• DocumentCode
    22763
  • Title

    Excitation Winding Short-Circuits in Hybrid Excitation Permanent Magnet Motor

  • Author

    Li, G.J. ; Hloui, S. ; Ojeda, Javier ; Hoang, E. ; Lecrivain, M. ; Gabsi, Mohamed ; Zhu, Z.Q.

  • Author_Institution
    Dept. of Electron. & Electr. Eng., Univ. of Sheffield, Sheffield, UK
  • Volume
    29
  • Issue
    3
  • fYear
    2014
  • fDate
    Sept. 2014
  • Firstpage
    567
  • Lastpage
    575
  • Abstract
    This paper presents two short-circuit fault models of a hybrid excitation flux switching permanent magnet machine, i.e., excitation phase short-circuit and interturn short-circuit in excitation windings. Two-dimensional finite element (FE) method is used to calculate the major parameters, such as armature and excitation inductances, which are not only functions of rotor position, but also of armature and excitation currents. Moreover, in case of short-circuits, the variations of armature and excitation currents are often significant. This in turn leads to an important change in winding inductances. Therefore, in order to precisely predict machine performance under short-circuit conditions, the use of inductances versus rotor position and RMS currents is essential. With the obtained FE results, two MATLAB/Simulink-based models are established. Then, the previously mentioned short-circuits have been studied and their influences on electromagnetic performances, such as armature and excitation currents, speed and torque, armature and excitation copper losses, stator and rotor core iron losses, as well as permanent magnet (PM) eddy current losses are analyzed. Experiments have been carried out to validate the simulations.
  • Keywords
    eddy current losses; finite element analysis; permanent magnet motors; rotors; stators; torque; 2D finite element method; MATLAB-Simulink; armature current; excitation current; excitation phase short-circuit; excitation winding short-circuits; hybrid excitation flux switching permanent magnet machine; interturn short-circuit; permanent magnet eddy current losses; rotor core iron losses; short-circuit fault models; winding inductance; Inductance; Rotors; Stator windings; Torque; Windings; Finite element method (FEM); flux-switching; hybrid excitation; interturn; magnetic saturation; permanent magnet; short-circuit;
  • fLanguage
    English
  • Journal_Title
    Energy Conversion, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0885-8969
  • Type

    jour

  • DOI
    10.1109/TEC.2014.2322194
  • Filename
    6822545