Numerical investigation of magnetohydrodynamic slip flow of power-law nanofluid with temperature dependent viscosity and thermal conductivity over a permeable surface

  • Sajid Hussain
  • , Asim Aziz*
  • , Chaudhry Masood Khalique
  • , Taha Aziz
  • *Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

8 Scopus citations

Abstract

In this paper, a numerical investigation is carried out to study the effect of temperature dependent viscosity and thermal conductivity on heat transfer and slip flow of electrically conducting non-Newtonian nanofluids. The power-law model is considered for water based nanofluids and a magnetic field is applied in the transverse direction to the flow. The governing partial differential equations(PDEs) along with the slip boundary conditions are transformed into ordinary differential equations( ODEs) using a similarity technique. The resulting ODEs are numerically solved by using fourth order Runge- Kutta and shooting methods. Numerical computations for the velocity and temperature profiles, the skin friction coefficient and the Nusselt number are presented in the form of graphs and tables. The velocity gradient at the boundary is highest for pseudoplastic fluids followed by Newtonian and then dilatant fluids. Increasing the viscosity of the nanofluid and the volume of nanoparticles reduces the rate of heat transfer and enhances the thickness of the momentum boundary layer. The increase in strength of the applied transverse magnetic field and suction velocity increases fluid motion and decreases the temperature distribution within the boundary layer. Increase in the slip velocity enhances the rate of heat transfer whereas thermal slip reduces the rate of heat transfer.

Original languageEnglish
Pages (from-to)867-876
Number of pages10
JournalOpen Physics
Volume15
Issue number1
DOIs
StatePublished - 29 Dec 2017
Externally publishedYes

Bibliographical note

Publisher Copyright:
© 2017 S. Hussain et al.

Keywords

  • Brickman nanofluid model
  • Magnetohydrodynamics
  • Non-Newtonian nanofluids
  • Partial slip
  • Power-law model
  • Temperature dependent thermal conductivity
  • Temperature dependent viscosity

ASJC Scopus subject areas

  • General Physics and Astronomy

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