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An Energy-Based Approach to Power System Analysis.

机译:基于能量的电力系统分析方法。

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摘要

Power systems are part of the nation's critical infrastructure and they support several indispensable services of our civilization such as hospitals, transportation systems, and telecommunications. Among the many requirements that power systems need to satisfy, power systems need to ensure that voltages and currents in the power grid are sinusoidal with a synchronous frequency of 50 or 60 Hz. Failure to do so would cause damage in appliances as well as in electrical industrial machinery that were developed under the assumption of sinusoidal voltages and currents with constant frequency. Furthermore, according to the North American Electric Reliability Corporation, frequency divergence of one or more of the generators that supply power to the grid, i.e., loss of synchronization, can lead to vibrations causing serious damage to the generators. As documented in the United States Department of Energy report on the August 14, 2003 blackout in Canada and the Northeast of the United States, frequency swings are the main reason for blackouts to spread across power systems. This makes the preservation of synchronization of generator frequencies one of the most important problems in power systems. This problem is also known as the transient stability problem in the power systems literature.;The classical models used to study the transient stability problem implicitly assume that all the generators are rotating at angular velocities close to the synchronous frequency. This assumption is known not to hold in real power systems. A well documented example by the Department of Energy is the final stage of the August 14, 2003 blackout. This makes us question the validity of the existing tools and methods, based on classical assumptions and models, to predict and prevent the spread of blackouts.;In this work, we abandon the classical models and replace them with energy-based models derived from first principles that are not subject to hard-to-justify classical assumptions. In addition to eliminate assumptions that are known not to be satisfied, we derive intuitive conditions ensuring the transient stability of power systems. Providing such conditions in the classical framework with lossy transmission lines is a problem that has remained unsolved for more than sixty years and partial solutions under very restrictive assumptions have only recently been found. This is to be contrasted with the conditions described in this thesis that naturally handle lossy transmission lines. With the help of the insights we gained in the analysis performed in Section 4.3, we design easy-to-implement controllers that solve the transient stability problem in power systems. We also provide a novel way of performing circuit reduction, aiming to reduce the complexity of transmission grid models. Kron reduction, which is performed under steady state assumptions, is the standard circuit reduction technique used in the power systems literature. The novel circuit reduction method described in Section 3.1 shows how to perform Kron reduction for a class of electrical networks without these steady state assumptions.
机译:电力系统是国家重要基础设施的一部分,它们支持我们文明的一些必不可少的服务,例如医院,运输系统和电信。在电力系统需要满足的许多要求中,电力系统需要确保电网中的电压和电流为正弦波,同步频率为50或60 Hz。否则会损坏在正弦电压和恒定频率的电流条件下开发的设备以及电气工业机械。此外,根据北美电力可靠性公司,向电网供电的一台或多台发电机的频率发散,即失去同步性,可能导致振动,从而严重损害发电机。如2003年8月14日美国能源部在加拿大和美国东北部发生的停电报告中所述,频率波动是停电在整个电力系统中蔓延的主要原因。这使得保持发电机频率的同步成为电力系统中最重要的问题之一。该问题在电力系统文献中也称为瞬态稳定问题。用于研究瞬态稳定问题的经典模型隐式地假设所有发电机都以接近同步频率的角速度旋转。已知这种假设在实际的电源系统中不成立。能源部有据可查的例子是2003年8月14日停电的最后阶段。这使我们质疑基于经典假设和模型的现有工具和方法的有效性,以预测和防止停电的蔓延。在这项工作中,我们放弃了经典模型,而将其替换为从第一代衍生的基于能量的模型不受难以证明的经典假设约束的原则。除了消除已知不满足的假设外,我们还得出直观的条件,以确保电力系统的瞬态稳定性。在经典框架中为有损耗的传输线提供这样的条件是一个已经解决了六十多年的问题,并且直到最近才发现在非常严格的假设下的部分解决方案。这与本文所述的自然处理有损传输线的条件形成对比。借助在第4.3节中进行的分析中获得的洞见,我们设计了易于实现的控制器,以解决电力系统中的暂态稳定性问题。我们还提供了一种新颖的执行电路简化的方法,旨在降低传输网格模型的复杂性。在稳态假设下执行的Kron还原是电力系统文献中使用的标准电路还原技术。第3.1节中描述的新颖的电路还原方法展示了如何在没有这些稳态假设的情况下对一类电网进行Kron还原。

著录项

  • 作者

    Caliskan, Sina Yamac.;

  • 作者单位

    University of California, Los Angeles.;

  • 授予单位 University of California, Los Angeles.;
  • 学科 Electrical engineering.
  • 学位 Ph.D.
  • 年度 2015
  • 页码 98 p.
  • 总页数 98
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:52:28

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