• DocumentCode
    74595
  • Title

    Interarea Oscillation Damping Controls for Wind Power Plants

  • Author

    Singh, Mohit ; Allen, Alicia J. ; Muljadi, Eduard ; Gevorgian, Vahan ; Yingchen Zhang ; Santoso, Surya

  • Author_Institution
    Transm. & Grid Integration, Nat. Renewable Energy Lab., Golden, CO, USA
  • Volume
    6
  • Issue
    3
  • fYear
    2015
  • fDate
    Jul-15
  • Firstpage
    967
  • Lastpage
    975
  • Abstract
    This paper investigates the potential for wind power plants (WPPs) to damp interarea modes. Interarea modes may be the result of a single or a group of generators oscillating against another group of generators across a weak transmission link. If poorly damped, these power system oscillations can cause system instability and potentially lead to blackouts. Power conversion devices, particularly, megawatt-scale converters that connect wind turbines and photovoltaic power plants to the grid, could be used to damp these oscillations by injecting power into the system out of phase with the potentially unstable mode. In our model, this power may be provided by a WPP. Over time, the net energy injection is near zero; therefore, providing this static damping capability is not expected to affect the energy production of a WPP. This is a measurement-based investigation that employs simulated measurement data. It is not a traditional small-signal stability analysis based on Eigenvalues and knowledge of the power system network and its components. Kundurs well-known two-area, four-generator system and a doubly fed induction generator (DFIG)-based WPP are modeled in PSCAD/EMTDC. The WPP model is based on the Western Electricity Coordination Council (WECC) standard model. A controller to damp interarea oscillations is added to the WECC DFIG model, and its effects are studied. Analysis is performed on the data generated by the simulations. The sampling frequency is set to resemble the sampling frequency at which data are available from phasor measurement units in the real world. The YuleWalker algorithm is used to estimate the power spectral density of these signals.
  • Keywords
    asynchronous generators; damping; eigenvalues and eigenfunctions; oscillations; phasor measurement; photovoltaic power systems; power convertors; power generation control; power grids; power system simulation; power system stability; wind power plants; wind turbines; DFIG-based WPP; Kundurs four-generator system; PSCAD-EMTDC; WECC DFIG model; WECC standard model; Western Electricity Coordination Council; YuleWalker algorithm; doubly fed induction generator; eigenvalues; energy production; interarea modes; interarea oscillation damping controls; megawatt-scale converters; net energy injection; phasor measurement units; photovoltaic power plants; power conversion devices; power spectral density; power system network; power system oscillations; small-signal stability analysis; static damping capability; system instability; transmission link; wind power plants; wind turbines; Damping; Generators; Oscillators; Phasor measurement units; Power system stability; Wind power generation; Wind turbines; Doubly fed induction generators; electromechanical dynamics; electromechanicaldynamics; interarea oscillations; synchronized phasor measurements; two-area system;
  • fLanguage
    English
  • Journal_Title
    Sustainable Energy, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    1949-3029
  • Type

    jour

  • DOI
    10.1109/TSTE.2014.2348491
  • Filename
    6901255