Fault Tolerant Actuation of a Railway Track Switch: a Simulation Study

Linxiao Li, Saikat Dutta, R. Dixon, E. Stewart
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引用次数: 1

Abstract

Track switches (also known as "point" or "turnout") are essential to the railway system and provide route flexibility by allowing vehicles to move between tracks on the network. However, the single actuators in the current switch technology mean that a single actuator fault will result in the failure of the switch (and the concomitant delays to trains waiting to pass the switch). This paper focuses on providing redundant actuation through an approach known as High Redundancy Actuation (HRA), which might allow track switches to remain operational after failure in actuator elements. The paper also proposes the use of closed-loop control (track switches are usually operated open-loop). In the paper, we introduce a model of a C-type switch and validate it against results from a previous paper. This model is then used combined with an HRA of nine elements (3x3). Two closed-loop controllers are then proposed for each of the single actuator and the HRA actuator system. The findings indicate that closed-loop control on its own has some benefits. However, when combined with HRA, the resulting system is able to tolerate a number of faults in the actuator subsystems, creating an effective graceful degradation rather than the sudden failure with a traditional single actuator.
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轨道开关容错驱动的仿真研究
轨道开关(也被称为“点”或“道岔”)对铁路系统至关重要,并通过允许车辆在网络上的轨道之间移动提供路线灵活性。然而,在目前的开关技术中,单执行器意味着单个执行器故障将导致开关失效(并伴随等待通过开关的列车延误)。本文的重点是通过一种称为高冗余驱动(HRA)的方法提供冗余驱动,该方法可能允许轨迹开关在执行器元件失效后保持运行。本文还提出了采用闭环控制(轨道开关通常是开环操作)。本文介绍了一种c型开关的模型,并与前人的结果进行了验证。然后将该模型与9个元素(3x3)的HRA结合使用。然后针对单个作动器和HRA作动器系统分别提出了两个闭环控制器。研究结果表明,闭环控制本身有一些好处。然而,当与HRA结合使用时,所得到的系统能够容忍执行器子系统中的许多故障,从而产生有效的优雅退化,而不是传统的单个执行器的突然故障。
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