Improvement of train-track interaction in transition zones via reduction of ballast damage

被引:0
|
作者
Wang, H. [1 ]
Markine, V. L. [1 ]
Dollevoet, R. P. B. J. [1 ]
Shevtsov, I. Y. [2 ]
机构
[1] Delft Univ Technol, Delft, Netherlands
[2] Prorail, Utrecht, Netherlands
关键词
RAILWAY; BEHAVIOR;
D O I
暂无
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
Transition zones in railway tracks are locations with considerable changes in the vertical stiffness of the rail support. Typically they are located near engineering structures, such as bridges, culverts, tunnels and level crossings. In such locations, the differential settlement always exists and continually grows without proper maintenance. Due to the effect of the differential settlement and bending stiffness of the rails, hanging sleepers may exist, which are invisible under ordinary circumstances, but generate high displacements and impact during train passages. Therefore, a method to detect the differential settlement (Or hanging sleepers) of track transition zones is presented, which is combined with numerical simulations and field measurements. The numerical model of the track transition zone developed here uses contact elements for modelling the connection between the sleepers and the ballast, bilinear springs for fastening system and Hertzian spring for wheel-rail interaction. The model is capable for simulating the dynamic behaviour of the transition zones with differential settlement or hanging sleepers. Using the model, the dynamic responses such as the vertical displacement of rail, the dynamic wheel load, the axial stress in rail and the vertical stress of ballast has been be obtained and analysed. The field measurements were performed as well. Using Video Gauge System (VGS) the vertical displacements of rail in the vicinity of a track transition zone were measured. The differential settlement of the measured transition zone was analysed by comparing the measurement and numerical results. Finally, based on the obtained findings and the simulation results some track design improvements and suggestions for maintenance actions are given.
引用
收藏
页码:1173 / 1184
页数:12
相关论文
共 50 条
  • [1] Running dynamics and train-track interaction
    Cheli, Riccardo
    Natoni, Francesco
    Ingegneria Ferroviaria, 1993, 48 (06): : 354 - 379
  • [2] Simulation of train-track interaction with stochastic track properties
    Oscarsson, J
    VEHICLE SYSTEM DYNAMICS, 2002, 37 (06) : 449 - 469
  • [3] An Alternative Solution of Train-Track Dynamic Interaction
    Chen, Zhaowei
    Fang, Hui
    SHOCK AND VIBRATION, 2019, 2019
  • [4] Behaviour of train-track interaction in stiffness transitions
    Banimahd, Meysam
    Woodward, Peter K.
    Kennedy, Justin
    Medero, Gabriela M.
    PROCEEDINGS OF THE INSTITUTION OF CIVIL ENGINEERS-TRANSPORT, 2012, 165 (03) : 205 - 214
  • [5] DYNAMIC INTERACTION ANALYSIS OF TRAIN-TRACK SYSTEM
    Zakeri, J. A.
    Xia, H.
    ENVIRONMENTAL VIBRATIONS: PREDICTION, MONITORING, MITIGATION AND EVALUATION, VOLS I AND II, 2009, : 677 - 682
  • [6] The Influence of Track Modelling Options on the Simulation of Train-Track Interaction
    Alfi, S.
    Bruni, S.
    Di Gialleonardo, E.
    PROCEEDINGS OF THE TENTH INTERNATIONAL CONFERENCE ON COMPUTATIONAL STRUCTURES TECHNOLOGY, 2010, 93
  • [7] Sensitivity analysis of track parameters on train-track dynamic interaction
    Zakeri, Jabbar Ali
    Xia, He
    JOURNAL OF MECHANICAL SCIENCE AND TECHNOLOGY, 2008, 22 (07) : 1299 - 1304
  • [8] Sensitivity analysis of track parameters on train-track dynamic interaction
    Jabbar Ali Zakeri
    He Xia
    Journal of Mechanical Science and Technology, 2008, 22 : 1299 - 1304
  • [9] Dynamic train-track interactions over railway track stiffness transition zones using baseplate fastening systems
    Ngamkhanong, Chayut
    Ming, Quek Yan
    Li, Ting
    Kaewunruen, Sakdirat
    ENGINEERING FAILURE ANALYSIS, 2020, 118
  • [10] Influences of Infrastructure Property on the Train-Track Interaction Due to Track Irregularities
    Chang, Chao
    Ling, Liang
    Zhai, Wanming
    Wang, Kaiyun
    ADVANCES IN DYNAMICS OF VEHICLES ON ROADS AND TRACKS, IAVSD 2019, 2020, : 269 - 277