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Energy saving strategy for the development of icephobic coatings and surfaces

Zheng, Yan; Wang, Jie; Liu, Junpeng; Choi, Kwing-So; Hou, Xianghui

Energy saving strategy for the development of icephobic coatings and surfaces Thumbnail


Authors

Yan Zheng

Jie Wang

Junpeng Liu

KWING-SO CHOI kwing-so.choi@nottingham.ac.uk
Professor of Fluid Mechanics

Xianghui Hou



Abstract

Aircraft are frequently exposed to cold environments and ice accumulation on aircraft surface may lead to catastrophic accidents. An effective solution of ice protection is a critical requirement in the aerospace industry. For the research and development of icephobic coatings, the current coating design target mainly focuses on lowering the ice adhesion strength between the ice and the surface. However, as a passive ice protection approach, the use of icephobic coating often has to be combined with an active ice protection solution (e.g. electro-thermal heating, hot air bleeding, and vibration, etc.), especially for the in-flight application where the reliability of ice protection must be ensured. Therefore, ice adhesion strength is no longer the sole criterion to evaluate the icephobic performance of a coating or a surface. It is a need to establish a more practical strategy for the design of icephobic coatings and surface. In this work, an energy saving strategy is proposed to assess the de-icing performance of the icephobic coating and surface when active heating is involved. The energy consumed for the de-icing operation assisted by the ice gravity is used as the key criterion for the overall performance of icephobic coating and surface. Successful validation has been achieved for evaluating the de-icing performance of selected coatings and surfaces, which demonstrates an alternative strategy for the design and practical application of icephobic coatings and surfaces in ice protection.

Citation

Zheng, Y., Wang, J., Liu, J., Choi, K., & Hou, X. (2019). Energy saving strategy for the development of icephobic coatings and surfaces. Thin Solid Films, 687, Article 137458. https://doi.org/10.1016/j.tsf.2019.137458

Journal Article Type Article
Acceptance Date Jul 13, 2019
Online Publication Date Aug 3, 2019
Publication Date Oct 1, 2019
Deposit Date Aug 20, 2019
Publicly Available Date Aug 4, 2020
Journal Thin Solid Films
Print ISSN 0040-6090
Publisher Elsevier
Peer Reviewed Peer Reviewed
Volume 687
Article Number 137458
DOI https://doi.org/10.1016/j.tsf.2019.137458
Keywords Materials Chemistry; Electronic, Optical and Magnetic Materials; Surfaces, Coatings and Films; Surfaces and Interfaces; Metals and Alloys
Public URL https://nottingham-repository.worktribe.com/output/2394884
Publisher URL https://www.sciencedirect.com/science/article/pii/S0040609019304869?via%3Dihub

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