Impact of debonding between layers of ballastless turnouts on the vibration characteristics of the wheel-rail system

Shuxiao Li, Zhiheng Li, Zheng Yan, Ping Wang, Jing-mang Xu
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Abstract

The mortar layer of the slab ballastless turnout is the weakest connecting part compared to the rest of the structure, meaning debonding between the turnout slab and the mortar layer is prone to occur under the dynamic load of a train. In order to study the impact of debonding on the vibration response of the wheel-rail system in the turnout area, a rigid-flexible vehicle-turnout coupled dynamic model that takes debonding into account was established based on the theory of vehicle-track coupled dynamics; the flexible deformation of the multi-rail and turnout slab was also included in the model. The impact of debonding on the wheel load transition and the vibration acceleration of the turnout structure and axle box were then analysed. The results show that: There are significant differences in the impact of different types of debonding on the vibration response of the vehicle-track coupled system. When the debonding height is less than the voiding limit, the impact of the debonding height is significant, while the vibration acceleration of the vehicle-turnout system remains basically unchanged once debonding height reaches the void limit.
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无砟道岔层间脱粘对轮轨系统振动特性的影响
与其他结构相比,板式无砟道岔的砂浆层是最薄弱的连接部分,这意味着在列车的动载荷作用下,道岔板与砂浆层之间容易发生脱落。为了研究脱粘对道岔区域轮轨系统振动响应的影响,基于车辆-轨道耦合动力学理论,建立了考虑脱粘的车辆-道岔刚柔耦合动力学模型,并将多轨和道岔板的柔性变形也纳入模型中。然后分析了脱粘对道岔结构和轴箱的轮载过渡和振动加速度的影响。结果表明不同类型的脱粘对车辆-轨道耦合系统振动响应的影响存在明显差异。当脱胶高度小于空隙极限时,脱胶高度的影响显著,而当脱胶高度达到空隙极限时,车辆-道岔系统的振动加速度基本保持不变。
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