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- Phosphorus recovery (6)
- Sewage sludge ash (5)
- Thermochemical treatment (3)
- Altfett (2)
- Bauschuttaufbereitung (2)
- CDW treatment (2)
- Enzymkatalyse (2)
- Gips (2)
- Gypsum (2)
- Heavy metal evaporation (2)
Eingeladener Vortrag
- nein (8)
Phosphorus (P) for fertilizer use can be recovered from sewage sludge ash (SSA). To enhance the bioavailability of P and reduce the heavy metal content of SSA, it can be treated thermochemically with Na2CO3 or Na2SO4 at 950 °C in a rotary kiln using dry sewage sludge or lignite as reducing agent. These processes were investigated by thermogravimetry/differential thermal analysis coupled with gas analysis. Reducing conditions in this experimental setup were provided by 2 % hydrogen in the Ar carrier gas. During SSA + Na2CO3 treatment CO2, CO and water were detected in the off-gas. During SSA + Na2SO4 treatment SO2, some CO2 and water were detected. Heavy metal removal was more efficient for SSA + Na2CO3 compared to the sulfate variant. A SSA + Na2SO4 + lignite variant which also formed CO shifted the heavy metal removal to the results obtained with Na2CO3 which was obviously due to the additional reduction potential. However, Zn evaporation was not achieved with the Na2SO4 variants which were most probably due to immobilization as ZnS.
Phosphorus (P) is an essential element for all forms of life and is applied as fertilizer in agriculture. The P availability for plants may be highly dependent on the chemical state of P in fertilizers and soils; however, the nature of this dependence remains obscure due to the limitations of generally applied wet chemical and instrumental analytical approaches. This paper focuses on recently developed infrared, Raman, ultraviolet and X-ray microspectroscopic techniques for the characterization of P in soil. Microspectroscopic techniques have the advantage that discrete P phases can be distinguished and characterized even if their mass fractions are very low. However, only small volumes of soil can be analyzed by microspectroscopic methods hence a combination of macro- and microspectroscopic techniques is a promising concept.
Phosphorus-fertilizers from secondary resources such as sewage sludge ash (SSA) will become more important in the future as they could substitute conventional fertilizers based on the nonrenewable resource phosphate rock. Thermochemical approaches were developed which remove heavy metals from SSA prior to its fertilizer application on farmlands. We analyzed the chemical state of mercury and selenium in SSA before and after thermochemical treatment under different conditions for P-fertilizer production by X-ray absorption near edge structure (XANES) spectroscopy. In some incineration plants the mercury loaded carbon adsorber from off-gas cleaning was collected together with the SSA for waste disposal. SSAs from those plants contained mercury mainly bound to carbon/organic material. The other SSAs contained inorganic mercury compounds which are most probably stabilized in the SSA matrix and were thus not evaporated during incineration. During thermochemical treatment, carbon-bound mercury was removed quantitatively. In contrast, a certain immobile fraction of inorganic mercury compounds remained in thermochemically treated SSA, which were not clearly identified. HgSe might be one of the inorganic compounds, which is supported by results of Se K-edge XANES spectroscopy. Furthermore, the chemical state of selenium in the SSAs was very sensitive to the conditions of the thermochemical treatment.
Pot experiments are often performed to analyze the plant-availability of phosphorus (P) in P-fertilizers. However, these experiments do not determine the P compounds present in the soil which are responsible for the yield increase. In order to better understand the results of pot experiments we analyzed the soils by P K-edge X-ray absorption near-edge structure (XANES) spectroscopy to determine the P species and unravel transformation processes. We carried out pot experiments with maize testing different waste water derived recycling P-fertilizers on an acidic and a neutral soil. Soils samples before sowing and after harvest were collected and prepared for analysis. A combination of macro- and µ-XANES spectroscopy was used to determine the chemical state of the overall soil P and to identify P compounds in P-rich spots localized by micro-X-ray fluorescence (µ-XRF). P K-edge macro-XANES spectroscopy detected organic P and/or P sorbed onto organic matter or other substrates in the unfertilized and fertilized soils. In addition, µ-XRF mapping in combination with P K-edge µ-XANES spectroscopy evidenced that some P phases present in recycling P-fertilizers (magnesium phosphate and calcium sodium phosphate) react with co-fertilized ammonium nitrate and form highly plant-available ammonium phosphates in the soil. In opposite, apatites were not affected by the presence of ammonium. Thus, for a boost of the plant-availability of P in recycling P-fertilizers these fertilizers should be directly co-fertilized with nitrogen (N) sources that contain a high amount of ammonium instead of nitrate. Possibly, a specific preparation of NP-fertilizers by granulation of recycling P-fertilizers with ammonium compounds and a nitrification inhibitor could enhance the plant-availability of the produced fertilizer whereby they become more competitive to commercially available NP-fertilizers based on phosphate rock.
Sewage sludge incineration is extensively practiced in some European countries such as the Netherlands, Switzerland, Austria and Germany. A survey of German sewage sludge ash showed that the recovery potential is high, approx. 19,000 t of phosphorus per year. However, the survey also discovered that the bioavailability of phosphorus in the sewage sludge ash is poor and that more than half of the ashes cannot be used as fertilizers due to high heavy metal content. A new thermochemical process for sewage sludge ash treatment was developed that transforms the ash into marketable fertilizer products. Sewage sludge ash was thermochemically treated with sodium and potassium additives under reducing conditions, whereby the phosphate-bearing mineral phases were transformed into plant available phosphates. High P-bioavailability was achieved with a molar Na/P ratio > 1.75 in the starting materials. Sodium sulfate, carbonate and hydroxide performed comparably as additives for this calcination process. Potassium carbonate and -hydroxide have to be added in a molar K/P ratio > 2.5 to achieve comparable P-solubility. The findings of the laboratory scale investigations were confirmed by an industrial demonstration trial for an ash treatment with sodium sulfate. Simultaneously, the volatile transition metal arsenic (61% removal) as well as volatile heavy metals such as cadmium (80%), mercury (68%), lead (39%) and zinc (9%) were removed via the off-gas treatment system. The product of the demonstration trial is characterized by high bioavailability and a toxic trace element mass fraction below the limit values of the German fertilizer ordinance, thus fulfilling the quality parameters for a P-fertilizer.
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).
The annual demand of phosphorus (P) for fertilizer use is more than 550,000 t in Germany. Several of the input streams like mineral fertilizer produced from phosphate rock or sewage sludge are problematic due to contamination with heavy metals and organic pollutants and/or supply risks. Phosphorus recovery from the wastewater stream might help to diminish these problems. Several procedures have been developed to recover P from either sewage sludge ash (SSA) or wastewater via precipitation or crystallization as struvite. This study determined the elemental composition and trace metal mass fractions of 252 SSA samples and 17 struvite samples from wastewater treatment plants (WWTP) to see whether there are differences related to the source of the sludge (municipal/industrial) or the stage of the WWTP where the struvite is produced. Results indicated that there is no clear trend of the elemental mass fractions related to the source of the sludge. All struvite samples show very low heavy metal contents, even though the struvite precipitated from the sludge shows slightly elevated heavy metal mass fractions compared to struvite crystallized from sludge liquor. Struvite is a clean and plant available material for fertilizer production from wastewater streams and has some advantages for the wastewater treatment plant. However, since the P recovery rate of struvite processes is low (7–11%) compared to that from SSA processes (90%), recovery from SSA is necessary for a substantial P recovery from the wastewater stream.
Phosphorrecycling sollte nicht isoliert praktiziert werden, sondern im Kontext der spezifischen Abwasserbehandlung und der Betrachtung weiterer Nährstoffe wie Stickstoff und Kalium.
Hohe Rückgewinnungsquoten um jeden Preis sind nicht immer zielführend und u.U. sogar schädlich für die Kreislaufwirtschaft. Es sollte eine Kombination verschiedener Ansätze je nach vorhandener Infrastruktur verfolgt werden. Fällungsverfahren (Struvit) sind geeignet kostengünstig kleine Mengen Phosphor zurückzugewinnen. Für ein umfassendes P-Recycling muss die Rückgewinnung aus der Asche erfolgen.
Im Rahmen eines vom BMBF geförderten KMU-Innovativ Forschungsprojekts (KKZ 0316199B) konnte in Kooperation mit der Firma Greibo Chemie GmbH ein bio-katalysierter Prozess zur Hydrolyse und Veresterung von gastronomischen Altfetten etabliert werden. Unter Anwendung des Enzyms Candida antarctica lipase-A (CAL-A) kann dieser Prozess mit einem teilweise wässrigen Medium durchgeführt werden was prozesstechnisch einige Vorteile mit sich bringt. Im Gegensatz zu anderen Acyltransferasen ist die CAL-A nicht nur in der Lage die Alkoholyse zu katalysieren sondern auch Fettsäuren zu verestern. Dies eröffnet eine breitere Anwendung des Prozesses auf weitere Produktgruppen und Abfallströme. Es wurden Optimierungen mit modifizierten Enzymen und verschiedenen Fetten und Alkoholen vorgenommen. Des Weiteren wurden die verfahrenstechnischen Parameter optimiert und ein Scale-up auf den 0,5 Tonnen Maßstab durchgeführt. Die aus dem Prozess resultierenden Fettsäureester eignen sich als Motoren- oder Hydraulikbasisöle sowie als Metallbearbeitungsöle. Im Vergleich zu den Mineralölkosten von ca. 1,0 - 1,5 € pro kg muss bei einer Umstellung eines Hydrauliköls auf Fettsäureester (konventionell hergestellt) allerdings bei einem Preis von 3 – 5 € pro kg mit Mehrkosten bei gleichbleibendem Verbrauch gerechnet werden. Für die erfolgreiche Markteinführung müssten vermutlich die durchaus vorhandenen ökologischen Vorteile der Altfett-basierten Produkte beworben werden.
Im Rahmen eines vom BMBF geförderten KMU-Innovativ Forschungsprojekts (KKZ 0316199B) konnte in Kooperation mit der Firma Greibo Chemie GmbH ein bio-katalysierter Prozess zur Hydrolyse und Veresterung von gastronomischen Altfetten etabliert werden. Unter Anwendung des Enzyms Candida antarctica lipase-A (CAL-A) kann dieser Prozess mit einem teilweise wässrigen Medium durchgeführt werden was prozesstechnisch einige Vorteile mit sich bringt. Im Gegensatz zu anderen Acyltransferasen ist die CAL-A nicht nur in der Lage die Alkoholyse zu katalysieren sondern auch Fettsäuren zu verestern. Dies eröffnet eine breitere Anwendung des Prozesses auf weitere Produktgruppen und Abfallströme. Es wurden Optimierungen mit modifizierten Enzymen und verschiedenen Fetten und Alkoholen vorgenommen. Des Weiteren wurden die verfahrenstechnischen Parameter optimiert und ein Scale-up auf den 0,5 Tonnen Maßstab durchgeführt. Die aus dem Prozess resultierenden Fettsäureester eignen sich als Motoren- oder Hydraulikbasisöle sowie als Metallbearbeitungsöle. Im Vergleich zu den Mineralölkosten von ca. 1,0 - 1,5 € pro kg muss bei einer Umstellung eines Hydrauliköls auf Fettsäureester (konventionell hergestellt) allerdings bei einem Preis von 3 – 5 € pro kg mit Mehrkosten bei gleichbleibendem Verbrauch gerechnet werden. Für die erfolgreiche Markteinführung müssten vermutlich die durchaus vorhandenen ökologischen Vorteile der Altfett-basierten Produkte beworben werden.