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Eingeladener Vortrag
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One of the fundamental principles of the UN-GHS (Globally Harmonized System of Classification and Labelling of Chemicals) is that all hazards of a chemical should be assigned and communicated. There is no general prioritization of hazards in the sense that certain hazard classes are not applicable if another one has been assigned. In contrast to health and environmental hazards, there are physical or chemical factors which preclude certain combinations of physical hazard classes. So far, there is no common understanding as to which combinations are relevant and which not. For example, should a pyrophoric liquid be classified as flammable liquid in addition, or is this redundant and unnecessary? In the course of the implementation of the GHS by countries or sectors and the actual application by industry all over the world, such questions become more and more important. For many of the combinations an unambiguous decision based on theGHS alone is not possible, thus confirming that the question which physical hazard classes might be assigned simultaneously to a chemical is not trivial. As one more milestone on the path to a globally harmonized system for the classification of hazardous chemicals, this should be discussed and ultimately solved on a global basis. It is the hope that this presentaion might serve as an impetus for such discussions.
Die „Empfehlungen über die Beförderung gefährlicher Güter, Handbuch über Prüfungen und Kriterien“ ergänzen die „ Empfehlungen über die Beförderung gefährlicher Güter, Modellvorschriften“ und das „Global harmonisierte System zur Einstufung und Kennzeichnung von Chemikalien (GHS)“. Sie enthalten Kriterien, Prüfmethoden und Verfahren, die für die Klassifizierung gefährlicher Güter gemäß den Vorschriften der Teile 2 und 3 der Modellvorschriften als auch von Chemikalien, von denen physikalische Gefahren nach dem GHS ausgehen, anzuwenden sind. Das Handbuch über Prüfungen und Kriterien, ursprünglich entwickelt vom „Economic and Social Council’s Committee of Experts on the Transport of Dangerous Goods“, welches eine erste Version im Jahre 1984 annahm, wurde regelmäßig aktualisiert und berichtigt. Gegenwärtig erfolgt die Aktualisierung unter Federführung des „Committee of Experts on the Transport of Dangerous Goods and on the Globally Harmonized System of Classification and Labelling of Chemicals“ (Sachverständigenausschuss), welches das ursprüngliche Gremium 2001 ersetzte. Die sechste überarbeitete Ausgabe enthält alle Änderungen zur fünften überarbeiteten Ausgabe, die vom Ausschuss während seiner fünften und sechsten Sitzungsperiode 2010 und 2012 angenommen wurden (veröffentlicht unter den Dokumentennummern ST/SG/AC.10/11/Rev.5/Amend.1 und ST/SG/AC.10/11/Rev.5/Amend.2), die während der siebenten Sitzungsperiode 2014 angenommenen Änderungen (ST/SG/AC.10/42/Add.2) sowie das Corrigendum zur 6. Ausgabe vom Februar 2016 (ST/SG/AC.10/11/Rev.6/Corr.1) und die während der achten Sitzungsperiode 2016 angenommenen Änderungen (ST/SG/AC.10/11/Rev.6/Amend.1) vom 9. Dezember 2016.
Die neuen Änderungen aus 2016 betreffen insbesondere:
- Änderungen des Prüfverfahrens für die Klassifizierung von Lithium-Metall und Lithium-Ionen-Batterien
- Änderung des Klassifizierungsverfahrens für ammoniumnitrathaltige Düngemittel
- Ein neuer Unterabschnitt für die Prüfungszusammenfassung für Lithiumzellen und -batterien
- Ein neuer Abschnitt für das Klassifizierungsverfahren und Kriterien in Bezug auf feste ammoniumnitrathaltige Düngemittel
- Änderung des Anhangs 7 für die Prüfung von Blitzknallsätzen
- Änderungen zur Unterstützung der Verwendung des UN-Prüfhandbuchs im Sinne des GHS
Final report of research activities at BAM concerning large scale fireballs of organic peroxides (OP). New models for OP fireball diameter, duration, height and Surface Emmissive Power (SEP) are proposed and discussed based on a large number of large-scale and small-scale experiments using Di-tert-butylperoxide (DTBP) as a liquid OP and heptane as a liquid hydrocarbon fuel. Finally, CFD simulations are used to predict the fireball parameters: diameter, duration, height and SEP. Also the impact on the German storage regulations for organic peroxides are discussed.
Transposition of regulations of the (German) employer’s liability insurance association (BGV’n) into Federal responsibility.
Fundamentals are regulated in the German Hazardous Substances Ordinance (GefStoffV). Prospectively, some definitions and more details are specified in a Technical Rule (TRGS 741 „Organic Peroxides“). A second project outline was discussed in 2014; because of some formal objections concerning the process and, particularly, the membership in a project group, no progress et al. since 2014.
Nevertheless, the BGV B4 is still valid. Because of some new findings and new test results a revision and Supplementation of the table of assignments of OP to risk (storage) groups was required.
Summary of recent research activities at BAM concerning large scale fireballs of organic peroxides (OP). Videos of the tests performed in Nanjing, China, are presented. A new model for OP fireball diameter, duration, height and SEP is proposed based on all experiments. In addition, small scale test results using DTBP and heptane are presented. Finally, CFD simulation is used to predict the fireball parameters: diameter, duration and height.
Self-Accelerating Decomposition Temperature (SADT) is a safety characteristic for the transport of self-reactive substances and organic peroxides. Its determination is time-consuming and in dependence on the test method also material-consuming. As shown previously, DSC measurements, which can be carried out fast and with a few milligram of material, supply a good correlation with SADT for technical pure, liquid organic peroxides. The approach is now applied for solid organic peroxides. Besides, the parameters, which are involved in the correlation, are discussed and their effect on the result is weighted qualitatively. In addition it was shown, that the method is inapplicable in an easy manner for diluted organic peroxides and pure self-reactive substances.
In present chapter, the potential usage of peroxy-fuels (usually known as organic peroxides) either in technically pure or in a blended form in engine combustion processes are explored. Although as additives (in small quantities <5% to conventional fuels, e.g., diesel, gasoline) peroxy-fuels are well known for many years their commercial applications as a main or primary fuel are not investigated in detail as such except a few. Their thermal instability and energy density demand great care during processing, which restricts their commercial exploitation. However, once the issues with safety are resolved they can be much more advantageously employed than conventional fuels. Some of these advantages are significant amount of fuel saving, reduction in amount of inducted air, or even the complete absence of air, i.e., anaerobic combustion, smaller volume of combustion (chamber), oxygenated fuel quality, and low emissions. An idea to develop the components of an engine operating solely on peroxy-fuels is also introduced. The engine concept is based on single and multiple injectors in a cylinder with special material coating to ensure a temperature-controlled processing.
Predictive Methods for Determining the Thermal Decomposition Properties of Hazardous Substances
(2019)
Due to the fast development and availability of computers, predictive approaches are increasingly used in the evaluation process of hazardous substances complementary to experiments. Their use was recommended as alternative to experimental testing by the REACH regulation to complete the lack of knowledge on properties for existing substances that must be registered before 2018 (upon quantities). Among the proposed predictive approaches, Quantitative Structure Property Relationships (QSPR) are powerful methods to predict macroscopic properties from the only molecular structure of substances. In that context, the HAZPRED project (2015-2018, founded by the SAF€RA consortium) aims to develop theoretical models (e.g. QSPR) and small-scale tests to predict complex physico-chemical properties (e.g. thermal stability, explosivity) of hazardous substances to complete the lack of knowledge on these hazardous substances quickly or to understand their decomposition behaviour better. In particular, this contribution will present the work done in this project on the physical hazards of organic peroxides and self-reactive substances: gathering of existing experimental data, new experimental campaigns, review of existing models and proposition of new estimation methods.
The thermal radiation impact of organic peroxide fireballs is experimentally assessed using an infrared camera. Fireballs are generated while liquid peroxide filled steel drums are subjected to gas burner fire at different heating rates. Three large burning clouds are observed with varying flame characteristics. Thermal radiation properties are assessed by infrared images with the presented methods. Despite of the two-dimensional temperature fields, the flames are treated and characterized as three-dimensional objects. Fireball diameters and heights are calculated based on a representing radiating sphere with the same cloud volume. By the use of the solid flame model and assumptions for emissivity and transmissivity, heat fluxes and thermal radiation doses against distance are predicted. Thermal safety distances are presented based on the maximum irradiance and the allowed exposure time. The validation of the maximum and time-dependent radiation fields is achieved through heat flux sensors in varying distances to the fireball. The results prove the use of an infrared camera and a volume based size calculation to fully assess the thermal radiation hazards of fireballs.
Auswirkungen hoher thermischer Belastungen auf flüssige organische Peroxide in Metallbehältern
(2018)
Im Gegensatz zu thermisch instabilen Kunststoffverpackungen garantieren Metallbehälter auch bei hoher thermischer Belastung, beispielsweise durch ein Schadenfeuer, einen stetigen Wärmeeintrag. Ist ein flüssiges organisches Peroxid enthalten, wird durch die Wärme eine sich selbst-beschleunigende exotherme Zersetzung initiiert. Das mit der Entzündung der Zersetzungsgase entstehende Feuer brennt durch den kontinuierlichen äußeren Wärmeeintrag heftiger als dies bei Poolfeuern organischer Peroxide zu beobachten ist. Aufgrund des definierten Einschlusses einer Metallverpackung kann die Zersetzung explosionsartig ablaufen und zur Ausbildung ein- und mehrfacher Feuerbälle führen. Auswirkungsbetrachtungen eines mit flüssigem organischen Peroxid befüllten und von außen befeuerten 220 Liter Stahlfasses wurden anhand zahlreicher Versuche mit unterschiedlichen Aufheizmethoden durchgeführt und sowohl die ermittelten Abbrandraten als auch die gemessenen thermischen Strahlungsbelastungen mit denen eines Poolfeuers verglichen. Die Analyse des Gefahrenpotentials unterschiedlich großer Feuerbälle führte schließlich zur Entwicklung eines ersten semi-empirischen Modells zur Abschätzung des Durchmessers und der Abbranddauer von Feuerbällen organischer Peroxide. Daraus ergibt sich die Möglichkeit der Berechnung notwendiger thermischer Sicherheitsabstände.