• DocumentCode
    1276873
  • Title

    Active Islanding Detection for Inverter-Based Distributed Generation Systems With Power Control Interface

  • Author

    Hua Geng ; Dewei Xu ; Bin Wu ; Geng Yang

  • Author_Institution
    Dept. of Autom., Tsinghua Univ., Beijing, China
  • Volume
    26
  • Issue
    4
  • fYear
    2011
  • Firstpage
    1063
  • Lastpage
    1072
  • Abstract
    Conventional active islanding detection methods (IDMs) are designed for the inverter-based distributed generation systems (DGSs) with current control interface. Such strategies can hardly be extended to the DGS with power control interface because the power control loop can affect the IDMs by enlarging the nondetection zones (NDZs). This paper presents an active IDM based on negative-sequence power injections for the DGS with power control interface. Combining with the IDM, the power control of the DGS is achieved with two control loops. One is the positive-sequence power loop that satisfies the conventional power control requirements. The other is the negative-sequence power/current variation loop for the islanding detection. The positive and negative sequences are separated by a simple strategy based on an all digital phase-locked loop. Due to the differences between the grid impedance and the local load impedance, the percentage of the voltage imbalance (VI) at the point of common coupling is utilized to indicate the islanding operation. For the grid-connected DGS, the VI is dominated by the grid voltage, which is a constant. If the DGS is disconnected from the grid, the VI is determined by the injected negative-sequence power/current. The NDZs of the presented scheme with different system configurations, such as grid impedances, load quality factors, etc., are also analyzed in this paper. By injecting the negative-sequence power/current periodically, the NDZs resulting from the imbalance of the grid voltages or the local loads are further mitigated. For multi-DGSs, the IDM is still effective if combined with the conventional under/overfrequency-protection strategy. The simulation and experimental results verify the effectiveness of the IDM.
  • Keywords
    Q-factor; digital phase locked loops; distributed power generation; electric current control; invertors; power control; power distribution protection; active islanding detection methods; control loops; current control interface; digital phase-locked loop; grid impedance; grid voltage; inverter-based distributed generation systems; load quality factors; local load impedance; negative-sequence power injections; negative-sequence power-current variation loop; nondetection zones; power control interface; under-over frequency-protection strategy; voltage imbalance; Current control; Frequency control; Inverters; Power control; Power distribution lines; Reactive power; Voltage control; Distributed generation system (DGS); islanding detection; positive- and negative-sequence separation; power control;
  • fLanguage
    English
  • Journal_Title
    Energy Conversion, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0885-8969
  • Type

    jour

  • DOI
    10.1109/TEC.2011.2159720
  • Filename
    5958590