Energy Transfer in Mixed Convection MHD Flow of Nanofluid Containing Different Shapes of Nanoparticles in a Channel Filled with Saturated Porous Medium
Author(s) -
Aaiza Gul,
Ilyas Khan,
Sharidan Shafie
Publication year - 2015
Publication title -
nanoscale research letters
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.87
H-Index - 107
eISSN - 1931-7573
pISSN - 1556-276X
DOI - 10.1186/s11671-015-1144-4
Subject(s) - nanofluid , materials science , magnetohydrodynamic drive , thermodynamics , thermal conductivity , porous medium , magnetohydrodynamics , heat transfer , mechanics , viscosity , combined forced and natural convection , porosity , natural convection , magnetic field , physics , composite material , quantum mechanics
Energy transfer in mixed convection unsteady magnetohydrodynamic (MHD) flow of an incompressible nanofluid inside a channel filled with saturated porous medium is investigated. The channel with non-uniform walls temperature is taken in a vertical direction under the influence of a transverse magnetic field. Based on the physical boundary conditions, three different flow situations are discussed. The problem is modelled in terms of partial differential equations with physical boundary conditions. Four different shapes of nanoparticles of equal volume fraction are used in conventional base fluids, ethylene glycol (EG) ( C 2 H 6 O 2 ) and water ( H 2 O ). Solutions for velocity and temperature are obtained discussed graphically in various plots. It is found that viscosity and thermal conductivity are the most prominent parameters responsible for different results of velocity and temperature. Due to higher viscosity and thermal conductivity, C 2 H 6 O 2 is regarded as better convectional base fluid compared to H 2 O .
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