Heat transfer enhancement through periodic flow area variations in microchannels

In this study, annular microchannels with a microscale gap of 300 μm were implemented through the concentric superposition of two macro-sized cylinders. Flow area variations along the streamwise direction were created by introducing sinusoidal wave profiles on either the inner or outer wall of the a...

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Main Authors: Cheng, Kai Xian, Foo, Zi Hao, Ooi, Kim Tiow
Other Authors: School of Mechanical and Aerospace Engineering
Format: Article
Language:English
Published: 2020
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Online Access:https://hdl.handle.net/10356/136868
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-1368682023-03-04T17:12:43Z Heat transfer enhancement through periodic flow area variations in microchannels Cheng, Kai Xian Foo, Zi Hao Ooi, Kim Tiow School of Mechanical and Aerospace Engineering Engineering::Mechanical engineering Single-walled Wavy Channel In this study, annular microchannels with a microscale gap of 300 μm were implemented through the concentric superposition of two macro-sized cylinders. Flow area variations along the streamwise direction were created by introducing sinusoidal wave profiles on either the inner or outer wall of the annular gap while keeping the other wall flat. These variations introduced re-entrant effects along the flow direction. Numerical studies using the finite volume method were performed to elucidate the single-phase, steady-state thermal and hydrodynamic performances of the wavy channels, using water as the fluid medium, with an operating Reynolds number range of 800–2200. The predicted results were validated using the available measured data and classical correlations. This study demonstrated the viability of attaining enhanced heat transfer rates of up to 360% of the original straight channel through the inducement of flow area variations with single wavy-walled channels. Despite magnifications of the friction factors, the single wavy-walled channels attained a 120% increment in heat transfer coefficient when evaluated at the same pumping power. Overall, single-walled wavy passages were deemed suitable for heat exchanger designs demanding very high heat removal rates and efficiencies while the conventional serpentine channels were apt for moderately enhancing heat transfer while requiring low pumping power. Accepted version 2020-02-03T08:32:36Z 2020-02-03T08:32:36Z 2020 Journal Article Cheng, K. X., Foo, Z. H., & Ooi, K. T. (2020). Heat transfer enhancement through periodic flow area variations in microchannels. International Communications in Heat and Mass Transfer, 111104456-. doi:10.1016/j.icheatmasstransfer.2019.104456 0735-1933 https://hdl.handle.net/10356/136868 10.1016/j.icheatmasstransfer.2019.104456 111 en International Communications in Heat and Mass Transfer © 2020 Elsevier. All rights reserved. This paper was published in International Communications in Heat and Mass Transfer and is made available with permission of Elsevier. application/pdf
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic Engineering::Mechanical engineering
Single-walled
Wavy Channel
spellingShingle Engineering::Mechanical engineering
Single-walled
Wavy Channel
Cheng, Kai Xian
Foo, Zi Hao
Ooi, Kim Tiow
Heat transfer enhancement through periodic flow area variations in microchannels
description In this study, annular microchannels with a microscale gap of 300 μm were implemented through the concentric superposition of two macro-sized cylinders. Flow area variations along the streamwise direction were created by introducing sinusoidal wave profiles on either the inner or outer wall of the annular gap while keeping the other wall flat. These variations introduced re-entrant effects along the flow direction. Numerical studies using the finite volume method were performed to elucidate the single-phase, steady-state thermal and hydrodynamic performances of the wavy channels, using water as the fluid medium, with an operating Reynolds number range of 800–2200. The predicted results were validated using the available measured data and classical correlations. This study demonstrated the viability of attaining enhanced heat transfer rates of up to 360% of the original straight channel through the inducement of flow area variations with single wavy-walled channels. Despite magnifications of the friction factors, the single wavy-walled channels attained a 120% increment in heat transfer coefficient when evaluated at the same pumping power. Overall, single-walled wavy passages were deemed suitable for heat exchanger designs demanding very high heat removal rates and efficiencies while the conventional serpentine channels were apt for moderately enhancing heat transfer while requiring low pumping power.
author2 School of Mechanical and Aerospace Engineering
author_facet School of Mechanical and Aerospace Engineering
Cheng, Kai Xian
Foo, Zi Hao
Ooi, Kim Tiow
format Article
author Cheng, Kai Xian
Foo, Zi Hao
Ooi, Kim Tiow
author_sort Cheng, Kai Xian
title Heat transfer enhancement through periodic flow area variations in microchannels
title_short Heat transfer enhancement through periodic flow area variations in microchannels
title_full Heat transfer enhancement through periodic flow area variations in microchannels
title_fullStr Heat transfer enhancement through periodic flow area variations in microchannels
title_full_unstemmed Heat transfer enhancement through periodic flow area variations in microchannels
title_sort heat transfer enhancement through periodic flow area variations in microchannels
publishDate 2020
url https://hdl.handle.net/10356/136868
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