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Power system voltage stability and agent based distribution automation in smart grid.

机译:智能电网中的电力系统电压稳定性和基于代理的配电自动化。

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摘要

Our interconnected electric power system is presently facing many challenges that it was not originally designed and engineered to handle. The increased inter-area power transfers, aging infrastructure, and old technologies, have caused many problems including voltage instability, widespread blackouts, slow control response, among others. These problems have created an urgent need to transform the present electric power system to a highly stable, reliable, efficient, and self-healing electric power system of the future, which has been termed "smart grid".;This dissertation begins with an investigation of voltage stability in bulk transmission networks. A new continuation power flow tool for studying the impacts of generator merit order based dispatch on inter-area transfer capability and static voltage stability is presented. The load demands are represented by lumped load models on the transmission system. While this representation is acceptable in traditional power system analysis, it may not be valid in the future smart grid where the distribution system will be integrated with intelligent and quick control capabilities to mitigate voltage problems before they propagate into the entire system. Therefore, before analyzing the operation of the whole smart grid, it is important to understand the distribution system first.;The second part of this dissertation presents a new platform for studying and testing emerging technologies in advanced Distribution Automation (DA) within smart grids. Due to the key benefits over the traditional centralized approach, namely flexible deployment, scalability, and avoidance of single-point-of-failure, a new distributed approach is employed to design and develop all elements of the platform. A multi-agent system (MAS), which has the three key characteristics of autonomy, local view, and decentralization, is selected to implement the advanced DA functions. The intelligent agents utilize a communication network for cooperation and negotiation. Communication latency is modeled using a user-defined probability density function. Failure-tolerant communication strategies are developed for agent communications. Major elements of advanced DA are developed in a completely distributed way and successfully tested for several IEEE standard systems, including: Fault Detection, Location, Isolation, and Service Restoration (FLISR); Coordination of Distributed Energy Storage Systems (DES); Distributed Power Flow (DPF); Volt-VAR Control (VVC); and Loss Reduction (LR).
机译:我们的互连电力系统目前面临着许多挑战,而这些挑战并非最初设计和制造的。区域间电力传输的增加,基础设施的老化和旧技术的发展,导致了许多问题,包括电压不稳定,大范围停电,控制响应慢等。这些问题迫切需要将现有的电力系统转换为未来的高度稳定,可靠,高效,可自我修复的电力系统,该系统被称为“智能电网”。输电网络中的电压稳定性提出了一种新的连续潮流工具,用于研究发电机功绩单的调度对区域间传输能力和静态电压稳定性的影响。负载需求由传输系统上的集总负载模型表示。尽管这种表示方法在传统的电力系统分析中是可以接受的,但在将来的智能电网中可能无效,在将来的智能电网中,配电系统将集成有智能,快速的控制功能,以在电压问题蔓延到整个系统中之前缓解它们。因此,在分析整个智能电网的运行之前,重要的是首先要了解配电系统。本文的第二部分提供了一个新的平台,用于研究和测试智能电网中高级配电自动化(DA)中的新兴技术。由于与传统的集中式方法相比具有关键优势,即灵活的部署,可伸缩性和避免了单点故障,因此采用了一种新的分布式方法来设计和开发平台的所有元素。选择具有自治,本地视图和分散性三个关键特征的多主体系统(MAS)来实现高级DA功能。智能代理利用通信网络进行合作和协商。使用用户定义的概率密度函数对通信延迟进行建模。为代理通信开发了容错通信策略。先进DA的主要元素是以完全分布式的方式开发的,并已成功针对多个IEEE标准系统进行了测试,包括:故障检测,定位,隔离和服务恢复(FLISR);分布式储能系统(DES)的协调;分布式潮流(DPF);电压无功控制(VVC);和减少损失(LR)。

著录项

  • 作者

    Nguyen, Cuong Phuc.;

  • 作者单位

    Illinois Institute of Technology.;

  • 授予单位 Illinois Institute of Technology.;
  • 学科 Engineering Electronics and Electrical.;Artificial Intelligence.;Energy.
  • 学位 Ph.D.
  • 年度 2011
  • 页码 156 p.
  • 总页数 156
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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