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首页> 外文期刊>International journal of bifurcation and chaos in applied sciences and engineering >On Discontinuous Dynamics of a Freight Train Suspension System
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On Discontinuous Dynamics of a Freight Train Suspension System

机译:货车悬架系统的间断动力学

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摘要

In this paper, a freight train suspension system is presented for all possible types of motion. The suspension system experiences impacts and friction between wedges and bolster. The impacts cause the chatter motions between wedges and bolster, and the friction will cause the stick and nonstick motions between wedges and bolster. Due to the wedge effect, the suspension system may become stuck and not move, which can cause the suspension to lose functions. To discuss such phenomena in the freight train suspension systems, the theory of discontinuous dynamical systems is used, and the motion mechanism of impacting chatter with stick and stuck is discussed. The analytical conditions for the onset and vanishing of stick motions between the wedges and bolster are presented, and the condition for maintaining stick motion was achieved as well. The analytical conditions are developed for the onset and vanishing conditions for stuck motion. An analytical prediction of periodic motions relative to impacting chatter with stick and stuck motions in the train suspension is performed through the mapping dynamics. The corresponding analyses of local stability and bifurcation are carried out, and the grazing and stick conditions are used to determine periodic motions. Numerical simulations illustrate periodic motions of stick and stuck motions. Finally, from field testing data, the effects of wedge angle on the motions of the suspension are presented to find a more desirable suspension response for design.
机译:在本文中,提出了一种货运列车悬架系统,用于所有可能的运动类型。悬架系统会受到楔块和垫块之间的冲击和摩擦。冲击会导致楔形和支撑之间的颤动运动,而摩擦会导致楔形和支撑之间的粘滞运动和不粘滞运动。由于楔形效应,悬架系统可能会卡住并且无法移动,这可能会导致悬架失去功能。为了讨论货运列车悬架系统中的这种现象,运用不连续动力系统理论,讨论了用棍棒和棍棒撞击颤振的运动机理。给出了楔块和垫块之间的粘滞运动的开始和消失的分析条件,并且还获得了保持粘滞运动的条件。针对卡住运动的开始和消失条件开发了分析条件。通过映射动力学,可以进行相对于具有粘滞冲击的颤振的周期性运动的预测分析,以及列车悬架中的滞留运动。进行了局部稳定性和分叉的相应分析,并使用掠食和粘滞条件确定了周期性运动。数值模拟说明了粘滞运动和粘滞运动。最后,根据现场测试数据,提出了楔角对悬架运动的影响,以找到更理想的悬架设计响应。

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