EFFECT OF CAVITY VOLUME ON COOLING PERFORMANCE OF SYNTHETIC JET DEVICE

Dissipating heat in a small space is a significant limitation that may cause overheating in electronic devices. A synthetic jet refers to a cooling system that does not require a fan and instead relies on the intake and ejection of a high-velocity working fluid through a solitary aperture. This proc...

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Published in:Jurnal Mekanikal
Main Author: Ismail H.; Fadzli A.; Zubair A.F.; Manap M.F.A.; Yusoff H.; Nasir S.M.F.S.A.
Format: Article
Language:English
Published: Penerbit UTM Press 2023
Online Access:https://www.scopus.com/inward/record.uri?eid=2-s2.0-85213400024&doi=10.11113%2fjm.v46.498&partnerID=40&md5=65b79da30668271eaa84a200fd14749a
id 2-s2.0-85213400024
spelling 2-s2.0-85213400024
Ismail H.; Fadzli A.; Zubair A.F.; Manap M.F.A.; Yusoff H.; Nasir S.M.F.S.A.
EFFECT OF CAVITY VOLUME ON COOLING PERFORMANCE OF SYNTHETIC JET DEVICE
2023
Jurnal Mekanikal
46

10.11113/jm.v46.498
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85213400024&doi=10.11113%2fjm.v46.498&partnerID=40&md5=65b79da30668271eaa84a200fd14749a
Dissipating heat in a small space is a significant limitation that may cause overheating in electronic devices. A synthetic jet refers to a cooling system that does not require a fan and instead relies on the intake and ejection of a high-velocity working fluid through a solitary aperture. This process ensures that there is no overall mass flow. This study examined the effect of the volume cavity at varying distances from the nozzle to the heated surface, and at varying frequencies. In this study, three experiments involving heater characteristics, external and internal temperatures, and fluid air velocity for the manufactured synthetic jet were conducted by utilizing a 100-watt, 24-volt heater. The power input was set to achieve a consistent heater surface temperature at 343.15 K. Five different volumes were tested in the range of 300 Hz to 700 Hz driving frequency at a distance of 50 mm between the nozzle and the heated surface. Compared to other driving frequencies, it was observed that 500 Hz in Model 1 (431.75 K) produced the highest cooling effect by reducing the greatest temperature drop. It is assumed that the resonance frequency with the greatest amplitude is 500 Hz. The highest temperature decrease was obtained at a 50 mm distance. The maximum air velocity for each model was measured at 10 mm, while the lowest air velocity was obtained at a 70 mm distance. Model 1 of the synthetic jet produced the highest and lowest air velocity of 1.29 and 0.08 metres per second, respectively. © 2023 Penerbit UTM Press. All rights reserved.
Penerbit UTM Press
22893873
English
Article
All Open Access; Bronze Open Access
author Ismail H.; Fadzli A.; Zubair A.F.; Manap M.F.A.; Yusoff H.; Nasir S.M.F.S.A.
spellingShingle Ismail H.; Fadzli A.; Zubair A.F.; Manap M.F.A.; Yusoff H.; Nasir S.M.F.S.A.
EFFECT OF CAVITY VOLUME ON COOLING PERFORMANCE OF SYNTHETIC JET DEVICE
author_facet Ismail H.; Fadzli A.; Zubair A.F.; Manap M.F.A.; Yusoff H.; Nasir S.M.F.S.A.
author_sort Ismail H.; Fadzli A.; Zubair A.F.; Manap M.F.A.; Yusoff H.; Nasir S.M.F.S.A.
title EFFECT OF CAVITY VOLUME ON COOLING PERFORMANCE OF SYNTHETIC JET DEVICE
title_short EFFECT OF CAVITY VOLUME ON COOLING PERFORMANCE OF SYNTHETIC JET DEVICE
title_full EFFECT OF CAVITY VOLUME ON COOLING PERFORMANCE OF SYNTHETIC JET DEVICE
title_fullStr EFFECT OF CAVITY VOLUME ON COOLING PERFORMANCE OF SYNTHETIC JET DEVICE
title_full_unstemmed EFFECT OF CAVITY VOLUME ON COOLING PERFORMANCE OF SYNTHETIC JET DEVICE
title_sort EFFECT OF CAVITY VOLUME ON COOLING PERFORMANCE OF SYNTHETIC JET DEVICE
publishDate 2023
container_title Jurnal Mekanikal
container_volume 46
container_issue
doi_str_mv 10.11113/jm.v46.498
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-85213400024&doi=10.11113%2fjm.v46.498&partnerID=40&md5=65b79da30668271eaa84a200fd14749a
description Dissipating heat in a small space is a significant limitation that may cause overheating in electronic devices. A synthetic jet refers to a cooling system that does not require a fan and instead relies on the intake and ejection of a high-velocity working fluid through a solitary aperture. This process ensures that there is no overall mass flow. This study examined the effect of the volume cavity at varying distances from the nozzle to the heated surface, and at varying frequencies. In this study, three experiments involving heater characteristics, external and internal temperatures, and fluid air velocity for the manufactured synthetic jet were conducted by utilizing a 100-watt, 24-volt heater. The power input was set to achieve a consistent heater surface temperature at 343.15 K. Five different volumes were tested in the range of 300 Hz to 700 Hz driving frequency at a distance of 50 mm between the nozzle and the heated surface. Compared to other driving frequencies, it was observed that 500 Hz in Model 1 (431.75 K) produced the highest cooling effect by reducing the greatest temperature drop. It is assumed that the resonance frequency with the greatest amplitude is 500 Hz. The highest temperature decrease was obtained at a 50 mm distance. The maximum air velocity for each model was measured at 10 mm, while the lowest air velocity was obtained at a 70 mm distance. Model 1 of the synthetic jet produced the highest and lowest air velocity of 1.29 and 0.08 metres per second, respectively. © 2023 Penerbit UTM Press. All rights reserved.
publisher Penerbit UTM Press
issn 22893873
language English
format Article
accesstype All Open Access; Bronze Open Access
record_format scopus
collection Scopus
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