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Eingeladener Vortrag
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The closure of underground nuclear waste disposal facilities requires reliable gas- and water-tight 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 objects 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 such as Reverse Time Migration, both aiming at the improvement of depth of penetration, resolution and probability of detection.
Für die Festigkeit von faserverstärkten Betonen spielt die beim Gießvorgang hervorgerufene Faseranisotropie eine wichtige Rolle. In den computertomographischen Aufnahmen lässt sich die anhand der Eigenvektoren der Hessianmatrix an der Faser ermittelte räumliche Orientierung der Fasern berechnen und im sphärischen Koordinatensystem darstellen.
Mit für die CT-Anlagen ausgelegten Prüfeinrichtungen ist es möglich mechanische Belastungen, Wärmeeinwirkung und Feuchtetransport in Betonproben während einer CT-Messung durchzuführen. Die Analyse dieser In-situ Messungen erfordert zum Teil speziell auf die Erfordernisse angepasste Auswerteverfahren. Dazu zählen die automatische Rissdetektion oder die Korrektur der Streustrahlung bei der Wasseraufnahme.
Fiber-reinforced concretes (FRCs) offer significant improvements in tensile strength and durability compared to most other concrete mixes.
However, for safe and efficient use of FRC in large structures, anisotropy of fiber orientation needs to be understood and properly controlled. In this project, both cored samples extracted from a FRC slab and FRC samples cast individually in molds were assessed using X-ray computed tomography (CT) and measurements of fiber orientation were extracted from the resulting CT images. These results showed that fibers within the slab were highly anisotropic in orientation while fibers in individually cast samples showed a much more heterogeneous distribution of orientations.
This indicates that fiber orientation is highly dependent on the casting process and suggests that FRC can only be safely and efficiently utilized if anisotropic fiber orientation is properly accounted for during design and optimized casting methods are used during construction.
This paper focuses on the experimental evaluation of one of the key microstructural Parameters of a short-fiber reinforced composite – the orientation distribution of fibers. It is shown that computed tomography (CT) produces results suitable for reconstruction of the orientation distribution function. This function is used for calculation of the effective elastic properties of polymer-fiber reinforced concrete. Explicit formulas are derived for overall elastic moduli accounting for orientation distribution in the frameworks of the noninteraction approximation, the Mori–Tanaka–Benveniste scheme, and the Maxwell scheme.
The approach illustrated can be applied to any kind of composite material.
Beton ist das meistbenutzte Baumaterial der Welt. Sein Herstellungsprozess ist auch für schätzungsweise 5% der globalen Kohlenstoffemissionen verantwortlich. Daher können selbst kleine Verbesserungen in der Festigkeit oder Haltbarkeit zu einer erheblichen Verringerung der Bau- und Wartungskosten, der Umweltschäden und der Gefahr für die Menschen führen. Um das grundlegende Verhalten dieses Materials zu verstehen, ist es notwendig, seine Leistung während thermischer, chemischer und mechanischer Prozesse (d. h. in-situ) zu beobachten. Es wird eine zerstörungsfreie Messmethode benötigt, die in der Lage ist, nicht nur Änderungen des Materials wie Feuchtigkeitsumverteilung, Korrosion und Dehnung zu messen, sondern auch die innere Struktur des Materials im Dreidimensionalen aufzulösen, so dass Versagensmechanismen und Transportphänomene direkt auf bestimmte Eigenschaften der heterogenen Materialstruktur bezogen werden können (wie z.B. die Übergangszone zwischen Gesteinskörnungen und Zementstein oder die Orientierung von eingebetteten Fasern).
Die Röntgencomputertomographie (CT) hat sich als ideal für solche Zwecke erwiesen. Neuere Forschungen an der BAM werden vorgetragen, die die Fähigkeiten der CT zur Identifizierung quantitativer Materialeigenschaften wie Faserorientierung, Rissoberfläche, Korrosionsverteilung und Änderungen des volumetrischen Feuchtigkeitsanteils demonstrieren. Der Nutzen dieser leistungsstarken Analysewerkzeuge wird dann anhand der Ergebnisse einer Reihe von Ex-situ und In-situ Testprogrammen für Bedingungen wie mechanische Belastung, Wassertransport und thermische Exposition gezeigt. Speziell entwickelte In-situ Testmaschinen für diese verschiedenen Testprogramme werden ebenfalls beschrieben. Die von der CT gelieferten quantitativen Charakterisierungsinformationen haben sich als ideale Grundlage für die Kalibrierung bzw. Validierung von numerischen Simulationen erwiesen. CT ist auch wesentlich für die Beantwortung von vielen anwendungsspezifischen Fragen, u.a. wie sich verschiedene Gießverfahren auf die Materialleistung auswirken, welche Mineralien sich als Zuschlagstoffe anfällig für langfristige chemische und hydraulische Prozesse erweisen und wie Polymerfasern den Druckaufbau in Beton während der thermischen Belastung beeinflussen.
Um das grundlegende Verhalten des Betons zu verstehen, wird eine zerstörungsfreie Messmethode benötigt, die in der Lage ist, nicht nur Änderungen des Materials wie Feuchtigkeitsumverteilung, Korrosion und Dehnung zu messen, sondern auch die innere Struktur des Materials im Dreidimensionalen aufzulösen, so dass Versagensmechanismen und Transportphänomene direkt auf bestimmte Eigenschaften der heterogenen Materialstruktur bezogen werden können. Die Röntgencomputertomographie (CT) hat sich als ideal für solche Zwecke erwiesen. Diese Präsentation demonstriert die Fähigkeiten der CT zur Identifizierung quantitativer Materialeigenschaften wie Faserorientierung, Rissoberfläche, Korrosionsverteilung und Änderungen des volumetrischen Feuchtigkeitsanteils. Durch die Beschreibung der Ergebnisse einer Reihe von Ex-situ und In-situ Testprogrammen für Bedingungen wie mechanische Belastung, Wassertransport und thermische Exposition, sind auch die Nutzungsmöglichkeiten von diesem Verfahren dargestellt.
This poster provides an overview of ultrasonic investigations of an engineered test barrier at ERAM Morsleben, which were completed as part of contractual work with the Bundesgesellschaft für Endlagerung mbH (BGE). This includes both experiments with the Large Aperture Ultrasound System (LAUS) and the ultrasonic borehole array. Also included in the poster is a description of the planned BAM thematic project “SealWasteSafe”. In particular, the proposed geopolymer materials are described and future research requirements are detailed.
Unilateral thermal exposure of concrete building components induces moisture transport processes that have a significant influence on the spalling behaviour of dense high-strength concrete (HSC). These transport processes are based on evaporation and condensation mechanisms of liquid and gaseous water in the pores as well as the chemically bound water within the concrete. The low permeability of HSC and the formation of a saturated zone within building components (also known as a moisture clog) leads to high water-vapour pressures, which contributes to explosive spalling. The formation of these pressures has already been verified by means of pore-pressure measurement techniques. In addition, the redistribution of the moisture within concrete specimens subject to unilateral thermal exposure has been demonstrated on fractured surfaces. Investigations by means of the nuclear magnetic resonance (NMR) relaxometry technique and neutron radiography have shown one-dimensional changes in moisture distribution during thermal exposure.
However, none of these methods has been able to depict the moisture distribution in three dimensions (3D), so the link between pore size, concrete micro-structure and moisture content is missing. The research project presented in this paper aims to fill this gap by developing a new multi-level test methodology to characterise non-destructively the temporal course of spatial moisture distribution during unilateral thermal exposure. The procedure used during this programme included the collection of X-ray 3D-computed tomography (CT) measurements using a miniaturised specimen subjected to in-situ thermal exposure and the comparison of those CT results with the results of one-dimensional NMR-relaxometry before and after the heating process.
In the first step, a mobile heating device was developed, built and tested. To simulate a unilaterally-heated construction component, a cylindrical specimen made of HSC (Ø = 40 mm, L = 100 mm) was cast into an impermeable glass ceramic shell. The ceramic shell ensured a one-dimensional moisture flux and limited the thermal expansion of the concrete. An additional high-temperature wool (HTW) insulating shell ensured a one-dimensional heat flux. The heating device, which operated using infrared radiation (IR), allowed the unilateral heating of the specimens up to 300 °C using variable heating regimes.
In the second step, the mobile heating device was integrated into the CT-scanner, which enabled the collection of measurements before, during and after heating. By subtraction of successive 3D-CT images, X-ray attenuation differences could be resolved three-dimensionally in the specimen and interpreted as changes in the moisture content.
Initial results show that this test methodology can monitor the 3D changes of moisture content inside the specimen during thermal exposure. It enables the researcher to visualise areas with moisture accumulation as well as dehydrated areas inside the specimen. Comparative one-dimensional NMR-relaxometry measurements confirm the results of the CT image analysis.
It is known that the spalling risk of dense, high-strength concretes (HSC) can be reduced by the addition of polypropylene (PP) fibres and, in particular, PP-fibres that have been pre-treated using electron irradiation. It is presumed that the enhanced reduction in spalling resulting from electron irradiation pre-treatment of the fibres can be attributed to enhanced penetration of the molten fibre material into the micro-cracks around the fibres, due to their significantly decreased viscosity. So far there has been no experimental evidence for this. Against this background, this paper gives a com-parative analysis of the mode of action of PP-fibres with and without pre-treatment using multi-scale test methodology.
Initially, fire tests on small-scale building components with accompanying damage monitoring veri-fied that the amount of PP-fibres can be halved by using pre-treated PP-fibres without reducing the fire performance of HSC. Detailed investigations of PP-fibres carried out in a completed research project funded by DFG (the German Research Foundation) using digital scanning calorimetry and thermogravimetry measurements (DSC/TG) as well as viscometer measurements showed that the pre-treatment has no significant influence on the melting temperature of the PP-fibres. However, a drastic reduction of the melt viscosity due to the electron irradiation was detectable. Additional dila-tation tests showed that the expansion behaviour of both fibre types and their melts do not differ significantly [1]. Rather, both fibre types generate high pressures when their thermal expansion is hindered. Further detailed investigations by means of continuous heating tests with a low heating rate were carried out on separately produced concrete cylinders. These tests showed that the pre-treatment of the PP-fibres causes earlier dehydration in conjunction with stagnation of thermal expansion of the concrete cylinders (temperature reduction from 180 °C to 170 °C). This is accompanied by in-creased acoustic emission activity during the thermal expansion tests. This leads to the assumption that the pre-treatment of PP-fibres results in earlier micro-crack development. However, it was not possible to confirm this assumption by microscopic examination of drilling cores with a diameter of 30 mm exposed to defined temperatures in the range between 150°C and 300°C. Microscopic obser-vations and additional X-ray 3D computed tomography (3D-CT) scans on miniaturised drilling cores exposed to temperature cycles showed a similar networking of fibre beds by means of micro-cracks in HSC for both fibre types. However, energy dispersive X-ray spectroscopy and wavelength disper-sive X-ray spectroscopy revealed fundamental differences in the penetration capacity of the fibre melts of the two fibre types. The increased penetration of the pre-treated PP-fibre melt revealed in these tests, confirms the initial working hypothesis.
Although concrete itself is not a combustible material, concrete mixtures with high density, such has high-performance concretes (HPCs), are susceptible to significant damage during fires due to explosive spalling. Past research has shown that the inclusion of polymer fibers in high density concrete can significantly mitigate fire damage due to the contribution of the fibers to increased permeability levels at high temperature. This allows vapor pressures caused by the evaporation of internal water during fire to escape from the material without causing significant spalling. Recent microscopic investigations have also shown that the addition of polypropylene (PP) fibers to high-density HPC with a high amount of fine-aggregate has a considerable influence on the nature and character of crack formation due to autogenous shrinkage. Initial cracks, which originate from the fiber beds, undergo further expansion and propagation when concrete is subjected to thermal exposure in excess of 170 °C. It is thus of interest to determine whether the resulting cracks join the adjacent fiber beds and therefore contribute to a significant increase in the permeability of the concrete, which is directly correlated to lower pore pressures and reduced spalling during fire.
In this study, X-ray Computed Tomography (CT) was applied to provide a clear demonstration of the interaction between polymer fibers and cracking during thermal exposure. For this purpose, two concrete samples containing different polymer fiber types were subjected to incremental application of a defined thermal exposure. CT images were acquired before and after each thermal exposure and powerful image processing tools were used to segment the various material components, such as polymer fibers, cracks, aggregates and cement matrix, in each image. This enabled a detailed analysis of crack formation and propagation as well as the visualization and quantification of polymer fiber characteristics within the concrete. This paper will provide a description of the distribution and orientation characteristics of the polymer fibers within each sample obtained through the CT-based analysis. Using these results, the impact of fiber distribution and orientation characteristics on actual cracking geometries have been measured and visualized. This paper will also provide recommendations for further optimization of the selected materials and propose improved methods for future CT-based analysis techniques.