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Baffle effects on enhancing cooling performance of electronic components by nanofluid in a horizontal channel

Sara Armou (Laboratory of Mechanics, Processes, Energy and Environment, National School of Applied Sciences, Ibn Zohr University, Agadir, Morocco)
Mustapha Ait Hssain (Department of Energetics, Laboratory of Mechanics, Processes, Energy and Environment (LMPEE), National School of Applied Sciences, Ibn Zohr University, Agadir, Morocco)
Soufiane Nouari (Department of Energetics, National School of Applied Sciences, Ibn Zohr University, Agadir, Morocco)
Rachid Mir (Laboratory of Mechanics, Processes, Energy and Environment, National School of Applied Sciences, Ibn Zohr University, Agadir, Morocco)
Kaoutar Zine-Dine (Laboratory of Mechanics, Processes, Energy and Environment, National School of Applied Sciences, Ibn Zohr University, Agadir, Morocco)

International Journal of Numerical Methods for Heat & Fluid Flow

ISSN: 0961-5539

Article publication date: 7 June 2023

Issue publication date: 23 February 2024

79

Abstract

Purpose

The purpose of this study is to investigate the impact of varying baffle height and spacing distance on heat transfer and cooling performance of electronic components in a baffled horizontal channel, using a Cu-H2O nanofluid under mixed convection and laminar flow.

Design/methodology/approach

The mathematical model is two-dimensional and comprises a system of four governing equations, such as the conservation of continuity, momentum and energy. To obtain numerical solutions for these equations, the finite volume method was used for discretization. A validation process was performed by comparing this study’s results with those of previously published studies. The comparison revealed a close agreement. The numerical study was performed for a wide range of key parameters: The baffle height (0 ≤ h ≤ 0.7), the spacing distance between baffle and blocks (0.25 ≤ w ≤ 3), the Grashof and Reynolds numbers are kept equal to 104 and 75, respectively, the channel aspect ratio is L/H = 10, and the volume fraction of Cu nanoparticles is fixed at φ = 5%.

Findings

The results of the study reveal a significant improvement in heat transfer in terms of total Nusselt number of the top and bottom hot components, which exhibited an improvement of 16.89% and 17.23% when the baffle height increases from h = 0 to h = 0.7. Additionally, the study found that reducing the distance between the baffle and the electronic components up to a certain limit can improve the heat transfer rate. Therefore, the optimal height of the baffle was found to be no lower than 0.6, and the recommended distance between the heaters and the baffle was 0.5.

Originality/value

This study provides valuable insights into the optimization of the design of baffled channels for improved heat transfer performance. The findings of study can be used to improve heat exchangers and cooling systems in various applications. The use of Cu-H2O nanofluid under mixed convection and laminar flow conditions in channel with baffle and electronic components is also unique, making this study an original contribution to the field.

Keywords

Citation

Armou, S., Ait Hssain, M., Nouari, S., Mir, R. and Zine-Dine, K. (2024), "Baffle effects on enhancing cooling performance of electronic components by nanofluid in a horizontal channel", International Journal of Numerical Methods for Heat & Fluid Flow, Vol. 34 No. 2, pp. 383-407. https://doi.org/10.1108/HFF-03-2023-0134

Publisher

:

Emerald Publishing Limited

Copyright © 2023, Emerald Publishing Limited

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