• DocumentCode
    165348
  • Title

    Lattice Boltzmann simulation of MHD natural convection in a nanofluid-filled enclosure with non-uniform heating on both side walls

  • Author

    Mejri, Imen ; Mahmoudi, Ali ; Abbassi, Mohamed Ammar ; Omri, Aymen

  • Author_Institution
    Energie et Energies Renouvelables (MEER), Fac. des Sci. de Gafsa, Zarroug, Tunisia
  • fYear
    2014
  • fDate
    22-24 Jan. 2014
  • Firstpage
    1
  • Lastpage
    5
  • Abstract
    This paper examines the natural convection in a square enclosure filled with a water-Al2O3 nanofluid and is subjected to a magnetic field. The side walls of the cavity have spatially varying sinusoidal temperature distributions. The horizontal walls are adiabatic. Lattice Boltzmann method (LBM) is applied to solve the coupled equations of flow and temperature fields. This study has been carried out for the pertinent parameters in the following ranges: Rayleigh number of the base fluid, Ra=103 to 105, Hartmann number varied from Ha=0 to 90, phase deviation (γ=0, π/4, π/2, 3π/4 and π) and the solid volume fraction of the nanoparticles between φ = 0 and 6%. The results show that the heat transfer rate increases with an increase of the Rayleigh number but it decreases with an increase of the Hartmann number. For γ=π/2 and Ra=105 the magnetic field augments the effect of nanoparticles. At Ha=0, the greatest effects of nanoparticles are obtained at γ = 0 and π/4 for Ra=104 and 105 respectively.
  • Keywords
    alumina; boundary layers; confined flow; flow simulation; lattice Boltzmann methods; magnetohydrodynamics; nanofluidics; nanoparticles; natural convection; two-phase flow; water; H2O-Al2O3; Hartmann number; MHD natural convection; Rayleigh number; cavity side walls; coupled equations; flow field; heat transfer rate; horizontal walls; lattice Boltzmann simulation; magnetic field; nanofluid-filled enclosure; nanoparticle effect; nanoparticle solid volume fraction; nonuniform heating; phase deviation; spatially varying sinusoidal temperature distributions; square enclosure; temperature field; water-alumina nanofluid; Abstracts; Magnetic fields; Nanoparticles; Water heating; Lattice Boltzmann Method; Natural convection; Sinusoidal temperature distribution; magnetic field; nanofluid;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Composite Materials & Renewable Energy Applications (ICCMREA), 2014 International Conference on
  • Conference_Location
    Sousse
  • Print_ISBN
    978-1-4799-2515-5
  • Type

    conf

  • DOI
    10.1109/ICCMREA.2014.6843797
  • Filename
    6843797