Filtern
Erscheinungsjahr
Dokumenttyp
- Beitrag zu einem Tagungsband (16)
- Vortrag (14)
- Posterpräsentation (8)
- Forschungsbericht (2)
- Zeitschriftenartikel (1)
- Buchkapitel (1)
- Dissertation (1)
Sprache
- Deutsch (21)
- Englisch (21)
- Mehrsprachig (1)
Referierte Publikation
- nein (43) (entfernen)
Schlagworte
- VOC (9)
- Emission test chamber (5)
- CO2 assisted impregnation (3)
- Emission reference material (3)
- Indoor air quality (3)
- Radon exhalation (3)
- Volatile organic compounds (3)
- Baumaterialien (2)
- Building material (2)
- Emission studies (2)
Organisationseinheit der BAM
Eingeladener Vortrag
- nein (14)
In industrialised countries more than 80% of the time is spent indoors. Products, such as building materials and furniture, emit volatile organic compounds (VOCs), which are therefore ubiquitous in indoor air. VOC in combination may, under certain environmental and occupational conditions, result in reported sensory irritation and health complaints. Emission concentrations can become further elevated in new or refurbished buildings where the rate of air exchange with fresh ambient air may be limited due to improved energy saving aspects. A healthy indoor environment can be achieved by controlling the sources and by eliminating or limiting the release of harmful substances into the air. One way is to use (building) materials proved to be low emitting. Meanwhile, a worldwide network of professional commercial and non-commercial laboratories performing emission tests for the evaluation of products for interior use has been established. Therefore, comparability of test results must be ensured. A laboratory’s proficiency can be proven by internal and external validation measures that both include the application of suitable emission reference materials (ERM). For the emission test chamber procedure according to EN 16516, no artificial ERM is commercially available. The EU-funded EMPIR project MetrIAQ aims to fill this gap by developing new and improved ERMs. The goal is to obtain a material with a reproducible and temporally constant compound release (less than 10 % variability over 14 days). Two approaches were tested: the impregnation of porous materials with VOC, and the encapsulation of VOC in polymer microcapsules. Impregnation is performed with help of an autoclave and supercritical CO2. The encapsulation is done by interfacial polymerisation on VOC droplets. For both approaches, synthesis and/or material parameters were varied to obtain an optimal ERM. Findings about the optimisation of ERM generation, as well as performance of the best emission reference materials, will be presented.
Emission testing of volatile organic compounds (VOC) from materials and products is commonly based on emission test chamber measurements. To ensure the comparability of results from different testing laboratories their measurement performance must be verified. For this purpose, Bundesanstalt für Materialforschung und -prüfung (BAM) organizes an international proficiency test every two years using well-characterised test materials (one sealant, one furniture board and four times a lacquer) with defined VOC emissions. The materials fulfilled the requirements of homogeneity, reproducibility, and stability. Altogether, 41 VOCs were included of which 37 gave test chamber air concentrations between 10 and 98 µg/m³. This is the typical concentration range to be expected and to be quantified when performing chamber tests. Four compounds had higher concentrations between 250 and 1105 µg/m³. The relative standard deviations (RSD) of BAM proficiency tests since 2008 are compared and the improvement of the comparability of the emission chamber testing is shown by the decrease of the mean RSD down to 23% in 2021. In contrast, the first large European interlaboratory comparison in 1999 showed a mean RSD of 51%.
In industrialised countries more than 80% of the time is spent indoors. Products, such as building materials and furniture, emit volatile organic compounds (VOCs), which are therefore ubiquitous in indoor air. Different VOC combinations may, under certain environmental and occupational conditions, result in reported sensory irritation and health complaints. A healthy indoor environment can be achieved by controlling the sources and by eliminating or limiting the release of harmful substances into the air. One way is to use materials proven to be low emitting. Meanwhile, a worldwide network of professional commercial and non-commercial laboratories performing emission tests for the evaluation of products for interior use has been established. Therefore, comparability and metrological traceability of test results must be ensured. A laboratory’s proficiency can be proven by internal and external validation measures that both include the application of suitable reference materials. The emission test chamber procedure according to EN 16516 comprises several steps from sample preparation to sampling of test chamber air and chromatographic analysis. Quality assurance and quality control (QA/QC) must therefore be ensured. Currently, there is a lack of suitable reference products containing components relevant for the health-related evaluation of building products.
The EU-funded EMPIR project 20NRM04 MetrIAQ (Metrology for the determination of emissions of dangerous substances from building materials into indoor air) aims to develop 1) gaseous primary reference materials (gPRM), which are used for the certification of gaseous (certified) reference materials (gCRM) and 2) emission reference materials (ERM).
Most commercial gas standards of indoor-relevant compounds are not certified due to the lack of primary reference materials to which the project aims to contribute. The gPRM under development is a gas-phase standard containing trace levels of VOCs in nitrogen or air from the check standard according to EN 16516 (n-hexane, methyl isobutyl ketone, toluene, butyl acetate, cyclohexanone, o-xylene, phenol, 1,3,5-trimethylbenzene) with a target uncertainty of 5 %. The gPRM can be sampled into sorbent tubes to obtain transfer standards in the form of gCRM.
The well characterised ERM represents a sample of a test specimen, e.g. building material, that is loaded into the emission test chamber for a period of several days and is used to evaluate the whole emission test chamber procedure. It shall have a reproducible and temporally constant compound release of less than 10 % variability over 14 days. Different approaches for retarded VOC release, such as the encapsulation of pure compounds and the impregnation of porous materials, are being tested to reach this aim. Furthermore, the design of the ERM is accompanied by the development of a numerical model for the prediction of the emissions for each of the target VOCs. The current progress of the work on both materials will be presented.
Round robin tests of odour and VOC emissions from building products – What have we learned so far?
(2023)
Emission testing of volatile organic compounds (VOC) and odour from materials and products is commonly based on emission test chamber measurements. These measurements are often the basis of mandatory or voluntary labelling procedures. To ensure the comparability of results from different testing laboratories their performance must be verified. For this purpose, round robin tests (RRTs) are conducted. Bundesanstalt für Materialforschung und - prüfung (BAM) offers such a RRT every two years using well characterised test materials with defined VOC emissions. In addition to the VOC quantification, the evaluation of odour is also implemented in the round robin tests. At the beginning, only perceived intensity (PI) was tested but over the years also the acceptance evaluation was considered. In principle, the results of PI and acceptance evaluation are comparable. The advantage of PI is the lower number of panel members necessary for one evaluation.
Micro-(nano-)encapsulation technology involves building of a barrier between the core and the environment and offers a number of benefits to preserve the functional and physicochemical properties of core material. Tremendous progress has been made in synthesizing well-defined capsules to achieve desired properties such as particle size, chemical composition, and controlled release of the payload.
Encapsulation of volatile organic compounds (VOCs) that could evaporate with a defined rate is of immense interest for application in emission reference materials (ERM). These are urgently needed for quality assurance and quality control purposes (QA/QC) required by test standards for the determination of chemical emissions of construction and other materials for interior use. As such ERMs are hardly available on the market, the EU-funded EMPIR project MetrIAQ [1] was started to fill this gap by developing a material with temporally constant emission of VOCs typically found in indoor air.
Different capsules in a size range between 5 and 50 μm were synthesized through an interfacial polyaddition/polycondensation reaction in direct (water-in-oil) system. As VOC several types of hydrophobic liquid materials were used. After synthesis, the morphology and physicochemical properties of capsules were characterized by electron microscopy, FTIR and DSC/TGA. An encapsulation efficiency up to 90% could be reached. The emission kinetic of volatile agents was studied in emission test chambers at 23 °C and 50% RH for 14 days. First results indicate that variation of the cross-linking grade of the shell material is one important parameter to adjust the desired emission rate. The overall aim is to achieve a consistent emission profile that decreases by less than 10 % over a target period of at least 14 days.
The European building sector is moving towards more complex and high-tech building approaches. While focusing on energy efficiency, aspects e.g. occupant health, sustainability and life cycle costing are often neglected. This study highlights the potential of earthen plasters in combination with natural ventilation for low-tech solutions.
The EU funded project [H]house established the outstanding performance of earthen materials in light of hygrothermal and air purifying properties, which were further supported by experimental data from monitoring of naturally ventilated pilot buildings in Berlin. Additionally, [H]house demonstrated through LCC an increased cost efficiency of earth based low-tech solutions in comparison to conventional constructions relying on mechanical ventilation.
Two new approaches towards an emission reference material for use in quality assurance measures for materials emissions testing were developed and intensively tested. The overall goal was to obtain solid materials with homogenous and reproducible (S)VOC release. Since the application in inter-laboratory comparisons is aimed at, it should furthermore be long-term stable to ensure safe shipment to the customer without sustaining compound losses. In the first approach, thermoplastic polyurethane (TPU) was impregnated with the VOC texanol under high-pressure with liquid CO2 as solvent. In the second, styrene (VOC) and the SVOC 2,6-diisopropylnaphthalene (DIPN) were spiked into vacuum grease (VG) and a mixture of paraf-fin/squalane (P/S). For the prediction of the emission rates a finite element model (FEM) was developed for the VG and P/S type materials. All requirements for reference materials were fulfilled, whereas the TPU samples need to be aged for about 10 days until repeatable and reproducible emission rates were obtained.
Two new approaches towards an emission reference material for use in quality assurance measures for materials emissions testing were developed and intensively tested. The overall goal was to obtain solid materials with homogenous and reproducible (S)VOC release. Since the application in inter-laboratory comparisons is aimed at, it should furthermore be long-term stable to ensure safe shipment to the customer without sustaining compound losses. In the first approach, thermoplastic polyurethane (TPU) was impregnated with the VOC texanol under high-pressure with liquid CO2 as solvent. In the second, styrene (VOC) and the SVOC 2,6-diisopropylnaphthalene (DIPN) were spiked into vacuum grease (VG) and a mixture of paraf-fin/squalane (P/S). For the prediction of the emission rates a finite element model (FEM) was developed for the VG and P/S type materials. All requirements for reference materials were fulfilled, whereas the TPU samples need to be aged for about 10 days until repeatable and re-producible emission rates were obtained.
Referenzmaterialien zur Qualitätssicherung von Emissionsprüfungen - Aktueller Stand und Ausblick
(2017)
Aus alltäglichen Produkten, wie Baumaterialien oder Möbeln können flüchtige organische Verbindungen (VOC) emittieren. Eine gesunde Innenraumluftqualität kann daher durch Produktkontrolle und Auswahl emissionsarmer Produkte erreicht werden. Untersuchungen von Materialemissionen werden in der Regel in sogenannten Emissionsprüfkammern unter kontrollierten, innenraumähnlichen Bedingungen durchgeführt. Zur Sicherung der Zuverlässigkeit solcher Prüfungen müssen Prüflaboratorien Qualitätssicherungs- und -kontrollmaßnahmen implementieren. Zur Überprüfung der Emissionsprüfkammermethode werden Referenzmaterialien, die in ihren Eigenschaften konstant sind und sich wie reale Prüfstücke verhalten, benötigt. Sie sind derzeit aber kommerziell nicht erhältlich.
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.
In diesem Projekt wurde das Prüfverfahren für die chemischen Emissionen zum RAL-UZ 38 überarbeitet. Dabei stand die Bewertung der Prüfkammermessungen mit Hilfe des AgBB-Schemas im Vordergrund. Dafür wurden die Prüfkammerbedingungen angepasst. Mit Hilfe einer Emissionsdatenbasis wurden Anforderungen an die Emissionen der Umweltzeichenprodukte abgeleitet. Die Datenbasis bildeten vorhandene Emissionsdaten der Umweltzeichenprodukte und Messungen aktueller Produkte. Dazu wurden 10 Prüfkammermessungen an unterschiedlichen Möbelplatten durchgeführt. In Zusammenarbeit mit den Lizenznehmern, dem RAL und dem Umweltbundesamt wurde ein neues Verfahren für die Auswahl der Prüfmuster für die Emissionsmessung erarbeitet. Dieses vereinigt eine repräsentative Auswahl mit einer regelmäßigen Nachprüfung einzelner Möbel und/oder Bauteile. Zudem wurden Kriterien für die Überprüfung der Anforderungen an die Herkunft des Holzes aufgestellt. Für Bodenbeläge, Paneele und Türen aus Holz und Holzwerkstoffen für Innenräume wurde eine
neue Vergabegrundlage erschaffen (RAL-UZ 176).
Volatile Organic Compounds (VOC) are ubiquitous in the indoor air, since they emit from materials used indoors. Investigations of these materials are mostly carried out in test chambers under controlled climatic conditions. Quality control of these test chamber measurements is important but there is a lack of commercially available homogenous reference materials as required for round robin tests or quality assurance of laboratories. The approach of the present study is the impregnation of a supporting material with VOC, which are reproducibly released in measurable chamber air concentrations under standardised test conditions. A polymer made of Thermoplastic Polyurethane (TPU) was chosen as carrier material. It was impregnated with the VOC trimethyl pentanediol isobutyrat (texanol).
Die vorgestellte Studie, die ihm Rahmen des EU finanzierten Forschungsvorhaben H-House entstanden ist schafft eine breite wissenschaftliche Basis für das Bauen mit reduzierter bzw. ohne mechanische Lüftung. Sie geht davon aus, dass es ressourcenschonendere Lösungsansätze gibt, die nicht nur die Anforderungen an die oben aufgeführten Aspekte erfüllen, sondern auch zu einer ganzheitlich verbesserten Wohngesundheit beitragen. Es soll nachgewiesen werden, dass sich durch den Einsatz von emissionsarmen, klimasteuernden Naturbaustoffen in Verbindung mit einer dampfdiffusionsoffenen Gebäudehülle und einem angemessenen Glasanteil, eine stabile Raumluftfeuchte und ein gesundes Raumklima in Wohngebäuden einstellen lässt.
Im Rahmen des EU-Forschungsvorhabens [H]house wurden Holz, Lehm und Naturfasern in Bezug auf Feuchtesorption und Schadstoffe untersucht und mit konventionellen Materialien verglichen. Weiter entwickelte Innenwandsysteme und Innendämmungen wurden ebenfalls untersucht. Auf dieser Basis wurden Holz- und Lehm-Bausysteme ohne Lüftungsanlage entwickelt und angewendet.
Die größten Ressourcenverbraucher unserer Zeit sind die Gebäude oder Behausungen des Menschen sowohl in der Phase der Errichtung als auch im Betrieb. Der Gebäudesektor und damit auch die Architektur verbrauchen in Deutschland ca. 50 % der fossilen Energieressourcen und verursachen ca. 60 % des gesamten Müllaufkommens mit dem zugehörigen Bedarf an Ressourcen in der Errichtung. Öl, Stahl und Beton haben uns Glauben gemacht die natürlichen Begebenheiten bei der Gestaltung von Gebäuden wenig beachten zu müssen. Immer neue Techniken zum Betrieb und zur Klimatisierung von Gebäuden waren die Zukunft. Der Klimawandel und die Ressourcenknappheit sind Aufforderungen zur Veränderung. Das Voranschreiten der Reform des Bauwesens hat somit zentrale Bedeutung zur Erreichung der Nachhaltigkeitsziele und um unsere Gesellschaft zukunftsfähig zu machen. Klimaangepasste Architekturkonzepte und die Verwendung von klimaaktiven Naturbaustoffen werden einen wesentlichen Beitrag zum Ressourcenschutz erbringen.
Multi residential buildings, developed as highly energy-efficient and airtight are nowadays often fitted with mechanical Ventilation Systems as a way to overcome shortcomings and even defects tinked to indoor climate. The presented study investigates the potential of low-emitting. natural building materials with hygroscopic properties to contribute to a healthy and comfortable indoor environment, while reducing the need for mechanical Ventilation.
A selection of natural building materials suitable for application as internal partition walls has been investigated with regards to their water vapour adsorption capacity.
Special emphasis was placed on the investigation of modified earth plasters as well as wood-based materials, used as wall lining to provide increased adsorption capacities.
In addition, tests on materials emissions (formaldehyde, VOCs, SVOCs and radon) as well as adsorption tests of airborne pollutants have been conducted in specially-designed fest chambers. All tests were performed at either the material or the component tevel.
Overall results to date suggest that natural materials contribute to an improved indoor environment quality through an increased moisture-buffering capacity, low emissions and the potential to adsorb airborne pollutants, therefore reducing the need for mechanical Ventilation.
The inhalation of radon (222Rn) decay products is the leading cause of lung cancer apart from tobacco smoking. Besides the permeation of radon from the subsoil through the basement as main source of radon in indoor air, also building materials have to be taken into consideration, especially at low air change rates in buildings. The Construction Products Regulation (EC, 2010) gives essential requirements for construction works regarding the release of dangerous substances such as toxic gases and radiation to which radon can be assigned. The recently adopted Basic Safety Standards Directive (EC, 2013), which has to be ratified by each European member state in between the next three years sets reference levels for indoor radon concentrations for the first time. In research project financed by the German Ministry for the Environment, Nature Conservation, Building and Nuclear Safety a practical, reliable and easily applicable test procedure for the determination of radon exhalation from building materials – based on ISO 16000-9 (ISO, 2006) and CEN/TS 16516 (CEN, 2013) – should be developed. In contrast to the static test procedure published by Richter et al. (2013), dynamically operated test chambers shall be foregrounded. First results of this study are presented, focused on the reliable measurement of radon background concentration and the selection of suitable radon test devices, representing the basic elements of the subsequent work.
Determination of radon exhalation rates from construction materials using VOC emission test chambers
(2013)
Entwicklung einer praxisnahen Prüfmethode zur Bestimmung der Radon-Exhalation aus Bauprodukten
(2012)
The inhalation of 222Rn (radon) is one of the most important reasons for lung cancer, after smoking. Usually, the geological subsoil and the building ground are the dominant sources for enhanced indoor radon levels. Additionally, building materials can increase indoor radon concentrations when these materials contain higher contents of 226Ra (radium), especially in combination with low air exchange rates. For a realistic estimation of indoor radon
concentrations, it is helpful to carry out measurements of radon exhalation rates from relevant materials using emission test chambers. In Germany, it is aspired to limit the total indoor radon concentration to 100 Bq/m3, whereby building materials should contribute at most 20 Bq/m3. Within a project financed by the German Institute for Construction Technology (DIBt), a practical oriented measurement procedure of the radon exhalation of building materials in accordance to ISO 16000-9 was developed to have a means for the assessment of these materials with respect to their indoor use. Test chambers with different volumes were used. The tested materials were mainly used for wall constructions (e.g., bricks, light-weight concrete) and have known specific radium activities and radon exhalation rates.
In dieser Arbeit wird die Entwicklung sowie Validierung eines Verfahrens zur Erzeugung langzeitstabiler VOC-Gasgemische im Konzentrationsbereich zwischen wenigen μg/m³ und einigen 100 μg/m³ beschrieben. Das Prinzip basiert auf der Verdampfung von Reinsubstanzen, die separat in Fläschchen aus Edelstahl gefüllt sind und in ihnen temperiert werden. Je nach Dampfdruck der eingefüllten Verbindungen tritt mehr oder weniger Substanz aus der Flüssig- in die Gasphase über. Ein in die Flaschen eingeleitetes Trägergas nimmt Substanzgas aus dem Gasraum auf und transportiert es in eine Gasmischkammer, in der alle Substanzdämpfe vereinigt werden. Der Trägergasstrom ist dabei so klein, dass er das Quasigleichgewicht in den Fläschchen nur wenig stört und wegen des schnellen Stoffübergangs als gesättigt angenommen werden kann. Durch die Kombination von Verdampfungstemperatur, Träger- und Verdünnungsgasflüssen ist die Einstellung eines beliebigen Konzentrationsniveaus des Gasgemischs möglich. Mit dem entwickelten Aufbau war es möglich, ein Gasgemisch aus insgesamt 25 Komponenten zu generieren. Dabei konnte für 16 der Komponenten eine stabile und reproduzierbare Gaskonzentration nachgewiesen werden. Bei den übrigen waren teilweise starke Schwankungen über den Versuchszeitraum zu beobachten. Das konnte auf konstruktionsseitige Undichtigkeiten an den Fläschchen bzw. im Leitungssystem zurückgeführt werden, die schließlich nicht komplett beseitigt werden konnten. Ein Senkeneffekt in der Anlage kann ausgeschlossen werden, und die chemische Stabilität der eingefüllten Substanzen konnte – mit Ausnahme einiger Aldehyde – nachgewiesen werden. Das Verfahren wurde erfolgreich für die Generierung von Gasstandards für einen Ringversuch eingesetzt. Ferner fand es Anwendung in einem Materialtest, bei dem die sorbierenden Eigenschaften eines Bauprodukts unterschiedlicher Zusammensetzung gegenüber den Gaskomponenten untersucht wurden. Damit konnte die Praxistauglichkeit gezeigt werden.
With a gas mixing system (GMS) developed in our laboratory we created a gas mixture of
four substances. Adsorptive wall materials of four different compositions were exposed to this
gas mixture, consisting of 1-pentanol, hexanal, butyl acetate and n-decane. Aim of this study
was to scrutinize the ability of these samples to reduce the concentration of the supplied gas.
This capacity is expressed in the sorption flux F or area specific adsorption rate respectively.
The test was performed referring to a draft of ISO 16000-24.