A numerical analysis of the blood-based Casson hybrid nanofluid flow past a convectively heated surface embedded in a porous medium

Author:

Yasmin Humaira1,Mahnashi Ali M.2,Hamali Waleed2,Lone Showkat Ahmad3,Raizah Zehba4,Saeed Anwar5

Affiliation:

1. Department of Basic Sciences, Preparatory Year, King Faisal University , Al Ahsa 31982 , Saudi Arabia

2. Department of Mathematics, College of Science, Jazan University , Jazan , Saudi Arabia

3. Department of Basic Sciences, College of Science and Theoretical Studies, Saudi Electronic University, (Jeddah-M) , Riyadh 11673 , Saudi Arabia

4. Department of Mathematics, College of Science, King Khalid University , Abha , Saudi Arabia

5. Department of Mathematics, Abdul Wali Khan University, Mardan , 23200 , Khyber Pakhtunkhwa , Pakistan

Abstract

Abstract The analysis of the fluid flow with the energy transfer across a stretching sheet has several applications in manufacturing developments such as wire drawing, hot rolling, metal extrusion, continuous casting, paper production, and glass fiber fabrication. The current examination presents the hybrid nanofluid flow past a convectively heated permeable sheet. The ferrous oxide (Fe3O4) and Gold (Au) nanoparticles have been dispersed in the blood. The significances of thermal radiation, inclined magnetic field, and space-dependent heat source have been observed in this work. The modeled equations are presented in the form of partial differential equations and reformed into the set of ordinary differential equations (ODEs) by using the similarity substitution. The Matlab built-in package (bvp4c) is employed to resolve the transform nonlinear set of ODEs. The significance of flow constraints versus the velocity and temperature profiles is demonstrated in the form of Figures and Tables. The numerical outcomes for the physical interest quantities are presented in tables. It has been perceived from the results that raising the angle of inclination from 0° to 90° reduces both the velocity and energy profile. The escalating values of Eckert number, constant heat source, and space-dependent heat source factor accelerate the temperature profile. The velocity and temperature distributions are very effective in the cases of hybrid nanofluid (Au–Fe3O4/blood) when compared to nanofluid (Au/blood). The skin friction and rate of heat transfer are very effective in the cases of hybrid nanofluid (Au–Fe3O4/blood) when compared to nanofluid (Au/blood).

Publisher

Walter de Gruyter GmbH

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