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Controller design for PSS and FACTS devices to enhance damping of low-frequency power oscillations in power systems.

机译:PSS和FACTS器件的控制器设计可增强对电力系统中低频功率振荡的阻尼。

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摘要

Low frequency electromechanical oscillations are inevitable characteristics of power systems and they greatly affect the transmission line transfer capability and power system stability. PSS and FACTS devices can help the damping of power system oscillations. The objective of this dissertation is to design an advanced PSS and propose a systematic approach for damping controller design for FACTS devices. Intelligent control strategy which combines the knowledge of system identification, fuzzy logic control, and the neural networks are applied to the PSS design. A fuzzy logic based PSS is developed and tuned by neural network strategy. The proposed PSS improved the damping of power system oscillations over a conventional PSS.; But the same control strategy is not satisfactory for the FACTS damping controller design, mainly because of the different location and role of FACTS devices in power system oscillations compared to PSS. A systematic approach is proposed to design damping controllers for FACTS devices. The problem is considered from a control point of view and treated as a feedback control problem. A low order plant transfer function is obtained by PRONY method; proper control input is selected and a damping controller is designed combining the eigenvalue sensitivity analysis and the root locus method. A gain varying strategy is proposed to change the controller gain according to the transmission line loading condition for better damping effect. This approach is successfully applied in damping controller design for SVC, TCSC, and UPFC. Simulation results demonstrate good damping effects of these controllers.; Another work accomplished in this dissertation is the modeling of UPFC, a voltage-sourced converter-based FACTS device who simultaneously control bus voltage and power flows on transmission lines. The UPFC brings quite a few challenges to power system simulation and study including power flow calculations, modeling of converter control and UPFC dynamics, interfacing UPFC with the power system for transient simulation program development and physical and operating constraint modeling. The proposed model accurately represented the behavior of UPFC in quasi-steady state and well demonstrated the unique capability of the UPFC to control both the load flow and the bus voltage rapidly and independently.
机译:低频机电振荡是电力系统的必然特征,它们极大地影响传输线的传输能力和电力系统的稳定性。 PSS和FACTS设备可以帮助抑制电力系统的振荡。本文的目的是设计一种先进的PSS并为FACTS装置的阻尼控制器设计提出一种系统的方法。结合了系统识别,模糊逻辑控制和神经网络知识的智能控制策略被应用于PSS设计中。通过神经网络策略开发和调整了基于模糊逻辑的PSS。与传统的PSS相比,拟议的PSS改善了电力系统振荡的阻尼。但是,对于FACTS阻尼控制器设计,相同的控制策略并不令人满意,这主要是因为与PSS相比,FACTS设备在电力系统振荡中的位置和作用不同。提出了一种系统的方法来设计用于FACTS设备的阻尼控制器。从控制角度考虑该问题,并将其视为反馈控制问题。通过PRONY方法获得低阶植物传递函数;选择适当的控制输入,并结合特征值灵敏度分析和根轨迹方法设计阻尼控制器。提出了一种增益变化策略,根据传输线负载条件改变控制器增益,以达到更好的阻尼效果。该方法已成功应用于SVC,TCSC和UPFC的阻尼控制器设计中。仿真结果表明这些控制器具有良好的阻尼效果。本文完成的另一项工作是UPFC的建模,UPFC是一种基于电压源的基于转换器的FACTS装置,该装置可同时控制传输线上的总线电压和功率流。 UPFC给电力系统仿真和研究带来了不少挑战,包括潮流计算,变流器控制和UPFC动力学建模,UPFC与电力系统接口以进行瞬态仿真程序开发以及物理和运行约束建模。所提出的模型准确地表示了UPFC在准稳态下的行为,并充分证明了UPFC能够快速,独立地控制潮流和母线电压的独特功能。

著录项

  • 作者

    You, Ruhua.;

  • 作者单位

    Montana State University.;

  • 授予单位 Montana State University.;
  • 学科 Engineering Electronics and Electrical.
  • 学位 Ph.D.
  • 年度 2006
  • 页码 162 p.
  • 总页数 162
  • 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

  • 入库时间 2022-08-17 11:40:54

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