Thermal and Hydraulic Performances of Carbon and Metallic Oxides-Based Nanomaterials

For companies, notably in the realms of energy and power supply, the essential requirement for highly efficient thermal transport solutions has become a serious concern. Current research highlighted the use of metallic oxides and carbon-based nanofluids as heat transfer fluids. This work examined tw...

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Published in:Nanomaterials
Main Author: Afan H.A.; Aldlemy M.S.; Ahmed A.M.; Jawad A.H.; Naser M.H.; Homod R.Z.; Mussa Z.H.; Abdulkadhim A.H.; Scholz M.; Yaseen Z.M.
Format: Article
Language:English
Published: MDPI 2022
Online Access:https://www.scopus.com/inward/record.uri?eid=2-s2.0-85130841256&doi=10.3390%2fnano12091545&partnerID=40&md5=fe50964850978a39db073a0656d25304
id 2-s2.0-85130841256
spelling 2-s2.0-85130841256
Afan H.A.; Aldlemy M.S.; Ahmed A.M.; Jawad A.H.; Naser M.H.; Homod R.Z.; Mussa Z.H.; Abdulkadhim A.H.; Scholz M.; Yaseen Z.M.
Thermal and Hydraulic Performances of Carbon and Metallic Oxides-Based Nanomaterials
2022
Nanomaterials
12
9
10.3390/nano12091545
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85130841256&doi=10.3390%2fnano12091545&partnerID=40&md5=fe50964850978a39db073a0656d25304
For companies, notably in the realms of energy and power supply, the essential requirement for highly efficient thermal transport solutions has become a serious concern. Current research highlighted the use of metallic oxides and carbon-based nanofluids as heat transfer fluids. This work examined two carbon forms (PEG@GNPs & PEG@TGr) and two types of metallic oxides (Al2O3 & SiO2) in a square heated pipe in the mass fraction of 0.1 wt.%. Laboratory conditions were as follows: 6401 ≤ Re ≤ 11,907 and wall heat flux = 11,205 W/m2. The effective thermal–physical and heat transfer properties were assessed for fully developed turbulent fluid flow at 20–60 °C. The thermal and hydraulic performances of nanofluids were rated in terms of pumping power, performance index (PI), and performance evaluation criteria (PEC). The heat transfer coefficients of the nanofluids improved the most: PEG@GNPs = 44.4%, PEG@TGr = 41.2%, Al2O3 = 22.5%, and SiO2 = 24%. Meanwhile, the highest augmentation in the Nu of the nanofluids was as follows: PEG@GNPs = 35%, PEG@TGr = 30.1%, Al2O3 = 20.6%, and SiO2 = 21.9%. The pressure loss and friction factor increased the highest, by 20.8–23.7% and 3.57–3.85%, respectively. In the end, the general performance of nanofluids has shown that they would be a good alternative to the traditional working fluids in heat transfer requests. © 2022 by the authors. Licensee MDPI, Basel, Switzerland.
MDPI
20794991
English
Article
All Open Access; Gold Open Access
author Afan H.A.; Aldlemy M.S.; Ahmed A.M.; Jawad A.H.; Naser M.H.; Homod R.Z.; Mussa Z.H.; Abdulkadhim A.H.; Scholz M.; Yaseen Z.M.
spellingShingle Afan H.A.; Aldlemy M.S.; Ahmed A.M.; Jawad A.H.; Naser M.H.; Homod R.Z.; Mussa Z.H.; Abdulkadhim A.H.; Scholz M.; Yaseen Z.M.
Thermal and Hydraulic Performances of Carbon and Metallic Oxides-Based Nanomaterials
author_facet Afan H.A.; Aldlemy M.S.; Ahmed A.M.; Jawad A.H.; Naser M.H.; Homod R.Z.; Mussa Z.H.; Abdulkadhim A.H.; Scholz M.; Yaseen Z.M.
author_sort Afan H.A.; Aldlemy M.S.; Ahmed A.M.; Jawad A.H.; Naser M.H.; Homod R.Z.; Mussa Z.H.; Abdulkadhim A.H.; Scholz M.; Yaseen Z.M.
title Thermal and Hydraulic Performances of Carbon and Metallic Oxides-Based Nanomaterials
title_short Thermal and Hydraulic Performances of Carbon and Metallic Oxides-Based Nanomaterials
title_full Thermal and Hydraulic Performances of Carbon and Metallic Oxides-Based Nanomaterials
title_fullStr Thermal and Hydraulic Performances of Carbon and Metallic Oxides-Based Nanomaterials
title_full_unstemmed Thermal and Hydraulic Performances of Carbon and Metallic Oxides-Based Nanomaterials
title_sort Thermal and Hydraulic Performances of Carbon and Metallic Oxides-Based Nanomaterials
publishDate 2022
container_title Nanomaterials
container_volume 12
container_issue 9
doi_str_mv 10.3390/nano12091545
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-85130841256&doi=10.3390%2fnano12091545&partnerID=40&md5=fe50964850978a39db073a0656d25304
description For companies, notably in the realms of energy and power supply, the essential requirement for highly efficient thermal transport solutions has become a serious concern. Current research highlighted the use of metallic oxides and carbon-based nanofluids as heat transfer fluids. This work examined two carbon forms (PEG@GNPs & PEG@TGr) and two types of metallic oxides (Al2O3 & SiO2) in a square heated pipe in the mass fraction of 0.1 wt.%. Laboratory conditions were as follows: 6401 ≤ Re ≤ 11,907 and wall heat flux = 11,205 W/m2. The effective thermal–physical and heat transfer properties were assessed for fully developed turbulent fluid flow at 20–60 °C. The thermal and hydraulic performances of nanofluids were rated in terms of pumping power, performance index (PI), and performance evaluation criteria (PEC). The heat transfer coefficients of the nanofluids improved the most: PEG@GNPs = 44.4%, PEG@TGr = 41.2%, Al2O3 = 22.5%, and SiO2 = 24%. Meanwhile, the highest augmentation in the Nu of the nanofluids was as follows: PEG@GNPs = 35%, PEG@TGr = 30.1%, Al2O3 = 20.6%, and SiO2 = 21.9%. The pressure loss and friction factor increased the highest, by 20.8–23.7% and 3.57–3.85%, respectively. In the end, the general performance of nanofluids has shown that they would be a good alternative to the traditional working fluids in heat transfer requests. © 2022 by the authors. Licensee MDPI, Basel, Switzerland.
publisher MDPI
issn 20794991
language English
format Article
accesstype All Open Access; Gold Open Access
record_format scopus
collection Scopus
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