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基于表面声波传播的覆冰动态减缓机制

Dynamic Mitigation Mechanisms of Rime Icing with Propagating Surface Acoustic Waves.

作者信息

Yang Deyu, Haworth Luke, Agrawal Prashant, Tao Ran, McHale Glen, Torun Hamdi, Martin James, Luo Jingting, Hou Xianghui, Fu YongQing

机构信息

Faculty of Engineering, University of Nottingham, Nottingham NG7 2RD, U.K.

Faculty of Engineering and Environment, Northumbria University, Newcastle upon Tyne NE1 8ST, U.K.

出版信息

Langmuir. 2022 Sep 20;38(37):11314-11323. doi: 10.1021/acs.langmuir.2c01509. Epub 2022 Sep 7.

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.

摘要

在具有经济价值和战略重要性的表面上结冰会带来重大挑战。当前的防冰/除冰技术在效率、便利性、长期稳定性或可持续性方面往往存在关键问题。作为一种新兴的防冰策略,薄膜表面声波(SAW)由于其高能效以及在结构表面上的有效集成而具有巨大潜力。然而,由表面声波激活的防冰/除冰过程涉及复杂的界面演化和相变,了解在表面声波搅动下动态固-液-气相变以及冰核形成、生长和融化事件的本质至关重要。在本研究中,我们系统地研究了表面声波激活的结构表面上多孔霜冰的积聚和去除。我们发现结冰和除冰过程与表面声波激活下霜冰的动态界面相和结构变化以及促进冰晶融化的声热诱导局部加热密切相关。随后,表面声波与冰/结构界面处形成的薄水层的相互作用会产生显著的流动效应,导致冰的进一步破坏和融化、液体泵送、喷射或雾化。

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