Numerical study on flow and thermal characteristics of a micro-channel separated heat pipe under various surface wettability

This paper aims to investigate the influences of surface wettability under different contact angles on the thermal and flow characteristics of the refrigerant inside the evaporator of a micro-channel separate heat pipe (MCSHP). The outside louvered fins were simplified by an empirical model, and the...

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Main Authors: Chang Yue, Quan Zhang, Zhiqiang Zhai, Jiaqiang Wang, Li Ling
Format: Article
Language:English
Published: Elsevier 2021-12-01
Series:Case Studies in Thermal Engineering
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S2214157X21005086
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spelling doaj-c51a2f5be9c348acbf1e13d3e6911a5d2021-08-26T04:34:00ZengElsevierCase Studies in Thermal Engineering2214-157X2021-12-0128101345Numerical study on flow and thermal characteristics of a micro-channel separated heat pipe under various surface wettabilityChang Yue0Quan Zhang1Zhiqiang Zhai2Jiaqiang Wang3Li Ling4School of Energy Science and Engineering, Central South University, Changsha, Hunan, 410083, ChinaCollege of Civil Engineering, Hunan University, Changsha, Hunan, 410082, China; Corresponding author.Department of Civil, Environmental and Architectural Engineering, University of Colorado at Boulder, USASchool of Energy Science and Engineering, Central South University, Changsha, Hunan, 410083, ChinaCollege of Civil Engineering, Hunan University of Technology, Changsha, Hunan, 412007, ChinaThis paper aims to investigate the influences of surface wettability under different contact angles on the thermal and flow characteristics of the refrigerant inside the evaporator of a micro-channel separate heat pipe (MCSHP). The outside louvered fins were simplified by an empirical model, and the inside refrigerant flow and heat transfer behavior was simulated by CFD. The simulation results were validated by previous experimental data. In the hydrophilic channels, there was lubricating liquid film between bubbles and wall surface, while the bubbles in the hydrophobic channels were more likely to contact with wall directly. The heat transfer rate, fluid velocity and initial nucleate spot decreased with the increase of contact angle. And the temperature and liquid fraction distribution along the X and Y axis also varied with contact angle. It could be concluded that hydrophilic surface could enhance the heat transfer rate, while hydrophobic surface could accelerate bubble nucleation. These results may have benefits on the optimization of the design and material selection of MCSHP.http://www.sciencedirect.com/science/article/pii/S2214157X21005086Micro-channel separate heat pipeComputational fluid dynamics (CFD)Surface wettabilityThermal characteristicsFlow characteristics
collection DOAJ
language English
format Article
sources DOAJ
author Chang Yue
Quan Zhang
Zhiqiang Zhai
Jiaqiang Wang
Li Ling
spellingShingle Chang Yue
Quan Zhang
Zhiqiang Zhai
Jiaqiang Wang
Li Ling
Numerical study on flow and thermal characteristics of a micro-channel separated heat pipe under various surface wettability
Case Studies in Thermal Engineering
Micro-channel separate heat pipe
Computational fluid dynamics (CFD)
Surface wettability
Thermal characteristics
Flow characteristics
author_facet Chang Yue
Quan Zhang
Zhiqiang Zhai
Jiaqiang Wang
Li Ling
author_sort Chang Yue
title Numerical study on flow and thermal characteristics of a micro-channel separated heat pipe under various surface wettability
title_short Numerical study on flow and thermal characteristics of a micro-channel separated heat pipe under various surface wettability
title_full Numerical study on flow and thermal characteristics of a micro-channel separated heat pipe under various surface wettability
title_fullStr Numerical study on flow and thermal characteristics of a micro-channel separated heat pipe under various surface wettability
title_full_unstemmed Numerical study on flow and thermal characteristics of a micro-channel separated heat pipe under various surface wettability
title_sort numerical study on flow and thermal characteristics of a micro-channel separated heat pipe under various surface wettability
publisher Elsevier
series Case Studies in Thermal Engineering
issn 2214-157X
publishDate 2021-12-01
description This paper aims to investigate the influences of surface wettability under different contact angles on the thermal and flow characteristics of the refrigerant inside the evaporator of a micro-channel separate heat pipe (MCSHP). The outside louvered fins were simplified by an empirical model, and the inside refrigerant flow and heat transfer behavior was simulated by CFD. The simulation results were validated by previous experimental data. In the hydrophilic channels, there was lubricating liquid film between bubbles and wall surface, while the bubbles in the hydrophobic channels were more likely to contact with wall directly. The heat transfer rate, fluid velocity and initial nucleate spot decreased with the increase of contact angle. And the temperature and liquid fraction distribution along the X and Y axis also varied with contact angle. It could be concluded that hydrophilic surface could enhance the heat transfer rate, while hydrophobic surface could accelerate bubble nucleation. These results may have benefits on the optimization of the design and material selection of MCSHP.
topic Micro-channel separate heat pipe
Computational fluid dynamics (CFD)
Surface wettability
Thermal characteristics
Flow characteristics
url http://www.sciencedirect.com/science/article/pii/S2214157X21005086
work_keys_str_mv AT changyue numericalstudyonflowandthermalcharacteristicsofamicrochannelseparatedheatpipeundervarioussurfacewettability
AT quanzhang numericalstudyonflowandthermalcharacteristicsofamicrochannelseparatedheatpipeundervarioussurfacewettability
AT zhiqiangzhai numericalstudyonflowandthermalcharacteristicsofamicrochannelseparatedheatpipeundervarioussurfacewettability
AT jiaqiangwang numericalstudyonflowandthermalcharacteristicsofamicrochannelseparatedheatpipeundervarioussurfacewettability
AT liling numericalstudyonflowandthermalcharacteristicsofamicrochannelseparatedheatpipeundervarioussurfacewettability
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