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Organisationseinheit der BAM
Bilanzierung der Schwefelbelastung im Grundwasser an einem ausgewählten Industriestandort, Berlin
(2004)
Die Bundesanstalt für Materialforschung und -prüfung (BAM) ist vom Senat für Stadtentwicklung, Berlin, und von der Bundesanstalt für vereinigungsbedingte Sonderaufgaben (BvS) beauftragt worden, die Bilanzierung der Schwefelkomponenten für ein bis drei ausgewählte Grundwasserproben an einem Berliner Industriestandort vorzunehmen. Es handelt sich bei den Boden- und Grundwasserkontaminationen ausnahmslos um industrielle Altlasten. Da der Gehalt an organisch gebundenen Schwefelverbindungen, kolloidalem Schwefel und gelösten Sulfiden für die Dimensionierung von Grundwasseraufbereitungsanlagen (Aktivkohle, Katalysator) von großer Bedeutung ist und am Standort teilweise sehr hohe Schwefelkontaminationen auftreten, sollen vor einem erneuten Ausschreibungsverfahren zur Grundwassersanierung an drei sehr unterschiedlichen, aber für den Standort typischen Grundwassermessstellen entsprechende Bilanzen für die Schwefelbelastung erstellt werden. Dabei sind sowohl die summarischen Kenngrößen wie Summe Gesamtschwefel, ausblasbare (POS) und extrahierbare leicht- und schwerflüchtige organische Schwefelverbindungen und an Aktivkohle adsorbierbare Schwefelverbindungen (AOS) von Interesse, als auch eine Zuordnung der Hauptkontaminationen über ein halbquantitatives GC-MS-Screening. Im Artikel werden die angewendeten Verfahren vorgestellt. Die Ergebnisse werden diskutiert, gegenübergestellt und ihre Belastbarkeit eingeschätzt.
A practical method for the quantification of
total purgeable organic sulfur (POS) in highly contaminated
groundwater is described. Volatile organic sulfur
compounds (VOSC) are purged from the water samples by
a stream of oxygen and combusted. The emerging sulfur
dioxide is absorbed in H2O2 and converted to sulfate which
is quantified by ion chromatography and reported as mass
sulfur equivalent. The overall limit of quantification is
0.03 mg l1. The content of POS is balanced with the total
VOSC determined by GC-AED after liquidliquid extraction.
Separate determination of the non-volatile organic
sulfur compounds by direct combustion of the water sample
and adsorption to charcoal yielded a mass balance of
the total sulfur content. Semi-quantitative GC-MS after
purge & trap accumulation revealed that the VOSC mixture
is composed of C1C4 alkyl sulfides. The implementation
of the developed methodology for the quantification of
VOSC as potential catalyst poison in a cleaning plant
for groundwater contaminated with volatile haloorganics
(VOX) is presented.
A number of currently recommended sampling techniques for the determination of hydrogen in contaminated groundwater were compared regarding the practical proficiency in field campaigns. Key characteristics of appropriate sampling procedures are reproducibility of results, robustness against varying field conditions such as hydrostatic pressure, aquifer flow, and biological activity. Laboratory set-ups were used to investigate the most promising techniques. Bubble stripping with gas sampling bulbs yielded reproducible recovery of hydrogen and methane which could be verified for groundwater sampled in two field campaigns. The methane content of the groundwater was confirmed by analysis of directly pumped samples thus supporting the trueness of the stripping results. Laboratory set-ups and field campaigns revealed that bubble stripping of hydrogen may be restricted to the type of used pump. Concentrations of dissolved hydrogen after bubble stripping with an electrically driven submersible pump were about one order of magnitude higher than those obtained from diffusion sampling. The gas chromatographic determination for hydrogen and methane requires manual injection of gas samples and detection by a pulsed discharge detector (PDD) and allows limits of quantification of 3 nM dissolved hydrogen and 1 µg L-1 dissolved methane in groundwater. The combined standard uncertainty of the bubble stripping and GC/PDD quantification of hydrogen in field samples was 7% at 7.8 nM and 18% for 78 nM.
The role of matrix reference materials in the process of demonstrating the degree of equivalence of measurement results obtained from intercomparisons is outlined, reviewing exemplary selected experience gained at BAM regarding the determination of organic contaminants in environmental matrices.
The specific characteristics of reference materials employed in the process of demonstrating equivalence between laboratories in the course of proficiency testing as well as the development, comparison and validation of methods are elaborated. The demand is for series of appropriately characterised samples which are fit for the purpose and it is seen from representative examples that the utilisation of such tailor-made RM designed to tackle the specific need of an analytical problem dominates over certified matrix reference materials in this context. Concluding, the role of certified matrix reference materials in quality assurance is briefly looked at both from the users and providers points of view.
The nature and concentrations of volatile organic compounds (VOCs) in chars generated by hydrothermal carbonization (HTC) is of concern considering their application as soil amendment. Therefore, the presence of VOCs in solid HTC products obtained from wheat straw, biogas digestate and four woody materials was investigated using headspace gas chromatography. A variety of potentially harmful benzenic, phenolic and furanic volatiles along with various aldehydes and ketones were identified in feedstock- and temperature-specific patterns. The total amount of VOCs observed after equilibration between headspace and char samples produced at 270 °C ranged between 2000 and 16,000 µg/g (0.2–1.6 wt.%). Depending on feedstock 50–9000 µg/g of benzenes and 300–1800 µg/g of phenols were observed. Substances potentially harmful to soil ecology such as benzofurans (200–800 µg/g) and p-cymene (up to 6000 µg/g in pine wood char) exhibited concentrations that suggest restrained application of fresh hydrochar as soil amendment or for water purification.