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Analysis of Rail Potential and Stray Currents in a Direct-Current Transit System

机译:直流输电系统中的电势和杂散电流分析

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摘要

The diode-grounded scheme for stray-current collection in some systems, such as the Taipei rapid transit systems (TRTS), has been constructed to gather the stray current leaking from the running rails and avoid corrosion damage to the system as well as the surrounding metallic objects. During operation of the TRTS, a high potential between the negative return bus and system earth bus at traction substations, referred to as rail potential, has been observed on the Blue line between BL13 and BL16. Since the Blue and Red-Green lines have their running rails and stray-current collector mats in junction at the G11 station, the TRTS suspects that the impedance bond at G11 is the cause of rail potential rise. This paper presents the results of field tests for studying whether the impedance bond at G11 of the tie line has an impact on rail potential and stray currents in TRTS. The results show the rail potential can be reduced by disconnecting the impedance bond at G11 of the tie line so that the negative return current of the Blue line cannot flow to the rails of the Red-Green Line, and vice-versa. In addition, rail potential and stray currents occurring at a station of the Blue line are numerically simulated by using a distributed two-layer ladder circuit model. The simulation results are compared with the field-test results and they are consistent with each other.
机译:在某些系统(例如台北快速运输系统(TRTS))中,二极管接地方案用于收集杂散电流,其构造是为了收集从运行轨道泄漏的杂散电流,并避免对系统及周围环境造成腐蚀破坏金属物体。在TRTS运行期间,在BL13和BL16之间的蓝线上观察到了牵引变电站负返回母线和系统接地母线之间的高电势,称为轨道电势。由于蓝线和红绿线在G11站的交界处有它们的运行轨道和杂散电流收集器垫,因此TRTS怀疑G11处的阻抗键是轨道电位升高的原因。本文介绍了现场测试的结果,以研究连接线G11处的阻抗键对TRTS中的电势和杂散电流是否有影响。结果表明,可以通过断开连接线G11处的阻抗键来降低铁轨电势,从而使蓝线的负返回电流不能流向红绿线的轨,反之亦然。此外,通过使用分布式两层梯形电路模型,对出现在蓝线某站的轨道电位和杂散电流进行了数值模拟。仿真结果与现场测试结果进行了比较,它们相互一致。

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