Monitoring, Modeling, and Assessment of a Self-Sensing Railway Bridge during Construction

被引:16
作者
Butler, Liam J. [1 ,2 ]
Lin, Weiwei [3 ]
Xu, Jinlong [4 ]
Gibbons, Niamh [1 ]
Elshafie, Mohammed Z. E. B. [1 ]
Middleton, Campbell R. [1 ]
机构
[1] Univ Cambridge, Dept Engn, Cambridge CB1 2PZ, England
[2] Alan Turing Inst, Lloyds Register Fdn Programme Data Centr Engn, Euston Rd London 96, London, England
[3] Waseda Univ, Dept Civil & Environm Engn, Tokyo 1698050, Japan
[4] Harbin Inst Technol, Sch Civil Engn, Harbin 150001, Heilongjiang, Peoples R China
基金
“创新英国”项目; 英国工程与自然科学研究理事会;
关键词
Bridge monitoring; Fiber optic sensors; Preservice assessment; Finite-element modeling; Railway bridges;
D O I
10.1061/(ASCE)BE.1943-5592.0001288
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
This study shows how integrating fiber optic sensor (FOS) networks into bridges during the construction stage can be used to quantify preservice performance. Details of the installation of a large FOS network on a new steel-concrete composite railway bridge in the United Kingdom are presented. An overview of the FOS technology, installation techniques, and monitoring program is also presented, and the monitoring results from several construction stages are discussed. A finite-element (FE) model was developed and a phased analysis was carried out to simulate strain development in the bridge during consecutive construction stages. The response of the self-sensing bridge to the time-dependent properties of the concrete deck was evaluated by comparing FOS measurements to predicted results according to several model code formulations implemented in the FE model. The preservice strain distribution due to dead loading is typically assumed to act uniformly along the bridge length; however, the monitoring results revealed that the distribution was highly variable as a result of the complex interactions between gravity loading, bridge geometry, time-dependent concrete properties, and temperature effects. Moment utilization of the main girders and composite beams, during preservice conditions, was assessed and found to be between 19.3 and 24.9% of the respective design cross-section capacities. Quantifying preservice performance via integrated sensing also provided a critical baseline for the bridge, which enables future data-driven condition assessments.
引用
收藏
页数:16
相关论文
共 31 条
[21]   Time-Dependent Monitoring and Modeling of I-35W St. Anthony Falls Bridge. I: Analysis of Monitoring Data [J].
Hedegaard, Brock D. ;
French, Catherine E. W. ;
Shield, Carol K. .
JOURNAL OF BRIDGE ENGINEERING, 2017, 22 (07)
[22]  
Kreuzer M., 2006, Strain Measurement with Fiber Bragg Grating Sensors
[23]  
S2338-1.0 e
[24]   Strain transferring analysis of fiber Bragg grating sensors [J].
Li, DS ;
Li, HN ;
Ren, L ;
Song, GB .
OPTICAL ENGINEERING, 2006, 45 (02)
[25]   Fibre Bragg gratings in structural health monitoring - Present status and applications [J].
Majumder, Mousumi ;
Gangopadhyay, Tarun Kumar ;
Chakraborty, Ashim Kumar ;
Dasgupta, Kamal ;
Bhattacharya, D. K. .
SENSORS AND ACTUATORS A-PHYSICAL, 2008, 147 (01) :150-164
[26]  
Neville AM., 2011, PROPERTIES CONCRETE, DOI DOI 10.1139/L97-107
[27]   Development of a long-term monitoring system based on FBG sensors applied to concrete bridges [J].
Rodrigues, Carlos ;
Felix, Carlos ;
Lage, Armindo ;
Figueiras, Joaquim .
ENGINEERING STRUCTURES, 2010, 32 (08) :1993-2002
[28]   Structural health monitoring of innovative bridges in Canada with fiber optic sensors [J].
Tennyson, RC ;
Mufti, AA ;
Rizkalla, S ;
Tadros, G ;
Benmokrane, B .
SMART MATERIALS & STRUCTURES, 2001, 10 (03) :560-573
[29]   Investigation of the strain transfer for surface-attached optical fiber strain sensors [J].
Wan, Kai Tai ;
Leung, Christopher K. Y. ;
Olson, Noah G. .
SMART MATERIALS & STRUCTURES, 2008, 17 (03)
[30]   Theoretical Analysis on Strain Transfer Error of FBG Sensors Attached on Steel Structures Subjected to Fatigue Load [J].
Wang, H. P. ;
Xiang, P. ;
Li, X. .
STRAIN, 2016, 52 (06) :522-530