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- Alkali-activation (2)
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- Transient thermal creep (2)
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- Feuerwiderstand (1)
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- Hochtemperatureigenschaften (1)
- Microstructure (1)
- Nepheline (1)
- One-part formulation (1)
- Physical properties (1)
- Reaktive Brandschutzsysteme (1)
- Rice husk ash (1)
- Spannung-Dehnungs-Beziehung (1)
- Temperature (1)
- Thermal behavior (1)
- Umweltgerechte Gestaltung (1)
- Verbundanlagen (1)
- Zeolites (1)
- Ökodesign (1)
Eingeladener Vortrag
- nein (2)
One-part geopolymers offer advantages over conventional geopolymers with regard to handling and storage of feedstocks. However, they often suffer from a low degree of reaction, a high amount of crystalline byproducts, and consequently low strength. In this study, one-part geopolymers were produced from rice husk ash (RHA) and sodium aluminate, and investigated by XRD, ATR-FTIR, SEM and compressive strength testing. The compressive strength of the material was 30 MPa, i.e. significantly higher than for comparable one-part geopolymers. This is attributed to an almost complete reaction of the RHA and the absence of crystalline byproducts (zeolites) in the hardened geopolymer.
Wesentlich für das Sicherheitsniveau und damit die nachhaltige Wettbewerbsfähigkeit des Technologiestandortes Deutschland ist der Brandschutz in Industrieanlagen, in Gebäuden und im Transportwesen. Der vorbeugende bauliche Brandschutz hat u. a. das Ziel, die Brand- und Rauchausbreitung im Brandfall für eine gewisse Zeit zu behindern, damit die erforderlichen Lösch- und Rettungsarbeiten durchgeführt werden können. Dies geschieht u.a. durch Anforderungen an die Feuerwiderstandsfähigkeit brandbeanspruchter Bauteile. Der Feuerwiderstand eines Bauteils ist die Fähigkeit während eines angegebenen Zeitraums in einer genormten Feuerwiderstandsprüfung bezüglich mechanischer Stabilität und/oder thermischer Isolierung nicht zu versagen. Reaktive Brandschutzbeschichtungen erhöhen für viele Bauteile sehr effektiv den Feuerwiderstand. Die Beschichtungen und die Brandprüfungen müssen jedoch an die immer komplexeren Anwendungen und/oder extremeren Anforderungen angepasst und weiterentwickelt werden. Aktuelle Forschungsschwerpunkte liegen dabei in der Entwicklung neuer Materialien (z.B. Geopolymere, keramisierende Beschichtungen, silikonbasierte Beschichtungen) für extreme Brandszenarien (extreme Temperaturen, lange Beanspruchungszeiten) und in der Realisierung komplexer Funktionalitäten (komplexe Geometrien, bewegliche Komponenten) sowie in der Entwicklung neuer Testmethoden (Feuerwiderstand als bench-scale Tests, kostengünstiges Screening, Feuerwiderstand in extremen Brandszenarien). Die Entwicklung geht dabei weg von der präskriptiven Bewertung hin zur leistungsorientierten (performance-based) Bewertung in individuellen Brandszenarien oder von komplexen Bauteilen. Im Rahmen dieser Arbeit werden Lösungsansätze für die neuen Herausforderungen an die reaktiven Brandschutzsysteme unter Extrembedingungen und deren Testmöglichkeiten vorgestellt und diskutiert. Im Mittelpunkt stehen dabei neu entwickelte bench-scale Testmethoden zum Screening von neuen Beschichtungsmaterialien sowie zur Beurteilung spezieller bzw. materialspezifischer Aspekte des Feuerwiderstands unter Extrembedingungen.
Als umweltschonende Alternative zu portlandzementgebundenen
Betonen werden derzeit in der Betonindustrie und in der
Baustoffforschung Betone mit alkaliaktivierten Bindemitteln,
sog. Geopolymerbetone, intensiv erforscht. Die auf industriellen
Reststoffen wie Flugasche und Hüttensand basierenden anorganischen
Bindemittel weisen bei geeigneter Zusammensetzung
einen hohen Widerstand gegenüber aggressiven Salzlösungen
und Säuren auf. Als Grundlage für den rechnerischen
Nachweis der Tragfähigkeit von brandbeanspruchten Betonbauteilen
auf Basis von alkaliaktivierten Bindemitteln werden
deshalb an der Bundesanstalt für Materialforschung und -prüfung
(BAM) die mechanischen Hochtemperatureigenschaften
von flugaschebasierten Geopolymerbetonen systematisch
untersucht.
Die bis zu 750 °C erhitzten Probekörper mit quarzitischer
und leichter Gesteinskörnung zeigen einen Festigkeitsverlust
bis ca. 300 °C, der auf entwässerungsbedingte Mikrorissbildung
zurückgeführt werden kann. Bei weiter zunehmender
Temperatur steigt aufgrund von Sinterungsprozessen ab
ca. 500 °C die Festigkeit der untersuchten Geopolymerbetone
wieder an. Diese im Vergleich zu herkömmlichem Beton günstigere
Materialeigenschaft eröffnet potenziell auch Anwendungsmöglichkeiten
in brandschutztechnisch kritischen Infrastrukturbereichen.
Die Ergebnisse der thermomechanischen
Prüfungen werden für numerische Bauteilberechnungen als
temperaturabhängige Spannungs-Dehnungs-Beziehungen aufbereitet.
Thermo-mechanical and spalling behavior of normal weight and lightweight geopolymer concretes
(2016)
The mechanical and microstructural properties of two geopolymer concretes, produced with either quartz aggregate or expanded clay aggregate, were assessed before, during and after high-temperature exposure up to 750 °C in order to better understand the engineering properties of the material. SEM investigations were also undertaken to better understand the observed changes in the mechanical properties. It was found that dehydration of capillary water caused micro-cracking and strength losses at temperatures ≤ 300 °C. At higher temperatures (T ≥ 500 °C) sintering promoted strength increases, leading significant strength advantages over conventional concretes. Stress-mechanical strain curves, which are the basis of the fire design of concrete structures, were determined. In addition, the two geopolymer concretes where exposed to the ISO 834-1 standard fire curve in a small-scale spalling test set-up. Acoustic emission measurements during, and acoustic measurements and optical microscopy after heat exposure were employed to investigate crack formation during the tests. Both concretes did not spall, which is attributed to their comparatively high permeability and their low amount of chemically bound water. Significant crack formation was detected only around the temperature of the α–β quartz transition (573 °C) and on cooling. Because of aggregate deformations at the quartz transition temperature, deterioration after heating was more significant in the geopolymer concrete with quartz aggregates. Crack formation occurred also in the concrete with expanded clay aggregates, presumably caused by shrinkage of the geopolymer paste on cooling.
Two fly ash-based geopolymer concretes with quartz aggregates or with expanded clay (lightweight) aggregates were exposed to the ISO 834-1 standard fire curve in a small-scale fire test set-up. Acoustic emission measurements during fire exposure and subsequent cooling were employed to study spalling events and cracking during the tests. Optical microscopy and additional acoustic measurements were conducted after the testing to better understand the crack propagation in the samples. The testing revealed that neither of the concretes were susceptible to spalling, which is particularly notable for the concrete with quartz aggregates, as it is a high-strength concrete. This behavior is attributed to the relatively high permeability of the concretes and their low amount of chemically bound water. Significant crack formation was detected only around the temperature of the alpha–beta quartz transition (573 °C) and on cooling. Because of aggregate deformations at the quartz transition temperature, deterioration after heating was more significant in the geopolymer concrete with quartz aggregates. Crack formation also occurred in the concrete with expanded clay aggregates, caused by shrinkage of the geopolymer paste on cooling. Acoustic emission measurements proved to be a valuable tool to investigate processes during high temperature exposure.
This contribution presents the results of structural and compressive strength investigations on cured andhigh-temperature treated silica-based one-part geopolymer-zeolite composites. The specimens weresynthesized from two different silica sources, sodium aluminate and water. The phase content as well asthe compressive strength of the cured composites varied depending on the starting mix-design and thesilica feedstock. Besides geopolymeric gel, A-type zeolites and hydrosodalites were the major reactionproducts. One of the silica feedstocks yielded significantly higher compressive strength (19 MPa), whilethe other one appears to cause less variation in phase content. Strength testing indicated an improvementon heating up to
200–400 °C (28 MPa) followed by a moderate decrease up to 700 °C. Above 700 °C the sys-tems underwent new phase formation and shrinkage (volume decrease) deformations. After exposureat 1000 °C the different mixes consisted of a mix of several stuffed silica phases, almost pure hexago-nal nepheline or amorphous phase. Depending on the mix-design, the onset temperature of the hightemperature phase transformations varied.
The mechanical and microstructural properties of geopolymer concretes were assessed before, during and after high temperature exposure in order to better understand the engineering properties of the material. Fly ash based geopolymer concretes with either quartz aggregate or expanded clay aggregate were exposed to various temperatures up to 750 °C using a thermo-mechanical testing apparatus. Microstructural investigations were also undertaken to better understand the measured changes in the mechanical properties. It was found that dehydration of capillary water caused cracking and strength losses at temperatures ≤300 °C, an effect that was more severe in the quartz aggregate geopolymer due to its lower permeability. At higher temperatures (T ≥ 500 °C) sintering promoted strength increases which enabled both concrete types to yield significant strength advantages over conventional materials. Stress–mechanical strain curves, which form the basis of the fire design of concrete structures, are reported.