Chemie und Prozesstechnik
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Commercially available air-coupled transducers applied in non-destructive testing consist of a piezocomposite material and matching layers to reduce the impedance mismatch between the transducer and air. This contribution is an overview of innovative approaches using new piezoelectric materials and other physical principles to transmit and receive an ultrasonic pulse in air. Capacitive and piezoelectric micromachined ultrasonic transducers (CMUTs and PMUTs) produce high pressure levels, but they exhibit a very narrow bandwidth. Optical laser-based methods for transmitting and receiving ultrasound promise a higher bandwidth, but do not achieve the same sensitivity as conventional air-coupled transducers. Ferroelectrets are charged cellular polymers exhibiting piezoelectric properties, having a very small acoustic impedance well matched to air. Ferroelectret transducers achieve about the same bandwidth as the most broadband conventional air-coupled transducers, having a higher sensitivity. Thermoacoustic transducers use heat to initiate an acoustic wave, acting as transmitters in ultrasonic range. Thermoacoustic transducers enable excitation of extremely broadband pulses while producing high pressure levels, which opens new possibilities for advanced signal processing. The newest member of the family of air-coupled ultrasonic transmitters is the plasma-based transducer, using both the thermoacoustic effect and the movements of the ions (so called ionic wind) to create acoustic waves.
Conventional ultrasonic testing involves the application of a fluid couplant for impedance matching. Increasing use of lightweight structures, composite materials and adhesive joints mostly in aerospace and automotive industry created an increasing interest in air-coupled ultrasonic testing methods, to protect sensitive surfaces and simplify maintenance. Commercially available air-coupled transducers consist of a piezocomposite material and matching layers to reduce the impedance mismatch between the transducer and air. This contribution is an overview of innovative approaches using new piezoelectric materials and other physical principles to transmit and receive an ultrasonic pulse in air.
Capacitive and piezoelectric micromachined ultrasonic transducers (CMUTs and PMUTs) produce high pressure levels, but they exhibit a very narrow bandwidth. Optical laser-based methods for transmitting and receiving ultrasound promise a higher bandwidth, but do not achieve the same sensitivity as conventional air-coupled transducers. Ferroelectrets are charged cellular polymers exhibiting piezoelectric properties, having a very small acoustic impedance well matched to air. Ferroelectret transducers achieve about the same bandwidth as the most broadband conventional air-coupled transducers, having a higher sensitivity. Thermoacoustic transducers use heat to initiate an acoustic wave, acting as transmitters in ultrasonic range. Thermoacoustic transducers enable excitation of extremely broadband pulses while producing high pressure levels, which opens new possibilities for advanced signal processing. The newest member of the family of air-coupled ultrasonic transmitters is the plasma-based transducer, using both the thermoacoustic effect and the movements of the ions (so called ionic wind) to create acoustic waves.
Nicht nur die Qualitätssicherung von Bauteilen wird immer wichtiger und muss immer höheren Anforderungen entsprechen, sondern auch die dafür verwendete Prüfeinrichtung und die Sensorik. Für die Qualitätssicherung von Ultraschall-Prüfköpfen mit Luftankopplung bestand die bisherige Lösung darin, baugleiche Wandler als Aktuatoren (Referenzsender) einzusetzen.
Für eine Weiterentwicklung der Wandler ist eine akustische Quelle wünschenswert, die eine weit größere Bandbreite mit flachem Frequenzgang aufweist, als die zu untersuchenden Prüfköpfe. Hier bieten sich thermoakustische Wandler an, die keine ausgeprägten Resonanzen haben und über eine hohe Bandbreite verfügen (min. 10 kHz bis 1 MHz). Diese wurden von der BAM in Berlin entwickelt und decken den Frequenzbereich von typischen Luftultraschall-Prüfköpfen vollständig ab.
Der Vortag beschreibt die Besonderheiten der Ansteuerung dieser Wandler, die einen Innenwiderstand von ca. 7 Ohm besitzen und eine Pulsleistung von etwa 10 kW benötigen.
Ferner werden erste Ergebnisse der Charakterisierung von unterschiedlichen piezokeramischen Prüfköpfen im Frequenzbereich von 50 kHz bis 500 kHz präsentiert.
Beispielhaft zeigte ein Prüfkopf mit mehreren Anpassschichten lokale Frequenzunterschiede im Schallfeld.