• Title of article

    Three-dimensional CFD modeling of fluid flow and heat transfer characteristics of Al2O3/water nanofluid in microchannel heat sink with Eulerian-Eulerian approach

  • Author/Authors

    Najafabadi، H. Hadi نويسنده Department of Chemical Engineering,Amirkabir university of technology (Tehran Polytechnic),Tehran,Iran , , Keshavarz Moraveji، M. نويسنده Department of Chemical Engineering,Amirkabir University of Technology (Tehran Polytechnic),Tehran,Iran ,

  • Issue Information
    فصلنامه با شماره پیاپی سال 2016
  • Pages
    16
  • From page
    46
  • To page
    61
  • Abstract
    In this paper, threedimensional incompressible laminar fluid flow in a rectangular microchannel heat sink (MCHS) using Al2O3/water nanofluid as a cooling fluid is numerically studied. CFD prediction of fluid flow and forced convection heat transfer properties of nanofluid using singlephase and twophase model (Eulerian-Eulerian approach) are compared. Hydraulic and thermal performance of microchannels are investigated according to the results of the friction factor, pumping power, average heat transfer coefficient, thermal resistance, average temperature of the walls and entropy generation. In addition, due to the CFD results, two correlations for predication of Nusselt number and friction factor are presented. Comparing the predicted Nusselt number using singlephase and two-phase models with experimental data shows that the twophase model is more accurate than singlephase model. The results show that increasing the volume fraction of nanoparticles leads to increases the heat transfer coefficient and reduces the heat sink wall temperature, but it leads to the undesirable effect of increase in pumping power and total entropy generation.
  • Keywords
    Microchannel , Convective heat transfer , Friction factor , Entropy generation , CFD , nanofluid
  • Journal title
    Iranian Journal of Chemical Engineering
  • Serial Year
    2016
  • Journal title
    Iranian Journal of Chemical Engineering
  • Record number

    2401006