Integrated Health Monitoring for the actuation system of high-speed tilting trains

IF 1.4 Q2 ENGINEERING, MULTIDISCIPLINARY
Andrea De Martin, A. Dellacasa, G. Jacazio, M. Sorli
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引用次数: 1

Abstract

Tilting trains are designed to reach high speed on pre-existing railroads without the need of adjusting the tracks geometry or building dedicated lines; the tilting of the carbody keeps an acceptable level of comfort by limiting the lateral acceleration felt by passengers when the train runs along curved tracks with speed higher than the balance speed built into the curve geometry. As such, they are often used to reduce travel times on routes with several curves. Tilting is performed through a position-controlled actuation system which operates according to the commands received from the train control system: in the studied configuration, the torque needed to tilt the car body with respect to the bogie is provided by a series of hydraulic actuators, while the position information used to close the control loop comes from two capacitive sensors located in the front and rear part of each vehicle. Tilt angle measurement is vital for the system operation and for ensuring a safe ride; the traditional solution in case of discrepancy between the signals of the two tilt angle sensors of any vehicle is to disable the tilting function while limiting the train speed to avoid issues during changes of direction. In a similar fashion, the failure in one (or more) of the tilting actuators would result in the loss of the tilting capability and the return to a fixed configuration operating at reduced speed. It should be noticed that the negative impact of the loss of the tilting system is not limited to the faulty train, since it might affect the entire traffic schedule on the interested lines. The paper presents an integrated Health Monitoring framework that makes intelligent use of all available information thus enhancing the system availability, allowing its operation even in presence of faulty sensors and detecting the onset of failures in the actuation system. At the same time its use can facilitate maintenance organization, simplify the spare parts logistics and provide help to the traffic management. The proposed framework has been developed taking advantage of a high-fidelity model of the physical system validated through comparison with experimental mission profiles on the Lichtenfels - Saalfeld and Battipaglia - Reggio Calabria routes, which have been used by the train manufacturer to assess the performance of their tilting trains.
高速摆式列车传动系统的综合健康监测
倾斜列车设计用于在现有铁路上达到高速,而无需调整轨道几何形状或修建专用线;车体的倾斜通过限制当列车以高于曲线几何形状中建立的平衡速度的速度沿着曲线轨道运行时乘客感受到的横向加速度来保持可接受的舒适度水平。因此,它们通常用于减少具有多个弯道的路线上的旅行时间。倾斜是通过位置控制的致动系统进行的,该系统根据从列车控制系统接收的命令进行操作:在所研究的配置中,车体相对于转向架倾斜所需的扭矩由一系列液压致动器提供,而用于闭合控制回路的位置信息来自位于每辆车的前部和后部的两个电容传感器。倾角测量对系统运行和确保安全行驶至关重要;在任何车辆的两个倾角传感器的信号之间存在差异的情况下,传统的解决方案是在限制列车速度的同时禁用倾斜功能,以避免在改变方向期间出现问题。以类似的方式,倾斜致动器中的一个(或多个)的故障将导致倾斜能力的损失以及返回到以降低的速度操作的固定配置。需要注意的是,倾斜系统损失的负面影响不仅限于故障列车,因为它可能会影响相关线路的整个交通时间表。本文提出了一个集成的健康监测框架,该框架智能地利用了所有可用信息,从而提高了系统的可用性,即使在存在故障传感器的情况下也能运行,并检测驱动系统中故障的发生。同时,它的使用可以方便维修组织,简化备件物流,为交通管理提供帮助。所提出的框架是利用物理系统的高保真度模型开发的,该模型通过与Lichtenfels-Saalfeld和Battipaglia-Reggio-Calabria路线的实验任务剖面进行比较而得到验证,列车制造商已使用这些剖面来评估其倾斜列车的性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
2.90
自引率
9.50%
发文量
18
审稿时长
9 weeks
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