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
Metadatos
Mostrar el registro completo del ítemEditorial
Wiley
Materia
Acoustic waves De-icing Freezing delay Ice monitoring Ice-adhesion PFOTES ZnO
Fecha
2023-01-31Referencia bibliográfica
del Moral, J... [et al.]. 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. Adv. Funct. Mater. 2023, 2209421. [https://doi.org/10.1002/adfm.202209421]
Patrocinador
ERDF (FEDER) A way of making Europe PID2019-110430GB-C21 PID2019-109603RA-I00 PID2020-112620GB-I00 MCIN/AEI/10.13039/501100011033; European Commission EU H2020 program 899352Resumen
Icing 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.