Experimental investigation of heat transfer enhancement, thermal efficiency, and pressure drop in forced convection of magnetic hybrid nanofluid (Fe₃O₄/TiO₂) under varied magnetic field strengths and waveforms

dc.contributor.authorAdogbeji, Victor O.
dc.contributor.authorSharifpur, Mohsen
dc.contributor.authorMeyer, Josua P.
dc.contributor.emailmohsen.sharifpur@up.ac.zaen_US
dc.date.accessioned2024-11-27T04:26:15Z
dc.date.available2024-11-27T04:26:15Z
dc.date.issued2024-12
dc.descriptionDATA AVAILABITY STATEMENT: Upon request, the data can be provided. approach, necessitating further research for comprehensive understanding and optimization in diverse practical applications.en_US
dc.description.abstractApplying a magnetic field to influence convective flow of ferrofluids has become an efficient method for enhancing heat transfer in thermal systems, particularly in straight tubes. This study investigates the heat transfer properties of Fe₃O₄/TiO₂ nanofluids within a heated copper tube under varied magnetic field strengths and waveforms. Optimal magnetic field conditions were determined at 4 V and 60 Hz across all waveform types, as higher frequencies and voltages increased magnetic field intensity, thereby reducing heat transfer rates. Magnetic waveforms exerted differential influences on pressure drop, indicating varied nanoparticle alignment and turbulence levels, impacting fluid flow dynamics and viscosity. Higher nanoparticle concentration (0.1% vol) correlated with increased pressure drops across sine, square, and triangular wave forms, suggesting heightened flow resistance and potential nanoparticle agglomeration, thus reducing thermal efficiency. Conversely, lower concentrations exhibited enhanced thermal per formance due to improved nanoparticle dispersion and reduced thermal resistance. At 0.1% vol, heat transfer enhancement without a magnetic field was 16.5%. The introduction of magnetic field waveforms attenuated this enhancement: 15.3% (sine), 13.26% (square), and 12.59% (triangular). Conversely, at lower volume fractions, heat transfer enhancements with magnetic fields exceeded those without at 0.05% vol, enhancements were 20.92% (sine), 21.3% (square), and 21.34% (triangular); at 0.025% vol, enhancements were 22.07% (sine), 22.3% (square), and 21.32% (triangular); at 0.0125% vol, enhancements were 27.87% (sine), 28.21% (square), and 26.74% (triangular); and at 0.0065% vol, enhancements were 22.24% (sine), 22.3% (square), and 24.49% (triangular).en_US
dc.description.departmentMechanical and Aeronautical Engineeringen_US
dc.description.sdgSDG-07:Affordable and clean energyen_US
dc.description.sdgSDG-09: Industry, innovation and infrastructureen_US
dc.description.urihttps://www.elsevier.com/locate/csiteen_US
dc.identifier.citationAdogbeji, V.O., Sharifpur, M., Meyer, J.P. 2024, 'Experimental investigation of heat transfer enhancement, thermal efficiency, and pressure drop in forced convection of magnetic hybrid nanofluid (Fe₃O₄/TiO₂) under varied magnetic field strengths and waveforms', Case Studies in Thermal Engineering, vol. 63, art. 105313, pp. 1-23, doi : 10.1016/j.csite.2024.105313.en_US
dc.identifier.issn2214-157X (online)
dc.identifier.other10.1016/j.csite.2024.105313
dc.identifier.urihttp://hdl.handle.net/2263/99418
dc.language.isoenen_US
dc.publisherElsevieren_US
dc.rights© 2024 The Authors. Published by Elsevier Ltd. This is an open access article under the CC BY-NC license (http://creativecommons.org/licenses/by-nc/4.0/).en_US
dc.subjectVaried magnetic field strengthsen_US
dc.subjectWaveformsen_US
dc.subjectHybrid nanofluiden_US
dc.subjectHeat transferen_US
dc.subjectConvective flowen_US
dc.subjectThermal efficiencyen_US
dc.subjectPressure dropen_US
dc.subjectFrequency optimizationen_US
dc.subjectNanoparticle concentrationen_US
dc.subjectTurbulent forced convectionen_US
dc.subjectSDG-07: Affordable and clean energyen_US
dc.subjectSDG-09: Industry, innovation and infrastructureen_US
dc.titleExperimental investigation of heat transfer enhancement, thermal efficiency, and pressure drop in forced convection of magnetic hybrid nanofluid (Fe₃O₄/TiO₂) under varied magnetic field strengths and waveformsen_US
dc.typeArticleen_US

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