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Methodology for designing the fuzzy resolver for a radial distribution system fault locator

机译:径向配电系统故障定位器模糊分解器的设计方法

摘要

The Power System Automation Lab at Texas A&M University developed a fault location scheme that can be used for radial distribution systems. When a fault occurs, the scheme executes three stages. In the first stage, all data measurements and system information is gathered and processed into suitable formats. In the second stage, three fault location methods are used to assign possibility values to each line section of a feeder. In the last stage, a fuzzy resolver is used to aggregate the outputs of the three fault location methods and assign a final possibility value to each line section of a feeder. By aggregating the outputs of the three fault location methods, the fuzzy resolver aims to obtain a smaller subset of line sections as potential faulted sections than the individual fault location methods. Fuzzy aggregation operators are used to implement fuzzy resolvers. This dissertation reports on a methodology that was developed utilizing fuzzy aggregation operators in the fuzzy resolver. Three fuzzy aggregation operators, the min, OWA, and uninorm, and two objective functions were used to design the fuzzy resolver. The methodologies to design fuzzy resolvers with respect to a single objective function and with respect to two objective functions were presented. A detailed illustration of the design process was presented. Performance studies of designed fuzzy resolvers were also performed. In order to design and validate the fuzzy resolver methodology, data were needed. Due to the lack of real field data, simulating a distribution feeder was a feasible alternative to generate data. The IEEE 34 node test feeder was modeled. Time current characteristics (TCC) based protective devices were added to this feeder. Faults were simulated on this feeder to generate data. Based on the performance studies of designed fuzzy resolvers, the fuzzy resolver designed using the uninorm operator without weights is the first choice. For this fuzzy resolver, no optimal weights are needed. In addition, fuzzy resolvers using the min operator and OWA operator can be used to design fuzzy resolvers. For these two operators, the methodology for designing fuzzy resolvers with respect to two objective functions was the appropriate choice.
机译:德州农工大学的电力系统自动化实验室开发了一种故障定位方案,该方案可用于径向配电系统。当发生故障时,该方案执行三个阶段。在第一阶段,将收集所有数据测量值和系统信息并将其处理为合适的格式。在第二阶段中,使用三种故障定位方法为馈线的每个线路段分配可能性值。在最后阶段,使用模糊分解器来汇总三种故障定位方法的输出,并为馈线的每个线路部分分配最终的可能性值。通过汇总三种故障定位方法的输出,与单个故障定位方法相比,模糊解析器旨在获得较小的线段子集作为潜在故障段。模糊聚合运算符用于实现模糊解析器。本文报道了一种利用模糊分解器中的模糊聚合算子开发的方法。使用三个模糊集合算子min,OWA和uninorm,以及两个目标函数来设计模糊分解器。介绍了针对单个目标函数和针对两个目标函数设计模糊分解器的方法。介绍了设计过程的详细说明。还进行了设计的模糊分解器的性能研究。为了设计和验证模糊解析器方法,需要数据。由于缺乏实地数据,因此模拟分配馈线是生成数据的可行选择。对IEEE 34节点测试馈送器进行了建模。基于时间电流特性(TCC)的保护设备已添加到该馈线。在该馈线上模拟故障以生成数据。基于对设计的模糊分解器的性能研究,使用没有权重的uninorm算符设计的模糊分解器是首选。对于此模糊分解器,不需要最佳权重。另外,可以使用使用min运算符和OWA运算符的模糊分解器来设计模糊分解器。对于这两个算子,针对两个目标函数设计模糊分解器的方法是合适的选择。

著录项

  • 作者

    Li Jun;

  • 作者单位
  • 年度 2006
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  • 原文格式 PDF
  • 正文语种 en_US
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