Structural health monitoring of the Tamar suspension bridge

被引:156
|
作者
Koo, K. Y. [1 ]
Brownjohn, J. M. W. [1 ]
List, D. I. [2 ]
Cole, R. [2 ]
机构
[1] Univ Sheffield, Sheffield S1 3JD, S Yorkshire, England
[2] Tamar Bridge & Torpoint Ferry Joint Comm, Plymouth, Devon, England
来源
STRUCTURAL CONTROL & HEALTH MONITORING | 2013年 / 20卷 / 04期
基金
英国工程与自然科学研究理事会;
关键词
structural health monitoring; suspension bridges; environmental effects; MODAL PARAMETER-IDENTIFICATION; FULL-SCALE MEASUREMENT; TYPHOON; EXCITATION; VIBRATION;
D O I
10.1002/stc.1481
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
This paper presents experiences and lessons from the structural health monitoring practice on the Tamar Bridge in Plymouth, UK, a 335-m span suspension bridge opened in 1961. After 40years of operations, the bridge was strengthened and widened in 2001 to meet a European Union Directive to carry heavy goods vehicles up to 40tonnes by a process in which additional stay cables and cantilever decks were added and the composite deck was replaced with a lightweight orthotropic steel deck. At that time, a structural monitoring system comprising wind, temperature, cable tension and deck level sensors was installed to monitor the bridge behaviour during and after the upgrading. In 2006 and 2009, respectively, a dynamic response monitoring system with real-time modal parameter identification and a robotic total station were added to provide a more complete picture of the bridge behaviour, and in 2006 a one-day ambient vibration survey of the bridge was carried out to characterize low-frequency vibration modes of the suspended structure. Practical aspects of the instrumentation, data processing and data management are discussed, and some key response observations are presented. The bridge is a surprisingly complex structure with a number of inter-linked loadresponse mechanisms evident, all of which have to be characterized as part of a long-term structural health monitoring exercise. Structural temperature leading to thermal expansion of the deck, main cables and additional stays is a major factor on global deformation, whereas vehicle loading and wind are usually secondary factors. Dynamic response levels and modal parameters show apparently complex relationships among themselves and with the quasi-static load and response. As well as the challenges of fusing and managing data from three distinct but parallel monitoring systems, there is a significant challenge in interpreting the load and response data firstly to diagnose the normal service behaviour and secondly to identify performance anomalies. Copyright (c) 2012 John Wiley & Sons, Ltd.
引用
收藏
页码:609 / 625
页数:17
相关论文
共 50 条
  • [41] Testbed for Structural Health Monitoring of Long-Span Suspension Bridges
    Xu, Y. L.
    Zhang, X. H.
    Zhan, S.
    Hong, X. J.
    Zhu, L. D.
    Xia, Y.
    Zhu, S.
    JOURNAL OF BRIDGE ENGINEERING, 2012, 17 (06) : 896 - 906
  • [43] Analysis and assessment of bridge health monitoring mass data—progress in research/development of “Structural Health Monitoring”
    AiQun Li
    YouLiang Ding
    Hao Wang
    Tong Guo
    Science China Technological Sciences, 2012, 55 : 2212 - 2224
  • [44] Deep learning-based prediction of wind-induced lateral displacement response of suspension bridge decks for structural health monitoring
    Wang, Zhi-wei
    Lu, Xiao-fan
    Zhang, Wen-ming
    Fragkoulis, Vasileios C.
    Zhang, Yu-feng
    Beer, Michael
    JOURNAL OF WIND ENGINEERING AND INDUSTRIAL AERODYNAMICS, 2024, 247
  • [45] New advances on structural health monitoring for Runyang Yangtse River Bridge
    Li, A. Q.
    Ding, Y. L.
    Sun, J.
    ISISS '2007: PROCEEDINGS OF THE INNOVATION AND SUSTAINABILITY OF STRUCTURES, VOLS 1 AND 2, 2008, : 27 - 39
  • [46] Structural health monitoring of the Jiangyin Bridge: system upgrade and data analysis
    Zhou, H. F.
    Ni, Y. Q.
    Ko, J. M.
    SMART STRUCTURES AND SYSTEMS, 2013, 11 (06) : 637 - 662
  • [47] Optimization of bridge maintenance strategies based on structural health monitoring information
    Orcesi, Andre D.
    Frangopol, Dan M.
    STRUCTURAL SAFETY, 2011, 33 (01) : 26 - 41
  • [48] Structural health monitoring method for curved concrete bridge box girders
    Glisic, Branko
    Posenato, Daniele
    Inaudi, Daniele
    Figini, Angelo
    SENSORS AND SMART STRUCTURES TECHNOLOGIES FOR CIVIL, MECHANICAL, AND AEROSPACE SYSTEMS 2008, PTS 1 AND 2, 2008, 6932
  • [49] Structural health monitoring on Yangluo Yangtze River Bridge: Implementation and demonstration
    Zhu, Ya-Fei
    Ren, Wei-Xin
    Wang, Ya-Fei
    ADVANCES IN STRUCTURAL ENGINEERING, 2022, 25 (07) : 1431 - 1448
  • [50] Long-term structural health monitoring of the Crowchild Trail Bridge
    VanZwol, Tim R.
    Cheng, J. J. Roger
    Tadros, Gamil
    CANADIAN JOURNAL OF CIVIL ENGINEERING, 2008, 35 (02) : 179 - 189