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<pubDate xmlns="http://apache.org/cocoon/i18n/2.1">Mon, 13 Jul 2026 05:47:57 GMT</pubDate>
<dc:date>2026-07-13T05:47:57Z</dc:date>
<item>
<title>Screen Printed Piezoelectric Transducers for Structural Health Monitoring of Curved Thick Composite Panels</title>
<link>http://hdl.handle.net/10985/27082</link>
<description>Screen Printed Piezoelectric Transducers for Structural Health Monitoring of Curved Thick Composite Panels
RÉBILLAT, Marc; PAUNIKAR, Shweta; GALANOPOULOS, George; WIRTH, Ingo; MONTEIRO, Eric; ZAROUCHAS, Dimitri; MECHBAL, Nazih
This research focuses on the development and experimental validation of a novel printed piezoelectric transducers&#13;
network employed on a foreign object damage panel substructure of an aircraft engine fan blade. The main goal of the&#13;
work is to leverage the screen printing technology to fabricate arrays of piezoelectric transducers and ultimately employ&#13;
these transducers for operations, enabling the development of structural health monitoring methods for the panel. The&#13;
printed transducer is made up of a piezoelectric layer sandwiched between two silver electrodes, each printed in a&#13;
controlled manner. Upon printing and drying of the layers, the transducers undergo polarization. The electromechanical&#13;
behaviour of the printed transducers, characterized using impedance measurements, exhibits high repeatability, thus&#13;
indicating its potential for large scale industrial deployment. Following this, it is demonstrated that the transducers&#13;
are capable of accurately sensing impact, which is one the most common yet critical sources of damage to an engine&#13;
fan blade. It is also shown that the printed transducers are able to detect acoustic emission events. The ability of the&#13;
printed transducers to actuate and sense guided wave signals over a range of ultrasonic frequencies is also demonstrated.&#13;
Furthermore, apart from the noticeable advantages of the non-intrusive nature, and negligible weight as compared&#13;
to their traditional ceramic counterparts, the printed piezoelectric transducers can potentially be integrated into the&#13;
manufacturing process in the future, and the presence of transducer arrays ensures the availability of other transducers&#13;
in case of an individual failure during service. This innovative printing technology for PZT transducer networks thus&#13;
holds signiﬁcant promise in bridging the gap between research advancements and the industrial implementation of SHM&#13;
technology.
</description>
<pubDate>Tue, 01 Apr 2025 00:00:00 GMT</pubDate>
<guid isPermaLink="false">http://hdl.handle.net/10985/27082</guid>
<dc:date>2025-04-01T00:00:00Z</dc:date>
<dc:creator>RÉBILLAT, Marc</dc:creator>
<dc:creator>PAUNIKAR, Shweta</dc:creator>
<dc:creator>GALANOPOULOS, George</dc:creator>
<dc:creator>WIRTH, Ingo</dc:creator>
<dc:creator>MONTEIRO, Eric</dc:creator>
<dc:creator>ZAROUCHAS, Dimitri</dc:creator>
<dc:creator>MECHBAL, Nazih</dc:creator>
<dc:description>This research focuses on the development and experimental validation of a novel printed piezoelectric transducers&#13;
network employed on a foreign object damage panel substructure of an aircraft engine fan blade. The main goal of the&#13;
work is to leverage the screen printing technology to fabricate arrays of piezoelectric transducers and ultimately employ&#13;
these transducers for operations, enabling the development of structural health monitoring methods for the panel. The&#13;
printed transducer is made up of a piezoelectric layer sandwiched between two silver electrodes, each printed in a&#13;
controlled manner. Upon printing and drying of the layers, the transducers undergo polarization. The electromechanical&#13;
behaviour of the printed transducers, characterized using impedance measurements, exhibits high repeatability, thus&#13;
indicating its potential for large scale industrial deployment. Following this, it is demonstrated that the transducers&#13;
are capable of accurately sensing impact, which is one the most common yet critical sources of damage to an engine&#13;
fan blade. It is also shown that the printed transducers are able to detect acoustic emission events. The ability of the&#13;
printed transducers to actuate and sense guided wave signals over a range of ultrasonic frequencies is also demonstrated.&#13;
Furthermore, apart from the noticeable advantages of the non-intrusive nature, and negligible weight as compared&#13;
to their traditional ceramic counterparts, the printed piezoelectric transducers can potentially be integrated into the&#13;
manufacturing process in the future, and the presence of transducer arrays ensures the availability of other transducers&#13;
in case of an individual failure during service. This innovative printing technology for PZT transducer networks thus&#13;
holds signiﬁcant promise in bridging the gap between research advancements and the industrial implementation of SHM&#13;
technology.</dc:description>
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