Single-phase and two-phase heat transfer in microchannels

Microfluidics has attracted great attention over the last decade due to its characteristic supreme miniaturisation and low energy consumption as compared to macroscale fluid mechanics. Heat transfer is a crucial process in microfluidic systems and has a significant effect on flow behaviour. This the...

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Main Author: Xu, Bin
Other Authors: Nguyen Nam-Trung
Format: Theses and Dissertations
Language:English
Published: 2012
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Online Access:https://hdl.handle.net/10356/50869
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-508692023-03-11T17:45:41Z Single-phase and two-phase heat transfer in microchannels Xu, Bin Nguyen Nam-Trung Wong Teck Neng School of Mechanical and Aerospace Engineering DRNTU::Science::Physics::Heat and thermodynamics Microfluidics has attracted great attention over the last decade due to its characteristic supreme miniaturisation and low energy consumption as compared to macroscale fluid mechanics. Heat transfer is a crucial process in microfluidic systems and has a significant effect on flow behaviour. This thesis presents analytical and numerical models of single and two-phase heat transfer in microfluidic systems. Experiments were performed to validate these models. In a single-phase flow, experiments with different configurations including T-shaped, straight and H-shaped microchannels were performed. For the T-shaped microchannel, thermal mixing was investigated. A two dimensional analytical model was presented to describe the thermal mixing process in the microchannel. Experimental investigations on thermal mixing were performed to compare with the theoretical analysis. A three-dimensional numerical simulation was developed to investigate the thermal mixing process in the T-junction zone. The thermal effect on mass mixing was further studied. The effect of power input and flow rate were studied experimentally and numerically. For the straight microchannel, a thermal flow sensor was investigated experimentally and numerically. The operation mode of a constant heater temperature was considered in the experiment. A numerical simulation of conjugate forced convection-conduction heat transfer was employed to study fluid flow and heat transfer in the thermal flow sensor. For the H-shaped microchannel, a counter flow micro-heat exchanger (CFMHE) was investigated both theoretically and experimentally. A two-dimensional analytical model was developed to study the heat transfer processes in the CFMHE. Experiments were conducted with hot and cold fluids entering the microchannel with the same heat capacity rate. A new correlation for Nusselt number is proposed based on the experimental Reynolds number and Prandtl number. Good agreements between analytical, experimental and numerical results were obtained. DOCTOR OF PHILOSOPHY (MAE) 2012-12-07T07:23:21Z 2012-12-07T07:23:21Z 2012 2012 Thesis Xu, B. (2012). Single-phase and two-phase heat transfer in microchannels.Doctoral thesis, Nanyang Technological University, Singapore. https://hdl.handle.net/10356/50869 10.32657/10356/50869 en 232 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::Science::Physics::Heat and thermodynamics
spellingShingle DRNTU::Science::Physics::Heat and thermodynamics
Xu, Bin
Single-phase and two-phase heat transfer in microchannels
description Microfluidics has attracted great attention over the last decade due to its characteristic supreme miniaturisation and low energy consumption as compared to macroscale fluid mechanics. Heat transfer is a crucial process in microfluidic systems and has a significant effect on flow behaviour. This thesis presents analytical and numerical models of single and two-phase heat transfer in microfluidic systems. Experiments were performed to validate these models. In a single-phase flow, experiments with different configurations including T-shaped, straight and H-shaped microchannels were performed. For the T-shaped microchannel, thermal mixing was investigated. A two dimensional analytical model was presented to describe the thermal mixing process in the microchannel. Experimental investigations on thermal mixing were performed to compare with the theoretical analysis. A three-dimensional numerical simulation was developed to investigate the thermal mixing process in the T-junction zone. The thermal effect on mass mixing was further studied. The effect of power input and flow rate were studied experimentally and numerically. For the straight microchannel, a thermal flow sensor was investigated experimentally and numerically. The operation mode of a constant heater temperature was considered in the experiment. A numerical simulation of conjugate forced convection-conduction heat transfer was employed to study fluid flow and heat transfer in the thermal flow sensor. For the H-shaped microchannel, a counter flow micro-heat exchanger (CFMHE) was investigated both theoretically and experimentally. A two-dimensional analytical model was developed to study the heat transfer processes in the CFMHE. Experiments were conducted with hot and cold fluids entering the microchannel with the same heat capacity rate. A new correlation for Nusselt number is proposed based on the experimental Reynolds number and Prandtl number. Good agreements between analytical, experimental and numerical results were obtained.
author2 Nguyen Nam-Trung
author_facet Nguyen Nam-Trung
Xu, Bin
format Theses and Dissertations
author Xu, Bin
author_sort Xu, Bin
title Single-phase and two-phase heat transfer in microchannels
title_short Single-phase and two-phase heat transfer in microchannels
title_full Single-phase and two-phase heat transfer in microchannels
title_fullStr Single-phase and two-phase heat transfer in microchannels
title_full_unstemmed Single-phase and two-phase heat transfer in microchannels
title_sort single-phase and two-phase heat transfer in microchannels
publishDate 2012
url https://hdl.handle.net/10356/50869
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