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Heat Transfer Enhancement Using Al(2)O(3)-MWCNT Hybrid-Nanofluid inside a Tube/Shell Heat Exchanger with Different Tube Shapes

The high demand for compact heat exchangers has led researchers to develop high-quality and energy-efficient heat exchangers at a lower cost than conventional ones. To address this requirement, the present study focuses on improvements to the tube/shell heat exchanger to maximize the efficiency eith...

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Autores principales: Bouselsal, Maissa, Mebarek-Oudina, Fateh, Biswas, Nirmalendu, Ismail, Abdel Aziz I.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10223065/
https://www.ncbi.nlm.nih.gov/pubmed/37241695
http://dx.doi.org/10.3390/mi14051072
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author Bouselsal, Maissa
Mebarek-Oudina, Fateh
Biswas, Nirmalendu
Ismail, Abdel Aziz I.
author_facet Bouselsal, Maissa
Mebarek-Oudina, Fateh
Biswas, Nirmalendu
Ismail, Abdel Aziz I.
author_sort Bouselsal, Maissa
collection PubMed
description The high demand for compact heat exchangers has led researchers to develop high-quality and energy-efficient heat exchangers at a lower cost than conventional ones. To address this requirement, the present study focuses on improvements to the tube/shell heat exchanger to maximize the efficiency either by altering the tube’s geometrical shape and/or by adding nanoparticles in its heat transfer fluid. Water-based Al(2)O(3)-MWCNT hybrid nanofluid is utilized here as a heat transfer fluid. The fluid flows at a high temperature and constant velocity, and the tubes are maintained at a low temperature with various shapes of the tube. The involved transport equations are solved numerically by the finite-element-based computing tool. The results are presented using the streamlines, isotherms, entropy generation contours, and Nusselt number profiles for various nanoparticles volume fraction 0.01 ≤ φ ≤ 0.04 and Reynolds numbers 2400 ≤ Re ≤ 2700 for the different shaped tubes of the heat exchanger. The results indicate that the heat exchange rate is a growing function of the increasing nanoparticle concentration and velocity of the heat transfer fluid. The diamond-shaped tubes show a better geometric shape for obtaining the superior heat transfer of the heat exchanger. Heat transfer is further enhanced by using the hybrid nanofluid, and the enhancement goes up to 103.07% with a particle concentration of 2%. The corresponding entropy generation is also minimal with the diamond-shaped tubes. The outcome of the study is very significant in the industrial field and can solve many heat transfer problems.
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spelling pubmed-102230652023-05-28 Heat Transfer Enhancement Using Al(2)O(3)-MWCNT Hybrid-Nanofluid inside a Tube/Shell Heat Exchanger with Different Tube Shapes Bouselsal, Maissa Mebarek-Oudina, Fateh Biswas, Nirmalendu Ismail, Abdel Aziz I. Micromachines (Basel) Article The high demand for compact heat exchangers has led researchers to develop high-quality and energy-efficient heat exchangers at a lower cost than conventional ones. To address this requirement, the present study focuses on improvements to the tube/shell heat exchanger to maximize the efficiency either by altering the tube’s geometrical shape and/or by adding nanoparticles in its heat transfer fluid. Water-based Al(2)O(3)-MWCNT hybrid nanofluid is utilized here as a heat transfer fluid. The fluid flows at a high temperature and constant velocity, and the tubes are maintained at a low temperature with various shapes of the tube. The involved transport equations are solved numerically by the finite-element-based computing tool. The results are presented using the streamlines, isotherms, entropy generation contours, and Nusselt number profiles for various nanoparticles volume fraction 0.01 ≤ φ ≤ 0.04 and Reynolds numbers 2400 ≤ Re ≤ 2700 for the different shaped tubes of the heat exchanger. The results indicate that the heat exchange rate is a growing function of the increasing nanoparticle concentration and velocity of the heat transfer fluid. The diamond-shaped tubes show a better geometric shape for obtaining the superior heat transfer of the heat exchanger. Heat transfer is further enhanced by using the hybrid nanofluid, and the enhancement goes up to 103.07% with a particle concentration of 2%. The corresponding entropy generation is also minimal with the diamond-shaped tubes. The outcome of the study is very significant in the industrial field and can solve many heat transfer problems. MDPI 2023-05-18 /pmc/articles/PMC10223065/ /pubmed/37241695 http://dx.doi.org/10.3390/mi14051072 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Bouselsal, Maissa
Mebarek-Oudina, Fateh
Biswas, Nirmalendu
Ismail, Abdel Aziz I.
Heat Transfer Enhancement Using Al(2)O(3)-MWCNT Hybrid-Nanofluid inside a Tube/Shell Heat Exchanger with Different Tube Shapes
title Heat Transfer Enhancement Using Al(2)O(3)-MWCNT Hybrid-Nanofluid inside a Tube/Shell Heat Exchanger with Different Tube Shapes
title_full Heat Transfer Enhancement Using Al(2)O(3)-MWCNT Hybrid-Nanofluid inside a Tube/Shell Heat Exchanger with Different Tube Shapes
title_fullStr Heat Transfer Enhancement Using Al(2)O(3)-MWCNT Hybrid-Nanofluid inside a Tube/Shell Heat Exchanger with Different Tube Shapes
title_full_unstemmed Heat Transfer Enhancement Using Al(2)O(3)-MWCNT Hybrid-Nanofluid inside a Tube/Shell Heat Exchanger with Different Tube Shapes
title_short Heat Transfer Enhancement Using Al(2)O(3)-MWCNT Hybrid-Nanofluid inside a Tube/Shell Heat Exchanger with Different Tube Shapes
title_sort heat transfer enhancement using al(2)o(3)-mwcnt hybrid-nanofluid inside a tube/shell heat exchanger with different tube shapes
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10223065/
https://www.ncbi.nlm.nih.gov/pubmed/37241695
http://dx.doi.org/10.3390/mi14051072
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