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-5.5-2021: Measurement of the particle size distribution of ceramic powders by laser diffraction in accordance with ISO 13320 N2 - This is the final report on the proficiency test (PT) „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 5.5 “Advanced technical ceramics”. The measurements took place from 12/2021 to 03/2022. The aim of the interlaboratory comparison was the proficiency assessment of the participating laboratories. Management and realization of PT were performed in accordance with DIN EN ISO/IEC 17043:2010. The basis of the harmonized measuring procedure and the instructions for the interlaboratory comparison was the standard ISO 13320:2020. The statistical analysis was performed in accordance with DIN ISO 13528:2020 by use of the software PROLab Plus (QuoData GmbH, Dresden, Germany). A group of 44 laboratories from 17 countries participated in the PT. Laser diffraction analyzers produced by 7 different manufacturers were used. The three test materials were commercial products. Overall, the measured characteristic values of the particle distributions (d10, d50 and d90) were in the size range between 0.5 and 25 μm. The final report contains all individual results in an anonymous way. KW - Proficiency test KW - Particle size KW - Laser light scattering PY - 2022 UR - https://nbn-resolving.org/urn:nbn:de:kobv:b43-548640 DO - https://doi.org/10.26272/opus4-54864 SP - 1 EP - 33 PB - Bundesanstalt für Materialforschung und -prüfung (BAM) CY - Berlin AN - OPUS4-54864 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 - Mirtsch, Mona A1 - Koch, Claudia A1 - Dudek, Gabriele A1 - Blind, K. T1 - Die Nutzung und Wirkung der Norm ISO/IEC 27001 für Informationssicherheit in Unternehmen in Deutschland N2 - Das Ziel der Initiative QI-FoKuS ist es, eine Datenbasis für neue wissenschaftliche Erkenntnisse zu Einflussfaktoren und Effekten in der Konformitätsbewertung und Akkreditierung zu schaffen und hierbei insbesondere auch auf aktuelle Trends und Entwicklungen einzugehen. Von Januar bis März 2020 wurden in einer Online-Erhebung Unternehmen verschiedener Branchen und Größenklassen in Deutschland zur Nutzung und den Wirkungen ihres zertifizierten Managementsystems für Informationssicherheit nach ISO/IEC 27001 befragt. Es konnten 125 vollständig ausgefüllte Fragebögen für die vorliegende Studie ausgewertet werden. KW - Managementsysteme KW - ISO/IEC 27001 KW - Informationssicherheit KW - Zertifizierung KW - Konformitätsbewertung KW - Akkreditierung KW - QI-FoKuS PY - 2020 UR - https://nbn-resolving.org/urn:nbn:de:kobv:b43-517922 DO - https://doi.org/10.26272/opus4-51792 VL - 2 SP - 1 EP - 28 PB - Bundesanstalt für Materialforschung und -prüfung (BAM) CY - Berlin AN - OPUS4-51792 LA - deu AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - RPRT A1 - Dorgerloh, Ute A1 - Becker, Roland A1 - Sauer, Andreas T1 - Report on the interlaboratory validation trial of DIN 38407-53 N2 - DIN 38407-53 "German standard methods for the examination of water, waste water and sludge — Jointly determinable substances (group F) — Part 53: Determination of TFA in water — Method using liquid chromatography and mass spectrometric detection (LC-MS/MS) after direct injection (F 53)" was prepared by working group NA 119 01 03 02 16 AK "LC-MS/MS-Verfahren" of the Technical Committee NA 119 01 03 AA "Wasseruntersuchung" in the DIN-Normenausschuss Wasserwesen (NAW). The DIN 38407-53 was technically finalized as Draft on 2024-02, further versions have been editorially revised only. The interlaboratory validation trial was carried out according to the rules set by ISO 7013. They allowed adopting validation data from a working group internal ring test if they are scientifically accepted and fulfil the requirements of ISO 7013. Twelve German and Swiss participants declared to have strictly followed the instructions given in draft DIN 38407-53. The intercomparison was organised and operated by the Federal Institute for Materials Research and Testing BAM in 2024. The performance characteristics for the quantification of TFA were evaluated in different water types and evaluated according to ISO 5725-2. KW - TFA Trifluoroacetic acid KW - Water analysis KW - LC MSMS PY - 2024 UR - https://nbn-resolving.org/urn:nbn:de:kobv:b43-615066 DO - https://doi.org/10.26272/opus4-61506 SP - 1 EP - 18 PB - Bundesanstalt für Materialforschung und -prüfung (BAM) CY - Berlin AN - OPUS4-61506 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - RPRT A1 - Schmidt, Wolfram A1 - Dauda, Risikat Oladoyin A1 - Reitz, Judith A1 - Misselwitz, Philipp A1 - Bassioni, Ghada A1 - Olonade, Kolawole Adisa A1 - van Damme, Henri A1 - Marangu, Josep Mwiti A1 - Dias Toledo Filho, Romildo A1 - Stürwald, Simone A1 - Schiewer, Gesine Leonore A1 - Hanein, Theodore A1 - Boru, Zamzam Bonaya A1 - Christensen, Randi A1 - Mack Vergara, Yazmin Lisbeth A1 - Hoelzel, Fabienne A1 - Apollo, Buregyeya A1 - Kyarisiima, Hope A1 - Thiedeitz, Mareike A1 - Suraneni, Prannoy A1 - Lorenz, Werner A1 - Osmani, Mohamed A1 - Lesutis, Gediminas A1 - Hanhausen, Rosa A1 - Lehmann, Steffen A1 - Madundo, Mariam Marco A1 - Bader, Vera Simone A1 - Rashdi, Rabia A1 - Landrou, Gnanli A1 - Hafez, Hisham A1 - Howe, Lindsay A1 - Kamashanju, Kabibi Charles A1 - Mohtashami, Nazanin A1 - Opoku, Richard Addo A1 - Erhahon-Nanna, Aisosa A1 - Mellinghoff, Zanele ED - Schmidt, Wolfram ED - Kamashanju, Kabibi Charles ED - Dauda, Risikat Oladoyin ED - Reitz, Judith ED - Misselwitz, Philipp T1 - Renewable, low-carbon materials and (infra)structures for inclusive and equitable human habitat - A position paper derived from the ReLive Habitat Scoping Workshop in August 2025 at the Xplanatorium in Hannover N2 - In order to create sustainable lifestyles and societies in the long term, sustainability goals must be balanced in terms of the environment, the economy and society. However, these targets are sometimes in conflict with each other and cannot be balanced without compromise. Today, the sustainability debate focuses primarily on balancing environmental/climate and economic targets. Social aspects tend to play a marginal role in the debate. This is also the case in the construction industry, which contributes significantly to global energy consumption and high grey and operational CO2 emissions worldwide. For this reason, research and politics have focused intensively in recent decades on ways to reduce climate emissions while maintaining economic efficiency. Historically, the focus in construction has been on structural safety. The classic credo in engineering was ‘more is more’. In the context of the climate debate, however, ‘less is more’ often applies, so that engineers and architects today face an economic conflict of objectives between the classic requirements for failure probability and the requirements for sustainable, resource-saving construction, which calls for completely new, much more holistic approaches to material development and structural design. The aim here is to build in a way that is both economical and climate-friendly without compromising structural safety, which is already a complex undertaking. However, the influence of the use of materials, architecture and construction technology on social aspects is often given much less consideration in the sustainability debate, even though enormous population growth and urbanisation processes are expected in the future, particularly in developing economic areas. This inevitably requires a stronger focus on the socio-economic aspects of construction, especially since, in contrast to many current metropolises, many conurbations in these regions will emerge in areas that are not yet densely populated. This provides freedom for innovative concepts that avoid the mistakes of the past and can consider all aspects of sustainability as largely equal. This freedom enables construction methods and urban concepts that use renewable, circular, local materials to create adaptable, accessible and liveable structures that are equitable, inclusive and fair for society. This position paper deals with the socio-economic footprint of materials and buildings. It was compiled by an interdisciplinary group of international experts and attempts to develop approaches for effective socio-economic life cycle analysis using similar concepts to those used in environmental life cycle analysis of products and buildings. In contrast to economic analyses or environmental life cycle assessments, which can work with reasonably available and clearly defined units to develop indicators, it is often impossible to determine units for socio-economic indicators, data is more difficult to obtain and there is a lack of benchmarks. During the discussions, a number of relevant parameters were developed, which can provide clearly quantifiable indicators for socio economic effects. These are related to largely available economic and employment data and consider the distribution of project contracts during implementation and the employment figures associated with project implementation. Particularly in the implementation of large-scale projects involving international investors and financial institutions, ‘(green) compliance value extractivism’ effects can occur, whereby partners from the donor countries are given preference over local project partners. This fraction of the loan flow directly abroad and can no longer serve the local economy to grow. This results in economic follow-up costs, even with lower project costs, which can promote social injustices. The higher the proportion of local companies and employees at engineering levels, the more fairly the construction project serves the local economy. T2 - ReLive Habitat-Scoping-Workshop: Renewable, Low-carbon Materials and (Infra-)structures for Inclusive and Equitable Human Habitat CY - Hannover, Germany DA - 13.08.2025 KW - Socio-economic footprint KW - Life cycle analysis KW - Sustainability KW - Urbanisation KW - Low carbon materials KW - Low carbon structures KW - Human habitat KW - Inclusiveness PY - 2026 UR - https://nbn-resolving.org/urn:nbn:de:kobv:b43-654742 DO - https://doi.org/10.26272/opus4-65474 VL - 2026 SP - i EP - 24 PB - Bundesanstalt für Materialforschung und -prüfung (BAM) CY - Berlin AN - OPUS4-65474 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - RPRT A1 - Bartczak, D. A1 - Hodoroaba, Vasile-Dan T1 - Report on the development and validation of the reference material candidates with non-spherical shape, non-monodisperse size distributions and accurate nanoparticle concentrations N2 - One aim of the EMPIR nPSize project 17NRM04 was to develop and validate three classes of candidate reference (test) materials (RTMs), with i) well-defined non-spherical shape, ii) relatively high polydispersity index, and iii) accurate particle concentrations. To fulfil the requirements of the project, 11 different types of materials were prepared. Following the initial assessment of the materials suitability, nPSize5_PT_UNITO, nPSize6_AC_UNITO and nPSize7_GN_CEA materials were found unsuitable for the project, due to various reasons. PT material was deemed unsuitable due to its predominantly agglomerated nature. AC material contained relatively high amount of impurities (other particle forms). GN material was found too heterogeneous in both the length and width for the purpose of the project. The remaining 8 candidate RTMs were assessed for their homogeneity and stability and used for successful delivery of the associated activities within the nPSize project. KW - Nanoparticles KW - Particle size distribution KW - Reference materials KW - Non-spherical shape KW - EMPIR nPSize KW - Electron microscopy KW - AFM KW - SAXS PY - 2022 UR - https://nbn-resolving.org/urn:nbn:de:kobv:b43-556015 DO - https://doi.org/10.5281/zenodo.7016466 SP - 1 EP - 22 PB - Zenodo CY - Geneva AN - OPUS4-55601 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - RPRT A1 - Rades, Steffi A1 - Natte, Kishore A1 - Unger, Wolfgang T1 - NanoValid D.5.47 Annex 1, Inter-laboratory comparison on measurand particle size/particle size distribution - Report of the results N2 - An inter-laboratory comparison on the particle size, expressed as mean diameter d, of nanoscaled SiO2 (#14 BAM Silica (see NanoValid DoW, D.5.41/5.42)) has been performed. The majority of participants used Dynamic Light Scattering (DLS). A few used Electron Microscopy as method. Following methods had been applied by only one partner, respectively: Small Angle X-ray Scattering, Analytical Ultracentrifugation, Atomic Force Microscopy and Atomizer with electric mobility spectrometer. KW - Nanoparticle size measurement KW - Silica nanoparticles KW - Inter-laboratory comparison KW - EU FP7 project NanoValid PY - 2019 UR - https://nbn-resolving.org/urn:nbn:de:kobv:b43-488117 DO - https://doi.org/10.5281/zenodo.3380570 SP - 1 EP - 23 PB - Zenodo CY - Geneva AN - OPUS4-48811 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - RPRT A1 - Rades, Steffi A1 - Unger, Wolfgang T1 - NanoValid D.5.47 Annex 3 Inter-laboratory comparison on measurand specific surface area (BET) of nanoparticular Titania (#15 BAM Titania): Report of the results N2 - This Report describes an inter-laboratory comparison aiming on the establishment of the used method (BET) as a reference method. Another purpose was the certification of the porous reference material #15 BAM Titania as CRM BAM-P110 (cf. D 5.41/42). The certified values determined by nitrogen ad-sorption at 77.3 K according to the international standards ISO 15901-2 and ISO 9277 are summarized in the Table below. KW - Inter-laboratory comparison KW - Specific Surface Area (BET) KW - Nanoparticular TiO2 (Anatase) KW - EU FP7 project NanoValid PY - 2019 UR - https://nbn-resolving.org/urn:nbn:de:kobv:b43-488491 DO - https://doi.org/10.5281/zenodo.3379612 SP - 1 EP - 22 PB - Zenodo CY - Geneva AN - OPUS4-48849 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - RPRT A1 - Rades, Steffi A1 - Natte, Kishore A1 - Unger, Wolfgang T1 - NanoValid D.5.47 Annex 2 Inter-laboratory comparison on measurand surface charge (Zeta Potential) of silica particles: Report of the results N2 - An inter-laboratory comparison on the surface charge, expressed as zeta potential ζ, of nanoscaled SiO2 has been performed using #14 BAM Silica (see D.5.41/5.42) nanoparticles. The comparability of results delivered by participants has been tested. The Task 5.4 of NanoValid is designed to test, compare and validate current methods to measure and characterize physicochemical properties of selected engineered nanoparticles. The measurand is Surface charge expressed as zeta-Potential. The measurements are to be accompanied by estimates of the uncertainties at a confidence level of 95%, deduced from the standard uncertainties. Therefore an uncertainty budget comprising statistical (Type A) and systematic (Type B) errors has to be established and delivered for the measurand. The protocol comprises two Annexes addressing the establishment of uncertainty budgets following GUM. The final goal of the comparison is to identify those methods of measurement which have potential as reference methods in pc characterization of nanoparticles for the determination of a given measurand. KW - Inter-laborator comparison KW - Surface charge KW - Zeta potential KW - Uncertainty budget KW - Silica nanoparticles KW - NanoValid PY - 2019 UR - https://nbn-resolving.org/urn:nbn:de:kobv:b43-488483 DO - https://doi.org/10.5281/zenodo.3379815 SP - 1 EP - 10 PB - Zenodo CY - Geneva AN - OPUS4-48848 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - RPRT A1 - Hodoroaba, Vasile-Dan A1 - Fontanges, R. A1 - Delvallée, A. A1 - Deumer, J. A1 - Salzmann, C. A1 - Crouzier, L. A1 - Gollwitzer, C. A1 - Klein, T. A1 - Koops, R. A1 - Sebaihi, N. A1 - Pauw, Brian Richard A1 - Smales, Glen Jacob A1 - Artous, S. A1 - Taché, O. A1 - Feltin, N. T1 - Report on full algorithm sequences for nanoparticle detection and size measurement as developed on both a physical basis and by machine learning N2 - he main objective of the nPSize project is to improve the measurement capabilities for nanoparticle size based on both measurement methods traceable to SI units and new reference materials. Two basic approaches have been used in order to develop measurement procedures resulting in traceable results of the nanoparticle size distribution: physical modelling for the methods used in the project (TSEM, SEM, AFM and SAXS) and machine learning. Physical modelling: In this part, the physical models associated with different shape measurements for the techniques TSEM, SEM, AFM and SAXS have been collected and further developed with the aim to simulate the resulting signal as measured by the individual methods. Uncertainties and traceability associated with each model were investigated and evaluated. In the following, the progress on these physical models is reported for each individual method. Machine Learning modelling: The aim of this part is to use machine learning to enable automatic measurement of nanoparticle shape from expert a-priori information only. No physical model will be used as a-priori information in this task. The accuracy and traceability of the size results obtained by each technique will be analyzed and compared with the physical modelling. A machine learning database will then be used to create automatic detection algorithms. KW - Nanoparticles KW - Particle size distribution KW - SEM KW - TSEM KW - TEM KW - SAXS KW - AFM PY - 2022 UR - https://nbn-resolving.org/urn:nbn:de:kobv:b43-546531 DO - https://doi.org/10.5281/zenodo.5807864 SP - 1 EP - 20 PB - Zenodo CY - Geneva AN - OPUS4-54653 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - RPRT A1 - Maack, Stefan A1 - Schäfer, S. A1 - Braml, T. A1 - Wimmer, J. A1 - Jedlitschka, A. A1 - Kuhn, T. A1 - Fertig, T. A1 - Schütz, A. T1 - CASPAR Construction Administration Shell - Plattform für die beweissichere und rückführbare Datennutzung im Bauwesen N2 - Das zentrale Ziel des Forschungsvorhabens CASPAR ist die Entwicklung einer technischen Lösung zur beweissicheren und rückführbaren Datenbasis von digitalen Informationen zur Bewertung von Bauwerken. Ein konsistentes, semantisches und maschinenlesbares Datenmodell wurde entwickelt, um Daten aus verschiedenen Quellen zu aggregieren und Schnittstellen für die Echtzeit-Kommunikation mit Sensoren zu schaffen. Ein besonderer Schwerpunkt lag auf der Einführung der Verwaltungsschale (Asset Administration Shell, AAS), einer Kerntechnologie der Industrie 4.0, als standardisierten digitalen Zwilling für Brückenbauwerke. Die Verwaltungsschale ermöglicht die strukturierte, interoperable und semantisch eindeutige Darstellung von Bauwerksdaten. Eine Blockchain-basierte Lösung wurde entwickelt, um die sichere und manipulationsresistente Datenübertragung und -ablage zu gewährleisten. Ein Demonstrator, basierend auf der Open Source Plattform Eclipse BaSyx, wurde entwickelt, um die Technologien zu veranschaulichen. Der Demonstrator wurde im November 2024 auf der Messe SPS in Nürnberg vorgestellt. Ein wesentlicher Bestandteil des Forschungsvorhabens war die Entwicklung eines konsistenten, semantischen und maschinenlesbaren Datenmodells für Brückenbauwerke. Dieses Modell ermöglicht die Aggregation von Informationen aus verschiedenen Quellen und die Entwicklung von Schnittstellen für die Echtzeit-Kommunikation mit Sensoren. Ein besonderer Schwerpunkt lag auf der Einführung der Verwaltungsschale (Asset Administration Shell, AAS), einer Kerntechnologie der Industrie 4.0, als standardisierten digitalen Zwilling für Brückenbauwerke. Die Verwaltungsschale ermöglicht die strukturierte, interoperable und semantisch eindeutige Darstellung von Bauwerksdaten. Eine Blockchain-basierte Lösung wurde entwickelt, um die sichere und manipulationsresistente Datenübertragung und -ablage zu gewährleisten. Ein Demonstrator, basierend auf der Open Source Plattform Eclipse BaSyx, wurde entwickelt, um die Technologien zu veranschaulichen. KW - Lebenszyklus KW - Brücken KW - Datenablage KW - Digitalisierung KW - Industrie 4.0 KW - Bauwesen PY - 2025 UR - https://nbn-resolving.org/urn:nbn:de:kobv:b43-640571 DO - https://doi.org/10.34657/21445 SP - 1 EP - 37 PB - TIB Technische Informationsbibliothek AN - OPUS4-64057 LA - deu AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - RPRT A1 - Ballach, F. A1 - Bartscher, M. A1 - Bellon, Carsten A1 - Borges de Oliveira, F. A1 - Braun, M. A1 - Dennerlein, F. A1 - Flessner, M. A1 - Fuchs, P. A1 - Günnewig, O. A1 - Hausotte, T. A1 - Hess, J. A1 - Kasperl, S. A1 - Kirschbaum, K. A1 - Li, K. A1 - Maass, N. A1 - Mayer, T. A1 - Orth, Anthony A1 - Reuter, T. A1 - Suppes, A. A1 - von Schmid, M. A1 - Weiß, D. T1 - Realistische Simulation realer Röntgencomputertomografie-Systeme mit basisqualifizierter Simulationssoftware – CTSimU2 BT - Abschlussbericht N2 - Das Förderprojekt CTSimU2 baute auf den Ergebnissen des Projektes CTSimU auf. Dieses Vorprojekt erarbeitete ein (Basis-)Qualifizierungsframework für Simulationssoftwares zur Anwendung bei der Röntgen-CT für dimensionelle Messungen. Dabei stand die ausreichende physikalische Korrektheit der Durchstrahlungssimulation im Vordergrund. Für die realitätsnahe Simulation einer CT-Anlage in einer Simulationssoftware (Digitales Modell) ist jedoch nicht nur die Korrektheit der Simulationssoftware selbst, sondern auch die Güte der Parametrisierung des realen CT-Systems in der Simulationssoftware entscheidend – dies stellte den Ausgangspunkt dar. Die Parametrisierung eines CT-Systems in einer Simulationssoftware lässt sich in vier Schritte unterteilen: nach der Datenaufnahme am realen CT-System folgt die Auswertung der aufgenommenen Daten für die Generierung allgemeiner Parameterangaben. Als letztes folgte die Übertragung der Parameter in die spezifischen Simulationssoftwares und die Validierung der resultierenden Simulationsparameter. Die Methodik der Datenaufnahme am CT und die Auswertung der Daten wurde in einem Werkzeugkasten allgemein beschrieben. Der dritte Schritt, die Umsetzung der Parameter, war softwarespezifisch und wurde beispielhaft mit den vorhandenen Simulationssoftwares durchgeführt. Die Validierung der Parameter war standardisierbar und konnte durch den entwickelten Test geleistet werden, auf dessen Basis die ausreichend korrekte Simulation einer realen Anlage beurteilt werden konnte. Endresultat des Projektes war ein Richtlinienentwurf (z. B. VDI/VDE 2630) zu diesem Test, der einen informativen Annex zum Stand der Technik bezüglich der Möglichkeiten zur Parameterbestimmung enthält. Mit einer Simulationssoftware, die die Basisqualifizierung aus CTSimU bestanden hat und einen Parameterdatensatz für ein reales CT-System enthält, der den Test aus CTSimU2 bestanden hat, können realistische Simulationen dieses CT-Systems möglich sein. KW - Computertomografie KW - Simulation KW - Dimensionelles Messen PY - 2025 UR - https://nbn-resolving.org/urn:nbn:de:kobv:b43-641719 DO - https://doi.org/10.34657/21602 N1 - Dieses Projekt wurde durch die Förderrichtlinie WIPANO gefördert und durch das Bundesministerium für Wirtschaft und Klimaschutz (2022 -2025) finanziert. Der Projektträger Jülich verwaltet die Projekte der Förderrichtlinie WIPANO. SP - 1 EP - 22 PB - TIB Technische Informationsbibliothek CY - Hannover AN - OPUS4-64171 LA - deu AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - RPRT A1 - Simon, Franz-Georg A1 - Pienkoß, Fabian T1 - INTEGRAL - Integriertes Konzept für mineralische Abfälle und Landmanagement zur nachhaltigen Entwicklung von Stadt-Land-Nutzungsbeziehungen, Teilvorhaben 4: BAM, Ermittlung stofflicher Parameter N2 - Zusammenfassend wurde in dieser Arbeit gezeigt, dass die Setzmaschinentechnik eine geeignete Methode ist, um Brechsande aus gemischten Bauabfällen aufzubereiten. Die Trennung des Materials in zwei Stoffströme unterschiedlicher Dichte hat sich mit einer Absenkung um 56% besonders effizient in der Reduzierung von PAK Belastungen im Feststoff erwiesen. Auch die Sulfatlast im Produktstrom wurde durch den Prozess im Vergleich zum Aufgabegut um 29% gesenkt. Neben der Erhöhung des Median Partikeldurchmessers durch Klassierungseffekte, ist die Herabsetzung verschiedener Eluatparameter ebenfalls positiv zu bewerten. Dies bezieht sich zum einen auf die elektrische Leitfähigkeit, die nach EBV von RC-3 auf RC-1 aufgewertet wurde und zum anderen auf die Chromkonzentration, die von RC-2 auf die Stufe RC-1 angehoben wurde. Die vorliegenden Aufbereitungsergebnisse erlaubten jedoch nicht eine Gesamteinordnung des Materials als Ersatzbaustoff oberhalb der Klasse RC-3. Hierzu ist eine weitere Absenkung der Eluatwerte für Sulfat um 25% von RC-3 (1325 mg L-1) auf RC-2 (< 1000 mg L-1) und des PAK-15 Wertes um 4% von RC-3 (8.3 µg L-1) auf RC-2 (< 8.0 µg L-1) erforderlich. Eine detaillierte Optimierung der Prozessparameter der Setzmaschinentechnik könnten diesen Spielraum ermöglichen. KW - Setzmaschine KW - Nassaufbereitung KW - Ersatzbaustoff PY - 2024 UR - https://nbn-resolving.org/urn:nbn:de:kobv:b43-600263 DO - https://doi.org/10.2314/KXP:1887868135 N1 - Das diesem Bericht zugrunde liegende Vorhaben wurde mit Mitteln des Bundesministeriums für Bildung und Forschung unter dem Förderkennzeichen 033L223D gefördert SP - 1 EP - 18 PB - Technische Informationsbibliothek (TIB) CY - Hannover AN - OPUS4-60026 LA - deu AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - RPRT A1 - European Food Safety Authority (EFSA), A1 - European Centre for Disease Prevention and Control (ECDC), A1 - European Chemicals Agency (ECHA), A1 - European Environment Agency (EEA), A1 - European Medicines Agency (EMA), A1 - European Commission's Joint Research Centre (JRC), T1 - Annex to: Scientific report 'Impact of the use of azole fungicides, other than as human medicines, on the development of azole-resistant Aspergillus spp.' doi:10.2903/j.efsa.2025.9200 - Annex E - Detailed answer to Term of Reference 5 'Environmental hotspots' and Term of Reference 6 'Prevention and control options' N2 - The widespread use of azole compounds in various sectors has led to the emergence of azole-resistant Aspergillus fumigatus (ARAf), which poses a significant challenge for treating fungal infections, especially in immunocompromised patients. Certain environmental conditions and practices, particularly in agricultural settings and the use of azoles as biocides, have been identified as hotspots for the selection and dispersal of azole-resistant strains of Aspergillus spp. Factors contributing to the selection of resistance include the use of azoles in crop protection, wood preservation and, to a much lesser extent, veterinary medicine. For plant protection products (PPPs), a number of scenarios (green waste of indoor-grown vegetables, uses with the production of wet pomace used as fertiliser, maize or sugar beet silage, and field heaps including flower bulbs) are deemed high risk for hotspot development. Based on EU authorised use patterns, these scenarios are characterised by the hazard characteristics of the azole fungicides in terms of activity against the wild-type Aspergillus spp. compared to resistant strains, substrate characteristics and residue levels, and environmental conditions that promote the growth of the fungus. For biocidal azole applications, products (biocidal product [BP]) for temporary preservation of freshly cut wood have been identified to have the potential for hotspot formation because freshly cut wood allows the growth of Aspergillus spp., and azole concentrations in treated wood are above the predicted no effect concentration (PNEC) for resistance selection (PNECres) and below the minimum inhibitory concentration (MIC) of ARAf for most analysed products on the EU market. Following identification of environmental hotspots, the report recommends measures to prevent the selection of azole-resistant strains in the environment, including controlled storage of organic waste, proper waste management, and responsible use and disposal of azole-treated products. Azole use in veterinary medicinal products (VMPs) represents a very small percentage of total azole use and is unlikely to be a significant source of selection of resistance in the environment. As such, the focus for mitigating resistance should be on other uses of azoles. The report stresses the importance of ongoing surveillance to monitor the presence of ARAf in the environment and to inform risk assessments and management strategies. As industrial chemicals, the azole substances are mostly used as intermediates (precursors) to manufacture yet a different substance, are formulated into a mixture or are reported to be manufactured as active substances in PPP, BP or VMP (therefore already covered above). There are only a few industrial azole substances with widespread use, and as for the moment, there is no evidence from the literature that industrial azoles would be a source of a possible hotspot; thus, the industrial chemicals were not further investigated. There are several areas where further research is needed, including understanding the environmental conditions that support the growth of Aspergillus spp. in different agricultural matrices or on wood, assessing human exposure to resistant strains, regional waste practices and the impact of active substance combinations for azole resistance selection. There is also a need for more comprehensive data on the use and quantities of azole-containing products. Furthermore, industrial substances with widespread use and having antifungal effects, e.g. an antidandruff substance in cosmetics, could be further investigated. Measures were identified that could be implemented with respect to the use of azole fungicides in PPPs as well as in BPs and with respect to the storage, processing and disposal of crop (waste) materials containing azole residues to prevent or minimise the selection of environmental resistance or to minimise the spread of resistant Aspergillus spp. to patients. Any measures that slow down or prevent growth in the presence of azoles, sporulation and dispersal of Aspergillus spp. should be encouraged. A coordinated effort among various stakeholders, including farmers, manufacturers, industrial users, waste managers, regulatory bodies and scientists, is essential to effectively address the challenge of azole resistance in A. fumigatus. KW - Antimicrobial surfaces KW - Biocides KW - Antimicrobial resistance KW - Azoles KW - Fungi KW - Wood preservatives PY - 2025 UR - https://nbn-resolving.org/urn:nbn:de:kobv:b43-652187 UR - https://doi.org/10.5281/zenodo.14223436 DO - https://doi.org/10.5281/zenodo.14223435 SP - 1 EP - 76 PB - Zenodo CY - Geneva AN - OPUS4-65218 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - RPRT A1 - Schröder, Volkmar A1 - Askar, Enis A1 - Habib, Abdel Karim A1 - Tashqin, T. T1 - Sicherheitstechnische Eigenschaften von Erdgas-Wasserstoff-Gemischen N2 - Bei der Power-to-Gas-Technologie wird überschüssiger Strom aus erneuerbaren Energien durch Elektroly-se von Wasser in Wasserstoff umgewandelt. Dieser Wasserstoff kann als „chemischer Energiespeicher“ dienen und rückverstromt werden oder aber in das Erdgasnetz eingespeist werden. Die BAM hat die Aus-wirkungen von Wasserstoffzusätzen zum Erdgas im Hinblick auf den Explosionsschutz untersucht und sicherheitstechnische Kenngrößen für Erdgas-Wasserstoff-Gemische bestimmt. Untersucht wurden die Explosionsgrenzen, die Sauerstoffgrenzkonzentrationen, die maximalen Explosi-onsdrücke, die KG-Werte und die Normspaltweiten. Für die Messungen sind zwei Modellgase eingesetzt worden, reines Methan und ein Modell-Erdgas mit Anteilen höherer Kohlenwasserstoffe. Sie repräsentie-ren die Bandbreite der in Deutschland eingesetzten Erdgase. Die Untersuchungen ergaben, dass bei einem Zusatz von bis zu 10 Mol-% Wasserstoff keine der untersuchten Kenngrößen relevant beeinflusst wird. Die Gemische haben nur geringfügig erweiterte Explosionsbereiche und bleiben, wie die reinen Erdgase, in der Explosionsgruppe IIA. Auch die maximalen Explosionsdrücke und die zeitlichen Druckanstiege bei den Gasexplosionen werden nur wenig beeinflusst. Vergleichende Berechnungen zur Festlegung von explosionsgefährdeten Bereichen (Ex-Zonen) auf Basis von Gasausbreitungsberechnungen ergaben ebenfalls nur geringfüge Unterschiede im Rahmen der Fehler-toleranz für Erdgas und Erdgas-Wasserstoff-Gemische mit bis zu 10 Mol-% Wasserstoff. Die Berechnun-gen sind in der BAM nach einem Freistrahlmodell von Schatzmann und mit dem häufig bei Gasnetzbetrei-bern eingesetzten e.BEx-Tool® durchgeführt worden. Der Einsatz von Gaswarngeräten, die für reines Erdgas geeignet sind, ist für Erdgas-Wasserstoff-Gemische mit bis zu 10 Mol-% Wasserstoff grundsätzlich möglich, erfordert aber eine gesonderte Sicher-heitsbewertung und ggf. eine Nachkalibrierung. N2 - Power-to-Gas technology is used to convert excess power from renewable energies to hydrogen by means of water electrolysis. This hydrogen can serve as "chemical energy storage" and be converted back to elec-tricity or be fed into the natural gas grid. BAM has studied the addition of hydrogen to natural gas in view of explosion protection and has determined safety characteristics for natural gas-hydrogen mixtures. BAM investigated the explosion limits, the limiting oxygen concentrations, the maximum explosion pres-sures, KG values and the MESG. Two model gases have been investigated, pure methane and a model gas with portions of higher hydrocarbons. They represent the range of natural gases which are used in Germa-ny. The investigations have shown that none of the examined characteristics is affected significantly by the addition of up to 10 mol% hydrogen. The explosion ranges are increased only slightly and the mixtures remain in explosion group IIA; as is pure natural gas. Also the maximum explosion pressure and the rates of pressure rise of gas explosions are almost unaffected. Comparative calculations – on the basis of gas dispersion calculations – to determine hazardous areas (explosion zones) for pure natural gas and natural gas-hydrogen mixtures with up to 10 mol% hydrogen, also revealed only minor differences within the margin of error of the calculation methods. The calcula-tions were executed at BAM according to the free jet model from Schatzmann and with the e.BEx-Tool®, often applied by gas grid operators. In principle, gas detectors that are suitable for natural gas can be used for natural gas-hydrogen mixtures with a maximum of 10 mol% hydrogen. However, this requires a separate safety assessment and, if nec-essary, a recalibration. KW - Power-to-Gas KW - Erneuerbare Energien KW - Energiespeicherung KW - Wasserstofftechnologie KW - Explosionsschutz KW - Erdgas-Wasserstoff-Gemische PY - 2016 UR - https://nbn-resolving.org/urn:nbn:de:kobv:b43-372977 SP - 1 EP - 36 PB - Bundesanstalt für Materialforschung und -prüfung (BAM) CY - Berlin AN - OPUS4-37297 LA - deu AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - RPRT A1 - Askar, Enis A1 - Grunewald, Thomas T1 - Entzündung von wasserstoffhaltigen Atmosphären durch mechanisch erzeugte Funken („HySpark“) N2 - Im Zuge der Energiewende finden Wasserstofftechnologien in der industriellen Praxis und im öffentlichen Raum immer mehr Anwendung. Beim Einsatz von Wasserstoff als Ersatz für andere fossile Energieträger wie Erdgas müssen u.a. Explosionsschutzmaßnahmen überprüft und angepasst werden. Eine Art von Explosionsschutzmaßnahmen ist die Vermeidung von Zündquellen. Gemäß den einschlägigen Regelwerken ist die Bildung von Funken oder heißen Aufschlagstellen beim mechanischen Schlag eine mögliche Zündquelle, die vor allem beim Wasserstoff berücksichtigt werden muss. Die Zündwirksamkeit ist dabei u.a. stark von der Werkstoffpaarung und der kinetischen Schlagenergie abhängig. Der Einsatz von funkenarmen Werkzeugen aus schwer oxidierbaren Nicht-Eisen-Metallen in explosionsgefährdeten Bereichen kann z.B. eine Maßnahme sein, um diese Zündquelle zu vermeiden und wird als solche in den Regelwerken benannt. Es gibt aber kaum Quellen, die dabei helfen die Zündwirksamkeit bei Schlägen mit heterogenen Materialpaarungen einzuschätzen. In dieser Arbeit wurde zu diesem Zweck die Zündwirksamkeit von mechanischen Schlägen mit unterschiedlichen, auch nicht-metallischen Schlagpartnern in wasserstoffhaltigen Atmosphären systematisch untersucht. KW - Explosionsschutz KW - Zündquelle KW - ATEX KW - Erdgas KW - Mechanischer Schlag PY - 2023 UR - https://nbn-resolving.org/urn:nbn:de:kobv:b43-579869 DO - https://doi.org/10.26272/opus4-57986 SP - 1 EP - 28 AN - OPUS4-57986 LA - deu AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - RPRT A1 - Brandes, E. A1 - Colson, B. A1 - Frost, K. A1 - Lüth, Peter A1 - Simon, K. A1 - Stolz, T. A1 - Uhlig, S. T1 - Evaluation of the interlaboratory test 2015 – 2016 on the method UN Test L.2 “Sustained combustibility test” / EN ISO 9038:2013 “Determination of sustained combustibility of liquids" N2 - The test methods UN Test L.2 / EN ISO 9038:2013 DIN EN 15188:2007 are applied to characterize the sustained combustibility of liquids i.e. the behaviour of a material under specified test conditions, whereby its vapour can be ignited by an ignition source and sufficient flammable vapour is produced to continue burning for at least 15 s after the source of ignition has been removed. The aims of this interlaboratory test (IT) are the verification and/or the improvement (if necessary) of the verification data (reference material) in Annex B of EN ISO 9038:2013, the assessment of influencing (disturbing) factors (laboratory specific factors, which possibly may have an influence on the test result) and the assessment of the performance of the participating laboratories. It could be demonstrated that the reference materials n-Dodecane, n-Decane and n-Undecane as mentioned in the standard are suitable and the verification shall continue to be valid. Sustained combustibility tests are influenced by several factors like the presence of a draught shield, the experience of the laboratory assistant, verification of the apparatus, calibration of the metering device. Based on the interlaboratory test, the gained experience and the actual results, well-founded measures / actions can be recommended to improve execution of the method. The IT was organized by PTB, BAM and QuoData GmbH in the framework of the co-operation project CEQAT-DGHS Centre for Quality Assurance for Testing of Dangerous Goods and Hazardous Substances. KW - Dangerous goods KW - Hazardous substances KW - Test method KW - Quality assurance KW - Interlaboratory comparison KW - Round robin test KW - Validation KW - Sustained combustibility KW - Reference material KW - Gefahrgut KW - Gefahrstoff KW - Prüfmethode KW - Qualitätssicherung KW - Ringversuch KW - Validierung KW - Selbstunterhaltende Verbrennung KW - Referenzmaterial PY - 2017 UR - https://nbn-resolving.org/urn:nbn:de:kobv:b43-410270 SN - 978-3-9818270-3-3 SP - 1 EP - 103 PB - Bundesanstalt für Materialforschung und -prüfung (BAM) CY - Berlin AN - OPUS4-41027 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - RPRT A1 - Ecker, K. H. A1 - Wätjen, U. A1 - Berger, Achim A1 - Grötzschel, R. A1 - Persson, L. A1 - Pritzkow, W. A1 - Radtke, Martin A1 - Riebe, Gundel A1 - Riesemeier, Heinrich A1 - Vogl, Jochen T1 - Certification of antimony implanted in silicon wafer with a silicon dioxide diffusion barrier - IRMM-302 and BAM-L001 N2 - This Report describes the certification of the reference material antimony implanted in Si/SiO2 intended to be used for calibration of surface and near surface analytical methods. It describes the preparation, homogeneity measurements and the analytical work performed for the certification of both Areal density of antimony Atoms (retained dose) and the isotope amount Ratio as well as giving considerations on the stability of the material. KW - Isotope ratio KW - Areal density KW - Surface analysis PY - 2002 UR - https://nbn-resolving.org/urn:nbn:de:kobv:b43-355752 SP - 1 EP - 40 PB - Institute for Reference Materials and Measurements CY - Geel, Belgium AN - OPUS4-35575 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - RPRT A1 - Kittner, Maria A1 - Altmann, Korinna A1 - Hamann, Sven A1 - Weyer, Rüdiger A1 - Kalbe, Ute T1 - Bewertung der Freisetzung von Mikroplastik aus Sportböden auf Kunststoffbasis - Abschlussbericht N2 - Die Europäische Kommission hat 2023 ein Verbot zum bewussten Austrag von Mikroplastik (MP) in die Umwelt beschlossen, das auch für die Verwendung von synthetischen Gummi-Granulaten (v. a. EPDM) in Sportböden gilt. In Deutschland gibt es laut DFB ca. 5100 Kunstrasenplätze. In der EU beläuft sich die Anzahl laut ECHA auf 13,000 Kunstrasen- und 47,000 Bolzplätze, Tendenz steigend. Das Hauptziel des Projektes war es daher, eine Massenbilanz für die Freisetzung von MP zu erstellen, um so eine Schätzung des MP-Austrags pro Kunstrasenplatz und Jahr zu ermöglichen. Dafür werden die MP-Emissionen von drei Kunstrasenszenarien in verschiedenen Zuständen (ungealtert, künstlich gealtert und in Echtzeit gealtert) verglichen: die Vergangenheit (Kunstrasen: fossilbasiert, EPDM-Füllung), die Gegenwart (der in Europa am häufigsten installierte Rasen) und die Zukunft (Rasen mit recycelten Grasfasern, keine synthetische Füllung sondern z.B. Quarzsand oder Korkschrott). Dazu werden fabrikneue Kunststoffrasen und EPDM-Granulat unter Laborbedingungen beschleunigt gealtert, um die Freiland-Beanspruchung eines Kunststoffrasens in circa 15 Jahren abzubilden. Die Verwendung spezieller Mikrofiltertiegel in Lysimeter-Experimenten ermöglicht die Abschätzung der Partikelgrößen des emittierten MP, was eine Grundbedingung für die Bewertung einer potenziellen Gesundheitsgefährdung für Menschen ist. Ergänzend wurden weitere umweltrelevante Schadstoffausträge aus den Kunststoffrasen quantifiziert. KW - Mikroplastik KW - Kunststoffrasen KW - Schadstoffe KW - Bewitterung KW - Lysimeter PY - 2025 UR - https://nbn-resolving.org/urn:nbn:de:kobv:b43-633114 DO - https://doi.org/10.26272/opus4-63311 N1 - Das Projekt wurde gefördert vom Bundesinstitut für Bau-, Stadt- und Raumforschung (BBSR) im Auftrag des Bundesministeriums für Wohnen, Stadtentwicklung und Bauwesen (BMWSB) aus Mitteln des Innovationsprogramms Zukunft Bau. Aktenzeichen: FKZ 10.08.18.7-22.02. Projektlaufzeit: 09.2022 bis 03.2025. SP - 1 EP - 75 PB - Bundesanstalt für Materialforschung und -prüfung (BAM) CY - Berlin AN - OPUS4-63311 LA - deu AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER -