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Transmission lines fault location estimation based on artificial neural networks and power quality monitoring data

机译:基于人工神经网络和电能质量监测数据的传输线故障定位估计

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Fault location estimation is a very important question in electric power system, in order to isolate the fault as soon as possible, and to recover the system with minimal interruptions. In that way, electric equipment is less stressed, and buyers more satisfied. Electric power lines are exposed to environment and probability of line failure is generally higher than other system element failure. Current electric power systems are equipped with high sampling rate power quality meters that are installed in the places of common coupling with distribution systems or high voltage consumers. Data obtained by these power quality meters, especially the voltage and current harmonics present a valuable information about system behavior, even in the faulty conditions. In this paper fault location and fault resistance is estimated by using a combination of artificial neural networks and voltage and current harmonics measured by power quality meters installed only in important system busbars. Results obtained from the real 110 kV transmission system show that a proposed algorithm can be used successfully in fault location and fault resistance estimation in one part of the electric power system. This paper makes a contribution to the existing body of knowledge by developing and testing a new method whose application represents a natural and a feasible upgrade using the existing measurement and communication equipment.
机译:故障位置估计是电力系统中非常重要的问题,以便尽快隔离故障,并以最小的中断恢复系统。通过这种方式,电气设备的压力较小,买家更满意。电力线暴露于环境,线路故障的概率通常高于其他系统元件故障。电流电力系统配备了高采样速率功率质量仪表,安装在公共耦合的地方,配有配电系统或高压消费者。通过这些功率质量仪表获得的数据,尤其是电压和电流谐波呈现有关系统行为的有价值信息,即使在故障情况下也是如此。在本文中,通过使用仅在重要的系统汇流栏中安装的电力质量仪表测量的人工神经网络和电压和电流谐波的组合来估计故障位置和故障电阻。从真实的110 kV传输系统获得的结果表明,在电力系统的一部分中,可以成功地使用所提出的算法和故障位置和故障估计。本文通过开发和测试一种新方法对现有知识体系进行贡献,该方法应用于使用现有的测量和通信设备代表自然和可行的升级。

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