首页> 外文期刊>Proceedings of the Institution of Mechanical Engineers, Part F: Journal of Rail and Rapid Transit >Influence of track stiffness distribution on vehicle and track interactions in track transition
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Influence of track stiffness distribution on vehicle and track interactions in track transition

机译:轨道过渡中轨道刚度分布对车辆和轨道相互作用的影响

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摘要

A model for dynamic analysis of the vehicle–track–subgrade coupling system was developed by utilizing the finite-element method. Based on the model, new types of vehicle and track elements are presented and their associated stiffness matrix, mass matrix, and damping matrix are formulated. Computational software is coded with Matlab. As an application example, influences of four kinds of transition patterns – abrupt change, step-by-step change, linear change, as well as cosine change for track stiffness distributions in track transitions – on dynamic behaviour of the vehicle and the track are investigated. The computational results show that the transition pattern of the track stiffness has primary influence on the dynamic behaviour of the vehicle and the track, and smoothing of the track stiffness distribution can significantly reduce the wheel–rail interaction forces and the rail vertical accelerations. From abating wheel–rail impact and improving traffic operation's point of view, the cosine change has the most effect, the linear change is somewhat effective and the abrupt change is the least effective for the four kinds of transition patterns of the track stiffness. However, the transition patterns of the track stiffness have essentially no influence on the vehicle vertical accelerations, due to the excellent behaviour of vibration isolation resulting from the primary and the secondary suspension systems of the vehicle.
机译:利用有限元方法建立了车辆-轨道-路基耦合系统的动力学分析模型。基于该模型,提出了新型的车辆和履带单元,并制定了它们相关的刚度矩阵,质量矩阵和阻尼矩阵。计算软件是用Matlab编码的。作为一个应用示例,研究了四种过渡模式(突变,逐步变化,线性变化以及余弦变化对轨道过渡中的轨道刚度分布的影响)对车辆和轨道动态行为的影响。计算结果表明,轨道刚度的过渡方式对车辆和轨道的动态行为具有主要影响,轨道刚度分布的平滑化可以显着减小轮轨相互作用力和轨道垂直加速度。从减小轮轨撞击和改善交通运营的角度来看,余弦变化影响最大,线性变化在某种程度上有效,而突变对于轨道刚度的四种过渡方式影响最小。但是,由于车辆的一级和二级悬架系统所产生的出色的隔振性能,履带刚度的过渡方式基本上不会影响车辆的垂直加速度。

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