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Grounding techniques and induced surge voltage on the control signal cables

机译:控制信号电缆上的接地技术和感应浪涌电压

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Accurate operation of the metering, control and protective equipment in a substation relies on dependable input signals. The surge-induced voltage on the control signal cables during a transient is always of concern to electrical power engineers. However, due to limited space, there are many different kinds of circuits close to each other in an electric power substation. Any switching operation or lightning strike at a substation can cause serious transients with high-frequency oscillatory waveforms to spread through high-voltage circuits, which, in turn, may give rise to a transient electromagnetic field in the substation. If a signal control cable runs for some distance in parallel with high-voltage buses, a significant amount of voltage may be induced. The control, protection or measurement equipment connected in the low-voltage circuits, in turn, become exposed to these transients. A method of induced voltage calculation is presented in this paper. The mathematical model of a substation is implemented in the Electromagnetic Transients Program (EMTP) to study the induced voltage during transients. The simulation results are compared with field testing results. A recommended grounding practice with the support of computer simulation and field testing results is also included in this paper.
机译:变电站中计量,控制和保护设备的准确运行取决于可靠的输入信号。在瞬态过程中,控制信号电缆上的电涌感应电压始终是电力工程师关注的问题。但是,由于空间有限,在变电站中存在许多彼此接近的电路。变电站的任何开关操作或雷击都可能导致带有高频振荡波形的严重瞬变通过高压电路扩散,进而可能在变电站中引起瞬变电磁场。如果信号控制电缆与高压总线并联一段距离,则可能会感应出大量电压。低压电路中连接的控制,保护或测量设备继而暴露于这些瞬变中。本文提出了一种感应电压的计算方法。电磁暂态程序(EMTP)中实现了变电站的数学模型,以研究暂态过程中的感应电压。将模拟结果与现场测试结果进行比较。在计算机仿真和现场测试结果的支持下,推荐的接地做法也包括在本文中。

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