Heat transfer model based on diffusion layer theory for dropwise condensation with high non-condensable gas

A new heat-transfer model for dropwise condensation with non-condensable gas (NCG) is developed, which can be used in the design and calculations of a dehumidifier in humidification–dehumidification technology. A single-droplet heat-transfer model is established via the rounded analysis of all the c...

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Main Authors: Weihong Liu, Xiang Ling
Format: Article
Language:English
Published: AIP Publishing LLC 2020-12-01
Series:AIP Advances
Online Access:http://dx.doi.org/10.1063/5.0023552
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spelling doaj-63918758d3b04e619170b00d64d242ec2021-01-05T15:00:07ZengAIP Publishing LLCAIP Advances2158-32262020-12-011012125305125305-1410.1063/5.0023552Heat transfer model based on diffusion layer theory for dropwise condensation with high non-condensable gasWeihong Liu0Xiang Ling1School of Mechanical and Power Engineering, Nanjing Tech University, No. 30 Puzhu South Road, Nanjing 211816, People’s Republic of ChinaSchool of Mechanical and Power Engineering, Nanjing Tech University, No. 30 Puzhu South Road, Nanjing 211816, People’s Republic of ChinaA new heat-transfer model for dropwise condensation with non-condensable gas (NCG) is developed, which can be used in the design and calculations of a dehumidifier in humidification–dehumidification technology. A single-droplet heat-transfer model is established via the rounded analysis of all the contributing thermal resistances based on the diffusion-layer theory. Combined with the drop size distribution, the heat flux of dropwise condensation with NCG is determined, and the error between the predicted results and previous experimental data is found to be within ±20%. The effects of different parameters on the heat transfer of dropwise condensation with NCG are investigated, and the results indicate that there is an optimal contact angle to maximize the heat flux, which depends on the NCG content. The thickness of the coating layer has little effect on the heat flux at a given thermal conductivity of the coating layer, indicating that the dropwise condensation effect can be improved by increasing the thickness of the coating layer, neglecting the heat-transfer deterioration due to the additional thermal resistance during dropwise condensation with NCG.http://dx.doi.org/10.1063/5.0023552
collection DOAJ
language English
format Article
sources DOAJ
author Weihong Liu
Xiang Ling
spellingShingle Weihong Liu
Xiang Ling
Heat transfer model based on diffusion layer theory for dropwise condensation with high non-condensable gas
AIP Advances
author_facet Weihong Liu
Xiang Ling
author_sort Weihong Liu
title Heat transfer model based on diffusion layer theory for dropwise condensation with high non-condensable gas
title_short Heat transfer model based on diffusion layer theory for dropwise condensation with high non-condensable gas
title_full Heat transfer model based on diffusion layer theory for dropwise condensation with high non-condensable gas
title_fullStr Heat transfer model based on diffusion layer theory for dropwise condensation with high non-condensable gas
title_full_unstemmed Heat transfer model based on diffusion layer theory for dropwise condensation with high non-condensable gas
title_sort heat transfer model based on diffusion layer theory for dropwise condensation with high non-condensable gas
publisher AIP Publishing LLC
series AIP Advances
issn 2158-3226
publishDate 2020-12-01
description A new heat-transfer model for dropwise condensation with non-condensable gas (NCG) is developed, which can be used in the design and calculations of a dehumidifier in humidification–dehumidification technology. A single-droplet heat-transfer model is established via the rounded analysis of all the contributing thermal resistances based on the diffusion-layer theory. Combined with the drop size distribution, the heat flux of dropwise condensation with NCG is determined, and the error between the predicted results and previous experimental data is found to be within ±20%. The effects of different parameters on the heat transfer of dropwise condensation with NCG are investigated, and the results indicate that there is an optimal contact angle to maximize the heat flux, which depends on the NCG content. The thickness of the coating layer has little effect on the heat flux at a given thermal conductivity of the coating layer, indicating that the dropwise condensation effect can be improved by increasing the thickness of the coating layer, neglecting the heat-transfer deterioration due to the additional thermal resistance during dropwise condensation with NCG.
url http://dx.doi.org/10.1063/5.0023552
work_keys_str_mv AT weihongliu heattransfermodelbasedondiffusionlayertheoryfordropwisecondensationwithhighnoncondensablegas
AT xiangling heattransfermodelbasedondiffusionlayertheoryfordropwisecondensationwithhighnoncondensablegas
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