Zugriffsnummer 54518
Dokumenttyp Zeitschriftenartikel Open Access Hybrid
Peer Review mit Peer Review
Sprache Englisch
Titel Mechanisms of de‐icing by surface rayleigh and plate lamb acoustic waves
Autor(in); Institution
Pandey, Shilpi; Leibniz IFW Dresden, SAWLab Saxony, Institute for Emerging Electronic Technologies (IET), Group "Acoustic Microsystems", Dresden, GERMANY; Technical University of Munich (TUM), School of Computation, Information and Technology, Munich, GERMANY
Del Moral, Jaime; Materials Science Institute of Seville, Consejo Superior de Investigaciones Científicas (CSIC), Sevilla, SPAIN
Jacob, Stefan; 1.02, Gruppe Infraschall, PTB-Braunschweig; Leibniz IFW Dresden, SAWLab Saxony, Institute for Emerging Electronic Technologies (IET), Group "Acoustic Microsystems", Dresden, GERMANY
Montes, Laura; Materials Science Institute of Seville, Consejo Superior de Investigaciones Científicas (CSIC), Sevilla, SPAIN
Gil‐Rostra, Jorge; Materials Science Institute of Seville, Consejo Superior de Investigaciones Científicas (CSIC), Sevilla, SPAIN
Frechilla, Alejandro; Universidad de Zaragoza, Instituto de Nanociencia y Materiales de Aragón (INMA), Zaragoza, SPAIN
Karimzadeh, Atefeh; Leibniz IFW Dresden, SAWLab Saxony, Institute for Emerging Electronic Technologies (IET), Group "Acoustic Microsystems", Dresden, GERMANY
Rico, Victor J.; Materials Science Institute of Seville, Consejo Superior de Investigaciones Científicas (CSIC), Sevilla, SPAIN
Kanter, Raul; Tampere University, Faculty of Engineering and Natural Sciences, Materials Science and Environmental Engineering, Tampere, FINLAND
Kandelin, Niklas; Tampere University, Faculty of Engineering and Natural Sciences, Materials Science and Environmental Engineering, Tampere, FINLAND
Lopez‐Santos, Carmen; Materials Science Institute of Seville, Consejo Superior de Investigaciones Científicas (CSIC), Sevilla, SPAIN
Koivuluoto, Heli; Tampere University, Faculty of Engineering and Natural Sciences, Materials Science and Environmental Engineering, Tampere, FINLAND
Angurel, Luis; Universidad de Zaragoza, Instituto de Nanociencia y Materiales de Aragón (INMA), Zaragoza, SPAIN
Winkler, Andreas; Leibniz IFW Dresden, SAWLab Saxony, Institute for Emerging Electronic Technologies (IET), Group "Acoustic Microsystems", Dresden, GERMANY
Borras, Ana; Materials Science Institute of Seville, Consejo Superior de Investigaciones Científicas (CSIC), Sevilla, SPAIN
Gonzalez‐Elipe, Agustin R.; Materials Science Institute of Seville, Consejo Superior de Investigaciones Científicas (CSIC), Sevilla, SPAIN
Quelle/Jahr Advanced Engineering Materials: 27 (2025), 13, 1 - 16
Artikelnummer 2401820
ISSN 1438-1656 (print) ; 1527-2648 (online)
DOI
URL
Verlag Weinheim: Wiley
Zusammenfassung Acoustic waves (AW) have recently emerged as an energy‐efficient ice‐removal procedure compatible with functional and industrial‐relevant substrates. However, critical aspects at fundamental and experimental levels have yet to be disclosed to optimize their operational conditions. Identifying the processes and mechanisms by which different types of AWs induce de‐icing are some of these issues. Herein, using model LiNbO3 systems and two types of interdigitated transducers, the e‐icing and anti‐icing efficiencies and mechanisms driven by Rayleigh surface acoustic waves (R‐SAW) and Lamb waves with 120 and 510 μm wavelengths, respectively, are analyzed. Through the experimental analysis of de‐icing and active anti‐icing processes and the finite element simulation of the AW generation, propagation, and interaction with small ice aggregates, it is disclosed that Lamb waves are more favorable than R‐SAWs to induce de‐icing and/or prevent the freezing of small ice droplets. Prospects for applications of this study are supported by proof of concept experiments, including de‐icing in an icing wind tunnel, demonstrating that Lamb waves can efficiently remove ice layers covering large LN substrates. Results indicate that the de‐icing mechanism may differ for Lamb waves or R‐SAWs and that the wavelength must be considered as an important parameter for controlling the efficiency.
Kostenfreier Zugang Open Access Hybrid
Rechteinformation CC BY-NC-ND 4.0 ; Creative Commons Attribution NonCommercial NoDerivatives 4.0 License
Themenbereich der Metrologie Akustik, Ultraschall, Beschleunigung
Geschäftsfelder Grundlagen der Metrologie
Förderinformationen (1) Förderername: Ministerio de Ciencia e Innovación, Agencia Estatal de Investigación (MCIN/AEI)
Förderer ID Typ: ISNI
Förderprogramm: PID2022-143120OB-I00
Förderinformationen (2) Förderername: Ministerio de Ciencia e Innovación, Agencia Estatal de Investigación (MCIN/AEI)
Förderprogramm: TED2021-130916B-I00
Förderinformationen (3) Förderername: European Commission (EC)
Förderer ID: 0000 0001 2242 8989
Förderer ID Typ: ISNI
Förderprogramm: ERDF (FEDER)
Titel der Förderung: A way of making Europe, Fondos NextgenerationEU, and Plan de Recuperación, Transformación y Resiliencia.
Förderinformationen (4) Förderername: European Commission (EC)
Förderer ID: 0000 0001 2242 8989
Förderer ID Typ: ISNI
Förderprogramm: EU H2020 Programme
Titel der Förderung: FETOPEN-01-2018-2019-2020 SOUNDofICE
Förderungsnummer: 899352

Zitierung

Pandey, S., Del Moral, J., Jacob, S., Montes, L., Gil‐Rostra, J., Frechilla, A., Karimzadeh, A., Rico, V. J., Kanter, R., Kandelin, N., Lopez‐Santos, C., Koivuluoto, H., Angurel, L., Winkler, A., Borras, A., & Gonzalez‐Elipe, A. R. (2025). Mechanisms of de‐icing by surface rayleigh and plate lamb acoustic waves. Advanced Engineering Materials, 27(13), 1–16. https://doi.org/10.1002/adem.202401820

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