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We designed micro-hollow cathode discharge prototypes under atmospheric pressure and investi-gated their acoustic characteristics. For the acoustic model of the discharge, we correlated the self-organisation effect of the current density distribution with the ideal model of an acoustic membrane. For validation of the obtained model, sound particle velocity spectroscopy was used to detect and analyse the acoustic emission experimentally. The results have shown a behaviour similar to the ideal acoustic membrane. Therefore, the acoustic excitation is decomposable into its eigenfrequencies and predictable. The model was unified utilising the gas exhaust velocity caused by the electrohydrodynamic force. The results may allow a contactless prediction of the current density distribution by measuring the acoustic emission or using the micro-discharge as a tunable acoustic source for specific applications as well.
Analog zu Blitz und Donner können elektrische Entladungen innerhalb eines Gasvolumens als akustische Quellen agieren und haben daher eine starke Verbreitung als diagnostische Methode (bspw. in der Raumakustik und bei der Ortung von Teilentladungen). Diese auf dem Prinzip der Thermoakustik beruhende Möglichkeit der Schallerzeugung und die damit verbundenen physikalischen Wechselwirkungen machen die Notwendigkeit einer mechanisch ausgelenkten Membran überflüssig. Dabei wird dem hochfrequenten Träger das Nutzsignal aufgeprägt, welches eine Volumenänderung des umliegenden Gases um seinen Ruhezustand verursacht. Durch die somit hervorgerufene zyklische thermische Wechselwirkung mit dem umliegenden Gasgemisch bedarf es daher ebenfalls keiner akustischen Anpassung. In den vorgestellten Ergebnissen wurde das Übertragungsverhalten eines Oberflächenplasmas (SDBD, surface dielectric barrier discharge) untersucht. Als Maß für den Wirkungsgrad und das Übertragungsverhalten des Aktuators wurden Klirrfaktor- und THD- Messungen und unter Variation der Eingangsleistungen durchgeführt. Durch die positiven akustischen Eigenschaften eröffnen sich neue Applikationen für den Einsatz von Plasmahochtönern wie bspw. zerstörungsfreie Werkstoffprüfung von Verbundsystemen und Klebeverbindungen im Automobilsektor oder im Bauwesen.
Analog zu Blitz und Donner können elektrische Entladungen innerhalb eines Gasvolumens als akustische Quellen agieren und haben daher eine starke Verbreitung als diagnostische Methode (bspw. in der Raumakustik und bei der Ortung von Teilentladungen). Diese auf dem Prinzip der Thermoakustik beruhende Möglichkeit der Schallerzeugung und die damit verbundenen physikalischen Wechselwirkungen machen die Notwendigkeit einer mechanisch ausgelenkten Membran überflüssig. Dabei wird dem hochfrequenten Träger das Nutzsignal aufgeprägt, welches eine Volumenänderung des umliegenden Gases um seinen Ruhezustand verursacht. Durch die somit hervorgerufene zyklische thermische Wechselwirkung mit dem umliegenden Gasgemisch bedarf es daher ebenfalls keiner akustischen Anpassung.
In den vorgestellten Ergebnissen wurde das Übertragungsverhalten eines Oberflächenplasmas (SDBD, surface dielectric barrier discharge) untersucht. Als Maß für den Wirkungsgrad und das Übertragungsverhalten des Aktuators wurden Klirrfaktor- und THD-Messungen und unter Variation der Eingangsleistungen durchgeführt.
Durch die positiven akustischen Eigenschaften eröffnen sich neue Applikationen für den Einsatz von Plasmahochtönern wie bspw. zerstörungsfreie Werkstoffprüfung von Verbundsystemen und Klebeverbindungen im Automobilsektor oder im Bauwesen.
Due to the multi-physical appearance of gas discharges the possibilities of interaction with their surrounding environment are very wide. Some of the most common applications are the surface or material modification and acting as an ion source for mass spectroscopy applications. Since atmosphere plasma generates a massive amount of thermal energy caused by collisions in the sheath, this temperature alternation is also able to produce acoustic waves in the ambient gas volume (as lightning and thunder), which is called thermoacoustic effect.
This talk presents an overview of the experimental acoustic analysis of surface dielectric barrier and micro hollow cathode discharges. Regarding other methods of acoustic excitation, the thermoacoustic approach benefits of its massless working principle and the proper impedance matching. In addition to the characterisation, possible applications (e.g. plasma acoustic loudspeaker or transducer for air-coupled ultrasonic testing) concerning these discharge types are presented.
Air-coupled ultrasonic testing (ACUT) has experienced rapid growth within the last years. It is especially well suited to inspection of lightweight structures consisting of composite materials and adhesive joints. Uniform coupling and easy maintenance are its advantages compared to contact technique. However, the impedance mismatch between the transducer and air poses a major challenge to the development of ACUT transducers. Commercially available air-coupled transducers consist of a piezocomposite material and matching layers. Their fabrication is difficult in handling and their signal-to-noise ratio sometimes not sufficient for various testing requirements. However, there are several innovative approaches using other materials and other physical principles to transmit and receive an ultrasonic pulse. We present a review of the latest advances in research on air-coupled transducers for non-destructive testing, including previously unpublished results. We recognize two major directions as most promising: ferroelectrets and thermoacoustic transducers. Ferroelectrets are charged cellular polymers exhibiting piezoelectric properties. Their small acoustic impedance is matched to air better than matching layers applied in conventional air-coupled transducers. Applying bias voltage to a ferroelectret receiver is the latest development in this field, which increased the received signal by 12 to 15 dB. Thermoacoustic transducers use heat to initiate an ultrasonic wave, acting as transmitters. The working principle is known from nature as thunder and lightning: thermal energy of an electrically heated material, which can also be air, is converted into acoustic energy. Some thermoacoustic transmitters consist of a conductive layer with a thickness in the nanometer range deposited on a solid substrate. Another possibility is to use an electric spark. For the first time, measurements of the sound field of an electric spark up to 500 kHz were performed. Thermoacoustic transducers enable excitation of extremely broadband pulses while producing high pressure levels, which opens new possibilities for advanced signal processing.
Air-coupled ultrasound (ACU) is increasingly used for automated and contactless inspection of large-scale composite structures as well as for non-destructive testing (NDT) of water-sensitive or porous materials. The major challenge to overcome using ACU in NDT is the enormous loss of ultrasonic energy at each solid-air interface caused by the high acoustic impedance mismatch. Resonant low-frequency piezoceramic transducers are specially designed to achieve high sound pressure levels. For an expanded use of this technique, however, the spatial resolution needs to be increased.
Recent studies of our collaborative research group demonstrated the successful application of a resonance-free, highly sensitive receiver that uses a Fabry-Pérot etalon instead of piezoceramic materials or membranes. However, to reach the full potential of this broadband small-aperture optical microphone, novel transmitter concepts have to be developed and evaluated for advanced NDT applications.
Different types of transmitter were tested in combination with the optical microphone acting as receiver and they were compared to conventional piezoceramic transducers in through-transmission mode. Monolithic carbon fiber-reinforced plastics (CFRP) and CFRP sandwich structures containing different defect types were inspected. Presented results are processed as C-scan images and further evaluated for spatial resolution, signal-to-noise ratio and sensitivity of each measurement setup. Novel transmitter concepts, such as ferroelectret and thermoacoustic emitters, show promising findings with a considerably improved time and spatial resolution for ACU-NDT.
Modern and energy-efficient materials are essential for innovative designs for aerospace and automotive industries. Current technologies for rapid manufacturing such as additive manufacturing and liquid composite moulding by polymer Extrusion allow innovative ways of creating robust and lightweight constructions. Commercially available printing devices often use polylactide (PLA) or acrylonitrile butadiene styrene (ABS) as raw material. Therefore, parameters like the infill ratio, influencing the ability to resist mechanical stress, may have a beneficial impact on the lifetime of components.
These manufacturing technologies require a good knowledge about materials and even adapted non-destructive testing technologies and methods. Airborne ultrasonic testing has beneficial advantages for testing those lightweight constructions. It is a contact-free testing method, which does not require a liquid couplant. Therefore, it allows fast test cycles without any unwanted alternations of the material properties due to interactions with any coupling liquid. This contribution deals with the characterisation of printed specimens based on PLA by using airborne ultrasound and presents the current edge of non-destructive testing and evaluation using airborne ultrasonic transducers. The specimens, manufactured by polymer extrusion, are printed as thin plates. The infill ratio, as well as the material thickness, were varied to model density imperfections with different geometric shapes and properties. For better understanding of the limits of airborne ultrasonic testing in transmission, we compared own-developed transducers based on different physical principles: on ferroelectrets, on the thermoacoustic effect, as well as a new type of transducers based on gas discharges.
Overview about modelling, simulations and measurement of acoustic interactions caused by surface dielectric barrier discharges, micro hollow cathode discharges and plasma jets.
A novel approach for rating fatigue-initiating inclusions in highly demanding steel (INCAFAT)
(2018)
INCAFAT project aimed to improve existing fatigue damage models by establishing the most suitable combination of measurement techniques to characterise harmful inclusion populations in highly demanding steels. The different inclusion assessments carried out confirm that, chemical composition, secondary metallurgy and manufacturing route affect content, nature, size and shape of inclusions. According to the FEM model, inclusions produce an alteration of the stress field in their surrounding region, which can promote a fatigue failure. Experimental work on fatigue testing has demonstrated that depending on the stressed direction fatigue failures in highly demanding steels could be produced by different types of inclusions. Fractography analyses confirmed that meso-inclusions harmful in fatigue cannot be rated by standard methods, nor 10 MHz ultrasonic testing (macro) or micro-cleanness assessments. The necessity of rating these meso-inclusions has led to critical evaluation of Extreme Value Analysis according to ASTM E2283-08 and the development of high frequency immersion ultrasonic testing. EVA methodology based on inclusion width can be applied reliably when principal stress is parallel to the rolling direction. On the contrary, if inclusions are testing in the elongated directions its fails. On the other hand, the guidelines and recommendations for high frequency ultrasonic testing have been compiled in a new European standard draft. This method based on focal beam probes and high-resolution devices is able to provide information on meso-inclusion distribution.