TY - CONF A1 - Gleim, Tobias T1 - Experimental And Numerical Analyses For The Evaluation Of Heat Fluxes Of A Fire Reference Test N2 - Packages for the transport of high-level radioactive material are designed to endure severe accidents. To obtain approval, these transport packages must adhere to the specification-based criteria of the IAEA SSR-6 [1]. To ensure compliance with these requirements, specific mechanical and thermal tests need to be appointed with respect to the package type. Typically, IAEA SSR-6 [1] prescribes mechanical tests followed by a thermal fire test as part of a cumulative test sequence. To approve the fire test, BAM uses a reference package representing the original package in its outer geometry for characterizing the actual fire and its impact on the package. This serves a dual purpose: it allows the precise adjustment of experimental parameters for the package design to be approved, and it provides input parameters for thermomechanical simulations, cf. [2]. With the help of this methodology for characterizing boundary conditions of the package, temperature evolutions within the reference package can be studied in a Finite-Element Analyses (FEA). This helps to compare the experiments with the numerical simulations on the case of the reference package, but also serves at the same time for preliminary simulations with the package design to be approved. The thermal test consists of a 30-minute fully engulfing 800°C pool fire or an equally severe fire, e.g. a propane gas fire. The fire reference test is performed prior to the regulatory fire test with the package design to be approved. The fire reference package in the described case is a closed sheet 316L steel cylinder with a wall thickness of 10 mm, a length of 182 mm, and a diameter of 102 mm. The package was instrumented with thermocouples and filled with heat resistant insulating material. T2 - ASME PVP 2024 CY - Bellevue, WA, USA DA - 28.07.2024 KW - Experimental KW - Numerical KW - Heat Flux KW - Reference Test PY - 2024 AN - OPUS4-60847 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Gleim, Tobias T1 - Safety Aspects for Transport Containers with regard to Ageing and Battery Accident Scenarios N2 - In Germany, the search for a final repository for highly radioactive material is currently based on the assumption that interim storage will take considerably longer than was anticipated. At that time, authorization procedures assumed that interim storage would be brief, until the containment systems could be placed in a final repository. For today's new approvals and extensions, the IAEA (International Atomic Energy Agency) regulations for the transport of radioactive material require an assessment of all components and component groups with regard to ageing. To assess the safety requirements not only over the previously envisaged periods but also over long durations, numerous individual parts and component groups must be examined and evaluated for ageing and interactions between materials. The metal seals of a double lid sealing system, for example, are critical components that must be studied with respect to ageing. In a containment system for radioactive material, metal seals must not only undergo classic ageing, but also withstand mechanical influences and radiation over extended periods. In addition to assessments by the applicants, BAM must also independently analyze and evaluate these ageing mechanisms as part of its sovereign mandate. Another challenge in both new approvals and extensions is the assessment of transport regarding changes in the state of the art, which are not synchronously assessed in the regulations. In transporting radioactive material, a classic oil fire has been assumed in a hypothetical accident scenario from the development of the regulations to the present day. Due to the rapid development of propulsion technologies in recent years, such as battery or hydrogen-powered vehicles, investigations must be conducted in the revision process of the IAEA regulations to assess the impact of these new technologies on safety assessments. It is important for the member states of the IAEA to know whether new technologies are covered by the regulations or if changes are necessary to continue issuing international licenses. By focusing on batteries from the material to the cell to the module and the application, BAM contributes to the evaluation of batteries at every step of the chain. In addition to the safety of current and new battery technologies, BAM also endeavors to address issues of compositional trace and sustainable energy materials. T2 - MSD: Leaf CY - Livermore, CA , USA DA - 07.08.2024 KW - Safety Aspects KW - Ageing KW - Accident Scenarios KW - Battery PY - 2024 AN - OPUS4-60851 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Naster, Maximilian T1 - Experimental and Numerical Analyses for the Evaluation of Hydrogen as an Energy Source for Thermal Testing of Transport Packages of Radioactive Material N2 - In this paper we present a new hydrogen-based test rig for an ongoing feasibility study of using hydrogen as an energy source for the thermal testing of transport packages containing radioactive materials. The test rig will be capable of combusting hydrogen for a wide range of different burner geometries, mass flows and if necessary hydrogen blends. As this type of fire test according to the IAEA boundary conditions does not yet exist, a large number of preliminary investigations, safety assessments and calculations must be carried out in order to develop a viable concept for hydrogen fires. In the first step of the feasibility study, the temperature, structure, and radiation of various hydrogen flames are surveyed. In future works, the results will make it possible to design burner frames that are suitable for fire reference tests in order to make comparisons with pool and propane fires used in assessment procedures today. In parallel comparative numerical simulations are conducted to model the thermal behaviour of hydrogen flames using the software package Ansys®. On the one hand, the numerical simulations support the experiments by providing an overview of numerous parameters and the measuring range; on the other hand, they will help with the design of the burner frame in future work. This paper gives an overview in the design and capabilities of the test rig. Furthermore, the results of the parameter studies show that burner geometry and mass flow provide a significant design margin for the thermal shape of the hydrogen flames. In addition, the results of the initial numerical calculations will be used to determine the necessary sensors, the positions, and their operating range. Only the optimal interaction allows a controlled system that permits user-defined hydrogen fires. T2 - PVP2024, Pressure Vessels & Piping Conference CY - Bellevue, Washington, USA DA - 29.07.2024 KW - Hydrogen KW - Fire KW - IAEA Regulations KW - CFD KW - Burner PY - 2024 AN - OPUS4-60855 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - RPRT A1 - Vlassopoulos, Efstathios A1 - Dagan, Ron A1 - Fiorito, Luca A1 - Herm, Michel A1 - Jansson, Peter A1 - Kromar, Marjan A1 - Király, Márton A1 - Leppanen, Jaakko A1 - Feria Marquez, Francisco A1 - Metz, Volker A1 - Papaioannou, Dimitrios A1 - Herranz, Luis Enrique A1 - Rochman, Dimitri A1 - Schillebeeckx, Peter A1 - Seidl, Marcus A1 - Hernandez Solis, Augusto A1 - Stankovskiy, Alexey A1 - Alvarez Velarde, Francisco A1 - Verwerft, Marc A1 - Rodriguez Villagra, Nieves A1 - Wiss, Thierry A1 - Zencker, Uwe A1 - Žerovnik, Gasper T1 - EURAD Work Package 8 Deliverable 8.2 Updated State-of-the-Art Report N2 - The state-of-the-art (SOTA) report offers an overview of the status of knowledge in the area of spent nuclear fuel (SNF) characterisation and assessment during the pre-disposal phase using several numerical and experimental approaches and methodologies. A review on characterisation of SNF properties in terms of source term and inventory assessment (neutron, gamma-ray emission, decay heat, radionuclide inventory, and elemental content) and in terms of out-of-core fuel performance (cladding performance and fuel integrity in view of the safety criteria for SNF interim storage, transport and canister packaging) is presented. This updated SOTA report provides the progress made in the spent fuel characterisation (SFC) work package as part of the European Joint Programme on Radioactive Waste Management (EURAD), documents the identified technical gaps, and provides recommendations for future work. The report is expected to be used by all EURAD colleagues in their national programmes as a key resource for knowledge management programmes and to contribute to demonstrating and documenting the state-of-the-art. KW - Radioactive waste management KW - Spent fuel characterisation KW - Extended interim storage KW - Predisposal PY - 2024 UR - https://www.ejp-eurad.eu/publications/d82-updated-state-art-report SP - 1 EP - 182 AN - OPUS4-61218 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Grunewald, Thomas T1 - Entzündung von wasserstoffhaltigen Atmosphären durch mechanisch erzeugte Funken N2 - In einer Forschungskooperation zwischen BG-RCI und der Bundesanstalt für Materialforschung und -prüfung (BAM) wurde im Rahmen des Forschungsvorhabens „HySpark“ untersucht, wie sich die Zündwahrscheinlichkeit von verschiedenen, metallischen Werkstoffpaarungen in unterschiedlichen Methan-Wasserstoff-Gemischen verhält. Es bestehen signifikante Unterschiede in der Zündwahrscheinlichkeit durch mechanisch erzeugte Schlagvorgänge zwischen den ver¬schiedenen Metallen bzw. Stählen und insbesondere zwischen den einzelnen Brenngas/Luft-Gemischen. Mechanisch erzeugte Schlagfunken stellen in explosionsgefährdeten Bereichen eine potentielle Zündquelle dar, oft in Verbindung mit der Zündquelle „heiße Oberflächen“. Eine Vielzahl von mechanischen und reaktionskinetischen Einflüssen verursacht dabei eine komplexe Interaktion von Parametern, von deren Auswirkung auf die Zündwahrscheinlichkeit bislang wenig bekannt ist. Die statistisch erfassten Eigenschaften von Schlagfunken in verschiedenen Untersuchung der BAM lassen auf stochastische Prozesse schließen, bei denen die Anzahl der durch einen Schlagprozess abgetrennten Partikel und deren Oxidationsverhalten sowie die Höhe der kinetischen Schlagenergie entscheidenden Einfluss auf die Zündwahrscheinlichkeit hat /L4/; /L5/. Werkzeuge sind keine Geräte oder Schutzsysteme im Sinne der Richtlinie 2014/34/EU /L1/. Deshalb ist es nicht möglich, Werkzeuge in Übereinstimmung mit dieser Richtlinie zu zertifizieren. Trotzdem müssen die Materialien für solche Werkzeuge bestimmte Mindestanforderungen gemäß TRGS 723 /L2/ erfüllen. Die TRGS 723 Abschnitt 5.15 fordert den Nachweis der Funkenfreiheit der verwendeten Werkstoffpaarung bei Verwendung in explosionsgefährdeten Berei¬chen. Der Nachweis der Erfül¬lung dieser Anforderungen ist durch Zertifizierungen im sogenannten „gesetzlich nicht geregelten“ Bereich möglich. Die BAM bietet diese Zertifizierung im Rahmen ihres Zertifizierungsprogrammes 2.8 „Funkenarme Werkzeuge“ an /L3/. Bei der Gefährdungsbeurteilung für den Gebrauch von Werkzeugen im explosionsgefährdeten Bereich müssen mechanisch erzeugte Funken oder heiße Reibflächen, die bei mechanischen Schlagvorgängen durch den Einsatz von Werkzeugen oder Geräten bzw. Maschinen entstehen können, müssen als Zündquelle gesondert betrachtet werden. Üblicherweise wird die Mindestzündenergie bzw. die Explosionsgruppe auch für die Beurteilung der Zündwirksamkeit von mechanischen Schlägen für Brenngase herangezogen [6]. Während Schlagvorgänge als Zündquelle für explosionsfähige Atmosphären der Explosionsgruppe IIA in vielen Fällen weniger relevant sind, werden sie besonders bei Vorhandensein einer explosionsfähigen Atmosphäre der Explosionsgruppe IIC als sehr wirksame Zündquelle angesehen, die berücksichtigt werden muss. Entsprechend wird in der TRGS 723 [6] sowie der DIN EN ISO 80079-36 [21] als Schutzmaßnahme z.B. die Verwendung von funkenarmen Werkzeugen aus nicht gehärtetem schwer oxidierbarem Nicht-Eisen-Metall genannt, wobei die mögliche kinetische Schlagenergie unter 60 J bleiben und die Funkenfreiheit für die jeweils vorliegende mögliche Werkstoffpaarung (Werkstück, Stützen, Boden usw.) nachgewiesen sein muss. Manche Hersteller von Werkzeugen, die für den Einsatz in explosionsgefährdeten Bereichen vorgesehen sind, nennen ihre Werkzeuge „funkenfrei“. Die Bezeichnung wird missverständlicher Weise abgeleitet aus dem englischen „non sparking tools“. Die Bezeichnung funkenarme Werkzeuge, „low sparking tools“, trifft eher zu, denn es gibt tatsächlich keine funkenfreien, metallischen Werkzeuge. Denn es ist immer eine Frage mit welcher kinetischen Energie und gegen welchen weiteren potentiellen Schlagpartner/Werkstoff die funkenarmen Werkzeuge geschlagen werden. Üblicherweise werden Werkzeuge für den industriellen Einsatz aus hochlegierten Chromstählen hergestellt. Mit steigender kinetischer Schlagenergie und sinken¬der Zündenergie der Brenngas-Luft-Atmosphäre im explosionsgefährdeten Be¬reich, steigt die Zündwahrscheinlichkeit im Falle von Schlag- oder Reibbeanspru¬chung deutlich. Funkenarme Werkzeuge für den Einsatz in explosionsgefährdeten Bereichen wer¬den überwiegend aus speziellen Nichteisen-Metalllegierungen (NE-Metall) her¬stellt. Die beiden großen Werkstoffsorten zur Herstellung von funkenarmen Werkzeugen sind Aluminium-Bronze und Kupfer-Aluminium. Für diese beiden Werkstoffe und deren mögliche Schlagpartner gibt es bisher nur wenige umfassenden Untersuchungen mit Aussagen zur Zündwahrscheinlichkeit. T2 - 18. Essener Explosionsschutztage, Haus der Technik e.V. (HdT), Außeninstitut der RWTH Aachen, Veranst.-Nr. VA24-00428-050-E CY - Essen, Germany DA - 24.09.2024 KW - Mechanisch erzeugte Funken KW - Schlagfunken KW - Schleiffunken KW - Reibfunken KW - Nichtelektrische Funken KW - Mechanischer Explosionsschutz KW - Nichtelektrischer Explosionsschutz KW - Funkenarme Werkzeuge KW - Funkenfreie Werkzeuge KW - Ex-Werkzeuge PY - 2024 AN - OPUS4-61120 LA - deu AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Eichner, Lukas T1 - LUKAS’ JACKET: A test structure for model and monitoring based lifetime management of offshore jacket support structures N2 - The goal of the experiments is to demonstrate that systems like three-dimensional jackets possess redundancies that, despite the reduced fatigue life of individual components, enable reliable operation if an appropriate maintenance concept is in place. In practice, individual potentially faulty components in the structure have been handled conservatively so far. To move away from this approach, methods and strategies in the field of life cycle management that enable economically optimal and reliable operation must be transferred from scientific research to practice. Experiments are the preferred method to establish the proof of concept. To realistically simulate the operational lifetime of a jacket structure through an experiment, cyclic loads must be applied to the structure to replicate typical fatigue processes. To ensure that the test structure is not a "disposable product" and can undergo multiple test cycles, the experimental concept includes system-level and component-level tests. The latter are conducted on removable joints. These elements at the nodes of the structure have been manufactured in multiple variations, both to potentially contain mentioned flaws and to undergo more load cycles individually than the main structure. Once the removable joint is sufficiently pre-damaged and thus the reduced remaining fatigue life is established, the element is inserted into the overall structure. The defined maintenance strategy is then implemented on the entire system. This strategy consists of structural health monitoring (SHM), inspections, and repairs. At defined intervals, cyclic loading is interrupted to apply dynamic loads. Using the installed monitoring system and coupled operational modal analysis (OMA), the modal parameters of the structure are determined, which can help identify potential system damage. Optimal sensor placement (OSP) can be determined based on a maximum value of information (VoI) across the entire pre-posterior predicted service life. For detailed investigations at the hotspots, inspections are conducted using non-destructive methods, among others. Overall global and local information about the structure's condition is gathered these methods, which are then incorporated into models describing the structure through Bayesian updating. This allows for initial system identification based on different system responses and later updating of the predicted parameters of analytical and numerical models. Utilizing the updated models, decisions regarding maintenance actions, such as further inspections or repairs, are made, which are subject to uncertainties. The probabilistic models enable a reliability- and risk-based maintenance strategy, where, for example, maximum failure rates can act as triggers for maintenance actions. These decisions are relevant for the planned duration of the simulated operational lifetime, as well as for potential lifetime extensions, which are currently of significant importance in practice. Optimizing the maintenance strategy for the operational lifetime of the structures with these methods will lead to a higher utility of the offshore wind farm. The work associated with the test structure encompasses a variety of topics (including fatigue, damage detection and identification, reliability, Bayesian updating, system identification, SHM, maintenance planning, decisions under uncertainties), which are integrated through corresponding models and methods. All these models have been and are being applied in the numerical accompaniment of the experiments. By applying them to a structure that includes the relevant locations and aspects of real-world structures, both well-functioning and suboptimal parts of the established framework will be revealed. T2 - 20th EAWE PhD Seminar on Wind Energy CY - Visby, Sweden DA - 23.09.2024 KW - Offshore Jacket Support Structure KW - Test Structure KW - Fatigue KW - Lifetime Management KW - Structural Health Monitoring PY - 2024 AN - OPUS4-61146 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - JOUR A1 - Chaudhuri, Somsubhro A1 - Stamm, Michael A1 - Lapšanská, Ivana A1 - Lançon, Thibault A1 - Osterbrink, Lars A1 - Driebe, Thomas A1 - Hein, Daniel A1 - Harendt, René T1 - Infrared Thermography of Turbulence Patterns of Operational Wind Turbine Rotor Blades Supported With High‐Resolution Photography: KI‐VISIR Dataset N2 - With increasing wind energy capacity and installation of wind turbines, new inspection techniques are being explored to examine wind turbine rotor blades, especially during operation. A common result of surface damage phenomena (such as leading edge erosion) is the premature transition of laminar to turbulent flow on the surface of rotor blades. In the KI-VISIR (Künstliche Intelligenz Visuell und Infrarot Thermografie—Artificial Intelligence-Visual and Infrared Thermography) project, infrared thermography is used as an inspection tool to capture so-called thermal turbulence patterns (TTPs) that result from such surface contamination or damage. To complement the thermographic inspections, high-resolution photography is performed to visualise, in detail, the sites where these turbulence patterns initiate. A convolutional neural network (CNN) was developed and used to detect and localise turbulence patterns. A unique dataset combining the thermograms and visual images of operational wind turbine rotor blades has been provided, along with the simplified annotations for the turbulence patterns. Additional tools are available to allow users to use the data requiring only basic Python programming skills. KW - Thermography KW - Thermografie KW - Wind energy KW - Leading edge erosion KW - KI PY - 2024 UR - https://nbn-resolving.org/urn:nbn:de:kobv:b43-615772 DO - https://doi.org/10.1002/we.2958 IS - e2958 SP - 1 EP - 9 PB - Wiley AN - OPUS4-61577 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Hicke, Konstantin T1 - Fibre Optic Sensors (Division 8.6) N2 - Fiber optic sensing technology being researched and developed at BAM and its numerous applications/ use cases is presented briefly after a short introductory part on the fundamentals of (distributed) fiber optic sensing. T2 - BAM - RCNDE (UK) Webinar CY - Online meeting DA - 13.11.2024 KW - Distributed fiber optic sensing KW - Structural health monitoring KW - Condition monitoring KW - DAS KW - Embedded fiber optic sensors PY - 2024 AN - OPUS4-61643 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Kardjilov, Nikolay T1 - Neutron Thermo Tomography N2 - This study presents an investigation of the neutron transmission signal as a function of martensitic steel sample temperature and phase transformation during a welding process. A theoretical description that includes the Debye-Waller factor was used to describe the temperature influence on the neutron cross-sections. Neutron imaging using a monochromatic beam helps to observe transmission variations related to the martensitic-austenitic phase transformations before the Bragg-edge and to the material temperature above the Bragg-edge. In-situ neutron imaging of welding experiments show the distribution of the phase transformation and of the temperature in bulk steel samples. The performed finite element modelling of expected temperature distributions shows good agreement with the obtained experimental data. T2 - Neutron Wavelength-Dependent Imaging Workshop (NEUWAVE-12) CY - Lund, Sweden DA - 01.09.2024 KW - Neutron Imaging KW - Energy Selective KW - Neutron Thermo Tomography PY - 2024 AN - OPUS4-61265 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Schneider, Ronald T1 - Impulsvortrag: Ermüdungslebensdauerbewertung mittels Informationen aus Monitoring und Inspektionen N2 - Kontext: Ermüdungsbeanspruchte Tragstrukturen von Windenergieanlagen, Bestimmung der Ermüdungsbeanspruchungen und -zuverlässigkeit auf der Grundlage von Simulationen aus dem Design unter Berücksichtigung von Modellunsicherheiten, Aktualisierung der Ermüdungsbeanspruchungen und -zuverlässigkeit auf der Grundlage von globalen Monitoring- und lokalen Inspektionsinformationen aus dem Betrieb unter Berücksichtigung von Modell- und Messunsicherheiten T2 - 3. Verbundtreffen ReNEW CY - Berlin, Germany DA - 05.09.2024 KW - Modellunsicherheiten KW - Windenergie KW - Ermüdungslebensdauer KW - Tragstrukturen KW - Monitoring KW - Inspektionen PY - 2024 AN - OPUS4-61427 LA - deu AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER -