishDate 2020-01-01
description Excavation disturbance on the dynamic variation of the three-dimensional stress field is the main cause for the dynamic disasters of the surrounding rock mass of the roof. The stress condition in the surrounding rock mass of the roof during entry excavation and its impact on entry stability are systemically studied in this study. It is found that the surrounding rock mass of the roof is mainly influenced by the combined effect of the stress unloading and stress transference induced by entry excavation. A servo-controlled true triaxial material testing system is used to conduct the true triaxial loading and unloading experiments of rocks under different stress paths. The influence of different stress paths, especially the variation of the principal stress direction, on the mechanical characteristics and fracture characteristics of rocks is investigated. The results indicate that the variation of the principal stress direction has a significant impact on the macroscopic fracture characteristics of the rock. The main macroscopic fracture plane of the rock highly depends on the intermediate principal stress. The fracture evolution of the roof rock mass during entry excavation is analyzed. The results show that the change of the three-dimensional stress field induces the formation of complex fracture networks in the surrounding rock mass of the roof. The roof is likely to dislocate horizontally and collapse. The corners of the entry are seriously damaged. Based on the above findings, a support scheme is proposed to maintain the stability of a gob-side entry. The field experience suggests that the support scheme can achieve good results.
url http://dx.doi.org/10.1155/2020/8810619
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AT weizhou influenceofthreedimensionalstressfieldvariationonfractureevolutioncharacteristicsofaroof
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