• DocumentCode
    1338303
  • Title

    Design, Simulation, and Testing of a Dual Stator-Winding All-Air-Core Compulsator

  • Author

    Wu, Shaopeng ; Cui, Shumei ; Song, Liwei ; Zhao, Weiduo ; Zhang, Jing

  • Author_Institution
    Dept. of Electr. Eng., Harbin Inst. of Technol., Harbin, China
  • Volume
    39
  • Issue
    1
  • fYear
    2011
  • Firstpage
    328
  • Lastpage
    334
  • Abstract
    The focus toward advanced mobile tactical configurations for railgun power supplies has resulted in the evolution of five compulsator generations in the past 30 years from iron-core to air-core prototypes. However, the exact air-core field simulation and the complicated fabrication technique of an air-core compulsator are not clear enough for researchers. This paper presents a detailed description of a small-scale all-air-core compulsator, which has a novel topology. The unique feature of the all-air-core compulsator is that there are two armature windings in the stator, the primary armature winding for providing the main output pulse and the secondary armature winding for providing the voltage for self-excitation. This approach allows the optimization of each armature winding to its specific duty cycle for increasing the overall efficiency of the compulsator. The two armature windings are located in the stator and not in the rotor. The advantage of this configuration is that it is unnecessary to equip the large-energy-level brush- and slip-ring mechanism. It is necessary to improve the power density, stability, and life span of a system. The no-load and discharge simulation results of the all-air-core compulsator were presented. Then, the electrical and mechanical parameters were given. The process technology of the slotless windings and the subassembly of the stator and rotor were presented. The results of the pulse-excitation experiment validate the results of the simulation.
  • Keywords
    pulsed power supplies; stators; armature windings; brush-ring mechanism; discharge simulation; dual stator-winding all-air-core compulsator; duty cycle; iron-core compulsator; life span; power density; railgun power supplies; slip-ring mechanism; slotless windings; Aluminum; Bonding; Carbon; Discharges; Epoxy resins; Rotors; Windings; All-air-core; compulsators; electromagnetic simulation; process technology; pulsed power supply;
  • fLanguage
    English
  • Journal_Title
    Plasma Science, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0093-3813
  • Type

    jour

  • DOI
    10.1109/TPS.2010.2068564
  • Filename
    5587903