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Mit dem BEMMA-Verfahren lassen sich flüchtige organische Verbindungen aus modernen Werkstoffen, die in mittel- oder unmittelbarem Kontakt mit historischen Materialien des Kunst- und Kulturgutes stehen, untersuchen und bewerten. Das Verfahren wurde im Rahmen eines AIF-Vorhabens und der Untersuchung von über 100 unterschiedlichen Materialien entwickelt. Weiterhin wurden mit den gewonnenen Ergebnissen und einigen zuvor bereits identifizierten Problemstoffen wie Essigsäure, Formaldehyd oder Oxime aus den Vorhabenerkenntnissen Bewertungskriterien erarbeitet. Die Vitrinenbaumaterialien, nicht die Vitrine, werden im Hinblick auf ihre Emissionen bewertet, wobei z. B. Holzwerkstoffe nicht bewertet werden, zumal diese meist mit Formaldehyd ein Emissionsproblem hätten. Der Einsatz von Materialien für Vitrinen, die gemäß BEMMA-Schema getestet wurden und die die Emissionswerte erfüllen, soll die Herstellung möglichst emissionsarmer Vitrinen ermöglichen. Kernstück des BEMMA-Schemas ist die Bewertung aller Messergebnisse gemäß dem im Folgenden dargestellten Untersuchungsablauf:
1. Beladen der µ-Kammer; 2. Probenahme der flüchtigen, kurzkettigen, organischen Säuren (ca. 0,5 bis 1 Stunde nach der Beladung für ca. 20 Stunden, 30 Liter Probenahmevolumen); 3. Probenahme der VOCs mit Tenax® (ca. 10 Minuten, 0,25 Liter Probenahmevolumen); 4. Probenahme Oxime und Piperidin-Derivate† mit Tenax® (ca. 40 Minuten, 1,0 Liter Probenahmevolumen); 5. Probenahme der Aldehyde und Ketone (für ca. 20 Stunden, 30 Liter Probenahmevolumen) Dabei werden 4 Sammlersysteme beladen und anschließend analysiert.
Die mit dem BEMMA Schema entwickelten Summenwerte für flüchtige organische Stoffe sind im Wesentlichen vor dem Hintergrund der Emissionsminimierung aufgestellt worden. Es gibt für viele VOC keine eindeutige Wechselwirkung mit den Objekten in der Vitrine, zumal diese auch aus vielen verschiedenen Werkstoffen bestehen können und ein VOC nicht mit all diesen reagieren wird. Grundsätzlich „verdächtig“ sind natürlich alle reaktiven Stoffe, wie z. B. Isocyanate. Diese werden aber aus gut gelagerten oder ausreichend belüfteten Baumaterialien für Vitrinen nicht abgegeben. Anorganische Schadgase können zwar in der Umgebungsluft verstärkt auftreten - sind aber aus Baumaterialien nicht zu erwarten. Daher kann das BEMMA-Schema auch nur für einen Teil der luftgetragenen Schadstoffe eine sinnvolle Aussage treffen.
Eines der Probleme bei der Bewertung vieler Kleb-/Dichtstoffe ist die Emission cyclischer Siloxane. Deren Schädigungspotential einzu¬schätzen wäre eine wichtige Aufgabe, um an dieser Stelle mehr Klarheit bei der Bewertung zu bekommen.
Innovation is the catalyst for the technology of the future. It is important to develop new and better technologies that can continuously monitor the environmental impact, e.g., for air quality control or emission detection. In the recently at BAM developed Universal Pump Sensor Control (UPSC3) module, different components and sensors are fused. The combination of the individual components makes the UPSC3 module an excellent monitoring and reference system for the development and characterization of gas specific sensors. Measurements over long periods are possible, for mixed gas loads or for certain gas measurements. The system is part of a mobile sensor network of several sensor units, which can also be used as standalone systems.
The motivation and objective of this research is to develop gas sensors based on fluorescence detection with range of ppm / ppb. For this task a reference system is required, which contains volatile organic compound (VOC) sensors for reference data from different scenarios. The integrated multi-sensor unit can measure different gases through the integrated 3-fold VOC sensor, which can be adapted to the addressed scenario. . The system-integrated flow control, with pump and flow sensor, allows the gas molecules to be transported directly to the VOC sensor. The entire measurement is permanently stored on an integrated memory card. If the previously determined limit range is exceeded, an alarm is generated. The system is an important tool towards further developments in the field of gas sensors and is primarily used for the validation of chemically based gas sensors.
This paper deals with the development and investi-gation of a volatile organic compound (VOC) system for differ-ent scenarios. The integrated multi-sensor unit can detect dif-ferent gases through the integrated 3-fold VOC sensor, where-by a continuous measurement takes place. The system-integrated flow control, with pump and flow sensor, allows the gas molecules to be transported directly to the VOC sensor. The entire measurement is permanently stored on an integrat-ed Secure Digital (SD) card. If the previously determined limit range is exceeded, an alarm is generated. Due to the combina-tion of different components, numerous applications are possi-ble. The system is the first step or a tool towards further devel-opments in the field of gas sensors and is primarily used for the validation of chemically based gas sensors, and it is still largely extended by application-specific influences.
The lecture gives information about analytical methods for the determination of volatile organic compounds (VOC) and especially the equipment at BAM division 4.2. Examples are given for chamber test measurements and thermal extraction of materials. A special focus is put on chemical and particle emissions during 3-D-printing with thermoplastic filaments.
Der Vortrag stellt die Arbeit der BAM und des Fachbereichs 4.2 Materialien und Luftschadstoffe vor und erläutert die Vorgehensweise bei der Erfassung von Materialemissionen in die Luft. Es wird auf die Problematik der diskontinuierlichen Probenahme hingewiesen und die Vorzüge kontinuierlicher online-Messverfahren für solche Messungen erörtert.
Emission testing of products is currently a rapidly increasing field of measurement activity. Labelling procedures for construction products are based on such emission test chamber measurements and hence measurement performance should be verified. A suited procedure for this purpose is the testing of one unique homogenous material in different laboratories within a Round Robin Test (RRT). Therefore, it is useful to have a reference material which can be used within inter-laboratory studies or as part of the quality management system to ensure comparable results. Several approaches on the development of reproducibly emitting materials have been published. These have in common only to emit a single VOC – toluene. Two further research studies carried out by BAM aimed to develop reference material for emissions testing containing one or more VOC in a single material. The first approach was a doped lacquer with Volatile and Semi-Volatile Organic Compounds (VOC/SVOC) and the second was Thermoplastic Polyurethane (TPU) or a Squalane/Paraffin mixture. Results received with the lacquer based material were presented in more detail.
Since some volatile organic compounds (VOC) are
dangerous to human health whilst others cause harm to the environment by influencing the oxidative capacity of the atmosphere, the overall aim of the KEY-VOCs project is to improve the measurement infrastructure for Key Volatile Organic Compounds in indoor and outdoor air. This is done by providing traceable and comparable reference gas standards and by validating new measurement systems in support to the air monitoring networks.
Museums worldwide are equipped with different display cases. Exhibit display cases should protect cultural objects from dust as well as from mechanical and physical damage. To ensure a stable climate inside the display cases, a low air exchange rate is maintained. Typically air exchange rates are often smaller than 0.1 d 1, which can result in rising concentrations of potential harmful immissions inside of the display cases due to emissions from materials. Especially high concentrations of organic acids, which can emit from e.g. sealing materials, can produce damage of cultural objects. In 2012 BAM introduced a procedure witch is called: BEMMA-Scheme (Bewertung von Emissionen aus Materialien für Museumsausstattungen) which stands for: “Assessment of Emissions from Materials for Museum Equipment”. Micro chambers are used for VOC emission tests of display case construction materials, e.g. textiles, plastics, sealing material, coatings and others. Each sampling procedure is carried out in duplicate. Emissions like formic acid, acetic acid, formaldehyde and oximes are excluded and the sum of emissions of VVOCs, VOCs and SVOCs is limited. For a positive assessment all listed criteria must be fulfilled; otherwise the display construction material fails the BEMMA scheme. The BEMMA scheme is not a guarantee for an emission free display case, but a necessary requirement for the choice of suitable materials for emission and immission reduced display cases. The basic evaluation for the values used for first assessments were a ZIM-project with nearly 100 tested materials. In-between more than 100 new materials were tested and enlarged the knowledge about material emissions from display case materials. Mainly silicone sealing materials were tested due to the fact that this group of material have the highest emissions. With regard to the testing procedure only construction materials were evaluated, not the display cases their self. Nevertheless in combination with the certificate also designed by BAM additionally the further steps of construction can be taken into account. So other factors such as age and storage time of materials, tightness respectively air change rate, air condition or ventilation of display cases can be included in the evaluation.
Since some volatile organic compounds (VOC) are dangerous to human health whilst others cause harm to the environment by influencing the oxidative capacity of the atmosphere, the overall aim of the KEY-VOCs project is to improve the measurement infrastructure for Key Volatile Organic Compounds in indoor and outdoor air. This is done by providing traceable and comparable reference gas standards and by validating new measurement systems in support to the air monitoring networks.