Experimental and CFD investigation of fatigue damage of welded cantilever under high-speed train

被引:0
作者
Jing, Jianhui [1 ,2 ]
Li, Chengtao [2 ]
Tao, Zeyu [3 ]
Zhang, Yuanbin [2 ]
Wen, Zefeng [1 ]
Liu, Chaotao [1 ]
Yao, Shuanbao [3 ]
机构
[1] Southwest Jiaotong Univ, State Key Lab Rail Transit Vehicle Syst, Chengdu 610031, Peoples R China
[2] CRRC Qingdao Sifang Rolling Stock Co Ltd, R&D Ctr, Qingdao 266111, Peoples R China
[3] CRRC Qingdao Sifang Rolling Stock Co Ltd, Natl Engn Res Ctr, Qingdao 266000, Peoples R China
基金
中国国家自然科学基金;
关键词
Wind-induced loading; Cantilever frame; Computational fluid dynamic (CFD); Flow-induced vibration (FIV); Fatigue damage; High-speed train; CIRCULAR-CYLINDER; WIND; AERODYNAMICS; TURBULENT;
D O I
10.1016/j.engfailanal.2024.108926
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
This paper deals with the fatigue damage of the welded cantilever under a high-speed train subjected to wind-induced loading using a field test campaign and a CFD (Computational Fluid Dynamic) simulation. The results show that significant airflow pressure on the cantilever frames and the structural resonance are the main cause of the fatigue damage of welded joints. During long-term operation, the free end of the cantilever tends to vibrate undesirably, which affects the service life of the structure. Firstly, a finite element model with constant amplitude of wind pressure is created based on the current design specifications to assess the static and fatigue strength of the cantilever. The simulation results show that the structural strength meets the standard design requirements. However, the results of the field test show that the acceleration at the free end of the cantilever is 32.0 m/s2, 2 , which far exceeds the relevant requirements. Meanwhile, there is a significant difference in aerodynamic pressure on the frame surfaces between the leading and trailing cars. An aerodynamic model is created for two full-size cars with the CFD method. The results show that FIV (flow-induced vibration) is the main cause of the continuous vibration of the elastic cantilever frame as long as the wake shedding occurs at a frequency close to the natural frequency of the frame. This study provides a reference for the aerodynamic fatigue design of the equipment mounted high-speed trains, especially for structures with low stiffness affected by open airflow.
引用
收藏
页数:28
相关论文
共 70 条
  • [1] Association of American Railroads, 2011, APTA SS-C&S-034-99 Standard for the Design and Construction of Passenger Railroad Rolling Stock
  • [2] Baoshuan T., 2019, Rolling Stock, V57, P12, DOI [10.3969/j.issn.1002-7602.2019.10.005, DOI 10.3969/J.ISSN.1002-7602.2019.10.005]
  • [3] Baoshuan Tian, 2019, Rolling Stock, V57, P15, DOI [10.3969/j.issn.1002-7602.2019.11.007, DOI 10.3969/J.ISSN.1002-7602.2019.11.007]
  • [4] Circular cylinder wakes and vortex-induced vibrations
    Bearman, P. W.
    [J]. JOURNAL OF FLUIDS AND STRUCTURES, 2011, 27 (5-6) : 648 - 658
  • [5] Blazek J., 2015, Computational Fluid Dynamics: Principles and Applications, V3rd, P121, DOI DOI 10.1016/B978-0-08-099995-1.00005-1
  • [6] Alongwind load effects on free-standing lattice towers
    Calotescu, Ileana
    Solari, Giovanni
    [J]. JOURNAL OF WIND ENGINEERING AND INDUSTRIAL AERODYNAMICS, 2016, 155 : 182 - 196
  • [7] CEN, 2010, BS EN 14067-4, DOI [10.3403/30247829, DOI 10.3403/30247829]
  • [8] CEN, 2010, BS EN 12663-1:2010 Railway applications-Structural requirements of railway vehicle bodies Part 1: Locomotives and passenger rolling stock (and alternative method for freight wagons), DOI [10.3403/BSEN12663, DOI 10.3403/BSEN12663]
  • [9] Experimental study on the basic laws of the aerodynamic effect of 350 km·h-1 high speed railway tunnel
    Chen, Houchang
    Zhang, Yan
    He, Dehua
    Huang, Chengrong
    [J]. Chen, H., 1600, Chinese Academy of Railway Sciences (35): : 55 - 59
  • [10] Dynamic response of tall buildings to wind loads by reduced order equivalent shear-beam models
    Cluni, F.
    Gioffre, M.
    Gusella, V.
    [J]. JOURNAL OF WIND ENGINEERING AND INDUSTRIAL AERODYNAMICS, 2013, 123 : 339 - 348