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Eingeladener Vortrag
- nein (7)
Positioning accuracy of an automatic scanning system for GPR measurement on concrete structures
(2012)
One of the main problems in the assessment of the operability, stability and contamination potential of tailings facilities is the lack of data on subsurface materials, properties and structures. One key task in the use of geophysics is the selection of the proper methods for a given site/problem combination. Interpretation of the acquired and processed physical data (e.g. electrical resistivity distribution) into something useful for site assessment (e.g. contamination distribution) is another. In the TAILSAFE project (funded by the European Commission) we have worked with partners on the use of geophysics for tailings facilities inspection. DC and complex resistivity, ground penetrating radar, and spectral analysis of surface waves and multichannel analysis of surface waves have been used on dams and beaches. In most cases, our methods provided useful information on the subsurface structure, but the translation of geophysical values into geotechnical or other parameters is still challenging.
Complex special inspection of an old masonry arch bridge according to the Guideline on Inspection and Condition Assessment of Railway Bridges and numerical analysis of the structure are presented. The guideline summarises recommendations for the step-by-step investigation of railway bridges applying enhanced methods developed during the EU-funded project Sustainable Bridges. For the investigation of the arch barrel, the ballast parameters and the inner structure of the backfill behind the arch barrel a number of various advanced non-destructive and minor-destructive testing methods were applied. Deformation of the structure during load tests was measured using three independent measuring systems: laser vibrometer, LVDT and microwave radar. Results of calculations performed with 2D and 3D models based on FEM are compared with the field load tests. Sensitivity of the ultimate load of the structure to investigated parameters is studied in FE model. Some general conclusions according to methods of testing and modelling of masonry arch bridges are presented and discussed.
Radarmessungen mit Constant-Offset zur Untersuchung von Strukturschwächungen in Betonbauteilen
(2013)
Complex resistivity (CR) behavior of building material - first results of field scale measurements
(2008)
Ground Penetration Radar (GPR) as a non-destructive (NDT)-method can be applied to obtain detailed information about the inner structure and condition of bridges without damaging the structure.
In this paper the capabilities and limitations of the application of the fast inspection technique GPR will be demonstrated.
In addition to GPR investigations, geoelectrical measurements, coring and petrophysical investigations have been carried out.
The investigated railway bridge in Olesnica is a typical European masonry arch bridge (age, construction and span length).
It shows typical damage to the masonry arches such as increasing salt concentration, destruction, material losses and longitudinal cracks.
Radar measurements were carried out with two main objectives: (1) Identification of basic geometric dimensions of the bridge and identification of construction details; (2) Evaluation of the condition of the masonry, such as mechanical damage (e.g. cracks) or variation of the moisture content.
Radar antennas of different frequencies (having different penetration depths) have been used to estimate the thickness of the walls.
Because of the high attenuation in the inner masonry structure the measurements have not produced satisfying results, but the radar measurements have been successfully applied to investigate the moisture distribution in the masonry.
These results have been verified by coring and through geoelectrical measurements.
Cracks were studied at two testing areas at one wing wall of the bridge using an automatic 2D radar scanning system.
The radar data were processed using advanced data processing tools like FT-SAFT reconstruction and data fusion.
The processing sequence allowed the creation of high-resolution depth sections (C-Scans).
Impulsradarmessungen in Reflexionsanordnung werden seit längerem mit Erfolg zur
zerstörungsfreien Prüfung im Bauwesen eingesetzt. Ziel ist die strukturelle
Untersuchungen wie z.B. der Verifizierung von Bauplänen durch Ortung von
Bewehrungslagen und Spannkanälen und die Dickenbestimmungen [1]. Eine
Vielzahl bisheriger Untersuchungen hat jedoch gezeigt, dass zur Lösung dieser
Fragestellungen bei größeren Bauteildicken, dichterer Bewehrung und diffuseren
Reflexionsobjekten häufig die reflektierte Signalenergie nicht ausreicht.
Transmissionsverfahren und die Auswertung mit entsprechenden tomographischen
Inversionsalgorithmen weisen hierbei ein Potential auf, das im folgenden Beitrag
systematisch auf die Anwendung zur Strukturanalyse hin untersucht wird. Die
begonnenen Untersuchungen dazu konzentrierten sich vor allem auf die Evaluierung
des Radarverfahren für die Transmissionsmessungen an Betonbauteilen. Bei der
systematischen Vorgehensweise wurde an Probekörpern gemessen und numerische
Simulationen gerechnet.
In einem ersten Schritt kamen laufzeittomographische Verfahren zum Einsatz. Neben
räumlichen Strukturmerkmalen werden somit Materialeigenschaften wie die
Verteilung des Betrages der Ausbreitungsgeschwindigkeiten der eingesetzten
elektromagnetischen Wellen im Bauteil ermittelt. Die Arbeiten an der BAM dazu sind
unter Mitwirkung einer Vielzahl von KollegInnen in verschiedenen Projekten
eingebunden, so vor allem in dem EU-Vorhaben Sustainable Bridges
(www.sustainablebridges.net) und in der DFG-Forschergruppe FOR384
(www.for384.uni-stuttgart.de).
Geophysikalische Untersuchungen zur Zustandsbewertung einer historischen Mauerwerksbrücke in Polen
(2007)
Moisture ingress is one of the major deteriorating factors for building materials. Today, the only approved way to assess such damage is the gravimetric Darr method, which is essentially destructive. Substantial progress has been made using the geophysical complex-resistivity method, which can be applied non-destructively and provides spatial information along two-dimensional sections, rather than punctual along one borehole. Considerable advantages of complex resistivity are its sensitivity to textural properties, as well as the pore-fluid chemistry of wet, porous media. In a comprehensive laboratory study, and later in field scale experiments, it could be shown that complex resistivity may even be able to distinguish between salt content and saturation degree in a single measurement. A comparison with complementary nondestructive testing techniques points to the benefit and further research to be explored in multimethodical approaches.
Der Bedarf an Kernbohrungen in Stahlbetonbauwerken ist in den letzten Jahren durch die steigende Anzahl von Instandsetzungen und Ertüchtigungen unterschiedlicher Stahlbetonbauten stark gewachsen. Für die Durchführung einer Kernbohrung ist die Kenntnis der genauen Lage der vorgespannten Bewehrung notwendig, um diese für die Statik wichtigen Elemente nicht zu beschädigen. Das methodische Vorgehen für die schadensfreie Durchführung von Kernbohrungen wird am Beispiel einer ca. 1 m dicken Hohlkastenseitenwand der Karl-Carstens Brücke in Bremen gezeigt. Nach der Darstellung der Ausgangslage und der Aufgabenstellung werden die Schritte beschrieben, die zu einer erfolgreichen Durchführung der Aufgaben erforderlich waren. Hierbei steht die planmäßige Anwendung der zerstörungsfreien Untersuchungsmethode Impulsradar im Vordergrund. Das Vorgehen gliedert sich in vier Schritte:
- Zunächst wurde eine Voruntersuchung durchgeführt, um festzustellen, ob sich die vorgespannte Bewehrung in den erwarteten Tiefen von bis zu 50 cm und unter den vorhandenen Bedingungen der Hohlkastenseitenwände mit dem Impulsradar detektieren lässt.
- Nach der erfolgreichen Voruntersuchung wurden im zweiten Schritt die Bereiche der geplanten Kernbohrungen großflächig mit dem Impulsradar untersucht.
- Anschließend konnte anhand der Messdaten die Lage der Bewehrung ermittelt und in einen Plan eingezeichnet werden, der im Maßstab 1:1 ausgedruckt wurde. Dieser Plan wurde positionsrichtig auf die Oberfläche der Hohlkastenwand geklebt.
- Im letzten Schritt wurden dann gezielte Test- und Suchbohrungen durchgeführt, denen die eigentlichen Kernbohrungen folgten.
Mit der im Plan dargestellte Bewehrungslage war die Voraussetzung für schadensfreies Bohren gegeben. So konnten die Kernbohrungen durchgeführt werden, ohne die vorgespannte Bewehrung zu beschädigen.
Complex special inspection of an old masonry arch bridge according to the Guideline on Inspection and Condition Assessment of Railway Bridges and numerical analysis of the structure are presented. The guideline summarises recommendations for the step-by-step investigation of railway bridges applying enhanced methods developed during the EU-funded project Sustainable Bridges. For the investigation of the arch barrel, the ballast parameters and the inner structure of the backfill behind the arch barrel a number of various advanced non-destructive and minor-destructive testing methods were applied. Deformation of the structure during load tests was measured using three independent measuring systems: laser vibrometer, LVDT and microwave radar. Results of calculations performed with 2D and 3D models based on FEM are compared with the field load tests. Sensitivity of the ultimate load of the structure to investigated parameters is studied in FE model. Some general conclusions according to methods of testing and modelling of masonry arch bridges are presented and discussed.
Positioning accuracy of an automatic scanning system for GPR measurements on concrete structures
(2012)
The influence of moisture on the reliability of detection of larger voids in brickwork masonry was investigated using three non-destructive techniques: radar, ultrasonic and complex resistivity (CR). Radar and ultrasonic travel time tomography, as well as CR tomography, were performed over a specific cross section of a specimen containing a large void at a known position to determine the influence of different levels of moisture content in the brickwork on the wave velocities and the CR magnitude. We defined a numerical estimator to quantitatively determine the void detection efficiency from the images obtained when exposing the specimen to moisture. The results showed radar to be the most reliable technique for void detection in both dry and wet masonry, while CR performed much better in detecting larger air voids in wet masonry.
Die drei Beispiele zerstörungsfreier Prüfungen an Spannbetonbrücken zeigen unterschiedliche Problemstellungen und deren Lösung mit unterschiedlichen Ansätzen.
Allen drei Beispielen gemeinsam ist die Verwendung kommerzieller Geräte. Diese werden von verschiedenen Anbietern bereitgestellt. Eine weitere Gemeinsamkeit ist, dass die Grundgeräte durch zusätzliche Maßnahmen ergänzt. Erst dann ist der gewünschte Untersuchungserfolg sicher gestellt.
Im ersten Beispiel wurde die vom Auftraggeber geforderte Präzision dadurch erreicht, dass systematische Voruntersuchungen stattfanden. Die Übertragung der Lokalisierung direkt auf die Betonoberfläche stellte sicher, dass keinen Informationsverluste an die nachfolgenden Aufgaben auftraten.
Das zweite Beispiel zeigt den Nutzen von Automatisierung und Kombination von Verfahren. Damit können dem Auftraggeber die notwendigen Angaben über Einbauteile mit großer Detaitreue und leicht verständlicher Visualisierung aufbereitet werden. Der abschließende Bericht zeigt, wie vorhandene Auswertungen sinnvoll durch noch in der Forschung befindliche Ansätze bereichert werden.
Insgesamt ist die zerstörungsfreie Prüfung in der Lage, an Brücken preisrelevante Fragestellungen zu lösen. Voraussetzung hierfür ist eine sorgfältig geplante Vorgehensweise und ein sicheres Verständnis der Grundlage der eingesetzten Geräte und Auswertungsschritte.
Collecting different geophysical data sets at the same object and site offers the opportunity to reduce uncertainties and ambiguities in data analysis and interpretation. To be effective, the different available data sets should be linked during the model-generation process, e.g. by cooperative inversion. In this study, we apply a recently developed zonal cooperative inversion approach based on fuzzy c-means cluster analysis to a non-destructive testing experiment. After briefly reviewing the fundamentals of the inversion strategy, we present a synthetic study investigating the potential of the method to detect air-filled voids in masonry by using ultrasonic and georadar traveltime data. Then, we present and discuss laboratory experiments including the results of cooperatively inverted ultrasonic and georadar traveltimes collected at a masonry test specimen. The geometry of the specimen is known and is thus an ideal test object for a first-time real application of the novel zonal cooperative inversion procedure. Compared to the results of separate inversions of ultrasonic and georadar traveltimes, the zonal cooperative inversion allows for an improved delineation of the size and position of the cavities. The P-wave and georadar velocities determined for the model regions corresponding to the cavities are also improved.
Non-destructive tests (NDT) are an essential tool used in special inspections to gather detailed information about the condition of a bridge. The inspection of bridge decks is a critical task, and, currently, can be successfully carried out using a wide range of NDT techniques. Nevertheless, some of these techniques are excessively expensive and time consuming. One of these techniques, the ground penetrating radar (GPR), has been used for some decades in the non-destructive inspection and diagnosis of concrete bridges. GPR is useful to find general information about the true position of reinforcement and tendon ducts, and check the quality of the construction and materials. A significant number of reinforced and prestressed concrete bridges are deteriorating at a rapid rate and need to be repaired and strengthened. During these rehabilitation processes, designers are often faced with a lack of original design plans and unawareness of the real position of reinforcement and tendon ducts. In this paper, three case studies of the use of GPR techniques for the inspection of concrete bridges are presented and analysed. The main aim of this research is to show the strong need and usefulness of these techniques, which can provide non-visible information about structural geometry and integrity required for strengthening and rehabilitation purposes.
Moisture ingress is one of major damaging factors for masonry buildings. As the complex resistivity (CR) is sensitive to textural properties as well as to the pore fluid chemistry of wet porous media, its non-destructive application can provide helpful information for conservators. In a comprehensive laboratory study it has been shown that CR might even be able to distinguish between salt content and saturation degree in only one measurement. The combined use of electrical and electromagnetic measurement techniques in two field-scale flooding experiments has shown some unexpected differences. Possible reasons are discussed and it is shown that bringing together the information of both methods leads to a clearer picture.
Time slices of very dense GPR measurements carried out at concrete with a real point distance of less than 10 mm in x and y direction show weak reflection patterns besides the strong reflections of reinforcements. A repetition of these measurements with the same local geometrical precision at the same specimen shows the same reflection pattem. We suppose that the heterogeneity of concrete given by aggregates (e.g. gravel, broken granite) causes local weak Scattering of the GPR waves and leads to reflection patterns in the GPR data. These reflection patterns can be explained by a Superposition of multiple scatterings of single aggregates. So far these reflection patterns have been not recognized in Standard time slices due to the large spacing (> 5 cm) between single profiles and because of the interpolation between the profiles.
We investigate the characteristics of the volume scattering effects, caused by aggregates, at concrete blocks with two different grading curves. In a more general investigation we study the volume scattering of aggregates by using wooden boxes filled with only typical aggregates and an included defined reflector (metal plate). The thickness of the aggregate layer above the metal plate was varied between 20 cm and 40 cm. With a very dense measuring grid at the surface we are able to calculate the effective volume scattering and to analyze the distribution of the reflection amplitude of the included metal plate for different aggregate set-ups. Results of this study confirm that the weak reflection patterns in concrete can be explained by aggregate scattering and have a direct correlation to the penetration depth of GPR in concrete.
Air voids in concrete like honeycombs are one of the major concerns regarding quality assurance for the construction of infrastructure buildings like bridges or tunnels. This paper shows that voids in reinforced concrete walls or slabs can be detected by two standard ground coupled GPR antennas in transmission mode using a two-side zero-offset profiling configuration like in borehole radar applications. For the detection of voids only the amplitudes of the direct wave in transmission mode are evaluated. Even when the depth of the void can not be detected in this configuration, the major advantage of the zero-offset profiling in transmission mode is a lower interference with the surrounding reinforcement compared to a regular one-side reflection profiling. The capability of the two-side zero-offset profiling is demonstrated on a test specimen with a set of polystyrene balls of two different sizes representing voids like honeycombs in concrete. GPR measurements are realized by an automated scanning system in order to allow for a synchronous movement of the antennas. In transmission mode voids can be detected at greater depths compared to reflection mode, since the travel path of the direct wave is half as long. Another characteristic of the transmission mode is that the direct wave through the air voids is faster and arrives earlier than the direct wave in the surrounding concrete. Hence it can be separated from the strong reflection of the reinforcement. Finally the measurements in transmission mode are less sensitive to the antenna frequency and polarization than in reflection mode.
Die Ermittlung der genauen Bewehrungslage ist von großem Interesse bei der Instandsetzung und Ertüchtigung von Stahlbetonbauwerken. Denn nur wenn die Lage der für die Standsicherheit wichtigen Bewehrung bekannt ist, können Kernbohrungen oder Sägearbeiten schadensfrei durchgeführt werden. Das Bodenradar als zerstörungsfreie Methode ist wegen des einfachen Verfahrens der Antenne entlang einer Messspur für eine solche Aufgabenstellung sehr gut geeignet. Die Anwendung kann aber eingeschränkt werden, wenn die gesuchte Bewehrung zu tief liegt oder durch eine davor liegende Bewehrung abgeschattet wird. Bei der Ortung mehrlagiger Bewehrung ist es wichtig, einen mehrstufigen und effizienten Messplan zu erstellen, der den Aufwand auf einem vertretbaren Maß beschränkt und die Möglichkeit bietet, beim Erreichen der Verfahrensgrenzen rechtzeitig die Untersuchung abzubrechen. Am Beispiel einer Stahlbetonbrücke, die nachträglich mit externen Spanngliedern versehen wurde, wird das Vorgehen beim Orten von mehrlagiger Bewehrung gezeigt.
The concreting of prefabricated concrete structures can lead to insufficient bonding or even to remaining cavities. Honeycombs (aggregate clusters without cement) represent potential weakening of the structure and need to be detected non-destructively. In our study we tested the capability of ground penetrating radar (GPR) techniques for this purpose. We applied GPR in reflection mode and zero-offset profiling (ZOP) transmission mode on a precast concrete twin wall with built-in honeycombs. GPR measurements were performed as two channel measurement with ground coupled antennas with centre frequencies of 1.5 GHz and 2.6 GHz mounted to an automated scanner system.
Our findings show that ZOP transmission measurements are a more efficient method to detect voids in reinforced concrete structures compared to reflection mode measurements. This holds for both the effort needed for the measurement and the evaluation as well as the validity of the data. Honeycombs (basically representing voids) are usually characterized by strongly reduced amplitudes and earlier arrivals of the transmitted wave.