Filtern
Dokumenttyp
Schlagworte
- Dünger (1)
- Großtechnik (1)
- Instrumentation (1)
- Nanoscale dynamics (1)
- Neutron scattering (1)
- Neutron spectroscopy (1)
- Phosphor (1)
- Recycling (1)
- Thermochemisch (1)
- Time-of-flight neutron spectroscopy (1)
Organisationseinheit der BAM
The neutron time-of-flight spectrometer NEAT has a long history of successful applications and is best suited to probe dynamic phenomena directly in the large time domain 10(-14) - 10(-10) s and on the length scale ranging from 0.05 to up to about 5 nm. To address user community needs for more powerful instrumental capabilities, a concept of the full upgrade of NEAT has been proposed. The upgrade started in 2010 after a rigorous internal and external selection process and resulted in 300-fold neutron count rate increase compared to NEAT01995. Combined with new instrumental and sample environmental capabilities the upgrade allows NEAT to maintain itself at the best world class level and provide an outstanding experimental tool for a broad range of scientific applications. The advanced features of the new instrument include an integrated guide-chopper system that delivers neutrons with flexible beam properties: either highly homogeneous beam with low divergence suitable for single crystals studies or "hot-spot" neutron distribution serving best small samples. Substantial increase of the detector angle coverage is achieved by using 416 He-3 position sensitive detectors. Placed at 3m from the sample, the detectors cover 20m(2) area and are equipped with modern electronics and DAQ using event recording techniques. The installation of hardware has been completed in June 2016 and on January 23, 2017 NEAT has welcomed its first regular users who took advantage of the high counting rate, broad available range of incoming neutron wavelengths and high flexibility of NEAT. Here we present details of NEAT upgrade, measured instrument characteristics and show first experimental results.
Success-Story CaNaPO4: Erfolgreiche REACH Registrierung und Inbetriebnahme großtechnischer Anlagen
(2025)
The Sewage Sludge Ordinance (AbfKlärV), which was amended in 2017, obligate the recovery of phosphorus from sewage sludge and sewage sludge ash from 2029 and 2032, respectively. Thermal disposal of sewage sludge has established itself as the preferred method of disposal, and the capacities of mono-incineration plants are being continuously expanded. Plants for phosphorus recovery, on the other hand, are currently still mainly in the construction, piloting, or commissioning phase. It is estimated that the plant capacities for P recovery planned today will not even be able to cover a quarter of the volume of these ashes in 2029. Therefore, temporary storage of the remaining ashes is currently being discussed to retrieve it later and process it in the P recovery plants, which will then be sufficiently available. It is currently unclear how such interim or long-term storage (> 1 year) should be organized. In addition to legal (fee) issues, the assessment of the technical feasibility of retrievability and the phosphorus recovery potential of landfilled ash remains open.
The Institute of Environmental Engineering (ISA) at RWTH Aachen University and the Federal Institute for Materials Research and Testing (BAM) are jointly investigating five deposited ashes that have been dug out and were provided by three landfill operators. The investigations focus on the physical and chemical characterization of these landfilled ashes and its P recovery potential during treatment in thermochemical and wet chemical processes. These results are evaluated in comparison with “fresh,” i.e., non-landfilled sewage sludge ash samples of comparable origin in order to determine the influence of storage.