• DocumentCode
    3603037
  • Title

    Advanced Vector Control Design for DFIM-Based Hydropower Storage for Fault Ride-Through Enhancement

  • Author

    Bidgoli, Mohsen Alizadeh ; Mohammadpour, Hossein Ali ; Bathaee, Seyed Mohammad Taghi

  • Author_Institution
    Dept. of Electr. Eng., K.N. Toosi Univ. of Technol., Tehran, Iran
  • Volume
    30
  • Issue
    4
  • fYear
    2015
  • Firstpage
    1449
  • Lastpage
    1459
  • Abstract
    This paper proposes an advanced vector control method for rotor side converter of doubly-fed induction machine (DFIM)-based storage hydropower in order to enhance the fault ride-through capability in both generating and motor modes. In this method, the active power and stator voltage control loops are on the d-axis and q-axis, respectively. Since the active power and the stator voltage control loops are inherently slow and nonlinear, an effective input signal (EIS) based on Lyapunov theory is designed and added to the d -axis of the rotor voltage. It is shown that the EIS can compensate the induced voltage in the rotor windings, rotor back electromotive force during the large disturbances, when it is added to the conventional vector controller. The sizing of the converters, considering the active and reactive power priority, are also investigated in order for the EIS to comply to the existing actual limitations. The effectiveness of the proposed rotor side controller is examined in a 381 MVA adjustable speed-pumped storage hydropower, operating in both generating and motor modes. Finally, simulation results performed in Matlab/SimPowerSys is presented in order to validate the proposed control system.
  • Keywords
    Lyapunov methods; asynchronous machines; electric potential; hydroelectric power stations; rotors; variable speed drives; voltage control; DFIM-based hydropower storage; Lyapunov theory; active power; adjustable speed-pumped storage hydropower; advanced vector control design; doubly-fed induction machine; effective input signal; fault ride-through enhancement; rotor back electromotive force; rotor side converter; rotor windings; stator voltage control loops; Mathematical model; Pumps; Rotors; Stator windings; Transient analysis; Voltage control; Adjustable speed-pumped storage plant; doubly fed induction machine (DFIM); fault ride-through; nonlinear control;
  • fLanguage
    English
  • Journal_Title
    Energy Conversion, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0885-8969
  • Type

    jour

  • DOI
    10.1109/TEC.2015.2437953
  • Filename
    7122876