Mapping relationship between dynamic responses of high-speed trains and additional bridge deformations

被引:40
|
作者
Gou, Hongye [1 ,2 ]
Liu, Chang [1 ]
Hua, Hui [1 ]
Bao, Yi [3 ]
Pu, Qianhui [1 ]
机构
[1] Southwest Jiaotong Univ, Sch Civil Engn, Dept Bridge Engn, Chengdu, Peoples R China
[2] Minist Educ, Key Lab High Speed Railway Engn, Beijing, Peoples R China
[3] Stevens Inst Technol, Dept Civil Environm & Ocean Engn, Hoboken, NJ 07030 USA
基金
中国国家自然科学基金;
关键词
Additional bridge deformation; high-speed railway; mapping relationship; safety threshold; train-track-bridge coupled model; CONCRETE CREEP; PIER SETTLEMENT; TRACK GEOMETRY; RAILWAY; SAFETY;
D O I
10.1177/1077546320936899
中图分类号
O42 [声学];
学科分类号
070206 ; 082403 ;
摘要
Deformations of high-speed railways accumulate over time and affect the geometry of the track, thus affecting the running safety of trains. This article proposes a new method to map the relationship between dynamic responses of high-speed trains and additional bridge deformations. A train-track-bridge coupled model is established to determine relationship between the dynamic responses (e.g. accelerations and wheel-rail forces) of the high-speed trains and the track deformations caused by bridge pier settlement, girder end rotation, and girder camber. The dynamic responses are correlated with the track deformation. The mapping relationship between bridge deformations and running safety of trains is determined. To satisfy the requirements of safety and riding comfort, the suggested upper thresholds of pier settlement, girder end rotation, and girder camber are 22.6 mm, 0.92 parts per thousand rad, and 17.2 mm, respectively. This study provides a method that is convenient for engineers in evaluation and maintenance of high-speed railway bridges.
引用
收藏
页码:1051 / 1062
页数:12
相关论文
共 50 条
  • [21] High-Speed Trains
    Glickenstein, Harvey
    IEEE VEHICULAR TECHNOLOGY MAGAZINE, 2009, 4 (04): : 9 - 14
  • [22] Analysis of Dynamic Responses of Bridge-Subgrade Transition of High-Speed Railway
    Yang, Changwei
    Zhang, Jianjing
    Zhu, Chuanbin
    ADVANCES IN CIVIL ENGINEERING, PTS 1-4, 2011, 90-93 : 189 - 196
  • [23] An analytical solution to the mapping relationship between bridge structures vertical deformation and rail deformation of high-speed railway
    Feng, Yulin
    Jiang, Lizhong
    Zhou, Wangbao
    Lai, Zhipeng
    Chai, Xilin
    STEEL AND COMPOSITE STRUCTURES, 2019, 33 (02): : 209 - 224
  • [24] Mapping relationship between continuous girder bridge transverse deformation and rail geometric changes of high-speed railway
    Jiang L.
    Feng Y.
    Zhou W.
    Nie L.
    Xiang P.
    Zhou W.
    Jianzhu Jiegou Xuebao/Journal of Building Structures, 2021, 42 (04): : 215 - 222
  • [25] Mapping the relationship between the structural deformation of a simply supported beam bridge and rail deformation in high-speed railways
    Jiang, Lizhong
    Zheng, Lan
    Feng, Yulin
    Lai, Zhipeng
    Zhou, Wangbao
    PROCEEDINGS OF THE INSTITUTION OF MECHANICAL ENGINEERS PART F-JOURNAL OF RAIL AND RAPID TRANSIT, 2020, 234 (10) : 1081 - 1092
  • [26] Evaluation of ground vibration induced by high-speed trains on bridge structures
    Chen, Yit-Jin
    Chiu, Ting-Jui
    Chen, Kuo-Yen
    NOISE CONTROL ENGINEERING JOURNAL, 2011, 59 (04) : 372 - 382
  • [27] Dynamic Performance Evaluation of a High-Speed Four-Track Railway Bridge Traversed by Multiple Trains
    Zhao, Han-Wei
    Ding, You-Liang
    Li, Ai-Qun
    JOURNAL OF PERFORMANCE OF CONSTRUCTED FACILITIES, 2018, 32 (01)
  • [28] Numerical investigation of a steel arch bridge and interaction with high-speed trains
    Ju, SH
    Lin, HT
    ENGINEERING STRUCTURES, 2003, 25 (02) : 241 - 250
  • [29] Experimental analysis of a high-speed railway bridge under Thalys trains
    Xia, H
    De Roeck, G
    Zhang, N
    Maeck, J
    JOURNAL OF SOUND AND VIBRATION, 2003, 268 (01) : 103 - 113
  • [30] The crack propagation and dynamic impact responses of tempered laminated glass used in high-speed trains
    Wang, Shiming
    Peng, Yong
    Chen, Xuanzhen
    Wang, Kui
    ENGINEERING FAILURE ANALYSIS, 2022, 134