Stability on the Excavation Surface of Submarine Shield Tunnel Considering the Fluid-Solid Coupling Effect and the Equivalent Layer

被引:3
作者
Wang, Qian [1 ]
Li, Qiang [2 ]
Zhu, Jiancai [3 ,4 ]
Zhu, Ze'an [1 ]
机构
[1] Zhejiang Ocean Univ, Sch Naval Architecture & Maritime, Zhoushan 316022, Peoples R China
[2] Zhejiang Ocean Univ, Dept Civil Engn, Zhoushan 316022, Peoples R China
[3] Zhejiang Univ, Ctr Balance Architecture, Hangzhou 310027, Peoples R China
[4] Zhejiang Univ, Architectural Design & Res Inst, Hangzhou 310027, Peoples R China
关键词
equivalent layer; submarine shield tunnel; fluid-solid coupling effect; excavation surface stability; support pressure ratio; ground surface subsidence; FACE STABILITY; SHALLOW TUNNELS; SOIL; DRIVEN; MODEL;
D O I
10.3390/jmse11091667
中图分类号
U6 [水路运输]; P75 [海洋工程];
学科分类号
0814 ; 081505 ; 0824 ; 082401 ;
摘要
The support pressure on an excavation surface is a critical factor in the ground deformation and excavation stability of a submarine shield tunnel. The shield tail gap and the disturbance zone of grouting behind the tunnel wall are also important influencing factors. However, the effects of these factors on excavation stability are difficult to quantify. Consequently, a homogeneous, elastic, and annular equivalent layer is employed to simulate the thin layer behind the tunnel wall. Using COMSOL Multiphysics software, the effects of the water level depth, the thickness of the equivalent layer, the diameter of the shield tunnel, and the internal friction of soil and tunnel burial depth on the excavation deformation and ground surface subsidence of a submarine tunnel are considered with regard to the fluid-solid coupling effect. The result show that the surface subsidence of the case with respect to the fluid-solid coupling effect and the equivalent layer is larger than that without interstitial fluid and the equivalent layer, indicating that the present model can better simulate the stability of tunnel excavation. Therefore, it is important to consider the impact of the fluid-solid coupling effect and the equivalent layer on the deformation of the excavation face and ground surface subsidence.
引用
收藏
页数:17
相关论文
共 38 条
  • [1] Evaluation of tunnel face stability by transparent soil models
    Ahmed, Mahmoud
    Iskander, Magued
    [J]. TUNNELLING AND UNDERGROUND SPACE TECHNOLOGY, 2012, 27 (01) : 101 - 110
  • [2] Numerical modelling of tunnel face stability in homogeneous and layered soft ground
    Alagha, Ahmed S. N.
    Chapman, David N.
    [J]. TUNNELLING AND UNDERGROUND SPACE TECHNOLOGY, 2019, 94
  • [3] Analysis method and design charts for bolt reinforcement of the tunnel face in cohesive-frictional soils
    Anagnostou, G.
    Perazzelli, P.
    [J]. TUNNELLING AND UNDERGROUND SPACE TECHNOLOGY, 2015, 47 : 162 - 181
  • [4] Face stability conditions with earth-pressure-balanced shields
    Anagnostou, G
    Kovari, K
    [J]. TUNNELLING AND UNDERGROUND SPACE TECHNOLOGY, 1996, 11 (02) : 165 - 173
  • [5] The contribution of horizontal arching to tunnel face stability
    Anagnostou, Georgios
    [J]. GEOTECHNIK, 2012, 35 (01) : 34 - 44
  • [6] STABILITY OF A SHALLOW CIRCULAR TUNNEL IN COHESIONLESS SOIL
    ATKINSON, JH
    POTTS, DM
    [J]. GEOTECHNIQUE, 1977, 27 (02): : 203 - 215
  • [7] Broere W, 2000, GEOTECHNICAL ASPECTS OF UNDERGROUND CONSTRUCTION IN SOFT GROUND, P339
  • [8] SHALLOW TUNNELS IN COHESIONLESS SOIL - STABILITY OF TUNNEL FACE
    CHAMBON, P
    CORTE, JF
    [J]. JOURNAL OF GEOTECHNICAL ENGINEERING-ASCE, 1994, 120 (07): : 1148 - 1165
  • [9] Parameter analysis of excavation face stability of shield tunnel under high water pressure seepage
    Cheng, Xuansheng
    Zhang, Shanglong
    Zhou, Xinhai
    Xia, Peiyan
    [J]. PHYSICS AND CHEMISTRY OF THE EARTH, 2022, 128
  • [10] de Buhan P, 1999, INT J NUMER ANAL MET, V23, P79, DOI 10.1002/(SICI)1096-9853(199901)23:1<79::AID-NAG960>3.0.CO