Turbulent heat transfer, pressure drop and wall shear stress behavior of the nanofluid Al2O3-water mixture in a square duct under constant wall heat flux are investigated numerically. Single-phase approach is taken into account during the simulations. All of the nanofluid properties depend on the temperature and the nanoparticle volume concentration. The renormalization group theory RNG model is employed in order to model turbulence. Validation tests of the numerical results are done by using water as the first working fluid. Similar models and methods are chosen for the simulation of nanofluid (Al2O3-water) flow and heat transfer. A very good agreement is realized with the previous water and nanofluid related theoretical-empirical heat tra...
The objective of this study is to numerically investigate the convective heat transfer of water-base...
The objective of this study is to numerically investigate the convective heat transfer of water-base...
The effect of chamfer length c and nanoparticle volume fraction q on heat transfer and fluid flow is...
Turbulent heat transfer, pressure drop and wall shear stress behavior of the nanofluid Al2O3-water m...
Turbulent flow and convective heat transfer of a nanofluid made of Al2O3 (1-4 vol.%) and water throu...
Turbulent flow and convective heat transfer of a nanofluid made of Al2O3 (1-4 vol.%) and water throu...
Forced convective heat transfer and wall characteristics of nanofluid flow containing Al2O3 nanopart...
Forced convective heat transfer and wall characteristics of nanofluid flow containing Al2O3 nanopart...
Forced convective heat transfer and wall characteristics of nanofluid flow containing Al2O3 nanopart...
The present study aims to identify effects due to convection heat transfer in a microtube enclosure...
Turbulent forced convection flow of Al2O3/water nanofluid in a single-bare subchannel of a typical p...
This research presents the numerical results of laminar forced convective heat transfer performance ...
In this study, the flow field and heat transfer of Al2O3–water nanofluid turbulent forced convection...
Forced convective heat transfer and wall characteristics of nanofluid flow containing Al2O3 nanopart...
The present paper analyzes the turbulent convection of Al2O3-water nanofluid inside a circular secti...
The objective of this study is to numerically investigate the convective heat transfer of water-base...
The objective of this study is to numerically investigate the convective heat transfer of water-base...
The effect of chamfer length c and nanoparticle volume fraction q on heat transfer and fluid flow is...
Turbulent heat transfer, pressure drop and wall shear stress behavior of the nanofluid Al2O3-water m...
Turbulent flow and convective heat transfer of a nanofluid made of Al2O3 (1-4 vol.%) and water throu...
Turbulent flow and convective heat transfer of a nanofluid made of Al2O3 (1-4 vol.%) and water throu...
Forced convective heat transfer and wall characteristics of nanofluid flow containing Al2O3 nanopart...
Forced convective heat transfer and wall characteristics of nanofluid flow containing Al2O3 nanopart...
Forced convective heat transfer and wall characteristics of nanofluid flow containing Al2O3 nanopart...
The present study aims to identify effects due to convection heat transfer in a microtube enclosure...
Turbulent forced convection flow of Al2O3/water nanofluid in a single-bare subchannel of a typical p...
This research presents the numerical results of laminar forced convective heat transfer performance ...
In this study, the flow field and heat transfer of Al2O3–water nanofluid turbulent forced convection...
Forced convective heat transfer and wall characteristics of nanofluid flow containing Al2O3 nanopart...
The present paper analyzes the turbulent convection of Al2O3-water nanofluid inside a circular secti...
The objective of this study is to numerically investigate the convective heat transfer of water-base...
The objective of this study is to numerically investigate the convective heat transfer of water-base...
The effect of chamfer length c and nanoparticle volume fraction q on heat transfer and fluid flow is...