Abstract
AbstractIce accretion causes problems in vital industries and has been addressed over the past decades with either passive or active de-icing systems. This work presents a smart, hybrid (passive and active) de-icing system through the combination of a low interfacial toughness coating, printed circuit board heaters, and an ice-detecting microwave sensor. The coating’s interfacial toughness with ice is found to be temperature dependent and can be modulated using the embedded heaters. Accordingly, de-icing is realized without melting the interface. The synergistic combination of the low interfacial toughness coating and periodic heaters results in a greater de-icing power density than a full-coverage heater system. The hybrid de-icing system also shows durability towards repeated icing/de-icing, mechanical abrasion, outdoor exposure, and chemical contamination. A non-contact planar microwave resonator sensor is additionally designed and implemented to precisely detect the presence or absence of water or ice on the surface while operating beneath the coating, further enhancing the system’s energy efficiency. Scalability of the smart coating is demonstrated using large (up to 1 m) iced interfaces. Overall, the smart hybrid system designed here offers a paradigm shift in de-icing that can efficiently render a surface ice-free without the need for energetically expensive interface melting.
Funder
Canada Foundation for Innovation
Publisher
Springer Science and Business Media LLC
Subject
General Physics and Astronomy,General Biochemistry, Genetics and Molecular Biology,General Chemistry,Multidisciplinary
Reference67 articles.
1. Wang, Z. Recent progress on ultrasonic de-icing technique used for wind power generation, high-voltage transmission line and aircraft. Energy Build. 140, 42–49 (2017).
2. Zhang, Y., Chen, L. & Liu, H. Study on ice adhesion of composite anti-/deicing component under heating condition. Adv. Compos. Lett. 29, 1–10 (2020).
3. Frankenstein, S. & Tuthill, A. M. Ice adhesion to locks and dams: past work; future directions? J. Cold Reg. Eng. 16, 83–96 (2002).
4. Zhu, C. X., Wang, Y., Zhao, N., Zhu, C. L. & Liu, C. Y. Numerical simulation and experimental verification of the airfoil electrothermal deicing system performance. J. Chinese Inst. Eng. Trans. Chinese Inst. Eng. A 44, 608–617 (2021).
5. Laforte, J. L., Allaire, M. A. & Laflamme, J. State-of-the-art on power line de-icing. Atmos. Res. 46, 143–158 (1998).
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