Energy Dissipation and Damage Evolution Characteristics of Salt Rock under Uniaxial Cyclic Loading and Unloading Tension

Salt rock has been regarded as the optimal surrounding rock for underground gas storage (UGS), and it is occasionally subjected to cyclic tension because of the gas injection and production of salt cavern, which leads to the change in mechanical properties of salt rock. In this paper, a laboratory s...

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Main Authors: Anqi Zhu, Jianfeng Liu, Zhide Wu, Lu Wang, Hejuan Liu, Fukun Xiao, Chaofu Deng
Format: Article
Language:English
Published: Hindawi Limited 2021-01-01
Series:Advances in Civil Engineering
Online Access:http://dx.doi.org/10.1155/2021/6627959
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spelling doaj-05e34628cd8c4665aa537487750ad2a82021-05-31T00:32:59ZengHindawi LimitedAdvances in Civil Engineering1687-80942021-01-01202110.1155/2021/6627959Energy Dissipation and Damage Evolution Characteristics of Salt Rock under Uniaxial Cyclic Loading and Unloading TensionAnqi Zhu0Jianfeng Liu1Zhide Wu2Lu Wang3Hejuan Liu4Fukun Xiao5Chaofu Deng6State Key Laboratory of Hydraulic and Mountain River EngineeringState Key Laboratory of Hydraulic and Mountain River EngineeringCNPC Key Laboratory of Oil and Gas Underground Storage EngineeringState Key Laboratory of Hydraulic and Mountain River EngineeringInstitute of Rock and Soil MechanicsHeilongjiang Ground Pressure and Gas Control in Deep Mining Key LaboratoryComprehensive Section of National EconomySalt rock has been regarded as the optimal surrounding rock for underground gas storage (UGS), and it is occasionally subjected to cyclic tension because of the gas injection and production of salt cavern, which leads to the change in mechanical properties of salt rock. In this paper, a laboratory study is conducted to investigate the energy dissipation and damage evolution characteristics of salt rock under uniaxial cyclic tension monitored by acoustic emission (AE) machine. Compared to monotonic tension, both tensile strength and deformation capacity of salt rock are enhanced under cyclic tension. The fracture crack is approximately a single linear crack with large elliptical plastic deformation zone, which is consistent with the spatial distribution of AE events. In yield stage, the proportion of dissipative energy increases first but decreases subsequently. The relationship between AE energy-based damage variable and displacement is established. It is concluded that the damage variable is a piecewise power correlation with displacement while the growth rate of damage variable increases in the pre-peak stage but decreases in post-peak stage.http://dx.doi.org/10.1155/2021/6627959
collection DOAJ
language English
format Article
sources DOAJ
author Anqi Zhu
Jianfeng Liu
Zhide Wu
Lu Wang
Hejuan Liu
Fukun Xiao
Chaofu Deng
spellingShingle Anqi Zhu
Jianfeng Liu
Zhide Wu
Lu Wang
Hejuan Liu
Fukun Xiao
Chaofu Deng
Energy Dissipation and Damage Evolution Characteristics of Salt Rock under Uniaxial Cyclic Loading and Unloading Tension
Advances in Civil Engineering
author_facet Anqi Zhu
Jianfeng Liu
Zhide Wu
Lu Wang
Hejuan Liu
Fukun Xiao
Chaofu Deng
author_sort Anqi Zhu
title Energy Dissipation and Damage Evolution Characteristics of Salt Rock under Uniaxial Cyclic Loading and Unloading Tension
title_short Energy Dissipation and Damage Evolution Characteristics of Salt Rock under Uniaxial Cyclic Loading and Unloading Tension
title_full Energy Dissipation and Damage Evolution Characteristics of Salt Rock under Uniaxial Cyclic Loading and Unloading Tension
title_fullStr Energy Dissipation and Damage Evolution Characteristics of Salt Rock under Uniaxial Cyclic Loading and Unloading Tension
title_full_unstemmed Energy Dissipation and Damage Evolution Characteristics of Salt Rock under Uniaxial Cyclic Loading and Unloading Tension
title_sort energy dissipation and damage evolution characteristics of salt rock under uniaxial cyclic loading and unloading tension
publisher Hindawi Limited
series Advances in Civil Engineering
issn 1687-8094
publishDate 2021-01-01
description Salt rock has been regarded as the optimal surrounding rock for underground gas storage (UGS), and it is occasionally subjected to cyclic tension because of the gas injection and production of salt cavern, which leads to the change in mechanical properties of salt rock. In this paper, a laboratory study is conducted to investigate the energy dissipation and damage evolution characteristics of salt rock under uniaxial cyclic tension monitored by acoustic emission (AE) machine. Compared to monotonic tension, both tensile strength and deformation capacity of salt rock are enhanced under cyclic tension. The fracture crack is approximately a single linear crack with large elliptical plastic deformation zone, which is consistent with the spatial distribution of AE events. In yield stage, the proportion of dissipative energy increases first but decreases subsequently. The relationship between AE energy-based damage variable and displacement is established. It is concluded that the damage variable is a piecewise power correlation with displacement while the growth rate of damage variable increases in the pre-peak stage but decreases in post-peak stage.
url http://dx.doi.org/10.1155/2021/6627959
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