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Artificial Intelligence based Station Protection Concept for Medium Voltage Microgrids

机译:基于人工智能的中电压微电池的站保护概念

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Despite the rapid improvements in the field of microgrid protection, it continues to be one of the most important challenges faced by the distribution system operators. With the introduction of this new operation concept, the existing protection devices are not able to successfully identify, classify and localize different types of faults that occur in the microgrids due to their dynamic behaviour, especially in the islanded mode of operation. This paper presents a methodology that provides the station protection functionalities that include detection and classification of faults, isolation of the faulty feeder and fault location estimation. The proposed method is based on discrete wavelet transform and artificial neural networks. The test system based on the real data, completely developed in MATLAB Simulink, is used to demonstrate the accuracy of all functionalities of the station protection algorithm that can be easily applied in microgrids. The presented results demonstrated the method accuracy and showed that it can be used as an upgrade of the existing protection equipment for the future implementation of the advanced microgrid station protection system.
机译:尽管微电网保护领域快速改善,但它仍然是分销系统运营商面临的最重要挑战之一。随着这一新操作概念的引入,由于其动态行为,现有的保护设备无法成功识别,分类和本地化微电网中发生的不同类型的故障,尤其是在岛立的操作模式下。本文介绍了一种方法,该方法提供了包括检测和分类故障的站保护功能,隔离故障馈线和故障定位估计。该方法基于离散小波变换和人工神经网络。基于实际数据的测试系统完全开发的Matlab Simulink,用于演示站保护算法的所有功能的准确性,该算法可以容易地应用于微电网中。所提出的结果表明了方法准确性,并显示它可以用作现有保护设备的升级,以实现先进的微电网保护系统的未来实施。

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