THERMAL PERFORMANCE OF IONANOCOLLOIDS IN A CUBICAL CAVITY WITH INTERNAL PROTRUSIONS
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Published:2024
Issue:3
Volume:31
Page:1-20
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ISSN:1065-5131
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Container-title:Journal of Enhanced Heat Transfer
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language:en
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Short-container-title:J Enh Heat Transf
Author:
Hariharan A.,Harish Rajan
Abstract
Ionic liquids have gained considerable attention as heat transfer fluids due to their unique properties, such as low vapor pressure and high thermal stability, which make them suitable for high-temperature applications. The purpose of this study is to examine the thermal behavior of ionanocolloids in a cubical cavity with an internal protruding heat source. The effect of Brownian motion and turbulence on the flow characteristics and thermal enhancement of ionic liquid dispersed with nanoparticles of silicon dioxide, aluminum oxide, and single-walled carbon nanotubes is investigated. The computations are performed by developing an unsteady, turbulent multiphase mixture model discretized by the finite difference method. The heater aspect ratio (ε), Grashof number (Gr), and nanoparticle volume concentration (φ) are varied in the following ranges, respectively: 0.2 ≤ ε ≤ 5, 10<sup>6</sup> ≤ Gr ≤ 10<sup>10</sup>, and 2% ≤ φ ≤ 6%. It is found that the velocity, kinetic energy, and Nusselt number are increasing functions of the heater aspect ratio and particle concentration. The coalescence of the nanoenhanced ionic liquid mixture is phenomenal for its lower heater aspect ratio. The carbon nanotube-dispersed ionanofluid mixture exhibited superior thermal performance for a turbulent Grashof number and enhanced the average Nusselt number of pure ionic liquid by 141.13%. The multiphase model is validated, and results are closer to the benchmark experimental findings.
Subject
Fluid Flow and Transfer Processes,Mechanical Engineering,Condensed Matter Physics
Reference34 articles.
1. Abbood, S., Wang, J., Wu, Z., and Sunden, B., Analysis of Natural Convection of Cu and TiO2 Nanofluids Inside Nonconventional Enclosures, J. Enhanc. Heat Transf., vol. 25, pp. 315-332, 2018. 2. Ahmadabadi, A., Rahimi, M., Azimi, N., and Alsairafi, A., Natural Convection Heat Transfer in an Enclosure Filled with Fe3O4 Ferrofluid under Static Magnetic Field: Experimental Investigation and Computational Fluid Dynamics Modeling, J. Enhanc. Heat Transf., vol. 29, pp. 27-54, 2022. 3. Ahmed, Z. and Bhargav, A., A Molecular Dynamics Approach of the Effect of Thermal Interfacial Resistance and Nanolayer on Enhanced Thermal Conductivity of Al2O3-CO2 Nanofluid, J. Enhanc. Heat Transf., vol. 28, pp. 41-56, 2021. 4. Arulprakasajothi, M., Elangovan, K., Chandrasekhar, U., and Suresh, S., Experimental Studies of Water-Based Titanium Oxide Nanofluid in a Circular Pipe under Transition Flow with Conical Strip Inserts, Heat Transf. Res., vol. 49, pp. 439-456, 2018. 5. Al-Barghouti, K.S. and Scurto, A.M., Thermal Conductivity of the Ionic Liquid [HMIm][Tf2N] with Compressed Carbon Dioxide, AIChE J., vol. 68, no. 6, Article ID e17635, 2022.
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