Thermo-hydraulic performance in ceramic-made microchannel heat sinks with an optimum fin geometry

Efficient heat rejection from modern microelectronic equipment plays a substantial role in increasing the functionality and longevity of these products. Microchannel heat sinks (MCHSs) are one of the liquid-cooling technologies, and it is needed to increase their heat transfer performance to acquire...

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Main Authors: Cao, Yan, Abbas, Mohamed, El-Shorbagy, M. A., Gepreel, Khaled A., Dahari, Mahidzal, Le, Van Vang, Badran, Mohamed Fathy, Huynh, Phat Huy, Wae-hayee, Makatar
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Published: Elsevier 2022
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Online Access:http://eprints.um.edu.my/41686/
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spelling my.um.eprints.416862023-10-27T03:27:26Z http://eprints.um.edu.my/41686/ Thermo-hydraulic performance in ceramic-made microchannel heat sinks with an optimum fin geometry Cao, Yan Abbas, Mohamed El-Shorbagy, M. A. Gepreel, Khaled A. Dahari, Mahidzal Le, Van Vang Badran, Mohamed Fathy Huynh, Phat Huy Wae-hayee, Makatar TK Electrical engineering. Electronics Nuclear engineering Efficient heat rejection from modern microelectronic equipment plays a substantial role in increasing the functionality and longevity of these products. Microchannel heat sinks (MCHSs) are one of the liquid-cooling technologies, and it is needed to increase their heat transfer performance to acquire higher cooling capacity. In the current numerical study, two distinct strategies are suggested to ameliorate the heat transfer behavior of the MCHSs. First, straight-slot fins with different aspect ratios (b/a = 1.5, 2, 2.5, 3, 4, and 5) are added to the microchannels. The heat transfer and pressure drop properties in the finned-heat sink are analyzed numerically. After investigating straight-slot fins and selecting the optimum model, the heat sink's material is changed from alumina to Aluminum nitride (AlN) and Beryllium oxide (BeO). The impact of utilizing these two advanced ceramics on the thermo-hydraulic performance of the MCHS is examined. According to the obtained results, the MCHS with longer straight-slot fins (b/a = 5) indicated higher thermal performance values at all investigated Reynolds numbers. Changing the optimum model's material from alumina to AlN and BeO ceramics, the MCHS's thermal performance was enhanced by about 3.72 and 4.22 times (at the Reynolds number of 300), respectively. Elsevier 2022-08 Article PeerReviewed Cao, Yan and Abbas, Mohamed and El-Shorbagy, M. A. and Gepreel, Khaled A. and Dahari, Mahidzal and Le, Van Vang and Badran, Mohamed Fathy and Huynh, Phat Huy and Wae-hayee, Makatar (2022) Thermo-hydraulic performance in ceramic-made microchannel heat sinks with an optimum fin geometry. Case Studies in Thermal Engineering, 36. ISSN 2214-157X, DOI https://doi.org/10.1016/j.csite.2022.102230 <https://doi.org/10.1016/j.csite.2022.102230>. 10.1016/j.csite.2022.102230
institution Universiti Malaya
building UM Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Malaya
content_source UM Research Repository
url_provider http://eprints.um.edu.my/
topic TK Electrical engineering. Electronics Nuclear engineering
spellingShingle TK Electrical engineering. Electronics Nuclear engineering
Cao, Yan
Abbas, Mohamed
El-Shorbagy, M. A.
Gepreel, Khaled A.
Dahari, Mahidzal
Le, Van Vang
Badran, Mohamed Fathy
Huynh, Phat Huy
Wae-hayee, Makatar
Thermo-hydraulic performance in ceramic-made microchannel heat sinks with an optimum fin geometry
description Efficient heat rejection from modern microelectronic equipment plays a substantial role in increasing the functionality and longevity of these products. Microchannel heat sinks (MCHSs) are one of the liquid-cooling technologies, and it is needed to increase their heat transfer performance to acquire higher cooling capacity. In the current numerical study, two distinct strategies are suggested to ameliorate the heat transfer behavior of the MCHSs. First, straight-slot fins with different aspect ratios (b/a = 1.5, 2, 2.5, 3, 4, and 5) are added to the microchannels. The heat transfer and pressure drop properties in the finned-heat sink are analyzed numerically. After investigating straight-slot fins and selecting the optimum model, the heat sink's material is changed from alumina to Aluminum nitride (AlN) and Beryllium oxide (BeO). The impact of utilizing these two advanced ceramics on the thermo-hydraulic performance of the MCHS is examined. According to the obtained results, the MCHS with longer straight-slot fins (b/a = 5) indicated higher thermal performance values at all investigated Reynolds numbers. Changing the optimum model's material from alumina to AlN and BeO ceramics, the MCHS's thermal performance was enhanced by about 3.72 and 4.22 times (at the Reynolds number of 300), respectively.
format Article
author Cao, Yan
Abbas, Mohamed
El-Shorbagy, M. A.
Gepreel, Khaled A.
Dahari, Mahidzal
Le, Van Vang
Badran, Mohamed Fathy
Huynh, Phat Huy
Wae-hayee, Makatar
author_facet Cao, Yan
Abbas, Mohamed
El-Shorbagy, M. A.
Gepreel, Khaled A.
Dahari, Mahidzal
Le, Van Vang
Badran, Mohamed Fathy
Huynh, Phat Huy
Wae-hayee, Makatar
author_sort Cao, Yan
title Thermo-hydraulic performance in ceramic-made microchannel heat sinks with an optimum fin geometry
title_short Thermo-hydraulic performance in ceramic-made microchannel heat sinks with an optimum fin geometry
title_full Thermo-hydraulic performance in ceramic-made microchannel heat sinks with an optimum fin geometry
title_fullStr Thermo-hydraulic performance in ceramic-made microchannel heat sinks with an optimum fin geometry
title_full_unstemmed Thermo-hydraulic performance in ceramic-made microchannel heat sinks with an optimum fin geometry
title_sort thermo-hydraulic performance in ceramic-made microchannel heat sinks with an optimum fin geometry
publisher Elsevier
publishDate 2022
url http://eprints.um.edu.my/41686/
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