›› 2016, Vol. 37 ›› Issue (12): 3569-3575.doi: 10.16285/j.rsm.2016.12.028

• Geotechnical Engineering • Previous Articles     Next Articles

Modal characteristics analysis of contact coupling mechanism between shield tunnel and soil

XIE Xiong-yao1, 2, WAN Ling1, 2, LI Hong-qiao1, 2   

  1. 1. MOE Key Laboratory of Geotechnical and Underground Engineering, Tongji University, Shanghai 200092, China; 2. Department of Geotechnical Engineering, College of Civil Engineering, Tongji University, Shanghai 200092, China
  • Received:2016-04-05 Online:2016-12-10 Published:2018-06-09
  • Supported by:

    This work is supported by the National Program on Key Basic Research Project of China (973 Program) (2011CB013803) and Science and Technology Commission of Shanghai Municaipality Research Project (13231200100, 14231200602).

Abstract: The dynamic behaviors of shield tunnel are influenced by the coupling interaction between the tunnel lining structure and soil behind lining wall. In order to analyze the tunnel-soil contact coupling mechanism, a shield tunnel in Shanghai metro is selected as study case; the Bucket method is used to analyze the modal characteristics of the tunnel structure under the two different types of contact couplings including node contact coupling and foundation contact coupling. The analysis results are compared to the tunnel modal characteristics extracting from the in-site vibration test data. The results show that constrained by soil coupling, the tunnel structure presents a low frequency characteristic, the first tenth order modal frequencies range are between 0 and 100 Hz, and the modal shape amplitudes are on the order of 10?4 m. And the most important is that there is a small error between the elastic foundation contact and the measured modal characteristics, which can be applied to simplifying the model of dynamic analysis of tunnel structure, and also provide a basis for tunnel structure damage identification based on the modal characteristics.

Key words: shield tunnel, modal characteristics, contact coupling, node contact, elastic foundation contact, ARMA modal identification

CLC Number: 

  • TU 443

[1] MI Bo, XIANG Yan-yong, . Model experiment and calculation analysis of excavation-seepage stability for shallow shield tunneling in sandy ground [J]. Rock and Soil Mechanics, 2020, 41(3): 837-848.
[2] YANG Zhen-xing, CHEN Jian, SUN Zhen-chuan, YOU Yong-feng, ZHOU Jian-jun, LÜ Qian-qian, . Experimental study on improved seawater slurry for slurry shield [J]. Rock and Soil Mechanics, 2020, 41(2): 501-508.
[3] WEI Gang, ZHANG Xin-hai, LIN Xin-bei, HUA Xin-xin, . Variations of transverse forces on nearby shield tunnel caused by foundation pits excavation [J]. Rock and Soil Mechanics, 2020, 41(2): 635-644.
[4] WANG Zhong-kai, XU Guang-li. Influence range and quantitative prediction of surface deformation during shield tunnelling and exiting stages [J]. Rock and Soil Mechanics, 2020, 41(1): 285-294.
[5] 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.
[6] ZHANG Zhi-guo, LI Sheng-nan, ZHANG Cheng-ping, WANG Zhi-wei, . Analysis of stratum deformation and lining response induced by shield construction considering influences of underground water level rise and fall [J]. Rock and Soil Mechanics, 2019, 40(S1): 281-296.
[7] HUANG Da-wei, ZHOU Shun-hua, FENG Qing-song, LUO Kun, LEI Xiao-yan, XU You-jun, . Analysis for vertical earth pressure transference on overlaying soils of shield tunnel under uniform surface surcharge [J]. Rock and Soil Mechanics, 2019, 40(6): 2213-2220.
[8] MO Zhen-ze, WANG Meng-shu, LI Hai-bo, QIAN Yong-jin, LUO Gen-dong, WANG Hui, . Laboratory investigation on pore water pressure variation caused by filter cake effect during slurry-EPB shield tunneling in silty sand layer [J]. Rock and Soil Mechanics, 2019, 40(6): 2257-2263.
[9] YAO Ai-jun, ZHANG Jian-tao, GUO Hai-feng, GUO Yan-fei. Influence of unloading-loading of foundation on shield tunnel underneath [J]. , 2018, 39(7): 2318-2326.
[10] ZHONG Yu, CHEN Jian, CHEN Guo-liang, WU Jia-ming, . Shield tunnel structure information modelling method based on building information modeling technology [J]. , 2018, 39(5): 1867-1876.
[11] YANG Wen-bo, CHEN Zi-quan, XU Zhao-yang, YAN Qi-xiang, HE Chuan, WEI Kai, . Dynamic response of shield tunnels and surrounding soil induced by train vibration [J]. , 2018, 39(2): 537-545.
[12] KANG Cheng, MEI Guo-xiong, LIANG Rong-zhu, WU Wen-bing, FANG Yu-xiang, KE Zhai-bang, . Analysis of the longitudinal deformation of existing shield tunnel induced by temporary surface surcharge [J]. Rock and Soil Mechanics, 2018, 39(12): 4605-4616.
[13] LI Chang-jun, CHEN Wei-zhong, YANG Jian-ping, LIU Jin-quan, . Variation of segment joint opening of underwater shield tunnel in operation period [J]. , 2018, 39(10): 3783-3793.
[14] WEI Gang, LIN Xiong, JIN Rui, DING Zhi,. Security discrimination of adjacent underground pipelines during the construction of twin shield tunnels [J]. , 2018, 39(1): 181-190.
[15] JIANG Yan, YANG Guang-hua, CHEN Fu-qiang, XU Chuan-bao, ZHANG Yu-cheng, . Force determination and monitoring feedback analysis of typical sections of lining structure of cross-sea shield tunnel under high head in Zhanjiang bay [J]. , 2018, 39(1): 275-286.
Viewed
Full text


Abstract

Cited

  Shared   
  Discussed   
No Suggested Reading articles found!