Implication of electromagnetohydrodynamic flow of a non‐Newtonian hybrid nanofluid in a converging and diverging channel with velocity slip effects: A comparative investigation using numerical and ADM approaches

Author:

Kezzar Mohamed12,Nehal Abdelaziz3,Ragupathi Pachiyappan4,Saranya Shekar4,Khan Umair567ORCID,Sari Mohamed Rafik3,Ismail Tabet8,Siddiqui Md Irfanul Haque9ORCID

Affiliation:

1. Materials and Energy Engineering Laboratory (LMGE) Technology Department Faculty of Technology 20 Aout 1955 University of Skikda Skikda Algeria

2. Mechanical Engineering Department University of 20 Aout 1955 Skikda Algeria

3. Mechanics of Materials and Plant Maintenance Research Laboratory (LR3MI) Mechanical Engineering Department Faculty of Engineering Badji Mokhtar University of Annaba (UBMA) Annaba Algeria

4. Department of Mathematics Sri Ramakrishna Mission Vidyalaya College of Arts and Science Coimbatore India

5. Department of Mathematics Faculty of Science Sakarya University Serdivan/Sakarya Turkey

6. Department of Computer Science and Mathematics Lebanese American University Byblos Lebanon

7. Department of Mechanics and Mathematics Western Caspian University Baku Azerbaijan

8. Physical Engineering Department University of 20 Aout 1955 Skikda Algeria

9. Mechanical Engineering Department College of Engineering King Saud University Riyadh Saudi Arabia

Abstract

AbstractThis study delves into the intricate interplay of magnetic and electric fields (EMHD) on the flow characteristics of a non‐Newtonian bio‐hybrid nanofluid, consisting of Ag+Graphene/blood, within converging and diverging geometries. The investigation takes into account the effects of velocity slip at the walls, offering a comprehensive examination of this complex fluid system. A novel bio‐hybrid nanofluid model was introduced, featuring a unique combination of Ag+Graphene/blood nanoparticles. To address this multifaceted problem, the research employed mathematical modeling based on nonlinear partial differential equations (PDEs), encompassing continuity and momentum equations. These PDEs were then transformed into a system of nonlinear ordinary differential equations (ODEs) through similarity transformations. The study explored both numerical and analytical solutions, with a particular focus on the application of the Adomian decomposition method (ADM). To validate the findings, the study compared the analytical results with those obtained using the HAM‐based Mathematica package and the Runge–Kutta Fehlberg 4th–5th order (RKF‐45) method in specific scenarios. Active parameters, including nanofluid volume fraction, slip factors, and the influence of magnetic and electric fields, were systematically examined to unveil their impacts on velocity and skin friction within this multifaceted nanofluid system. It is found that the skin friction coefficient decreases with the Increasing both the nanoparticle volume fraction, Hartmann number and the angle in both channels. Results obtained also reveal an in the converging section, higher Casson parameters lead to increased yield stress but are offset by the higher shear rates, resulting in a higher velocity profile. In the diverging section, the fluid resists flow due to the reduced shear stress, leading to a decreased velocity profile.

Funder

King Saud University

Publisher

Wiley

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