• DocumentCode
    46481
  • Title

    The Modeling and Calculation on an Air-Core Passive Compulsator

  • Author

    Liang Gao ; Li Zhenxiao ; Baoming Li

  • Author_Institution
    Nat. Key Lab. of Transient Phys., Nanjing Univ. of Sci. & Technol., Nanjing, China
  • Volume
    43
  • Issue
    3
  • fYear
    2015
  • fDate
    Mar-15
  • Firstpage
    864
  • Lastpage
    868
  • Abstract
    Capacitor banks are used to provide a high pulsed power in traditional electromagnetic launch systems, but the large volume of these capacitors greatly limits the movability of the system; meanwhile, more and more applications require a system with significantly higher energy storage density. Rotation machines that can quickly convert rotational kinetic energy into high-current electrical energy have been designed and simulated. These generators are referred to as pulsed alternators. The shape of the high current pulse can be controlled by the triggering time of rectifiers. The direct-quadrature, or Park´s, transformation is used to model a generator for simulation. The pulsed alternator consists of four stator phases, a compensated device, and field winding on the rotor all coupled together electromagnetically, and the theory is based on the standard three-phase Park´s transformation and extends to six-phase systems to make analysis of the four-phase air-core alternator that has a compensation device. After modeling the compensator, we obtain the transformed stator-voltage equations and the flux-linkage current relationship. A method is presented in which the pulsed alternator can be accurately modeled and used to numerically analyze the basic principle of a passive compensator. Finally, we optimize the current using the genetic algorithm. It is shown that this method can simplify the calculation, accurately predict the performance of the system, and provide guidance on the design of the prototype.
  • Keywords
    alternators; electromagnetic coupling; energy storage; genetic algorithms; pulsed power supplies; rectifiers; stators; Parks transformation; air-core passive compulsator; capacitor bank; compensated pulsed alternator; compensation device; direct-quadrature transformation; electromagnetic coupling; electromagnetic launch system; energy storage density; field winding; flux-linkage current relationship; four-phase air-core alternator; genetic algorithm; high current pulse; high-current electrical energy; passive compensator; pulsed alternator; pulsed power; rectifier triggering time; rotation machine; rotational kinetic energy; six-phase system; stator phase; stator-voltage equation; Alternators; Atmospheric modeling; Mathematical model; Stator windings; Torque; Windings; Compensated pulsed alternator (CPA); Park´s transformation.; damper winding; flux compression; genetic algorithm (GA); numerical simulation; park???s transformation;
  • fLanguage
    English
  • Journal_Title
    Plasma Science, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0093-3813
  • Type

    jour

  • DOI
    10.1109/TPS.2015.2394352
  • Filename
    7029147