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Monitoring of Turnout Ballast Degradation Using Statistical Low-Complexity Behavioral Models

机译:使用统计低复杂性行为模型监测岔槽镇流器劣化

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摘要

The dependability of the railway infrastructure is paramount to guarantee safety, comfort, and network capacity. Turnouts are the key infrastructure element to enable the maximization of network capacity and minimization of transport delays. Their failure upsets the overall performance of the railway network; hence, infrastructure managers are interested in securing as high as possible uptime. The ballast layer provides the elastic support to the superstructure (sleepers and rail); thereby, it is crucial to ensure both safety and comfort in railway transport. This article presents a novel detection system for the monitoring of ballast degradation throughout its service life. A statistical model based on the generalized extreme value distribution is proposed to describe the behavior of the resonance frequency associated with the ballast. The generalized likelihood ratio test is then adopted to detect when the state of health of the ballast changes over time. The monitoring system is tested exploiting full-scale measurements of train-induced track vertical acceleration collected at a turnout of the Danish railway network over a two-year period, which includes a maintenance event. Results demonstrate the ability of the ballast monitoring system in detecting the progressive degradation of the ballast quality.
机译:铁路基础设施的可靠性至关重要,以保证安全,舒适和网络容量。投票率是关键的基础架构元素,以实现网络容量的最大化和传输延迟的最小化。他们的失败扰动了铁路网络的整体性能;因此,基础设施管理人员对尽可能高的正常运行时间感兴趣。镇流器层为上部结构(睡眠和轨道)提供弹性支撑件;因此,在铁路运输中确保安全性和舒适性是至关重要的。本文提出了一种新的检测系统,用于监测整个使用寿命的镇流器降解。提出了一种基于广义极值分布的统计模型来描述与镇流器相关的谐振频率的行为。然后采用广义的似然比测试来检测镇流器的健康状况随时间变化。测试系统经过测试,利用在丹麦铁路网络的投票率的培训轨迹垂直加速度超过两年的时间,其中包括维护事件。结果展示了镇流器监测系统在检测镇流器质量的逐渐降解方面的能力。

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