Deformation Evolution and Failure Mechanism of Monoclinic and Soft-Hard Interbedded Strata: Study of Muzhailing Tunnel

被引:19
作者
Liu, Weiwei [1 ]
Chen, Jianxun [1 ]
Chen, Lijun [1 ]
Luo, Yanbin [1 ]
Shi, Zhou [1 ]
Wu, Yunfei [1 ]
机构
[1] Changan Univ, Sch Highway, Middle Sect South Second Ring Rd, Xian 710064, Peoples R China
基金
中国国家自然科学基金;
关键词
Large deformation; Monoclinic structure; Soft-hard interbedded rocks; Disaster evolution; Failure mechanism; ROCK MASS; CONSTRUCTION; EXCAVATION; ROADWAYS; BEHAVIOR; PROGRESS;
D O I
10.1061/(ASCE)CF.1943-5509.0001605
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
The large deformation issue in soft rock mass is a worldwide difficulty that has puzzled tunnel engineering for a century and a half. Previous studies have mainly focused on a large deformation mechanism, prediction, and control of soft rock with single lithology, while there are limited studies on the tunneling-induced large deformation in monoclinic and soft-hard interbedded rock strata. This paper studies the deformation law, evolution process, and failure mechanism of a tunnel excavated in monoclinic and soft-hard interbedded rock mass by onsite measurements in the No. 3 inclined shaft of the Muzhailing Tunnel, which is a key control project of the Lanzhou-Haikou National Expressway. The achieved results indicated that the tunnel deformation was characterized by significant asymmetry, the maximum deformation in the cross section was observed to occur in the normal direction of the bedding plane, and the side of the larger deformation was consistent with the dip direction of the strata. The vertical displacements were greater than the horizontal displacements except for the right foot of the middle bench, and the primary lining at the upper left of the tunnel had intruded into the space of the secondary lining and had to be demolished and reconstructed. The displacement speed and amount mostly reached the peak in the construction stage of the middle bench, and its displacement amount accounted for about half of the total displacement. The spatiotemporal curves of large deformation could be divided into four stages according to the excavation time and the distance from the tunnel face. Two types of exponential functions were used to fit and predict the tunnel displacement, which displayed good applicability. The disaster evolution process of large deformations was summarized into five stages on a macro scale: premise, gestation, development (including four substages), occurrence, and treatment of large deformation. The failure mechanism of monoclinic and soft-hard interbedded rock mass is mainly the bending-tensile failure of thin-layered strata.
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页数:16
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共 35 条
  • [1] Extreme deformation and damage during the construction of large tunnels (reprinted from Canadian Tunnelling, 1998)
    Brox, D
    Hagedorn, H
    [J]. TUNNELLING AND UNDERGROUND SPACE TECHNOLOGY, 1999, 14 (01) : 23 - 28
  • [2] Failure Mechanisms and Modes of Tunnels in Monoclinic and Soft-Hard Interbedded Rocks: A Case Study
    Chen, Jianxun
    Liu, Weiwei
    Chen, Lijun
    Luo, Yanbin
    Li, Yao
    Gao, Haijiang
    Zhong, Daochuan
    [J]. KSCE JOURNAL OF CIVIL ENGINEERING, 2020, 24 (04) : 1357 - 1373
  • [3] Analysis of the failure mechanism and support technology for the Dongtan deep coal roadway
    Chen, Miao
    Yang, Sheng-Qi
    Zhang, Yuan-Chao
    Zang, Chuan-Wei
    [J]. GEOMECHANICS AND ENGINEERING, 2016, 11 (03) : 401 - 420
  • [4] China State Railway Group Co. Ltd, 2019, 95122019 QCR CHIN ST
  • [5] Deformation analysis of a soft-hard rock contact zone surrounding a tunnel
    Feng, Wenkai
    Huang, Runqiu
    Li, Tianbin
    [J]. TUNNELLING AND UNDERGROUND SPACE TECHNOLOGY, 2012, 32 : 190 - 197
  • [6] Simulation of roof shear failure in coal mine roadways using an innovative UDEC Trigon approach
    Gao, Fuqiang
    Stead, Doug
    Kang, Hongpu
    [J]. COMPUTERS AND GEOTECHNICS, 2014, 61 : 33 - 41
  • [7] Research progress and development trends of highway tunnels in China
    He C.
    Wang B.
    [J]. Journal of Modern Transportation, 2013, 21 (4): : 209 - 223
  • [8] Physical modeling of deep ground excavation in geologically horizontal strata based on infrared thermography
    He, M. C.
    Gong, W. L.
    Zhai, H. M.
    Zhang, H. P.
    [J]. TUNNELLING AND UNDERGROUND SPACE TECHNOLOGY, 2010, 25 (04) : 366 - 376
  • [9] Physical modeling of an underground roadway excavation in geologically 45° inclined rock using infrared thermography
    He, Manchao
    [J]. ENGINEERING GEOLOGY, 2011, 121 (3-4) : 165 - 176
  • [10] Physical modeling of an underground roadway excavation in vertically stratified rock using infrared thermography
    He, Manchao
    Jia, Xuena
    Gong, Weili
    Faramarzi, Lohrasb
    [J]. INTERNATIONAL JOURNAL OF ROCK MECHANICS AND MINING SCIENCES, 2010, 47 (07) : 1212 - 1221