轨道建模对单轨相邻桥面组成的铁路桥模态参数的影响

Juan Carlos Sánchez Quesada, E. Moliner, A. Romero, P. Galvín, M. D. Martínez-Rodrigo
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引用次数: 0

摘要

在现有的铁路线上,有相当数量的铁路桥梁是由简支(SS)跨组成的。必须特别注意短跨度到中等跨度的结构,因为它们在甲板上容易经历高垂直加速度水平,因为它们的重量和阻尼较低,损害了旅行的舒适性和结构的完整性。由于受结构阻尼等不确定因素和车桥、土结构、轨桥等复杂相互作用机制的影响,这些桥梁的动力响应的准确预测是一个复杂的问题。关于轨道-桥梁相互作用,文献中已经报道了有碴轨道在后续SS跨之间以及结构独立的单轨双相邻甲板之间施加动力耦合的实验证据[1,2]。然而,由于包括轨道在内的模型的计算成本以及定义轨道系统的力学参数的不确定性,这种现象经常被忽视。本文的工作有助于研究铁路桥梁中有砟轨道在独立结构间的耦合效应。为此,实现了两个三维轨道-桥梁相互作用有限元模型。前者包括轨道部件的连续表示,轨枕、镇流器和副镇流器与实体有限元相啮合。在后者中,轨道被表示为二维离散三层模型,其中组件的质量、刚度和阻尼集中在轨枕位置。数值模型采用在现有铁路桥上进行的实验测量进行更新,以评估(i)轨道连续性对桥梁模态参数和列车引起的振动的影响;(ii)所实施的数值模型是否足够,以及(iii)轨道-桥梁相互作用对于准确预测运行条件下的垂直加速度水平的重要性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Influence of track modelling in modal parameters of railway bridges composed by single-track adjacent decks
A significant number of railway bridges composed by simply-supported (SS) spans are present in existing railway lines. Special attention must be paid to short to medium span length structures, as they are prone to experience high vertical acceleration levels at the deck, due to their low weight and damping, compromising the travelling comfort and the structural integrity. The accurate prediction of the dynamic response of these bridges is a complex issue since it is affected by uncertain factors such as structural damping and complex interaction mechanisms such as vehicle-bridge, soil-structure or track-bridge interaction. Concerning track-bridge interaction, experimental evidences of a dynamic coupling exerted by the ballasted track between subsequent SS spans and also between structurally independent single-track twin adjacent decks have been reported in the literature [1, 2]. Nevertheless, this phenomenon is frequently disregarded due to the computational cost of models including the track and due to the uncertainties in the mechanical parameters that define the track system. The present work contributes to the study of the coupling effect exerted by the ballasted track between independent structures in railway bridges. With this purpose two 3D finite element (FE) track-bridge interaction models are implemented. The former includes a continuous representation of the track components meshing the sleepers, ballast and sub-ballast with solid FE. In the latter, the track is represented as a 2D discrete three-layer model where the mass, stiffness and damping of the components are concentrated at the sleepers locations. The numerical models are updated with experimental measurements performed on an existing railway bridge in a view to evaluate (i) the influence of the track continuity on the bridge modal parameters and on the train-induced vibrations; (ii) the adequacy of the implemented numerical models and (iii) the importance of the track-bridge interaction for an accurate prediction of the vertical acceleration levels under operating conditions.
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