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Convective transport via thermophoresis and brownian forces in MHD Hiemenz stagnation-point flow.

Authors :
Ameer Ahammad, N.
Ahmed, Awais
Alhowaity, Awatif
Sarfraz, Mahnoor
Hamam, Haneen
Galal, Ahmed M.
Source :
International Journal of Modern Physics B: Condensed Matter Physics; Statistical Physics; Applied Physics; 11/20/2022, Vol. 36 Issue 29, p1-12, 12p
Publication Year :
2022

Abstract

The heat and mass transfer in normal impingement of the Hiemenz stagnation-point flow of a viscous nanofluid on a bidirectional stretching sheet under the influence of the magnetic field is investigated. In a recent study, Weidman (Meccanica, vol. 53, p.833, 2018) has analyzed the phenomenon of the Hiemenz stagnation-point flow over the biaxially stretching sheet. Dual solutions have been found in this study for the various values of α (streamwise stretching rate) and β (cross-stream stretching rate). In the present work, the mechanism of thermal and solutal energy transport in the Hiemenz stagnation-point flow of nanoliquid is studied in the view of thermophoretic and Brownian forces. The solutions of similar ordinary differential equations (ODEs) for flow and energy transport in viscous nanofluid are computed with help of bvp4c numerical technique. The impact of dimensionless parameters on flow field and energy transport is presented graphically and discussed with physical reasoning. The outcomes reveal that the higher magnitude of Lorentz force declines the flow field in cross-stream and vertical directions, but conflicting behavior is noted for streamwise velocity component in the case of α < 1 and α > 1. Both thermophoresis and Brownian motion of nanoparticles enhance the energy transport in Hiemenz flow of viscous fluid. The results of the present study are validated through the shear stress parameters with a previously published study. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
02179792
Volume :
36
Issue :
29
Database :
Complementary Index
Journal :
International Journal of Modern Physics B: Condensed Matter Physics; Statistical Physics; Applied Physics
Publication Type :
Academic Journal
Accession number :
159326023
Full Text :
https://doi.org/10.1142/S0217979222502034