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Intumescent coatings are commonly used in civil engineering to improve the fire resistance of steel constructions. Especially in the case of tension bars, where mostly circular or rectangular solid sections are used, intumescent coatings offer an efficient measure to improve the fire resistance taking advantage of profile-following application and low coating thickness requirements. Thus, the architectural appearance of slender profiles can be preserved. The paper describes real-scale mechanically loaded and unloaded fire tests of circular and rectangular solid steel tension bars with intumescent coating. The aim of these tests is to investigate the influence of the different profile types as well as different bar orientations on the performance of intumescent coatings. The results are used to specify a normative test and assessment procedure to be implemented in a new European standard for determining the contribution of intumescent coatings to the fire resistance of circular or rectangular bars used as tension members.
The fire-induced spalling behaviour of concretes has a huge effect on the fire resistance of concrete components. Therefore, fire performance must be taken into account in the design and dimensioning of concrete structures. The use of new types of concrete and different types of cement or binder must also be considered. Despite decades of research, the mechanisms underlying the spalling phenomenon are not yet fully understood. However, knowledge about these mechanisms is the prerequisite for predicting the spalling behaviour as accurately as possible.
Experimental research from material characterisation on the micro scale up to full-sized fire tests as well as the simulation and modelling of fire-induced damage processes offer the opportunity to investigate the spalling behaviour of concrete. Thereby, a variety of influencing parameters must be regarded. Against this background, the effect of avoidance strategies can be evaluated.
Since 2009, the International Workshop on Concrete Spalling due to Fire Exposure (IWCS) offers a platform to get in touch with researchers and practitioners, exchange the latest research results and newly acquired data from real fire scenarios, and discuss current developments in the field of concrete spalling. After the successful workshops in Leipzig (Germany), Delft (Netherlands), Paris (France), Borås (Sweden) and Sheffield (United Kingdom), the 7th International Workshop IWCS took place in Berlin at BAM. It provided insights into the work of two RILEM Technical Committees. Based on this, various results of screening tests and large-scale tests for the assessment of the fire-induced spalling behaviour of concretes were presented, taking into account a large number of influencing parameters. Further topics of the workshop were the analysis of the mechanisms for the spalling phenomenon as well as the modelling and simulation of the spalling processes. A large part of the workshop was devoted to the high-temperature behaviour of various types of concrete.
The workshop was dedicated to Prof. Diederichs, who passed away on 20 January 2022. With his death, the spalling community lost an internationally renowned expert in the field of fire behaviour of concrete and reinforced concrete components. He played a decisive role in the design of all previous RILEM TCs on the high temperature and fire behaviour of concretes and reinforced concrete components.
Investigating the spalling behaviour of a concrete mixture using large scale members is complex and expensive. Thus, the susceptibility of concrete to spalling is investigated by means of fire tests on small scale specimens. However, the reduction of the fire exposed surface increases the influence of boundary effects. Macrocracking and the water loss via the lateral surfaces reduce the impact of the thermomechanical and thermohydraulic damage mechanisms and therefore, lower the risk of spalling. Thus, the influence of different restraints on the spalling behaviour of intermediate scaled specimens (Ø=0.47 m; h=0.29 m) was investigated for two ordinary concrete mixtures. Both mixtures had the same composition except the type of aggregate. One mixture contained only quartzitic aggregates, whereas the other mixture was made with basalt grit as coarse aggregates. Applied steel rings restrained the thermal expansion of the specimen and prevented the loss of water, whereas applied steel sheet primarily reduced the loss of water during the fire test. Additionally, the fire exposed surface of one specimen of each mixture was pre-dried under controlled climate conditions and fire tested with applied steel rings. The results show a higher spalling volume for the ring restrained specimens compared to the other covering types. Further, the pre-dried boundary zone leads to delayed and decreased occurrence of spalling compared to the non-dried specimens for the concrete with quartzitic aggregates and to a prevention of spalling for the mixture with basalt aggregates. Additionally, the results show that the influence of the thermomechanical behaviour of the coarse aggregates increases with increasing restraint. The restrained conditions of the specimens with applied steel ring are comparable to the conditions in the centre of a large scale member. This test series is a further step for possible concept of steel ring restraint concrete specimens as “screening-tests” in upcoming projects.
Investigating the spalling behaviour of a concrete mixture using large scale members is complex and expensive. Thus, the susceptibility of concrete to spalling is investigated by means of fire tests on small scale specimens. However, the reduction of the fire exposed surface increases the influence of boundary effects. Macrocracking and the water loss via the lateral surfaces reduce the impact of the thermomechanical and thermohydraulic damage mechanisms and therefore, lower the risk of spalling. Thus, the influence of different restraints on the spalling behaviour of intermediate scaled specimens (Ø0.47 m; h=0.29 m) was investigated for two ordinary concrete mixtures. Both mixtures had the same
composition except the type of aggregate. One mixture contained only quartzitic aggregates, whereas the other mixture was made with basalt grit as coarse aggregates. Applied steel rings restrained the thermal expansion of the specimen and prevented the loss of water, whereas applied steel sheet primarily reduced the loss of water during the fire test. Additionally, the fire exposed surface of one specimen of each mixture was pre-dried under controlled climate conditions and fire tested with applied steel rings. The results show a higher spalling volume for the ring restrained specimens compared to the other covering types. Further, the pre-dried boundary zone leads to delayed and decreased occurrence of spalling compared to the non-dried specimens for the concrete with quartzitic aggregates and to a prevention of spalling for the mixture with basalt aggregates. Additionally, the results show that the influence of the thermomechanical behaviour of the coarse aggregates increases with increasing restraint. The restrained conditions of the specimens with applied steel ring are comparable to the conditions in the centre of a large scale member. This test series is a further step for possible concept of steel ring restraint concrete specimens as “screening-tests” in upcoming projects.
The size effect has its origin in fracture mechanics and describes the formation as well as propagation of cracks in brittle and solid materials in dependence of the specimen size. However, the size effect in concrete spalling describes the damage behaviour on a macroscopic scale for different sized specimens in case of fire. Concrete spalling is a very complex and yet not fully understood phenomenon. To reduce the effort of fire tests to analyse the spalling behaviour of concrete mixtures, this study investigates the susceptibility to spalling for six different concrete mixtures and three specimen sizes. The sizes were divided in full scale slabs (1.8 m x 1.2 m x 0.3 m), intermediate scale cuboids (0.6 m x 0.6 m x 0.3 m) and small scale cylinders (Ø0.15 m x 0.3 m). For this purpose, a novel test set-up was built to test six intermediate scale or twelve small scale specimens simultaneously to ensure a similar heating regime for every specimen. All specimens were fire exposed on one side and remained unrestrained. A size effect occurred for four of the six concrete mixtures. Compared to the full scale specimens the spalling was reduced significantly for all smaller specimen sizes. Additionally, spalling did not occur for the small scale specimens. The results show that the specimen size is an essential parameter to investigate the susceptibility to spalling of a concrete mixture. For future investigations the testing conditions must be adjusted for the intermediate scale specimens to recreate the conditions of the slabs.
Nuclear magnetic resonance (NMR) with focus on 1H protons is increasingly applied for non-destructive testing applications. Besides mobile NMR, laboratory devices such as the NMR core-analyzing tomograph are used. As their magnetic field is more homogeneous, they enable measurements with higher signal-to-noise ratios (SNR), but with limited sample sizes. The tomograph presented here (8.9 MHz) was constructed for a maximum sample diameter of 70 mm and length of up to 1 m. The resolution, the echo time (min. 50 µs), the SNR and the measurement type can be adjusted by means of exchangable coils. The tomograph enables measurements along the complete sensitive length, slice-selective and even 2- or 3-dimensional measurements. A movable sample lifting system thereby allows a precise positioning of the sample.
Der diesjährige Beitrag zeigt den Einfluss ausgewählter Versuchsrandbedingungen auf das Abplatzverhalten von Normalbeton im kleinskaligen Brandversuch. Im Rahmen der Untersuchungen wurde die Abplatzneigung von acht zylindrischen Betonprüfkörpern der Maße Ø47 cm x 29 cm aus Normalbeton analysiert. Vier Prüfkörper wurden aus Normalbeton mit quarzitischer Gesteinskörnung hergestellt, wohingegen die grobe Gesteinskörnung (>2 mm) der anderen vier Prüfkörper durch Basaltsplitt ersetzt wurde. Neben der Art der groben Gesteinskörnung wurden zusätzlich ausgewählte Versuchsrandbedingungen variiert. Dies umfasste zum einen die Vorlagerung der Prüfkörper bei verschiedenen Umgebungsfeuchten und zum anderen die Ummantelung der Prüfkörper mit zwei Ringen aus Stahl bzw. einem durchgehenden Stahlblech. Die Ummantelung der Prüfkörper mit Stahlringen im Brandversuch führt zu einer Behinderung der thermischen Ausdehnung der Prüfkörper und zum Aufbau thermomechanischer Zwangsdruckspannungen. Diese Zwangsdruckspannungen werden maßgeblich von der thermischen Ausdehnung der verwendeten Gesteinskörnung beeinflusst. Zusätzlich wird die Feuchteabgabe über die Mantelfläche behindert. Der Einsatz des Stahlblechs reduziert lediglich die Abgabe der Feuchtigkeit über die Mantelfläche und induziert vernachlässigbare Zwangsdruckspannungen im Beton. Die Brandbeanspruchung der Prüfkörper erfolgte einseitig nach der Einheits-Temperaturzeitkurve (ETK) über einen Zeitraum von 60 Minuten. Mit Hilfe eines Laser Scanners wurden vergleichende 3D-Messungen der brandbeanspruchten Oberfläche vor und nach dem Brandversuch durchgeführt. Aus diesen Messungen konnten das Abplatzvolumen, die Abplatztiefenverteilung und die maximale Abplatztiefe ermittelt werden. Während des Brandversuchs wurde die Temperaturverteilung im Prüfkörper mittels fünf eingebetteter Mantelthermoelemente in verschiedenen Tiefen bestimmt. Die Ergebnisse zeigen, dass die Abplatzungen an der brandbeanspruchten Oberfläche infolge der Prüfkörperummantelung mit Stahlringen bzw. Stahlblech zunehmen. Bei einer Ummantelung mit Stahlringen mit gleichzeitiger Vortrocknung der Betonrandzone platzt der Prüfkörper mit quarzitischer Gesteinskörnung ab, wohingegen der Prüfkörper mit basaltischer Gesteinskörnung keine Abplatzungen aufweist. Dies wird auf die unterschiedliche Ausprägung der thermomechanischen Schädigung infolge der unterschiedlichen thermischen Ausdehnungskoeffizienten von Quarzkies und Basalt zurückgeführt.
Die Ergebnisse der Brandprüfserie zeigen, dass die Variation der Prüfrandbedingungen bei Beibehaltung der Prüfkörpergröße einen maßgeblichen Einfluss auf das Abplatzverhalten haben. Die Randbedingungen sind daher bei kleinskaligen Brandversuchen, die zukünftig als „Screening-Tests“ ersatzweise für kostenintensive Bauteilversuche verwendet werden sollen, zu berücksichtigen.