A Holistic Solution to Icing by Acoustic Waves: De‐Icing, Active Anti‐Icing, Sensing with Piezoelectric Crystals, and Synergy with Thin Film Passive Anti‐Icing Solutions

Author:

del Moral Jaime1,Montes Laura1,Rico‐Gavira Victor Joaquin1ORCID,López‐Santos Carmen12ORCID,Jacob Stefan3,Oliva‐Ramirez Manuel14ORCID,Gil‐Rostra Jorge1ORCID,Fakhfouri Armaghan3,Pandey Shilpi3,Gonzalez del Val Miguel5,Mora Julio5,García‐Gallego Paloma5,Ibáñez‐Ibáñez Pablo Francisco6,Rodríguez‐Valverde Miguel Angel6,Winkler Andreas3,Borrás Ana1ORCID,González‐Elipe Agustin Rodriguez1ORCID

Affiliation:

1. Nanotechnology on Surfaces and Plasma Lab Materials Science Institute of Seville (CSIC‐US) c/ Américo Vespucio 49 41092 Seville Spain

2. Departamento de Física Aplicada I, Escuela Politécnica Superior Universidad de Sevilla C/ Virgen de Africa 7 41011 Seville Spain

3. Leibniz IFW Dresden SAWLab Saxony Helmholtzstr. 20 01069 Dresden Germany

4. Departamento de Física Atómica Molecular y Nuclear Avd. Reina Mercedes s/n 41012 Seville Spain

5. National Institute for Aerospace Technology (INTA) Ctra. Ajalvir km. 4 Torrejón de Ardoz 28850 Spain

6. Departamento de Física Aplicada Universidad de Granada Avd. de Fuente Nueva s/n 18002 Granada Spain

Abstract

AbstractIcing has become a hot topic both in academia and in the industry given its implications in transport, wind turbines, photovoltaics, and telecommunications. Recently proposed de‐icing solutions involving the propagation of acoustic waves (AWs) at suitable substrates may open the path for a sustainable alternative to standard de‐icing or anti‐icing procedures. Herein, the fundamental interactions are unraveled that contribute to the de‐icing and/or hinder the icing on AW‐activated substrates. The response toward icing of a reliable model system consisting of a piezoelectric plate activated by extended electrodes is characterized at a laboratory scale and in an icing wind tunnel under realistic conditions. Experiments show that surface modification with anti‐icing functionalities provides a synergistic response when activated with AWs. A thoughtful analysis of the resonance frequency dependence on experimental variables such as temperature, ice formation, or wind velocity demonstrates the application of AW devices for real‐time monitoring of icing processes.

Funder

European Commission

Publisher

Wiley

Subject

Electrochemistry,Condensed Matter Physics,Biomaterials,Electronic, Optical and Magnetic Materials

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