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Power System Real-Time Event Detection and Associated Data Archival Reduction Based on Synchrophasors

机译:基于同步相量的电力系统实时事件检测与关联数据归档减少

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The aim of this paper is to present methods on real-time event detection and data archival reduction based on synchrophasor data produced by phasor measurement unit (PMU). Event detection is performed with principal component analysis and a second order difference method with a hierarchical framework for the event notification strategy on a small-scale microgrid. Compared with the existing methods, the proposed method is more practical and efficient in the combined use of event detection and data archival reduction. The proposed method on data reduction, which is an “event oriented auto-adjustable sliding window method,” implements a curve fitting algorithm with a weighted exponential function-based variable sliding window accommodating different event types. It works efficiently with minimal loss in data information especially around detected events. The performance of the proposed method is shown on actual PMU data from the Illinois Institute of Technology campus microgrid, thus successfully improving the situational awareness of the campus power system network.
机译:本文的目的是提出一种基于相量测量单元(PMU)产生的同步相量数据的实时事件检测和数据归档减少的方法。事件检测通过主成分分析和具有分层框架的二阶差分方法执行,用于小规模微电网上的事件通知策略。与现有方法相比,该方法在事件检测和数据归档约简的结合使用中更加实用,高效。所提出的数据约简方法是“面向事件的自动调整滑动窗口方法”,该方法采用了基于加权指数函数的可变滑动窗口并适应不同事件类型的曲线拟合算法。它可以高效工作,而数据信息的损失最小,尤其是在检测到的事件周围。伊利诺伊理工大学校园微电网的实际PMU数据显示了该方法的性能,从而成功提高了校园电力系统网络的态势感知能力。

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