Cavity Location Method for Operational Metro Tunnels Based on Perturbation Theory

被引:0
|
作者
Ling Wan
Xiongyao Xie
Lujun Wang
Pan Li
Hua Yin
机构
[1] Jiangxi Agricultural University,Dept. of Civil Engineering, College of Engineering
[2] Tongji University,Key Laboratory of Geotechnical and Underground Engineering, Ministry of Education
[3] Zhejiang University,Center for Hypergravity Experimental and Interdisciplinary Research, MOE Key Laboratory of Soft Soils and Geoenvironmental Engineering, College of Civil Engineering and Architecture
[4] Soochow University,School of Rail Transportation
[5] Jiangxi Agricultural University,College of Software
来源
关键词
Cavity disease; Metro tunnel; Perturbation theory; Modal strain energy; Cavity location;
D O I
暂无
中图分类号
学科分类号
摘要
Disease in the liner back cavities of operational metro tunnels is alternately affected by groundwater environment, train cyclic load, and ambient environment conditions. Cavity disease is characterized by high levels of hiddenness and uncertainty; it also easily induces other tunnel diseases which can reduce the structure’s bearing capacity and degrade structural safety and stability throughout the tunnel. This paper proposes a novel cavity-locating method for operational shield tunnels, with special focus on single- and multiple-cavity diseases. Based on perturbation theory, dynamic behaviors (modal frequencies and shapes) of different cavity cases were obtained from an analytical model of the original tunnel structure. A modal strain energy cavity indicator (MSECI) was established to reveal the locations of both single cavity and multiple cavities. A typical shield tunnel was modeled as an Euler-Bernoulli beam on a Winkler foundation and evaluated to validate the proposed method. The perturbation theory appears to effectively characterize the dynamic characteristics of liner back cavities in metro tunnels. MSECI can be used to locate cavities accurately. This work may provide a valuable theoretical basis for the detection and analysis of tunnel cavity disease and other tunnel health-monitoring applications.
引用
收藏
页码:2300 / 2313
页数:13
相关论文
共 50 条
  • [1] Cavity Location Method for Operational Metro Tunnels Based on Perturbation Theory
    Wan, Ling
    Xie, Xiongyao
    Wang, Lujun
    Li, Pan
    Yin, Hua
    KSCE JOURNAL OF CIVIL ENGINEERING, 2021, 25 (06) : 2300 - 2313
  • [2] New Damage Identification Method for Operational Metro Tunnel Based on Perturbation Theory and Fuzzy Logic
    Wan, Ling
    Xie, Xiongyao
    Wang, Lujun
    Li, Pan
    Lu, Yong
    KSCE JOURNAL OF CIVIL ENGINEERING, 2022, 26 (01) : 193 - 206
  • [3] New Damage Identification Method for Operational Metro Tunnel Based on Perturbation Theory and Fuzzy Logic
    Ling Wan
    Xiongyao Xie
    Lujun Wang
    Pan Li
    Yong Lu
    KSCE Journal of Civil Engineering, 2022, 26 : 193 - 206
  • [4] Metro Network Operational Solutions for Connectivity Control based on Percolation Theory
    Kim, Sion
    Ku, Donggyun
    Lee, Seungjae
    TRANSPORTATION RESEARCH RECORD, 2023, 2677 (05) : 951 - 965
  • [5] NOTE ON CAVITY PERTURBATION THEORY
    SPENCER, EG
    LECRAW, RC
    AULT, LA
    JOURNAL OF APPLIED PHYSICS, 1957, 28 (01) : 130 - 132
  • [6] ON A PERTURBATION THEORY BASED ON THE METHOD OF CHARACTERISTICS
    LIN, CC
    JOURNAL OF MATHEMATICS AND PHYSICS, 1954, 33 : 117 - 134
  • [7] ON A PERTURBATION THEORY BASED ON THE METHOD OF CHARACTERISTICS
    LIN, CC
    JOURNAL OF THE AERONAUTICAL SCIENCES, 1954, 21 (03): : 202 - 203
  • [8] Perturbation theory based on the method of cyclic characteristics
    Assawaroongruengchot, M.
    Marleau, G.
    NUCLEAR SCIENCE AND ENGINEERING, 2007, 157 (01) : 30 - 50
  • [9] Sensing Applications Based on Cavity Perturbation Method - A Proof of Concept
    Buiculescu, Valentin
    Rebigan, Roxana
    CAS 2018 PROCEEDINGS: 2018 INTERNATIONAL SEMICONDUCTOR CONFERENCE, 2018, : 119 - 122
  • [10] Turbine steam wetness measurement based on cavity perturbation method
    Zhang, Shue
    Wang, Hongyun
    Kang, Lina
    Dianli Zidonghua Shebei / Electric Power Automation Equipment, 2008, 28 (02): : 33 - 36