4 Material und Umwelt
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Aim. The European biocidal products regulation requires environmental risk assessments for biocidal products under service conditions. This is only possible, if processes that lead to biocide emissions into the environment are understood and can be reasonably predicted.
Actual emissions due to leaching result from different processes that are affected by material properties and environmental conditions. Transformation of biocides can affect emissions considerably.
Leaching and possible transformation of the film preservatives carbendazim, diuron, OIT and terbutryn in paints was observed under laboratory and field conditons in order to investigate the influence of different factors, e.g. water contact and radiation on biocide emissions. The paints contained either white titanium dioxide or a red iron oxide pigment to check whether pigments affect leaching processes.
Methods. Test specimens of a water-based styrene acrylic dispersion paint on glass were exposed to UVA-radiation in a UV weathering device and/or exposed to water contact by immersion events on the basis of the European standard EN 16105. Plywood panels were coated and exposed to natural weather conditions in a semi-field experiment. Concentrations of biocides and transformation products were analysed in leachates from laboratory tests, runoff samples and remaining coatings.
Results. The impact of weathering conditions on transformation processes differs for the investigated active substances. Water contact, radiation as well as pigments in the paints determine the pattern and amount of transformation products on coatings, leachates and runoff water. Observations from laboratory and field experiments were compared. It proved that results from laboratory tests support understanding of data from field experiments.
Detailed knowledge on the fate of active substances under environmental conditions supports manufacturers to develop safe applications of film preservatives and authorities to evaluate its environmental impact.
Release of substances from joint grouts based on various binder types and their ecotoxic effects
(2022)
Background: The leaching of substances and the ecotoxic effects of eluates were studied for joint grouts that are based on various types of binders. Eight products, two of them containing either epoxy resin, polybutadiene or polyurethane binders, or modifed cement, were investigated using harmonized leaching tests for construction products in combination with ecotoxicity tests on algae, daphnia, luminescent bacteria, fish eggs and mutagenicity in accordance with CEN/TR 17105. In addition to basic parameters, such as pH, TOC, and inorganic components, organic substances in the eluates were analysed by gas and liquid chromatography in combination with mass spectrometry. Quantitative analyses in combination with ecotoxicity data on selected substances were used to deduce which substances cause the observed ecotoxic effects.
Results: Different patterns of ecotoxic effects were observed in joint grouts with different binder types. The most ecotoxic effects were observed in epoxy resin-based products, followed by polybutadiene-based products. Fewer ecotoxic effects were observed in polyurethane-based products and modifed cements. Some of these showed no ecotoxicity. Some of the substances in the eluates were identified and related to ecotoxic effects. 4-Tert-butylphenol and amines probably contributed to the ecotoxic effects of at least one of the epoxy resin-based renders, whereas cobalt is assumed to contribute to the toxic effect on algae of one of the polybutadiene-based products. However, only some of the leached substances could be identifed, and only some of the ecotoxic effects can be explained by the available information on the composition of eluates and known ecotoxic profiles of the identified substances.
Conclusions: Ecotoxicity tests on eluates from leaching tests indicate whether environmentally hazardous substances can be leached from construction products. Combined ecotoxicity tests and chemical analysis of eluates from EU-wide harmonized leaching tests for construction products can provide information on substances that cause these effects. This supports the identifcation and development of environmentally friendly construction products.
This study confirmed that ecotoxicity tests in accordance with CEN/TR 17105 are a tool well-suited to support the implementation of the European Commission’s zero pollution vision for 2050 and to reduce pollution to levels no longer considered harmful to health and natural ecosystems.
Weather conditions affect biocides on exposed outer surfaces on constructions. Contact with water causes hydrolysis and leaching of substances. Ultraviolet radiation may induce photolysis. As a result, a mixture of biocidal active substances and transformation products can be emitted into the environment. In a semi-field study, leaching of the biocidal active substances terbutryn, diuron, octylisothiazolinone, carbendazim, and selected transformation products was observed for two paints containing either a white or a red pigment. Painted test panels were exposed to natural weathering for about 1.5 years. Runoff samples were analyzed during the course of the experiment.
At the end of the study, residues of biocidal active substances and transformation products were determined in sections of the test panels. Emissions of substances were mainly observed during the first few months of the experiments. Increased emissions of transformation products were observed during periods of increased global radiation and subsequent periods with relatively high amounts of driving rain. Different patterns of transformation products were observed, especially for terbutryn, both for paints containing different pigments and in experiments that were started in different periods of the year, as well as during different periods of the experiments.
Buildings exposed to water can release undesirable substances which, once transported to environmental compartments, may cause unwanted effects. These exposure pathways need to be investigated and included in risk assessments to safeguard water quality and promote the sustainability of construction materials. The applied materials, exposure conditions, distribution routes and resilience of receiving compartments vary considerably. This demonstrates the need for a consistent concept that integrates knowledge of emission sources, leaching processes, transport pathways, and effects on targets. Such a consistent concept can serve as the basis for environmental risk assessment for several scenarios using experimentally determined emissions. Typically, a source–path–target concept integrates data from standardized leaching tests and models to describe leaching processes, the distribution of substances in the environment and the occurrence of substances at different points of compliance. This article presents an integrated concept for assessing the environmental impact of construction products on aquatic systems and unravels currently existing gaps and necessary actions. This manuscript outlines a source–path–target concept applicable to a large variety of construction products. It is intended to highlight key elements of a holistic evaluation concept that could assist authorities in developing procedures for environmental risk assessments and mitigation measures and identifying knowledge gaps.
Die Umweltverträglichkeit von Bauprodukten, die in Kontakt mit Regen- oder Sickerwasser kommen, wurde durch Kombination normierter Elutions- (DSLT, Perkolationstest) und Ökotoxizitätstests (Algen, Daphnien, Fischeier, Leuchtbakterien) sowie Gentoxizitätstests (Ames, umu) untersucht. Ziel des Projektes war es einerseits, einen Beitrag zur Harmonisierung der Prüfmethoden unter CEN/TC 351 zu leisten und andererseits potentielle Produktgruppen, die sich für die Umweltzeichenvergabe des Blauen Engels eignen würden, zu erkennen. Durch umfangreiche qualitative und quantitative chemische Analysen (u. a. GC-MS- sowie LC-MS-Screening) wurden einige der freigesetzten Stoffe identifiziert und anhand von Literaturdaten ökotoxikologisch charakterisiert. Insgesamt wurden 34 Bauprodukte (Dachbahnen, Lacke, Wood-Plastic-Composites, Pflasterfugenmörtel, Korkgranulate, Schaumglasschotter, Wegedecken, Dichtmassen) untersucht. Hierbei wurden insbesondere bei den Fugenmörteln und Korkgranulaten sehr hohe
Ökotoxizitäten (bis LID = 16384 bei den Fugenmörteln und LID = 24578 bei den Korkgranulaten) beobachtet. Algen- und Leuchtbakterientests waren in der Regel deutlich empfindlicher als der Daphnien- und Fischeitest. Die untersuchten Dachbahnen, Lacke, Wood-Plastic-Composites und Schaumglasschotter zeigten hingegen keine oder nur sehr geringe Ökotoxizitäten. Zur Qualitätssicherung und Validierung wurde ein Europäischer Ringversuch gemäß den Vorgaben der DIN ISO 5725 organisiert, durchgeführt und ausgewertet. Hierzu wurde ein Fugenmörtel als flächiges Produkt im DSLT und als gebrochenes körniges Produkt im Perkolationstests eluiert und die Eluate nachfolgend in den 29 teilnehmenden Laboren hinsichtlich ihrer Ökotoxizität untersucht. Hierbei wurden insgesamt plausible Ergebnisse und gute (<50 %) bis sehr gute (<20 %) Reproduzierbarkeiten erzielt. Es wird empfohlen, für die Produktgruppen Dachbahnen, Kunstrasen und Sportböden sowie Fugenmörtel Vergabekriterien für den Blauen Engel zu entwickeln