• Title of article

    Modeling and computation of cavitation in vortical flow

  • Author/Authors

    Abdel-Maksoud، نويسنده , , M. and Hنnel، نويسنده , , D. and Lantermann، نويسنده , , U.، نويسنده ,

  • Issue Information
    روزنامه با شماره پیاپی سال 2010
  • Pages
    10
  • From page
    1065
  • To page
    1074
  • Abstract
    The paper presents an investigation of Euler–Lagrangian methods for cavitating two-phase flows. The Euler–Euler methods, widely used for simulations of cavitating flows in ship technology, perform well in regions of moderate flow changes but fail in zones of strong, vortical flow. Reasons are the strong approximations of cavitation models in the Euler concept. Alternatively, Euler–Lagrangian concepts enable more detailed formulations for transport, dynamics and acoustic of discrete vapor bubbles. Test calculations are performed to study the influence of different parameters in the equations of motion and in the Rayleigh–Plesset equation for bubble dynamics. Results confirm that only Lagrangian models are able to describe correctly the bubble behavior in vortices, while Eulerian results deviate strongly. Lagrangian formulations enable additionally the determination of acoustic pressure of cavitation noise. Two-way coupling between the phases is required for large regions of the vapor phase. A new coupling concept between continuous fluid flow and discrete bubble phase is developed and demonstrated for flow through a nozzle. However, the iterative coupling between the phases via volume fractions is computationally expensive and should therefore be applied only in regions where Eulerian treatment fails. A corresponding local concept for combination with an Euler–Euler method is outlined and is in progress.
  • Keywords
    Vortex cavitation , Euler–Euler method , Euler–Lagrange method , two-way coupling , acoustic pressure
  • Journal title
    International Journal of Heat and Fluid Flow
  • Serial Year
    2010
  • Journal title
    International Journal of Heat and Fluid Flow
  • Record number

    2381908