• DocumentCode
    1461273
  • Title

    Modeling of multiple liner containment systems for high speed rotors

  • Author

    Dulaney, K.A. ; Beno, J.H. ; Thompson, R.C.

  • Author_Institution
    Center for Electromech., Texas Univ., Austin, TX, USA
  • Volume
    35
  • Issue
    1
  • fYear
    1999
  • fDate
    1/1/1999 12:00:00 AM
  • Firstpage
    334
  • Lastpage
    339
  • Abstract
    High speed composite rotors typically require containment structures to protect personnel and equipment from high energy rotor material and fragments that result from rotor burst events, which may occur during rotor overspeed. Loading to the containment structure during a burst event is a function of rotor design and containment geometry. A containment system proposed by The University of Texas at Austin Center for Electromechanics uses graphite-reinforced composite cylinders to dissipate radial kinetic energy from the rotor debris and reduce torque loads transmitted to the rotor housing and mounting hardware. Using an analogous mass-spring-damper system, a model was developed with bond graph techniques to estimate containment loads and response. The bond graphs, state equations and simulation results are compared with experimental results. The model is able to predict the general trends observed in experimental data and is used as a design tool for containment systems
  • Keywords
    bond graphs; composite materials; electric machines; machine testing; machine theory; rotors; analogous mass-spring-damper system; bond graph techniques; containment geometry; design tool; experimental results; multiple liner containment systems; radial kinetic energy dissipation; rotating machine high-speed composite rotors; rotor design; rotor overspeed; simulation results; state equations; Bonding; Composite materials; Equations; Geometry; Hardware; Kinetic energy; Personnel; Predictive models; Protection; Torque;
  • fLanguage
    English
  • Journal_Title
    Magnetics, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9464
  • Type

    jour

  • DOI
    10.1109/20.738427
  • Filename
    738427