根据160 km/h快捷货运及其客货混用需求,制订了降低车轮动荷解决方案。若改进货车转向架提速运用,则存在车轮动荷问题。基于单轮对的单振子机理模型仿真表明:轴箱悬挂干摩擦对车体簧上质量沉浮运动模态形成了结构阻尼约束。而基于单转向架的半车简化模型仿真研究发现:无论轴箱悬挂采用干摩擦或油压黏性减振技术,形成二系橡胶悬挂应当作为其主要适用条件之一。为了避免形成垂向振动传递机制,快捷货车转向架两级悬挂应具有其特殊性,即二系悬挂垂向刚度远大于一系悬挂的,且必须具有适当的比例阻尼。鉴于高速磨耗问题,快捷货车转向架设计需应用类比法,合理选配轴箱悬挂垂向减振器,以预防空车轴箱悬挂形成相位滞后非线性的负面影响。
Abstract
As the mixed practice requirements of passenger and freight transportations for 160 km/h rapid freight bogies, the wheel dynamical load reduction solution was formulated explicitly. If the improved freight bogie is in speeding-up practices, the wheel dynamical load problem will occur naturally. The simulations of single-oscillator model based on mono-wheelset indicate that the dry friction damping of axlebox suspensions will impose the tight structural damping constraints upon the bouncing motion mode of carbody sprung-mass. Meanwhile the simulation researches of simplified half-vehicle model based on single-bogie find that whichever the damping techniques are adopted in the axlebox suspensions, dry friction or hydraulic hysteretic damping, to form the secondary rubber suspension should be taken as one of main adoptive conditions. To avoid the vertical vibration transmitting mechanism to be formed, the two-stage suspensions of rapid freight bogies have the following particularities, i.e., the vertical stiffness of secondary suspension is far greater than the one of primary suspension, and has the necessary proportional damping. Due to high-speed abrasion problems, the rapid freight bogies should be designed by applying the analogy method to select rationally the vertical damper configuration of axlebox suspensions, and to prevent from the lag-phase non-linearity negative influences of axlebox suspensions in tare vehicles.
关键词
快捷货车转向架 /
车轮动荷 /
轴箱悬挂 /
干摩擦减振技术 /
油压黏性减振技术 /
二系橡胶悬挂
{{custom_keyword}} /
Key words
/
rapid freight bogie, wheel dynamical loads, axlebox suspensions, dry friction damping, hydraulic hysteretic damping, secondary rubber suspension
{{custom_keyword}} /
{{custom_sec.title}}
{{custom_sec.title}}
{{custom_sec.content}}
参考文献
[1] C. Fuggini, D. Zangani, Numerical Investigation of the Effect of Variable Subsoil Conditions and Freight Traffic on Railway Infrastructure [C]//Transport Research Arena2014, Paris
[2] P-A. Jönsson and S. Stichel, On the Influence of Freight Traffic Operational Conditions on Track Deterioration Cost [J]. International Journal of COMADEM, 12(2), pp 3-9, April 2009.
[3] S. Iwnicki, Y. Bezin, A. Orlova, P. Johnsson, S. Stichel, H. Schelle. The ‘SUSTRAIL’ high speed freight vehicle: Simulation of novel running gear design [C]// 23rd International Symposium on Dynamics of Vehicles on Roads and on Tracks, 19-23 August, Qingdao, China, 2013.
[4] F. Al-Bender, V. Lampaert, and J. Swevers, The Generalized Maxwell-Slip Model: A Novel Model for Friction Simulation and Compensation [J], IEEE Transactions on Automatic Control, 50(11), 2005.09
[5] L. Meirovitch, Fundamentals of Vibrations [M], McGraw-Hill College (ISBN 0-07-118174-1), 2001: 403 – 417, 549 – 612.
[6] 梁树林,朴明伟,郝剑华,兆文忠,基于3种典型踏面的高速转向架稳定性研究,中国铁道科学,2010,31(3):57-63
LIANG Shulin, PIAO Mingwei, HAO Jianhua, ZHAO Wenzhong, Study on Stability of the High-Speed Bogie Based on Three Typical Wheel Treads[J], China Railway Science, 2010, 31(3): 57-63
{{custom_fnGroup.title_cn}}
脚注
{{custom_fn.content}}