• DocumentCode
    881052
  • Title

    Compensation of particle accelerator load using converter-controlled pulse compensator

  • Author

    Jovcic, Dragan ; Kahle, Karsten

  • Author_Institution
    Univ. of Aberdeen, UK
  • Volume
    21
  • Issue
    2
  • fYear
    2006
  • fDate
    4/1/2006 12:00:00 AM
  • Firstpage
    801
  • Lastpage
    808
  • Abstract
    This paper studies the use of a voltage-source converter (VSC) with dc capacitors as an energy storage medium for the compensation of pulsating active and reactive power of the European Organization for Nuclear Research´s (CERN´s) proton synchrotron (PS) particle accelerator. The PS accelerator load demands periodic, active, and reactive power pulses of about 2-s duration and a magnitude of up to 45 MW and 65 Mvar. The proposed compensator is able to control both reactive and active power exchange with the network in order to eliminate network disturbances. The controllability study reveals that the best control strategy is to use a q-axis converter input for active power and a d-axis input for reactive power regulation. An analytical system model is created to study the system dynamics and to aid the controller design. The eigenvalue study with the MATLAB model reveals that with large energy storage units and small converter losses, there is only a small interaction between the control channels. The final testing is done with a detailed nonlinear model in PSCAD/EMTDC. The simulation results show that it is possible to fully compensate the active power exchange with the network during typical accelerator cycles and, at the same time, to achieve excellent ac voltage control.
  • Keywords
    capacitor storage; control system synthesis; eigenvalues and eigenfunctions; fault diagnosis; power capacitors; power convertors; reactive power control; voltage control; European Organization for Nuclear Research; MATLAB model; PSCAD; ac voltage control; active power control; controller design; converter-controlled pulse compensator; dc capacitors; eigenvalue study; energy storage medium; network disturbance elimination; nonlinear model; particle accelerator load compensation; power exchange; proton synchroton; q-axis converter; reactive power control; voltage-source converter; Capacitors; Converters; Energy storage; Linear particle accelerator; Mathematical model; Power conversion; Power markets; Power system modeling; Reactive power; Voltage; Accelerator power supply; eigenvalues; energy storage; proton accelerators; pulsewidth-modulated power converters; root loci; state-space methods;
  • fLanguage
    English
  • Journal_Title
    Power Delivery, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0885-8977
  • Type

    jour

  • DOI
    10.1109/TPWRD.2005.858800
  • Filename
    1610693