• DocumentCode
    3220648
  • Title

    Comparison of different control structures for Lyapunov-based power system stabilizer

  • Author

    Robak, S. ; Bialek, J.W. ; Machowski, J.

  • Author_Institution
    Inst. Elektroenergetyki, Warsaw Univ. of Technol., Poland
  • fYear
    2001
  • fDate
    2001
  • Firstpage
    229
  • Lastpage
    234
  • Abstract
    Recently it has been shown that it is possible to design a power system stabilizer (PSS) using a nonlinear multi-machine power system model in conjunction with Lyapunov´s direct method. The resulting controller has been shown to be robust. It was also shown that each individual controller acted independently of all the others suggesting that no coordination of settings is necessary. These features should allow a decentralized approach to the design of the PSS. In this paper two control structures implementing the proposed control law have been compared: a hierarchical structure in which the automatic voltage regulator (AVR) is the master controller and the PSS is the slave controller, and a more traditional structure in which the PSS constitutes a supplementary loop to the main AVR. This paper shows that the AVR has to be designed in a different way for each of the structures. Theoretical analysis is supported by the results of simulations tests which highlighted the differences between the way in which the stabilizing signal was obtained for each controller. The tests performed on a multi-machine system model have shown a very good performance of both proposed structures when compared with a classical speed-based PSS
  • Keywords
    Lyapunov methods; control system analysis; control system synthesis; damping; hierarchical systems; power system control; power system stability; voltage control; Lyapunov-based power system stabilizer; PSS; automatic voltage regulator; control design; control simulation; control structures; control structures comparison; decentralized approach; master controller; nonlinear multi-machine power system model; power system stabilizer; robust control; slave controller; synchronous generator excitation; Analytical models; Automatic control; Automatic voltage control; Master-slave; Performance evaluation; Power system modeling; Regulators; Robust control; Signal analysis; System testing;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Power Industry Computer Applications, 2001. PICA 2001. Innovative Computing for Power - Electric Energy Meets the Market. 22nd IEEE Power Engineering Society International Conference on
  • Conference_Location
    Sydney, NSW
  • Print_ISBN
    0-7803-6681-6
  • Type

    conf

  • DOI
    10.1109/PICA.2001.932353
  • Filename
    932353