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Organisationseinheit der BAM
Characterization of reflector types by phase-sensitive ultrasonic data processing and imaging
(2008)
Ultrasonic and radar imaging techniques are limited in resolution by the wavelength in the material, yet information beyond those limits is hidden in complex frequency dependent reflection coefficients. The analysis of the phase of complex reflection coefficients together with the properties of imaging algorithms can help to characterize and to classify indications of defects in concrete buildings. This paper describes a method to extract phase information from measurements and SAFT reconstructed images. The influencing factors like material properties, transducer characteristics, and imaging algorithms based on Born or Physical Optics approximations are elaborated. Simulated and experimental results are briefly discussed.
Es wurden Untersuchungen hinsichtlich der Eignung und der praktischen Relevanz von codierten Sendesignalen als Anregungsimpulse für die Ultraschallprüfung von Betonbauteilen durchgeführt. Anhand von synthetischen Daten werden die theoretischen Vorteile der codierten Impulssequenzen gezeigt. Im Anschluss werden Barker- und Golay-codierte Sendesignale an einer Betonstufenplatte mit einem Größtkorn von 16 mm getestet.
Es zeigt sich das große Potenzial dieses Verfahrens, insbesondere bei Verwendung von Golay-Sequenzen als Anregung für die Ultraschallprüfköpfe. Es ergibt sich ein deutlich verbessertes Signal-Stör-Verhältnis im Vergleich zu den herkömmlichen bipolaren Rechteckimpulsen.
Recently developed new transducers for ultrasonic transmission, which can be embedded right into concrete, are now used for non-destructive permanent monitoring of concrete. They can be installed during construction or thereafter. Large volumes of concrete can be monitored for changes of material properties by a limited number of transducers. The transducer design, the main properties as well as installation procedures are presented. It is shown that compressional waves with a central frequency of 62 kHz are mainly generated around the transducer's axis. The transducer can be used as a transmitter or receiver. Application examples demonstrate that the transducers can be used to monitor concrete conditions parameters (stress, temperature,
) as well as damages in an early state or the detection of acoustic events (e.g., crack opening). Besides application in civil engineering our setups can also be used for model studies in geosciences.
The Large Aperture Ultrasound System (LAUS) developed at BAM is known for its ability to penetrate thick objects, especially concrete structures commonly used in nuclear waste storage and other applications in civil engineering. Although the current system effectively penetrates up to ~9 m, further optimization is imperative to enhance the safety and integrity of disposal structures for radioactive or toxic waste. This study focuses on enhancing the system’s efficiency by optimizing the transducer spacing, ensuring that resolution is not compromised. An array of twelve horizontal shear wave transducers was used to find a balance between penetration depth and resolution. Systematic adjustments of the spacing between transmitter and receiver units were undertaken based on target depth ranges of known reflectors at depth ranges from 5 m to 10 m. The trade-offs between resolution and artifact generation were meticulously assessed. This comprehensive study employs a dual approach using both simulations and measurements to investigate the performance of transducer units spaced at 10 cm, 20 cm, 30 cm, and 40 cm. We found that for depths up to 5 m, a spacing of 10 cm for LAUS transducer units provided the best resolution as confirmed by both simulations and measurements. This optimal distance is particularly effective in achieving clear reflections and a satisfactory signal-to-noise ratio (SNR) in imaging scenarios with materials such as thick concrete structures. However, when targeting depths greater than 10 m, we recommend increasing the distance between the transducers to 20 cm. This increased spacing improves the SNR in comparison to other spacings, as seen in the simulation of a 10 m deep backwall. Our results emphasize the critical role of transducer spacing in achieving the desired SNR and resolution, especially in the context of depth imaging requirements for LAUS applications. In addition to the transducer spacing, different distances between individual sets of measurement positions were tested. Overall, keeping the minimal possible distance between measurement position offsets provides the best imaging results at greater depths. The proposed optimizations for the LAUS in this study are primarily relevant to applications on massive nuclear structures for nuclear waste management. This research highlights the need for better LAUS efficiency in applications such as sealing structures, laying the foundation for future technological advances in this field.
Dieser Beitrag stellt die aktuellen Fortschritte der Ultraschallprüfung von Betonbauteilen basierend auf dem ICA-Verfahren vor. Das eingesetzte Verfahren wird bereits erfolgreich in anderen Bereichen der Ultraschallprüfung angewendet. Das große Potential dieser Methode liegt in der Möglichkeit, die sich überlagernden Reflexionen der Ultraschallsignale durch nur wenige Messungen in Echtzeit voneinander zu trennen und durch einfache Triangulation zu lokalisieren.
Es wurden Experimente hinsichtlich der Eignung und praktischer Relevanz des JADE-Algorithmus durchgeführt. Die Untersuchungen erfolgten sowohl an Polyamid als auch an Betontestkörpern. Die Leistungsfähigkeit des JADE-Algorithmus bezüglich der Quellsignaltrennung wird anhand von mehrkanaligen Ultraschallmessungen gezeigt. Die extrahierten Komponenten enthalten Signalanteile, die mit den entsprechenden Echosignalen in der Messung korrelieren.
Zukünftig wird das untersuchte Verfahren mit der Gruppenstrahlertechnik und einem geeigneten Sende-Empfangskonzept kombiniert, um so die Aussagesicherheit der zerstörungsfreien Untersuchungen zu erhöhen.
Laser vibrometric contactless sound field measurements at a concrete test block are presented. Both excitation by an ultrasonic probe and by an impactor were used. The wave modes can be identified by their geometric wave forms and propagation velocities. Additionally, numerical simulation of the experimental situation is used to support this interpretation. Possible applications of the presented technique are discussed. ©2005 American Institute of Physics
Für die zerstörungsfreie Prüfung im Bauwesen ist es neuerdings gelungen, mit laufzeitgesteuerten Ultraschall-Gruppenstrahlern Objekte in Betonbauteilen zu orten. Um eine Bündelung des Schallfeldes zu erreichen, konnten bisher bereits nach dem Prinzip der synthetischen Apertur durch sequenzielle Abtastung einer Bauteiloberfläche mit einem Prüfkopf große Strahlerflächen nachgebildet werden. Als alternative Methode zur Schallfeldbündelung bietet sich die Zusammenschaltung mehrerer Prüfköpfe zu Strahlergruppen an. Werden die einzelnen Prüfköpfe einer solchen Gruppe laufzeitgesteuert angeregt, kann schon während der Messung das Schallfeld geeignet geführt werden. Modellierte und experimentelle Schallfelder werden verglichen. Die Ortung eines Rohrkörpers im Beton wird demonstriert. An vielen Betonbauwerken, wie zum Beispiel Brücken, werden regelmäßig Inspektionen durchgeführt. Wünschenswert sind zerstörungsfreie Prüfverfahren, mit denen im Rahmen der Inspektionen auch von außen nicht sichtbare Fehler am Bauwerk festgestellt werden können, bevor diese zu schwerwiegenden Bauwerksschäden führen.
Acoustic NDT methods like ultrasonic echo and impact-echo are successfully used for NDT of concrete structures. This paper describes useful techniques for a detailed experimental study of the elastic wave propagation, which is highly relevant for the interpretation of the results obtained from practical measurement applications.
By using a scanning laser vibrometer it becomes possible to obtain a 2D visualization of the elastic waves propagating along the surfaces of concrete specimens. Time slices are prepared so that the wave field becomes apparent.
In order to visualize especially the surface wave propagation a similar technique using a scanning system with a piezoelectric sensor is applied.
The results obtained provide an appropriate basis for the comparison with numerical results from 3-D Elastodynamic finite integration technique (EFIT) calculations, which is demonstrated here.
Examples are presented for the application with phased array ultrasonic echo, air-coupled ultrasonic echo and impact-echo.