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In ultrasonic testing, material and structural properties of a specimen can be derived from the time-of-flight (ToF). Using signal features, such as the first peak or envelope maximum, to calculate the ToF is error-prone in multipath arrangements or dispersive and attenuating materials, which is not the case for the signal onset. Borrowing from seismology, researchers used the Akaike information criterion (AIC) picker to automatically determine onset times. The most commonly used formulation, Maeda's AIC picker, is reassessed and found to be based on inappropriate assumptions for signals often used in ultrasonic testing and dependent on arbitrary parameters. Consequently, an onset picker for ultrasonic through-transmission measurements is proposed, based on a spectral entropy criterion (SEC) to model the signal using the AIC framework. This SEC picker takes into account the spectral properties of the ultrasonic signal and is virtually free of arbitrary parameters. Synthetic and experimental data are used to compare the performance of SEC and AIC pickers. It is shown that the accuracy of onset picking is improved for densely sampled data.
AbstractAir‐coupled ultrasonic testing (ACU) is a pioneering technique in non‐destructive testing (NDT). While contact testing and fluid immersion testing are standard methods in many applications, the adoption of ACU is progressing slowly, especially in the low ultrasonic frequency range. A main reason for this development is the difficulty of generating high amplitude ultrasonic bursts with equipment that is robust enough to be applied outside a laboratory environment. This paper presents the fluidic ultrasonic transducer as a solution to this challenge. This novel aeroacoustic source uses the flow instability of a sonic jet in a bistable fluidic switch to generate ultrasonic bursts up to 60 kHz with a mean peak pressure of 320 Pa. The robust design allows operation in adverse environments, independent of the operating fluid. Non‐contact through‐transmission experiments are conducted on four materials and compared with the results of conventional transducers. For the first time, it is shown that the novel fluidic ultrasonic transducer provides a suitable acoustic signal for NDT tasks and has potential of furthering the implementation of ACU in industrial applications.This article is protected by copyright. All rights reserved
Entwicklung einer flexiblen Datenablage zur sicheren Speicherung von Bauwerksdaten - "CASPAR"
(2024)
Bestandsunterlagen von älteren Bauwerken sind bezüglich einer rechnerischen Zustandsbewertung häufig nur in einem unzureichenden Umfang verfügbar. Dies gilt sowohl für den privaten als auch für den öffentlichen Bereich. Der Wert von Bestandsunterlagen für Gebäude oder Brücken ist Vielen nicht bekannt. Soll jedoch der aktuelle Zustand von Bauwerken bewertet, sollen Restlebensdauern abgeschätzt oder soll umgebaut werden, stellen Bestandsunterlagen die Grundlage dafür dar. Liegen diese nicht vor, so muss die Bauweise des Bauwerkes kostenintensiv nachvollzogen und mit nachträglichen Untersuchungsverfahren bewertet werden. Vor allem ist dies darauf zurückzuführen, dass die Aufbewahrung der Bestandsunterlagen dem Bauherrn obliegt und diese meist in Papierform vorliegen und dann bei Umzügen, Betriebsschließungen, Eigentümerwechsel etc. verloren gehen.
Die Digitalisierung im Bauwesen bietet hier Möglichkeiten diese Probleme künftig zu vermeiden. Bereits heute nimmt die digitale Planung im Bauwesen eine immer größere Rolle ein. Mehr und mehr Bauvorhaben werden schon jetzt in sogenannten BIM Modellen (Building Information Modelling) geplant. Um die Akzeptanz einer digitalen Lösung zu gewährleisten muss die Vertrauenswürdigkeit von Daten auch langfristig garantiert sein. Naturgemäß unterliegen Erkenntnisse, die aus Daten gewonnen werden, häufig vielen Prozessschritten mit unterschiedlichen Beteiligten. Es lässt sich vor dem Hintergrund der üblichen Lebensdauern von Bauwerken leicht erkennen, dass es schwierig ist diese Prozesskette, von der Datenerhebung bis zur teilweise jahrzehnte späteren Nutzung, beweissicher und rückführbar zu gestalten. Diese Attribute sind es aber, die die Vertrauensbasis für die Qualität und somit auch die Akzeptanz von digitalisierten Daten bilden. Im Projekt „CASPAR“ erarbeiten wir eine mögliche technologische Grundlage, um Bauwerksdaten langfristig und manipulationssicher zu speichern.
The ultrasonic echo technique is widely used in non-destructive testing (NDT) of concrete objects for thickness measurements, geometry determinations and localization of built-in components. To improve ultrasonic imaging of complex concrete structures, we transferred a seismic imaging technique, the Reverse Time Migration (RTM), to NDT in civil engineering. RTM, in contrast to the conventionally used synthetic aperture focusing technique (SAFT) algorithms, considers all wavefield types and thus, can handle complex wave propagations in any direction with no limit on velocity variations and reflector dip. In this paper, we focused on the development, application and evaluation of a two-dimensional elastic RTM algorithm considering horizontally polarized shear (SH) waves only. We applied the elastic SH RTM routine to synthetic ultrasonic echo SH-wave data generated with a concrete model incorporating several steps and circular cavities. As these features can often be found in real-world NDT use cases, their imaging is extremely important. By using elastic SH RTM, we were able to clearly reproduce almost all reflectors inside the concrete model including the vertical step edges and the cross sections of the cavities.We were also capable to show that more features could be mapped compared to SAFT, and that imaging of complex reflectors could be sharpened compared to elastic P-SV (compressional-vertically polarized shear) RTM. Our promising results illustrate that elastic SH RTM has the potential to significantly enhance the reconstruction of challenging concrete structures, representing an important step forward for precise, high-quality ultrasonic NDT in civil engineering.
This working paper summarises the current state of knowledge and research on the application of sensors in road pavements, designed to record input quantities and characteristics for structural assessment. In this working paper, sensors generally refer to technical equipment that can used to record the values of physical quantities and display them for interpretation.
The working paper deals with every type of sensor that is permanently connected to the road, i.e. sensors that are installed – in the bound and unbound courses of the superstructure as well as in the sub-base/sub-structure, – next to or above the road (for example on masts) and can contribute to structural recording and its subsequent assessment. This can also include sensors that are primarily used for a different purpose (e.g. traffic control). However, this working paper only describes the application of sensors that are installed primarily for other purposes for the sake of completeness; special publications (e.g. Notes on detection technologies in road traffic) are available for the respective installation situations.