Thermal effect on dynamic performance of high-speed maglev train/guideway system

被引:6
|
作者
Zhang, Long [1 ]
Huang, JingYu [1 ,2 ]
机构
[1] Tongji Univ, Coll Civil Engn, Shanghai 200092, Peoples R China
[2] Tongji Univ, Natl Maglev Transportat Engn R&D Ctr, Shanghai 201804, Peoples R China
关键词
high-speed maglev transport; maglev train/guideway interaction system; thermal analysis; temperature effect; dynamic performance; VEHICLE; GUIDEWAY;
D O I
10.12989/sem.2018.68.4.459
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
Temperature fields and temperature deformations induced by time-varying solar radiation, shadow, and heat exchange are of great importance for the ride safety and quality of the maglev system. Accurate evaluations of their effects on the dynamic performances are necessary to avoid unexpected loss of service performance. This paper presents a numerical approach to determine temperature effects on the maglev train/guideway interaction system. Heat flux density and heat transfer coefficient of different components of a 25 m simply supported concrete guideway on Shanghai High-speed Maglev Commercial Operation Line is calculated, and an appropriate section mesh is used to consider the time-varying shadow on guideway surfaces. Based on the heat-stress coupled technology, temperature distributions and deformation fields of the guideway are then computed via Finite Element method. Combining guideway irregularities and thermal deformations as the external excitations, a numerical maglev train/guideway interaction model is proposed to analyze the temperature effect. The responses comparison including and excluding temperature effect indicates that the temperature deformation plays an important role in amplifying the response of a running maglev, and the parameter analysis results suggest that climatic and environmental factors significantly affect the temperature effects on the coupled maglev system.
引用
收藏
页码:459 / 473
页数:15
相关论文
共 50 条
  • [1] Experimental Study and Numerical Simulation of Thermal Effect on Dynamic Performance of High-Speed Maglev Train/Guideway System
    Zhang, Ziyang
    Huang, Jingyu
    Ren, Xudong
    Lu, Qifei
    Xu, Weinan
    Zhang, Long
    [J]. INTERNATIONAL JOURNAL OF STRUCTURAL STABILITY AND DYNAMICS, 2024,
  • [2] Dynamic Response of Guideway with Running High-speed Maglev Train
    Shi, Jin
    Wang, Yingjie
    [J]. ADVANCES IN ENVIRONMENTAL VIBRATION, 2011, : 534 - 540
  • [3] Dynamic response analysis of high-speed maglev train-guideway system under crosswinds
    Tian, Xiang-fu
    Xiang, Huo-yue
    Chen, Xu-li
    Li, Yong-le
    [J]. JOURNAL OF CENTRAL SOUTH UNIVERSITY, 2023, 30 (08) : 2757 - 2771
  • [4] Dynamic analysis of guideway structures by considering ultra high-speed Maglev train-guideway interaction
    Song, Myung-Kwan
    Fujino, Yozo
    [J]. STRUCTURAL ENGINEERING AND MECHANICS, 2008, 29 (04) : 355 - 380
  • [5] Dynamic model of high-speed maglev train-guideway bridge system with a nonlinear suspension controller
    Bu, Xiumeng
    Wang, Lidong
    Han, Yan
    Liu, Hanyun
    Hu, Peng
    Cai, C. S.
    [J]. ADVANCES IN STRUCTURAL ENGINEERING, 2024, 27 (08) : 1328 - 1348
  • [6] VEHICLE-GUIDEWAY DYNAMICS OF A HIGH-SPEED MAGLEV TRAIN
    Reinhold Meisinger
    [J]. 力学季刊, 1991, (01) : 9 - 20
  • [7] Dynamic Interaction Analysis of High-Speed Maglev Train and Guideway with a Control Loop Failure
    Xiang, Huoyue
    Tian, Xiangfu
    Li, Yongle
    Zeng, Min
    [J]. INTERNATIONAL JOURNAL OF STRUCTURAL STABILITY AND DYNAMICS, 2022, 22 (10)
  • [8] Dynamic Response Analysis of High-Speed Maglev-Guideway System
    Jian Dai
    Joshua Guan Yi Lim
    Kok Keng Ang
    [J]. Journal of Vibration Engineering & Technologies, 2023, 11 : 2647 - 2658
  • [9] Effect of guideway irregularity on the dynamic characteristics of high-speed maglev railway
    Shi, Jin
    Wei, Qing-Chao
    [J]. Gongcheng Lixue/Engineering Mechanics, 2006, 23 (01): : 154 - 159
  • [10] Dynamic Response Analysis of High-Speed Maglev-Guideway System
    Dai, Jian
    Lim, Joshua Guan Yi
    Ang, Kok Keng
    [J]. JOURNAL OF VIBRATION ENGINEERING & TECHNOLOGIES, 2023, 11 (06) : 2647 - 2658