利用模糊推理进行基于 GNSS/IMU/UWB 的列车完整性监测

Tianyu Zhong, Jiang Liu, Baigen Cai, Jian Wang
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引用次数: 0

摘要

为了保证铁路运行安全,列车的完整性是铁路列车控制系统的一个重要特征参数。机车与一节车厢或相邻两节车厢之间的脱钩事件对沿同一轨道运行的后续列车构成严重威胁。传统的列车完整性监控解决方案基于特定传感器的状态检测,如全球导航卫星系统(GNSS)接收器和尾部风压装置,在受限或困难的运行环境下可能无法有效、安全地发挥作用。本文介绍了一种列车完整性监控系统(TIMS)架构,该架构集成了全球导航卫星系统(GNSS)、惯性测量单元(IMU)和超宽带(UWB)测距技术。为实现多检测通道下列车完整性状态的有效判定,该系统采用了模糊推理理论进行决策。利用模拟的列车头部(HoT)和列车尾部(EoT)平台,通过实验研究了正常和脱钩两种情况。通过实际收集的传感器数据集,比较了基于单一传感器的不同方法和基于模糊推理的解决方案。比较结果表明,在给定的实验条件下,该方案具有先进的性能水平,这表明该方案在新型列车控制系统中具有巨大潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
GNSS/IMU/UWB-Based Train Integrity Monitoring Using Fuzzy Reasoning
Integrity of a train is a significant characteristic parameter towards a railway train control system in order to guarantee the railway operational safety. The decoupling event between a locomotive and a carriage or two adjacent carriages has become a serious threat for the following train operating along the same track. Conventional train integrity monitoring solutions based on state detection with specific sensors, like the Global Navigation Satellite System (GNSS) receiver and tail wind pressure unit, may not perform effectively and safely under constrained or difficult operation environments. This paper presents a Train Integrity Monitoring System (TIMS) architecture with integration of GNSS, Inertial Measurement Unit (IMU) and Ultra-wide Band (UWB) ranging technique. To realize the effective determination of the train integrity state with multiple detection channels, the fuzzy reasoning theory is adopted for decision-making. By using the simulated Head-of-Train (HoT) and End-of-Train (EoT) platforms, both the normal and decoupling scenarios are investigated through experiments. With the practically collected sensor datasets, the different single-sensor-based methods are compared with the presented fuzzy reasoning-based solution. The comparison results illustrate the advanced performance level under the given experimental conditions, which indicate great potentials of the presented solution in novel train control systems.
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