Time-frequency analysis of wheel-rail shock in the presence of wheel flat

被引:0
|
作者
Jianming Ding [1 ]
Jianhui Lin [1 ]
Guangming Wang [2 ]
Jie Zhao [1 ]
机构
[1] State Key Laboratory of Traction Power,Southwest Jiaotong University
[2] CNR Tangshan Railway Vehicle Co.,Ltd.
基金
中国国家自然科学基金;
关键词
railway vehicle; wheel flat; wheel-rail shock; frequency slice wavelet transform; time-frequency characteristic;
D O I
暂无
中图分类号
U211.5 [轮轨关系];
学科分类号
0814 ; 082301 ;
摘要
Against the deficiencies of traditional time domain and frequency domain analysis in detecting wheel-rail(W-R) system hidden risks which wheel flats generate,the time-frequency characteristics of W-R shock caused by wheel flat are analyzed and the vehicle-rail dynamic model with wheel flat is investigated.The 10 degrees of freedom(DOF) vehicle model is built up.90-DOF rail model is constructed.The wheel flat excitation model is built up.The vehicle-track coupling dynamic model including wheel flat excitation is set up through nonlinear Hertzian contact theory.The vertical accelerations of axle box are calculated at different speeds and flat sizes based on the vehicle-track coupling dynamic model with wheel flat.Frequency slice wavelet transform(FSWT) is employed to analyze timefrequency characteristics of axle box accelerations to detect the W-R noncontact risks,which the traditional time domain or frequency domain method does not analyze.The results show that the small flat size and high running speed lead to high frequency W-R impact.Large flat size and high running speed result in momentary loss of W-R contact,and there exist security risks between wheel and rail.The conclusion that the phase of axle box accelerations is same to W-R forces lays a theoretical foundation of monitoring W-R contact safety from axle box acceleration instead of traditional W-R force detection.
引用
收藏
页码:457 / 466
页数:10
相关论文
共 50 条
  • [21] Transient Characteristics Analysis of High-Speed Wheel-Rail Rolling Contact under Wheel-Rail Vibration
    Xiao Q.
    Chang C.
    Wang L.
    Wang L.
    Zhongguo Tiedao Kexue/China Railway Science, 2017, 38 (03): : 63 - 69
  • [22] An analytical mathematical method for calculation of the dynamic wheel-rail impact force caused by wheel flat
    Bogdevicius, Marijonas
    Zygiene, Rasa
    Bureika, Gintautas
    Dailydka, Stasys
    VEHICLE SYSTEM DYNAMICS, 2016, 54 (05) : 689 - 705
  • [23] Analytic and numerical analysis of wheel-rail contact
    Mittermayr, P
    ZEITSCHRIFT FUR ANGEWANDTE MATHEMATIK UND MECHANIK, 2001, 81 : S203 - S204
  • [24] DISCUSSION OF WHEEL-RAIL ADHESION
    MCINERNE.FT
    MEIER, DR
    NAYAK, PR
    NOUVION, F
    VANOVERV.JP
    TACK, CE
    WEIGEL, JE
    WICKENS, AH
    MARTA, HA
    JOURNAL OF ENGINEERING FOR INDUSTRY, 1969, 91 (03): : 846 - &
  • [25] WHEEL-RAIL NOISE - PREFACE
    不详
    JOURNAL OF SOUND AND VIBRATION, 1976, 46 (03) : 357 - 357
  • [26] WHEEL-RAIL NOISE .2. WHEEL SQUEAL
    RUDD, MJ
    JOURNAL OF SOUND AND VIBRATION, 1976, 46 (03) : 381 - 394
  • [27] Wheel-rail wear simulation
    Telliskivi, T
    Olofsson, U
    WEAR, 2004, 257 (11) : 1145 - 1153
  • [28] Simulation of wheel-rail damage
    Rudas, M
    Baynham, J
    Adey, RA
    COMPUTERS IN RAILWAYS VII, 2000, 7 : 747 - 755
  • [29] WHEEL-RAIL NOISE .5. MEASUREMENT OF WHEEL AND RAIL ROUGHNESS
    GALAITSIS, AG
    BENDER, EK
    JOURNAL OF SOUND AND VIBRATION, 1976, 46 (03) : 437 - 451
  • [30] Wheel-rail thermal contact on rail corrugation during wheel braking
    Chen, Yung-Chuan
    Kuang, Jao-Hwa
    Chen, Li-Wen
    Shin, Jiang-Che
    Lee, Sing-You
    PROCEEDINGS OF THE ASME APPLIED MECHANICS DIVISION, 2005, 256 : 417 - 424