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Prediction of RCF Damage on Underground Metro Lines

机译:地铁地铁线路RCF损伤预测

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摘要

London Underground (LUL) is one of the largest metro networks in the world and carried nearly 1.5 billion passengers in 2015. This increasing passenger demand leads to higher axle loads and shorter headways in the railway operations. However, this has a detrimental impact on the damage generated at the wheel-rail interface. In spite of the advances in rolling stock and track engineering, new developments in material manufacturing methods and rail inspection technology, cracking in rails still remains a major concern for infrastructure managers in terms of safety and maintenance costs. In this study, field data from two metro lines on the LUL network was analysed to identify the distribution and severity of the different damage types. Detailed vehicle dynamics route simulations were conducted for the lines and the calculated wheel-rail forces were investigated to assess the applicability current models for the prediction of rail damage on metro lines. These models include the Whole Life Rail Model (WLRM), previously developed for Great Britain (GB) main line tracks, and Shakedown theory. The influence of key factors such as curve radius, different friction conditions, track irregularities and wheel-rail profiles on the wheel-rail contact interface have been evaluated and compared with outputs from simulations on mainline routes. The study found that the contact patch energy (Tγ) and the interaction between wear and RCF in rails were highly influenced by the characteristics of metro tracks. It was also shown that both the Tγ and Shakedown methods can provide successful prediction of damage susceptibility of rails. However, in order to increase the accuracy of damage predictions and to ascertain the severity of different damage types, the duty conditions which are observed by the rail and the changes in contact conditions resulting from the successive vehicle passes should be considered in the modelling.
机译:伦敦地铁(LUL)是世界上最大的地铁网络之一,到2015年将运送近15亿乘客。不断增长的乘客需求导致铁路运营中轴重的增加和车距的缩短。然而,这对在轮轨接口处产生的损坏具有有害影响。尽管在机车车辆和轨道工程方面取得了进步,在材料制造方法和铁路检测技术方面有了新的发展,但就安全和维护成本而言,铁路的开裂仍然是基础设施管理者的主要关切。在这项研究中,分析了LUL网络上两条地铁线的现场数据,以确定不同破坏类型的分布和严重程度。对线路进行了详细的车辆动力学路线模拟,并对计算出的轮轨力进行了研究,以评估用于预测地铁线路上铁路损坏的当前模型。这些模型包括先前为英国(GB)主线轨道开发的“全寿命铁路模型”(WLRM)和“减震”理论。评估了关键因素的影响,例如曲线半径,不同的摩擦条件,履带不平顺性和轮轨轮廓对轮轨接触界面的影响,并将其与干线路线模拟的输出进行了比较。研究发现,铁轨的接触补丁能量(Tγ)以及磨损与RCF之间的相互作用受到地铁轨道特性的极大影响。还表明,Tγ法和减振法都可以成功预测钢轨的损伤敏感性。但是,为了提高损坏预测的准确性并确定不同损坏类型的严重性,应在建模中考虑由铁轨观察到的工作条件以及由于相继车辆通过而导致的接触条件的变化。

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