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ONE-CLASS CLASSIFIER BASED FAULT DETECTION IN DISTRIBUTION SYSTEMS WITH DISTRIBUTED ENERGY RESOURCES

机译:基于单级分类器的分布式能源分配系统的故障检测

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The integration of distributed energy resources (DERs) into distribution systems greatly increases the system complexity and introduces two-way power flows. Conventional protection schemes are based upon local measurements and simple linear system models, thus they cannot handle the new complexity and power flow patterns in systems with high DERs penetration. In this paper, we propose a data-driven protection framework to address the challenges induced by DERs. Considering the limited available data under fault conditions, we adopt the support vector data description (SVDD) method, a commonly used one-class classifier, for distribution system fault detection. The proposed method is tested under the IEEE 123-node test feeder and simulation results show that our proposed SVDD-based fault detection method significantly improves the robustness and resilience against DERs in comparison with conventional protection systems.
机译:分布式能源资源(DERS)进入分销系统的集成大大提高了系统复杂性并引入了双向功率流。传统的保护方案基于本地测量和简单的线性系统模型,因此它们无法处理具有高电平渗透的系统中的新复杂性和功率流模式。在本文中,我们提出了一种数据驱动的保护框架,以解决DER诱导的挑战。考虑到故障条件下的有限可用数据,我们采用支持向量数据描述(SVDD)方法,常用的单级分类器,用于分配系统故障检测。在IEEE 123节点测试馈线和仿真结果下测试了所提出的方法表明,与传统保护系统相比,我们所提出的基于SVDD的故障检测方法显着提高了鲁棒性和抵抗DER的鲁棒性和弹性。

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