Numerical investigation and thermal transport features of magnetic hybrid nanoparticles flow over a poignant tiny needle subject to Joule heating and slip boundary conditions

Author:

Iqbal Zahoor1ORCID,Priya S.2,Abdul Hakeem A. K.2,Selmi Ridha3,Alsawi Abdulrahman4,Nour Manasik M.5,Hajjej Fahima6,Ameer Ahammad N.7,Ahmed Alyami Maryam8,Yousef El Sayed910

Affiliation:

1. School of Artificial Intelligence, Zhejiang Normal University, Jinhua 321004, China

2. Department of Mathematics, Sri Ramakrishna Mission Vidyalaya College of Arts and Science, Coimbatore 641 020, India

3. Department of Mathematics, College of Sciences, Northern Border University, Arar, Saudi Arabia

4. Department of Physics, College of Science, Qassim University, Almolaydah, Saudi Arabia

5. Department of Mathematics, College of Science and Humanities in Al-Kharj, Prince Sattam Bin Abdulaziz University, Al-Kharj, Saudi Arabia

6. Department of Information Systems, College of Computer and Information Sciences, Princess Nourah bint Abdulrahman University, Riyadh, Saudi Arabia

7. Department of Mathematics, Faculty of Science, University of Tabuk, P. O. Box 741, Tabuk 71491, Saudi Arabia

8. Department of Mathematics, Faculty of Sciences, University of Jeddah, Jeddah, Saudi Arabia

9. Physics Department, Faculty of Science, King Khalid University, P. O. Box 9004, Abha, Saudi Arabia

10. Research Center for Advanced Materials Science (RCAMS), King Khalid University, Abha 61413, P. O. Box 9004, Saudi Arabia

Abstract

The primary purpose of this study is to provide more information on the stable and incompressible stream of a hybrid nanofluid over a poignant tiny needle in two dimensions under slip boundary conditions. In the hybrid nanofluid flow, Al2O3 and Fe3O4 are nanoparticles, water and ethylene glycol (50:50) are considered as the base fluids. Furthermore, the impacts of Joule heating and inclined magnetic fields are considered. The PDE’s governing equations are converted into ODEs by using similarity transformations and solved by a numerical technique based on Runge–Kutta fourth-order method. The results illustrate that the crucial parameters such as the magnetic parameter, Eckert number, nanoparticles of solid volume fractions, inclined angle parameter, and Prandtl numbers significantly affect the momentum and thermal profiles. The heat transfer rate and skin friction factors are used to calculate the numerical values of various parameters, which are displayed in a table. These analyses manifest that raising the magnetic parameter results in a decrease in the hybrid nanofluid velocity under slip and no-slip circumstances. The Nusselt number has also grown as a result of the volumetric fractions of nanoparticles and the intensification of the angle parameter. This analysis might include areas such as microfluidics, biomedical devices, heat exchangers, and other engineering applications where precise control over fluid behavior and temperature distribution is important.

Funder

Deanship of Scientific Research, King Khalid University

Princess Nourah Bint Abdulrahman University

Publisher

World Scientific Pub Co Pte Ltd

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