Enhanced dropwise condensation on heterogeneously hybrid patterned surfaces

Superhydrophilic and superhydrophobic hybrid (SSH) surfaces were developed to study the condensation heat transfer enhancement on copper substrates. The synergistic combination of superhydrophobic and superhydrophilic surfaces is conducive to enhancing droplet nucleation rate, well-controlled coales...

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Main Authors: Hai Wang, Xin Zhao, Junfeng Wang, Zhentao Wang, Dongbao Wang, Jiameng Tian
Format: Article
Language:English
Published: Elsevier 2021-10-01
Series:Case Studies in Thermal Engineering
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S2214157X21004822
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spelling doaj-0a27f94a11a848c9aa3c8529082bb6172021-09-03T04:45:39ZengElsevierCase Studies in Thermal Engineering2214-157X2021-10-0127101319Enhanced dropwise condensation on heterogeneously hybrid patterned surfacesHai Wang0Xin Zhao1Junfeng Wang2Zhentao Wang3Dongbao Wang4Jiameng Tian5School of Energy and Power Engineering, Jiangsu University, Zhenjiang, Jiangsu, 212013, ChinaSchool of Energy and Power Engineering, Jiangsu University, Zhenjiang, Jiangsu, 212013, ChinaCorresponding author.; School of Energy and Power Engineering, Jiangsu University, Zhenjiang, Jiangsu, 212013, ChinaSchool of Energy and Power Engineering, Jiangsu University, Zhenjiang, Jiangsu, 212013, ChinaSchool of Energy and Power Engineering, Jiangsu University, Zhenjiang, Jiangsu, 212013, ChinaSchool of Energy and Power Engineering, Jiangsu University, Zhenjiang, Jiangsu, 212013, ChinaSuperhydrophilic and superhydrophobic hybrid (SSH) surfaces were developed to study the condensation heat transfer enhancement on copper substrates. The synergistic combination of superhydrophobic and superhydrophilic surfaces is conducive to enhancing droplet nucleation rate, well-controlled coalescence and efficient condensate removal. Three types of superhydrophilic and superhydrophobic hybrid surfaces were investigated, having pattern spacing (the distance between two superhydrophilic regions) of 300 μm, 600 μm, and 600 μm, and corresponding pattern dimensions of 600 × 600 μm2,600 × 600 μm2, and 800 × 800 μm2, named as SSH-1, SSH-2, and SSH-3, respectively. The experimental results revealed condensation heat transfer performance of hybrid surfaces outperformed than that of conventional complete superhydrophobic surface. The SSH-2 surface had the largest heat transfer coefficient under the entire range of surface subcooling. At a surface subcooling of 7.1 K, heat transfer coefficient of SSH-2 surface was 1.1 and 1.3 times than that of SSH-3 and SSH-1 surfaces, respectively. Pattern spacing could produce significant influence on the heat transfer performance of hybrid surfaces in relative to the influence of pattern dimension. Compared with complete superhydrophobic surface, the heat flux of SSH-2 surface was enhanced up to 31–73%.http://www.sciencedirect.com/science/article/pii/S2214157X21004822Superhydrophilic/superhydrophobic hybrid surfaceHeat transfer enhancementDropwise condensationDroplet dynamicsHeterogeneous wettability
collection DOAJ
language English
format Article
sources DOAJ
author Hai Wang
Xin Zhao
Junfeng Wang
Zhentao Wang
Dongbao Wang
Jiameng Tian
spellingShingle Hai Wang
Xin Zhao
Junfeng Wang
Zhentao Wang
Dongbao Wang
Jiameng Tian
Enhanced dropwise condensation on heterogeneously hybrid patterned surfaces
Case Studies in Thermal Engineering
Superhydrophilic/superhydrophobic hybrid surface
Heat transfer enhancement
Dropwise condensation
Droplet dynamics
Heterogeneous wettability
author_facet Hai Wang
Xin Zhao
Junfeng Wang
Zhentao Wang
Dongbao Wang
Jiameng Tian
author_sort Hai Wang
title Enhanced dropwise condensation on heterogeneously hybrid patterned surfaces
title_short Enhanced dropwise condensation on heterogeneously hybrid patterned surfaces
title_full Enhanced dropwise condensation on heterogeneously hybrid patterned surfaces
title_fullStr Enhanced dropwise condensation on heterogeneously hybrid patterned surfaces
title_full_unstemmed Enhanced dropwise condensation on heterogeneously hybrid patterned surfaces
title_sort enhanced dropwise condensation on heterogeneously hybrid patterned surfaces
publisher Elsevier
series Case Studies in Thermal Engineering
issn 2214-157X
publishDate 2021-10-01
description Superhydrophilic and superhydrophobic hybrid (SSH) surfaces were developed to study the condensation heat transfer enhancement on copper substrates. The synergistic combination of superhydrophobic and superhydrophilic surfaces is conducive to enhancing droplet nucleation rate, well-controlled coalescence and efficient condensate removal. Three types of superhydrophilic and superhydrophobic hybrid surfaces were investigated, having pattern spacing (the distance between two superhydrophilic regions) of 300 μm, 600 μm, and 600 μm, and corresponding pattern dimensions of 600 × 600 μm2,600 × 600 μm2, and 800 × 800 μm2, named as SSH-1, SSH-2, and SSH-3, respectively. The experimental results revealed condensation heat transfer performance of hybrid surfaces outperformed than that of conventional complete superhydrophobic surface. The SSH-2 surface had the largest heat transfer coefficient under the entire range of surface subcooling. At a surface subcooling of 7.1 K, heat transfer coefficient of SSH-2 surface was 1.1 and 1.3 times than that of SSH-3 and SSH-1 surfaces, respectively. Pattern spacing could produce significant influence on the heat transfer performance of hybrid surfaces in relative to the influence of pattern dimension. Compared with complete superhydrophobic surface, the heat flux of SSH-2 surface was enhanced up to 31–73%.
topic Superhydrophilic/superhydrophobic hybrid surface
Heat transfer enhancement
Dropwise condensation
Droplet dynamics
Heterogeneous wettability
url http://www.sciencedirect.com/science/article/pii/S2214157X21004822
work_keys_str_mv AT haiwang enhanceddropwisecondensationonheterogeneouslyhybridpatternedsurfaces
AT xinzhao enhanceddropwisecondensationonheterogeneouslyhybridpatternedsurfaces
AT junfengwang enhanceddropwisecondensationonheterogeneouslyhybridpatternedsurfaces
AT zhentaowang enhanceddropwisecondensationonheterogeneouslyhybridpatternedsurfaces
AT dongbaowang enhanceddropwisecondensationonheterogeneouslyhybridpatternedsurfaces
AT jiamengtian enhanceddropwisecondensationonheterogeneouslyhybridpatternedsurfaces
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