先进的剩余电流补偿系统

Thomas Schiner, Michael Schlömmer
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引用次数: 0

摘要

由于全球变暖,将架空线路电气故障引起的野火风险降至最低已成为一个越来越重要的话题。配电网中的大多数电气故障是单线接地故障。若能使断层位置的能量冲击最小化,则能显著降低干植被着火的概率。单线对地故障的故障电流取决于中性点的处理。在不接地网络中,故障电流由网络的线对地电容决定。在补偿网络中,这种容性电流的主要部分由相反的定向感应电流补偿,由中性点和地之间的无级可调线圈产生。这种线圈被称为接地故障中和器(GFN)[7],电弧抑制线圈(ASC)或彼得森线圈。在补偿网络中,只有少量剩余电流,主要是有功电流。如果电网规范允许,这种小故障电流允许架空线路故障的自消和供电的继续。新颖的先进剩余电流补偿(ARCC®)系统与GFN一起可以用于这种补偿网络,也可以快速补偿剩余的剩余故障电流,并且具有高精度。BoostPro®功能还加快了剩余电流补偿。采用导纳法可以检测接地故障本身,对高阻抗接地故障也能可靠地检测。在网络电容发生变化的情况下,例如由于馈线切换操作,GFN需要再次快速调谐,这是由一个新的频率自适应触发准则实现的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Advanced Residual Current Compensation System
Minimizing the risk of wildfires caused by electrical failures in overhead lines has become an increasingly important topic due to global warming. Most electrical faults in distribution networks are single line to ground faults. If the energy impact at the fault location is minimized, the probability of ignition of dry vegetation can be significantly reduced. The fault current at single line to ground faults depends on the treatment of the neutral point. In ungrounded networks the fault current is determined by line to ground capacitance of the network. In compensated networks the main part of this capacitive current is compensated by an opposite directed inductive current, generated by a stepless adjustable coil between the neutral and ground. This coil is called a Ground Fault Neutralizer (GFN) [7], Arc Suppression Coil (ASC) or Petersen coil. In compensated networks only a small residual, mainly active current remains. This small fault current allows self-extinction of faults at overhead lines and continuation of power supply, if allowed by the grid code. The novel Advanced Residual Current Compensation (ARCC®) system together with a GFN can be used in such compensated networks to also rapidly compensate the remaining residual fault current and do so with high accuracy. The BoostPro® function additionally speeds up the residual current compensation. The ground fault itself can be detected with the admittance method, which works reliably also for high impedance ground faults. In case of changes of the network capacitance for example due to feeder switching operations, the GFN needs to be tuned quickly again, which is enabled by a new frequency adaptive trigger criterion.
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