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Improving the reliability and availability of railway track switching by analysing historical failure data and introducing functionally redundant subsystems

机译:通过分析历史故障数据并引入功能冗余的子系统来提高铁路轨道切换的可靠性和可用性

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摘要

Track switches are safety critical assets that not only provide flexibility to rail networks but also present single points of failure. Switch failures within dense-traffic passenger rail systems cause a disproportionate level of delay. Subsystem redundancy is one of a number of approaches, which can be used to ensure an appropriate safety integrity and/or operational reliability level, successfully adopted by, for example, the aeronautical and nuclear industries. This paper models the adoption of a functional redundancy approach to the functional subsystems of traditional railway track switching arrangements in order to evaluate the potential increase in the reliability and availability of switches. The paper makes three main contributions. First, 2P-Weibull failure distributions for each functional subsystem of each common category of points operating equipment are established using a timeline and iterative maximum likelihood estimation approach, based on almost 40,000 sampled failure events over 74,800 years of continuous operation. Second, these results are used as baselines in a reliability block diagram approach to model engineering fault tolerance, through subsystem redundancy, into existing switching systems. Third, the reliability block diagrams are used with a Monte-Carlo simulation approach in order to model the availability of redundantly engineered track switches over expected asset lifetimes. Results show a significant improvement in the reliability and availability of switches; unscheduled downtime reduces by an order of magnitude across all powered switch types, whilst significant increases in the whole-system reliability are demonstrated. Hence, switch designs utilising a functional redundancy approach are well worth further investigation. However, it is also established that as equipment failures are engineered out, switch reliability/availability can be seen to plateau as the dominant contributor to unreliability becomes human error.
机译:轨道开关是安全性至关重要的资产,不仅可以为铁路网络提供灵活性,而且还可以提供单点故障。客流密集的客运铁路系统内的开关故障会导致不成比例的延迟水平。子系统冗余是许多方法之一,可用于确保适当的安全完整性和/或操作可靠性级别,例如已成功地被航空和核工业采用。本文对传统铁路轨道交换安排的功能子系统采用功能冗余方法进行建模,以评估交换器的可靠性和可用性的潜在增长。本文做出了三个主要贡献。首先,使用时间轴和迭代最大似然估计方法,基于74,800年连续运行期间的近40,000个采样故障事件,为每个点操作设备的常见类别的每个功能子系统建立2P-Weibull故障分布。其次,这些结果被用作可靠性框图方法中的基线,以通过子系统冗余将工程容错模型化到现有的交换系统中。第三,可靠性框图与Monte-Carlo仿真方法一起使用,以便对预期资产寿命内冗余设计的轨道开关的可用性进行建模。结果表明,交换机的可靠性和可用性有了显着提高。在所有带电开关类型中,计划外停机时间均减少了一个数量级,同时还证明了整个系统可靠性的显着提高。因此,利用功能冗余方法的交换机设计非常值得进一步研究。然而,还可以确定,随着设备故障的解决,交换机的可靠性/可用性可望达到平稳状态,因为不可靠性的主要因素已成为人为错误。

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