• Title of article

    Efficient flow and transport simulations in reconstructed 3D pore geometries

  • Author/Authors

    Yan Zaretskiya، نويسنده , , Sebastian Geigera، نويسنده , , Ken Sorbiea، نويسنده , , Malte F?rsterb، نويسنده ,

  • Issue Information
    روزنامه با شماره پیاپی سال 2010
  • Pages
    9
  • From page
    1508
  • To page
    1516
  • Abstract
    Upscaling pore-scale processes into macroscopic quantities such as hydrodynamic dispersion is still not a straightforward matter for porous media with complex pore space geometries. Recently it has become possible to obtain very realistic 3D geometries for the pore system of real rocks using either numerical reconstruction or micro-CT measurements. In this work, we present a finite element–finite volume simulation method for modeling single-phase fluid flow and solute transport in experimentally obtained 3D pore geometries. Algebraic multigrid techniques and parallelization allow us to solve the Stokes and advection–diffusion equations on large meshes with several millions of elements. We apply this method in a proof-of-concept study of a digitized Fontainebleau sandstone sample. We use the calculated velocity to simulate pore-scale solute transport and diffusion. From this, we are able to calculate the a priori emergent macroscopic hydrodynamic dispersion coefficient of the porous medium for a given molecular diffusion Dm of the solute species. By performing this calculation at a range of flow rates, we can correctly predict all of the observed flow regimes from diffusion dominated to convection dominated.
  • Keywords
    Finite element , Solute transport , finite volume , algebraic multigrid , Navier–Stokes equation , pore-scale modeling
  • Journal title
    Advances in Water Resources
  • Serial Year
    2010
  • Journal title
    Advances in Water Resources
  • Record number

    1272330