Investigating the stick-slip vibration behavior of a locomotive with adhesion control in a curve

Linping Sun, Zhongliang Yang, Weihua Ma, S. Luo, Bo Wang
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Abstract

In order to explain the wheel-rail stick-slip vibration phenomenon of alocomotive in a curve, a co-simulation dynamic model taking into account adhesion control was established to reproduce the locomotive wheel-rail curve stick-slip vibration behavior, and the effect of parameters such as creep threshold, descent slope, rail surface condition and track curve radius on the stick-slip vibration behavior was measured by the traction force and the overall dispersion of adhesion coefficient. The results illustrate that the wheel-rail curve stick-slip vibration is caused by the dynamic traction force fluctuation under the adhesion control, and the increase of creep threshold will lead to the decrease of tractive force fluctuation amplitude and the decrease of stick-slip vibration intensity, which will increase the adhesion utilization rate, However, the increase of descent slope, the decrease of track curve radius and wheel-rail friction coefficient have the opposite effect on stick-slip vibration behavior. This phenomenon can be eliminated by improving the rail surface condition, expanding the track curve radius and lowering the locomotive traction force.
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研究带有附着力控制装置的机车在弯道中的粘滑振动行为
为解释曲线中机车轮轨粘滑振动现象,建立了考虑附着力控制的协同仿真动力学模型,再现了机车轮轨曲线粘滑振动行为,并通过牵引力和附着力系数总体离散度测量了蠕变阈值、下降坡度、轨面状况和轨道曲线半径等参数对粘滑振动行为的影响。结果表明,轮轨曲线粘滑振动是由粘着控制下的动态牵引力波动引起的,蠕变阈值的增大会导致牵引力波动幅度的减小和粘滑振动强度的减小,从而提高粘着利用率,但下降坡度的增大、轨道曲线半径和轮轨摩擦系数的减小对粘滑振动行为的影响恰恰相反。这种现象可以通过改善轨道表面条件、扩大轨道曲线半径和降低机车牵引力来消除。
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