Sanitär- und Kommunaltechnik; Umwelttechnik
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- Bottom ash (1)
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- Differential gene expression analysis (1)
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Organisationseinheit der BAM
Einstufung von Aschen und Schlacken aus der Abfallverbrennung im Hinblick auf die weitere Verwertung
(2024)
There are two mirror entries in the European Waste Catalogue for bottom ash and slag from waste incineration: 19 01 11* and 19 01 12. Entry 19 01 11* describes a waste material containing hazardous substances. It was shown that only the hazardous property HP14 (ecotoxic) is of relevance for the classification. If substances with the hazard statement code (HSC) H400, H410, H411, H412 and H413 are present in incineration bottom ash (IBA) above certain level the waste is classified as hazardous, otherwise it is non-hazardous (in this case 19 01 12). It was further shown that only Cu, Zn and Pb compounds have an impact on the classification using a summation rule: 100xΣ c(H410) + 10xΣ c(H411) + Σ c(H412). Limit value is 25 percent. It is obvious that H410 substances have the highest impact. Therefore, the knowledge of the elemental composition of IBA is not sufficient because the content of distinct chemical compounds (with the respective molecular weight) is needed. When the exact speciation is not known a worst-case approach has to be applied. A practical guideline for the estimation of HP14 was developed based on the definition of 4 substance groups: 1. Metals and alloys, 2. Water-soluble substances, 3. Oxides and carbonates and 4. Substances not soluble in weak acids. In substance group 1 only fine Zn powder has the HSC H410. Water-soluble substances are assumed to be H410 substances. Their concentrations are, however, regularly below the cut-off value of 0.1 %. The amount of substance group 3 is estimated by a selective extraction with maleic acid. According to the worst-case approach it is assumed that CuCO3xCu(OH)2 and ZnO represent the respective Cu and Zn species in IBA because these substances have the highest stochiometric factor. Even with this worst-case approach results from operators of IBA treatment plant showed that the limit value of 25 % is not exceeded.
The requirements for utilization of IBA in Germany are defined in the Secondary
Building Materials Decree (Ersatzbaustoffverordnung EBV) which was set into force in August 2023. Leaching methods (batch test or column test) with a liquid-to-solid ratio of 2 l/kg are applied. IBA fulfills the requirements for class HMVA-2. Actually, even a classification of IBA as hazardous (i.e 19 01 11*) would not affect utilization but handling and transport.
The main obstacle to bottom ash (BA) being used as a recycling aggregate is the content of salts and potential toxic elements (PTEs), concentrated in a layer that coats BA particles. This work presents a dry treatment for the removal of salts and PTEs from BA particles. Two pilotscale abrasion units (with/without the removal of the fine particles) were fed with different BA samples. The performance of the abrasion tests was assessed through the analyses of particle size and moisture, and that of the column leaching tests at solid-to-liquid ratios between 0.3 and 4. The results were: the particle-size distribution of the treated materials was homogeneous (25 wt % had dimensions <6.3 mm) and their moisture halved, as well as the electrical conductivity of the leachates. A significant decrease was observed in the leachates of the treated BA for sulphates (44%),
chlorides (26%), and PTEs (53% Cr, 60% Cu and 8% Mo). The statistical analysis revealed good correlations between chloride and sulphate concentrations in the leachates with Ba, Cu, Mo, and Sr, illustrating the consistent behavior of the major and minor components of the layer surrounding BA particles. In conclusion, the tested process could be considered as promising for the improvement of BA valorization.
With the advent of widely accessible and cost-effective next-generation sequencing technologies, it has become increasingly feasible to study insect immunity on a deep genomic or transcriptomic level. Here we introduce a protocol that is aimed at exploiting transcriptomic data to study immunity in non-model insect organisms. We provide instructions for an entire workflow, starting with successfiil extraction of insect RNA through to bioinformatic guidelines for the effective analysis of mRNA sequencing data. The RNA extraction procedure is based on TRIzol Reagent and a spin-column clean-up Step. The bioinformatic pipeline is intended to help users identify immune genes from de novo transcriptome data and includes guidelines for conducting differential gene expression analyses on transcriptomic data. The immune gene prediction method is based on inferring protein homologs with HMMERand Blastp and talces Advantage ofthe ImmunoDB database, which is a valuable resource for research on insect immune-related genes and gene families. The differential gene expression analysis procedure utilizes the DESeq2 package as implemented in R. We hope this protocol will serve as a usefi.il resource for researchers aiming to study immunity in non-model insect species.
Hydrothermale Herstellung von Filter- und Speichermaterialien aus SiO2- und CaO-reichen Reststoffen
(2019)
Aus SiO2- und CaO-reichen Sekundärrohstoffen können in einem hydrothermalen Stoffumwandlungsprozess poröse Körnungen (Hydrothermalgranulate HTG) hergestellt werden. Die Erhärtung der HTG erfolgt dabei in einem Autoklav bei ca. 200 °C und 1,6 MPa Sattdampf ähnlich dem Prozess der Kalksandsteinherstellung. Festigkeit und Gefüge der HTG entwickeln sich durch die Ausbildung von Calciumsilicathydraten (CSH-Phasen), die durch die Reaktion zwischen Quarzpartikeln (SiO2) und Kalk (CaO) entstehen. SiO2-Lieferant ist ziegelhaltiger Mauerwerkbruch, der als Hauptmineralphase Quarz enthält. Papierasche kann mit ihren Anteilen an Freikalk und anderen reaktive Calciumverbindungen als Kalkersatz dienen. Über die Mischungszusammensetzung und die Reaktionsbedingungen werden die Eigenschaften der Reaktionsprodukte gezielt gesteuert. Die HTG haben Rohdichten kleiner als 2000 kg/m³. Ihr Gefüge ist durch ein eher ungeordnetes System an Mesoporen und kleinen Makroporen mit Porenweiten kleiner 100 nm gekennzeichnet. Diese Porenstruktureigenschaften legen eine Anwendung der HTG als Filter- oder Speichermaterial nahe. Sie können natürliche Rohstoffe, wie Bims, Lavasand und fluviale Sande, aus Primärrohstoffen hergestellte Produkte, wie Blähton, Keramik und Aktivkohle, sowie erdölbasierte Kunststoffadditive ersetzen, wobei die typischen Filter- und Speichereigenschaften der herkömmlichen Produkte nahezu erreicht werden. Dadurch wird einerseits für Reststoffe, die gegenwärtig ein hohes Verwertungsdefizit aufweisen, eine hochwertige Wieder- bzw. Weiterverwertungsmöglichkeit geschaffen und die Abfallmenge vermindert. Andererseits erfolgt eine Schonung von knapper werdenden natürlichen mineralischen Rohstoffen und Erdöl. In einem Forschungsprojekt werden derzeit die technischen Möglichkeiten der hydrothermalen Herstellung von leichten porösen Körnungen aus Mauerwerkbruch, Kalk und Papierasche sowie die Anwendung der HTG als Filtermaterial in Bodenfiltern zur Abwasserreinigung und als Wasserreservoir in Substraten von Pflanzwänden und zur inneren Nachbehandlung hochfester Betone systematisch untersucht. Der Beitrag berichtet insbesondere über die experimentelle Entwicklung der hydrothermalen Synthesestrategie, die nachfolgende Charakterisierung der HTG und die Beziehungen zwischen Gefügekennwerten und technischen Eigenschaften der Körnungen.
Das Projektziel bestand in der Entwicklung eines Verfahrens zur Herstellung von leichter Gesteinskörnung für Beton und Mörtel aus ziegelhaltigen Bau- und Abbruchabfällen durch thermische Porosierung. Hierzu erfolgte nach einem mehrstufigen mechanischen Prozess eine thermische Stabilisierung der RC-Granulate (RCG). Nach Laborversuchen wurden RCG im halbtechnischen Maßstab hergestellt. Als Ausgangsmaterial dienten Mauerwerkbruch bzw. Gemische aus Mauerwerkbruch und Ton. Dabei wurde die gesamte Prozesskette vom Granulieren der Ausgangsmehle bis zur thermischen Behandlung im Drehrohrofen in einem Produktionsschritt dargestellt. Die erzeugten RCG sind mit Rohdichten zwischen 780 und 1800 kg/m³ leichte Gesteinskörnungen. In den Applikationsuntersuchungen erfolgte eine vollständige Verwertung des gesamten beim Brennprozess entstehenden Materials, von den Körnungen kleiner 2 mm für leichte Steinergänzungsmörtel (Leichtmörtel) bis zu den Körnungen 2-8 mm für Leichtbeton. Die RCG und die damit erzeugten Betone wurden umfangreich charakterisiert. Die Leichtbetone mit RCG wurden abschließend in Applikationsversuchen eingesetzt.
In 2011, the Association of German Engineers (VDI) started working on a set of guidelines
towards increased resource efficiency. These guidelines represent a framework that defines resource efficiency and outlines considerations for the producing industry. A special guideline for SMEs is included as well as guidelines on methodologies for evaluating resource use
indicators, such as the cumulative raw material demand of products and production systems.
Resource efficiency, defined here as the relationship between a specific benefit or use and the natural resources that need to be spent or consumed to attain this benefit or use. It can be
evaluated by defining a function which expresses the specific benefit and quantifies the resource requirements through a set of indicators (use of raw materials, energy, water, land
and ecosystem services including sinks). The results from this also depend on the system boundary parameters and the allocation rules for by-products and waste treatment options. Optimising resource use is possible at all stages of a product’s or production system’s life cycle chain (raw material extraction, production and manufacturing, use and consumption, and the
end-of-life stage).
VDI guidelines are widely accepted across Germany’s industrial sector and therefore represent an important means of mainstreaming resource efficiency in this target area. As well as providing a methodological framework, the guidelines describe strategies and measures towards increasing resource efficiency, and they enable industrial producers and service providers to identify potential areas of improvement. The full article presents an overview of
the methodology and contents of these guidelines and discusses their impact in achieving absolute reductions in the industrial use of natural resources.
A biological impact on weathering was recognized already at the beginning of the twentieth century, when biochemical influence of the lichen growth on rocks was convincingly demonstrated. Later it was shown that the
progress of solid rock weathering initiated by biological colonization was affected by the initial porosity system and sensitivity of mineral association. In the meantime
a considerable amount of diverse scientific data confirm the importance of biological rock colonizers (lichens and free-living rock biofilms) in mineral material dynamics as they occur at the atmosphere-exposed rock surfaces on local as well as global scale. Subaerial rock biofilms—microbial ecosystem including free-living heterotrophic and phototrophic settlers of bare rock surfaces—are characteristic for the first stage of primary succession of terrestrial ecosystems on mineral substrates.
These cultivable and free-living communities are dominated by fungi and set the stage for the later development of a lichen cover, but in comparison to lichens also represent a new tool for laboratory experimentation and thus open a new stage of work in geomicrobiology. The Minerals sensitivity to microbially induced biological weathering can be demonstrated by studies of natural samples as well as by the laboratory mesocosm experiments.
Reactive geomembranes and geotextiles are an innovative approach to control the migration of contaminants in geotechnical applications. Within a joint research project in cooperation with a medium-sized enterprise, the preparation and characterization of “reactive” geomembranes and geotextiles modified by the addition of zero-valent metal nanoparticles was performed. Zero-valent iron (ZVI) nanoparticles were added to polyethylene or to the fillings of geo-containers or geosynthetic clay liners. These geosynthetic products consist of mixtures of sand with clay or bentonite, typically embedded in geotextile nonwovens or geomats. The permeability of these geo-containers can be adjusted by the ratio of clay or bentonite to sand. ZVI nanoparticles were also added as reactive material to geomembranes made of polyethylene with additives like the antioxidant Irganox 1010 or glycerin. These additives prohibit oxidation of the nanoparticle and act as hydrogen donor in the dechlorination of chlorinated hydrocarbons. Contaminates such as chlorinated hydrocarbons and toxic heavy metal compounds are either decomposed or converted to less toxic species (e.g. Cr-(VI) reduction to Cr-(III)). The paper reports the first experimental results from manufacturing of the reactive geomembrane model materials and characterization of the products with microscopic techniques. First breakthrough measurements of the ZVI modified geomembrane compared to a reference sample are presented.