Ultrasonically tuned surface tension and nano-film formation of aqueous ZnO nanofluids

Nanofluids’ thermophysical properties and heat transfer performance has been investigated for many years, while research on their surface tension (ST) and wetting behavior is very limited. To assess nanofluids potential as industrial products, a complete picture is required to prove their performanc...

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Main Authors: Elif Begum Elcioglu, S.M. Sohel Murshed
Format: Article
Language:English
Published: Elsevier 2021-04-01
Series:Ultrasonics Sonochemistry
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S1350417720317284
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spelling doaj-9fd80881b28a46c398f1333e6a449b022021-03-13T04:21:51ZengElsevierUltrasonics Sonochemistry1350-41772021-04-0172105424Ultrasonically tuned surface tension and nano-film formation of aqueous ZnO nanofluidsElif Begum Elcioglu0S.M. Sohel Murshed1Department of Mechanical Engineering, Faculty of Engineering, Eskisehir Technical University, 26555 Eskisehir, TurkeyCenter for Innovation, Technology and Policy Research (IN+), Department of Mechanical Engineering, Instituto Superior Técnico, University of Lisbon, 1049-001 Lisbon, Portugal; Corresponding author.Nanofluids’ thermophysical properties and heat transfer performance has been investigated for many years, while research on their surface tension (ST) and wetting behavior is very limited. To assess nanofluids potential as industrial products, a complete picture is required to prove their performance in a specific application. Boiling heat transfer, microfluidics and drug development are among the applications where ST is a variable. ST of water-based ZnO nanofluids were measured in the presence and absence of direct ultrasonication. The experiments covered variation of ST with ZnO concentration (0.05–0.4 vol%), ultrasonication amplitude (40% and 100%) and duration. To the best of the authors’ knowledge, this is the first report of ST– ultrasonication process relation for a nanofluid. Results showed that after direct ultrasonication, nanofluids ST is strongly affected by the temperature raise, and in those cases relative ST may provide a clearer picture. A nano-film over individual and agglomerated nanoparticles spotted via TEM imaging was affected from the ultrasonication. Such a nano-film can play a key role in the anomalous thermal transport and wettability of nanofluids. Statistical analyses revealed that changes in ultrasonication amplitude resulted in a statistically significance difference on nanofluid ST and relative ST. Changes in nanoparticle concentration caused a significant difference on the nanofluid ST while the difference in relative ST was insignificant. Variation of ultrasonication duration caused significant variations on the relative ST while the difference in nanofluid ST was not significant. This work highlights that based on specific applications ST and other related features of any nanofluid can be adjusted employing proper ultrasonication conditions.http://www.sciencedirect.com/science/article/pii/S1350417720317284NanofluidsSurface tensionUltrasonicationNano-filmStatistical analysis
collection DOAJ
language English
format Article
sources DOAJ
author Elif Begum Elcioglu
S.M. Sohel Murshed
spellingShingle Elif Begum Elcioglu
S.M. Sohel Murshed
Ultrasonically tuned surface tension and nano-film formation of aqueous ZnO nanofluids
Ultrasonics Sonochemistry
Nanofluids
Surface tension
Ultrasonication
Nano-film
Statistical analysis
author_facet Elif Begum Elcioglu
S.M. Sohel Murshed
author_sort Elif Begum Elcioglu
title Ultrasonically tuned surface tension and nano-film formation of aqueous ZnO nanofluids
title_short Ultrasonically tuned surface tension and nano-film formation of aqueous ZnO nanofluids
title_full Ultrasonically tuned surface tension and nano-film formation of aqueous ZnO nanofluids
title_fullStr Ultrasonically tuned surface tension and nano-film formation of aqueous ZnO nanofluids
title_full_unstemmed Ultrasonically tuned surface tension and nano-film formation of aqueous ZnO nanofluids
title_sort ultrasonically tuned surface tension and nano-film formation of aqueous zno nanofluids
publisher Elsevier
series Ultrasonics Sonochemistry
issn 1350-4177
publishDate 2021-04-01
description Nanofluids’ thermophysical properties and heat transfer performance has been investigated for many years, while research on their surface tension (ST) and wetting behavior is very limited. To assess nanofluids potential as industrial products, a complete picture is required to prove their performance in a specific application. Boiling heat transfer, microfluidics and drug development are among the applications where ST is a variable. ST of water-based ZnO nanofluids were measured in the presence and absence of direct ultrasonication. The experiments covered variation of ST with ZnO concentration (0.05–0.4 vol%), ultrasonication amplitude (40% and 100%) and duration. To the best of the authors’ knowledge, this is the first report of ST– ultrasonication process relation for a nanofluid. Results showed that after direct ultrasonication, nanofluids ST is strongly affected by the temperature raise, and in those cases relative ST may provide a clearer picture. A nano-film over individual and agglomerated nanoparticles spotted via TEM imaging was affected from the ultrasonication. Such a nano-film can play a key role in the anomalous thermal transport and wettability of nanofluids. Statistical analyses revealed that changes in ultrasonication amplitude resulted in a statistically significance difference on nanofluid ST and relative ST. Changes in nanoparticle concentration caused a significant difference on the nanofluid ST while the difference in relative ST was insignificant. Variation of ultrasonication duration caused significant variations on the relative ST while the difference in nanofluid ST was not significant. This work highlights that based on specific applications ST and other related features of any nanofluid can be adjusted employing proper ultrasonication conditions.
topic Nanofluids
Surface tension
Ultrasonication
Nano-film
Statistical analysis
url http://www.sciencedirect.com/science/article/pii/S1350417720317284
work_keys_str_mv AT elifbegumelcioglu ultrasonicallytunedsurfacetensionandnanofilmformationofaqueousznonanofluids
AT smsohelmurshed ultrasonicallytunedsurfacetensionandnanofilmformationofaqueousznonanofluids
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