• DocumentCode
    2342983
  • Title

    Advances in lattice Boltzmann modeling (LBM) to simulate two-phase dynamics

  • Author

    Jain, Prashant K. ; Rizwan-uddin

  • Author_Institution
    Nucl. Plasma & Radiol. Eng., Univ. of Illinois at Urbana-Champaign, Urbana, IL, USA
  • fYear
    2010
  • fDate
    21-24 March 2010
  • Firstpage
    1
  • Lastpage
    6
  • Abstract
    In this paper, a new lattice Boltzmann model, called the artificial interface lattice Boltzmann model (AILB model), is proposed for the simulation of two-phase dynamics. The model is based on the principle of free energy minimization and invokes the Gibbs-Duhem equation in the formulation of non-ideal forcing function. Bulk regions of the two phases are governed by a non-ideal equation of state (for example, the van der Waals equation of state), whereas an artificial near-critical equation of state is applied in the interfacial region. The interfacial equation of state is described by a double well density dependence of the free energy. The continuity of chemical potential is enforced at the interface boundaries. Using the AILB model, large density and viscosity ratios of the two phases can be simulated. The model is able to quantitatively capture the coexistence curve for the van der Waals equation of state for different temperatures. Moreover, spatially varying viscosities can be simulated by choosing the relaxation time as a function of local density.
  • Keywords
    chemical potential; equations of state; flow simulation; free energy; lattice Boltzmann methods; two-phase flow; viscosity; Gibbs-Duhem equation; artificial interface lattice Boltzmann model; artificial near-critical equation of state; chemical potential continuity; double well density; free energy minimization principle; interface boundaries; interfacial equation of state; lattice Boltzmann modeling; local density function; nonideal equation of state; nonideal forcing function formulation; relaxation time; two phase dynamics simulation; van der Waals equation of state; viscosity; Computational fluid dynamics; Computational modeling; Equations; Lattice Boltzmann methods; Physics; Plasma simulation; Predictive models; Renewable energy resources; Space technology; Viscosity;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Nuclear & Renewable Energy Conference (INREC), 2010 1st International
  • Conference_Location
    Amman
  • Print_ISBN
    978-1-4244-5213-2
  • Electronic_ISBN
    978-1-4244-5214-9
  • Type

    conf

  • DOI
    10.1109/INREC.2010.5462603
  • Filename
    5462603