Insight into the dynamics of slip and radiative effect on magnetohydrodynamic flow of hybrid ferroparticles over a porous deformable sheet

Author:

Gherieb Sihem12ORCID,Kezzar Mohamed12,Ayub Assad34,Sari Mohamed Rafik5,Khan Umair67ORCID,Muhammad Taseer8,Hendy A. S.9,Ali Mohamed R.10

Affiliation:

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

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

3. Department of Mathematics and Statistics Hazara University Mansehra Mansehra Pakistan

4. Department of Mathematics Government College Mansehra Mansehra Pakistan

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

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

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

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

9. Department of Computational Mathematics and Computer Science Institute of Natural Sciences and Mathematics Ural Federal University Yekaterinburg Russia

10. Faculty of Engineering and Technology Future University in Egypt New Cairo Egypt

Abstract

AbstractIn the present work, we explored the magnetohydrodynamic boundary layer flow in the presence of pressure gradient across a flat plate. The effects of the slip velocity conditions, thermal Radiation the addition of hybrid Ferroparticles (i.e., a mixture of two types of magnetic nanoparticles for example, (magnetite () and cobalt ferrite ()) in base fluid ( ) and Porous wall (suction/ injection) are also considered in this study. Basic partial differential equations are transformed into nonlinear ordinary differential equations using the appropriate similarity transformations. Then, this equation was treated numerically by using the Runge–Kutta–Fehlberg 4th–5th order method with the shooting technique and analytically via an efficient method called the Generalized Decomposition Method. The effects of various physical parameters on the velocity and temperature profiles are shown graphically. It is found that the incorporation of hybrid nanoparticles demonstrates a relatively substantial impact on the behavior of dynamic and thermal field; outperforming both non‐hybrid nanoparticles and regular fluid in terms of speed and temperature enhancement. The slip and permeability parameters significantly alter the flow structure. The positive values of the slip and permeability parameters enhance the flow velocity and reduce the temperature, leading to the desired flow behavior. Conversely, adopting negative values of these parameters reverses the effect. Furthermore, the radiation parameter enhances the temperature distribution. Additionally, the boundary layer separation tends to disappear with the increase in the magnetic parameter. The results obtained clearly show the accuracy of the proposed method and also indicate an excellent agreement between analytical and numerical data.

Publisher

Wiley

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