• DocumentCode
    13014
  • Title

    Linear and Sliding-Mode Control Design for Matrix Converter-Based Unified Power Flow Controllers

  • Author

    Monteiro, Jose ; Silva, Jorge F. ; Pinto, S.F. ; Palma, J.

  • Author_Institution
    INESC-ID Lisbon, Lisbon, Portugal
  • Volume
    29
  • Issue
    7
  • fYear
    2014
  • fDate
    Jul-14
  • Firstpage
    3357
  • Lastpage
    3367
  • Abstract
    This paper presents the design and compares the performance of linear, decoupled and direct power controllers (DPC) for three-phase matrix converters operating as unified power flow controllers (UPFC). A simplified steady-state model of the matrix converter-based UPFC fitted with a modified Venturini high-frequency pulse width modulator is first used to design the linear controllers for the transmission line active (P) and reactive (Q) powers. In order to minimize the resulting cross coupling between P and Q power controllers, decoupled linear controllers (DLC) are synthesized using inverse dynamics linearization. DPC are then developed using sliding-mode control techniques, in order to guarantee both robustness and decoupled control. The designed P and Q power controllers are compared using simulations and experimental results. Linear controllers show acceptable steady-state behavior but still exhibit coupling between P and Q powers in transient operation. DLC are free from cross coupling but are parameter sensitive. Results obtained by DPC show decoupled power control with zero error tracking and faster responses with no overshoot and no steady-state error. All the designed controllers were implemented using the same digital signal processing hardware.
  • Keywords
    PWM power convertors; control system analysis; inverse problems; linear systems; load flow control; matrix convertors; minimisation; power transmission control; power transmission lines; reactive power control; robust control; variable structure systems; DPC synthesis; cross coupling minimization; decoupled linear controller synthesis; decoupled power control; digital signal processing; direct power controller; inverse dynamics linearization; matrix converter; modified Venturini high frequency pulse width modulator; robustness; sliding mode control design; steady-state model; transmission line active power; transmission line reactive power; unified power flow controller; zero error tracking; Load flow; Matrix converters; Power transmission lines; Reactive power; Steady-state; Vectors; Voltage control; Direct power controllers (DPC); linear controllers; matrix converter; unified power flow controllers (UPFC);
  • fLanguage
    English
  • Journal_Title
    Power Electronics, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0885-8993
  • Type

    jour

  • DOI
    10.1109/TPEL.2013.2282256
  • Filename
    6601646