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Analyses of power system vulnerability and total transfer capability.

机译:电力系统脆弱性和总传输能力分析。

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摘要

Modern power systems are now stepping into the post-restructuring era, in which utility industries as well as ISOs (Independent System Operators) are involved. Attention needs to be paid to the reliability study of power systems by both the utility companies and the ISOs. An uninterrupted and high quality power is required for the sustainable development of a technological society. Power system blackouts generally result from cascading outages. Protection system hidden failures remain dormant when everything is normal and are exposed as a result of other system disturbances. This dissertation provides new methods for power system vulnerability analysis including protection failures. Both adequacy and security aspects are included.; The power system vulnerability analysis covers the following issues: (1) Protection system failure analysis and modeling based on protection failure features; (2) New methodology for reliability evaluation to incorporate protection system failure modes; and, (3) Application of variance reduction techniques and evaluation. A new model of current-carrying component paired with its associated protection system has been proposed. The model differentiates two protection failure modes, and it is the foundation of the proposed research. Detailed stochastic features of system contingencies and corresponding responses are considered. Both adequacy and security reliability indices are computed. Moreover, a new reliability index ISV (Integrated System Vulnerability) is introduced to represent the integrated reliability performance with consideration of protection system failures. According to these indices, we can locate the weakest point or link in a power system. The whole analysis procedure is based on a non-sequential Monte Carlo simulation method. In reliability analysis, especially with Monte Carlo simulation, computation time is a function not only of a large number of simulations, but also time-consuming system state evaluation, such as OPF (Optimal Power Flow) and stability assessment. Theoretical and practical analysis is conducted for the application of variance reduction techniques.; The dissertation also proposes a comprehensive approach for a TTC (Total Transfer Capability) calculation with consideration of thermal, voltage and transient stability limits. Both steady state and dynamic security assessments are included in the process of obtaining total transfer capability. Particularly, the effect of FACTS (Flexible AC Transmission Systems) devices on TTC is examined. FACTS devices have been shown to have both positive and negative effects on system stability depending on their location. Furthermore, this dissertation proposes a probabilistic method which gives a new framework for analyzing total transfer capability with actual operational conditions.
机译:现代电力系统现在正步入重组后时代,其中涉及公用事业行业以及ISO(独立系统运营商)。公用事业公司和ISO都必须注意电力系统的可靠性研究。技术社会的可持续发展需要不间断的高质量电源。电力系统停电通常是由级联中断引起的。当一切正常时,保护系统隐藏的故障仍然处于休眠状态,并且由于其他系统干扰而暴露出来。本文为电力系统的脆弱性分析提供了新的方法,包括保护失效。充分性和安全性方面都包括在内。电力系统脆弱性分析涉及以下问题:(1)基于保护故障特征的保护系统故障分析与建模; (2)纳入保护系统故障模式的可靠性评估新方法; (3)方差减少技术和评估的应用。提出了一种新的载流元件模型及其相关的保护系统。该模型区分了两种保护失效模式,是本文研究的基础。考虑了系统突发事件的详细随机特征和相应的响应。充分性指标和安全可靠性指标均被计算。此外,引入了新的可靠性指标ISV(集成系统漏洞),以表示考虑了保护系统故障的集成可靠性性能。根据这些指标,我们可以找到电力系统中最薄弱的点或链接。整个分析过程基于非顺序蒙特卡罗模拟方法。在可靠性分析中,尤其是在蒙特卡洛仿真中,计算时间不仅取决于大量仿真,还取决于耗时的系统状态评估,例如OPF(最优潮流)和稳定性评估。为减少方差技术的应用进行了理论和实践分析。本文还针对热,电压和暂态稳定极限,提出了一种全面的TTC(总传输能力)计算方法。获得总传输能力的过程中包括稳态和动态安全评估。特别是,检查了FACTS(柔性AC传输系统)设备对TTC的影响。 FACTS器件已显示出取决于其位置对系统稳定性的正面和负面影响。此外,本文提出了一种概率方法,为根据实际工况分析总转移能力提供了新的框架。

著录项

  • 作者

    Yu, Xingbin.;

  • 作者单位

    Texas A&M University.;

  • 授予单位 Texas A&M University.;
  • 学科 Engineering Electronics and Electrical.
  • 学位 Ph.D.
  • 年度 2005
  • 页码 137 p.
  • 总页数 137
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 无线电电子学、电信技术;
  • 关键词

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