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This paper describes a modified experimental setup for the test apparatus 20-L-Sphere (also known as 20-L Siwek Chamber), that enables the test samples to be kept under inert atmospheric conditions nearly until ignition. This setup was designed to allow the determination of safety characteristics of nano powders under most critical circumstances (e.g. minimisation of the influence of oxidation before the test itself). The aim of this modification was to determine, whether or not the current setup and procedures underestimate the explosion violence and ignitability of nano powders. For this purpose, two different methods, the so called inerting method and the modified method (using a special nozzle called mushroom nozzle) are used. Both methods are described in the paper. The work includes experimental results of micrometer dusts to validate the modified method. Moreover first results of nanometer iron and aluminium dusts are presented, which were kept at inert conditions until shortly before the ignition. The tested nano iron was found to react pyrophoric, as soon as it gets in contact with air, while the tested nano aluminium did not generally show such behaviour. Tests with nano aluminium using the inerting method revealed a higher pressure rise in comparison to the standard test procedure. This could suggest a different extent of passivation. To investigate this effect more closely, further testes with more nano powders are required.
Modified setup of 20-L-sphere for the determination of safety characteristics of nano powders
(2013)
This paper describes a modified experimental setup for the test apparatus 20-L-Sphere (also known as 20-L Siwek Chamber), that enables the test samples to be kept under inert atmospheric conditions nearly until ignition. This setup was designed to allow the determination of safety characteristics of nanopowders under most critical circumstances (e.g. minimisation of the influence of oxidation before the test itself). The aim of this modification was to determine, whether or not the current setup and procedures underestimate the explosion violence and ignitability of nanopowders. The work includes experimental results of micrometer dusts to validate the modified setup. Moreover first results of nanometer iron and Aluminium dusts are presented, which were kept at inert conditions until shortly before the ignition. The tested nano iron was found to react pyrophoric, as soon as it gets in contact with air, while the tested nano Aluminium did not generally show such behaviour.
Modified Setup of 20-L-Sphere for the Determination of Safety Characteristics of Nano Powders
(2013)
Modified Setup of 20-L-Sphere for the Determination of Safety Characteristics of Nanao Powders
(2013)
Safety characteristics are essential for the design of preventive and protective explosion measures. According to international Standards explosion characteristics of dust clouds are determined in 20-L-sphere and l-m3-vessel.
The ignition of respective dust samples is realized vvith special pyrotechnical igniters with energy of 1 kJ or 5 kJ vvhich are defined in the testing Standards. However Sobbe in Germany is the only Company at the moment which sells such igniters.
The paper presents results of a comparative study between the 5 kJ Sobbe igniter and a 5 kJ igniter manufactured by Sirnex in Czech Republic. The study has been conducted under participation of BAM Federal Institute for Materials Research and Testing, Institute for Occupational Safety and Health of the German Social Accident Insurance (IFA).
Berufsgenossenschaft Nahrungsmittel und Gastgewerbe (BGN) and Swiss Institute for Promotion of Safety and Security (Swissi).
For the study six dusts from different product groups with various explosion severities and ignitabilities were chosen.
The tests were carried out in the 20-L-sphere as well as in the l-m3-vessel. Maximum explosion overpressure Pmax, dust explosion constant Kst and lower explosion limit LEL were determined. Furthermore tests with a high speed and a thermal imaging camera were carried out, in order to compare burning time and flame pattern of Sobbe and Simex
igniter.
Die Nanotechnologie gilt als die Wachstumsbranche der nächsten Jahrzehnte. Während die gesundheitlichen Wirkungen von nanoskaligen Materialien bereits in zahlreichen Studien und Forschungsvorhaben näher untersucht wurden und werden, sind die Erfahrungen und Erkenntnisse über Brand- und Explosionsgefahren von Stäuben im Nanometerbereich bzw. von Partikeln < 1 µm bislang noch kaum erforscht. Die Bestimmung sicherheitstechnischer Kenngrößen von Nanostäuben – die die Grundlage für eine Gefährdungsbeurteilung und das Auslegen von Schutzmaßnahmen bilden – erfolgte bislang nur in sehr geringem Umfang. Die Untersuchungen wurden zudem in Analogie zu den Verfahren für Mikrostäube durchgeführt. Es wurde jedoch weder überprüft, ob die für Mikrostäube etablierten Prüfverfahren für eine sichere Bewertung des Brenn- und Explosionsverhaltens geeignet sind, noch ob durch freigesetzten Staub bei einer entsprechenden Ermittlung der Kenngrößen Gesundheitsrisiken bestehen. Der Beitrag beschreibt den Stand des Wissens im Bereich Brand- und Explosionsschutz für Stäube im Nanometerbereich und berichtet über ein bei der BAM Bundesanstalt für Materialforschung und -prüfung laufendes Projekt zur Beseitigung der momentanen Defizite, gefördert von der Deutschen Gesetzlichen Unfallversicherung (DGUV) sowie verschiedenen Berufsgenossenschaften.
Die Nanotechnologie gilt als die Wachstumsbranche der nächsten Jahrzehnte. Nicht zuletzt ist diese Entwicklung der veränderten Eigenschaften der Materialien im Nanometerbereich zuzuschreiben. Das andersgeartete Verhalten solcher Stoffe und die daraus ableitbare Unkenntnis über die Interaktion dieser Materialien mit ihrer Umgebung erfordert eine intensive Auseinandersetzung mit der Thematik zur Risikoabschätzung. Deshalb wurden und werden z.B. die gesundheitlichen Wirkungen von nanoskaligen Materialien auf den menschlichen Organismus bereits in zahlreichen Studien und Forschungsvorhaben untersucht.
Fundierte Erfahrungen und Erkenntnisse über Brand- und Explosionsgefahren bei der Herstellung und Handhabung von nanoskalig hergestellten brennbaren Materialien bzw. von Stoffen mit Partikelgrößen < µlpm liegen hingegen bisher kaum vor. Aufgrund von Erfahrungen mit Stäuben mit Partikelgrößen im Mikrometerbereich ist jedoch bekannt, dass Stoffe mit abnehmender Partikelgröße kritischer einzustufen sind, da beispielsweise ihre Explosionsheftigkeit und Zündempfmdlichkeit zunehmen.
Die Explosionseigenschaften brennbarer Stäube werden durch sicherheitstechnische Kenngrößen beschrieben. Die Bestimmung sicherheitstechnischer Kenngrößen von Nanostäuben - welche die Grundlage für eine Gefährdungsbeurteilung und das Auslegen von Schutzmaßnahmen für Anlagen bilden - erfolgte bislang nur in geringem Umfang. Diese Untersuchungen wurden zudem großteils in Analogie zu den genormten Verfahren für Mikrostäube durchgeführt. Es wurde dabei jedoch nicht überprüft, ob die für Mikrostäube etablierten Prüfverfahren für eine sichere Bewertung des Brenn- und Explosionsverhaltens geeignet sind. Darüber hinaus kann es durch aus den Prüfapparaturen freigesetzten Staub zu einer Gesundheitsgefährdung der Mitarbeiter kommen.
Da bisherige Untersuchungen zum Brand- und Explosionsverhalten von Nanostäuben den Oxidationsgrad der Proben nicht berücksichtigt haben, bestand die Vermutung, dass das Gefahrenpotential von Nanostäuben bislang unterschätzt werden könnte. Deshalb wurde ein modifizierter Prüfaufbau der Prüfapparatur 20-L Kugel entwickelt, um Nanostäube und deren Gefahrenpotential richtig einschätzen und der Kernfrage im Titel dieses Beitrages näher auf den Grund gehen zu können.
Insbesondere metallische Nanostäube wurden bei den ersten Tests zur Bestimmung des Brand- und Explosionsverhaltens untersucht. Bei entsprechenden Stäuben ist zu erwarten, dass sich eine mögliche Oberflächenoxidation bzw. Passivierung besonders stark auf das Explosionsverhalten auswirken könnte. Darüber hinaus ist bekannt, dass metallische Stäube pyrophor reagieren oder sich aufgrund der hohen Scherkräfte bereites beim Eindüsen in die Versuchsapparatur entzünden können. Dies kommt gelegentlich bei Metallstäuben mit Medianwerten von wenigen Mikrometern vor. Da bei nanoskaligen Stäuben theoretisch wesentlich größere Oberflächen auftreten, ist davon auszugehen, dass sich dieses Verhalten bei solchen Stäuben verstärken könnte. Dies wurde von Wu et al. in für nanoskalige Eisen und Titanpartikel nachgewiesen.
Dieser Beitrag beschreibt einen modifizierten Versuchsaufbau für die Prüfapparatur 20-L Kugel, der es ermöglicht, die zu untersuchenden Staubproben bis kurz vor deren Entzünden unter Ausschluss von Sauerstoff zu handhaben. Dieser modifizierte Aufbau wurde entwickelt, um die Bestimmung Sicherheitstechnischer Kenngrößen von möglichst unpassivierten Nanostäuben zu gewährleisten. Das Ziel dieser Modifikationen ist es, festzustellen, ob es bei der Standardapparatur und -prüfverfahren zu einer Unterschätzung der Explosionsheftigkeit und Zündempfindlichkeit durch Passivierung von Nanonstäuben vor der eigentlichen Untersuchung kommen könnte.
Zu diesem Zweck wurden zwei verschiedene Methoden (das sogenannte Inertisierungsverfahren und das modifizierte Verfahren mit Verteilerschale) verwendet. Beide Methoden sind in diesem Artikel beschrieben. Er umfasst experimentelle Ergebnisse von Mikrostäuben, welche zur Validierung verwendet worden und darüber hinaus erste Ergebnisse mit Eisen und Aluminium Nanostäuben, die bis kurz vor dem Entzünden unter inerten Bedingungen gehandhabt worden. Das getestete Nano Eisen reagiert pyrophor, sobald es mit Luft in Kontakt kam, während bei dem untersuchten Nano Aluminium solches Verhalten nicht generell beobachtet werden konnte. Die Versuche mit Nano Aluminium und dem Inertisierungsverfahren zeigten einen höheren Druckanstieg im Vergleich zum Standard-Prüfverfahren. Dies könnte auf einen unterschiedlichen Grad der Passivierung hindeuten. Um diese Beobachtung näher zu untersuchen, sind weitere Versuche mit einer größeren Anzahl an Stäuben notwendig.
There are several standardized ignition sources in use for the determination of explosion characteristics of gases, vapors and dusts. In the standards the ignition source is stated, but they vary in stating other characteristics like burning duration, energy or burning volume. Since heat is not visible under normal circumstances a Schlieren-Technique was used to make the full heating volume and not just the flames visible.
While an earlier paper of the authors focused on the ignition energy and burning duration of four standardized ignition sources, this paper focuses on the initial igniting volume, the ratio between initial igniting volume and the test-vessel size and other phenomena that were observed with the Schlieren-Technique-.
The article summarizes a short review of the literature focused on safety in the field of alternative energy sources. With an increasing orientation towards sustainable and renewable energy sources, new technologies will come to the fore. These facts must be demonstrated in occupational health and safety. Several studies focused on alternative energy sources are mentioned and show the trends for the future. Especially in the area of hydrogen and battery technologies, systems should pay attention to acquisitions as a normal part of our lives.
Safety research is essential for the acceptance of cleaner, efficient, and sustainable future.
There is no applicable existing standard for the determination of safety characteristics for hybrid mixtures. While developing a new standard in a joint research project in Germany first results from parameter studies led to a standard procedure that can be adopted by laboratories that are already testing dusts in the so called 20L-sphere with as little additional effort as necessary. In fact, one of the main objectives of this research project was to keep modifications and adjustments from the generally accepted dust testing procedures as easy and minimal as possible so as to limit potential deviations from one laboratory to another.
In this first round robin test on hybrid mixtures ever, with methane as gas component and a specific corn starch as dust sample, the practicality of the whole procedure, the scattering of the results and the deviation between the testing apparatuses is investigated. This paper summarizes the experimental procedure adopted and objectives of the first round-robin phase involving three of the four original German companies, plus volunteering laboratories from Australia, Belgium, Czech Republic, France, Poland and P.R. China. The results will have an impact on the new standard and may lead to robust data for later simulation purposes.
The explosion characteristics of anthracite coal dust with/without small amount of CH4 (1.14 vol %) were investigated by using a 20 L spherical explosion apparatus with an emphasis on the roles of oxygen mole fraction and inert gas. Two methods based on overpressure and combustion duration time were used to determine the minimum explosion concentration (MEC) or the lower explosion limit (LEL) of the pure anthracite coal dust and the hybrid coal-methane mixtures, respectively. The experiment results showed that increasing oxygen mole fraction increases the explosion risk of coal dust: with increasing oxygen mole fraction, the explosion pressure (Pex) and the rate of explosion pressure rise ((dp/dt)ex)) increase, while MEC decreases. The explosion risk of anthracite dust was found to be lower after replacing N2 with CO2, suggesting that CO2 has a better inhibition effect on explosion mainly due to its higher specific heat. However, the addition of 1.14% CH4 moderates the inhibition effect of CO2 and the promotion effect of O2 on anthracite dust explosion for some extent, increasing explosion severity and reducing the MEC of anthracite dust. For hybrid anthracite/CH4 mixture explosions, Barknecht’s curve was found to be more accurate and conservative than Chatelier’s line, but neither are sufficient from the safety considerations. The experimental results provide a certain help for the explosion prevention and suppression in carbonaceous dust industries.
The production of materials with dimensions in the nanometre range has continued to increase in recent years. In order to ensure safety when handling these products, the hazard potential of such innovative materials must be known. While several studies have already investigated the effects of explosions (such as maximum explosion pressure and maximum pressure rise) of powders with primary particles in the nanometre range, little is known about the ignition temperatures and flame velocities. Therefore, the minimum ignition temperature (MIT) of metallic nano powders (aluminium, iron, copper and zinc) was determined experimentally in a so called Godbert-Greenwald (GG) oven. Furthermore, the flame velocities were determined in a vertical tube. In order to better classify the test results, the tested samples were characterised in detail and the lower explosion limits of the tested dust samples were determined. Values for the burning velocity of aluminium nano powders are higher compared to values of micrometre powd
ers (from literature). While MIT of nanometre aluminium powders is within the range of micrometre samples, MIT of zinc and copper nano powders is lower than values reported in literature for respective micrometre samples.
Quasi-static dispersion of dusts for the determination of lower explosion limits of hybrid mixtures
(2022)
Knowledge of explosion limiting concentration of explosible materials is necessary forthe design of explosion protection measures. Currently employed methods of testing MEC of a dust cloud or LEL of a hybrid mixture are based on arbitrary assumptionsand possess technical limitations that often lead to values of MEC/LEL, which are unrealistically low or poorly reproducible. This contribution presents an improved method for experimental determination of MEC of a combustible dust cloud or LEL of a flammable gas or hybrid mixture. The new setup operates under laminar conditions and allows a uniform suspension of dust particles in an open top acrylic glass tube. Dust concentration is measured with the help of infrared sensors installed a few centimeters above and below the ignition source. In order to evaluate the dependence of MEC on flow front velocity, MEC of lycopodium was determined at four flow velocities. The results show that the flow field intensity does not significantly influence the MEC of lycopodium for the flow ranges tested in this work. Moreover, LEL of hybrid mixtures of lycopodium and methane was also tested at flow velocities of 4.7 cm/s, 5.8 cm/s, 7 cm/s and 11 cm/s and compared with the values obtained from other sources. The results suggest that the requirement of high energy pyrotechnical igniter may be relinquished, provided that a truly homogeneous suspension of dust particles could be achieved. Moreover, the effect of relative amount of dust and gas, on the course of ignition and flame propagation in hybrid mixtures at their LEL, was studied by the help of high speed videos. For hybrid mixtures of carbonaceous dusts (like lycopodium) at their LEL, ignition occurs in the gas phase, however, flame propagation is only possible through a two-way interaction of dust and gas during the course of combustion.
The production of materials with dimensions in the nanometre range has continued to increase in recent years. In order to ensure safety when handling these products, the hazard potential of such innovative materials must be known. While several studies have already investigated the effects of explosions (such as maximum explosion pressure and maximum pressure rise) of powders with primary particles in the nanometre range, little is known about the ignition temperatures and flame velocities. Therefore, the minimum ignition temperature (MIT) of metallic nano powders (aluminium, iron, copper and zinc) was determined experimentally in a so called Godbert-Greenwald (GG) oven. Furthermore, the flame velocities were determined in a vertical tube. In order to better classify the test results, the tested samples were characterised in detail and the lower explosion limits of the tested dust samples were determined. Values for the burning velocity of aluminium nano powders are higher compared to values of micrometre powders (from literature). While MIT of nanometre aluminium powders is within the range of micrometre samples, MIT of zinc and copper nano powders is lower than values reported in literature for respective micrometre samples.
Quasi-static dispersion of dusts for the determination of lower explosion limits of hybrid mixtures
(2020)
Knowledge of explosion limiting concentration of explosible materials is necessary for the design of explosion protection measures. Currently employed methods of testing MEC of a dust cloud or LEL of a hybrid mixture are based on arbitrary assumptions and possess technical limitations that often lead to values of MEC/LEL, which are unrealistically low or poorly reproducible.
This contribution presents an improved method for experimental determination of MEC of a combustible dust cloud or LEL of a flammable gas or hybrid mixture. The new set-up operates under laminar conditions and allows a uniform suspension of dust particles in an open top acrylic glass tube. Dust concentration is measured with the help of infrared sensors installed a few centimeters above and below the ignition source.
In order to evaluate the dependence of MEC on flow front velocity, MEC of lycopodium was determined at four flow velocities. The results show that the flow field intensity does not significantly influence the MEC of lycopodium for the flow ranges tested in this work. Moreover, LEL of hybrid mixtures of lycopodium and methane was also tested at flow velocities of 4.7 cm/s, 5.8 cm/s, 7 cm/s and 11 cm/s and compared with the values obtained from other sources. The results suggest that the requirement of high energy pyrotechnical igniter may be relinquished, provided that a truly homogeneous suspension of dust particles could be achieved.
Moreover, the effect of relative amount of dust and gas, on the course of ignition and flame propagation in hybrid mixtures at their LEL, was studied by the help of high speed videos. For hybrid mixtures of carbonaceous dusts (like lycopodium) at their LEL, ignition occurs in the gas phase, however, flame propagation is only possible through a two-way interaction of dust and gas during the course of combustion.
Influence of pre-ignition pressure rise on safety characteristics of dusts and hybrid mixtures
(2021)
For the determination of the safety characteristics of dusts it is necessary to disperse the dust in the oxidating atmosphere (usually air). In the standard procedures for dusts this is realized by a partially evacuated explosion vessel (20L-sphere) in which the dust gets injected from a dust chamber pressurized with air. Shortly after that injection (60 ms) the dust cloud gets ignited under turbulent conditions, that are otherwise seen as almost ambient with 20 ◦C and about 1 bar (abs). While there has been a lot of research about the influence of the ignition delay time and the level of turbulence in the recent years little attention was paid to the pre–ignition pressure rise and the allowed variations in the standards. In the following work we showed that the allowed ranges for the pressures in the different dust standards influence the safety characteristics of dust alone severely.
Even though hybrid mixtures are an emerging risk problem in an interconnected industry there is no standard for the determination of their safety characteristics. In this work it is shown that especially for the preparation of hybrid mixtures of flammable dust and gas the pressures after injection of the dust and the mixing procedure have a large influence on the composition of the tested mixtures and therefore on the safety characteristics.
Considering both effects, wrong concentration of gas and wrong initial pressure, the discrepancy of safety characteristics from different facilities will be too big to applicable. The methods to overcome these weaknesses are also presented.
For the determination of safety characteristics of gases, vapors and dusts different types of ignition sources are used in international standards and guidelines. The paper presents test results of a comparative calorimetric and visual study between four different types of ignition sources. The ignition procedures were analyzed visually with a high-speed camera and electric recordings. In addition to that, the influence of the electrode-orientation, -distance as well as ignition energy on the reproducibility of the exploding wire igniter was tested.
The exploding wire is already in use for standardized determination of safety characteristics of gases, first tests on the suitability of the exploding wire igniter for dust testing have been carried out but are not standardized yet. Using the exploding wire, the ignition energy can be varied from 2 J to 10 000 J (2 x 5000 J) and thus it could be used for gases, vapors, dusts and hybrid mixtures. Moreover it can be used at high initial pressures and it is the only ignition source with an easily measurable ignition energy release. Furthermore, it does not introduce another chemical reaction into the system.
Finally, a proposal for a standard ignition source for explosion tests on hybrid mixtures is derived from the test results.
The publicly available document encapsulates the first version of the Catalogue of Services of the future EC4Safenano Centre (CoS 2019).
The CoS 2019 is structured in 12 Service Categories and 27 Service Topics, for each of the 12 categories considered. This architecture configures a 12 x 27 matrix that allows ordering the potential EC4Safenano offer in 324 types of services/groups of services.
Each type of service/group of services is described, in a simple and friendly way, by means of a specific service sheet: the EC4Safenano - Service Data Sheet (EC4-SDS). These EC4-SDSs allow structuring and summarizing the information of each service, providing the customer with a concise view of characteristics of the service and also the contact details with the service provider.
The CoS 2019 deploys a map of services consisting of a set of 100 EC4-SDSs, covering 7 of the 12 Service Categories and 17 of the 27 Service Topics.
The harmonization of services is visualized as a future necessary step in EC4Safenano, in order to strengthen the offer and provide added value to customers with a growing offer of harmonized services in future versions of the CoS.
The information contained in this document is structured in 3 main sections, as follows:
• Catalogue structure. This section describes in short the main characteristics of the CoS 2019.
• Catalogue content. This section represents the core part of the document and encapsulates the set of 100 SDSs displaying the offer proposed by the CoS 2019.
• Online Catalogue. This section describes the resources implemented by EC4Safenano to facilitate the on-line consultation of the CoS 2019 by customers and other interested parties.
MIKE III apparatus tests were conducted to investigate the minimum ignition energy (MIE) of coal dusts in air and O2/CO2 atmospheres with and without small amount of CH4/H2. The O2 mole fraction (XO2) in the gas mixtures varied from 21% to 50% with the CH4/H2 mole fraction from 0 to 2%. Experimental result showed that MIE of coal dusts significantly decreases even by three orders of magnitude in mJ with increasing XO2 and the addition of CH4/H2. Compared with CH4, H2 had a relatively strong promotion effect on the spark ignition of coal dusts. The inhibiting effect of CO2 was found to be much stronger than N2, but this inhibiting effect of CO2 could be eliminated by 9% increment of XO2. The effect on MIE of coal dusts thus followed by the order: 9% increment of XO2 > CO2 replacing N2 > 2% CH4 or H2 addition. Moreover, two empirical models were used to estimate the MIE of hybrid dust-gas mixture (HMIE), and the results showed that calculated data can well reflect the promoting effect of elevated XO2 and flammable gas addition, and the inhibiting effect of inert gas
While developing a standard for the determination of safety characteristics for hybrid mixtures the authors discovered, that, beside the ignition source, the mixing procedure is the main difference between the single-phase standards for dusts and gases. The preparation of hybrid mixtures containing a flammable gas and a flammable dust in the 20 L-sphere can be realized in different ways. Either the flammable gas is filled only in the sphere or only in the dust container or in both. In previous works, almost always the first method is applied, without giving any information on the accuracy of the gas mixtures. In this work the accuracy of the gas mixtures and the results of the tests applying two methods of mixing were studied. No significant influence of the mixing method itself on the safety characteristics explosion pressure pex and the normalized rate of pressure rise (K-value) was found. Obviously, homogenization of the gas mixtures can be obtained sufficiently by the turbulence that is caused during the injection from the dust container into the explosion chamber within a short time. However, the mixing procedure has a great influence on the accuracy of the gas amount of the mixtures obtained. Without modifying the 20 L-sphere by installing precise pressure sensors, assuring its tightness and performing gas analysis, it must be expected, that the accuracy of the gas mixtures is very low. This has a significant influence on the measured safety characteristics and may lead to unsafe facilities or unnecessary expensive safety measures.
Acetylene pressure cylinders are widely used in the industrial sector for welding, flame cutting, or heating.
Sometimes during work, not only with acetylene cylinders, fires occur and in this case the risk of destruction increases and the behavior of such an exposed cylinder is unpredictable. The purpose of this study is to identify those critical conditions when acetylene cylinders burst and explode in fires. In the present study, acetylene cylinders were exposed to fire conditions. For this purpose, a woodpile as a source of fire was chosen, tested, and evaluated. In addition to the fire condition, this option guaranteed reproducibility and similar conditions for all tests. The individual cylinders were equipped with thermocouples measuring the shell temperature, and half of them were prepared in order to measure the temperatures inside the cylinder. An important factor was the measurement of the amount of pressure that was achieved during the destruction of the cylinder. For this purpose, a pressure transducer was attached to the outlet of the cylinder valve. Exposed to direct fire, they can explode in 10 min, which was confirmed. The critical pressure of 40 bar has been reached in 6 min, followed by destruction after 7 min in fire. Cylinders with internal thermocouples were destroyed when lower pressure was achieved. This confirms the fact that any change of the pressure cylinder affects the original properties. After the tests, the fragments of the selected cylinders were subjected to material tests. The results obtained in these tests are the main source of information for understanding the behavior of acetylene cylinders in fire and the possibility of increasing the safety of intervening rescue services in an emergency.
Nanotechnologie gilt als die Wachstumsbranche der nächsten Jahrzehnte. Nicht zuletzt ist diese Entwicklung den veränderten Eigenschaften der Materialien im Nanometerbereich zuzuschreiben. Das anders geartete Verhalten solcher Stoffe und die daraus ableitbare Unkenntnis über die Interaktion dieser Materialien mit ihrer Umgebung erfordert zur Risikoabschätzung eine intensive Auseinandersetzung mit der Thematik. Aufgrund von Erfahrungen mit Stäuben mit Partikelgrößen im Mikrometerbereich ist bekannt, dass Stoffe mit abnehmender Partikelgröße kritischer einzustufen sind, da ihre Explosionsheftigkeit und Zündempfindlichkeit durch die Zunahme der reaktiven Oberfläche des Staubs zunimmt. Nachfolgend werden Ergebnisse von Versuchen mit nanoskalig hergestellten Metallstäuben präsentiert. Der Fokus dieser Studie lag darauf, möglichst das kritischste Brand- und Explosionsverhalten solcher Stäube zu erfassen
This paper describes experiences and results of experiments with several metallic dusts within the nanometer range. The nano dusts (aluminium, .iron, zinc, titanium and copper) were tested in a modified experimental Setup for the test apparatus 20-L sphere (also known as 20-L Siwek Chamber), that enables the test samples to be kept under inert atmospheric conditions nearly until ignition. This setup was already introduced in earlier papers by the authors. It was designed to allow the determination of safety characteristics of nano powders under most critical circumstances (e.g. minimisation of the influence of oxidation before the test itself). Furthermore the influence of passivation on explosion behaviour is investigated and additional tests with deposited dust were carried out to describe the burning behaviour of all dusts. For a better characterisation all samples were tested with a simultaneous thermal analysis (STA). To minimise the influence of oxidation all samples were handled at inert conditions until shortly before ignition or start of the test respectively.
This paper describes experiences and results of experiments with several metallic dusts within the nanometer range. The nano dusts (aluminium, iron, zinc, titanium and copper) were tested in a modified experimental setup for the test apparatus 20 L-sphere (also known as 20-L Siwek Chamber), that enables the test samples to be kept under inert atmospheric conditions nearly until ignition. This setup was already introduced in earlier papers by the authors. It was designed to allow the determination of safety characteristics of nano powders under most critical circumstances (e.g. minimisation of the influence of oxidation before the test itself). Furthermore the influence of passivation on explosion behaviour is investigated and additional tests with deposited dust were carried out to describe the burning behaviour of all dusts. For a better characterisation all samples were tested with a simultaneous thermal analysis (STA). To minimise the influence of oxidation all samples were handled at inert conditions until shortly before ignition or start of the test respectively.
Nanotechnologie gilt als die Wachstumsbranche der nächsten Jahrzehnte. Nicht zuletzt ist diese Entwicklung den veränderten Eigenschaften der Materialien im Nanometerbereich zuzuschreiben. Das anders geartete Verhalten solcher Stoffe und die daraus ableitbare Unkenntnis über die Interaktion dieser Materialien mit ihrer Umgebung erfordert zur Risikoabschätzung eine intensive Auseinandersetzung mit der Thematik. Aufgrund von Erfahrungen mit Stäuben mit Partikelgrößen im Mikrometerbereich ist bekannt, dass Stoffe mit abnehmender Partikelgröße kritischer einzustufen sind, da ihre Explosionsheftigkeit und Zündempfindlichkeit durch die Zunahme der reaktiven Oberfläche des Staubs zunimmt. Nachfolgend werden Ergebnisse von Versuchen mit nanoskalig hergestellten Metallstäuben präsentiert. Der Fokus dieser Studie lag darauf, möglichst das kritischste Brand- und Explosionsverhalten solcher Stäube zu erfassen.
Experimentelle Untersuchung zum Einfluss eines neuen pyrotechnischen Zünders auf die ermittelten STK
(2010)
This paper describes experiences and results of experiments with several metallic dusts within the nanometer range. The nano dusts (aluminium, iron, zinc, titanium and copper) were tested in a modified experimental setup for the test apparatus 20 L-sphere (also known as 20-L Siwek Chamber), that enables the test samples to be kept under inert atmospheric conditions nearly until ignition. This setup was already introduced in earlier papers by the authors. It was designed to allow the determination of safety characteristics of nano powders under most critical circumstances (e.g. minimisation of the influence of oxidation before the test itself). Furthermore the influence of passivation on explosion behaviour is investigated and additional tests with deposited dust were carried out to describe the burning behaviour of all dusts. For a better characterisation all samples were tested with a simultaneous thermal analysis (STA). To minimise the influence of oxidation all samples were handled at inert conditions until shortly before ignition or start of the test respectively.
The maximum explosion overpressure and the maximum rate of pressure rise, which characterize thedust explosion severity, are commonly measured in apparatuses and under specific conditions defined byinternational standards. However, those standards conditions, designed for micropowders, may not befully adapted to nanoparticles. Investigations were conducted on different nanopowders (nanocellulose,carbon black, aluminum) to illustrate their specific behaviors and highlight the potential inadequacyof the standards. The influence of the sample preparation was explored. Various testing procedureswere compared, focusing on the dust cloud turbulence and homogeneity. Dust dispersion experimentsevidenced the importance of the characterization of the dust cloud after dispersion, due to the frag-mentation of agglomerates, using metrics relevant with nanoparticles reactivity (e.g. surface diameterinstead of volume diameter). Moreover, the overdriving phenomenon (when the experimental resultsbecome dependent of the ignition energy), already identified for micropowders, can be exacerbated fornanoparticles due to their low minimum ignition energy and to the high energy used under standardconditions. It was evidenced that for highly sensitive nanopowders, pre-ignition phenomenon can occur.Finally, during severe explosions and due to a too long opening delay of the ‘fast acting valve’, the flamecan go back to the dust container.
Die steigende Produktion und Nachfrage von Materialien mit Primärpartikelgrößen im Nanometerbereich (insbesondere wegen der veränderten Eigenschaften) erfordert eine intensive Auseinandersetzung mit der Thematik zur Risikoabschätzung. Sogenannte Nanostäube können aus brennbaren Ausgangsmaterialien bestehen. Beispiele für brennbare Nanostäube, die in großen Mengen hergestellt werden, sind Metallstäube, Ruße (Carbon Black) oder andere Kohlenstoffverbindungen, welche u. a. für die Herstellung von Gummi, Kunststoffen, Beschichtungsstoffen oder Farben verwendet werden. Aufgrund von Erfahrungen mit Stäuben mit Partikelgrößen im Mikrometerbereich ist bekannt, dass Stoffe mit abnehmender Partikelgröße kritischer einzustufen sind, da z.B. maximaler Explosionsdruck, zeitlicher Druckanstieg und Zündempfindlichkeit durch die Zunahme der reaktiven Oberfläche des Staubes zunimmt. Alle Erkenntnisse zum Ablauf von Staubexplosionen, aus der Auswertung von Schadensereignissen sowie aus der Bestimmung sicherheitstechnischer Kenngrößen und hierbei gefundene Abhängigkeiten basieren auf Schadensereignissen bzw. Untersuchungen von Stäuben mit Korngrößen im Bereich von Mikrometern. Inwieweit sich die Erkenntnisse auf feinere Partikel bis hin zum Nanometerbereich übertragen lassen, wurde im Rahmen der durchgeführten Arbeiten näher untersucht. In diesem Beitrag werden die wesentlichen Ergebnisse kurz dargestellt und basieren auf den Arbeiten im Zuge der Dissertationsschrift zum Brand- und Explosionsverhalten von Nanostäuben.
Validation of the new ignition source 'exploding wire' for dust explosion testing in the 20-L-sphere
(2014)
The safety characteristics Maximum Explosion Pressure pniB, Maximum Explosion Pressure Rise (dp/dt)™* and Lower Explosion Limit LEL are determined in closed vessels such as the 20-L-sphere according to international Standards. Dust ignition is carried out using pyrotechnical igniters which are defined in the Standards. Due to various disadvantages of pyrotechnical igniters the need for alternative ignition sources arises again and again. Studies at the Federal Institute for Material Research and Testing (BAM) with ignition units which were able to generate ignition energies up to 2000 J showed that the so-called “exploding wire” or “fuse wire“ is suitable as an alternative ignition source. The paper presents further test results for the Validation of the exploding wire for the determination of Pm» and (dp/dt)mx in the 20-L-sphere. The tests were performed with a new ignition unit and improved electrodes which allowed ignition energies up to 10000 J. The paper also analyses propagation of flame and electrical arc on basis of high speed camera recordings. Turbulence measurements with a LDA System in the 20-L-sphere allowed investigation whether the activation of the ignition sources has an influence on the turbulence field generated during dust dispersion and whether the influence differs depending on the ignition source.
Protection from explosion events requires the determination of key safety parameters like lower explosion limit. maximum Explosion over-pressure. and maximum rate of pressure rise. These Parameters are routinely obtained through standard tests performed typically either in a 20 L -sphere or a 1 m3-container. But several aspects are worth a closer investigation. Firstly, the test apparatus must be able to disperse a fairly uniform dust cloud. However. previous investigations showed that actually the current dispersion System can be improved. Secondly, the influence of humidity on the explosivity is not considered in current standards. lt is just stated that the relative humidity should be checked and noted down.
though some provisions exist in American standards. Thirdly. the ignition delay time is sometimes modified to study the impact of the dust cloud turbulence on flame propagation but is often misunderstood.
Maybe these aspects have not been thoroughly considered for micron powders. However. in the case of nanopowders. the importance of these influencing factors was shown in order to duly evaluate explosion parameters. Experimental evidences confirm these aspects and alternative solutions will be presented.
Die Produktion von Materialien mit Abmessungen im Nanometerbereich hat in den letzten Jahren immer weiter zugenommen. Um die Sicherheit beim Umgang mit diesen Produkten zu gewährleisten, muss das Gefahrenpotenzial solcher innovativen Materialien bekannt sein. Während bereits in mehreren Studien die Auswirkungen von Explosionen (wie z.B. maximaler Explosionsdruck und maximaler zeitlicher Druckanstieg) von Stäuben mit Primärpartikeln im Nanometerbereich untersucht wurden, ist darüber hinaus bislang wenig über die Zündtemperaturen und die Flammenausbreitungsgeschwindigkeiten solcher Pulver bekannt.
Problematisch bei der Untersuchung der Flammengeschwindigkeiten von Staubexplosionen allgemein ist, dass die Stäube vor dem Entzünden dispergiert werden müssen. Auf diese Weise wird eine gute Verteilung der Partikel im entsprechenden Prüfvolumen sichergestellt. Dies führt jedoch dazu, dass zum Zündzeitpunkt in den Standardprüfapparaturen hohe Turbulenzbedingungen vorherrschen. Aus wissenschaftlicher Sicht wäre es jedoch wünschenswert, die laminare Flammenausbreitungsgeschwindigkeit bestimmen zu können.
Im Beitrag werden Ergebnisse von Versuchen mit verschiedenen metallischen Materialien und Partikelgrößenverteilungen vorgestellt.
Ziel dieser Versuche war es, die Turbulenzbedingungen zum Zündzeitpunkt durch einen speziellen Versuchsaufbau möglichst zu minimieren.
Die Flammenausbreitung wurde experimentell in einem vertikalen Rohr untersucht, das an einer Seite offen ist. Das Rohr wird auf einen metallischen Boden gestellt, der gleichzeitig die Staubprobe vorhält und die Luftzufuhr in das Rohr ermöglicht. Eine poröse Platte befindet sich innerhalb des metallischen Bodens, um die Turbulenzen im Luftstrom zu reduzieren. Die Zündquelle wird durch einen Hochspannungsfunken von zwei Elektroden bereitgestellt, die sich auf einem Drittel der Rohrlänge befinden. Die Staubkonzentration wird optisch (durch Lichtdämpfung) mit zwei Konzentrationssonden gemessen, die jeweils unter den Elektroden (unten) und über ihnen (oben) angeordnet sind. Die Flammenausbreitung wurde mit einer Hochgeschwindigkeitskamera aufgezeichnet.
Zur besseren Einordnung der Versuchsergebnisse wurden die untersuchten Proben eingehend charakterisiert und die Zündtemperaturen und unteren Explosionsgrenzen der untersuchten Staubproben bestimmt.
This work presents an overview about the explosion behaviour of metallic powders from micron to nanosize.
Aluminium, magnesium, titanium, iron and zinc were considered and their explosion safety parameters were analysed as a function of their mean primary particle size either determined by BET measurements, particle size distribution. To depict the course of explosion behaviour for these metals, extensive literature review has been performed and additional experimental tests were also performed. Generally, decreasing the particle size in a metallic powder leads to a higher explosion severity. It appears that this statement is true till a critical Diameter below which the explosion severity (pmax, dp/dtmax) decreases for all the considered powders. This critical size can be explained by theoretical considerations on the nature of thermal transfer in the flame, namely by analysing the Cassel model. Finally, semi-empirical models were also developed for aluminium to highlight the specific micrometre and nanometre behaviour and the influence of turbulence, particle burning time, Diameter and concentration. The influence of these key parameters needs to be further assessed in a future work in order to better understand the mechanisms involved and to extend the scope to other powdered materials.
Entwicklungen zu Bestimmungsverfahren für sicherheitstechnische Kenngrössen hybrider Gemische
(2020)
Zur Bestimmung sicherheitstechnischer Kenngrößen (STK) von hybriden Gemischen (Gemisch aus mindestens zwei brennbaren Phasen, wie z.B. Staub/Gas- oder Gas/Dampf-Gemisch) existieren bislang keine einheitlichen, genormten Prüfmethoden. Die Normen und Regelwerke zur Bestimmung der STK von einphasigen brennbaren Systemen (Staub, Gas, Dampf) unterscheiden sich teilweise erheblich. Beispielsweise sind in den jeweiligen Normen für Stäube, Gase und Dämpfe unterschiedliche Zündquellen und Zündenergien definiert. Des Weiteren unterscheiden sich die in den Normen definierten Prüfabläufe bei der Gemischherstellung. Bei der Entwicklung einer einheitlichen Norm für hybride Gemische muss der Einfluss dieser beiden Parameter ermittelt werden, um die Vergleichbarkeit mit den STK der einzelnen Komponenten Gas, Staub und Dampf gewährleisten zu können und bisherige Erkenntnisse zu hybriden Gemischen interpretieren und bewerten zu können.
For the determination of safety characteristics of gases, vapors and dusts different types of ignition sources are used in international standards and guidelines. Table 1 compares technical relevant ignition sources with their main features. The paper presents test results of a comparative calorimetric and visual study between four different types of ignition sources. The ignition procedures were analyzed visually with a high-speed camera and electric recordings. In addition to that, the influence of the electrode-orientation, -distance as well as ignition energy on the reproducibility of the exploding wire igniter was tested.
The exploding wire is already in use for standardized determination of safety characteristics of gases, first tests on the suitability of the exploding wire igniter for dust testing have been carried out by Scheid et al. Using the exploding wire, the ignition energy can be varied from 2 to 10 000 J (2 x 5 000 J) and thus it could be used for gases, vapors, dusts and hybrid mixtures. Moreover it can be used at high initial pressures and it is the only ignition source with an easily measurable ignition energy release. Furthermore, it does not introduce another chemical reaction into the system.
Finally, a proposal for a standard ignition source for explosion tests on hybrid mixtures is derived from the test results.
In diesem Verbundvorhaben werden standardisierte Messverfahren für hybride Gemische erarbeitet, die der Bestimmung sicherheitstechnischer Kenngrößen des Explosionsschutzes dienen. Unter einem hybriden Gemisch wird dabei ein mehrphasiges System aus Brenngas oder brennbarem Dampf, sowie Luft und brennbarem Staub verstanden. Die Veröffentlichung der Ergebnisse erfolgt in einem Abschlussbericht und als DIN-Spezifikation (DIN SPEC). Diese DIN SPEC versetzt Prüfinstitute und Industrie in die Lage, Explosionsgefahren beim Betrieb technischer Anlagen mit hybriden Gemischen einzuschätzen und damit Prozesse sowohl sicherer als auch effizienter zu steuern. Dieses Projekt wird im Rahmen des WIPANOProgramms (Wissens- und Technologietransfer durch Patente und Normen) vom BMWi gefördert.
In vielen Bereichen der Industrie und im verarbeitenden Gewerbe werden eine Vielzahl brennbarer Stäube gezielt oder ungewollt produziert, verarbeitet, transportiert oder anderweitig verwendet. Je nach Material- und Staubeigenschaften weisen diese eine teilweise sehr hohe Reaktivität auf. Es gilt weiterhin als allgemein bekannt, dass die Partikelgröße einen entscheidenden Einfluss auf das Brand- und Explosionsverhalten von Stäuben ausübt. Mit Abnahme der Partikelgröße nehmen die gefährlichen Auswirkungen im Falle einer Explosion und die Zündempfindlichkeit der Stäube zu. Aufgrund der veränderten Eigenschaften im Nanometerbereich hat die Produktion solcher Stäube mit sehr geringen Primärpartikelgrößen in den letzten Jahren zugenommen. Diese Entwicklung wird sich in den folgenden Jahren fortsetzen. Über das Brand- und Explosionsverhalten solcher Stäube war bis vor wenigen Jahren jedoch kaum bis wenig bekannt.
In vielen Bereichen der Industrie und im verarbeitenden Gewerbe werden eine Vielzahl brennbarer Stäube gezielt oder ungewollt produziert, verarbeitet, transportiert oder anderweitig verwendet. Je nach Material- und Staubeigenschaften weisen diese eine teilweise sehr hohe Reaktivität auf. Es gilt weiterhin als allgemein bekannt, dass die Partikelgröße einen entscheidenden Einfluss auf das Brand- und Explosionsverhalten von Stäuben ausübt. Mit Abnahme der Partikelgröße nehmen die gefährlichen Auswirkungen im Falle einer Explosion und die Zündempfindlichkeit der Stäube zu. Aufgrund der veränderten Eigenschaften im Nanometerbereich hat die Produktion solcher Stäube mit sehr geringen Primärpartikelgrößen in den letzten Jahren zugenommen. Diese Entwicklung wird sich in den folgenden Jahren fortsetzen. Über das Brand- und Explosionsverhalten solcher Stäube war bis vor wenigen Jahren jedoch kaum bis wenig bekannt.
Aufgrund von Erfahrungen mit Stäuben mit Partikelgrößen im Mikrometerbereich ist bekannt, dass Stoffe mit abnehmender Partikelgröße kritischer einzustufen sind, da z.B. maximaler Explosionsdruck (pmax), maximaler zeitlicher Druckanstieg (dp/dtmax) und Zündempfindlichkeit durch die Zunahme der reaktiven Oberfläche des Staubes zunehmen. Eine Übersicht des Verlaufes der Explosionsauswirkungen metallischer Stäube vom Mikrometerbereich bis in den Nanometerbereich konnte bislang nur vereinzelt durch wenige Ergebnisse gegeben werden.
Dieser Beitrag präsentiert einen detaillierten Überblick über das Explosionsverhalten von Metallstäuben vom Mikrometer- bis in den Nanometerbereich. Hierfür wurden verschiedene Metallstäube untersucht und deren Explosionsauswirkungen in Abhängigkeit der mittleren Primärteilchengröße entweder durch BET-Messungen, Partikelgrößenverteilung oder REM-Mikroskopie bestimmt. Um den Verlauf des Explosionsverhaltens für diese Metalle darzustellen, wurde einerseits eine umfangreiche Literaturrecherche durchgeführt. Darüber hinaus wurden die im Rahmen deutscher und französischer Forschungsprogramme durchgeführten experimentellen Untersuchungen genutzt, um insbesondere die Datenlage für nanoskalig hergestellte Stäube zu verbessern. Auch bei Metallstäuben im Allgemeinen führt eine Verringerung der Teilchengröße zu einem kritischeren Verhalten der Stäube. Es scheint jedoch, dass diese Aussage nur bis zu einem kritischen Durchmesser gilt, unterhalb dessen die Auswirkungen einer Explosion (pmax, dp/dtmax) für alle betrachteten Stäube wieder abnehmen. Diese kritische Größe kann durch theoretische Überlegungen zur Art der thermischen Übertragung in der Flamme erklärt werden. Der Einfluss der Schlüsselparameter wird in diesem Beitrag ebenfalls diskutiert, um die Mechanismen besser zu verstehen und das Verständnis letztendlich auch auf andere pulverförmige Materialien auszudehnen.
Safety characteristics are widely used in industrial processes to avoid explosive atmospheres (primary explosionprotection) or to mitigate the consequences of an explosion (constructive explosion protection). Several laboratory parameters influence the determined values when performing the test series such as the beginning pressure and the pre-ignition pressure rise, the ignition source, the ignition energy, the burning duration and volume or the concentration of the combustible substance.
In the different standards for the determination of safety characteristics of dusts there is no statement about the scattering or the deviation when parameters are chosen or occur on the borders of their allowed range. Thus, two laboratories might determine values that are hardly comparable for the same given substance.
This article summarizes some of the influential factors that cause a deviation and shows the inherent scattering of dust tests when all other parameters are kept constant. It also provides some advice how to minimize the deviation and the scattering with little effort.
Several standardized ignition sources are used to determine the safety characteristics of gases, vapours and dusts. Standards indicate the source of ignition but vary in specifying other features such as the burning duration, energy or the volume in which the energy is released. Since heat is not visible under normal conditions, a schlieren technique was used to visualize the entire igniting volume and not just the flames. This article focuses on the igniting volume, compares it among the four standardized ignition sources and displays its relationship to the size of the test vessel. Differences in the ignition behaviour of the ignition sources might lead to the determination of erroneous safety characteristics and with that to the unsafe operation of processes.
The hybrid mixture of combustible dusts and flammable gases/vapours widely exist in various industries, including mining, petrochemical, metallurgical, textile and pharmaceutical. It may pose a higher explosion risk than gas/vapor or dust/mist explosions since the hybrid explosions can still be initiated even though both the gas and the dust concentration are lower than their lower explosion limit (LEL) values. Understanding the explosion threat of hybrid mixtures not only contributes to the inherent safety and sustainability of industrial process design, but promotes the efficiency of loss prevention and mitigation. To date, however, there is no test standard with reliable explosion criteria available to determine the safety parameters of all types of hybrid mixture explosions, nor the flame propagation and quenching mechanism or theoretical explanation behind these parameters. This review presents a state-of-the-art overview of the comprehensive understanding of hybrid mixture explosions mainly in an experimental study level; thereby, the main limitations and challenges to be faced are explored. The discussed main contents include the experimental measurement for the safety parameters of hybrid mixtures (i.e., explosion sensitivity and severity parameters) via typical test apparatuses, explosion regime and criterion of hybrid mixtures, the detailed flame propagation/quenching characteristics behind the explosion severities/sensitivities of hybrid mixtures. This work aims to summarize the essential basics of experimental studies, and to provide the perspectives based on the current research gaps to understand the explosion hazards of hybrid mixtures in-depth.
The maximum rate of pressure rise (dp/dt)𝑚𝑎𝑥 and the corresponding K-value of hybrid mixtures containing flammable gases and dusts are important for constructive explosion protection measures. Since the safety characteristics of dusts and gases are determined under different conditions, there has been considerable confusion about the influence of flammable gas on the (dp/dt) of dusts and vice versa. While some investigations showed comparably higher values for hybrid mixtures, others stated that the highest value for the gas component alone is the worst case.
The first part of this paper focuses on the confusion around the different statements about (dp/dt)𝑚𝑎𝑥 of hybrid mixtures and where they come from. In the second part of this paper experimental results are presented that illustrate how to clarify the different findings of past research and show what to expect as a real worst-case-value for hybrid mixtures.
The combustion characteristics and explosive hazard of syngas (H2/CO)/air mixtures are affected by its exact composition and equivalence ratios. In this paper, the explosion pressure and spectral radiant intensity of free radicals were quantitatively examined for syngas with different H2 proportions ([H2 in syngas] = 0, 30, 50, 70, 100 vol%) and equivalence ratios (φ = 0.8, 1.0, 1.2, 1.4, 1.6, 2.0, 2.5). The results show that the explosion process of syngas/air mixtures can be separated into the initial slow combustion stage, the violent deflagration stage and the deflagration ending stage. The peaks of explosion pressure, pressure rise rate, OH*spectral intensity and rise rate of spectral intensity first increase and then decrease with increasing the equivalence ratio, and they reduce gradually with the decrease of H2 proportion in syngas. The H2 content in syngas greatly affects the heat release and the concentration of excited state OH*, especially for the syngas/air mixtures with smaller proportion of H2. Additionally, the presence of H2 greatly increases the deflagration index and spectral radiant index of OH* for syngas/air mixtures. The average rise rates of explosion pressure and spectral intensity of free radicals are introduced and the coupling model between them is established based on the first law of thermodynamics and the principle of chain reaction. The established model is furthermore verified by the experimental results. It is indicated that there is a linear relationship between average rise rates of explosion pressure and spectral intensity (OH*). The results can be used to improve the combustion efficiency of syngas and to guide theoretically the prevention, mitigation and control of syngas explosions.
NM 105, Ti02 (P25) could not be ignited as dust layer and dispersed in air as dust/air-mixture as well. This dust is not dust explosible and the burning behaviour corresponds to Burning Class 1 (no Ignition). The results have shown that the tested sample is thus not combustible at all, because it is already oxidized completely.