CFD Investigation of the Effect of Vibration Direction on the Heat Transfer Enhancement of Heat Sink

The application of vibration on a heated surface is found to be one of the promising cooling methods. Previous studies found that the thermal performance of the heated body depends on the vibrational characteristics and wave shape. However, for heat sinks, the direction of the vibration for differen...

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Main Authors: Rasangika, A.H.D.K., Nasif, M.S., Pao, W., Al-Waked, R.
Format: Article
Published: Semarak Ilmu Publishing 2023
Online Access:http://scholars.utp.edu.my/id/eprint/37318/
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85170038601&doi=10.37934%2fcfdl.15.10.170185&partnerID=40&md5=30e59057d4f147ef98d1a66d8f4b6455
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spelling oai:scholars.utp.edu.my:373182023-10-04T08:41:10Z http://scholars.utp.edu.my/id/eprint/37318/ CFD Investigation of the Effect of Vibration Direction on the Heat Transfer Enhancement of Heat Sink Rasangika, A.H.D.K. Nasif, M.S. Pao, W. Al-Waked, R. The application of vibration on a heated surface is found to be one of the promising cooling methods. Previous studies found that the thermal performance of the heated body depends on the vibrational characteristics and wave shape. However, for heat sinks, the direction of the vibration for different vibrational wave shapes has not been investigated, which may influence cooling. Thus, the current study conducted a numerical investigation to study the effect of the vibration direction of sinusoidal and square wave shaped vibration on the conventional heat sink and validated it against experimental results with a maximum deviation of 2.4. The study is conducted with a range of frequencies and peak-to-peak amplitude of 0-80 Hz and 0-0.005 m under the square and sinusoidal wave shapes. It was found that the Nusselt number increases with higher frequencies (f>40 Hz), and amplitudes and enhancement in Nusselt values are more dominant with square wave shapes. At the vibration frequency and peak-to-peak amplitude of 80 Hz and 0005 m, a maximum of 9.3 and 7.2 enhancement in the Nusselt number is recorded with square and sinusoidal vibration, respectively. Moreover, the result of the current study is compared with the published work, and it was concluded that the effect of vibration on heat transfer is superior to horizontal vibration in comparison with vertical vibration by 7 and 3.2 under square and sinusoidal wave shaped vibrations, respectively. © 2023, Semarak Ilmu Publishing. All rights reserved. Semarak Ilmu Publishing 2023 Article NonPeerReviewed Rasangika, A.H.D.K. and Nasif, M.S. and Pao, W. and Al-Waked, R. (2023) CFD Investigation of the Effect of Vibration Direction on the Heat Transfer Enhancement of Heat Sink. CFD Letters, 15 (10). pp. 170-185. ISSN 21801363 https://www.scopus.com/inward/record.uri?eid=2-s2.0-85170038601&doi=10.37934%2fcfdl.15.10.170185&partnerID=40&md5=30e59057d4f147ef98d1a66d8f4b6455 10.37934/cfdl.15.10.170185 10.37934/cfdl.15.10.170185 10.37934/cfdl.15.10.170185
institution Universiti Teknologi Petronas
building UTP Resource Centre
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Teknologi Petronas
content_source UTP Institutional Repository
url_provider http://eprints.utp.edu.my/
description The application of vibration on a heated surface is found to be one of the promising cooling methods. Previous studies found that the thermal performance of the heated body depends on the vibrational characteristics and wave shape. However, for heat sinks, the direction of the vibration for different vibrational wave shapes has not been investigated, which may influence cooling. Thus, the current study conducted a numerical investigation to study the effect of the vibration direction of sinusoidal and square wave shaped vibration on the conventional heat sink and validated it against experimental results with a maximum deviation of 2.4. The study is conducted with a range of frequencies and peak-to-peak amplitude of 0-80 Hz and 0-0.005 m under the square and sinusoidal wave shapes. It was found that the Nusselt number increases with higher frequencies (f>40 Hz), and amplitudes and enhancement in Nusselt values are more dominant with square wave shapes. At the vibration frequency and peak-to-peak amplitude of 80 Hz and 0005 m, a maximum of 9.3 and 7.2 enhancement in the Nusselt number is recorded with square and sinusoidal vibration, respectively. Moreover, the result of the current study is compared with the published work, and it was concluded that the effect of vibration on heat transfer is superior to horizontal vibration in comparison with vertical vibration by 7 and 3.2 under square and sinusoidal wave shaped vibrations, respectively. © 2023, Semarak Ilmu Publishing. All rights reserved.
format Article
author Rasangika, A.H.D.K.
Nasif, M.S.
Pao, W.
Al-Waked, R.
spellingShingle Rasangika, A.H.D.K.
Nasif, M.S.
Pao, W.
Al-Waked, R.
CFD Investigation of the Effect of Vibration Direction on the Heat Transfer Enhancement of Heat Sink
author_facet Rasangika, A.H.D.K.
Nasif, M.S.
Pao, W.
Al-Waked, R.
author_sort Rasangika, A.H.D.K.
title CFD Investigation of the Effect of Vibration Direction on the Heat Transfer Enhancement of Heat Sink
title_short CFD Investigation of the Effect of Vibration Direction on the Heat Transfer Enhancement of Heat Sink
title_full CFD Investigation of the Effect of Vibration Direction on the Heat Transfer Enhancement of Heat Sink
title_fullStr CFD Investigation of the Effect of Vibration Direction on the Heat Transfer Enhancement of Heat Sink
title_full_unstemmed CFD Investigation of the Effect of Vibration Direction on the Heat Transfer Enhancement of Heat Sink
title_sort cfd investigation of the effect of vibration direction on the heat transfer enhancement of heat sink
publisher Semarak Ilmu Publishing
publishDate 2023
url http://scholars.utp.edu.my/id/eprint/37318/
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85170038601&doi=10.37934%2fcfdl.15.10.170185&partnerID=40&md5=30e59057d4f147ef98d1a66d8f4b6455
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