Dynamic mitigation mechanisms of rime icing with propagating surface acoustic waves

Yang, Deyu, Haworth, Luke, Agrawal, Prashant, Tao, Ran, McHale, Glen, Torun, Hamdi, Martin, James, Luo, Jingting, Hou, Xianghui and Fu, Yong Qing (2022) Dynamic mitigation mechanisms of rime icing with propagating surface acoustic waves. Langmuir, 38 (37). pp. 11314-11323. ISSN 0743-7463

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Official URL: https://doi.org/10.1021/acs.langmuir.2c01509

Abstract

Ice accretion on economically valuable and strategically important surfaces poses significant challenges. Current anti-/de-icing techniques often have critical issues regarding their efficiency, convenience, long-term stability, or sustainability. As an emerging ice mitigation strategy, the thin-film surface acoustic wave (SAW) has great potentials due to its high energy efficiency and effective integration on structural surfaces. However, anti-/de-icing processes activated by SAWs involve complex interfacial evolution and phase changes, and it is crucial to understand the nature of dynamic solid–liquid–vapor phase changes and ice nucleation, growth, and melting events under SAW agitation. In this study, we systematically investigated the accretion and removal of porous rime ice from structural surfaces activated by SAWs. We found that icing and de-icing processes are strongly linked with the dynamical interfacial phase and structure changes of rime ice under SAW activation and the acousto-thermally induced localized heating that facilitate the melting of ice crystals. Subsequently, interactions of SAWs with the formed thin water layer at the ice/structure interface result in significant streaming effects that lead to further damage and melting of ice, liquid pumping, jetting, or nebulization.

Item Type: Article
Additional Information: Funding informtion: This work was supported by the Engineering and Physical Sciences Research Council of UK (EPSRC EP/P018998/1), UK Fluids Network Special Interest Group of Acoustofluidics (EP/N032861/1), and EPSRC NetworkPlus in Digitalised Surface Manufacturing (EP/S036180/1).
Subjects: F100 Chemistry
H800 Chemical, Process and Energy Engineering
Department: Faculties > Engineering and Environment > Mathematics, Physics and Electrical Engineering
Faculties > Engineering and Environment > Mechanical and Construction Engineering
Depositing User: Elena Carlaw
Date Deposited: 30 Aug 2022 11:10
Last Modified: 26 Oct 2022 13:46
URI: https://nrl.northumbria.ac.uk/id/eprint/49979

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