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A Real-Time Self-Healing Methodology Using Model- and Measurement-Based Islanding Algorithms

机译:使用基于模型和测量的孤岛算法的实时自我修复方法

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摘要

In this paper, a new real-time defensive islanding method, which is adaptive to the operating conditions is proposed. In the method, a number of candidate islanding schemes are generated using both model- and measurement-based islanding algorithms after detecting a severe fault in the system by means of a new severity index based on generator bus voltage frequency measurements. Of model-based algorithms, slow coherency-based islanding, in which the prefault measurements are utilized, is adopted. On the other hand, K-means, hierarchical, and fuzzy relational eigenvector centrality-based clustering are employed as measurement-based islanding algorithms, where the postfault measurements of the evolving dynamics after the severe fault are utilized. A faster-than-real-time software platform is, then, employed to validate the success of the candidate schemes in healing the system. Among the successful schemes, the one resulting in the least load imbalance is chosen to be applied. All the computations from the detection of the fault to the application of islanding are performed in real-time, directly after the occurrence of the fault. The proposed method is demonstrated on the 37-generator 127-bus WSCC power test system, and on a model of the Turkish power system to assess the method's performance.
机译:本文提出了一种适应工况的新型实时防御性孤岛方法。在该方法中,在基于发电机母线电压频率测量的新严重性指标检测到系统中的严重故障之后,使用基于模型和基于测量的孤岛算法生成了多个候选孤岛方案。在基于模型的算法中,采用了基于慢相干性的孤岛,其中利用了故障​​前测量。另一方面,将基于均值,分层和模糊关系本征向量中心性的聚类用作基于测量的孤岛算法,其中利用了严重故障后演化动力学的故障后测量。然后,使用比实时更快的软件平台来验证候选方案在修复系统中是否成功。在成功的方案中,选择应用导致负载不平衡最小的方案。从故障检测到孤岛应用的所有计算都在故障发生后立即实时进行。该方法在37发电机127总线WSCC电力测试系统上进行了演示,并在土耳其电力系统的模型上进行了评估,以评估该方法的性能。

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