• DocumentCode
    56609
  • Title

    Vibration Suppression in High- {\\rm T}_{\\rm c} Superconducting Levitation System Utilizing Nonlinearly Coupled Electromagnetic Shunt Damper

  • Author

    Sasaki, Masahiko ; Kimura, Junki ; Sugiura, Toshihiko

  • Author_Institution
    Keio Univ., Yokohama, Japan
  • Volume
    25
  • Issue
    3
  • fYear
    2015
  • fDate
    Jun-15
  • Firstpage
    1
  • Lastpage
    5
  • Abstract
    Superconducting levitation systems have been considered as a promising technology for implementing high-speed transport systems. A superconducting levitation system can levitate a magnet without active feedback control. However, due to the system´s low damping and nonlinearity, large-amplitude nonlinear vibration can easily occur. Although an electromagnetic shunt damper can suppress the vibration without contact by transforming the vibrational kinetic energy into electrical energy, the inductance value of the damper often becomes too large to realize practically. Therefore, we propose a new type of electromagnetic shunt damper that is nonlinearly coupled with the levitated body, and its value of inductance can be reduced to one-fourth the conventional one. First, we evaluate the levitation force via the advanced mirror image method. Next, we perform numerical calculation via the Runge-Kutta method and nonlinear analysis via the method of multiple scales. We obtain the system´s frequency responses via both these methods. From the results, we observe that internal resonance can occur and the proposed electromagnetic shunt damper can reduce the vibration amplitude.
  • Keywords
    Runge-Kutta methods; electromagnetic coupling; electromagnetic devices; frequency response; high-temperature superconductors; magnetic levitation; nonlinear dynamical systems; vibration control; Runge-Kutta method; advanced mirror image method; frequency responses; high-speed transport systems; high-temperature superconducting levitation system; levitation force; nonlinear analysis; nonlinearly coupled electromagnetic shunt damper; vibration suppression; Force; Magnetic flux; Magnetic levitation; Magnetomechanical effects; Shock absorbers; Superconducting magnets; Vibrations; Electromagnetic coupling; High-temperature superconductors; Magnetic levitation; Nonlinear dynamical systems; Vibrations; high-temperature superconductors; magnetic levitation; nonlinear dynamical systems; vibrations;
  • fLanguage
    English
  • Journal_Title
    Applied Superconductivity, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    1051-8223
  • Type

    jour

  • DOI
    10.1109/TASC.2014.2374421
  • Filename
    6966741