TY - RPRT A1 - Beltran, R. A1 - Frei, Vivian A1 - Marx, S. T1 - Ultraschallprüfungen zur Erfassung der Schädigungsentwicklung unter verschiedenen Umweltbedingungen und unter zyklischer Druckschwellbelastung N2 - Derzeit ist die Instandhaltung von großen Betontragwerken wie Brücken oder Windenergieanlagen problemorientiert und von einem reaktiven Vorgehen geprägt. Das bedeutet, erst wenn sichtbare Schäden vorliegen, werden diese meist unter Beeinträchtigung des Betriebs instand gesetzt. Im Hinblick auf die Entwicklung von prädiktiven Instandhaltungsstrategien, deren Fokus in der langfristigen Bauwerksüberwachung und der Vorhersage von Schädigungsentwicklungen liegt, wurde die Anwendung von Ultraschallverfahren für die Identifizierung der Degradationsprozesse von Betontragwerken unter Ermüdungsbeanspruchung untersucht. Hierzu fanden Arbeiten im vom Bundesministerium für Wirtschaft und Klimaschutz (BMWK) geförderten Verbundprojekt WinConFat zum "Einfluss der Probengeometrie und -größe auf die Ermüdung von Beton" an der Bundesanstalt für Materialforschung und -prüfung (BAM) und zu den "Methoden zur Zustandsanalyse von Windenergieanlagen" am Institut für Massivbau (IfMa) der Leibniz Universität Hannover (LUH) statt, welches zudem vom Deutschen Beton- und Bautechnik Verein e.V. (Forschungsvorhaben DBV-311) gefördert wurde. Dabei wurden verschiedene Einflussfaktoren auf die Schädigungsentwicklung unter Ermüdungsbeanspruchung wie die Probekörpergröße, das Belastungsniveau und die Betonfestigkeit untersucht. Als Schädigungsindikator und Vergleichsparameter wurden die Ultraschallgeschwindigkeit und der dynamische E-Modul des Betons verwendet. Um das Potential der Schädigungserfassung im Beton mittels Ultraschallprüfung umfassender zu bewerten, wurden zusätzlich Versuche an Betonproben unter monoton steigender Belastung, Kriechversuche, Temperaturversuche und Untersuchungen an großformatigen Balken durchgeführt. KW - Ultraschallprüfung KW - Ermüdung KW - Hochfester Beton PY - 2024 SN - 978-3-410-65917-4 SN - 0171-7197 VL - 651 SP - 1 EP - 102 PB - Beuth CY - Berlin AN - OPUS4-59801 LA - deu AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - RPRT A1 - Piquemal, François A1 - Hoffmann, Johannes A1 - Gautier, Brice A1 - Hertwig, Andreas A1 - Frabricius, Norbert T1 - Publishable Summary for 20IND12 Elena Electrical nanoscale metrology in industry N2 - Consumer electronics, innovative quantum technologies, and Internet of Things applications all rely on semiconductors, where reliable characterisation of electrical properties at the nanoscale is essential for European innovation and competitiveness. The measurement of these properties allows the evaluation of critical parameters used to define the performance of electronic materials and components. Currently, Conductive Atomic Force Microscopes and Scanning Microwave Microscopes enable nanoscale electrical characterisation, but they are costly, complicated and, in many cases where they are used, unreliable as measurements are not traceable. The aim of the project was to make such measurements traceable for the first time, with stated uncertainties, and affordable by developing and testing cost effective instrumentation and the first “out of lab” reference standards from DC to GHz and by elaborating robust calibration methods and good practice guides using simplified uncertainty budgets. All the objectives were achieved. The project has successfully improved the user-friendly uncertainty quantification for the electrical measurements at the nanoscale in the industrial environment. The design of calibration standards has been improved and new standards for DC resistance / current as well as HF impedance have been introduced and quantified. Good practice guides for the calibration and uncertainty quantification have been written and will be available to the users’ community. New ways of determining the properties of standard samples like ellipsometry have been evaluated. The interaction with stakeholders and industry collaborators was very important for the consortium and several case studies were carried out with industry-relevant samples. All data, procedures, and example uncertainty data from the project are included into the standardisation process and two IEC standards projects have been started during this project. These standards will be used as one important dissemination ways for the results of the project. KW - Electrical Properties KW - Nanometrology KW - Scanning Probe Microscopy KW - Optical Surface Analysis PY - 2024 SP - 1 EP - 9 AN - OPUS4-61812 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - RPRT A1 - Rhode, Michael T1 - Normungsroadmap Wasserstofftechnologien 2024 N2 - Im Auftrag des Bundesministeriums für Wirtschaft und Klimaschutz (BMWK) wurden Anfang 2023 unter Leitung der Projektpartner DIN, DKE, DVGW, NWB, VDA, VDI und VDMA die Arbeiten an der Normungsroadmap Wasserstofftechnologien (NRM H2) begonnen. Ziel des Verbundprojekts war es, einen strategischen Fahrplan für eine schnelle und gezielte Erweiterung und Anpassung des technischen Regelwerks im Bereich der Wasserstofftechnologien auszuarbeiten und die aufgezeigten Lücken effizient zu schließen. Die Erarbeitung erfolgte in 39 Arbeitsgruppen mit einer Beteiligung von mehr als 600 Expertinnen und Experten. Die Clusterung erfolgte auf Basis von fünf großen Themenfeldern, die die gesamte Wertschöpfungskette abdecken: - Erzeugung - Infrastruktur - Anwendung - Qualitätsinfrastruktur - Weiterbildung, Zertifizierung und Sicherheit. Im Rahmen der des AK Infrastruktur erfolgte die Mitarbeit in der Arbeitsgruppe „Rohrleitungen“ (AG 2.1.1). Die AG war zuständig für die Ermittlung der Normungsbedarfe auf dem Gebiet der industriellen Rohrleitungen zur Werksversorgung sowie dem Gebiet der Flansche und ihren Verbindungen wie auch Prozessleitungen. Dies umfasst unter anderem Anforderungen für oberirdische oder in Kanälen verlegte oder erdgedeckte Rohrleitungen aus metallischen und nichtmetallischen Werkstoffen für Wasserstoff und -gemische. Mit dem Ziel, sicherer Betriebsbedingungen, waren hierbei insbesondere Anforderungen für industrielle Rohrleitungssysteme von Bedeutung (z. B. Normenreihe DIN EN 13480). Dabei unterscheiden sich die industriellen Rohrleitungssysteme von Fern- bzw. Transportleitungen, außerhalb der industriellen Werke, bspw. Raffinerien. Diese waren Bestandteil der AG 2.1.2 „Transportleitungen“. KW - Normung KW - Wasserstoff KW - Rohrleitungen KW - Metallische Werkstoffe KW - Regelwerke PY - 2024 SP - 49 EP - 54 AN - OPUS4-62442 LA - deu AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - RPRT A1 - Frost, K. A1 - Lüth, Peter A1 - Schmidt, Martin A1 - Simon, K. A1 - Uhlig, S. T1 - Interlaboratory test 2023 on the method DIN EN 15188:2021-07 "Determination of the spontaneous ignition behaviour of dust accumulations" - Final report of results N2 - The test method DIN EN 15188:2021-07 “Determination of the spontaneous ignition behaviour of dust accumulations” is applied to characterize the self-ignition behaviour of combustible dusts. The experimental basis for describing the self-ignition behaviour of a given dust is the determination of the self-ignition temperatures (TSI) of differently-sized volumes of the dust sample by isoperibolic hot storage experiments (storage at constant oven temperatures) in commercially available ovens. The results measured this way reflect the dependence of the self-ignition temperatures on the volume of a dust accumulation. Several internal investigations in the past (e.g. interlaboratory tests in 2010-2011 and 2015-2016) have shown significant differences between the lab-specific results of hot storage tests of the former version of the revised DIN EN 15188:2021-07 (DIN EN 15188:2007). Therefore, an improvement of the test method DIN EN 15188:2007 was necessary. After a rather long and extensive series of various improvements (methodological modifications), the interlaboratory test in 2015-2016 demonstrated an acceptable reliability of the test method and a satisfactory measurement uncertainty if the modifications described in the interlaboratory test are taken into account. On the basis of this interlaboratory test in 2015, this subsequently led to a revision of the standard, whereby, in addition to the methodological improvements, the measurement uncertainty to be taken into account could now also be specified for the first time in this standard. The revised DIN EN 15188:2021-07 was published in 2021 and can now be applied by laboratories. This report provides the laboratory results of the first interlaboratory test 2023 on the revised method DIN EN 15188:2021-07 and summarizes the results of the assessment of laboratory performance. KW - DIN EN 15188:2021-07 KW - Spontaneous ignition KW - Interlaboratory test KW - Round robin test KW - Proficiency test KW - Dangerous goods KW - Hazardous substances KW - Measurement uncertainty KW - Gefahrgut KW - Gefahrstoff KW - Qualitätssicherung KW - Ringversuch KW - Selbstentzündung KW - Staub KW - Dust PY - 2024 UR - https://nbn-resolving.org/urn:nbn:de:kobv:b43-614560 SN - 978-3-9818564-6-0 DO - https://doi.org/10.26272/opus4-61456 SP - 1 EP - 51 PB - Bundesanstalt für Materialforschung und -prüfung (BAM) CY - Berlin ET - 1. AN - OPUS4-61456 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - RPRT A1 - Kuchenbecker, Petra A1 - Lindemann, Franziska T1 - Final report proficiency test LS BAM-5.4-2024 - Measurement of the particle size distribution of ceramic powders by laser diffraction N2 - This publication is the final report on the proficiency test (PT) LS BAM-5.4-2024 „Measurement of the particle size distribution of ceramic powders by laser diffraction”. The PT was organized by the Federal Institute for Materials Research and Testing (BAM), division 5.4 “Advanced Multi-materials Processing”, Germany. The measurements took place from 2024/05 to 2024/07. The aim of the interlaboratory comparison was the proficiency assessment of the participating laboratories. The PT was performed in accordance with DIN EN ISO/IEC 17043:2010. The harmonized measurement procedure was based on ISO 13320:2020The statistical analysis was performed in accordance with DIN ISO 13528:2020 by use of the software PROLab (QuoData GmbH, Dresden, Germany). A group of 35 laboratories from 14 countries participated in the PT. Laser diffraction analyzers produced by 7 different manufacturers were used. The three test materials were commercial ceramic powders. Overall, the measured characteristic values of the particle size distributions (d10,3, d50,3 and d90,3) were in the size range between 1 and 35 μm. The final report contains all individual results in an anonymous form. KW - Proficiency test KW - Particle size determination KW - Laser diffraction PY - 2024 UR - https://nbn-resolving.org/urn:nbn:de:kobv:b43-610602 DO - https://doi.org/10.26272/opus4-61060 SP - 1 EP - 33 PB - Bundesanstalt für Materialforschung und -prüfung (BAM) CY - Berlin AN - OPUS4-61060 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - RPRT A1 - Ciornii, Dmitri A1 - Hodoroaba, Vasile-Dan A1 - Benismail, Nizar A1 - Altmann, Korinna T1 - Project 2: Interlaboratory Comparison on detection and quantitative assessment of microplastics by use of spectroscopic and thermo-analytical methods N2 - Validated and standardized methods in microplastic analysis are indispensable for robust monitoring and regulation. Alongside also reference materials are urgently needed. An interlaboratory comparison (ILC) offers a powerful tool to address both these challenges. The present study aimed to compare the precision and accuracy of various methods for the detection and quantification of microplastic in a water-soluble matrix. Additionally, it evaluated the suitability of the test materials (containing environmentally relevant plastic polymers) to serve as reference materials for the microplastic analysis. In this ILC several most used thermo-analytical and spectroscopic methods have been addressed: Pyrolysis-Gas Chromatography Mass Spectrometry (Py-GC/MS), Thermal Extraction-Desorption Gas Chromatography Mass Spectrometry (TED-GC/MS), micro-Fourier Transform Infrared Spectroscopy (µ-FTIR), and micro-Raman Spectroscopy and Laser Direct Infrared Spectroscopy (LDIR). Microplastic powders of polyethylene (PE) and polyethylene terephthalate (PET) were used to assess suitability of the test materials (microplastic tablets) for method validation and use in the ILCs. The participants were guided with a SOP how to dissolve the test samples and, depending on their selected method, either quantify the number of particles (by the spectroscopic methods) or determine the mass fraction of microplastic particles per sample (by the thermo-analytical methods). KW - ILC KW - Microplastic KW - FTIR KW - Raman KW - TED-GC/MS KW - Py-GC/MS PY - 2024 SP - 1 EP - 16 AN - OPUS4-60612 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - RPRT A1 - Altmann, Korinna T1 - Deliverable 2: Summary report on: The development of pristine SI traceable reference materials for SMPs (0.1 μm - 10 μm) and NPs (< 0.1 μm), representative of partially degraded/naturally aged samples in complex food and environmental matrices, and for realistic polydisperse size distributions and irregular shapes N2 - PlasticTrace aims to address the urgent need for development and harmonisation of methods for the chemical identification, physical characterisation and quantification of released small micro/nanoplastics (SMPs/NPs) in drinking water, food and environmental matrices, as required by the EU’s Circular Economy Action Plan (CEAP). This report describs the characterisation of nanoPP analysed in the PlasticTrace project aiming to develop a reference material. The nanoPP was analysed mainly by light scattering methods. Homogeneity control was done by DLS. KW - Nanoplastics KW - Reference materials PY - 2024 N1 - Project Number 21GRD07: PlasticTrace (Tracing Micro and NanoPlastics in Food and Environment), funded by the European Union SP - 1 EP - 29 PB - European Association of National Metrology Institutes (EURAMET) CY - Braunschweig AN - OPUS4-62299 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER -