Vibration and acoustic radiation of bogie area under random excitation in high-speed trains

被引:3
|
作者
Wang, Dongzhen [1 ,2 ]
Ge, Jianmin [1 ]
机构
[1] Tongji Univ, Sch Phys Sci & Engn, Shanghai 200092, Peoples R China
[2] CRRC Qingdao Sifang Co Ltd, Qingdao 266111, Shandong, Peoples R China
来源
JOURNAL OF MODERN TRANSPORTATION | 2019年 / 27卷 / 02期
关键词
High-speed trains; Standard vibration spectrum; Indirect boundary element method; Random excitation; Acoustic radiation;
D O I
10.1007/s40534-019-0183-4
中图分类号
U [交通运输];
学科分类号
08 ; 0823 ;
摘要
Based on the experiments on a platform with real vehicle structure and finite element simulation, the vibration and interior acoustic radiation under random excitations of high-speed trains' bogie area were studied. Firstly, combined with line tests, a vehicle body with a length of 7m was used as the research object. By comparing the results of experiment and simulation, the accuracy of the finite element model was verified. Secondly, the power spectral density curves at typical measuring points in bogie area were obtained by processing and calculating the line test data, which was measured when the vehicle ran at high speeds, and the standard vibration spectrum of the bogie area was obtained by the extreme envelope method. Furthermore, the random vibration test and simulation prediction analysis of the real vehicle structure were carried out to further verify the accuracy of the noise and vibration prediction model. Finally, according to the vibration and acoustic radiation theory, the indirect boundary element method was adopted to predict the acoustic response of the real vehicle. The analysis shows that the simulated power spectral density curves of acceleration and sound pressure level are highly consistent with the experimental ones, and the error between the simulated prediction and the experimental result is within the allowable range of 3dB.
引用
收藏
页码:120 / 128
页数:9
相关论文
共 50 条
  • [31] High-speed trains
    Chigwin, KM
    IEEE SPECTRUM, 2003, 40 (11) : 8 - 8
  • [32] HIGH-SPEED TRAINS
    WHITING, R
    FUTURIST, 1982, 16 (03) : 2 - 2
  • [33] High-Speed Trains
    Glickenstein, Harvey
    IEEE VEHICULAR TECHNOLOGY MAGAZINE, 2009, 4 (04): : 9 - 14
  • [34] Evaluation of ground vibration induced by high-speed trains on embankments
    Chen, Yit-Jin
    Chang, Shih-Ming
    Han, Cho-Kao
    NOISE CONTROL ENGINEERING JOURNAL, 2010, 58 (01) : 43 - 53
  • [35] Study on Derailment Mechanism and Safety Operation Area of High-Speed Trains Under Earthquake
    Ling, Liang
    Xiao, Xinbiao
    Jin, Xuesong
    JOURNAL OF COMPUTATIONAL AND NONLINEAR DYNAMICS, 2012, 7 (04):
  • [36] Vibration suppression in high-speed trains with negative stiffness dampers
    Shi, Xiang
    Zhu, Songye
    Ni, Yi-qing
    Li, Jianchun
    SMART STRUCTURES AND SYSTEMS, 2018, 21 (05) : 653 - 668
  • [37] Ground vibration from high-speed trains: Prediction and countermeasure
    Kaynia, AM
    Madshus, C
    Zackrisson, P
    JOURNAL OF GEOTECHNICAL AND GEOENVIRONMENTAL ENGINEERING, 2000, 126 (06) : 531 - 537
  • [38] Hunting stability analysis of high-speed train bogie under the frame lateral vibration active control
    Yao, Yuan
    Wu, Guosong
    Sardahi, Yousef
    Sun, Jian-Qiao
    VEHICLE SYSTEM DYNAMICS, 2018, 56 (02) : 297 - 318
  • [39] Effect of Bogie Cavity End Wall Inclination on Flow Field and Aerodynamic Noise in the Bogie Region of High-Speed Trains
    Shi, Jiawei
    Zhang, Jiye
    CMES-COMPUTER MODELING IN ENGINEERING & SCIENCES, 2024, 139 (02): : 2175 - 2195
  • [40] Comparative study on the use of acoustic emission and vibration analyses for the bearing fault diagnosis of high-speed trains
    Hou, Dongming
    Qi, Hongyuan
    Luo, Honglin
    Wang, Cuiping
    Yang, Jiangtian
    Structural Health Monitoring, 2022, 21 (04) : 1518 - 1540