TY - CONF A1 - Schönfelder, Thorsten T1 - Sicherheit von Atemluftflaschen der Feuerwehr - Ein Beitrag aus der Forschung T2 - Ausgewählte Kapitel der Werkstofftechnik - Brand- und Explosionsverhalten von Werkstoffen CY - Wuppertal, Germany DA - 2013-01-11 PY - 2013 AN - OPUS4-29934 LA - deu AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Schönfelder, Thorsten T1 - Betriebsbedingte thermische Belastungen von Composite Druckgasbehältern T2 - Seminarvorträge zu ausgewählte Kapitel der Werkstofftechnik CY - Wuppertal, Germany DA - 2014-01-17 PY - 2014 AN - OPUS4-30023 LA - deu AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Schönfelder, Thorsten A1 - Otremba, Frank T1 - Temperature distribution during filling of a composite receptacle N2 - The arrangement of the measuring sensors allowed the capture of air flow induced temperatures and material temperatures on various points of the cylinder body. Four significant temperature levels could be observed: Inside the cylinder (far from the wall, close to the wall), inside the aluminium liner and outer surface. Figure 5 shows the temperature distribution after a regular filling process with a filling time of ten minutes. The temperature sensors T1 - T9 are marked with different colors. The corresponding measurement points are shown in Figure 4. Due to the high thermal conductivity of the aluminum liner the induced temperature peaks are quickly derived. A flow-induced exceeding of the maximum approval temperature is not expected. Regarding the safety assessement the results show that the pressure and temperature profilesmustbe taken into account. T2 - ASME 2016 International Mechanical Engineering Congress and Exposition (IMECE2016) CY - Phoenix, Arizona, USA DA - 11.11.2016 KW - Distribution during filling KW - Type III composite pressure receptacles PY - 2016 AN - OPUS4-38404 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Becker, Ben A1 - Schönfelder, Thorsten T1 - Statistical Assessment of Sample Test Results T2 - Workshop on Statistical Safety Assessment of Composite Cylinders CY - BAM Berlin DA - 2014-11-17 PY - 2014 AN - OPUS4-32205 LA - deu AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Schönfelder, Thorsten T1 - Assessment of load cycle test results T2 - Workshop on Statistical Safety Assessment of Composite Cylinders CY - BAM, Berlin DA - 2015-01-13 PY - 2015 AN - OPUS4-32526 LA - deu AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - JOUR A1 - Schönfelder, Thorsten A1 - Deuerler, F. ED - Schönfelder, Thorsten T1 - Thermische Betriebslasten von Atemluftflaschen im Feuerwehreinsatz, Teil I N2 - Atemluftflaschen aus Faserverbundwerkstoffen werden im Feuerwehrbetrieb hohen thermischen Belastungen ausgesetzt. Der thermisch sichere Bereich dieser Behälter ist jedoch heutzutage noch nicht einschätzbar. Deshalb haben es sich die Bundesanstalt für Materialforschung und -prüfung (BAM) im Austausch mit der Bergischen Universität Wuppertal zur Aufgabe gemacht, die Auswirkungen dieser Betriebslasten zu untersuchen. Die Erkenntnisse dieser Untersuchungsreihe werden genutzt, um einzuschätzen, ob es sicherheitstechnisch notwendig ist, besondere thermische Betriebsbedingungen in normativen Prüfkriterien zu berücksichtigen. In einem ersten Schritt wurden Typ-III-Atemluftflaschen der Berliner Feuerwehr Umgebungsbedingungen des typischen Belastungsprofils der Brandbekämpfung (130 °C bis 250 °C, 10 Minuten) ausgesetzt, um die Erwärmung des Behältermaterials zu erfassen. Da die Größe der bestrahlten Oberfläche in einem Brandeinsatz nicht bekannt ist, erfolgte zusätzlich eine Variation der Strahlungsexposition. Strömungsprozesse, die in einem Brandeinsatz den Behälter von innen kühlen, wurden in diesem ersten Untersuchungsabschnitt noch nicht betrachtet. Es konnte gezeigt werden, dass der Aluminium-Liner einer Typ-III-Atemluftflasche einen erheblichen Einfluss auf die Temperaturverteilung im Behältermaterial ausübt. Die hohe Leitfähigkeit des Aluminiums führt bei Verringerung der bestrahlten Behälteroberfläche zu hohen Temperaturgradienten innerhalb der Behälterwand. Die Materialtemperaturen in der Atemluftflasche konnten für das Belastungsprofil der Brandbekämpfung auf ein typisches Temperaturintervall eingegrenzt werden. Die Grenzen liefern Aussagen zur exponierten Behälteroberfläche und liegen zwischen einseitiger und Vollbestrahlung. KW - Composite KW - Druckgasbehälter KW - Sicherheit KW - Feuerwehr PY - 2016 SN - 2191-0073 VL - 6 IS - 11/12 SP - 29 EP - 34 PB - Springer CY - Düsseldorf AN - OPUS4-38600 LA - deu AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Müller, Lars A1 - Schönfelder, Thorsten A1 - Komann, Steffen A1 - Ballheimer, Viktor A1 - Wille, Frank ED - Müller, Lars T1 - Assessment experience on packages loaded with damaged spent nuclear fuel for transport after storage N2 - In 2017 the first German package approval certificate was issued for a dual purpose cask (DPC) design with encapsulated damaged spent nuclear fuel. At the Bundesanstalt für Materialforschung und -prüfung (BAM) a comprehensive assessment procedure was carried out with respect to the mechanical and thermal design, the containment design and quality assurance for manufacturing and operation. Main objective of this procedure was to verify the Package Design Safety Report (PDSR) fulfils the requirements according to the IAEA regulations SSR-6. Until now only standard spent nuclear fuel assemblies were designated for interim storage and transports. Due to nuclear phase out in Germany all other kinds of SNF in particular damaged fuel has to be packed. Therefore specific requirements have to be considered in accordance with international experiences written in IAEA technical reports. In Germany damaged spent nuclear fuel (DSNF) needs a tight encapsulation with special encapsulations and clearly defined properties. Due to the limited amount of DSNF these encapsulations are designed for storage and transport in existing packages. From the assessment experience it has been seen, corresponding PDSR need an extensively expansion to cover the design of these encapsulations and their influences on the package. Then such well-defined encapsulations can be handled like standard fuel assemblies. The main difference to standard package components is, encapsulations with permanent closure achieve their specified condition not after manufacturing but only during operation after loading and closing. Thus specific handling instruction and test procedures are necessary especially for welding, where BAM is able to survey the quality of this first part of operation. T2 - 11th International Conference on the Transport, Storage and Disposal of Radioactive Materials CY - London, UK DA - 15.05.2018 KW - Assessment KW - Dual purpose cask KW - Spent nuclear fuel PY - 2018 SP - Paper 18524, 1 EP - 8 AN - OPUS4-45258 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Schönfelder, Thorsten T1 - Einfluss thermischer Betriebsbelastungen auf die Sicherheit von Typ-III-Druckgasbehältern N2 - Das Einsatzspektrum von den besonders leichten Druckbehältern aus Faserverbund-werkstoffen erweitert sich kontinuierlich. Dies führt dazu, dass mit der erweiterten Verwendung auch die thermisch zulässigen Einsatzgrenzen dieser Behälter ausgeschöpft und sogar teilweise überschritten werden. So können bspw. Atemluftflaschen im Brandeinsatz der Feuerwehr an der Behälteroberfläche derart hohen Umgebungstemperaturen ausgesetzt werden, dass die zulässige Höchsttemperatur von 65 °C deutlich überschritten wird. Durch experimentelle Temperaturversuche an Typ-III-Atemluftflaschen mit einem Innenbehälter aus Aluminium konnte gezeigt werden, dass bei der Brandbekämpfung die untersuchten Atemluftflaschen lokal über das in der Zulassung abgeprüfte Temperaturspektrum erhitzt werden. Der Glasübergangsbereich des Faserverbundwerkstoffs wird partiell um bis zu 95 °C überschritten. Um die reale Sicherheit der Atemluftflasche bewerten zu können, wurde ein analytisches Hybridbehältermodell entwickelt, das die Beanspruchungen mit validierten Materialtemperaturverläufen berechnet. Mit der Einbindung von Schädigungsansätzen konnte ein bisher nicht hinreichend beachtetes thermisches Degradationsverhalten in den Berechnungen berücksichtigt werden. Zudem wurden insgesamt 90 altersbedingt ausgesonderte Feuerwehr-Atemluftflaschen zerstörend geprüft, um nähere Erkenntnisse über den Sicherheitszustand am Ende der Lebenszeit zu erhalten. In diesem Kolloquium werden Forschungsergebnisse vorgestellt, die im Rahmen einer Promotionsarbeit die Auswirkungen dieser erhöhten thermischen Betriebslasten auf eine Typ-III-Atemluftflasche mit einem Innenbehälter aus Aluminium darstellen und bewerten. T2 - BAM-Kolloquium CY - Berlin, Germany DA - 02.05.2018 KW - Druckgasbehälter KW - Thermische Belastungen KW - Degradation KW - Typ-III KW - Faserverbundwerkstoff PY - 2018 AN - OPUS4-44846 LA - deu AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Neumann, Martin A1 - Eisenacher, Germar A1 - Schönfelder, Thorsten A1 - Wille, Frank T1 - Finite element simulation of the crush of package components made of encapsulated wood N2 - Typical transport packages used in Germany are equipped with encapsulated wooden impact limiting devices. We would like to present the current status regarding the development of a Finite Element (FE) material model for the crush of wood for the FE-code LS-DYNA. The crush of is a phenomenon governed by macroscopic fracture. Here, we would like to reproduce fracture and failure mechanisms over the continuous volume. In a first step we altered an existing LS-DYNA material model for foams, which considers an ellipse shaped yield surface. For the use for longitudinal compression of wood, we modified the existing material model to consider the deviatoric strain for the evolution of the yield surface as well. This is in accordance with the results of crush tests with spruce wood specimens, where the crushing deformation was rather deviatoric for uniaxial stress states and rather volumetric for multiaxial stress states We rate the basic idea of this approach to be reasonable, though other problems exist regarding the shape of the yield surface and the assumption of isotropic material properties. Therefore we developed a new transversal isotropic material model with two main directions, which considers different yield curves according to the multiaxiality of the stress state via a multi-surface yield criterion and a non-associated flow rule. The results show the ability to reproduce the basic strength characteristics of spruce wood. Nevertheless, problems with regularization etc. show that additional investigations are necessary. T2 - 11th International Conference on the Transport, Storage and Disposal of Radioactive Materials CY - London, UK DA - 15.05.2018 KW - Wood KW - FEM PY - 2018 SP - Paper 18517, 1 EP - 12 AN - OPUS4-45091 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Schönfelder, Thorsten T1 - Einfluss thermischer Betriebsbelastungen auf die Sicherheit von Typ-III-Druckgasbehältern N2 - Atemluftflaschen aus Faserverbundwerkstoffen werden im Feuerwehrbetrieb hohen thermischen Belastungen ausgesetzt. Der thermisch sichere Bereich dieser Behälter ist jedoch heutzutage noch nicht einschätzbar. Deshalb haben es sich die Bundesanstalt für Materialforschung und -prüfung (BAM) im Austausch mit der Bergischen Universität Wuppertal zur Aufgabe gemacht, die Auswirkungen dieser Betriebslasten zu untersuchen. T2 - Ausgewählte Kapitel der Werkstofftechnik - Brand- und Explosionsverhalten von Werkstoffen CY - Wuppertal, Germany DA - 11.01.2019 KW - Atemluftflasche KW - Thermische Belastung PY - 2019 AN - OPUS4-49319 LA - deu AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Schönfelder, Thorsten T1 - Kerntechnische Entsorgung Herausforderungen im Transport und bei der Lagerung N2 - Nach der Reaktorkatastrophe in Fukushima 2011 hat die Bundesregierung beschlossen die Nutzung der Kernenergie bis zum Jahr 2022 zu beenden. Seitdem erfolgt der Rückbau und die Stilllegung der kerntechnischen Anlagen in Deutschland. Dieser Vortrag erörtert die Herausforderungen, die sich mit dem Transport und der Lagerung von Kernbrennstoffen ergeben und leitet daraus Anforderungen ab, die an Transportbehälter gestellt werden. T2 - Ausgewählte Kapitel der Werkstofftechnik - Brand- und Explosionsverhalten von Werkstoffen CY - Wuppertal, Germany DA - 24.01.2020 KW - Kerntechnische Entsorgung KW - Rückbau KW - Transport- und Lagerbehälter PY - 2020 AN - OPUS4-50428 LA - deu AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Linnemann, Konrad A1 - Müller, Lars A1 - Schönfelder, Thorsten A1 - Komann, Steffen A1 - Wille, Frank T1 - Authority Experience during Design Approval Procedure for Packages Loaded with Special Encapsulations for Damaged Spent Nuclear Fuel N2 - The first German package design approval certificate for a dual purpose cask intended for loading with damaged spent nuclear fuel was issued recently. BAM as part of the competent authority system in Germany carried out a comprehensive assessment procedure with respect to the mechanical and thermal design, the release of radioactive material and the quality assurance aspects of manufacturing and operation. Packages for the transport and storage of radioactive material have been assessed by BAM for many years, thus the common assessment procedure is well-known and good practice. Up to now only SNF without defects or HLW with well-defined properties were designated for long-term Interim storage and transports afterwards. Due to Germany’s nuclear phase out all other kinds of spent nuclear fuel in particular damaged spent nuclear fuel shall be packed as well. Damaged spent nuclear fuel needs a tight closure with Special encapsulations and clearly defined properties in Germany. In addition, these encapsulations shall be long-term durable, because they are not accessible after loading in a packaging within periodical inspections. The main difference to Standard package components is that encapsulations with a permanent closure achieve their specified conditions not after manufacturing but only during operation, after loading and closing. To ensure compliance with the specific conditions, special measures for quality assurance are necessary during operation of each encapsulation, e.g. drying and sealing, which were assessed by BAM. The present paper gives an overview of the conducted assessment from BAM and point out the findings concerning to the special closure lid of the approved encapsulation, which is screwed and welded. A wide verification concept is necessary to show the specific tightness under transport conditions. Together with quality assurance measures during first operation steps these encapsulations with damaged spent nuclear fuel can be handled like standard fuel assemblies in approved package designs. T2 - International Conference on the Management of Spent Fuel from Nuclear Power Reactors CY - Vienna, Austria DA - 24.06.2019 KW - Transport package KW - Design approval KW - Spent nuclear fuel KW - Special encapsulation PY - 2019 SP - 1 EP - 9 AN - OPUS4-48749 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Schönfelder, Thorsten A1 - Müller, Lars A1 - Komann, Steffen A1 - Wille, Frank T1 - Design Assessment of a Dual Purpose Cask for Damaged Spent Nuclear Fuel N2 - German package design approvals were granted recently for dual purpose casks (DPC) intended for loading with encapsulated damaged spent nuclear fuel (DSNF). Comprehensive assessment procedures were carried out by the authority BAM with respect to the mechanical and thermal package design, the activity release of radioactive material and quality assurance aspects for manufacturing and operation of each packaging. The objective of each procedure was to verify the Package Design Safety Report (PDSR) and the relevant guidelines fulfils the requirements of the IAEA regulations. Previous approvals of German SNF package designs consider mainly standard fuel assemblies with defined specifications and properties for transport and interim storage. Due to the nuclear power phase-out in Germany all kinds of SNF, e.g. damaged spent fuel rods shall be packed in DPC now. Therefore specific requirements shall be considered in accordance with international experiences including IAEA technical reports. The main requirement for DSNF is a tight encapsulation with specific defined properties under transport and storage conditions. Due to the interim storage period of currently up to 40 years the encapsulation with DSNF in the casks shall also be long term durable. Thus specific loading and drying procedures are necessary and had to be qualified during the approval process. BAM assessed these drying procedures and could confirm the long-term behaviour of the encapsulation and the suitability of the drying equipment. This special equipment was qualified in a “cold handling”. In addition, it was shown that the behaviour of the test equipment used in the qualification process was comparable with the original equipment, e.g. test fuel rods or test encapsulation. In the development of the drying process, experience was obtained in how to put the requirements of the IAEA regulations and related IAEA technical reports into practice. The paper gives an overview of approval assessment and testing experience made by BAM and point out the main resulting requirements on drying processes for these kinds of encapsulations with DSNF. T2 - Proceedings of the 19th International Symposium on the Packaging and Transportation of Radioactive Materials - PATRAM 2019 CY - New Orleans, LA, USA DA - 04.08.2019 KW - Assessment KW - Dual purpose cask KW - Spent nuclear fuel PY - 2019 AN - OPUS4-48692 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Schönfelder, Thorsten A1 - Müller, Lars A1 - Komann, Steffen A1 - Wille, Frank ED - Schönfelder, Thorsten T1 - Design assessment of a dual purpose cask for damaged spent nuclear fuel N2 - German package design approvals were granted recently for dual purpose casks (DPC) intended for loading with encapsulated damaged spent nuclear fuel (DSNF). Comprehensive assessment procedures were carried out by the authority BAM with respect to the mechanical and thermal package design, the activity release of radioactive material and quality assurance aspects for manufacturing and operation of each packaging. The objective of each procedure was to verify the Package Design Safety Report (PDSR) and the relevant guidelines fulfils the requirements of the IAEA regulations. Previous approvals of German SNF package designs consider mainly standard fuel assemblies with defined specifications and properties for transport and interim storage. Due to the nuclear power phase-out in Germany all kinds of SNF, e.g. damaged spent fuel rods shall be packed in DPC now. Therefore specific requirements shall be considered in accordance with international experiences including IAEA technical reports. The main requirement for DSNF is a tight encapsulation with specific defined properties under transport and storage conditions. Due to the interim storage period of currently up to 40 years the encapsulation with DSNF in the casks shall also be long term durable. Thus specific loading and drying procedures are necessary and had to be qualified during the approval process. BAM assessed these drying procedures and could confirm the long-term behaviour of the encapsulation and the suitability of the drying equipment. This special equipment was qualified in a “cold handling”. In addition, it was shown that the behaviour of the test equipment used in the qualification process was comparable with the original equipment, e.g. test fuel rods or test encapsulation. In the development of the drying process, experience was obtained in how to put the requirements of the IAEA regulations and related IAEA technical reports into practice. The paper gives an overview of approval assessment and testing experience made by BAM and point out the main resulting requirements on drying processes for these kinds of encapsulations with DSNF. T2 - Proceedings of the 19th International Symposium on the Packaging and Transportation of Radioactive Materials PATRAM 2019 CY - New Orleans, USA DA - 04.08.2019 KW - Assessment KW - Dual purpose cask KW - Spent nuclear fuel PY - 2019 SP - Paper 1204, 1 EP - 10 AN - OPUS4-48685 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Müller, Lars A1 - Scheidemann, Robert A1 - Schönfelder, Thorsten A1 - Komann, Steffen A1 - Wille, Frank T1 - Drop tests assessment of internal shock absorbers for packages loaded with encapsulations for damaged spent nuclear fuel N2 - Damaged spent nuclear fuel (DSNF) can be loaded in German dual-purpose casks (DPC) for transport and interim storage. Encapsulations are needed to guarantee a safe handling and a tight closure, separated from the package enclosure. These encapsulations shall be durable and leak-tight for a long storage period, because they are usually not accessible within periodical inspections of the DPC. Due to the general design of DPCs for standard fuel assemblies, specific requirements have to be considered for the design of encapsulations for DSNF to ensure the loading in existing package designs. Especially the primary lid system of a DPC is designed for maximum loads due to the internal impact of the content during drop test conditions. The main difference of encapsulations for damaged spent nuclear fuel is that they have usually a much higher stiffness than standard fuel assemblies. Therefore the design of an internal shock absorber, e.g. at the head of an encapsulation is required to reduce mechanical loads to the primary lid system during impacts. BAM as part of the German competent authority system is responsible for the safety assessment of the mechanical and thermal package design, the release of radioactive material and the quality assurance of package manufacturing and operation. Concerning the mechanical design of the encapsulation BAM was involved in the comprehensive assessment procedure during the package design approval process. An internal shock absorber was developed by the package designer with numerical analyses and experimental drop tests. Experimental drop tests are needed to cover limiting parameters regarding, e.g. temperature and wall thickness of the shock absorbing element to enable a detailed specification of the whole load-deformation behavior of the encapsulation shock absorber. The paper gives an overview of the assessment work by BAM and points out the main findings which are relevant for an acceptable design of internal shock absorbers. The physical drop tests were planned on the basis of pre-investigations of the applicant concerning shape, dimension and material properties. In advance of the final drop tests the possible internal impact behavior had to be analyzed and the setup of the test facility had to be validated. The planning, performance and evaluation of the final drop tests were witnessed and assessed by BAM. In conclusion it could be approved that the German encapsulation system for damaged spent nuclear fuel with shock absorbing components can be handled similar to standard fuel assemblies in existing package designs. T2 - Pressure Vessels & Piping Conference 2020 CY - Online meeting DA - 03.08.2020 KW - Encapsulations for damaged spent nuclear fuel KW - Drop tests KW - Internal shock absorber KW - Design assessment of RAM packages PY - 2020 SP - 1 EP - 9 AN - OPUS4-51546 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Feldkamp, Martin A1 - Erenberg, Marina A1 - Nehrig, Marko A1 - Bletzer, Claus A1 - Musolff, André A1 - Schönfelder, Thorsten A1 - Wille, Frank T1 - Behavior of wood filled impact limiters during the IAEA thermal test N2 - Packages for the transport of radioactive material are often equipped with impact limiters consisting of wood, encapsulated by steel sheets. These impact limiters shall ensure that transport casks meet the IAEA safety requirements. After damage caused by the mechanical tests the package has to withstand a severe fire scenario. It is required that the mechanical tests have to produce maximum damage, taking into account the thermal test. Furthermore, any damage, which would give rise to increased radiation or loss of containment or affect the confinement system after the thermal test, should be considered. Concerning the thermal test, the IAEA safety requirements state that during and following the fire test, the specimen shall not be artificially cooled and any combustion of materials of the package shall be permitted to proceed naturally. Different works from the French Institute for Radiological Protection and Nuclear Safety (IRSN) and BAM show that additional energy supply from a pre-damaged impact limiter to the cask could occur caused by smoldering of the wood. This effect should be considered within the safety assessment of the package. A heat wave from the fire could overlap with the additional energy from the impact limiter in the sealing system. In 2015 BAM conducted small scale fire tests with wood filled metal drums showing continuing combustion processes during the cooling down phase. As not much is known about smoldering processes in wood filled impact limiters, it is highly complex to define pre-damage of impact limiters, which are conservative, regarding the most damaging energy flow from the impact limiter to the containment system in dependence of time. More research has to be done to develop models to examine the effects of smoldering impact limiters on the containment of packages for the assessment. The process of smoldering is described with regard to the requirements in the thermal safety assessment. Parameters influencing the smoldering process are identified. BAM operates test facilities to examine the issue of mechanical damage, combustion and heat transfer of packages for transport of radioactive material. A thermal test will take place with a wood filled test specimen with a diameter of about 2.3 meters. The aim is to understand the phenomena of smoldering under the consideration of relevant regulatory boundary conditions. T2 - ASME 2017 Pressure Vessels and Piping Conference (PVP2017) CY - Waikoloa, Hawaii, USA DA - 16.07.2017 KW - Fire test KW - Wood KW - IAEA KW - Smoldering KW - Smouldering KW - Shock absorber KW - Thermal test KW - Combustion KW - Impact limiter PY - 2017 SN - 978-0-7918-5802-8 VL - 7 SP - Article UNSP V007T07A038, 1 EP - 9 AN - OPUS4-43172 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Feldkamp, Martin A1 - Erenberg, Marina A1 - Nehrig, Marko A1 - Bletzer, Claus A1 - Musolff, André A1 - Wille, Frank A1 - Schönfelder, Thorsten T1 - Aspects of assessment of packages with wood filled impact limiters during fire tests N2 - Packages for the transport of radioactive material are often equipped with impact limiters consisting of wood, encapsulated by steel sheets. These impact limiters shall ensure that the transport casks meet the mechanical and thermal IAEA regulatory test requirements. According to the accident conditions of transport it is mandatory to expose the specimens to a cumulative effect by mechanical and thermal impacts. The mechanical tests consist of a free drop from 9 m onto a flat unyielding target and a 1 m drop onto a puncture bar. After damage caused by mechanical test sequences the package has to withstand a severe fire scenario. Corresponding to the IAEA advisory material it is required that the impact attitudes for the 9 m drop test and for the puncture test have to be such as to produce maximum damage, taking into account the thermal test. Moreover, any damage, which would give rise to increased radiation or loss of containment or affect the confinement system after the thermal test, should be considered. During and following the thermal test, the specimen shall not be artificially cooled and any combustion of materials of the package shall be permitted to proceed naturally. Different works from the French Institute for Radiological Protection and Nuclear Safety (IRSN) and BAM show that additional energy supply from a pre-damaged impact limiter to the cask could occur. This effect should be considered within the safety assessment of the containment. Thermal effects at the closure system of the cask, which might result in an elevated activity release, have to be excluded. BAM conducted small scale tests with wood filled metal buckets showing continuing combustion processes during the cooling down phase. These test results are presented. As not much is known about smouldering processes in wood filled impact limiters, it is highly complex to define pre-damage of impact limiters, which are conservative, regarding the maximum damaging energy flow from the impact limiter to the containment system. More research has to be done to develop models to examine the effects of smouldering impact limiters on the containment of packages for the transport of radioactive material. Aspects of assessment and its difficulties are shown. BAM as a competent authority for the approval of transport casks for radioactive material in Germany operates the test facilities to examine the issue of mechanical damage, combustion and heat transfer for such kind of package systems. For this purpose the knowledge from real drop tests with casks of a mass partly over 100 tons was transferred to a test application. A thermal test will take place with a wood filled test specimen with a diameter of about 2.3 meters. The aim is to understand the phenomena of smouldering under the consideration of relevant regulatory boundary conditions. The process of smouldering is described with regard to the requirements in the thermal assessment of safety of packages for the transport of radioactive material. Requirements concerning the pre-damage of packages for the maximum damage of impact limiters are discussed. Parameters influencing the smouldering process are identified. T2 - WM 2017 Conference CY - Phoenix, AZ, USA DA - 05.03.2017 KW - Fire test KW - Wood KW - Combustion KW - Smouldering KW - Smoldering KW - Impact limiter KW - Shock absorber KW - Thermal test KW - IAEA PY - 2017 SN - 978-0-9828171-6-2 SP - 1 AN - OPUS4-40157 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Komann, Steffen A1 - Wille, Frank A1 - Schönfelder, Thorsten T1 - German concept to ensure transportability of SNF packages after interim storage N2 - In Germany the concept of dry interim storage of spent fuel in dual purpose metal casks is implemented, currently for periods of up to 40 years. The casks being used have an approved transport package design in accordance with the international IAEA transport regulations as well. The storage of spent nuclear fuel and high-level waste in dual purpose casks (DPC) is related with the challenge of maintaining safety for transportation over several decades of storage. Besides consideration of aging mechanisms by appropriate design, material selection and operational controls to assure technical reliability by aging management measures, an essential issue is the continuous control and update of the DPC safety case. Not only the technical objects are subject of aging but also the safety demonstration basis is subject of “aging” due to possible changes of regulations, standards and scientific/technical knowledge. To ensure a safe transport in future to a destination which is not known yet (because of not yet existing repository sites) periodical reviews of the Package Design Safety Report (PDSR), in connection with periodic renewals of package design approval certificates, have to be carried out. T2 - International High-Level Radioactive Waste Management Conference, IHLRWM 2017 CY - Charlotte, NC, USA DA - 09.04.2017 KW - Dual purpose casks KW - Interim storage KW - Transportability PY - 2017 SP - 476 EP - 481 AN - OPUS4-39919 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Neumann, Martin A1 - Eisenacher, Germar A1 - Schönfelder, Thorsten A1 - Wille, Frank T1 - Development of a material model for the crush of spruce wood N2 - Typical transport packages used in Germany are equipped with wooden impact limiting devices. In this paper we give an overview of the latest status regarding the development of a finite element material model for the crush of spruce wood. Although the crush of wood – mainly in longitudinal direction – is a phenomenon governed by macroscopic fracture and failure of wood fibres we smear fracture and failure mechanisms over the continuous voume. In first step we altered an existing LS-DYNA material model for foams, which considers an ellipse shaped yield surface written in terms of the first two stress invariants. The evolution of the yield surface in the existing model depends on the volumetric strain only. For the use with spruce wood, we modified the existing material model to consider the deviatoric strain for the evolution of the yield surface as well. This is in accordance with the results of crush tests with spruce wood specimens, where the crushing deformation was rather deviatoric for uniaxial stress states and rather volumetric for multiaxial stress states We rate the basic idea of this approach to be reasonable, though other problems exist regarding the shape of the yield surface and the assumption of isotropic material properties. Therefore we developed a new transversal isotropic material model with two main directions, which considers different yield curves according to the multiaxiality of the stress state via a multi-surface yield criterion and a non-associated flow rule. The results show the ability to reproduce the basic strength characteristics of spruce wood. Nevertheless, problems with regularization etc. show that additional investigations are necessary. T2 - ASME PVP 2017 CY - Waikaloa, HY, USA DA - 16.07.2017 KW - Chrush KW - Spruce KW - Wood KW - FEM PY - 2017 SN - 978-0-7918-5802-8 VL - 7 SP - Article UNSP V007T07A037, 1 EP - 9 AN - OPUS4-41613 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - JOUR A1 - Mair, Georg A1 - Scholz, Irene A1 - Schönfelder, Thorsten T1 - The residual strength of breathing air composite cylinders toward the end of their service life - a first assessment of a real-life sample N2 - Applications by fire brigades expose the composite cylinders to harsh temperature and handling conditions. Standards have been used for certifying composite cylinders, which are designed for transport of dangerous goods and do not reflect service conditions specific to fire brigades. In this paper, the residual safety of a design type (fully wrapped with aluminum and carbon fiber composite) at the end of their service life of 15 yrs is analyzed. One sample underwent hydraulic load cycle (LC) tests, another conventional burst tests, and the third slow burst tests (SBTs). The statistical evaluation and the handling of an unexpected high amount of early failures are shown. KW - Composite cylinders KW - End of life KW - Slow burst test KW - Residual strength KW - Sample testing KW - Probabilistic KW - Distribution function PY - 2016 DO - https://doi.org/10.1115/1.4033878 SN - 0094-9930 SN - 1528-8978 VL - 138 IS - 6 SP - PVT-15-1030, 1 EP - 9 PB - American Society of Mechanical Engineers CY - New York, NY AN - OPUS4-33157 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - THES A1 - Schönfelder, Thorsten T1 - Einfluss thermischer Betriebsbelastungen auf die Sicherheit von Typ-III-Druckgasbehältern N2 - Das Einsatzspektrum von den besonders leichten Druckbehältern aus Faserverbund-werkstoffen erweitert sich kontinuierlich. Dies führt dazu, dass mit der erweiterten Verwendung auch die thermisch zulässigen Einsatzgrenzen dieser Behälter ausgeschöpft und sogar teilweise überschritten werden. So können bspw. Atemluftflaschen im Brandeinsatz der Feuerwehr an der Behälteroberfläche derart hohen Umgebungstemperaturen ausgesetzt werden, dass die zulässige Höchsttemperatur von 65 °C um bis zu 185 °C überschritten wird. Diese Arbeit untersucht und bewertet die Auswirkungen dieser erhöhten thermischen Betriebslasten auf die Typ-III-Atemluftflasche. Dieser Behältertyp besteht aus einem Innenbehälter aus Aluminium, der von einem Faserverbundwerkstoff umschlossen ist. Durch Analyse der thermischen Betriebslasten in ausgewählten Anwendungsbereichen und durch experimentelle Temperaturversuche an Probebehältern konnte gezeigt werden, dass bei der Brandbekämpfung die untersuchten Atemluftflaschen lokal über das in der Zulassung abgeprüfte Temperaturspektrum erhitzt werden. Der Glasübergangsbereich des Faserverbundwerkstoffs wird partiell um bis zu 95 °C überschritten. Um die reale Sicherheit der Atemluftflasche bewerten zu können, wurde ein analytisches Hybridbehältermodell entwickelt, das die Beanspruchungen mit validierten Materialtemperaturverläufen berechnet. Mit der Einbindung von Schädigungsansätzen konnte ein bisher nicht hinreichend beachtetes thermisches Degradationsverhalten in den Berechnungen berücksichtigt werden. Die sicherheitstechnische Bewertung basierte auf der Gegenüberstellung der Beanspruchungen aus den realen Betriebsbelastungen und abzuprüfenden Zulassungskriterien. Zudem wurden insgesamt 90 altersbedingt ausgesonderte Feuerwehr-Atemluftflaschen zerstörend geprüft, um nähere Erkenntnisse über den Sicherheitszustand am Ende der Lebenszeit zu erhalten. Die Versuche wurden ebenfalls zur Validierung der Schädigungsansätze genutzt. Als Ergebnis der Arbeit wird am Beispiel des untersuchten Baumusters gezeigt, dass die Sicherheit dieser Atemluftflasche am Lebensende noch hinreichend ist. Jedoch konnte an einigen Exemplaren dieses großzügig dimensionierten Baumusters eine erhöhte Abnahme der Festigkeit festgestellt werden. Sollten Atemluftflaschen auf die vorgeschriebenen Normanforderungen optimiert werden, d.h. weniger überdimensioniert sein, wäre dem thermisch bedingten Sicherheitsverlust eine erheblich detailliertere Aufmerksamkeit zu widmen. N2 - The application range of the particularly light pressure cylinders made of fiber composite material is continuously expanding. The result is that the thermally permissible operating limits of these cylinders are fully exploited or even partly exceeded. Thus, for example the breathing air cylinder used by fire fighters is exposed to such high ambient temperatures that the upper temperature of the applied test of 65 °C is exceeded for up to 185 °C. This thesis analyzes and assesses the effects of these increased thermal operating loads on the type III breathing air cylinder. This type of cylinder consists of an inner cylinder made of aluminum, enclosed by fiber composite material. By analyzing the thermal operating loads in selected application areas and by experimental temperature tests on sample cylinders it could be shown that the analyzed breathing air cylinder during firefighting is heated locally above the tested approval temperature range. The glass transition range of the fiber composite material is exceeded partially by up to 95 °C. In order to assess the real safety of the breathing air cylinder, an analytical composite-hybrid cylinder model has been developed which calculates the stresses using validated material temperature gradients. With the integration of theoretical concepts as regards various damages a thermal degradation which has not been sufficient acclaimed yet could be included in the calculations. The safety assessment is based on the comparison of the stresses from the real operating loads and the evaluated approval criterias. In addition, a total of 90 firefighting breathing air cylinders which have become obsolete and thus taken out of service, were destructively tested to obtain more precise knowledge about the safety status at the end of life. The tests were also used to validate the damage approaches. Based on the example of the analyzed sample of a breathing air cylinder the results of this thesis show that the safety of this sample at the end of life is still sufficient. However, an increased reduction in strength was observed at some specimens of this highly overdimensioned design type. If breathing air cylinders are optimized to the required standards, i.e. being less overdimensioned, a more detailed attention must be focused on the thermally induced loss of safety. KW - Druckgasbehälter KW - Sicherheit KW - Composite KW - Faserverbundwerkstoff KW - Temperatur KW - Feuerwehr KW - Zulassung KW - Degradation PY - 2017 UR - https://nbn-resolving.org/urn:nbn:de:hbz:468-20171108-090008-4 SP - 1 EP - 158 PB - Bergische Universität CY - Wuppertal AN - OPUS4-43332 LA - deu AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - JOUR A1 - Schönfelder, Thorsten A1 - Mair, Georg A1 - Deuerler, F. ED - Schönfelder, Thorsten T1 - Thermische Betriebslasten von Atemluftflaschen im Feuerwehreinsatz, Teil IV: Sicherheitstechnische Bewertung N2 - Atemluftflaschen aus Faserverbundwerkstoffen werden bei einem Brandeinsatz situationsabhängig hohen thermischen Belastungen ausgesetzt. Die Grenzen der sicheren thermischen Belastbarkeit dieser Behälter werden jedoch heutzutage nicht abgeprüft. Deshalb hat es sich die Bundesanstalt für Materialforschung und -prüfung (BAM) im Austausch mit der Bergischen Universität Wuppertal zur Aufgabe gemacht, die Auswirkungen dieser Betriebslasten zu untersuchen. In diesem vierten und letzten Teil dieser Aufsatzreihe werden die Ergebnisse der analytischen Beanspruchungsanalysen vorgestellt, die mit dem entwickelten Hybrid-Behältermodell berechnet wurden. Unter simulierten Einsatzbedingungen des Brandeinsatzes wird dabei ein bisher nicht hinreichend beachtetes thermisches Degradationsverhalten berücksichtigt. Zur Bewertung der realen Degradation einer Atemluftflasche im Feuerwehrbetrieb, werden zudem die Ergebnisse von 90 zerstörenden Prüfungen vorgestellt, die an altersbedingt ausgesonderten Atemluftflaschen durchgeführt wurden. Die Erkenntnisse dieser Untersuchungsreihe werden final in einer sicherheitstechnischen Bewertung kondensiert. KW - Composite KW - Degradation KW - Druckgasbehälter KW - Faserverbundwerkstoff KW - Feuerwehr KW - Sicherheit PY - 2019 SN - 2191-007 VL - 9 IS - 07/08 SP - 36 EP - 41 PB - Springer CY - Düsseldorf AN - OPUS4-48691 LA - deu AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Mair, Georg A1 - Hoffmann, Martin A1 - Schönfelder, Thorsten ED - Carcassi, M.N. T1 - The slow burst testing of composite cylinders - Part I: Slow burst testing of samples as a method for quantification of cylinder degradation N2 - The current practise of focusing the periodic retesting of composite cylinders primarily on the hydraulic pressure test has to be evaluated as critical - with regard to the damage of the specimen as well as in Terms of their significance. This is justified by micro damages caused to the specimen by the test itself and by a lack of informative values. Thus BAM Federal Institute of Materials Research and Testing (Germany) uses a new approach of validation of composite for the determination of re-test periods. It enables the description of the state of a population of composite cylinders based on destructive tests parallel to operation. An essential aspect of this approach is the prediction of residual safe service life. In cases where it cannot be estimated by means of hydraulic load cycle tests, as a replacement the creep or burst test remains. As a combination of these two test procedures BAM suggests the 'slow burst test SBT'. On this a variety of about 150 burst test results on three design types of cylinders with plastic liners are presented. For this purpose both, the parameters of the test protocol as well as the nature and intensity of the pre-damage artificially aged test samples are analysed statistically. This leads first to an evaluation of the different types of artificial ageing but also to the clear recommendation that conventional burst tests be substituted totally if indented for assessment of composite pressure receptacles. T2 - ICHS2013 - 5th International conference on hydrogen safety CY - Brussels, Belgium DA - 09.09.2013 KW - Residual strength KW - CFRP KW - Gas storage KW - Reliability KW - Sample testing PY - 2013 SN - 978-2-9601366-0-9 SP - 1 EP - 12 AN - OPUS4-29260 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - JOUR A1 - Mair, Georg A1 - Scherer, Florian A1 - Schönfelder, Thorsten A1 - Scholz, Irene T1 - Die Restfestigkeit von Atemluftflaschen am Lebensende - Einstieg in die Betrachtungen an einem Beispiel N2 - Composite-Druckgefäße kommen auch in Atemschutzgeräten als persönliche Schutzausrüstung (PSA) zunehmend zum Einsatz und sind dabei außergewöhnlich rauen Betriebsbedingungen ausgesetzt. Da diese durch die angewendeten Normen nominell nicht umfassend abgedeckt sind, wurden die End-of-Life-Restfestigkeiten untersucht. Die untersuchten drei Stichproben bestehen aus je 25 im Feuerwehrbetrieb über 15 Jahre gealterten Composite-Atemluftflaschen eines Baumusters. Mit diesen Restfestigkeitsuntersuchungen wird am Beispiel den Fragen nachgegangen, ob dieses Baumuster statistisch eine ausreichende Sicherheit am Lebensende aufweist und welche Verteilungsfunktionen die Ergebnisse am besten beschreiben. Methodisch kommen für die Prüfung eine konventionelle Berstprüfung, das Konzept der BAM für eine langsamen Berstprüfung und die hydraulische Lastwechselprüfung zur Anwendung. Das Ergebnis zeigt für das Baumuster hinreichende Sicherheit; aber auch die besondere Bedeutung der sog. Frühausfälle für die Statistik und den Bedarf an einer entsprechend auf die Frühausfälle ausgerichteten, zerstörungsfreien Prüfmethode. KW - Faserverbundwerkstoffe KW - Atemluftflaschen KW - Restfestigkeit KW - Stichprobenprüfung KW - Frühausfälle KW - Langsame Berstprüfung KW - Lebensdauer KW - Überlebenswahrscheinlichkeit KW - Kombinierte Verteilung PY - 2014 SN - 2191-0073 VL - 4 IS - 3 SP - 32 EP - 41 PB - Springer-VDI-Verl. CY - Düsseldorf AN - OPUS4-30505 LA - deu AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - JOUR A1 - Schönfelder, Thorsten A1 - Mair, Georg A1 - Deuerler, F. T1 - Thermische Betriebslasten von Atemluftflaschen im Feuerwehreinsatz - Teil III: Modellbildung N2 - Atemluftflaschen aus Faserverbundwerkstoffen werden bei einem Brandeinsatz situationsabhängig hohen thermischen Belastungen ausgesetzt. Die Grenzen der sicheren thermischen Belastbarkeit dieser Behälter werden jedoch heutzutage nicht abgeprüft. Deshalb hat es sich die Bundesanstalt für Materialforschung und -prüfung (BAM) im Austausch mit der Bergischen Universität Wuppertal zur Aufgabe gemacht, die Auswirkungen dieser Betriebslasten zu untersuchen. Die Erkenntnisse dieser Untersuchungen sollen genutzt werden, um zu beurteilen, wie thermische Betriebsbedingungen in normierten Prüfkriterien sicherheitstechnisch berücksichtigt werden sollten. Um die Beanspruchungen innerhalb des Behältermaterials berechnen zu können wird in diesem dritten Teil der Aufsatzreihe die Entwicklung eines analytischen Hybrid-Behältermodells vorgestellt, in dem die für den Brandeinsatz zu erwartenden Materialtemperaturen, deren Ermittlung im Fokus des ersten und zweiten Teils dieser Untersuchungsreihe standen, eingebunden werden. Dabei werden im Modell erstmalig Schädigungsmechanismen berücksichtigt, die eine thermische Überbelastung des Faserverbundwerkstoffs einbeziehen. KW - Composite KW - Degradation KW - Druckgasbehälter KW - Faserverbundwerkstoff KW - Feuerwehr KW - Sicherheit PY - 2018 SN - 2191-0073 VL - 8 IS - 9 SP - 31 EP - 36 PB - Springer CY - Düsseldorf AN - OPUS4-46046 LA - deu AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - JOUR A1 - Schönfelder, Thorsten A1 - Mair, Georg A1 - Deuerler, F. T1 - Thermische Betriebslasten von Atemluftflaschen im Feuerwehreinsatz, Teil II N2 - Atemluftflaschen aus Faserverbundwerkstoffen werden bei einem Brandeinsatz situationsabhängig hohen thermischen Belastungen ausgesetzt. Die Grenzen der sicheren thermischen Belastbarkeit dieser Behälter werden jedoch heutzutage nicht abgeprüft. Deshalb haben es sich die Bundesanstalt für Materialforschung und -prüfung (BAM) im Austausch mit der Bergischen Universität Wuppertal zur Aufgabe gemacht, die Auswirkungen dieser Betriebslasten zu untersuchen. Die Erkenntnisse dieser Untersuchungsreihe sollen genutzt werden, um zu beurteilen, wie thermische Betriebsbedingungen in normierten Prüfkriterien sicherheitstechnisch berücksichtigt werden sollten. In diesem zweiten Teil der Untersuchungsreihe werden Strömungsversuche dargestellt, die an dem untersuchten Baumuster einer Typ-III-Atemluftflasche unter Laborbedingungen durchgeführt wurden. Basierend auf den Wärmestrahlungsversuchen des ersten Teils dieser Untersuchungsreihe und auf den Strömungsversuchen wird ein analytischer Berechnungsansatz vorgestellt, der die instationäre Temperaturentwicklung im Material der Typ-III-Atemluftflasche konservativ annähert. Anhand der berechneten Materialtemperaturen kann festgestellt werden, dass unter dem typischen Feuerwehr-Belastungsprofils von 130 °C bis 250 °C die Zulassungstemperatur der Typ-III-Atemluftflasche von 65 °C um bis zu 95 °C überschritten werden kann. Aus diesen Temperaturüberschreitungen können zwei Unsicherheiten identifiziert werden. Die Auslegung des Faserverbundwerkstoffs orientiert sich normgerecht an der oberen Zulassungstemperatur. Wird die Typ-III-Atemluftflasche im Brandeinsatz eingesetzt, ist es möglich, dass der lasttragende Faserverbundwerkstoff partiell über seinen nominellen Auslegungsbereich hinaus erwärmt wird. Eine weitere Unsicherheit ergibt sich für den Sicherheitsnachweis im Rahmen der Zulassungsprüfung. Für die Typ-III-Atemluftflaschen erfolgen für den Temperaturbereich des Brandeinsatzes kein statischer und kein dynamischer Festigkeitsnachweis. KW - Composite KW - Druckgasbehälter KW - Feuerwehr KW - Sicherheit KW - Degradation KW - Faserverbundwerkstoff PY - 2018 SN - 2191-0073 VL - 2018/8 IS - 6 SP - 34 EP - 39 PB - Springer CY - Düsseldorf AN - OPUS4-45249 LA - deu AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Mair, Georg A1 - Scherer, Florian A1 - Scholz, Irene A1 - Schönfelder, Thorsten T1 - The residual strength of breathing air composite cylinders towards the end of their service life - A first assessment of a real-life sample N2 - Emergency response units increasingly use pressure cylinders made from fibre composites for breathing air as elements of personal protective equipment (PPE). Such applications expose the composite cylinders to harsh temperature and handling conditions. At least in Europe, standards have been used for certifying PPE, which are designed and mandatory for the approval of pressure receptacles for the transport of dangerous goods. Therefore, service conditions specific to PPEs are not accounted for in these standards. In this paper, BAM (Federal Institute for Materials Research and Testing) investigates the residual safety of a composite cylinder design at the end of their designated service life of 15 years. The cylinders (test pressure PH 450 bars; 6.8 Litres) are of one design type with aluminium liner and fully wrapped with carbon fibres, which is commonly considered a “Type III” cylinder. All cylinders were used as PPE by the Berlin fire department and randomly picked in three samples of 25 cylinders each before tested. At BAM, the cylinder samples underwent hydraulic load cycle tests (LCT), conventional burst tests (BT) and so called slow burst tests (SBT). A concept for quantification of strength degradation already introduced by BAM was applied. This concept is based on a probabilistic assessment of the average strength and scatter of each sample of cylinders. The strength distributions of the used PPEcylinders is shown and analysed. Some unexpected effects are shown and a refinement of the statistical assessment is introduced. T2 - ASME 2014 Pressure Vessels and Piping Conference CY - Anaheim, CA, USA DA - 20.07.2014 KW - Composite KW - Assessment KW - Cylinder KW - Residual strenght PY - 2014 SN - 978-0-7918-4603-2 SP - PVP2014-28168, 1 EP - 9 AN - OPUS4-40173 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER -