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Natural Convection within Inversed T-Shaped Enclosure Filled by Nano-Enhanced Phase Change Material: Numerical Investigation

Energy saving has always been a topic of great interest. The usage of nano-enhanced phase change material NePCM is one of the energy-saving methods that has gained increasing interest. In the current report, we intend to simulate the natural convection flow of NePCM inside an inverse T-shaped enclos...

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Autores principales: Abderrahmane, Aissa, Al-Khaleel, Mohammad, Mourad, Abed, Laidoudi, Houssem, Driss, Zied, Younis, Obai, Guedri, Kamel, Marzouki, Riad
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9457750/
https://www.ncbi.nlm.nih.gov/pubmed/36079952
http://dx.doi.org/10.3390/nano12172917
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author Abderrahmane, Aissa
Al-Khaleel, Mohammad
Mourad, Abed
Laidoudi, Houssem
Driss, Zied
Younis, Obai
Guedri, Kamel
Marzouki, Riad
author_facet Abderrahmane, Aissa
Al-Khaleel, Mohammad
Mourad, Abed
Laidoudi, Houssem
Driss, Zied
Younis, Obai
Guedri, Kamel
Marzouki, Riad
author_sort Abderrahmane, Aissa
collection PubMed
description Energy saving has always been a topic of great interest. The usage of nano-enhanced phase change material NePCM is one of the energy-saving methods that has gained increasing interest. In the current report, we intend to simulate the natural convection flow of NePCM inside an inverse T-shaped enclosure. The complex nature of the flow results from the following factors: the enclosure contains a hot trapezoidal fin on the bottom wall, the enclosure is saturated with pours media, and it is exposed to a magnetic field. The governing equations of the studied system are numerically addressed by the higher order Galerkin finite element method (GFEM). The impacts of the Darcy number (Da = 10(−2)–10(−5)), Rayleigh number (Ra = 10(3)–10(6)), nanoparticle volume fraction (φ = 0–0.08), and Hartmann number (Ha = 0–100) are analyzed. The results indicate that both local and average Nusselt numbers were considerably affected by Ra and Da values, while the influence of other parameters was negligible. Increasing Ra (increasing buoyancy force) from 10(3) to 10(6) enhanced the maximum average Nusselt number by 740%, while increasing Da (increasing the permeability) from 10(−5) to 10(−2) enhanced both the maximum average Nusselt number and the maximum local Nusselt number by the same rate (360%).
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spelling pubmed-94577502022-09-09 Natural Convection within Inversed T-Shaped Enclosure Filled by Nano-Enhanced Phase Change Material: Numerical Investigation Abderrahmane, Aissa Al-Khaleel, Mohammad Mourad, Abed Laidoudi, Houssem Driss, Zied Younis, Obai Guedri, Kamel Marzouki, Riad Nanomaterials (Basel) Article Energy saving has always been a topic of great interest. The usage of nano-enhanced phase change material NePCM is one of the energy-saving methods that has gained increasing interest. In the current report, we intend to simulate the natural convection flow of NePCM inside an inverse T-shaped enclosure. The complex nature of the flow results from the following factors: the enclosure contains a hot trapezoidal fin on the bottom wall, the enclosure is saturated with pours media, and it is exposed to a magnetic field. The governing equations of the studied system are numerically addressed by the higher order Galerkin finite element method (GFEM). The impacts of the Darcy number (Da = 10(−2)–10(−5)), Rayleigh number (Ra = 10(3)–10(6)), nanoparticle volume fraction (φ = 0–0.08), and Hartmann number (Ha = 0–100) are analyzed. The results indicate that both local and average Nusselt numbers were considerably affected by Ra and Da values, while the influence of other parameters was negligible. Increasing Ra (increasing buoyancy force) from 10(3) to 10(6) enhanced the maximum average Nusselt number by 740%, while increasing Da (increasing the permeability) from 10(−5) to 10(−2) enhanced both the maximum average Nusselt number and the maximum local Nusselt number by the same rate (360%). MDPI 2022-08-24 /pmc/articles/PMC9457750/ /pubmed/36079952 http://dx.doi.org/10.3390/nano12172917 Text en © 2022 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
Abderrahmane, Aissa
Al-Khaleel, Mohammad
Mourad, Abed
Laidoudi, Houssem
Driss, Zied
Younis, Obai
Guedri, Kamel
Marzouki, Riad
Natural Convection within Inversed T-Shaped Enclosure Filled by Nano-Enhanced Phase Change Material: Numerical Investigation
title Natural Convection within Inversed T-Shaped Enclosure Filled by Nano-Enhanced Phase Change Material: Numerical Investigation
title_full Natural Convection within Inversed T-Shaped Enclosure Filled by Nano-Enhanced Phase Change Material: Numerical Investigation
title_fullStr Natural Convection within Inversed T-Shaped Enclosure Filled by Nano-Enhanced Phase Change Material: Numerical Investigation
title_full_unstemmed Natural Convection within Inversed T-Shaped Enclosure Filled by Nano-Enhanced Phase Change Material: Numerical Investigation
title_short Natural Convection within Inversed T-Shaped Enclosure Filled by Nano-Enhanced Phase Change Material: Numerical Investigation
title_sort natural convection within inversed t-shaped enclosure filled by nano-enhanced phase change material: numerical investigation
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9457750/
https://www.ncbi.nlm.nih.gov/pubmed/36079952
http://dx.doi.org/10.3390/nano12172917
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