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Eingeladener Vortrag
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In diesem Beitrag werden Untersuchungsergebnisse vorgestellt, die den Einfluss von Mikrosilica auf die Selbstaustrocknung und das damit verbundene autogene Schwinden der Bindemittelmatrix von Hochleistungsbetonen beschreiben. Die dadurch hervorgerufenen Schädigungsprozesse wurden mit Hilfe von zerstörungsfreien Prüfmethoden verfolgt. Dabei zeigte sich, dass eine durch äußeren Zwang bedingte Mikrorissbildung durch Schallemissionsanalyse detektiert werden kann.
Vom Baustoff zum sicheren Bauwerk: Einsatz der Schallemissionsanalyse in der Bauabteilung der BAM
(2013)
Seit 2006 wird die Schallemissionsanalyse (SEA) in der Abteilung 7 Bauwerkssicherheit der BAM genutzt, um Gefügeveränderungen in Betonen zu untersuchen. Dabei haben sich bis heute im Wesentlichen folgende vier Forschungsbereiche herauskristallisiert:
Hydratation
Während der Hydratation von Beton ist eine ausgeprägte Schallemissionsaktivität zu beobachten, anhand derer der Hydratationsverlauf nachvollzogen werden kann. Zur Aufklärung der Quellmechanismen der Schallemissionen besteht noch weiterer Forschungsbedarf. Des Weiteren kann mit Hilfe der SEA die frühe Rissbildung in Betonen, hervorgerufen durch autogenes oder plastisches Schwinden, analysiert werden.
Alkali-Kieselsäure-Reaktion (AKR)
Bei der AKR handelt es sich um eine Reaktion alkaliempfindlicher Gesteinskörnungen mit den Alkalien des Betons bzw. mit extern, z.B. durch Tausalze, zugeführten Alkalien. Dabei werden um die oder in der Gesteinskörnung quellfähige Gele gebildet, die zu einer völligen Zerstörung des Gefüges führen können. Mit der SEA können die Rissbildung detektiert und somit die Schädigungsphasen im Verlauf der AKR identifiziert werden.
Brandverhalten
Unter Brandeinwirkung platzt die Oberfläche gefügedichter Hochleistungsbetone explosionsartig ab. Um dies zu verhindern und somit den Feuerwiderstand von Bau-teilen aus Hochleistungsbeton zu erhöhen, werden dem Beton Polypropylenfasern beigemischt. Das Schmelzen der Fasern bei einer Temperaturerhöhung trägt zu einer erhöhten Mikrorissbildung bei, die einen Spannungsabbau ermöglicht. Die SEA konnte erfolgreich eingesetzt werden, um diesen Wirkmechanismus der Fasern nachzuweisen und weiter aufzuklären.
Ermüdungsverhalten
Durch die hohen zyklischen Lasten, für die Türme und Fundamente von Windkraft-anlagen ausgelegt werden müssen, gewinnen gesicherte Kenntnisse über das Ermüdungsverhalten von Betonen an Bedeutung. Mit der SEA ist es bei hochzyklischen Belastungsversuchen an Betonen möglich, den Schädigungsgrad im Verlauf der Beanspruchung zu bestimmen. Die Schallemissionsaktivität eignet sich als Kriterium, um die Versuche bei vorab definierten Schädigungsgraden zu unterbrechen und so Proben für weitergehende Untersuchungen zu gewinnen. Diese Ergebnisse sollen perspektivisch für Überwachungssysteme für Betonbauwerke unter zyklischer Beanspruchung genutzt werden.
Untersuchung des Einflusses der Gefügedichte von Betonen auf die AKR mit neuartiger Prüftechnik
(2011)
It has been shown in fire tests that polypropylene fibres reduce or avoid explosive spalling of high performance concrete. In the critical temperature ränge up to 300 °C the permeability of HPC increases by using polypropylene fibre. Due to this the water vapour, which is the main reason for explosive spalling, can escape. There exist different theories in the literature conceming the micro structural mechanisms, which cause an increase in the permeability. Within the framework of an internal research project at BAM an innovative methodology was developed for experimental verifying of existing theories and to get new insights into this problem The methodology used is unique and has been undertaken here for the first time. This consists of the combination of acoustic emission and ultrasonic measurement during temperature loading and the non-destructive micro structural analysis of cooled down samples with the aid of micro X-ray computed tomography. For the validation of the nondestructive test methods scanning electron microscopic images of prepared samples were undertaken. The results show that due to the thermal decomposition of the polypropylene fibres micro canals emerge. These are connected due to a simultaneous micro cack formation.
The accelerated concrete prism test (ACPT-60 °C) facilitates testing of alkali-silica reactivity of aggregates within five months. Manual measurement is usually conducted to determine expansion of test specimen every 28 days. This conventional procedure gives only limited insight to expansion behaviour of ASR-affected prisms. Due to the large time intervals, expansion exceeding the critical value of 0.3 mm/m is likely to be noticed late. Continuous recording resolves this problem and delivers beneficial information on the shape of the expansion curve.
Displacement transducers integrated into a special testing equipment developed at BAM put continuous measurement into practice. Additionally, ultrasonic velocity and acoustic emissions are measured in-situ and provide deeper insights into hydration and crack formation processes during the test.
Aiming for an automated testing method close to the German guideline, the following technical and methodical challenges arise. Changing of the vertical orientation of the prisms with every manual measurement as standardised cannot be implemented. Furthermore, preliminary results already proved true that cooling and heating cycles, as necessarily associated with each manual measurement, can evoke additional expansion. Therefore, interrupted and continuously measured expansions reveal systematic differences, indicating the necessity to adjust the threshold expansion value for automated testing.
Results presented in the paper: Different types of reactive aggregate have been tested applying continuous and manual expansion measurement to the concrete specimens. Development of continuously measured ultrasonic velocity and acoustic emissions of the aggregates tested diverge significantly while the expansion curves vary in shape and maximum strain. Prisms produced from a slowly reacting aggregate do not exhibit noticeable crack formation. It shows that comprehensive measuring helps describing and distinguishing ASR-damage mechanisms.
Models of ASR-induced expansion, available in the open literature, so far are validated with discontinuous data hardly tracing the modelled curve. Continuous measurement improves validation and further model development.
In recent years the German motorway network has seen an increase in the occurrence of damage to concrete road surfaces which can be attributed to the alkali-silica reaction (ASR). In view of the often drastically reduced life expectancy of road surfaces due to ASR, research activity in this field has notably increased. Alongside preventative measures in concrete technology, the main research focus up to now has been the development of performance-oriented testing procedures for ASR prevention. This included more specifically the accelerated simulation of climatic effects and external alkali penetration on road surfaces. The effects of mechanical pre-damage resulting from cyclic traffic loading and climatic impact had previously not been taken into consideration. Since 2011, the five-partner research group 1498 sponsored by the German Research Foundation (DFG) has been pursuing research on how simultaneous cyclic loading and external alkali penetration impacts destructive ASR in road surface concretes. The depiction of the myriad degradation and transport processes necessary for an understanding of these effects requires close interaction between experiments and their multi-scale modelling. This paper aims to focus on the aforementioned experiments by means of innovative testing techniques. The research is founded on a series of cyclic fatigue tests performed on large-format beams, both with and without previous application of a sodium chloride (NaCl) solution, with simultaneous tracking of crack development. Subsequently, smaller test specimens were extracted from the pre-damaged beams for further experiments. These included the spatial visualization and quantification of fatigue-induced cracks using micro X-ray 3D-computed tomography (3D-CT). Additionally, the effects of fatigue-induced cracks on alkali transport were investigated using Laser-Induced Breakdown Spectroscopy (LIBS). Subsequent storage of the small-format test specimens, with and without cyclic pre-damage, in an ASR-conducive environment then provided initial findings on the influence of fatigue-induced predamage on the ASR.
This paper presents the results of an experimental study on the influence of polypropylene (PP) fibres on the thermal strain of high strength concrete (HSC) at temperatures up to 750°C. Concerning this topic only few results can be found in the literature and systematic investigations are missing. However, basic knowledge is necessary to understand the internal damage processes as well as for structural design.
To explain the differences in the thermal strain of HSC with and without addition of PP fibres the internal damage processes were investigated with acoustic emission (AE) analysis and ultrasound (US). Furthermore the weight loss was measured continuously during heating to monitor the drying of the specimen. This novel approach by combining these different methods with strain measurements at high temperatures allows the integral description of the internal damage processes. The results reveal significant differences in the thermal strain of HSC when PP fibres are added. Between 200°C and 250°C the thermal strain of HSC with PP fibres is superimposed by shrinkage caused by accelerated drying. Above 250°C it is lower than that of plain HSC without PP fibres. It is supposed that it is caused by a more homogeneous distribution of micro cracks whereby the fibre beds acting as defects in the concrete.
Hence this paper gives a contribution to the general understanding of the impact of PP fibres in HSC at high temperatures and points out the influence of the fibres on the thermal strain of HSC.