Hydraulic and Mechanical Relationship of Individual Fracture in Rock under Compression and Shearing: Theoretical Study

In this paper, a new approach has been developed for predicting the hydraulic and mechanical relationship of individual fractures subjected to normal stress and compression-shear stress. Considering that the closure process of rough fracture subjected to normal stress can be divided into two phases...

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Main Authors: Zhiqiang Zhou, Yu Zhao, Chaolin Wang
Format: Article
Language:English
Published: Hindawi-Wiley 2020-01-01
Series:Geofluids
Online Access:http://dx.doi.org/10.1155/2020/8848116
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spelling doaj-678326e7c4584a67968a55443f4ecb622020-11-30T09:11:22ZengHindawi-WileyGeofluids1468-81151468-81232020-01-01202010.1155/2020/88481168848116Hydraulic and Mechanical Relationship of Individual Fracture in Rock under Compression and Shearing: Theoretical StudyZhiqiang Zhou0Yu Zhao1Chaolin Wang2College of Civil Engineering, Guizhou University, Guiyang 550025, ChinaCollege of Civil Engineering, Guizhou University, Guiyang 550025, ChinaCollege of Civil Engineering, Guizhou University, Guiyang 550025, ChinaIn this paper, a new approach has been developed for predicting the hydraulic and mechanical relationship of individual fractures subjected to normal stress and compression-shear stress. Considering that the closure process of rough fracture subjected to normal stress can be divided into two phases (linear behavior and nonlinear behavior), a relationship between normal stress and fracture aperture is derived through the minimum potential energy principle. Then, a formulation for calculating fracture permeability during shearing and compression processes is developed. Furthermore, a formulation for determining fracture aperture during the crack growth process is obtained, which is further implanted into the permeability model to predict the hydraulic behavior of fractured rock during fracture propagation. This new model not only considers the normal deformation of the fracture but also, and more importantly, integrates the effect of fracture propagation and shear dilation. Theoretical studies demonstrate that fracture permeability increases nonlinearly during fracture propagation. At last, experimental results and analytic results are compared to demonstrate the usefulness of the proposed models, and satisfactory agreements are obtained.http://dx.doi.org/10.1155/2020/8848116
collection DOAJ
language English
format Article
sources DOAJ
author Zhiqiang Zhou
Yu Zhao
Chaolin Wang
spellingShingle Zhiqiang Zhou
Yu Zhao
Chaolin Wang
Hydraulic and Mechanical Relationship of Individual Fracture in Rock under Compression and Shearing: Theoretical Study
Geofluids
author_facet Zhiqiang Zhou
Yu Zhao
Chaolin Wang
author_sort Zhiqiang Zhou
title Hydraulic and Mechanical Relationship of Individual Fracture in Rock under Compression and Shearing: Theoretical Study
title_short Hydraulic and Mechanical Relationship of Individual Fracture in Rock under Compression and Shearing: Theoretical Study
title_full Hydraulic and Mechanical Relationship of Individual Fracture in Rock under Compression and Shearing: Theoretical Study
title_fullStr Hydraulic and Mechanical Relationship of Individual Fracture in Rock under Compression and Shearing: Theoretical Study
title_full_unstemmed Hydraulic and Mechanical Relationship of Individual Fracture in Rock under Compression and Shearing: Theoretical Study
title_sort hydraulic and mechanical relationship of individual fracture in rock under compression and shearing: theoretical study
publisher Hindawi-Wiley
series Geofluids
issn 1468-8115
1468-8123
publishDate 2020-01-01
description In this paper, a new approach has been developed for predicting the hydraulic and mechanical relationship of individual fractures subjected to normal stress and compression-shear stress. Considering that the closure process of rough fracture subjected to normal stress can be divided into two phases (linear behavior and nonlinear behavior), a relationship between normal stress and fracture aperture is derived through the minimum potential energy principle. Then, a formulation for calculating fracture permeability during shearing and compression processes is developed. Furthermore, a formulation for determining fracture aperture during the crack growth process is obtained, which is further implanted into the permeability model to predict the hydraulic behavior of fractured rock during fracture propagation. This new model not only considers the normal deformation of the fracture but also, and more importantly, integrates the effect of fracture propagation and shear dilation. Theoretical studies demonstrate that fracture permeability increases nonlinearly during fracture propagation. At last, experimental results and analytic results are compared to demonstrate the usefulness of the proposed models, and satisfactory agreements are obtained.
url http://dx.doi.org/10.1155/2020/8848116
work_keys_str_mv AT zhiqiangzhou hydraulicandmechanicalrelationshipofindividualfractureinrockundercompressionandshearingtheoreticalstudy
AT yuzhao hydraulicandmechanicalrelationshipofindividualfractureinrockundercompressionandshearingtheoreticalstudy
AT chaolinwang hydraulicandmechanicalrelationshipofindividualfractureinrockundercompressionandshearingtheoreticalstudy
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