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A statistical process control approach for automatic anti-islanding detection using synchrophasors

机译:使用同步相量的自动防孤岛检测的统计过程控制方法

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Anti-islanding protection is becoming increasingly important due to the rapid installation of distributed generation from renewable resources like wind, tidal and wave, solar PV, bio-fuels, as well as from other resources like diesel. Unintentional islanding presents a potential risk for damaging utility plants and equipment connected from the demand side, as well as to public and personnel in utility plants. This paper investigates automatic islanding detection. This is achieved by deploying a statistical process control approach for fault detection with the real-time data acquired through a wide area measurement system, which is based on Phasor Measurement Unit (PMU) technology. In particular, the principal component analysis (PCA) is used to project the data into principal component subspace and residual space, and two statistics are used to detect the occurrence of fault. Then a fault reconstruction method is used to identify the fault and its development over time. The proposed scheme has been used in a real system and the results have confirmed that the proposed method can correctly identify the fault and islanding site.
机译:由于从风,潮汐和海浪,太阳能光伏,生物燃料等可再生资源以及柴油等其他资源中快速安装了分布式发电系统,防孤岛保护正变得越来越重要。无意的孤岛化可能会损坏从需求方连接的公用事业工厂和设备以及公用事业工厂的公众和人员的潜在风险。本文研究了自动孤岛检测。这是通过采用统计过程控制方法进行故障检测而实现的,该方法使用通过相量测量单元(PMU)技术通过广域测量系统获取的实时数据进行故障检测。特别是,使用主成分分析(PCA)将数据投影到主成分子空间和剩余空间中,并且使用两个统计信息来检测故障的发生。然后使用故障重构方法来识别故障及其随时间的发展。所提出的方案已经在实际系统中使用,结果证实了所提出的方法可以正确地识别出断层和孤岛位置。

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