Filtern
Erscheinungsjahr
Dokumenttyp
- Vortrag (75)
- Beitrag zu einem Tagungsband (46)
- Zeitschriftenartikel (18)
- Beitrag zu einem Sammelband (12)
- Posterpräsentation (7)
- Buchkapitel (5)
- Forschungsbericht (4)
- Sonstiges (3)
Referierte Publikation
- nein (170) (entfernen)
Schlagworte
- Phosphor (18)
- Klärschlamm (17)
- Recycling (16)
- Klärschlammasche (14)
- Phosphorus recovery (13)
- Phosphorrückgewinnung (11)
- Sewage sludge (9)
- Sewage sludge ash (8)
- Thermochemical treatment (8)
- Bauschuttaufbereitung (7)
Organisationseinheit der BAM
- 4 Material und Umwelt (55)
- 4.4 Thermochemische Reststoffbehandlung und Wertstoffrückgewinnung (55)
- 7 Bauwerkssicherheit (3)
- 7.1 Baustoffe (2)
- 1 Analytische Chemie; Referenzmaterialien (1)
- 1.4 Prozessanalytik (1)
- 4.2 Material-Mikrobiom Wechselwirkungen (1)
- 4.3 Schadstofftransfer und Umwelttechnologien (1)
- 7.4 Baustofftechnologie (1)
There is a growing concern of the direct use of contaminated sewage sludge in agriculture due possible environmental and health hazards. Thus, incineration of the sludge and thus increasing amounts of sewage sludge ashes (SSA) are to be expected in the future. SSA contains considerable amounts of phosphorus (P) and technology metals that might be recovered as secondary raw materials. Since the EU for instance depends completely on the import of rock phosphate needed for fertilizer production, alternative sources for P are in order. Furthermore, rock phosphate is often contaminated with heavy metals like Cd and U, leading to health and environmental hazards. P recovered from SSA might diminish these problems. To determine the possible recovery potential of P and technology metals from SSA, we conducted a survey of German mono incineration facilities and analyzed the respective SSA for their elemental composition. More than 95% of the emerging SSA was monitored. Results indicate a P recovery potential of 18,000 t/a (up to 13% of the annual P demands for fertilizer production). The concentrations of Cd and U in SSA are one to two Orders of magnitude lower than in rock phosphate and could help to reduce possible hazards.
Recovery of rare earth elements - optimized elemental analysis of fluorescent lamp shredder waste
(2016)
Rare earth elements (REE) are a crucial component of fluorescence lamps. Several procedures have been developed to recovery these technological important elements. Nevertheless, actual REE recycling from fluorescence lamps is scarce so far (recovery rate of less than 1 %), with current recycling approaches concentrating on glass recovery. Since most recycling processes include several, also wet-chemical steps, a complete knowledge of the actual elemental composition of the respective mass flows is necessary for an efficient REE recovery. We tested seven different reagent mixtures for microwave-assisted digestion of fluorescent lamp shredder, including HF, HClO4, and H2O2. We determined the concentrations of 25 of the most relevant rare earth and other trace elements in the respective dilutions. Two independent digestions, one a mixture of perchlorid/nitric/hydrofluoric acid and the other aqua regia, showed the highest concentrations of 23 of these elements, excluding only Sn and Tb. The REE concentrations in the tested lamp shredder sample (stated in g/kg) were 10.2 (Y), 12.1 (La), 7.77 (Ce), 6.91 (Eu), 1.90 (Gd), and 4.11 (Tb).
Die europäische Kommission (Generaldirektion Unternehmen und Industrie) hat kürzlich die Auswirkungen einer harmonisierten europäischen Düngemittelverordnung, einschließlich der technischen Durchführbarkeit und den umweltbezogenen, wirtschaftlichen und sozialen Auswirkungen einer solchen Gesetzgebung untersuchen lassen. Basierend auf diesen Ergebnissen soll nun die EU-Düngemittelverordnung (EG) 2003/2003 revidiert werden. Neben der Vielzahl von bestehenden und neuen Düngemitteltypen wie z.B. Phosphor-Recyclingdüngern soll die neue Verordnung auch organische Düngemittel und somit Matrices wie Klärschlamm, Gärrückstände und Wirtschaftsdünger regeln. Dies bedeutet, dass Parameter und Grenzwerte, die bisher in verschiedenen Verordnungen für verschiedene Matrices geregelt wurden, künftig gemeinschaftlich geregelt werden (Klärschlamm, Düngemittel) und weitere Matrices zusätzlich geregelt werden müssen (Phosphor-Recycling-Produkte, Produkte aus Klärschlamm/-aschen).
Resultierend aus den aktuellen nationalen Entwicklungen insbesondere bezüglich des Ausstiegs aus der landwirtschaftlichen Klärschlammverwertung und im Hinblick auf die Bestrebungen hinsichtlich der Schonung natürlicher Ressourcen (z.B. ProgRess) ist zu erwarten, dass die Anzahl an Düngemitteln, die aus Recyclingmaterialien gewonnen werden, stark zunehmen wird. Recyclingdünger aus dem Stoffstrom Klärschlamm- bzw. Klärschlammasche werden zukünftig einen großen Anteil an diesen neuen Produkten ausmachen.
Vor den angeführten Hintergründen ist es notwendig relevante und insbesondere bereits genormte Verfahren hinsichtlich ihrer Anwendbarkeit auf z.B. Klärschlamm/-aschen und daraus gewonnenen Recycling-Düngern sowie auf kommerzielle P-Düngemittel zu prüfen.
Vor diesem Hintergrund wurde die BAM (FB 4.4) vom UBA mit einer Untersuchung beauftragt:
UFOPLAN FKZ: 3714263200
„Untersuchung der Anwendbarkeit der im Rahmen des CEN-Projekts HORIZONTAL entwickelten Analyseverfahren auf Düngemittel und Klärschlamm/ -aschen“
Laufzeit: 01.07.2014 – 31.01.2017
Die Reduktion von Metalloxiden zum Metall in einer schmelzflüssigen mineralischen Matrix stellt die Grundlage vieler metallurgischer Verfahren dar.
Eine Prozessoptimierung und -kontrolle setzt allerdings die genaue Kenntnis der chemischen Zusammensetzung der Schmelze voraus.
Im Beitrag wird LIBS als Methode zur Online-Analyse von Hochtemperaturschmelzen vorgestellt.
Concrete is one of the most widely used construction materials and, accordingly, the concrete industry is an important stakeholder in the field of sustainable construction. Therefore various approaches have been implemented to increase the sustainability of concrete. Besides reducing CO2-emissions during cement production, increasing the energy efficiency of buildings and extending their life span, the end-of-life performance of concrete is also an essential aspect of sustainability. Reusing concrete as a secondary building material meets the requirements of sustainability in several ways: the extended time availability of primary raw materials and, thereby, the protection of natural resources as well as conserving landfill site. Furthermore, the production of recycled concrete aggregates (RCA) is a good example for closed-loop recycling.
However, regarding the use of RCA as a substitute for natural aggregates in concrete, attention must be paid to all issues of sustainability: this means that environmental, economic and social aspects have to be considered. Since RCA generally have inferior building material properties, such as higher porosity and lower density, the implementation of closed-loop recycling of concrete only makes sense if the technical quality assurance is secured. This paper focusses on the implementation of techniques for the deconstruction/demolition of buildings and the subsequent treatment of concrete rubble in order to improve the building material properties of RCA with regard to the requirements of sustainability and also technical rules and standards.
Concrete is one of the most widely used construction materials and, accordingly, the concrete industry is an important stakeholder in the field of sustainable construction. Therefore various approaches have been implemented to increase the sustainability of concrete. Besides reducing CO2-emissions during cement production, increasing the energy efficiency of buildings and extending their life span, the end-of-life performance of concrete is also an essential aspect of sustainability. Reusing concrete as a secondary building material meets the requirements of sustainability in several ways: the extended time availability of primary raw materials and, thereby, the protection of natural resources as well as conserving landfill site. Furthermore, the production of recycled concrete aggregates (RCA) is a good example for closed-loop recycling.
However, regarding the use of RCA as a substitute for natural aggregates in concrete, attention must be paid to all issues of sustainability: this means that environmental, economic and social aspects have to be considered. Since RCA generally have inferior building material properties, such as higher porosity and lower density, the implementation of closed-loop recycling of concrete only makes sense if the technical quality assurance is secured. This paper focusses on the implementation of techniques for the deconstruction/demolition of buildings and the subsequent treatment of concrete rubble in order to improve the building material properties of RCA with regard to the requirements of sustainability and also technical rules and standards.
Due to the large quantities of construction and demolition waste (CDW) in Europe, its reuse or recycling is of particular importance. Although several countries already recycle high amounts of CDW, the use as secondary raw materials is often limited by inferior building material properties. Specific characteristics, like high porosity and low density are caused by hardened cement paste in crushed concrete and the content of mortar and plaster in brick debris. Impurities like wood or gypsum and also harmful substances like organic pollutants may be a major problem for a reuse and should be minimized. Therefore unwanted materials and impairing substances have to be separated from the secondary building material stream. This can be done during the demolition process by using techniques for selective dismantling or during the subsequent treatment of the resulting rubble. Since almost all processing steps are associated with environmental impacts, the benefits of saving natural resources by applying secondary building materials should be weighed carefully. An environmental performance evaluation was undertaken to assess different techniques for reducing gypsum in recycled concrete aggregates, aiming at a minimization of elutable sulfates. These results were compared to the environmental impacts of the extraction of natural aggregates for concrete.