LAPSE:2023.6688
Published Article

LAPSE:2023.6688
Research on Anti-Icing Performance of Graphene Photothermal Superhydrophobic Surface for Wind Turbine Blades
February 24, 2023
Abstract
In this study, graphene is used as a photothermal material, which is added to the SiO2 superhydrophobic solution treated with fluorine silane, and then sprayed on the copper plate surface to prepare a new type of photothermal superhydrophobic surface with contact angles up to 160.5° and 159.8°. Under the conditions of natural convection, the effects of photothermal superhydrophobic surfaces on droplet condensation, freezing, and frost growth are investigated in different environments. The results show that the photothermal superhydrophobic surface can not only delay the freezing of surface droplets, prolong the freezing time of droplets, and reduce the thickness of the frost layer, but also allow for the rapid removal of droplets under near-infrared (NIR) irradiation. If the droplet is irradiated by an infrared laser emitter while the cooling system is still turned on, the internal temperature of the droplet will always be higher than the crystallization temperature under the illumination intensity of 2 W/cm2, and the droplets will not freeze. With the extension of irradiation time, the droplet will evaporate, and the volume of the droplet will decrease. On the basis of summarizing and evaluating the study on the anti-icing performance of superhydrophobic surfaces and the properties of photothermal materials, a new research direction regarding the anti-icing of fan blade surfaces was established. This kind of surface combines the photothermal capabilities of light absorption materials with the micro- and nanostructure of the superhydrophobic surface to improve the anti-icing capability of wind turbine blade surfaces in difficult conditions.
In this study, graphene is used as a photothermal material, which is added to the SiO2 superhydrophobic solution treated with fluorine silane, and then sprayed on the copper plate surface to prepare a new type of photothermal superhydrophobic surface with contact angles up to 160.5° and 159.8°. Under the conditions of natural convection, the effects of photothermal superhydrophobic surfaces on droplet condensation, freezing, and frost growth are investigated in different environments. The results show that the photothermal superhydrophobic surface can not only delay the freezing of surface droplets, prolong the freezing time of droplets, and reduce the thickness of the frost layer, but also allow for the rapid removal of droplets under near-infrared (NIR) irradiation. If the droplet is irradiated by an infrared laser emitter while the cooling system is still turned on, the internal temperature of the droplet will always be higher than the crystallization temperature under the illumination intensity of 2 W/cm2, and the droplets will not freeze. With the extension of irradiation time, the droplet will evaporate, and the volume of the droplet will decrease. On the basis of summarizing and evaluating the study on the anti-icing performance of superhydrophobic surfaces and the properties of photothermal materials, a new research direction regarding the anti-icing of fan blade surfaces was established. This kind of surface combines the photothermal capabilities of light absorption materials with the micro- and nanostructure of the superhydrophobic surface to improve the anti-icing capability of wind turbine blade surfaces in difficult conditions.
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Keywords
de-icing/anti-icing, graphene, photothermal effect, superhydrophobic surfaces
Subject
Suggested Citation
Gou Y, Han J, Li Y, Qin Y, Li Q, Zhong X. Research on Anti-Icing Performance of Graphene Photothermal Superhydrophobic Surface for Wind Turbine Blades. (2023). LAPSE:2023.6688
Author Affiliations
Gou Y: College of Metallurgy and Energy, North China University of Technology, Tangshan 063210, China
Han J: College of Metallurgy and Energy, North China University of Technology, Tangshan 063210, China
Li Y: College of Metallurgy and Energy, North China University of Technology, Tangshan 063210, China
Qin Y: College of Metallurgy and Energy, North China University of Technology, Tangshan 063210, China
Li Q: Institute of Engineering Thermophysics, Chinese Academy of Sciences, Beijing 100190, China; Key Laboratory of Wind Energy Utilization, Chinese Academy of Sciences, Beijing 100190, China
Zhong X: Institute of Engineering Thermophysics, Chinese Academy of Sciences, Beijing 100190, China; Key Laboratory of Wind Energy Utilization, Chinese Academy of Sciences, Beijing 100190, China; Dalian National Laboratory for Clean Energy, Dalian 116023, China [ORCID]
Han J: College of Metallurgy and Energy, North China University of Technology, Tangshan 063210, China
Li Y: College of Metallurgy and Energy, North China University of Technology, Tangshan 063210, China
Qin Y: College of Metallurgy and Energy, North China University of Technology, Tangshan 063210, China
Li Q: Institute of Engineering Thermophysics, Chinese Academy of Sciences, Beijing 100190, China; Key Laboratory of Wind Energy Utilization, Chinese Academy of Sciences, Beijing 100190, China
Zhong X: Institute of Engineering Thermophysics, Chinese Academy of Sciences, Beijing 100190, China; Key Laboratory of Wind Energy Utilization, Chinese Academy of Sciences, Beijing 100190, China; Dalian National Laboratory for Clean Energy, Dalian 116023, China [ORCID]
Journal Name
Energies
Volume
16
Issue
1
First Page
408
Year
2022
Publication Date
2022-12-29
ISSN
1996-1073
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PII: en16010408, Publication Type: Journal Article
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LAPSE:2023.6688
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https://doi.org/10.3390/en16010408
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