期刊文献+

Influence of equipment excitation on flexible carbody vibration of EMU 被引量:8

Influence of equipment excitation on flexible carbody vibration of EMU
在线阅读 下载PDF
导出
摘要 To study the vibration transmission character istics of a flexible carbody and its suspended equipment, a vertical mathematical model of highspeed electric multiple unit was established with equipment excitation considered. And the dynamic unbalance and impact turbulence excita tion from equipment were taken into account in a single stage and twostage vibration isolation system, respectively. Results show that the excitation transferred to carbody increases with suspension stiffness but decreases with the equipment mass increasing; the vibration transmission can be reduced by increasing the equipment mass or reduce the suspension stiffness. To avoid vibration resonance, the dynamic unbalance frequency of equipment should be out of the possible range of the carbody flexible modes, and a small stiffness should be applied to reduce the impact tur bulence. A small stiffness, however, would result in a large movement of the equipment which is limited by the static deflection requirement, while a great stiffness will transfer high frequency vibration. Therefore, a preferred stiffness should make the suspension frequency of equipment a bit greater than the first bending mode of carbody. Additionally, a 3D rigidflexible coupled dynamics model was built to verify the mathematical analysis, and they show good agreements. Results show that a twostage isolation could reduce the excitation transmission and make the vibration of carbody and equipment acceptable. To study the vibration transmission character istics of a flexible carbody and its suspended equipment, a vertical mathematical model of highspeed electric multiple unit was established with equipment excitation considered. And the dynamic unbalance and impact turbulence excita tion from equipment were taken into account in a single stage and twostage vibration isolation system, respectively. Results show that the excitation transferred to carbody increases with suspension stiffness but decreases with the equipment mass increasing; the vibration transmission can be reduced by increasing the equipment mass or reduce the suspension stiffness. To avoid vibration resonance, the dynamic unbalance frequency of equipment should be out of the possible range of the carbody flexible modes, and a small stiffness should be applied to reduce the impact tur bulence. A small stiffness, however, would result in a large movement of the equipment which is limited by the static deflection requirement, while a great stiffness will transfer high frequency vibration. Therefore, a preferred stiffness should make the suspension frequency of equipment a bit greater than the first bending mode of carbody. Additionally, a 3D rigidflexible coupled dynamics model was built to verify the mathematical analysis, and they show good agreements. Results show that a twostage isolation could reduce the excitation transmission and make the vibration of carbody and equipment acceptable.
出处 《Journal of Modern Transportation》 2014年第4期195-205,共11页 现代交通学报(英文版)
基金 supported by the National Science and Technology Support Program of China (No. 2011 BAG10B01) the National Key Basic Research Program of China (No. 2011CB711100) the National Science and Technology Support Program of China (No. U1334206) the New Century Excellent Talents of Ministry of Education funded project (No. NCET-10-0664)
关键词 Flexible carbody Suspended equipment Vibration transmission Dynamic unbalance IMPACT Flexible carbody Suspended equipment Vibration transmission Dynamic unbalance Impact
  • 相关文献

参考文献4

二级参考文献38

  • 1曾京,邬平波,郝建华.铁道客车系统的垂向减振分析[J].中国铁道科学,2006,27(3):62-67. 被引量:41
  • 2丁文镜.减振理论[M].北京:清华大学出版社,1998..
  • 3SUZUKI Y, AKUTSU K. Theoretical analysis of flexuralvibration of car body[J]. QR of RTRI,1990,31(1) : 42-48,.
  • 4DIANA G,CHELI F, BRUNI S,et al. Dynamic interactionbetween rail vehicle and track for high speed train [J]. VehicleSystem Dynamics, 1995,24( 1) : 15-30.
  • 5YOUNG T H,LI C Y. Vertical vibration analysis of vehicle/imperfect track systems [J]. Vehicle System Dynamics,2003’ 40(5): 329-349.
  • 6ZHOU J, GOODALL R, REN L, et al. Influence of carbodyvertical flexibility on ride quality of passenger railway vehicles[J].Journal of Rail and Rapid Transit, 2009 ’ 223(5) : 461*471.
  • 7CARLBOM P F. Combining MBS with FEM for rail vehicledynamics analysis [J], Multibody System Dynamics, 2001,6(3): 291-300.
  • 8ENELUND M, MAHLER L, RUNESSON K,et al. Formu-lation and integration of the standard linear viscoelastic solidwith fractional order rate laws [J]. International Journal ofSolids and Structures, 1999,36(16) : 2417-2442.
  • 9BERG M. A model for rubber springs in the dynamic analysisof rail vehicles[J]. Journal of Rail and Rapid Transit, 1997 ,211(2): 95-108.
  • 10BERG M. A non-linear rubber spring model for rail vehicledynamics analysis [J], Vehicle System Dynamics, 1998,30(3): 197-212.

共引文献91

同被引文献60

引证文献8

二级引证文献25

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部