Finite strain solution for the surrounding rock of deeply buried tunnels based on the nonlinear strength characteristics

被引:0
|
作者
Chen, Jiajun [1 ]
Lu, Zhejin [2 ]
Meng, Chao [1 ,3 ]
Hu, Shihong [1 ]
Zhao, Lianheng [1 ,4 ,5 ]
机构
[1] School of Civil Engineering, Central South University, Changsha,410075, China
[2] Shenzhen Comprehensive Transportation and Municipal Engineering Design and Research Institute Co., Ltd., Shenzhen,518003, China
[3] China Railway Engineering Design and Consulting Group Co., Ltd., Beijing,100055, China
[4] Key Laboratory of Heavy-Haul Railway Engineering Structure, Ministry of Education, Central South University, Changsha,410075, China
[5] Hunan Provincial Key Laboratory for Disaster Prevention and Mitigation of Rail Transit Engineering Structures, Central South University, Changsha,410075, China
关键词
Deeply buried tunnel - Dilatancy characteristic - Finite strain - Hardening strain - Non-linear strength - Nonlinear strength characteristic - Strain hardening-strain softening - Strain-softening - Strength characteristics - Surrounding rock;
D O I
10.19713/j.cnki.43-1423/u.T20232121
中图分类号
学科分类号
摘要
The strength of the surrounding rock in deeply buried tunnels exhibits obvious nonlinear variation with increasing confining pressure, and its significant characteristic of high in-situ stress makes it difficult to accurately assess the mechanical responses of the surrounding rock in the tunnel excavation. This paper introduced the nonlinear strength characteristics of rock and established a logarithmic strain equation for the surrounding rock of deeply buried tunnels. Considering the commonly overlooked strain-hardening characteristics of rock in previous studies, the internal variables were solved using the plastic shear strain of the current node during the iterative finite difference process. An analytical method coupling elasto-plasticity with finite strain for surrounding rock was proposed, based on the unified strain-hardening, strain-softening constitutive model and the nonlinear dilatancy model. When the model reverted to small strain analysis, the analytical results aligned with classical theoretical solutions, validating the effectiveness of the proposed method. Analysis results of influential parameters reveal that neglecting the nonlinear attenuation of the rock dilatancy coefficient leads to an underestimation of the plastic zone range of the finite strain of surrounding rock. As the rock dilatancy characteristics increase, the displacement of the tunnel wall, the radius of the residual zone and the plastic zone gradually increase, and the increment is pronounced with decreasing confining pressure. The strain-softening characteristics of rock predominantly affect the proportion of the residual and softening zones of the surrounding rock, leading to changes in displacement of the surrounding rock. Enhancing this characteristic significantly reduces the radius of the plastic zone. The consideration of rock strain-hardening characteristics is crucial for evaluating the plastic zone range of surrounding rock. However, the increased strain-hardening characteristics exerts minor impact on the radius of the plastic zone, primarily altering the proportion between the softening and hardening zones of the surrounding rock. The method proposed in this paper can effectively evaluate the plastic zone range of finite strain of surrounding rock in deeply buried tunnels, offering theoretical guidance for the design of the supporting structure system. © 2024, Central South University Press. All rights reserved.
引用
收藏
页码:4148 / 4160
相关论文
共 50 条
  • [31] Analytical Solution of the Grouting Reinforcement Response of a Circular Cavern in Deeply Buried Fractured Surrounding Rock under a Nonuniform Stress Field
    Du, Jijie
    Liu, Jiaqi
    Lyu, Xianzhou
    Zhai, Peihe
    Wang, Weiming
    ACS OMEGA, 2022, 7 (32): : 28016 - 28029
  • [32] Experimental Study on the Influence Mechanism of the Structural Plane to Rockbursts in Deeply Buried Hard Rock Tunnels
    Cheng, Guangtan
    Zhang, Jian
    Gao, Qiang
    Liu, Chuanxiao
    SHOCK AND VIBRATION, 2021, 2021
  • [33] Nonlinear solution of stress and strain for major yielding of surrounding rock considering bolt reinforcement
    Rong, Yao
    Sun, Yang
    Zhu, Liqing
    Journal of Railway Science and Engineering, 2022, 19 (03) : 784 - 789
  • [34] Blasting excavation induced damage of surrounding rock masses in deep-buried tunnels
    M. Chen
    W. B. Lu
    P. Yan
    Y. G. Hu
    KSCE Journal of Civil Engineering, 2016, 20 : 933 - 942
  • [35] Surrounding rock pressure of shallow-buried bilateral bias tunnels under earthquake
    Liu, Xin-Rong
    Li, Dong-Liang
    Wang, Jun-Bao
    Wang, Zhen
    GEOMECHANICS AND ENGINEERING, 2015, 9 (04) : 427 - 445
  • [36] Blasting Excavation Induced Damage of Surrounding Rock Masses in Deep-buried Tunnels
    Chen, M.
    Lu, W. B.
    Yan, P.
    Hu, Y. G.
    KSCE JOURNAL OF CIVIL ENGINEERING, 2016, 20 (02) : 933 - 942
  • [37] Analytical solution of stress and displacement of surrounding rock in shallow buried tunnels with different hole-type under surface load☆
    Feng, Qiang
    Zhang, Wenbin
    Liu, Weiwei
    Cai, Changxi
    Wang, Hongbo
    TUNNELLING AND UNDERGROUND SPACE TECHNOLOGY, 2025, 159
  • [38] In situ experiments on width and evolution characteristics of excavation damaged zone in deeply buried tunnels
    LI ShaoJun 1
    2 Ertan Hydropower Development Company
    3 School of Resources and Civil Engineering
    Science China Technological Sciences, 2011, (S1) : 167 - 174
  • [39] In situ experiments on width and evolution characteristics of excavation damaged zone in deeply buried tunnels
    Li ShaoJun
    Feng XiaTing
    Li ZhanHai
    Chen BingRui
    Jiang Quan
    Wu ShiYong
    Hu Bin
    Xu JinSong
    SCIENCE CHINA-TECHNOLOGICAL SCIENCES, 2011, 54 : 167 - 174
  • [40] Theoretical Analysis of Energy Distribution Characteristics in Deeply Buried Circular Tunnels with a Revealed Cave
    Xu, Deming
    Wang, Yuan
    Huang, Jingqi
    BUILDINGS, 2024, 14 (08)