Research on Failure Mechanism and Parameter Sensitivity of Zonal Disintegration in Deep Tunnel

With the increase of excavation depth, the zonal disintegration phenomenon appears in the deep rock mass, which is quite different from the failure mode of shallow tunnel. In order to analyse the failure mechanism of this phenomenon, an elastoplastic softening damage model was put forward based on t...

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Main Authors: Xutao Zhang, Qiang Gao, Shicai Cui, Changrui Duan
Format: Article
Language:English
Published: Hindawi Limited 2019-01-01
Series:Advances in Civil Engineering
Online Access:http://dx.doi.org/10.1155/2019/5678427
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spelling doaj-74f84e4703ae40f4874830d18e12d3ef2020-11-25T01:42:58ZengHindawi LimitedAdvances in Civil Engineering1687-80861687-80942019-01-01201910.1155/2019/56784275678427Research on Failure Mechanism and Parameter Sensitivity of Zonal Disintegration in Deep TunnelXutao Zhang0Qiang Gao1Shicai Cui2Changrui Duan3State Key Laboratory of Deep Coal Mining and Environment Protection, Huainan 232000, ChinaGeotechnical and Structural Engineering Research Center, Shandong University, Jinan, Shandong 250061, ChinaSchool of Architecture and Engineering, Liaocheng University, Liaocheng 252059, ChinaState Key Laboratory of Deep Coal Mining and Environment Protection, Huainan 232000, ChinaWith the increase of excavation depth, the zonal disintegration phenomenon appears in the deep rock mass, which is quite different from the failure mode of shallow tunnel. In order to analyse the failure mechanism of this phenomenon, an elastoplastic softening damage model was put forward based on the softening damage characteristics of deep rock mass. The constitutive equations, the equilibrium equations, and the failure criterion were deduced. The theoretical solutions of radial displacement and radial stresses and tangential stresses of deep surrounding rock mass were calculated. The distribution law of zonal disintegration in deep tunnel was obtained. The theoretical solutions presented an oscillating mode. The theoretical calculated widths of fracture zones were in good agreement with the in situ test data. Besides, the sensitivity of different parameters to fracture morphology was calculated and analysed. The results show that the relative loading strength has a controlling role in the zonal disintegration morphology, followed by the cohesion force and deformation modulus, and the internal friction angle is the least. This study reveals the morphological characteristics and influencing factors of zonal disintegration, which provides a basis for the prediction and support control of fracture modes.http://dx.doi.org/10.1155/2019/5678427
collection DOAJ
language English
format Article
sources DOAJ
author Xutao Zhang
Qiang Gao
Shicai Cui
Changrui Duan
spellingShingle Xutao Zhang
Qiang Gao
Shicai Cui
Changrui Duan
Research on Failure Mechanism and Parameter Sensitivity of Zonal Disintegration in Deep Tunnel
Advances in Civil Engineering
author_facet Xutao Zhang
Qiang Gao
Shicai Cui
Changrui Duan
author_sort Xutao Zhang
title Research on Failure Mechanism and Parameter Sensitivity of Zonal Disintegration in Deep Tunnel
title_short Research on Failure Mechanism and Parameter Sensitivity of Zonal Disintegration in Deep Tunnel
title_full Research on Failure Mechanism and Parameter Sensitivity of Zonal Disintegration in Deep Tunnel
title_fullStr Research on Failure Mechanism and Parameter Sensitivity of Zonal Disintegration in Deep Tunnel
title_full_unstemmed Research on Failure Mechanism and Parameter Sensitivity of Zonal Disintegration in Deep Tunnel
title_sort research on failure mechanism and parameter sensitivity of zonal disintegration in deep tunnel
publisher Hindawi Limited
series Advances in Civil Engineering
issn 1687-8086
1687-8094
publishDate 2019-01-01
description With the increase of excavation depth, the zonal disintegration phenomenon appears in the deep rock mass, which is quite different from the failure mode of shallow tunnel. In order to analyse the failure mechanism of this phenomenon, an elastoplastic softening damage model was put forward based on the softening damage characteristics of deep rock mass. The constitutive equations, the equilibrium equations, and the failure criterion were deduced. The theoretical solutions of radial displacement and radial stresses and tangential stresses of deep surrounding rock mass were calculated. The distribution law of zonal disintegration in deep tunnel was obtained. The theoretical solutions presented an oscillating mode. The theoretical calculated widths of fracture zones were in good agreement with the in situ test data. Besides, the sensitivity of different parameters to fracture morphology was calculated and analysed. The results show that the relative loading strength has a controlling role in the zonal disintegration morphology, followed by the cohesion force and deformation modulus, and the internal friction angle is the least. This study reveals the morphological characteristics and influencing factors of zonal disintegration, which provides a basis for the prediction and support control of fracture modes.
url http://dx.doi.org/10.1155/2019/5678427
work_keys_str_mv AT xutaozhang researchonfailuremechanismandparametersensitivityofzonaldisintegrationindeeptunnel
AT qianggao researchonfailuremechanismandparametersensitivityofzonaldisintegrationindeeptunnel
AT shicaicui researchonfailuremechanismandparametersensitivityofzonaldisintegrationindeeptunnel
AT changruiduan researchonfailuremechanismandparametersensitivityofzonaldisintegrationindeeptunnel
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