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- 2011 (7) (entfernen)
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- Englisch (5)
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- MITD (2)
- TFE (2)
- Acetylene (1)
- Autoignizione (self-ignition) (1)
- Berstdruck (1)
- Convezione naturale (free convention) (1)
- Decomposition (1)
- Druckefestigkeit (1)
- Fire exposure (1)
- Gas cylinders (1)
COMSOL Multiphysics® was used as a tool for the better understanding of the evolution of flow patterns during the induced ignition of gases. A simplified model was developed for the scope, by coupling the weakly compressible Navier Stokes module and the convection and conduction module. The current paper presents the results of the performed simulations.
Beim begehrten Kunststoff Teflon führt kein Weg an einem komplexen Herstellungsprozess vorbei, der aufgrund der besonderen Eigenschaften des Ausgangsstoffes spezieller sicherheitstechnischer Anforderungen bedarf.
Comsol Multiphysics unterstützte Wissenschaftler in der Auslegung der Produktionsanlagen bei der Identifizierung von Gefahrenquellen.
The gaseous TFE is a monomer which is used to form PTFE, also known as Teflon®, by a polymerisation process at elevated conditions of temperature and pressure. TFE belongs to the group of chemically instable gases which are able to decompose under specific conditions releasing a huge amount of heat comparable to a gas explosion of flammable gases. Due to several incidents in PTFE – production plants the investigation of the safety related properties of TFE at elevated condition was necessary and resulted in a research project at BAM which is subsidized by the PlasticsEurope association. In a first stage the pressure dependence of the Minimum Ignition Temperature for Decomposition (MITD) was determined in the range of 0.5 MPa - 3 MPa in small autoclaves with volumes of 0.2 dm³ and 3 dm³. These results were used to validate the numerical model and were found to correlate quite well with the simulated values. Nevertheless the applicability had to be confirmed for larger volumes as well. Therefore a heat able 100-dm³-autoclave was constructed and build to determine the MITD in the range of 0.5 MPa to 1.1 MPa.
Prevention of the explosion of acetylene cylinders involved in fire: experiments and simulations
(2011)
In order to assess the effectiveness of water cooling of acetylene cylinders involved in fire, a total of 13 bonfire tests with 8.9-, 10
and 50-l-cylinders were performed. During the experiments the pressure
in the cylinder and the temperature at different locations within the porous material and on the Shell surface as well as the flame temperature were measured. Overall 8 burst tests were performed, in order to determine the times to explosion for the cylinders. Cylinders failed not later than 15 minutes from the ignition of the bonfire, often with generation of a fireball. During the other 5 tests, the fire was extinguished before the expected burst and the cylinder was cooled with water. In 2 of the 5 extinction experiments, the explosion of the cylinder could be prevented. Noticeably, in one case the on-set of the decomposition of acetylene had already been observed, before the cooling was started. In spite of that, the cooling was still effective. The interpretation of the current results and of the data from previous tests with 40-l-cylinder suggests that single acetylene cylinders involved in fire might be saved by cooling, if their pressure does not exceed a value of about 45 bara. The recorded values of pressure and temperature were used to develop and validate a mathematical model for the prediction of the heat transfer in acetylene cylinders during the exposure to fire and the afterward cooling. The predictions agreed well with the experimental results.
Ein entscheidendes Problem neuer Wasserstofftechnologien ist die leichte und sichere Lagerung ausreichender Mengen an Wasserstoff insbesondere für Nutzung bei tragbaren oder mobilen Anwendungen. Eine neue und innovative Technologie basierend auf gebündelte Kapillaren wurde entwickelt. Diese Systeme garantieren eine sichere Speicherung, Lagerung und kontrollierte Freisetzung von Wasserstoff, obgleich Speicherdrücke bis 1200 bar angewendet werden. Die neue Technologie ermöglicht die Lagerung einer erheblich größeren Menge Wasserstoff als andere Systeme und übertraf bereits die Zielsetzung des DOE 2010. Es wird erwartet, die DOE-Zielsetzung für das Jahr 2015 bereits in naher Zukunft zu erreichen. Hauptaspekt für die Speichertechnologie ist die Druckfestigkeit der Glaskapillaren. Es ist weithin bekannt, dass besonders Quarz eine dreimal höhere Festigkeit als Stahl hat. Gleichzeitig ist die Dichte ungefähr dreimal niedriger, was bedeutet, dass viel weniger Material notwendig ist, um die gleiche Druckfestigkeit zu erreichen. Die Druckfestigkeit einzelner Kapillare ist in der Abhängigkeit der Materialien, der Abmessungen, der Wandstärke etc. ermittelt worden, um optimale Parameter für die "finalen" Kapillaren herauszufinden.