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Heat Transfer and Hydrodynamic Properties Using Different Metal-Oxide Nanostructures in Horizontal Concentric Annular Tube: An Optimization Study

Numerical studies were performed to estimate the heat transfer and hydrodynamic properties of a forced convection turbulent flow using three-dimensional horizontal concentric annuli. This paper applied the standard k–ε turbulence model for the flow range 1 × 10(4) ≤ Re ≥ 24 × 10(3). A wide range of...

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Autores principales: Alawi, Omer A., Abdelrazek, Ali H., Aldlemy, Mohammed Suleman, Ahmed, Waqar, Hussein, Omar A., Ghafel, Sukaina Tuama, Khedher, Khaled Mohamed, Scholz, Miklas, Yaseen, Zaher Mundher
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8400204/
https://www.ncbi.nlm.nih.gov/pubmed/34443809
http://dx.doi.org/10.3390/nano11081979
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author Alawi, Omer A.
Abdelrazek, Ali H.
Aldlemy, Mohammed Suleman
Ahmed, Waqar
Hussein, Omar A.
Ghafel, Sukaina Tuama
Khedher, Khaled Mohamed
Scholz, Miklas
Yaseen, Zaher Mundher
author_facet Alawi, Omer A.
Abdelrazek, Ali H.
Aldlemy, Mohammed Suleman
Ahmed, Waqar
Hussein, Omar A.
Ghafel, Sukaina Tuama
Khedher, Khaled Mohamed
Scholz, Miklas
Yaseen, Zaher Mundher
author_sort Alawi, Omer A.
collection PubMed
description Numerical studies were performed to estimate the heat transfer and hydrodynamic properties of a forced convection turbulent flow using three-dimensional horizontal concentric annuli. This paper applied the standard k–ε turbulence model for the flow range 1 × 10(4) ≤ Re ≥ 24 × 10(3). A wide range of parameters like different nanomaterials (Al(2)O(3), CuO, SiO(2) and ZnO), different particle nanoshapes (spherical, cylindrical, blades, platelets and bricks), different heat flux ratio (HFR) (0, 0.5, 1 and 2) and different aspect ratios (AR) (1.5, 2, 2.5 and 3) were examined. Also, the effect of inner cylinder rotation was discussed. An experiment was conducted out using a field-emission scanning electron microscope (FE-SEM) to characterize metallic oxides in spherical morphologies. Nano-platelet particles showed the best enhancements in heat transfer properties, followed by nano-cylinders, nano-bricks, nano-blades, and nano-spheres. The maximum heat transfer enhancement was found in SiO(2), followed by ZnO, CuO, and Al(2)O(3), in that order. Meanwhile, the effect of the HFR parameter was insignificant. At Re = 24,000, the inner wall rotation enhanced the heat transfer about 47.94%, 43.03%, 42.06% and 39.79% for SiO(2), ZnO, CuO and Al(2)O(3), respectively. Moreover, the AR of 2.5 presented the higher heat transfer improvement followed by 3, 2, and 1.5.
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spelling pubmed-84002042021-08-29 Heat Transfer and Hydrodynamic Properties Using Different Metal-Oxide Nanostructures in Horizontal Concentric Annular Tube: An Optimization Study Alawi, Omer A. Abdelrazek, Ali H. Aldlemy, Mohammed Suleman Ahmed, Waqar Hussein, Omar A. Ghafel, Sukaina Tuama Khedher, Khaled Mohamed Scholz, Miklas Yaseen, Zaher Mundher Nanomaterials (Basel) Article Numerical studies were performed to estimate the heat transfer and hydrodynamic properties of a forced convection turbulent flow using three-dimensional horizontal concentric annuli. This paper applied the standard k–ε turbulence model for the flow range 1 × 10(4) ≤ Re ≥ 24 × 10(3). A wide range of parameters like different nanomaterials (Al(2)O(3), CuO, SiO(2) and ZnO), different particle nanoshapes (spherical, cylindrical, blades, platelets and bricks), different heat flux ratio (HFR) (0, 0.5, 1 and 2) and different aspect ratios (AR) (1.5, 2, 2.5 and 3) were examined. Also, the effect of inner cylinder rotation was discussed. An experiment was conducted out using a field-emission scanning electron microscope (FE-SEM) to characterize metallic oxides in spherical morphologies. Nano-platelet particles showed the best enhancements in heat transfer properties, followed by nano-cylinders, nano-bricks, nano-blades, and nano-spheres. The maximum heat transfer enhancement was found in SiO(2), followed by ZnO, CuO, and Al(2)O(3), in that order. Meanwhile, the effect of the HFR parameter was insignificant. At Re = 24,000, the inner wall rotation enhanced the heat transfer about 47.94%, 43.03%, 42.06% and 39.79% for SiO(2), ZnO, CuO and Al(2)O(3), respectively. Moreover, the AR of 2.5 presented the higher heat transfer improvement followed by 3, 2, and 1.5. MDPI 2021-07-31 /pmc/articles/PMC8400204/ /pubmed/34443809 http://dx.doi.org/10.3390/nano11081979 Text en © 2021 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
Alawi, Omer A.
Abdelrazek, Ali H.
Aldlemy, Mohammed Suleman
Ahmed, Waqar
Hussein, Omar A.
Ghafel, Sukaina Tuama
Khedher, Khaled Mohamed
Scholz, Miklas
Yaseen, Zaher Mundher
Heat Transfer and Hydrodynamic Properties Using Different Metal-Oxide Nanostructures in Horizontal Concentric Annular Tube: An Optimization Study
title Heat Transfer and Hydrodynamic Properties Using Different Metal-Oxide Nanostructures in Horizontal Concentric Annular Tube: An Optimization Study
title_full Heat Transfer and Hydrodynamic Properties Using Different Metal-Oxide Nanostructures in Horizontal Concentric Annular Tube: An Optimization Study
title_fullStr Heat Transfer and Hydrodynamic Properties Using Different Metal-Oxide Nanostructures in Horizontal Concentric Annular Tube: An Optimization Study
title_full_unstemmed Heat Transfer and Hydrodynamic Properties Using Different Metal-Oxide Nanostructures in Horizontal Concentric Annular Tube: An Optimization Study
title_short Heat Transfer and Hydrodynamic Properties Using Different Metal-Oxide Nanostructures in Horizontal Concentric Annular Tube: An Optimization Study
title_sort heat transfer and hydrodynamic properties using different metal-oxide nanostructures in horizontal concentric annular tube: an optimization study
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8400204/
https://www.ncbi.nlm.nih.gov/pubmed/34443809
http://dx.doi.org/10.3390/nano11081979
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