Unsteady MHD stagnation point flow of ternary hybrid nanofluid over a spinning sphere with Joule heating

Author:

Mahmood Zafar1,Alhazmi Sharifah E.2,Khan Umar1ORCID,Bani-Fwaz Mutasem Z.3,Galal Ahmed M.45

Affiliation:

1. Department of Mathematics and Statistics, Hazara University, Mansehra, Khyber Pakhtunkhwa 21120, Pakistan

2. Mathematics Department, Al-Qunfudah University College, Umm Al-Qura University, Mecca Saudi Arabia

3. Chemistry Department, College of Science, King Khalid University, Abha 61413, Saudi Arabia

4. Department of Mechanical Engineering, College of Engineering in Wadi Alddawasir, Prince Sattam bin Abdulaziz University, 11991, Saudi Arabia

5. Production Engineering and Mechanical Design Department, Faculty of Engineering, Mansoura University, P. O. 35516, Mansoura, Egypt

Abstract

Practical Applications: Numerous technical applications, including as polymer deposition, electrolysis control, medication delivery, spin-stabilized missile cooling and cooling of rotating machinery slices have sparked considerable interest in studying stagnation point flow. Nuclear power plants, photovoltaic panels and heat exchangers as well as microfluidic heating devices use them. Purpose: To better understand the unsteady [Formula: see text]–[Formula: see text]–[Formula: see text] ternary hybrid nanofluid stream at the stagnation zone with Joule heating, this research examines the unique prospective applicative properties. Methodology: The flow equations will be modeled. By using similarity transformation, it is possible to transform nonlinear partial differential equations (PDEs) that are not precisely solvable into ordinary differential equations (ODEs) that can be numerically resolved. Runge–Kutta-IV and the shooting technique in MATHEMATICA have been demonstrated to have a significant effect on the predominance of heat exchange and the mobility features of ternary hybrid nanofluids. Findings: Results show that the unsteadiness parameter influences the [Formula: see text]-direction velocity and mono nanofluid has a larger velocity than other nanofluids, while the opposite is true for the [Formula: see text]-direction velocity. Nanoparticle concentrations, magnetic and Eckert number characteristics increase the thermal distribution, whereas the unsteadiness and rotation parameter decreases it. Unsteadiness, rotation and magnetic factors all improve heat transfer, while the Eckert number parameter has the reverse effect. The ternary hybrid nanofluid also has a greater heat transfer rate than the hybrid and normal nanofluids. Originality: Unsteady [Formula: see text]–[Formula: see text]–[Formula: see text] ternary nanofluid stream generated by magneto hydrodynamic (MHD) in the stagnation zone was studied in detail in this study. To avoid any errors in heat transfer, it may assist other researchers in selecting critical parameters for modern industrial heat transfer and the right parameters for developing nonunique solutions.

Funder

Deanship of Scientific Research at King Khalid University

Deanship of Scientific Research at Umm Al-Qura University

Publisher

World Scientific Pub Co Pte Ltd

Subject

Condensed Matter Physics,Statistical and Nonlinear Physics

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