Heat and mass transfer through MHD Darcy Forchheimer Casson hybrid nanofluid flow across an exponential stretching sheet

Author:

Alqahtani Aisha M.1,Bilal Muhammad2ORCID,Usman Muhammad3ORCID,Alsenani Theyab R.4ORCID,Ali Aatif5ORCID,Mahmuod Samy Refahy6

Affiliation:

1. Department of Mathematical Sciences College of Science Princess Nourah Bint Abdulrahman University Riyadh Saudi Arabia

2. Department of Mathematics University of Peshawar Khyber Pakhtunkhwa Pakistan

3. Department of Mathematics City University of Science and IT Peshawar Pakistan

4. Department of Electrical Engineering College of Engineering in Al‐Kharj Prince Sattam Bin Abdulaziz University Al‐Kharj Saudi Arabia

5. Department of Mathematics Abdul Wali Khan University Mardan Khybear Pakhtunkhwa Pakistan

6. GRC Department Applied College King Abdulaziz University Jeddah Saudi Arabia

Abstract

AbstractRecent research has reported on the energy and mass transition caused by Casson hybrid nanofluid flow across an extended stretching sheet. Thermal and velocity slip conditions, heat absorption, viscous dissipation, thermal radiation, the Darcy effect, and thermophoresis diffusion have all been considered in the study of fluid flow. Fluid flow is subjected to an angled magnetic field to control the flow stream. Cu and Al2O3 NPs are dispensed into the Casson fluid to create a hybrid nanofluid (blood). The suggested model of flow dynamics is an evolving nonlinear system of PDEs, which is then reduced to a system of dimensionless ODEs using similarity proxies. The resulting set of ODEs is solved using the analytical program “HAM” for further processing. However, it has been found that the effects of the suction parameter and Darcy Forchhemier considerably reduced the energy transference rate of hybrid nanoliquids. It has been discovered that the effects of thermal radiation and heat absorption increase the energy transfer rate. Furthermore, the velocity and energy transmission rate are noticeably amplified by the dispersion of copper and cobalt ferrite nanoparticles in the base fluid.

Publisher

Wiley

Subject

Applied Mathematics,Computational Mechanics

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