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- Reactive fire protection system (2)
- Steel (2)
- Tension rod system (2)
- Brandschutz (1)
- Brandversuche (1)
- Fire test (1)
- Intumescent coating (1)
- Intumescent fire protection coating (1)
- Reaktives Brandschutzsystem (1)
- Real-scale fire test (1)
Organisationseinheit der BAM
- 7.3 Brandingenieurwesen (3) (entfernen)
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.
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.
Purpose – The purpose of this paper is to investigate the performance of intumescent coating on tension rod systems and their components. Steel tension rod systems consist of tension rods, fork end connectors and associated intersection or gusset plates. In case of fire, beside the tension rods themselves, the connection parts require appropriate fire protection. Intumescent fire protection coatings prevent a rapid heating of the steel and help secure the structural load-carrying capacity. Because the connection components of tension rod systems feature surface curvature and a complex geometry, high demand is placed on the intumescence and thermal protection performance of the coatings.
Design/methodology/approach – In this paper, experimental studies were carried out for steel tension rod systems with intumescent coating. The examined aspects include the foaming and cracking behaviour, the influence of different dry film thicknesses, the heating rate of the steel connecting parts in comparison to the tension rods, and the mounting orientation of the tension rods together with their fork end connectors.
Findings – The results show that a decrease in surface curvature and/or an increase inmass concentration of the steel components leads to a lower heating rate of the steel. Moreover, the performance of the intumescent coating on tension rod systems is influenced by themounting orientation of the steel components.
Originality/value – The findings based on fire tests contribute to a better understanding of the intumescent coating performance on connection components of tension rod systems. This subject has not been extensively studied yet.