Stagnation-Point Flow of a Jeffrey Nanofluid over a Stretching Surface with Induced Magnetic Field and Chemical Reaction

Author:

Sandeep Naramgari1,Sulochana Chalavadi1,Animasaun Isaac Lare2ORCID

Affiliation:

1. Gulbarga University

2. Federal University of Technology Akure

Abstract

With every passing day the heat transfer enhancement in the convectional base fluids plays a major role in several industrial and engineering processes. During these process nanofluids has attained its great importance to enhance the heat transfer rate in the convectional flows. Keeping this into view, in this study we investigated the stagnation point flow, heat and mass transfer behaviour of MHD Jeffrey nanofluid over a stretching surface in the presence of induced magneticfield, non-uniform heat source or sink and chemical reaction. Using similarity technique, the governing boundary layer partial differential equations are transformed into nonlinear coupled ordinary differential equations. The ordinary differential equations are solved numerically using Runge-Kutta-Felhberg scheme. An excellent agreement of the present results has been observed with the existed literature under some special cases. The effects of various dimensionless governing parameters on velocity, induced magneticfield, temperature and nanoparticle concentration profiles are discussed and presented through graphs. Also, friction factor, local Nusselt and Sherwood numbers are computed and discussed. Dual solutions are presented for suction and injection cases. It is found that dual solutions exist only for certain range of suction or injection parameter. It is also observed that an increase in the heat and mass transfer rate for higher values of Deborah number.

Publisher

Trans Tech Publications, Ltd.

Subject

General Medicine

Reference35 articles.

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3. C. Sulochana, N. Sandeep, Stagnation-point flow and heat transfer behavior of Cu-water nanofluid towards horizontal and exponentially stretching/shrinking cylinders, Applied Nanoscience 5 (2015) DOI: 10. 1007/s13204-015-0451-5.

4. M. Jayachandra Babu, R. Gupta, N. Sandeep, Effect of radiation and viscous dissipation on stagnation-point flow of a micropolar fluid over a nonlinearly stretching surface with suction/injection, J. Basic and App. Res. Int. 7 (2) (2015) 73-82.

5. S. Akram, S. Nadeem, Influence of induced magnetic field and heat transfer on the peristaltic motion of a Jeffrey fluid in an asymmetric channel: closedform solutions, J. Magn. Magn. Mater, 328 (2013)11–20.

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