Analysis of Wetting Characteristics on Microstructured Hydrophobic Surfaces for the Passive Containment Cooling System
As the heat transfer surface in the passive containment cooling system, the anticorrosion coating (AC) of steel containment vessel (CV) must meet the requirements on heat transfer performance. One of the wall surface ACs with simple structure, high mechanical strength, and well hydrophobic character...
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2015-01-01
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Series: | Science and Technology of Nuclear Installations |
Online Access: | http://dx.doi.org/10.1155/2015/652731 |
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doaj-9f5c24a0ee384ac8b05ee4a0db2ffa8e2020-11-24T23:13:40ZengHindawi LimitedScience and Technology of Nuclear Installations1687-60751687-60832015-01-01201510.1155/2015/652731652731Analysis of Wetting Characteristics on Microstructured Hydrophobic Surfaces for the Passive Containment Cooling SystemWei Zhao0Xiang Zhang1Chunlai Tian2Zhan Gao3State Nuclear Power Technology Research & Development Center, Beijing 102209, ChinaState Nuclear Power Technology Research & Development Center, Beijing 102209, ChinaState Nuclear Power Technology Research & Development Center, Beijing 102209, ChinaState Nuclear Power Technology Research & Development Center, Beijing 102209, ChinaAs the heat transfer surface in the passive containment cooling system, the anticorrosion coating (AC) of steel containment vessel (CV) must meet the requirements on heat transfer performance. One of the wall surface ACs with simple structure, high mechanical strength, and well hydrophobic characteristics, which is conductive to form dropwise condensation, is significant for the heat removal of the CV. In this paper, the grooved structures on silicon wafers by lithographic methods are systematically prepared to investigate the effects of microstructures on the hydrophobic property of the surfaces. The results show that the hydrophobicity is dramatically improved in comparison with the conventional Wenzel and Cassie-Baxter model. In addition, the experimental results are successfully explained by the interface state effect. As a consequence, it is indicated that favorable hydrophobicity can be obtained even if the surface is with lower roughness and without any chemical modifications, which provides feasible solutions for improving the heat transfer performance of CV.http://dx.doi.org/10.1155/2015/652731 |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Wei Zhao Xiang Zhang Chunlai Tian Zhan Gao |
spellingShingle |
Wei Zhao Xiang Zhang Chunlai Tian Zhan Gao Analysis of Wetting Characteristics on Microstructured Hydrophobic Surfaces for the Passive Containment Cooling System Science and Technology of Nuclear Installations |
author_facet |
Wei Zhao Xiang Zhang Chunlai Tian Zhan Gao |
author_sort |
Wei Zhao |
title |
Analysis of Wetting Characteristics on Microstructured Hydrophobic Surfaces for the Passive Containment Cooling System |
title_short |
Analysis of Wetting Characteristics on Microstructured Hydrophobic Surfaces for the Passive Containment Cooling System |
title_full |
Analysis of Wetting Characteristics on Microstructured Hydrophobic Surfaces for the Passive Containment Cooling System |
title_fullStr |
Analysis of Wetting Characteristics on Microstructured Hydrophobic Surfaces for the Passive Containment Cooling System |
title_full_unstemmed |
Analysis of Wetting Characteristics on Microstructured Hydrophobic Surfaces for the Passive Containment Cooling System |
title_sort |
analysis of wetting characteristics on microstructured hydrophobic surfaces for the passive containment cooling system |
publisher |
Hindawi Limited |
series |
Science and Technology of Nuclear Installations |
issn |
1687-6075 1687-6083 |
publishDate |
2015-01-01 |
description |
As the heat transfer surface in the passive containment cooling system, the anticorrosion coating (AC) of steel containment vessel (CV) must meet the requirements on heat transfer performance. One of the wall surface ACs with simple structure, high mechanical strength, and well hydrophobic characteristics, which is conductive to form dropwise condensation, is significant for the heat removal of the CV. In this paper, the grooved structures on silicon wafers by lithographic methods are systematically prepared to investigate the effects of microstructures on the hydrophobic property of the surfaces. The results show that the hydrophobicity is dramatically improved in comparison with the conventional Wenzel and Cassie-Baxter model. In addition, the experimental results are successfully explained by the interface state effect. As a consequence, it is indicated that favorable hydrophobicity can be obtained even if the surface is with lower roughness and without any chemical modifications, which provides feasible solutions for improving the heat transfer performance of CV. |
url |
http://dx.doi.org/10.1155/2015/652731 |
work_keys_str_mv |
AT weizhao analysisofwettingcharacteristicsonmicrostructuredhydrophobicsurfacesforthepassivecontainmentcoolingsystem AT xiangzhang analysisofwettingcharacteristicsonmicrostructuredhydrophobicsurfacesforthepassivecontainmentcoolingsystem AT chunlaitian analysisofwettingcharacteristicsonmicrostructuredhydrophobicsurfacesforthepassivecontainmentcoolingsystem AT zhangao analysisofwettingcharacteristicsonmicrostructuredhydrophobicsurfacesforthepassivecontainmentcoolingsystem |
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1725597370993868800 |