Design and Modeling of Viscoelastic Layers for Locomotive Wheel Damping

被引:2
|
作者
Podile, Mpho [1 ]
Kallon, Daramy Vandi Von [1 ]
Balekwa, Bingo Masiza [1 ]
Cali, Michele [2 ]
机构
[1] Univ Johannesburg, Dept Mech & Ind Engn Technol, Level 7,John Orr Bldg,47 Nind St, ZA-2092 Johannesburg, South Africa
[2] Univ Catania, Elect Elect & Comp Engn Dept, I-95125 Catania, Italy
来源
VIBRATION | 2021年 / 4卷 / 04期
关键词
modal analysis; web and rim parametric design; harmonic response analysis; viscoelastic damping layers; radial excitation; lateral excitation; NOISE; VIBRATION;
D O I
10.3390/vibration4040051
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
Rail-wheel interaction is one of the most significant and studied aspects of rail vehicle dynamics. The vibrations caused by rail-wheel interaction can become critical when the radial, lateral and longitudinal loads of the vehicle, cargo and passengers are experienced while the vehicle is in motion along winding railroad paths. This mainly causes an excessive production of vibrations that may lead to discomfort for the passengers and shortening of the life span of the vehicle's body parts. The use of harmonic response analysis (HRA) shows that the wheel experiences high vibrational amplitudes from both radial and lateral excitation. The present study describes a numerical and experimental design procedure that allows mitigation of the locomotive wheel resonance during radial and lateral excitations through viscoelastic layers. It is proven that these high frequencies can be reduced through the proper design of damping layer mechanisms. In particular, three parametric viscoelastic damping layer arrangements were analyzed (on the web of both wheel sides, under the rim of both wheel sides and on the web and under the rim of both wheel sides). The results demonstrate that the correct design and dimensions of these viscoelastic damping layers reduce the high-amplitude resonance peaks of the wheel successfully during both radial and lateral excitation.
引用
收藏
页码:906 / 937
页数:32
相关论文
共 50 条
  • [31] Viscoelastic damping design-Thermal impact on a constrained layer damping treatment
    Groehlich, Martin
    Lang, Andrej
    Boeswald, Marc
    Meier, Jens
    MATERIALS & DESIGN, 2021, 207
  • [32] Design and analysis of fiber enhanced viscoelastic damping polymers
    Alberts, TE
    Xia, HC
    JOURNAL OF VIBRATION AND ACOUSTICS-TRANSACTIONS OF THE ASME, 1995, 117 (04): : 398 - 404
  • [33] Design of microstructures of viscoelastic composites for optimal damping characteristics
    Yi, YM
    Park, SH
    Youn, SK
    INTERNATIONAL JOURNAL OF SOLIDS AND STRUCTURES, 2000, 37 (35) : 4791 - 4810
  • [34] OPTIMAL SANDWICH BEAM DESIGN FOR MAXIMUM VISCOELASTIC DAMPING
    LIFSHITZ, JM
    LEIBOWITZ, M
    INTERNATIONAL JOURNAL OF SOLIDS AND STRUCTURES, 1987, 23 (07) : 1027 - 1034
  • [35] Design of viscoelastic damping treatments in the medium frequency range
    Hazard, L.
    De Bel, E.
    Bouillard, Ph.
    Sener, J. -Y.
    Migeot, J. -L.
    Proceedings of ISMA 2004: International Conference on Noise and Vibration Engineering, Vols 1-8, 2005, : 1489 - 1499
  • [36] Research of viscoelastic damping anti-vibration grinding wheel spindle with composite structure
    Wang, Jun
    Wang, Jiachun
    Wu, Fenghe
    Zhou, Yong
    Bai, Hu
    Jixie Gongcheng Xuebao/Journal of Mechanical Engineering, 2014, 50 (15): : 192 - 197
  • [37] Locomotive wheel inspection with EMAT technology
    Tittmann, BR
    Jayaraman, S
    Alers, R
    STRUCTURAL HEALTH MONITORING AND INTELLIGENT INFRASTRUCTURE, VOLS 1 AND 2, 2003, : 683 - 686
  • [38] Lubricator casings for locomotive wheel rims
    Kokhanovskii V.A.
    Maiba I.A.
    Glazunov D.V.
    Bol’shikh I.V.
    Russian Engineering Research, 2016, 36 (5) : 364 - 365
  • [39] LOCOMOTIVE WHEEL-TO-RAIL TRACTION
    ALBACHTE.HT
    MECHANICAL ENGINEERING, 1967, 89 (04) : 66 - &