TY - CONF A1 - Niederleithinger, Ernst T1 - Coda wave interferometry used for monitoring of concrete constructions N2 - Concrete is known to be a very useful, flexible and durable construction material. However, due to excess load, fatigue, chemical processes, freeze-thaw or reinforcement corrosion concrete may suffer from degradation. If detected too late, repair is difficult and expensive. The propagation of ultrasonic waves is influenced by changes in the properties and structure of the material, including, but not limited to, stress, temperature, moisture content and microcracking. Ultrasonic velocieties thus may serve as indicators for structural health. Traditional ultrasonic methods as transmission time of flight measurements are used since decades, but are not sensible enough to show subtle changes. Coda Wave Interferometry (CWI), originally developed in seismology to detect stress changes in the earth's crust uses the information in the late part of ultrasonic signals originating from multiple reflections and scattering. Since a few years it is used by several researchers for lab experiments on concrete. Meanwhile specialized sensors to be embedded in concrete have been developed. We have conducted several lab and a few field experiments, which will be reported here. The capabilities and limitations of CWI are summarized. T2 - Jahrestagung der DGG CY - Münster DA - 14.03.2016 KW - Coda wave interferometry KW - Concrete KW - Monitoring KW - Ultrasound PY - 2016 AN - OPUS4-35710 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Niederleithinger, Ernst T1 - Charakterisierung von Feuchte- und Salzbelastungen in Baumaterial mit Impedanzspektroskopie T2 - Workshop Innovative Feuchtemessung in Forschung und Praxis 2 (Feuchtetag 2006) CY - Karlsruhe, Germany DA - 2006-10-17 PY - 2006 AN - OPUS4-14116 LA - deu AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Niederleithinger, Ernst T1 - Charakterisierung von Feuchte- und Salzbelastungen in Baumaterial durch Impedanzspektroskopie T2 - 1. Symposium Impedanzspektroskopie, Grundlagen und Anwendungen CY - Essen, Germany DA - 2006-05-16 PY - 2006 AN - OPUS4-14248 LA - deu AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Niederleithinger, Ernst T1 - Buildings: Seismology and Strctural Health Monitoring N2 - Overview of seismological concepts unsed in nondestructive testing in civil engineering T2 - Fourth TIDES Advanced Training School CY - Prague, Czech Repubilc DA - 01.07.2018 KW - Geophysics KW - Seismology KW - Interferometry KW - Structural health monitoring KW - Nondestructive testing PY - 2018 AN - OPUS4-45361 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Niederleithinger, Ernst T1 - Bridge monitoring using embedded ultrasonics First results from the BLEIB reference structure N2 - The BLEIB reference structure The structure is a two-span, 24 m long inverse u-shaped post-tensioned concrete beam. Fibre optic sensing cables, RFID sensors and ultrasonic transducers are permanently embedded. Other sensing techniques (vibrational, optical, ultrasonic, mechanical) are applied externally. Tension can be adjusted. Loads can be placed at arbitrary locations. Limited damage is introduced to one span. The BLEIB reference structure is located at BAM‘s test site in Horstwalde, south of Berlin. Ultrasonic transducer before concreting. Embedded ultrasonic transducers 14 piezo transducers have been embedded before concreting. They are located in five sections, two close to the centers of both spans respectively and one above the central bearing. Load experiment and data evaluation In a first experiment load 2 (weight 2 t) was moved three times along the southern (right) span. The tension forces were modified as well. Ultrasonic transmission measurements were repeated over time and evaluated using Coda Wave Interferomerry (CWI), which determines correlation coefficients and relative velocity changes as subtle indicators for loads and other changes in the material. T2 - New mathematics for a safer world: wave propagation in heterogeneous materials CY - Edinburgh, UK DA - 12.06.2017 KW - Bridge monitoring KW - Ultrasound KW - Embedded transducers KW - Coda wave interferometry PY - 2017 AN - OPUS4-40578 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Niederleithinger, Ernst T1 - Bridge Monitoring by Passive Seismic Data, First tests at the BLEIB reference structure N2 - Seismic wave velocities are related to elastic moduli and other properties and can serve as indicators for changes in the material. They are conventionally determined by active measurements. Using ideas from seismic interferometry determination from stacked cross-correlations of registrations of man-made and natural noise (“passive seimics“) is an effective alternative, as these data might be available from vibration monitoring anyway. The validity of this approach is demonstrated by a simple experiment based on recordings of man made noise using accelerometers at the reference structure. The s-wave (or more probable. guided wave) velocity was determined to be 2100 m/s in both active and passive experiments. T2 - Passive Imaging and monitoring in wave physics: from seismology to ultrasound CY - Cargese, France DA - 05.06.2017 KW - Bridge monitoring KW - Passive seismics KW - Ambient noise KW - Interferometry KW - Elastic wave velocity PY - 2017 AN - OPUS4-40577 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Niederleithinger, Ernst T1 - Bridge Monitoring by Passive Seismic Data, First tests at the BLEIB reference structure N2 - Seismic wave velocities are related to elastic moduli and other properties and can serve as indicators for changes in the material. They are conventionally determined by active measurements. Using ideas from seismic interferometry Determination from stacked cross-correlations of registrations of man- made and natural noise (“passive seimics“) is an effective alternative, as these data might be available from vibration monitoring anyway. The validity of this approach is demonstrated by a simple experiment based on recordings of man made noise using accelerometers at the reference structure. The s-wave (or more probable. guided wave) velocity was determined to be 2100 m/s in both active and passive experiments. T2 - Passive Imaging and monitoring in wave physics: from seismology to ultrasound CY - Cargese, France DA - 05.06.2017 KW - Passive Seismics KW - Bridge monitoring KW - Elastic wave velocity PY - 2017 AN - OPUS4-40575 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Niederleithinger, Ernst T1 - Borehole based methods for length determination of existing piles T2 - Seminar Dynamic Pile Testing CY - Berlin, Germany DA - 2009-02-18 PY - 2009 AN - OPUS4-18984 LA - deu AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Niederleithinger, Ernst T1 - Applications of a Multi-Channel Ultrasound System for Assessing Large Concrete Structures N2 - Non-destructive testing (NDT) plays a vital role in the assessment of large concrete structures, where the detection of internal defects is particularly challenging due to size, material heterogeneity and complex geometries. In this study, the use of a multi-channel, large-aperture ultrasound system is demonstrated for improving the ultrasonic pulse-echo method for evaluating these large structures. The large aperture of the ultrasound system allows for broader coverage and enhanced sensitivity to internal features such as cracks, voids, and embedded components within the concrete. By capturing data from multiple channels simultaneously, the system improves both resolution and depth penetration. A weighted sum of the Kirchhoff migration is used to post-process the data, resulting in better visualisation and a more detailed interpretation of the internal condition of the structure. This approach is particularly effective for thick and complex materials where conventional methods face limitations. In addition to the pulse-echo method, time-of-flight (TOF) tomography is used to provide quantitative analysis of internal structures. Time-picking techniques allow for the precise mapping of anomalies within the material, offering insights into the condition of concrete with varying geometries and compositions. Together, these two methods: pulse-echo imaging with the large-aperture multichannel system and TOF tomography imaging, offer different possibilities for assessing the internal condition of large concrete structures. The pulse-echo technique focuses on providing detailed images of structural defects, while the TOF tomography provides quantitative data on internal features. This combined approach offers a comprehensive and reliable method for the assessment of large infrastructures. T2 - ISNT NDE 2024 CY - Chennai, India DA - 12.12.2024 KW - NDT-CE KW - concrete KW - ultrasound KW - imaging KW - Kirchhoff KW - tomography PY - 2024 AN - OPUS4-62204 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Niederleithinger, Ernst T1 - Application of ultrasonic techniques for quality assurance of salt concrete engineered barriers: Shape, cracks and delamination N2 - The closure of underground nuclear waste disposal facilities requires reliable gas- and watertight engineered barriers. In Germany, barriers made from salt concrete have been evaluated in full scale. While the barriers seem to fulfill the requirements regarding permeability, some unexpected cracks have been detected at the surface and at depth. In cooperation between the Federal Company for Radioactive Waste Disposal (BGE) and the Federal Institute for Materials Research and Testing (BAM), several experiments have been carried out to evaluate the applicability for ultrasonic measurements in crack detection and general quality assurance. Both commercial instruments and specially developed devices have been tested on site. Using commercial ultrasonic echo devices designed for concrete inspection it was possible to detect cracks and object in salt concrete up to a depth of 2 m. The check for delamination in shotcrete is another field of application. A unique device available at BAM, the wide aperture, deep penetration instrument LAUS, was able to locate cracks and objects up to a depth of 8 m so far, which is thought to be a record for ultrasonic echo measurements in concrete. Adapted imaging procedures, partly adopted from geophysics, helped to reveal 3D structure at depth. In addition, we have developed ultrasonic probes to be deployed in boreholes, currently at up to 20 m depth. They can collect information on cracks and other features in a radius of about 1.5 m around the borehole in the current version and might be used in echo or transmission mode. Evaluation experiments have been performed at an experimental barrier at the ERAM site in Morsleben, Germany. The results showed several empty and injected cracks as well as built in instrumentation. The results have been verified using borehole endoscopy as well as core examination and will be used to set up a reliable quality assurance system for engineered barriers. All instruments are based on ultrasonic shear wave transducers with a frequency range between 25 kHz and 100 kHz. Current research focuses on the improvement of the hardware (e. g. optimization of array characteristics) and imaging techniques as Reverse Time Migration, both aiming at the improvement of depth of penetration, resolution and probability of detection. T2 - Modern 2020, 2nd International Conference about Monitoring in Geological Disposal of Radioactive Wast CY - Paris, France DA - 09.04.2019 KW - REverse Time Migration (RTM) KW - Engineered Barrier System (EBS) KW - Non-Destructive Testing KW - Ultrasonic Echo KW - Large Aperture Ultrasonic System (LAUS) KW - Synthetic Aperture Focusing Technique (SAFT) PY - 2019 AN - OPUS4-48974 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER -