Rock and Soil Mechanics ›› 2022, Vol. 43 ›› Issue (3): 831-842.doi: 10.16285/j.rsm.2021.0864

• Geotechnical Engineering • Previous Articles     Next Articles

Calculation method of longitudinal deformation of metro shield tunnel overpassing existing line at short distance

LIU Wei-zheng1, 2, DAI Xiao-ya1, SUN Kang1, AI Guo-ping3, LEI Tao3   

  1. 1. School of Civil Engineering, Central South University, Changsha, Huan 410075, China; 2. National Engineering Research Center of High Speed Railway Construction Technology, Central South University, Changsha, Huan 410075, China; 3. CCCC Highway Engineering Co., Ltd., Beijing 100024, China
  • Received:2021-06-09 Revised:2021-12-30 Online:2022-03-22 Published:2022-03-23
  • Supported by:
    This work was supported by the National Natural Science Foundation of China (52078500, U1834206), the Science and Technology Project of Hunan Housing and Urban-Rural Development Department (KY201943).

Abstract: In view of the uneven deformation of the operating subway line caused by the short-distance upward crossing construction of the new subway shield tunnel, the shield segments of the existing line are regarded as a series of short elastic beams connected by the tension spring, compression spring, and shear spring on the Pasternak foundation. The rotation effect and shear effect between segments and the interaction between segments and soil are considered, and a method is developed for calculating the additional stress caused by the construction of new shield tunnel based on Mindlin theory, and the longitudinal deformation of the existing tunnel based on the principle of minimum potential energy. The applicability of this method is verified by comparing with the measured data and the existing methods. According to the engineering example, the proposed method is used to analyze the influence of the segment connection, soil mechanical parameters, relative position parameters between the new line and the existing line and the reinforcement effect on the longitudinal deformation of metro shield tunnel. The results show that the friction force f and grouting pressure p heavily affect the deformation of the existing tunnel when a new tunnel is constructed to the upper crossing part, and that the longitudinal deformation is mainly affected by the unloading additional stress F when the new tunnel passes through the existing tunnel. With increasing shear stiffness ks and tensile stiffness kT, the uplift deformation of the existing line decreases, and ks has a relatively greater influence. The tunnel deformation can be controlled by enhancing the values of ks and kT, and the ring support reinforcement measures can effectively control the longitudinal deformation of the existing line, and the ring spacing of 1.5 m and 3?5 rings around the intersection point can achieve good results.

Key words: construction over existing line, existing subway tunnel, longitudinal deformation, calculation method, reinforcement measures

CLC Number: 

  • U451
[1] TAO Zhi-gang, REN Shu-lin, HAO Yu, LI Qiang, FU Qiang, HE Man-chao, . Physical model experiment on failure mechanism and NPR anchor cable control effect of layered counter-tilt slope [J]. Rock and Soil Mechanics, 2021, 42(4): 976-990.
[2] DENG Tao, LIN Cong-yu, LIU Zhi-peng, HUANG Ming, CHEN Wen-jing, . A simplified elastoplastic method for laterally loaded single pile with large displacement [J]. Rock and Soil Mechanics, 2020, 41(1): 95-102.
[3] ZHANG Ding-wen, LIU Zhi-xiang, SHEN Guo-gen, E Jun-yu, . Measurement of earth pressure of shallow buried tunnel with super large diameter and applicability evaluation of calculation method [J]. Rock and Soil Mechanics, 2019, 40(S1): 91-98.
[4] WANG Qin-ke, MA Jian-lin, CHEN Wen-long, YANG Yan-xin, HU Zhong-bo, . Centrifugal model tests and calculation method of uplift bearing capacity of rock-socketed pedestal pile overburden soil [J]. Rock and Soil Mechanics, 2019, 40(9): 3405-3415.
[5] LI Rui-shan, YUAN Xiao-ming. Simplified calculation method for the fundamental period of layered soil sites [J]. Rock and Soil Mechanics, 2019, 40(8): 3227-3235.
[6] MA Wen-guan, LIU Run, LIAN Ji-jian, GUO Shao-zeng. The study of penetration resistance of bucket foundation in silt [J]. Rock and Soil Mechanics, 2019, 40(4): 1307-1312.
[7] WEI Jiu-chuan, HAN Cheng-hao, ZHANG Wei-jie, XIE Chao, ZHANG Lian-zhen, LI Xiao-peng, ZHANG Chun-rui, JIANG Ji-gang. Mechanism of fissure grouting based on step-wise calculation method [J]. Rock and Soil Mechanics, 2019, 40(3): 913-925.
[8] JIN Ya-bing. A method for determination of reinforcement width and depth of trench face of diaphragm wall [J]. , 2017, 38(S2): 273-278.
[9] JIN Ya-bing. Study of stability calculation method of trench face reinforcement of diaphragm wall [J]. , 2017, 38(S1): 305-312.
[10] ZHANG Yan-jun, SU Kai, ZHOU Li, WU He-gao. Estimation of ground support installation time based on the tunnel longitudinal displacement of convergence-confinement method [J]. , 2017, 38(S1): 471-478.
[11] ZHANG Yong-jie, XIA Yi-qi, FENG Xia-ting, WANG Gui-yao,. A simplified method and affecting factors for double pile-column foundation in abrupt slope [J]. , 2017, 38(6): 1705-1715.
[12] ZONG Xiang. Study of longitudinal deformation of existing tunnel due to above excavation unloading [J]. , 2016, 37(S2): 571-577.
[13] ZHOU Yun-tao. A method for calculating the stability of unstable rocks on Three Gorges Reservoir by fracture mechanics [J]. , 2016, 37(S1): 495-499.
[14] ZHANG Zhao, LIU Feng-yin, QI Ji-lin, CHAI Jun-rui,. A dynamic calculation method for evolution law of capillarity forces of liquid bridge between coarse particles [J]. , 2016, 37(8): 2263-2270.
[15] BAI Hao , WANG Wu-bin , LIAO Zhi-yong , LIU Bao , SU Qian,. Model test study of stress and deformation of chair-shaped pile retaining structure on soft-rock steep slope [J]. , 2015, 36(S2): 221-228.
Viewed
Full text


Abstract

Cited

  Shared   
  Discussed   
[1] YAO Yang-ping, HOU Wei. Basic mechanical behavior of soils and their elastoplastic modeling[J]. , 2009, 30(10): 2881 -2902 .
[2] XU Jin-ming, QIANG Pei, ZHANG Peng-fei. Texture analysis of photographs of silty clay[J]. , 2009, 30(10): 2903 -2907 .
[3] XIANG Tian-bing, FENG Xia-ting, CHEN Bing-rui, JIANG Quan, ZHANG Chuan-qing. Rock failure mechanism and true triaxial experimental study of specimens with single structural plane under three-dimensional stress[J]. , 2009, 30(10): 2908 -2916 .
[4] SHI Yu-ling, MEN Yu-ming, PENG Jian-bing, HUANG Qiang-bing, LIU Hong-jia. Damage test study of different types structures of bridge decks by ground-fissure[J]. , 2009, 30(10): 2917 -2922 .
[5] XIA Dong-zhou, HE Yi-bin, LIU Jian-hua. Study of damping property and seismic action effect for soil-structure dynamic interaction system[J]. , 2009, 30(10): 2923 -2928 .
[6] XU Su-chao, FENG Xia-ting, CHEN Bing-rui. Experimental study of skarn under uniaxial cyclic loading and unloading test and acoustic emission characteristics[J]. , 2009, 30(10): 2929 -2934 .
[7] ZHANG Li-ting, QI Qing-lan, WEI Jing HUO Qian, ZHOU Guo-bin. Variation of void ratio in course of consolidation of warping clay[J]. , 2009, 30(10): 2935 -2939 .
[8] ZHANG Qi-yi. Study of failure patterns of foundation under combined loading[J]. , 2009, 30(10): 2940 -2944 .
[9] YI Jun, JIANG Yong-dong, XUAN Xue-fu, LUO Yun, ZHANG Yu. A liquid-solid dynamic coupling modelof ultrasound enhanced coalbed gas desorption and flow[J]. , 2009, 30(10): 2945 -2949 .
[10] TAO Gan-qiang, YANG Shi-jiao, REN Feng-yu. Experimental research on granular flow characters of caved ore and rock[J]. , 2009, 30(10): 2950 -2954 .