• Title of article

    A balanced-force algorithm for continuous and sharp interfacial surface tension models within a volume tracking framework

  • Author/Authors

    Francois، نويسنده , , Marianne M. and Cummins، نويسنده , , Sharen J. and Dendy، نويسنده , , Edward D. and Kothe، نويسنده , , Douglas B. and Sicilian، نويسنده , , James M. and Williams، نويسنده , , Matthew W.، نويسنده ,

  • Issue Information
    روزنامه با شماره پیاپی سال 2006
  • Pages
    33
  • From page
    141
  • To page
    173
  • Abstract
    A new balanced-force algorithm is presented for modeling interfacial flow with surface tension. The algorithm is characterized by a pressure-correction method with the interfaces represented by volume fractions. Within this flow algorithm, we devise a continuous (e.g., continuum surface tension model) and a sharp (e.g., a ghost fluid method) interface representation of the surface-tension-induced interfacial pressure jump condition. The sharp interface representation is achieved by temporarily reconstructing distance functions from volume fractions. We demonstrate that a flow algorithm designed to legislate force balance retains an exact balance between surface tension forces and the resulting pressure gradients. This balance holds for both continuous and sharp representations of interfacial surface tension. The algorithm design eliminates one of the elusive impediments to more accurate models of surface tension-driven flow, the remaining of which is accurate curvature estimation. To validate our formulation, we present results for an equilibrium (static) drop in two and three dimensions having an arbitrary density jump across the interface. We find that the sharp surface tension method yields an abrupt pressure jump across the interface, whereas the continuous surface tension method results in a smoother transition. Both methods, however, yield spurious velocities of the same order, the origin of which is due solely to errors in curvature. Dynamic results are also presented to illustrate the versatility of the method.
  • Keywords
    Incompressible Flow , Volume-of-Fluid , Curvatures , Drop dynamics , Ghost Fluid Method , Continuum surface force , Surface Tension , Multiphase flow
  • Journal title
    Journal of Computational Physics
  • Serial Year
    2006
  • Journal title
    Journal of Computational Physics
  • Record number

    1478928