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Optimizing a ternary hybrid ferrofluid slip flow with magnetic dipole and viscous dissipation by Response Surface Methodology (RSM)


Citation

Abu Bakar, Shahirah and Pop, Ioan and Tan, Lit Ken and Md Arifin, Norihan (2025) Optimizing a ternary hybrid ferrofluid slip flow with magnetic dipole and viscous dissipation by Response Surface Methodology (RSM). Applied Thermal Engineering, 269 (pt. A). art. no. 126087. pp. 1-14. ISSN 1359-4311

Abstract

In electromagnetism, a magnetic dipole is a tiny loop of electric current or a pair of magnetic poles. As the loop size decreases to zero while maintaining a constant magnetic moment, it forms a magnetic dipole. Composed by the magnetic particles, ferromagnetic fluids align with magnetic fields and when a magnetic dipole interacts with such fluids, the particles magnetize the fluid and influence the dipole's field. Hence, this study investigates the magnetic dipole and velocity slip on ternary hybrid ferrofluid flow past a shrinking surface. The model considers three magnetic nanoparticles – iron oxide (Fe3O4), cobalt ferrite (CoFe2O4), and copper (Cu) – dispersed in a base fluid. The similarity transformation technique is applied to derive mathematical models, which were solved numerically using bvp4c program in MATLAB. The analysis reveals that ferrohydrodynamic interaction reduces the skin friction coefficient and heat transfer rate but enhances velocity and temperature profiles. Additionally, the ternary hybrid ferrofluid is also shown to outperform both conventional ferrofluid and hybrid ferrofluid in fluid flow characteristics. Response Surface Methodology (RSM) is employed to identify the optimal combination of parameters, suggesting that the highest ferrohydrodynamic parameter and viscous dissipation, along with minimal Cu-nanoparticle concentration, maximize the heat transfer rate. Contour and surface plots illustrate these optimal conditions. This study highlights an innovative application of ternary ferrofluid with a magnetic dipole and employs RSM to optimize parameters for enhanced heat transfer performance, addressing a gap in existing literature and providing the way for further advancements in this field.


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Additional Metadata

Item Type: Article
Subject: Energy Engineering and Power Technology
Subject: Mechanical Engineering
Divisions: Faculty of Science
Institute for Mathematical Research
DOI Number: https://doi.org/10.1016/j.applthermaleng.2025.126087
Publisher: Elsevier
Keywords: Ferromagnetic fluid; Magnetic dipole; Optimization; Response surface methodology; Ternary hybrid nanofluid
Sustainable Development Goals (SDGs): SDG 9: Industry, Innovation and Infrastructure, SDG 7: Affordable and Clean Energy, SDG 4: Quality Education
Depositing User: Ms. Nur Faseha Mohd Kadim
Date Deposited: 04 Jun 2026 03:22
Last Modified: 04 Jun 2026 03:22
Altmetrics: http://www.altmetric.com/details.php?domain=psasir.upm.edu.my&doi=10.1016/j.applthermaleng.2025.126087
URI: http://psasir.upm.edu.my/id/eprint/124013
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