Variable cross-sectional flow area for an enhanced thermo-hydraulic performance in microchannels

Fins, protrusions, dimples, cavities are the common surface modifiers used in microchannels to augment its thermo-hydraulic performance passively. Among these surface modifiers, fins and protrusions have received the most attention because of its outstanding and promising heat transfer enhancement i...

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Main Author: Chua, Keng Yong
Other Authors: Ooi Kim Tiow
Format: Final Year Project
Language:English
Published: 2018
Subjects:
Online Access:http://hdl.handle.net/10356/75684
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-756842023-03-04T19:07:09Z Variable cross-sectional flow area for an enhanced thermo-hydraulic performance in microchannels Chua, Keng Yong Ooi Kim Tiow School of Mechanical and Aerospace Engineering DRNTU::Engineering::Mechanical engineering Fins, protrusions, dimples, cavities are the common surface modifiers used in microchannels to augment its thermo-hydraulic performance passively. Among these surface modifiers, fins and protrusions have received the most attention because of its outstanding and promising heat transfer enhancement in both conventional channels and microchannels. However, a search in the literature revealed that V-shaped protrusions are only investigated in macro-sized channel with air as the working fluid. Therefore, the thermo-hydraulic performance of V-shaped protrusions in microchannels remains uncertain. Furthermore, significant effort has been placed into the geometrical parameters of the fins and protrusions with the view point of producing an optimal design with an efficient and effective thermo-hydraulic performance. Particularly, the cross-sectional flow area, that is affected by the protrusion height, has been identified as a key influence of the thermo-hydraulic performance. However, the thermo-hydraulic effect of variable cross-sectional flow area in enhanced microchannels has also yet to be explored. Therefore, the present study aims to investigate on the effect of V-shaped protrusions as well as the variable cross-sectional flow area in microchannels. A steady-state experimental and a three-dimensional numerical study are conducted in microchannels with single-walled V-shaped protrusions under three separate configurations: (a) uniform cross-sectional flow area, (b) contracted cross-sectional flow area and (c) expanded cross-sectional flow area. The average hydraulic diameters of the microchannels are kept constant at 600 µm for all three configurations. The purpose is to compare Darcy’s friction factor and Nusselt number between different configurations as well as to understand the thermo-hydraulic effects of variable cross-sectional flow area in microchannels. The study concluded that the V-shaped protrusions are effective heat transfer enhancers and the enhanced microchannel with expanded cross-sectional flow area has the highest thermo-hydraulic performance among all other experimented microchannels. The findings of the present studies carry the research a step closer to producing an optimal design for the future microchannel heat sink. Bachelor of Engineering (Mechanical Engineering) 2018-06-07T03:23:31Z 2018-06-07T03:23:31Z 2018 Final Year Project (FYP) http://hdl.handle.net/10356/75684 en Nanyang Technological University 147 p. application/pdf
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic DRNTU::Engineering::Mechanical engineering
spellingShingle DRNTU::Engineering::Mechanical engineering
Chua, Keng Yong
Variable cross-sectional flow area for an enhanced thermo-hydraulic performance in microchannels
description Fins, protrusions, dimples, cavities are the common surface modifiers used in microchannels to augment its thermo-hydraulic performance passively. Among these surface modifiers, fins and protrusions have received the most attention because of its outstanding and promising heat transfer enhancement in both conventional channels and microchannels. However, a search in the literature revealed that V-shaped protrusions are only investigated in macro-sized channel with air as the working fluid. Therefore, the thermo-hydraulic performance of V-shaped protrusions in microchannels remains uncertain. Furthermore, significant effort has been placed into the geometrical parameters of the fins and protrusions with the view point of producing an optimal design with an efficient and effective thermo-hydraulic performance. Particularly, the cross-sectional flow area, that is affected by the protrusion height, has been identified as a key influence of the thermo-hydraulic performance. However, the thermo-hydraulic effect of variable cross-sectional flow area in enhanced microchannels has also yet to be explored. Therefore, the present study aims to investigate on the effect of V-shaped protrusions as well as the variable cross-sectional flow area in microchannels. A steady-state experimental and a three-dimensional numerical study are conducted in microchannels with single-walled V-shaped protrusions under three separate configurations: (a) uniform cross-sectional flow area, (b) contracted cross-sectional flow area and (c) expanded cross-sectional flow area. The average hydraulic diameters of the microchannels are kept constant at 600 µm for all three configurations. The purpose is to compare Darcy’s friction factor and Nusselt number between different configurations as well as to understand the thermo-hydraulic effects of variable cross-sectional flow area in microchannels. The study concluded that the V-shaped protrusions are effective heat transfer enhancers and the enhanced microchannel with expanded cross-sectional flow area has the highest thermo-hydraulic performance among all other experimented microchannels. The findings of the present studies carry the research a step closer to producing an optimal design for the future microchannel heat sink.
author2 Ooi Kim Tiow
author_facet Ooi Kim Tiow
Chua, Keng Yong
format Final Year Project
author Chua, Keng Yong
author_sort Chua, Keng Yong
title Variable cross-sectional flow area for an enhanced thermo-hydraulic performance in microchannels
title_short Variable cross-sectional flow area for an enhanced thermo-hydraulic performance in microchannels
title_full Variable cross-sectional flow area for an enhanced thermo-hydraulic performance in microchannels
title_fullStr Variable cross-sectional flow area for an enhanced thermo-hydraulic performance in microchannels
title_full_unstemmed Variable cross-sectional flow area for an enhanced thermo-hydraulic performance in microchannels
title_sort variable cross-sectional flow area for an enhanced thermo-hydraulic performance in microchannels
publishDate 2018
url http://hdl.handle.net/10356/75684
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