TY - JOUR A1 - Richter, Matthias A1 - Jann, Oliver A1 - Kemski, J. A1 - Schneider, Uwe A1 - Krocker, Christian A1 - Hoffmann, B. T1 - Determination of radon exhalation from construction materials using VOC emission test chambers N2 - The inhalation of 222Rn (radon) decay products is one of the most important reasons for lung cancer after smoking. Stony building materials are an important source of indoor radon. This article describes the determination of the exhalation rate of stony construction materials by the use of commercially available measuring devices in combination with VOC emission test chambers. Five materials – two types of clay brick, clinker brick, light-weight concrete brick, and honeycomb brick – generally used for wall constructions were used for the experiments. Their contribution to real room concentrations was estimated by applying room model parameters given in ISO 16000-9, RP 112, and AgBB. This knowledge can be relevant, if for instance indoor radon concentration is limited by law. The test set-up used here is well suited for application in test laboratories dealing with VOC emission testing. KW - Radon exhalation KW - Radon measurement KW - Building material KW - Emission test chamber KW - Indoor air quality KW - Real room radon concentrations PY - 2013 DO - https://doi.org/10.1111/ina.12031 SN - 0905-6947 SN - 1600-0668 VL - 23 IS - 5 SP - 397 EP - 405 PB - Danish Techn. Pr. CY - Copenhagen AN - OPUS4-29408 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Richter, Matthias A1 - Jann, Oliver T1 - Determination of radon exhalation rates from construction materials using VOC emission test chambers T2 - IAQ 2013 - Environmental health in low energy buildings CY - Vancouver, British Columbia, Canada DA - 2013-10-15 KW - Radon exhalation KW - Radon measurement KW - Construction material KW - Emission test chamber KW - Indoor air quality PY - 2013 SN - 2166-4870 SP - 508 EP - 512 AN - OPUS4-29407 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Richter, Matthias A1 - Wilke, Olaf A1 - Jann, Oliver T1 - Use of emission test chambers for the determination of chemical emissions from construction materials T2 - 1st International conference on the chemistry of construction materials CY - Berlin, Germany DA - 2013-10-07 KW - VOC KW - Emission from materials KW - Construction materials KW - Emission test chamber PY - 2013 SN - 978-3-936028-75-1 N1 - Serientitel: GDCh-Monographien – Series title: GDCh-Monographien VL - 46 SP - 259 EP - 262 AN - OPUS4-29480 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Richter, Matthias T1 - Use of emission test chambers for the determination of chemical emissions from construction materials T2 - 1st International Conference on the Chemistry of Construction Materials CY - Berlin, Germany DA - 2013-10-07 PY - 2013 AN - OPUS4-29626 LA - deu AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Richter, Matthias T1 - Approach to the improvement of the traceability for (S)Voc-measurement T2 - 7th Gas Analysis Symposium & Exhibition CY - Rotterdam, Netherlands DA - 2013-06-05 PY - 2013 AN - OPUS4-29625 LA - deu AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Richter, Matthias T1 - Determination of radon exhalation from building materials using emission test chambers T2 - IAQ 2013 Environmental Health in Low Energy Buildings CY - Vancouver, Canada DA - 2013-10-15 PY - 2013 AN - OPUS4-29627 LA - deu AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Richter, Matthias T1 - Test procedure for the evaluation of adsorptive buildings materials T2 - Healthy Buildings 2012 - 10th International Conference CY - Brisbane, Australia DA - 2012-07-08 PY - 2012 AN - OPUS4-27449 LA - deu AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Wilke, Olaf A1 - Schulz, Christian A1 - Richter, Matthias T1 - Test chamber measurements for the robustness validation of the test method for the determination of VOC-emissions from construction products into indoor air N2 - The document N129 of CEN/TC 351/WG 2 “Construction products - Assessment of emissions of regulated dangerous substances from construction products” is a draft Standard for the determination of emissions from construction products into indoor air. The determination is done by the use of emission test chambers (ISO 16000-9) in combination with appropriate sampling and analysis methods. Although the emission test chamber method is established since about 20 years it is still not validated. However, during the last 5 years some roundrobin tests (Wilke et al., 2009) showed good comparability for the testing in different laboratories using different test parameters. Nevertheless it was about time to Start a validation process. T2 - Healthy Buildings 2012 - 10th International conference CY - Brisbane, Australia DA - 08.07.2012 KW - VOC KW - Emission studies KW - Product safety KW - Emission test chamber PY - 2012 SN - 978-1-921897-40-5 SP - 1 EP - 2 (1D.2) AN - OPUS4-27560 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Wilke, Olaf A1 - Richter, Matthias A1 - Brödner, Doris T1 - Emission study of furniture boards for the next version of the German eco label 'Blue Angel' for wood and wooden products (RAL-UZ 38) N2 - In 1998 the German environmental label “Blue Angel” for wood and wooden products was the first of a series of “Blue Angels” for consumer products which set maximum values for the emission of volatile organic compounds (VOC). Since then the emission of VOC from consumer and construction products got more and more attention. In 2001 the AgBB-scheme (AgBB: Committee for health-related evaluation of building products, 2010) was developed in Germany for a health-related evaluation of building products. The AgBB-scheme has been implemented to all “Blue Angels” but RAL-UZ 38. Therefore it was about time to include the AgBB-scheme also for this environmental label. T2 - Healthy Buildings 2012 - 10th International conference CY - Brisbane, Australia DA - 08.07.2012 KW - Certification/labelling KW - Sources/emissions KW - VOC KW - Emission studies KW - Healthy homes and buildings PY - 2012 SN - 978-1-921897-40-5 SP - 1 EP - 2 (1D.8) AN - OPUS4-27559 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - RPRT A1 - Jann, Oliver A1 - Richter, Matthias A1 - Kemski, J. A1 - Klingel, R. A1 - Schneider, Uwe A1 - Krocker, Christian T1 - Entwicklung einer praxisnahen Prüfmethode zur Bestimmung der Radon-Exhalation aus Bauprodukten KW - Radon KW - Baumaterialien KW - Emissionsprüfkammer KW - Prüfmethode PY - 2012 SN - 978-3-8167-8723-5 VL - T 3277 SP - 1 EP - 74 PB - Fraunhofer IRB Verl. CY - Stuttgart AN - OPUS4-26572 LA - deu AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Richter, Matthias A1 - Beck, Oliver A1 - Wilke, Olaf A1 - Pyza, Lars A1 - Seeger, Stefan T1 - Test procedure for the evaluation of adsorptive building materials N2 - Construction materials working on the basis of physisorption or chemisorptions are considered as an additional means to improve indoor air quality. Some manufacturers promise a complete demineralisation of VOCs into C02 and water being not possible for most of typical indoor air pollutants. On the contrary, sometimes new substances are generated due to surface reactions, e.g. formaldehyde (Salthammer and Fuhrmann, 2007). For evaluating such products a testing system was built up at BAM enabling testing under defined, reproducible and realistic conditions. Tue VOC test gas is provided by a gas mixing system (GMS) developed at our institute (Richter, 2010). VOC gas mixtures with retraceable concentrations between 1 µg m·3 up to 1.5 mg m·3 can be produced. A gypsum board promoted as an 'air cleaner' was put in a 1 m3 emission test chamber connected with the GMS. The board was exposed to a gas mixture of four VOCs - ethyl acetate, hexanal, (+)-a-pinene and R-(+)-limonene - with gas concentrations between 600 µg m·3 and 1,440 µg m·3 for a period of 14 days. T2 - Healthy Buildings 2012 - 10th International conference CY - Brisbane, Australia DA - 08.07.2012 KW - Air cleaning KW - Sorptive construction materials KW - Test procedure KW - Volatile organic compound KW - Test gas generation KW - Healthy homes and buildings KW - Material and construction KW - Product safety KW - Risk assessment PY - 2012 SN - 978-1-921897-40-5 SP - 43 EP - 44 (Session 4B) AN - OPUS4-27558 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Nohr, Michael A1 - Wiegner, Katharina A1 - Richter, Matthias A1 - Horn, Wolfgang T1 - Development of a reference material for the measurement of (S)VOC in emission test chambers N2 - Generally most of the daily time citizens in western countries spend indoors (Brasche and Bischof, 2005). Several investigations Show that harmful (semi-) volatile organic Compounds ((S)VOC) can emit from fumiture and building products into indoor air. Additionally, a significant impact of (S)VOC on the human health is also given (Boeglin et al., 2005). To assess the health impact and air quality, reliable and significant measurements and analytical procedures for the detection of contaminants in indoor air are necessary. Several studies show that the results from inter-Iaboratory round robin test for such (S)VOC measurements show considerable variations up to 300 % (Howard-Reed et al., 2007). Therefore standardisations of Methods for sample preparation, air sampling and for the measurement of (S)VOC emissions are important to get reproducible results. MACPoll (Metrology for Chemical pollutants in air) is one section ofthe environment call of EMRP (European Metrology Research Projekt) and aims to improve the analysis of gaseous pollutants in air. By investigate the traceability for the measurement of (S)VOC in indoor air one part of this project deals with the addressed problems. T2 - Healthy Buildings 2012 - 10th International conference CY - Brisbane, Australia DA - 08.07.2012 KW - VOC KW - Sources/emissions KW - Measurements KW - Laboratory studies PY - 2012 SN - 978-1-921897-40-5 SP - 1 EP - 2 (5B.10) AN - OPUS4-27568 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Richter, Matthias A1 - Jann, Oliver A1 - Kemski, J. A1 - Klingel, R. A1 - Schneider, Uwe A1 - Krocker, Christian T1 - Investigations on radon exhalation of different building materials N2 - 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. T2 - Indoor Air 2011, 12th International conference on indoor air quality and climate CY - Austin, TX, USA DA - 05.06.2011 KW - Radon exhalation KW - Building material KW - Emission test chamber KW - Indoor air PY - 2011 IS - Paper 768 SP - 1 EP - 2 AN - OPUS4-24155 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Richter, Matthias T1 - Untersuchungen zur Entwicklung eines praxisnahen Messverfahrens für die Ermittlung der Radonexhalation aus Baumaterialien T2 - 18. WaBoLu-Innenraumtage - Energiesparlampen und andere Innenraumfragen CY - Berlin, Germany DA - 2011-05-30 PY - 2011 AN - OPUS4-24143 LA - deu AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Richter, Matthias T1 - Investigations on radon exhalation of different buildings materials T2 - Indoor Air 2011 CY - Austin, TX, USA DA - 2011-06-05 PY - 2011 AN - OPUS4-23871 LA - deu AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - THES A1 - Richter, Matthias T1 - Entwicklung, Validierung und Anwendung eines Verfahrens zur Erzeugung langzeitstabiler VOC-Gasgemische N2 - 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. N2 - The development as well as the validation of a gas mixing system (GMS) that enables dynamic and traceable production of stable long-term VOC gas mixtures within the range between a few μg/m³ and a few 100 μg/m³, is discussed. In this method pure liquid substances that are filled into stainless steel bottles are kept separately at a constant temperature, evaporated according to their vapour pressure and removed by a small inert gas flow. They are finally united in a gas mixing chamber. The carrier gas must be as small as possible so that the quasi-Equilibrium between the gas space and the liquid phase in the substance bottles will not be disturbed. The carrier gas is assumed to be saturated with substance gas due to a long residence time in the bottles and a fast phase transition. Any concentration Level of the gas mixture can be generated by a combination of vaporization temperature, carrier and dilution gas flows. With the GMS a mixture of 25 VOCs was prepared. For 16 compounds stable and reproducible gas concentrations were realized. Due to not completely removed leakage of some substance bottles and the tubing respectively, variation of the concentration of the remaining compounds was found. A sink effect as another reason for this variation could be expelled and the chemical stability of the vaporized substances proved with the exception of some aldehydes. The procedure was successfully applied in a round robin test and a material test. In the latter adsorption of VOCs on building products was scrutinized. In this way the applicability of the GMS could be shown. T3 - BAM Dissertationsreihe - 66 KW - Kalibrierung KW - Ringversuche KW - Materialadsorption KW - VOC-Gasgenische KW - Prüfgasgenerierung PY - 2010 UR - https://nbn-resolving.org/urn:nbn:de:kobv:b43-920 SN - 978-3-9813550-9-3 SN - 1613-4249 VL - 66 SP - 1 EP - 174 PB - Bundesanstalt für Materialforschung und -prüfung (BAM) CY - Berlin AN - OPUS4-92 LA - deu AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Richter, Matthias T1 - Development and validation of a new gas mixing device for low concentrations T2 - Healthy Buildings 2009 CY - Syracuse, NY, USA DA - 2009-09-13 PY - 2009 AN - OPUS4-19899 LA - deu AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Richter, Matthias T1 - Application of a new gas mixing device to test adsorptive wall materials T2 - Healthy Buildings 2009 CY - Syracuse, NY, USA DA - 2009-09-13 PY - 2009 AN - OPUS4-19898 LA - deu AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Richter, Matthias A1 - Horn, Wolfgang A1 - Jann, Oliver A1 - Brödner, Doris A1 - Till, Carola T1 - Application of a new gas mixing device to test adsorptive wall materials N2 - 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. T2 - Healthy buildings 2009 - 9th International conference & exhibition CY - Syracuse, NY, USA DA - 2009-09-13 KW - Gas mixing device KW - Adsorptive wall material KW - Sorption flux PY - 2009 IS - Paper 259 SP - 1 EP - 2 CY - Syracuse, NY, USA AN - OPUS4-20126 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - Richter, Matthias A1 - Jann, Oliver A1 - Horn, Wolfgang A1 - Pyza, Lars T1 - Development and validation of a new gas mixing device for low concentrations N2 - In our laboratory we developed a gas mixing system (GMS) that is capable of producing stable VOC gas mixtures with concentrations of 1-1000 µg m-3. The single gases are produced by evaporating the pure and liquid substances. T2 - Healthy buildings 2009 - 9th International conference & exhibition CY - Syracuse, NY, USA DA - 2009-09-13 KW - Gas mixing device KW - Low VOC concentrations KW - Gas atmosphere PY - 2009 IS - Paper 263 SP - 1 EP - 2 CY - Syracuse, NY, USA AN - OPUS4-20124 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER -