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High-throughput fire tests and weathering-induced degradation behaviour of intumescent coatings
(2018)
In this work, the weathering-induced degradation of intumescent coatings was investigated by a systematic and comprehensive approach. A mechanism is revealed that is proposed to be responsible for the loss of function of intumescent coatings induced by weathering.
First, the thermal decomposition of artificially weathered intumescent coatings was examined. To get a better understanding of the weathering and ageing phenomena, the degradation behaviour of the single ingredients during the weathering process was investigated, as well as their chemical and physical interactions. For the systematic approach, the materials that are essential for intumescence (ammonium polyphosphate, pentaerythritol, titanium dioxide, melamine and the binder) are treated with moisture, elevated temperature and UV radiation.
Thermogravimetry (TG) and IR spectroscopy were used to compare the initial samples with their different grades of weathering. We demonstrate that ammonium polyphosphate, melamine and the binder are mainly responsible for the ageing process. Further, it was demonstrated that TG and IR spectroscopy are suitable measuring methods to detect the effects of weathering on intumescent coatings.
Finally, a small-scale fire test procedure is introduced. Based on the reduction of the sample size, up to 50 samples can be tested in a single fire test. The results of this fire test have the same quality as the results from standard intermediate fire tests corresponding to DIN 4102-8.
Zur brandschutztechnischen Ertüchtigung von Stahlkonstruktionen werden reaktive Brandschutzsysteme aufgrund der geringen Beschichtungsdicken und der profilfolgenden Applikation in zunehmendem Maße eingesetzt. Da die für Zugstabsysteme eingesetzten Bauteile meist eine stark konvex gekrümmte Oberfläche aufweisen und der Anschlussbereich über eine vergleichsweise komplexe Geometrie verfügt, stellt dies besonders hohe Anforderungen an die Leistungsfähigkeit von reaktiven Brandschutzsystemen. Anhand von realmaßstäblichen Brandversuchen wurden das Aufschäumungs- und Rissverhalten, der Einfluss der Trockenschichtdicke, die Erwärmung der einzelnen Stahlbauteile sowie der Einfluss der Bauteilorientierung untersucht. Die Ergebnisse zeigen, dass eine Abnahme der Oberflächenkrümmung oder eine Erhöhung der Massenkonzentration der Stahlbauteile zu einer geringeren Aufheizrate des Stahls führt. Darüber hinaus ist festzustellen, dass die Leistungsfähigkeit des reaktiven Brandschutzsystems von der Bauteilorientierung der Zugstabsysteme beeinflusst wird. Die durchgeführten Brandversuche können zur Entwicklung geeigneter Prüfszenarien für die Beurteilung von reaktiven Brandschutzsystemen auf Zugstabsystemen und deren Anschlusskonstruktionen verwendet werden, wodurch eine Erweiterung des zulassungsbasierten Anwendungsbereichs ermöglicht wird.
Die Erkenntnisse zu reaktiven Brandschutzsystemen (RBS) werden kontinuierlich erweitert, was sich in der Entwicklung neuer Produkte und der Ausweitung des durch technische Regelungen abgedeckten Anwendungsbereichs äußert. Der hier vorliegende Beitrag konzentriert sich auf die Verwendung von RBS auf Stahlkonstruktionen. In den vergangenen zehn Jahren wurden, abgesichert durch neue Erkenntnisse aus der Forschung, die Anwendung auf Stahlzuggliedern mit offenem Profil präzisiert und im Rahmen allgemeiner bauaufsichtlicher Zulassungen (abZ) neu geregelt. Ferner wurde die Grundlage geschaffen, die Anwendung von RBS auf Zuggliedern mit kreisrundem Vollprofil zu bewerten und auf Basis der abZ zu ermöglichen.
Neben einer umfassenden Darstellung der aktuellen nationalen und europäischen Regelungen zu RBS, werden technologische Besonderheiten und deren Einfluss auf den Regelungsinhalt im Beitrag thematisiert.
In der jüngsten Vergangenheit stellt sich mit zunehmender Dringlichkeit die Frage nach der Bewertung der Dauerhaftigkeit von RBS für lange Zeiträume, wobei damit Nutzungsdauern weit jenseits der in den nationalen und europäischen Regelungen bereits etablierten 10 Jahre gemeint sind. In diesem Zusammenhang ist zu klären, wie der Feuerwiderstand von Konstruktionen zu bewerten ist, die bereits über lange Zeiträume mit RBS versehen sind. Nicht zuletzt stellt sich die Frage nach der Dauerhaftigkeit der Systeme selbst und adäquaten Prüfverfahren zu deren Beantwortung. Neue und bereits etablierte Ansätze werden vorgestellt und diskutiert.
Der Beitrag schließt mit einer Darstellung der aktuellen Forschung. Neben den Forschungsaktivitäten zur Dauerhaftigkeit sind hier insbesondere Untersuchungen zur Anwendung und Bewertung von RBS auf Grundlage von Naturbränden und extremen Brandereignissen genannt. Neuste Untersuchungen befassen sich auch mit der Anwendung von RBS auf
komplexen Geometrien wie auch auf anderen Substraten wie Beton, Aluminium und faserverstärkten Kunststoffen sowie hybriden Werkstoffen. Die hybriden Werkstoffe aus der Kombination von Metallen und Verbundwerkstoffen sind derzeit vorwiegend im Behälter-, Fahrzeug- und Flugzeugbau anzutreffen. Auch die bereits vor Jahrzehnten begonnenen Aktivitäten zur Entwicklung rechnerischer Verfahren zur Beurteilung der Wirkungsweise von RBS werden in der aktuellen Forschung fortgeführt und weiterentwickelt.
Die Erkenntnisse zu reaktiven Brandschutzsystemen (RBS) werden kontinuierlich erweitert, was sich in der Entwicklung neuer Produkte und der Ausweitung des durch technische Regelungen abgedeckten Anwendungsbereichs äußert. Der hier vorliegende Beitrag konzentriert sich auf die Verwendung von RBS auf Stahlkonstruktionen. In den vergangenen zehn Jahren wurden, abgesichert durch neue Erkenntnisse aus der Forschung, die Anwendung auf Stahlzuggliedern mit offenem Profil präzisiert und im Rahmen allgemeiner bauaufsichtlicher Zulassungen (abZ) neu geregelt. Ferner wurde die Grundlage geschaffen, die Anwendung von RBS auf Zuggliedern mit kreisrundem Vollprofil zu bewerten und auf Basis der abZ zu ermöglichen.
Neben einer umfassenden Darstellung der aktuellen nationalen und europäischen Regelungen zu RBS, werden technologische Besonderheiten und deren Einfluss auf den Regelungsinhalt im Beitrag thematisiert.
In der jüngsten Vergangenheit stellt sich mit zunehmender Dringlichkeit die Frage nach der Bewertung der Dauerhaftigkeit von RBS für lange Zeiträume, wobei damit Nutzungsdauern weit jenseits der in den nationalen und europäischen Regelungen bereits etablierten 10 Jahre gemeint sind. In diesem Zusammenhang ist zu klären, wie der Feuerwiderstand von Konstruktionen zu bewerten ist, die bereits über lange Zeiträume mit RBS versehen sind. Nicht zuletzt stellt sich die Frage nach der Dauerhaftigkeit der Systeme selbst und adäquaten Prüfverfahren zu deren Beantwortung. Neue und bereits etablierte
Ansätze werden vorgestellt und diskutiert.
Der Beitrag schließt mit einer Darstellung der aktuellen Forschung. Neben den Forschungsaktivitäten zur Dauerhaftigkeit sind hier insbesondere Untersuchungen zur Anwendung und Bewertung von RBS auf Grundlage von Naturbränden und extremen Brandereignissen genannt. Neuste Untersuchungen befassen sich auch mit der Anwendung von RBS auf komplexen Geometrien wie auch auf anderen Substraten wie Beton, Aluminium und faserverstärkten Kunststoffen sowie hybriden Werkstoffen. Die hybriden Werkstoffe aus der Kombination von Metallen und Verbundwerkstoffen sind derzeit vorwiegend im Behälter-, Fahrzeug- und Flugzeugbau anzutreffen. Auch die bereits vor Jahrzehnten begonnenen Aktivitäten zur Entwicklung rechnerischer Verfahren zur Beurteilung der Wirkungsweise von RBS werden in der aktuellen Forschung fortgeführt und weiterentwickelt.
In this study, a nonlinear three-dimensional finite element (FE) model was developed and validated to investigate the response of concrete filled tube (CFT) columns subjected to post-earthquake fires. Three steps were considered successively in the modelling, namely, cyclic, thermal and structural analyses. Outputs from the cyclic loading including residual deformationswere imposed as an initial condition to the thermal-stress model, imitating the seismic response of the column. Subsequently, a nonlinear sequentially thermal-stress analysis was conducted to simulate the fire response of column after the earthquake. The proposed FE model was validated by comparing the simulation resultswith the observations of full-scale fire and cyclic tests available in the literature.
The validated numericalmodelwas then used to study the behavior of CFT columns under the combined action of earthquake and fire as a multi-hazard event. Three probable seismic damage scenarios were considered in the column, namely, middle length, bottom and top end region damages. The level of damage was assumed as a high damage level, presuming that the column reached 50% of its lateral resistance while still maintaining ist overall stability after the earthquake. The results showed that the top and bottom end region damages have not significantly influence the fire response of the damaged column. Besides, the column with the middle span damage performed a lesser fire resistance time owing to the coincidence of damage location to that of onset of global buckling.
In this paper, a nonlinear three-dimensional finite element (FE) model was developed and validated to study the effect of seismic damage location on the response of concrete filled tube (CFT) columns at fire after earthquakes. Three analyses were conducted consecutively in the modelling, namely, cyclic, thermal and structural. Results of the cyclic loading analysis comprising residual deformations were applied as the Initial condition to the thermal-stress model, replicating the seismic performance of column.
Following, a nonlinear sequentially coupled-thermal stress Analysis was carried out to investigate the fire response of CFT columns after the seismic event. Three damage scenarios were contemplated, considering any possible potential damages that could be generated by the earthquake loading on CFT columns. The accuracy of the proposed FE model was examined by comparing the numerical results with that of available tests on fire and cyclic loading. By means of the validated model, the performance of damaged CFT columns was then investigated under fire after earthquakes. The level of damage was assumed as a high damage level, presuming that the column reached 50% of ist lateral resistance while still maintaining its overall stability after the earthquake. The results were presented broadly, including the axial deformation history as well as the fire resistance time for CFT columns. To have a comprehensive insight on the influence of damage location in columns, the fire response of damaged specimens was compared with that of an intact one.
Steel tension rod systems consist of tension rods, fork connectors and associated intersection or connecting plates. They are used for truss systems, bracings or suspensions owing to slender design and increased economic efficiency. In case of fire, beside the tension rods themselves, the connection parts require appropriate fire protection. The use of intumescent fire protection coatings prevents a rapid heating of the steel and helps to ensure the load-carrying capacity of the structures. Because the connection components of the tension rod systems feature surface curvature as well as a complex geometry, high demand is placed on the intumescence and thermal protection effectiveness of the reactive fire protection coatings. Experimental studies were carried out to investigate the performance of intumescent coatings applied to the components of tension rod systems. The examined aspects include the foaming and cracking behaviour of the intumescent coatings, the influence of different dry film thicknesses (DFT), the heating rate of the steel connecting parts in comparison to the tension rods, as well as the mounting orientation of the tension rods together with their associated fork connectors. The results show that a decrease in the surface curvature and/or an increase in the mass concentration of the steel components lead to a lower heating rate of the steel. Moreover, the performance of the intumescent coating on tension rod systems is influenced by the mounting orientation of the steel components.
Steel tension rod systems consist of tension rods, fork connectors and associated intersection or connecting plates. They are used for truss systems, bracings or suspensions owing to slender design and increased economic efficiency. In case of fire, beside the tension rods themselves, the connection parts require appropriate fire protection. The use of intumescent fire protection coatings prevents a rapid heating of the steel and helps to ensure the load-carrying capacity of the structures. Because the connection components of the tension rod systems feature surface curvature as well as a complex geometry, high demand is placed on the intumescence and thermal protection effectiveness of the reactive fire protection coatings. Experimental studies were carried out to investigate the performance of intumescent coatings applied to the components of tension rod systems. The examined aspects include the foaming and cracking behaviour of the intumescent coatings, the influence of different dry film thicknesses (DFT), the heating rate of the steel connecting parts in comparison to the tension rods, as well as the mounting orientation of the tension rods together with their associated fork connectors. The results show that a decrease in the surface curvature and/or an increase in the mass concentration of the steel components lead to a lower heating rate of the steel. Moreover, the performance of the intumescent coating on tension rod systems is influenced by the mounting orientation of the steel components.
From halogenated flame retardants to non-halogenated to nanocomposites, each milestone in flame retardancy research led to an increase in performance and safety. With the rise of ceramic precursors in flame retardants, a new field of applications in extreme fire scenarios has become accessible. Intumescent coatings combined with precursors for ceramics show a high temperature transition to a ceramic foam, which provides much better fire resistance than conventional coatings at temperatures beyond 1200°C. Even a protection at 2000 °C for several minutes can be achieved. Combining the expansion property of traditional intumescent coatings with a ceramification at high temperatures leads to high-performance coatings, whose unique properties may prove useful for emergency insulation systems for re-entry bodies in the aerospace industry or special fire protection applications.
In this study, the protection performance in extreme fire conditions, the development of the expansion and the following ceramic transition of a high-performance coating are investigated. To this end, a small scale high-performance burner setup was created. The coated (2.5/4 mm) steel plates (75 x 75 x 2 mm) were exposed to direct flame treatment of a propane-oxygen-burner controlled by two flow controllers. During the test, temperatures above of 1800 °C were reached and steel and flame temperature were recorded. Fire tests of different durations (1, 2.5, 5, 10 and 20 min) were performed. The residues of the different development stages were analysed with non-destructive µ-computed tomography and scanning electron microscopy. The 3D images of the computed tomography provide an insight into the developing cell structure and state of ceramification of the residues.
Safety evaluation of truss structures depends upon the determination of the axial forces and corresponding stresses in axially loaded members. Due to presence of damages, change in intended use, increase in service loads or accidental actions, structural assessment of existing truss structures is necessary. This applies particularly to iron and steel trusses that are still in use, including historic and heritage monuments. Precise identification of the stresses plays a crucial role for the preservation of historic trusses. The assessment measures require non–destructiveness, minimum intervention and practical applicability.
The axial forces in truss structures can be estimated by static calculations using the method of joints, method of sections or finite element method, if accurate information about parameters such as external loads, geometrical characteristics, mechanical properties, boundary conditions and joint connections are known. However, precise information about these parameters is difficult to be obtained in practice. Especially in the cases of historic constructions, reasonable assumptions about the uncertain parameters may not be acquired.
Motivated by the preservation of existing truss−type constructions composed of axially loaded slender members, the present work aims to develop a non–destructive methodology to identify the axial forces or corresponding stress states in iron and steel truss structures. The approach is based on vibration measurements and the finite element method combined with optimization techniques.
After a state of the art review, numerical and experimental studies were carried out on three partial systems of truss–type structures. The investigated systems included single bars, a two–bar truss−like system and a five–bar truss. They were developed step–by–step as built–up truss−type constructions that are constituted of individual members connecting at joints. The examined aspects included the effects of structural loading on the dynamic performance of truss structures, modelling of joint connections, mode pairing criteria, selection of updating parameters and definition of an objective function, as well as the use of different optimization techniques.
Concerning the axial force effects on the structural dynamic responses, the effects of the stress stiffening become more complicated for multiple–member truss systems with increasing complexity. The coexistence of both compressive and tensile forces in trusses has counteracting effects on the modal parameters. These effects cause variation of natural frequencies and interchange of modes when the loads or corresponding member forces are changed. To examine the axial force effects on the structures at different stress states, in the numerical study and laboratory experiments, loads were applied progressively to the investigated truss−like systems.
Regarding the modelling of joints for truss–type structures, the joint flexibility affects the structural dynamic responses. Therefore, the numerical models of truss−type structures include joint models with variable rotational springs to represent semi–rigid connections.
Considering the mode pairing criterion, the mode pairing is performed by adapting an enhanced modal assurance criterion with the calculation of the modal strain energy. The criterion allows the selection of desired clusters of degrees of freedom related to specific modes. With respect to the model updating strategies, the selection of updating parameters and the choice of an appropriate objective function are identified to be significantly important. In addition, three different optimization techniques were applied to compare their suitability for the inverse axial force identification and estimation of joint flexibility of truss structures. The results of the numerical study and laboratory tests show that nature–inspired optimization methods are considered as promising techniques.
A methodology consisted of a two–stage model updating procedure using optimization techniques was proposed for the determination of multiple member axial forces and estimation of the joint flexibility of truss–type structures. In the first stage optimization, the validation criterion is based on the experimentally identified global natural frequencies and mode shapes of the truss. Additionally, the axial forces in selected individual members of the truss are used. They are estimated from the natural frequencies and five amplitudes of the corresponding local mode shapes of the members using an analytically−based algorithm. Based on the results of the identified axial forces in the first stage, a second optimization procedure for the joint stiffnesses is performed. In this stage, the modal parameters of the global natural frequencies and mode shapes are used as validation criterion.
From the results of the laboratory experiments, the identified axial forces by the proposed methodology agree well with the experimentally measured axial forces of the investigated systems at different stress states. Moreover, based on the numerical verification, the identified joint stiffnesses indicate reasonably the joint flexibility in relation to the pinned or rigid conditions.
To assess the relevance of the proposed methodology on existing structures in real−life conditions, an in–situ experiment was carried out on a historic Wiegmann–Polonceau truss in the city of Potsdam. The in–situ experiment shows that uncertainties relating the mechanical and geometrical properties of historic trusses as well as the experimental sensor setup can influence the accuracy of the axial force identification. In the present work, recommendations are given for the development of a guideline of measuring concepts and assessment strategies applied to existing truss structures. The intention is to integrate the proposed methodology as part of the Structural Health Monitoring for historic truss–type constructions.