TY - CONF A1 - Vogel, Christian T1 - PFAS analysis by fluorine K-edge XANES spectroscopy and thermal and mechanochemical treatment N2 - Per- and polyfluoroalkyl substances (PFAS) are a large group of more than 12,000 organofluorine surfactants. As a result of continuous and prolific use, mainly in aviation firefighting foams, thousands of industrial and military installations have been found to contain contaminated soil, groundwater and surface water. . Current decontamination strategies of PFAS-burdened soils mainly consist of adsorption methods using adsorbents for fixation of PFAS in the ground. A second option is the utilization of a “pump and treat” process, cycling polluted soils through a washing plant leading to the concentration of the pollutants in the fine fraction. Both approaches are cost-intensive and not intended for the direct decomposition of all PFAS contaminants. Furthermore, the contaminated adsorbants have to be safely thermal treated for recovery. Hence, there is a great demand for innovative developments, dealing with new strategies of tackling the PFAS problem. Previously, mechanochemical treatment of polychlorinated organic compounds in soils showed an efficient dechlorination. Thus, we investigated mechanochemical treatment of PFAS contaminated soils with various additives in a ball mill. T2 - SEMICON CY - Tokyo, Japan DA - 12.12.2024 KW - Mechanochemical treatment KW - Per- and Polyfluoroalkyl substances (PFAS) KW - XANES spectroscopy KW - Thermal treatment PY - 2024 AN - OPUS4-62183 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Trappe, Volker T1 - Advanced lightweight applications – recycling versus reliability and fossil energy footprint N2 - Advanced light weight applications like aircrafts and wind turbine blades are made of fibre reinforced plastics (FRP) with continuous fibre reinforcement and must withstand a high thermo-mechanical cyclic loading. The quality of the fibre matrix interface has a high impact on the fatigue life and was continuously improved over the years since the 50th. The fatigue life of glass fibre reinforced plastics (GFRP) used in aircraft industry is 10 to 100 times higher compared to glass fibre non crimp fabrics used for wind turbine blades. To assure a constant and reliable high quality and strength of reinforcement fibres, synthetic fibre production is state of the art (CF, GF). There is a need for recycling GFRP and CFRP waste due to the upcoming use. Pyrolysis and solvolysis are more expensive than the mechanical route however enable a more sustainable recycling. Natural fibres and recycled synthetic fibres have a high scatter in quality and strength. Hence it is a challenge to optimize the production / recycling processes to get a reliable quality for any demanding (second life) application. Chemical routes for using renewables resources and recycling, is going to be a good approach especially for polymer-matrix systems to get 100% quality (back) compared to the state of the art. Finally, a proper design, life-time extension and repair is preferable to recycling to keep the carbon footprint as low as possible. T2 - 27. INTERNATIONALES DRESDNER LEICHTBAUSYMPOSIUM CY - Dresden, Germany DA - 13.06.2024 KW - Polymer Matrix Composites KW - Carbon Fibre KW - Recycling KW - Circular Economy PY - 2024 UR - https://leichtbausymposium.de/deu/ AN - OPUS4-60683 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Stawski, Tomasz T1 - Solution-driven processing of calcium sulfate: the mechanism of the reversible transformation of gypsum to bassanite in brines N2 - Calcium sulfate hemihydrate (CaSO4ᐧ0.5H2O), also known as bassanite, has been used as a precursor to produce gypsum (dihydrate, CaSO4ᐧ2H2O) for various construction and decorative purposes since prehistoric times. The main route to obtain hemihydrate is a thermal treatment of gypsum at temperatures typically between 150 °C and 200 °C to remove some of the structural water. In this contribution, we introduce (Fig. 1) a more efficient and sustainable method (T < 100 °C) that enables the direct, rapid, and reversibly conversion of gypsum to bassanite using reusable high salinity aqueous solutions (brines with c[NaCl] > 4 M). The optimum conditions for the efficientproduction of bassanite in a short time (< 5 min) involve the use of brines with c(NaCl) > 4 M and maintaining a temperature, T > 80 °C. When the solution containing bassanite crystals is cooled down to around room temperature, eventually gypsum is formed. When the temperature is raised again to T > 80 °C, bassanite is rapidly re-precipitated. This contrasts with the typical behaviour of the bassanite phase in low salt environments. Traditionally, hemihydrate is obtained through a solid state thermal treatment because bassanite is considered to be metastable with respect to gypsum and anhydrite in aqueous solutions, and therefore gypsum-to-bassanite conversion should not occur in water. Its very occurrence actually contradicts numerical thermodynamic predictions regarding solubility of calcium sulfate phases. By following the evolution of crystalline phases with in situ and time-resolved X-ray diffraction/scattering and Raman spectroscopy, we demonstrated that the phase stability in brines at elevated temperatures is inaccurately represented in the thermodynamic databases. Most notably for c(NaCl) > 4 M, and T > 80 °C gypsum becomes readily more soluble than bassanite, which induces the direct precipitation of the latter from gypsum. The fact that these transformations are controlled by the solution provides extensive opportunities for precise manipulation of crystal formation. Our experiments confirmed that bassanite remained the sole crystalline structure for many hours before reverting into gypsum. This property is extremely advantageous for practical processing and efficient crystal extraction in industrial scenarios. T2 - Granada Münster Discussion Meeting GMDM 10 CY - Münster, Germany DA - 29.11.2023 KW - Gypsum KW - Bassanite KW - Calcium sulfate KW - Recycling KW - Scattering PY - 2024 AN - OPUS4-59162 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Schneider, Joachim T1 - Production of raw materials for the cement industry based on steel making slags from future hydrogen based steel production routes N2 - Increasing amounts of new types of EAFS from the DRP-EAF-route and still significant amounts of BOFS from the DRP-SAF-BOF-route will be produced while BFS will vanish. In two BMBF funded research projects, BAM and FEhS examine the application of slags from future steel production in the cement industry. The project “SlagCEM” investigated the recovery of iron from BOFS while producing a mineral product with good cementitious properties. The reduction of BOFS to recover metallic iron along with the generation of a clinker-like material for the cement industry increases the viscosity of the BOFS. This would require a process at unfeasibly high temperatures of >1.700 °C. Therefore, SlagCEM aimed to modify the BOFS to reduce the viscosity to suitable ranges at lower temperatures of ~1.600 °C. A demonstration trial (20 tons) was carried out and the potential for substitution of OPC was determined. DRI-EOS investigates the utilization of increasing amounts of DRI-based EAFS in the cement industry to compensate the reduced production of GBFS. This requires an adjustment of the slag’s chemical composition and a rapid quenching to create an amorphous structure with latent hydraulic characteristics. The project studies the behavior of the modified slag during the metallurgical process and during solidification, any possibly negative impact on the cementitious or environmental properties as well as the potential to recover metals such as Fe, Cr, Mo and V. The final results of the project “SlagCEM”, finished in 2024, as well as the current state and insights of the project “DRI-EOS”, started in July 2022, shall be presented in this talk. T2 - Euroslag 2024 CY - Bilbao, Spain DA - 23.10.2024 KW - Slag KW - Steel KW - Cement KW - Electric Arc Furnace (EAF) KW - Basic Oxygen Furnace (BOF) PY - 2024 AN - OPUS4-61839 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Ronen, A. A1 - Panglisch, S. T1 - Detection, Quantification and Treatment of Per and Polyfluoroalkyl substances (PFAS) in Groundwater N2 - The research project focuses on tackling the detection, measurement, and elimination of per- and polyfluoroalkyl substances (PFAS) from polluted groundwater, with a particular emphasis on addressing short (C4-C7) and ultrashort (C1-C3) chain PFAS. Given the widespread use of PFAS in various products, they are commonly found in groundwater near industrial and military sites in Germany and Israel. Moreover, recent regulations limiting the use of long chain PFAS have led industries to shift towards shorter chain alternatives. Hence, our efforts are geared towards refining detection, quantification, and removal methods for short and ultrashort chain PFAS. In terms of detection, ww are developing passive sampling devices capable of collecting and tracking the temporal distribution of PFAS species in groundwater. This will enable us to analyze contaminations in German and Israeli groundwater using cutting-edge analytical techniques. Additionally, contaminated groundwater will undergo a two-stage treatment process aimed at concentrating the relatively low PFAS concentrations using innovative membrane technologies such as closed-circuit reverse osmosis and mixed matrix composite nanofiltration membrane adsorbers. Subsequently, the streams containing higher PFAS concentrations will be treated through coagulation, with the remaining PFAS being adsorbed onto carbonaceous nanomaterials. The outcome of this research will include the creation of advanced tools for detecting, measuring, and eliminating PFAS from polluted groundwater, while also enhancing our understanding of the scope of these contaminations. T2 - German Israeli Water Technology Status Seminar CY - Koblenz, Germany DA - 18.06.2024 KW - Ground water KW - Per- and Polyfluoroalkyl substances (PFAS) KW - Remediation PY - 2024 AN - OPUS4-60328 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Loose, Florian T1 - Carbon Fibers as Secondary Resource - Safety during application in pyrometallurgy N2 - Transformation technologies rely on lightweight construction based on carbon fibers (CF). Therefore, carbon fiber-reinforced plastics (CFRP) make an important contribution to climate protection and resource efficiency. Nevertheless, the waste stream of approximately 62 kt/a poses a major challenge. Because the energy intensive production of CF is predominantly based on fossil raw materials, sustainable recycling solutions are pushed forward. The currently predominating role mechanical recycling loses attractiveness and the market share of processes recovering the high value fibers by pyrolysis or solvolysis raise in importance. Nevertheless, fibers that are to short to continue circulating, analogous to paper fibers, demand for a safe treatment. Because energetic is not feasible due to an incomplete conversion in conventional waste treatment facilities. To circumvent the chemical limitations of the conversion, new reaction pathways need to be opened. Therefore, the CF Pyro project investigates the application of CF containing waste streams as a secondary raw material in pyrometallurgy, replacing fossil coal. It places particular emphasis on the reactivity of CF, process stability and the avoidance of emissions of harmful WHO fibers. Finally, a technology assessment based on the experimental results and developed in dialog with experts from industry, science and politics is presented. T2 - Workshop on releases of critical fibres CY - Dortmund, Germany DA - 13.09.2024 KW - Cabon Fibers KW - Recycling KW - Waste Treatment KW - Secondary Resource KW - Pyrometallurgy PY - 2024 AN - OPUS4-61278 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Kittner, Maria T1 - Development of a new Lysimeter System to assess Microplastic, PAH & Heavy Metal Emissions from Artificial Turf Sports Pitches N2 - Since September 2023, the European Commission introduced a new regulation to reduce emissions of microplastics (MP) into the environment, including the sale and use of intentionally added MP. Therein, the use of synthetic rubber granules in artificial turf is explicitly mentioned and banned for future use. Additionally, abrasions of grass fibres and other turf components are also considered as MP sources. Artificial turf pitches are multi component systems: e. g. grass fibres made of polyethylene (PE), synthetic infill made of ethylene propylene diene monomer rubber (EPDM), carpet backing of polypropylene (PP) glued with polyurethane (PU), winding yarn of polyethylene terephthalate or elastic layer of Styrene-butadiene rubber (SBR) bound with PU. While the ban has great impact on recreational sports, there is so far no sufficient data to estimate the MP emissions from artificial turf sports pitches into the environment and thus their relevance as a source of MP pollution. To close this gap, three artificial turf scenarios in different ageing states (unaged, artificially aged and aged in real time) were analysed in this study: the past (old turf: fossil based, synthetic infill), present (most commonly installed in Germany: fossil based, synthetic infill) and future (turf with recycled grass fibres, no synthetic infill). To simulate outdoor weathering during the service life of approx. 15 years, accelerated ageing by UV weathering and mechanical stress was carried out. The newly developed and in-house manufactured Microplastic Eluate Lysimeter (MEL) simulates contaminant transfer into the groundwater and allows the simultaneous sampling for MP and dissolved contaminants, like polycyclic aromatic hydrocarbons (PAH) or heavy metals (HM). MP mass contents were analysed using smart microfilter crucibles (mesh size: 5 µm) and Thermal Extraction Desorption Gas Chromatography/Mass Spectrometry and PAH and HM concentrations were determined using Gas Chromatography/Mass Spectrometry or Inductively Coupled Plasma Atomic Emission Spectroscopy, respectively. T2 - MICRO2024: Plastic Pollution from Micro to Nano CY - Arrecife, Spain DA - 23.09.2024 KW - Microplastics Eluate Lysimeter KW - Microplastics KW - Heavy Metals KW - PAH KW - TED-GC/MS PY - 2024 AN - OPUS4-61160 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Kittner, Maria T1 - Contaminant Emissions from Artificial Turf Sports Pitches - Simultaneous sampling for Microplastics, PAH and Heavy Metals N2 - In September 2023, the European Commission introduced a new regulation to reduce microplastic (MP) emissions into the environment, including the sale and use of intentionally added (large) MP < 5 mm (ISO/TR 21960: 2020). This explicitly applies to the use of synthetic rubber granulate infill in artificial turf installations, which are complex multi-component systems consisting of multiple synthetic polymers (Fig. 1). In addition, abrasions of synthetic grass fibres and other turf components are also considered as MP sources. Although this has a major impact on public recreational sports, there is so far no sufficient data to estimate the MP emissions from artificial turf sports pitches into the environment and thus their relevance as a source of MP pollution. To close this gap, this study compared environmental contaminant emissions of three artificial turf scenarios at different ageing states (unaged, artificially and real-time aged): the past (old turf: fossil based, synthetic infill), present (most commonly installed in Germany: fossil based, EPDM infill) and future (turf with recycled grass fibres, no synthetic infill). Accelerated ageing by UV weathering and mechanical stress was carried out to simulate the outdoor weathering during the lifespan of approx. 15 years. MP emissions and released environmentally relevant contaminants posing a risk to the groundwater were simultaneously sampled using the newly developed Microplastic Eluate Lysimeter manufactured at BAM (Fig. 2). MP contents were analysed using smart microfilter crucibles (mesh size: 5 μm) with subsequent MP detection by TED-GC/MS. Additionally, concentrations of polycyclic aromatic hydrocarbons were determined using GC/MS and heavy metals using ICP-AES. T2 - 22nd European Symposium on Polymer Spectroscopy (ESOPS) CY - Berlin, Germany DA - 08.09.2024 KW - Microplastics Eluate Lysimeter KW - Microplastics KW - TED-GC/MS KW - Heavy Metals KW - PAH PY - 2024 AN - OPUS4-61013 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Kalbe, Ute T1 - Utilization of recycling materials in Germany - Regulations, assessment framework and leaching tools N2 - Der Vortrag wurde im Rahmen des 9th Geoenvironmental Assessment Seminars gehalten der auf Leaching- und Adsorptionstests fokussiert war. Der Vortrag enthielt einen Überblick über die Standardisierung von Leachingverfahren in DIN, CEN und ISO. Die Vorgehensweise der Bewertung des Schadstofftransfers bei der Wiederverwertung von Bodenmaterialien und der Verwertung mineralischer Ersatzbaustoffe in Deutschland wurde hinsichtlich der neuen rechtlichen Rahmenbedingungen dargestellt. Spezielle Herausforderungen bei der Untersuchung von PFAS mit Elutionsverfahren wurden aufgezeigt. T2 - 9th Geoenvironmental Assessment Seminar AIST (National Institute of Advanced Industrial Science and Technology) CY - Tsukuba, Japan DA - 25.03.2024 KW - Recycling of mineral waste KW - Contaminant transfer KW - Leaching KW - Assessment KW - Legislation KW - PFAS PY - 2024 AN - OPUS4-62057 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER -