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Eingeladener Vortrag
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Investigation of an active air sampling strategy for biocides, PCBs and PAHs at low air change rates
(2013)
The aim of this study was to develop a low volume air sampling strategy for biocides, polychlorinated biphenyls (PCB) and polycyclic aromatic hydrocarbons (PAH) at low air change rates. Firstly a method of measurement for the GC-MS-MS system had to be created before an adsorbent for the air sampling of these compound classes was selected in elution experiments with target compound solutions. The key requirements for the adsorbent were that it had to engender a faster and easier work-up process while reducing solvent consumption, as it is not the case for the frequently used polyurethane foam (PUF) and XAD adsorbents. Using the selected adsorbent, air sampling quality was tested and compared with the one of PUF in experiments performed in a Micro-Chamber/Thermal Extractor™ (μ- CTE™, Markes International) with target compound solutions. To achieve air sampling under the aforementioned conditions the influences of temperature, air circulation, air change rate and relative humidity on the emission behavior of the selected biocides, PCBs and PAHs were investigated. This investigation was carried out with self soaked wood samples in low volume air sampling experiments in a μ-CTE, 23 l and 24 l emission test chambers and 27 l showcases. Furthermore, an active air sampling strategy for biocides, PCBs and PAHs at low air change rates was successfully tested in a 24 l emission test chamber. Sampling volumes of 24-50 l were tested with the developed low volume air sampling strategy with limits of quantification between 1-27 μg m-3. A styrene divinylbenzene polymer was selected as a suitable adsorbent and sampling of at least 100 ng μl-1 of biocides, PCBs and PAHs without breakthroughs were possible with 200 mg of this polymer. This corresponds to a concentration range of 3000-6250 μg m-3 for these low sampling volumes. The low volume air sampling method developed in this study was successfully applied in projects investigating real wood samples in the μ-CTE as well as in low volume indoor air samples. In these experiments the applicability of the method was partly compared with a method using a different adsorbent.
Since Central Europeans spend most of their time indoors, the quality of the indoor air is important. Sources of volatile organic compounds (VOC) indoors are e. g. building materials, wall and floor coverings and interior equipment, whose emissions might influence the health and wellbeing of people. Photocatalysis is one opportunity to improve the indoor air quality by degrading VOCs ideally to carbon dioxide and water. Titanium dioxide (Ti02) in its anatase modification (band gap of 3.2 eV) is a common used UV-active photocatalytic coating. Because of the lack of UV light indoors Ti02 needs to be modified to be active under visible light too. This work focuses on the photocatalytic degradation of toluene, butyl acetate and limonene under UV LED light and blue LED light in emission test chambers under controlled climatic conditions. These compounds were selected due to their frequent occurrence in the indoor environment and their supply was done with a gas mixing System. Ceramic tiles coated with modified and pure Ti02 were used as photocatalytic active material. Previous results and experimental details were already published by Mull and Wilke (2014).
Die meisten organischen Biozide gehören zu der Gruppe der schwerflüchtigen organischen Verbindungen (SVOC – semi volatile organic compounds). Zu den klassischen Bioziden zählen u.a. Lindan, Pentachlorphenol (PCP) und Dichlordiphenyltrichlorethan (DDT) und zu den neueren u.a. Dichlofluanid, Tebuconazol und Permethrin. Biozide kamen in Museen vor allem in den 50er und 60er Jahren zum Schutz der Exponate zum Einsatz, hauptsächlich in Depoträumen zum akuten und zum präventiven Schutz vor Schadorganismen.
Die evangelische Friedenskirche in Schweidnitz (Polen) ist ein besonderes Zeugnis des deutsch-polnischen und damit europäischen Kulturerbes. Deshalb wurde sie auch 2001 einstimmig vom UNESCO-Komitee in die Liste des Kultur- und Naturerbes der Welt aufgenommen. Sie stellt ein einmaliges Denkmal des hoch entwickelten schlesischen Fachwerk- und Holzbaues aus dem 17. Jahrhundert dar. Im Rahmen einer interdisziplinären Zusammenarbeit zwischen Fachleuten aus Deutschland und Polen erfolgte die fachgerechte Restaurierung von 39 Fensterverglasungen und Rahmen mit dem Ziel, eine Abdichtung des Kirchenraumes gegen eine zeitweilig zu feuchte und mit Schadstoffen angereicherte Außenluft zu erreichen. Die Bundesanstalt für Materialforschung und -prüfung in Berlin führte Untersuchungen zu den klimatischen Bedingungen im Kirchentraum durch, um für die Kunstschätze nachhaltig verträgliche Bedingungen zu sichern. In der Friedenkirche war, wie auch in vielen anderen Bauwerken, in den 70-er und 80-er Jahren des 20. Jh. das Holzschutzmittel Xylamon verwendet worden. Neben der Gefahr für die sensiblen Materialien der Kunstwerke ist durch Holzschutzmittel auch ein Einfluss auf die Gesundheit von im Kirchenraum befindlichen Personen nicht auszuschließen. Mit Hilfe unterschiedlicher Untersuchungsmethoden konnten Emissionen aus Holzschutzmitteln und ihre Verbreitung im Kircheninneren nachgewiesen werden.