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Data Analysis for Condition-Based Railway Infrastructure Maintenance

机译:基于条件的铁路基础设施维护的数据分析

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Condition assessment is crucial to optimize condition-based maintenance actions of assets such as railway infrastructure, where a faulty state might have severe consequences. Hence, railways are regularly inspected to detect failure events and prevent the inspected item (e.g. rail) to reach a faulty state with potentially safety critical consequences (e.g. derailment). However, the preventive measures (e.g. condition-based maintenance) initiated by the inspection results may cause traffic disturbances, especially if the expected time to a faulty state is short. The alarm limits are traditionally safety related and often based on geometrical properties of the inspected item. Maintenance limits would reduce the level of emergency, producing earlier alarms and increasing possibilities of planned preventive rather than acute maintenance. However, selecting these earlier maintenance limits in a systematic way while balancing the risk of undetected safety-critical faults and false alarms is challenging. Here, we propose a statistically based approach using condition data of linear railway infrastructure assets. The data were obtained from regular inspections done by a railway track measurement wagon. The condition data were analysed by a control chart approach to evaluate the possibility for earlier detection of derailment hazardous faults using both temporal and spatial information. The study indicates that that the proposed approach could be used for condition assessment of tracks. Control charts led to earlier fault warnings compared to the traditional approach, facilitating planned condition-based maintenance actions and thereby a reduction of track downtime. Copyright (c) 2014 The Authors. Quality and Reliability Engineering International published by John Wiley & Sons, Ltd.
机译:状态评估对于优化资产(例如铁路基础设施)的基于状态的维护操作至关重要,因为故障状态可能会造成严重后果。因此,定期检查铁路以检测故障事件并防止被检查的物品(例如铁路)达到故障状态,并可能对安全造成严重后果(例如脱轨)。但是,由检查结果启动的预防措施(例如,基于条件的维护)可能会导致交通干扰,尤其是在预期的故障状态时间很短的情况下。警报限值传统上是与安全相关的,并且通常基于检查项目的几何特性。维护限制将降低紧急程度,产生更早的警报,并增加计划内的预防性维护而非紧急维护的可能性。但是,在平衡未检测到的安全关键故障和错误警报的风险时,以系统的方式选择这些较早的维护限制具有挑战性。在这里,我们使用线性铁路基础设施资产的条件数据提出了一种基于统计的方法。数据是通过铁路轨道测量货车进行的常规检查获得的。通过控制图方法分析状态数据,以评估使用时间和空间信息尽早发现脱轨危险故障的可能性。研究表明,提出的方法可用于轨道状态评估。与传统方法相比,控制图导致了更早的故障警告,有利于按计划进行基于状态的维护操作,从而减少了轨道停机时间。版权所有(c)2014 The Authors。 John Wiley&Sons,Ltd.出版的质量和可靠性工程国际。

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