A numerical study of rotationally symmetric nanofluid flow over a permeable surface using Buongiorno model

Author:

Tahira Sahreen1,Mushtaq Ammar2,Mustafa M.1ORCID

Affiliation:

1. School of Natural Sciences (SNS), National University of Sciences and Technology (NUST), Islamabad, Pakistan

2. Research Centre for Modelling & Simulation (RCMS), National University of Sciences and Technology (NUST), Islamabad, Pakistan

Abstract

This note describes boundary layer development beneath a generalized vortex flow of nanofluid using two-phase Buongiorno model. Vortex motion is characterized by a prescribed tangential flow with velocity proportional to [Formula: see text] where r is radial coordinate and m denotes the power-law index. Different from previously adopted practice, the diffusion coefficients are not assumed constant here. A similarity solution is proposed, which transforms the constitutive equations into a coupled differential system whose solution is evaluated numerically. Simulations are made by assuming a power-law surface temperature distribution. Two separate situations namely (i) rigid body rotation ([Formula: see text]) and (ii) potential vortex ([Formula: see text]) are carefully assessed. Furthermore, subtle fluid dynamics entities such as resisting wall shear and heat transfer rate are deliberated. Computational results reveal that there is no noticeable change in nanofluid temperature when diffusion coefficients are varied. Though, marked variations in nanoparticle concentration profile are observed whenever diffusion coefficients are varied.

Publisher

SAGE Publications

Subject

Industrial and Manufacturing Engineering,Mechanical Engineering

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