Abstract :
In this paper, the problem of laminar nanofluid flow which results from the nonlinear stretching of a flat sheet is
investigated numerically. In this paper, a modified variable physical properties model for analyzing nanofluids flow and heat transfer is
introduced. In this model, the effective viscosity, density, and thermal conductivity of the solid-liquid mixture (nanofluids) which are
commonly utilized in the homogenous single-phase model, are locally combined with the prevalent single-phase model. A numerical
similarity solution is considered which depends on the local Prandtl number, local Brownian motion number, local Lewis number, and
local thermophoresis number. The results are compared to the prevalent single-phase model. This comparison depicts that the prevalent
single-phase model has a considerable deviation for predicting the behavior of nanofluids flow especially in dimensionless temperature
and nanoparticle volume fraction. In addition the effect of the governing parameters such as Prandtl number, the Brownian motion
number, the thermophoresis parameter, the Lewis number, and etc. on the velocity, temperature, and volume fraction distribution and
the dimensionless heat and mass transfer rates are examined.
Keywords :
Modified variable physical properties model , Similarity solution , Nonlinear stretching sheet , Nanofluid