Method of determination of the railway rolling stock coordinates within the track circuit

O. Voznyak, S. Buriak
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Abstract

This work aims to solve one of the essential problems in railway transport – control over the position of moving units within the race. A method of constant monitoring of the track circuit with a determination of the coordinate of the train shunt placement in the shunt mode of working is proposed to solve this problem. Since the model includes the primary parameters of the track circuit, which may change their values over time, it is suggested to determine them in another (normal) working mode of the track circuit. Therefore, according to the proposed model, the secondary and primary parameters of the track circuit are first determined in the track circuit's normal work mode. Next, already in the shunt mode of its work, the obtained parameters are used to determine the coordinates of the moving unit. According to this method, firstly, the work mode of the track circuit is determined, which consists in determining the state by its input impedance. This step is performed in two stages. In the first stage, based on the state of the track relay, the fact that the track circuit doesn't work in normal mode is verified. In the second stage, the shunt mode is separated from the control mode by the value of the track circuit input impedance. In the shunt mode of the track circuit operation, the coordinate and, if necessary, the speed and acceleration of the moving unit located within the given track circuit are determined. In the normal mode of the track circuit line operation, the values of its secondary parameters are specified based on the measured values of current, voltage, and phase shift between them. This operation is performed to increase the precision of the speed and acceleration determination by solving an inverse problem. In the control mode of the track circuit operation, it is possible to determine the coordinates of damage. This method does not require a significant volume of calculations. It makes it possible to determine the secondary parameters of the track circuit and through them, the resistance of its insulation. Using this method makes it possible to determine the distance and, if necessary, the speed and acceleration of a moving unit within the track circuit. The resulting parameters can be used for positioning moving rolling stock on runs between stations. The application of this method can also be useful in sections of the railway crossings approach to implement a fixed warning time. In addition, thanks to the use of the outlined model, in the control mode of the track circuit operation, is possible to determine the damage coordinate. It will make it possible to reduce the time spent on damage detection and elimination.
轨道线路内铁路车辆坐标的测定方法
本文旨在解决铁路运输中的一个关键问题——列车内运动单元的位置控制。针对这一问题,提出了一种在并联工作模式下,通过确定列车并联位置坐标对轨道电路进行持续监测的方法。由于模型中包含轨道电路的主要参数,这些参数的值可能会随着时间的推移而变化,因此建议在轨道电路的另一种(正常)工作模式下确定。因此,根据所提出的模型,首先在轨道电路正常工作模式下确定轨道电路的二次和一次参数。接下来,已经处于其工作的分流模式,所获得的参数用于确定运动单元的坐标。该方法首先确定轨道电路的工作模式,即通过轨道电路的输入阻抗确定轨道电路的工作状态。此步骤分两个阶段执行。第一阶段,根据轨道继电器的状态,验证轨道电路不在正常模式下工作。在第二阶段,通过轨道电路输入阻抗的值将并联模式与控制模式分开。在轨道电路运行的分路方式下,确定位于给定轨道电路内的运动单元的坐标,必要时确定其速度和加速度。轨道电路线路正常运行时,其二次参数的取值是根据电流、电压和它们之间相移的测量值来确定的。执行此操作是为了通过求解逆问题来提高速度和加速度测定的精度。在轨道电路运行的控制模式下,可以确定损坏的坐标。这种方法不需要大量的计算。它可以确定轨道电路的二次参数,并通过它们确定轨道电路的绝缘电阻。使用这种方法可以确定轨道电路中移动单元的距离,必要时还可以确定其速度和加速度。所得到的参数可用于定位站间运行的移动车辆。该方法的应用也可用于铁路道口进路路段实施固定预警时间。此外,由于使用了轮廓模型,在轨道电路运行的控制模式下,可以确定损坏坐标。这将有可能减少在损伤检测和消除上花费的时间。
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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