In diesem Vorhaben wurden 8 OSB-Platten und sieben Leimholzplatten aus Baumärkten gemäß den Vorgaben des AgBB-Schemas in Emissionsmesskammern geprüft. Hinzu kamen Messungen an 17 im Technikum hergestellten OSB, an denen der Einfluss von Herstellungsparametern auf VOCEmission untersucht wurde. Grundsätzliches Ziel war es, durch die Untersuchungen Lösungsansätze für die Emissionsminderung von VOC aus Holzwerkstoffen zu finden. Dazu wurde auch der Einsatz von Antioxidantien bei der OSB-Herstellung getestet. Die Emissionen des Rohstoffes Kiefernholz wurden an 6 Proben aus Splint- oder Kernholz aus unterschiedlichen Stammabschnitten einer frisch gefällten Kiefer untersucht. Insgesamt konnte mit dem Projekt gezeigt werden, dass einige der im Handel erhältlichen OSB und auch Leimhölzer eine Bewertung nach dem AgBB-Schema aufgrund von zu hohen Aldehyd- und Terpenemissionen nicht bestehen. Für die Aldehydemissionen (insbesondere Hexanal und ungesättigte höhere Aldehyde) konnte durch den Einsatz von Antioxidantien bei der OSB-Herstellung eine Verminderung auf ein Drittel erreicht werden, allerdings stiegen dadurch die Terpenemissionen an. In this project, eight Oriented Strand Boards (OSB) and seven plywood boards from DIY stores were tested in emission test chambers according to the AgBB schemes specifications. In addition, 17 OSBs manufactured in a pilot plant were tested to investigate the effect of production parameters on VOC emission. The use of antioxidants in OSB production was also tested. The main objective of the investigation was to find potential solutions for reducing VOC emissions from timber materials. The emissions from pine wood were investigated on six sapwood or heartwood samples from different trunk sections of freshly felled pine. The projects results show that, due to their high aldehyde and terpene emissions, some types of commercially available OSB and plywood did not meet the AgBB schemes requirements. By using antioxidants in OSB production it was possible to reduce aldehyde emissions (especially hexanal and unsaturated higher aldehydes) to one third. However, this caused an increase in terpene emissions.
Comparison of different types of emission test chambers and cells regarding VOC- and SVOC-emission
(2005)
Im vorliegenden Bericht wurden 11 Fußbodenbelagskleber, eine Grundierung, eine Spachtelmasse, 14 Teppiche, 5 PVC-Bodenbeläge, drei Linoleum-Beläge, ein Kautschukbelag und ein Polyolefinbelag über einen Zeitraum von mindestens 28 Tagen mittels Prüfkammer- bzw. Prüfzellenmessung auf ihr Emissionsverhalten untersucht. Die Emissionsmessungen an den Einzelmaterialien Kleber und Bodenbelag sollten die möglichen Emissionen (Substanzen und Konzentrationen) und deren zeitlichen Verlauf ermitteln. Außerdem wurden die Emissionen aus 7 Materialkombinationen ermittelt. Dazu gerhörten drei Komplettaufbauten aus Estrich, Grundierung, Spachtelmasse und Kleber mit den Belägen Teppich, PVC und Linoleum sowie 4 Verbundsysteme. Dies waren: Verbundsystem Estrich/Grundierung/Spachtelmasse/Kleber, Verbundsystem Glasplatte/Kleber/Teppich, Verbundsystem Glasplatte/Kleber/PVC-Belag und das Verbundsystem Estrich/Kleber. Die Emissionen aus den Komplettbauten wueden durch Sorptionseffekte und durch die unterschiedliche Durchlässigkeit der Bodenbeläge beeinflusst. Dabei waren die Emissionen aus den Komplettaufbauten und Verbundsystemen jeweils geringer als die Summe der Emissionen der entsprechenden Einzelmaterialien. Ergänzende Untersuchungen wurden durchgeführt zur Vergleichbarkeit der Emissionsmessungen in unterschiedlichen Prüfkammern (Volumen 1 m3 und 0,02 m3) bzw. Messzellen(Volumen 1 l und 0,035 l [FLEC]). und bei 42 Klebern zur Anwendbarkeit der Direkt-Thermodesorption (dynamische Headspace-Methode) als Screening-Verfahren. Des weiteren wurden Versuche durchgeführt, um die Auswirkungen unterschiedlicher Probenherstellung (Trägermaterial, Auftragsmenge, Auftragsart) auf die Emissionen aus den Fußbodenklebern abschhätzen können. Die durchgeführten Untersuchungen stellen eine Grundlage zur Erarbeitung eines Umweltzeichens für Fußbodenkleber dar.
Methods for the determination of biocide emissions from treated materials into water and air were developed and tested in order to support a comparative ecological assessment of biocidal products. Leaching tests, experiments with simulated rain, extraction cleaning of carpets and emission chamber tests were performed with a series of treated materials. The experiments focused on the effect of changes in the procedure as well as characteristics of the specimens and demonstrate the suitability of the proposed methods for biocides of different product types.
It was demonstrated that emissions of biocides into water can be compared on the basis of leaching tests in which the emission kinetics of the active ingredients are recorded. However, the water volume per surface area and the timetable for water changes have to be defined in such tests. Functions of flux rates related to time can be well described for inorganic compounds, whereas modelling of the data is more complicated for organic substances.
Emission chamber tests using 20-litre and 23-litre glass exsiccators, originally developed to study volatile organic compounds, were successfully adapted for the investigation of the emission of biocides from treated materials which are usually semi volatile organic compounds. However, test parameters and the method of analysis have to be adapted to the substances to be determined.
Generally, it was found that the emission curves for the semi volatile organic compounds investigated differ from those of volatile organic compounds.
Emissionen aus Bauprodukten beeinträchtigen die Qualität der Innenraumluft erheblich. Mit Hilfe des AgBB-Schemas werden die Emissionen flüchtiger organischer Verbindungen (VOC) aus Bauprodukten bewertet. Die gesundheitliche Bewertung nach dem AgBB-Schema erfordert produktspezifische Messverfahren.
Diese gibt es mittlerweile für eine Reihe von Produkten. Sie wurden durch Beteiligung verschiedener Forschungseinrichtungen und Messinstitute validiert und u. a. in die Vergabekriterien des Umweltzeichens Blauer Engel übernommen. Die Bewertung ist allerdings mit zumeist niedrigeren Grenzwerten strenger. VOC-Emissionen und Gerüche können beide zu gesundheitlichen Belastungen führen. So ist die sensorische Prüfung ein weiteres wichtiges Element bei der Bewertung von Bauprodukten und vorsorglich auch im AgBB-Schema verankert.
Hauptziel des Projektes ist es, eine Methode der sensorischen Bewertung und Grenzen für die Vergabe des Blauen Engels und für das AgBB-Schema abzuleiten. Auf Grundlage der durchgeführten Untersuchungen (siehe Kapitel 5 Ergebnisse und Diskussion) wird als Bewertungsmethode die empfundene Intensität und die Hedonik vorgeschlagen. Die Ableitung der Grenzwerte für die sensorische Bewertung am 28. Tag erfolgt über die zusätzliche Befragung der Probanden im Rahmen der vorliegenden Studie nach der Zumutbarkeit einer Probe.
Für den Blauen Engel könnte es je Produktgruppe unterschiedliche Grenzen der empfundenen Intensität und der Hedonik geben. Ein erster Vorschlag für mögliche Grenzen, hier zunächst einheitlich für alle
Produktgruppen, ist für die empfundene Intensität 7 pi (5 pi + 2 pi als Sicherheit, Kapitel 5.1.5) und für die Hedonik -1 (0 +/-0,8, gerundet auf -1) (siehe dazu Abbildung 6-2).
Emissions from building products can considerably impair the quality of indoor air. The AgBB scheme is employed to evaluate the emissions of volatile organic compounds (VOC) from building products. The hygienic evaluation according to the AgBB scheme requires product-specific measuring procedures.
These are available for a range of products. They have been validated in co-operation with several research and testing institutes and have been included in the criteria for awarding the Blue Angel ecolabel.
The evaluation is, however, stricter and generally has lower limits. VOC emissions and odours can cause health problems so testing using sensors is an important element in the evaluation of building products and has – for reasons of precaution – been set down in the AgBB scheme. The main goal of the project was to derive a method of evaluation using sensors and limits for awarding the Blue Angel and for the AgBB scheme. Based on the research conducted (see Chapter 5 Results and Discussion), perceived intensity and hedonics were suggested as a suitable Evaluation method. The derivation of limits for the evaluation using sensors on the 28th day was effected in the present study through the additional questioning of the test subjects on the reasonability of a sample.
For the Blue Angel, there could be different limits of perceived intensity and hedonics for each group of products. A preliminary suggestion for possible limits – for all product groups – is a perceived intensity of 7 pi (5 pi + 2 pi as confidence coefficient, Chapter 5.1.5) and -1 (0+/-0.8, rounded to -1) for the hedonic value.
Since semi-volatile organic compounds (SVOCs), including biocides and polychlorinated biphenyls (PCBs), occur indoors as well as outdoors, air sampling adsorbents and measuring methods for all these compounds are indispensable. This paper presents the initial steps in the development of such a method, the aim of which is the analysis of selected compounds in the above-mentioned classes using low air sampling volumes and air-exchange rates close to zero, as is common in museum showcases. For measurements under easily controlled conditions, a micro-chamber system was used at different temperatures. A surface modified styrene divinylbenzene (SDVB) polymer was selected as the air sampling adsorbent for the elution experiments. After successfully performing pretests using the micro-chamber system with target compound solutions, the emissions of these compounds from self-soaked wood samples and con-taminated wood samples were investigated for method development.
The aim of this study was the development of a low volume air sampling strategy for biocides and polychlorinated biphenyls (PCB) at low air change rates in modern, air-tight showcases as they are present in museums. Lindane, pentachlorophenol, dichlofluanid, tolyfluanid, isodrin, p,p-dichlorodiphenyl trichloroethane and permethrin were the biocides and PCB 28 and PCB 153 were the PCBs studied, all of which are semi volatile organic compounds (SVOC). Their occurrences in the museum environment originate from various sources e.g. preventive treatment of organic exhibits or organic building materials. Exhibits are long-term exposed to these pollutants due to storing in showcases or other storage equipment at low air change rates. 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 and PCBs had to be determined. This was carried out with pre-soaked wood samples in low volume air sampling experiments using 27 L test showcases and 23 L and 24 L emission test chambers and also diffusive sampling with glass as the sampling material.
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.