• Title of article

    LES of turbulent liquid jet primary breakup in turbulent coaxial air flow

  • Author/Authors

    Xiao، نويسنده , , F. and Dianat، نويسنده , , M. and McGuirk، نويسنده , , J.J.، نويسنده ,

  • Issue Information
    روزنامه با شماره پیاپی سال 2014
  • Pages
    16
  • From page
    103
  • To page
    118
  • Abstract
    A robust two-phase flow Large Eddy Simulation (LES) algorithm has been developed and applied to predict the primary breakup of an axisymmetric water jet injected into a surrounding coaxial air flow. The high liquid/gas density and viscosity ratios are known to represent a significant challenge in numerical modelling of the primary breakup process. In the current LES methodology, an extrapolated liquid velocity field was used to minimise discretisation errors, whilst maintaining sharp treatment of fluid properties across the interface. The proposed numerical approach showed excellent robustness and high accuracy in predicting coaxial liquid jet primary breakup. Since strong turbulence structures will develop inside the injector at high Reynolds numbers and affect the subsequent primary breakup, the Rescaling and Recycling Method (R2M) was implemented to facilitate generation of appropriate unsteady LES inlet conditions for both phases. The influence of inflowing liquid and gas turbulent structures on the initial interface instability was investigated. It is shown that liquid turbulent eddies play the dominant role in the initial development of liquid jet surface disturbance and distortion for the flow conditions considered. When turbulent inflows were specified by the R2M technique, the predicted core breakup lengths at different air/water velocities agreed closely with experimental data.
  • Keywords
    Large eddy simulation , Liquid jet in coaxial air flow , Core breakup length , Synthetic LES inlet conditions , Primary breakup
  • Journal title
    International Journal of Multiphase Flow
  • Serial Year
    2014
  • Journal title
    International Journal of Multiphase Flow
  • Record number

    1411603