2.1 Sicherheit von Energieträgern
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Explosionsverletzungen gehören zu den häufigsten Verletzungen bei militärischen Einsätzen. Während die Auswirkungen von Splittern, die als sekundäre Explosionsverletzungen eingestuft werden, durch die modernen ballistischen Körperschutzsysteme der Polizei und des Militärs minimiert werden konnten, stellen die Auswirkungen der Stoßwellenausbreitung im Körper als Teil des primären Explosionstraumas nach wie vor eine ernsthafte Bedrohung dar. Zusätzlich zu einzelnen einsatzbedingten Lastfällen liegt ein wissenschaftlicher Fokus auf besonders exponiertem Personal, z.B. aus den Einsatzbereichen „Taktische Zugangstechnik“, „Präzisionsschützenwesen“ oder Steilfeuerwaffen (Mörser). Repetitive mild traumatic brain injury (mTBI) können gesundheitliche Langzeitschädigungen wie und chronic traumatic encephalopathy (CTE) erzeugen.
Um einen Beitrag zur Erforschung der primären Explosionswirkungen zu leisten, hat die Bundeswehr in Zusammenarbeit mit dem Bundeswehrkrankenhaus Berlin und der Bundesanstalt für Materialforschung und -prüfung (BAM) ein interdisziplinäres wehrmedizinisches Sonderforschungsvorhaben eingerichtet. Ziel der geplanten Untersuchung ist die Entwicklung einer multidisziplinären Methode zur Analyse des Stoßwellenverhaltens in verschiedenen generischen Gewebesimulanzien, sowie Schutzmaterialien unter möglichst realitätsnahen und reproduzierbaren Bedingungen.
Für die Erzeugung reproduzierbarer Stoßwellen wurde ein Autoklav
(Druckbehälter) entwickelt, mit dem durch die detonative Umsetzung eines Acetylen-Sauerstoff-Gemisches gut reproduzierbare Druckwellen unter Freifeldbedingungen erzeugt werden können. Vorteile dieser Methode sind unter anderem die kurzen Rüstzeiten zwischen Versuchsdurchgängen, die Minimierung störender Einflüsse im Vergleich zu Stoßwellenrohren und die geringeren Sicherheitsanforderungen im Vergleich zur Anwendung von konventionellen Sprengstoffen. Das generische Torso-Modell besteht in seiner einfachsten Form aus einem mit Druck- und Beschleunigungssensoren instrumentierten Gelatineblock, welcher eine Simulanz für organisches Gewebe darstellt. Zur Untersuchung des Stoßwellenverhaltens wurden verschiedene Medien, wie Hohlkörper, Festkörper und Gewebesimulanzien differenter Dichte in das generische Torso-Modell eingebracht. Einen besonderer Untersuchungsschwerpunkt bildeten die Grenzbereiche zwischen den unterschiedlichen Medien. Des Weiteren wurde analysiert, wie sich verschiedene Schutzmaterialien auf das Stoßwellenverhalten auswirken und mit welchen veränderten Eigenschaften die Stoßwelle anschließend in die Gewebesimulanz einkoppelt.
Thermal runaway investigations were performed by subjecting single and double NMC pouch cells to thermal abuse condition inside an air-tight reactor vessel with an internal volume of 100 dm³. The study was divided into two series. The findings revealed the thermal runaway-induced explosion in the cells results in a rate of temperature increase greater than 10 K/s. The highest gaseous production was achieved at a range of 90 – 100% SOC and higher battery capacities 0.79 L/Wh (Series 1, 10 Ah cell) and 0.87 L/Wh (Series 2, 32 Ah cell). The investigation showed between 25 m³ and 84 m³ of explosible gas mixture could be released from electric vehicles of nominal useable electrical energy from 32 kWh up to 108 kWh at thermal runaway. It was also found that, the release of these explosible gases could undergo a secondary explosion.
Performance of the standardized testing method for detonation fl ame arresters at increased pressure
(2022)
Detonation flame arresters are typically used as autonomous protection systems in industrial applications to prevent potential hazards associated with flammable and/ or explosive chemicals. To verify and examine the suitability of detonation flame arresters, a testing method originating from the DIN EN ISO 16852 standard is used, which is mainly designed for atmospheric conditions.
In order to optimize the production capabilities, numerous industrial processes are taking place at pressures, temperatures, or oxygen concentrations beyond the ambient range, i.e. at non-atmospheric conditions and information on the performance of the regulated testing method are therefore required when the standard testing protocols are modified with regard to pressure, temperature or oxidizer.
The main objective of this study is to develop an improved testing method for detonation flame arresters, which offers a higher reproducibility and moreover, an applicability under non-atmospheric conditions. Therefore, an interlaboratory comparison on the performance of in-line flame arresters for stable and unstable detonations is jointly conducted by the project partners (PTB, BAM, Braunschweiger Flammenfilter GmbH and IBExU GmbH). The experiments are performed according to the testing method regulated in the DIN EN ISO 16852 standard for different pressures before ignition and different explosion groups. The experimental data is analyzed in detail to further optimize the test method and to thus achieve an improved reproducibility of detonation tests at high pressures, especially regarding the deflagration to detonation transition.
Potential ambiguities of the standardized testing method that might lead to the differing results at the different institutes are identified from the interlaboratory comparison and the test method is modified accordingly. Based on these results, an improved testing method for detonation flame arresters will be developed, which will ensure a greater safety at process plants while handling combustibles.
Experimental study on the performance of the standardized test method for detonation flame arresters
(2022)
Flame arresters are autonomous protection systems and are among the constructive explosion protection measures that limit the effects of an explosion.
In this study, the performance of the standardized test method regulated in the DIN EN ISO 16852 standard for in-line flame arresters for stable and unstable detonations, which is mainly designed for atmospheric conditions, is examined. In an interlaboratory comparison, experiments are performed for different pressures before ignition and explosion groups according to the standardized test method. The experimental data is analyzed in detail to further optimize the test method and to thus achieve an improved reproducibility of detonation tests at high pressures, especially regarding the deflagration to detonation transition.
Based on these results, an improved test method for detonation flame arresters will be developed, which will ensure better reproducibility as well as applicability under non-atmospheric conditions.
Detonation flame arresters are typically used as protection systems in industrial applications to prevent flame transmission from one section of a plant to another after an incidental ignition. Numerous processes in the chemical and petrochemical industry are taking place under non-atmospheric conditions (e.g., increased pressure and/or temperature) in order to optimize the production capabilities. To verify and examine the suitability of detonation flame arresters, a test method originating from the DIN EN ISO 16852 standard, which is mainly based on findings from experiments under atmospheric conditions, is used. In order to improve the reproducibility of detonation tests at high pressures, especially regarding the deflagration to detonation transition, test methods will be analyzed and improved.
The main objective of this study is to develop an improved test method for detonation flame arresters, which offers a higher reproducibility and moreover, an applicability under non-atmospheric conditions. Therefore, an interlaboratory comparison on the performance of in-line flame arresters for stable and unstable detonations is jointly conducted by the project partners (PTB, BAM, Braunschweiger Flammenfilter GmbH and IBExU GmbH). The experiments are performed according to the test method regulated in the DIN EN ISO 16852 standard for different pressures before ignition and different explosion groups. Potential ambiguities of the standardized test method that might lead to the differing results at the different institutes are identified from the interlaboratory comparison. Based on these results, an improved test method for detonation flame arresters will be developed, which will ensure a greater safety at process plants while handling combustibles.
Lithium ion batteries (LIBs) are prone to spontaneous and subsequent fire or explosion resulting from thermal runaway. The vented gases are not only toxic and flammable, their emission can also raise the surrounding pressure rapidly. In this study, characteristic variations of explosion pressure rise, rate of explosion pressure rise and 𝐾(sT)-value have been evaluated. The characteristic 𝐾(𝑠𝑇)-values were determined to evaluate the explosive behavior of LIBs during thermal runaway. The estimated values were compared to that of other explosive substances.
Comparative study on the performance of the standardized test method for detonation flame arrestors
(2020)
Detonation flame arresters are widely used as protection systems in industrial applications to avoid damage from incidental gas explosions, by preventing the propagation of the ongoing explosion from one section of a plant to another. Numerous processes in the chemical and petrochemical industry are taking place under non-atmospheric conditions (e.g. increased pressure and/or temperature) in order to optimize the production capabilities. The suitability of detonation flame arresters is verified and examined according to the DIN EN ISO 16852 standard, which is only based on findings from experiments under atmospheric conditions. In some instances, differing results are obtained by the different institutes using the current standardized test procedure, especially for instable detonations as well as for detonations at elevated pressures before ignition.
The primary objective of this study is to develop an improved test method for detonation flame arresters, which offers a higher reproducibility and moreover, an applicability under non-atmospheric conditions. For this aim, the project partners (PTB, BAM, Braunschweiger Flammenfilter GmbH and IBExU GmbH) jointly conduct an interlaboratory comparison on the performance of in-line flame arresters for stable and instable detonations. The experiments are performed according to the test method regulated in the DIN EN ISO 16852 standard for different pressures before ignition and for different explosion groups (IIA, IIB, IIC). The interlaboratory comparison points out potential ambiguities of the standardized test procedure that might lead to the differing results at the different institutes. Based on these experimental findings, an improved test method for detonation flame arresters will be developed, which will ensure a greater safety at process plants while handling combustible liquids and gases.