TY - GEN A1 - Bresch, Harald A1 - Meyer-Plath, Asmus A1 - Burgdorf, T. A1 - Packroff, R. A1 - Apel, P. A1 - Adolf, P. A1 - Jesse, A. A1 - Leuschner, C. A1 - Bosse, H. A1 - Dubbert, W. A1 - Epp, A. A1 - Gebel, T. A1 - Götz, M. A1 - Herzberg, F. A1 - Hornbogen, T. A1 - Kersten, N. A1 - Kneuer, C. A1 - Kujath, P. A1 - Pipke, R. A1 - Plitzko, s. A1 - Schlesier, K. A1 - Schröder, F. A1 - Schwirn, K. A1 - Sommer, Y. A1 - Tentschert, J. A1 - Völker, D. A1 - Wolf, T. T1 - 1. Bilanz zur gemeinsamen Forschungsstrategie der Ressortforschungseinrichtungen des Bundes 'Nanotechnologie - Gesundheits- und Umweltrisiken von Nanomaterialien' (2007 - 2011) KW - Nanotechnologie KW - Nanopartikel KW - Nanomaterial KW - Bundesoberbehörden KW - Forschungsstrategie PY - 2013 SP - 1 EP - 124 CY - Berlin AN - OPUS4-28538 LA - deu AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CHAP A1 - Schießl, P. A1 - Meng, Birgit A1 - Adam, G. A1 - Rößler, G. A1 - Schröder, P. A1 - Schwamborn, B. A1 - Wallner, B. A1 - Wiegrink, K. ED - Zilch, K. ED - Diederichs, C. J. T1 - Baustoffe PY - 2002 SN - 3-540-65760-6 IS - Kap. 3.1 SP - 3-3-3-60 PB - Springer CY - Berlin AN - OPUS4-2070 LA - deu AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CHAP A1 - Schießl, P. A1 - Meng, Birgit A1 - Rößler, G. A1 - Schröder, P. A1 - Schwamborn, B. A1 - Spengler, A. A1 - Wallner, B. ED - Zilch, K. ED - Diederichs, C.J. ED - Katzenbach, R. ED - Beckmann, K. J. T1 - Konstruktiver Ingenieurbau und Hochbau KW - Baustoffe KW - Beton KW - Bindemittel KW - Zement PY - 2012 SN - 978-3-642-14449-3 IS - Kap. 3.1 SP - 966 EP - 1038 PB - Springer ET - 2. Aufl. AN - OPUS4-25844 LA - deu AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - GEN A1 - Greenwood, J. A1 - Schröder, Hartmut A1 - Trubiroha, Peter A1 - Franke, P. A1 - Hufenus, R. T1 - Durability standards for goesynthetics - The tests for weathering and biological resistance T2 - 1st European Geosynthetics Conference (EUROGEO 1) CY - Maastricht, The Netherlands DA - 1996-09-30 KW - Bewitterung KW - Beständigkeit KW - Material, geosynthetisch KW - Normung PY - 1996 SN - 90-5410-836-3 SP - 637 EP - 642 PB - Balkema CY - Rotterdam AN - OPUS4-644 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - GEN A1 - Müller-Rochholz, J. A1 - Bronstein, Z. A1 - Schröder, Hartmut A1 - Rybak, Thomas A1 - Zeynalov, Eldar A1 - v. Maubeuge, K. P. ED - Delmas, P. T1 - Long-term behaviour of geosynthetic drains - excavations on landfills after up to 12 years service T2 - 7th International Conference on Geosynthetics (ICG) CY - Nice, France DA - 2002-09-22 PY - 2002 SN - 90-5809-525-8 VL - 2 SP - 565 EP - 568 PB - Balkema CY - Lisse AN - OPUS4-1902 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - JOUR A1 - Molnarne, Maria A1 - Mizsey, P. A1 - Schröder, Volkmar T1 - Flammability of gas mixtures - Part 2: Influence of inert gases N2 - Ternary systems, which contain flammable gas, inert gas and air, were studied in order to give the user an evaluation of the ISO 10156 calculation method for the flammability of gas mixtures. While in Part 1 of this article the fire potential of flammable gases was the focal point, the influence of inert gases on the flammability of gas mixtures was studied in Part 2. The inerting capacity of an inert gas is expressed by the dimensionless K value, the so-called “coefficient of nitrogen equivalency”. The experimental determination of K values is demonstrated by using explosion diagrams. The objective of this study was to compare the estimated results, given by ISO 10156, with measurements of explosion ranges based on the German standard DIN 51649-1, given by CERN and CHEMSAFE. The comparison shows that ISO 10156, Table 1, supplies conservative K values, which can be regarded as safe in all cases. Nevertheless, in a number of cases ISO underestimates the inerting capacity, so that non-flammable gas mixtures are considered flammable. KW - Gas classification KW - Flammability KW - Explosion limits KW - Inerting KW - Calculation method PY - 2005 DO - https://doi.org/10.1016/j.jhazmat.2005.01.033 SN - 0304-3894 VL - 121 IS - 1-3 SP - 45 EP - 49 PB - Elsevier CY - Amsterdam AN - OPUS4-7448 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CONF A1 - von Woedtke, T. A1 - Abel, P. A1 - Schröder, K. A1 - Schwock, A. A1 - Krüger, Jörg A1 - Kautek, Wolfgang T1 - Biosensor-Membranen mit "Analyt-Fenster" T2 - 8. Internationale Messe mit Kongreß für Sensoren, Meßaufnehmer & Systeme ; 8th International Fair with Congress for Sensors, Transducers & Systems CY - Nürnberg, Deutschland DA - 1997-05-13 PY - 1997 VL - 2 SP - 101 EP - 106 PB - ACS Organisations GmbH CY - Wunstorf AN - OPUS4-11959 LA - deu AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - GEN A1 - Holtappels, Kai A1 - Schröder, Volkmar A1 - Kobiera, A. A1 - Wolanski, P. A1 - Braithwaite, M. A1 - Pasman, H. T1 - Gas explosion safety characteristics and anomalies at unusual conditions T2 - 12th International Symposium on Loss and Safety Promotion in the Process Industries CY - Edinburgh, Scotland, UK DA - 2007-05-22 KW - Process safety KW - Hydrocarbon oxidation KW - Combustion phenomena KW - Combustion regions PY - 2007 SN - 978-0-85295-508-6 SN - 0307-0492 N1 - Serientitel: IChemE symposium series – Series title: IChemE symposium series IS - 153 SP - 1 EP - 7(?) PB - IChemE CY - Rugby, Warwickshire AN - OPUS4-14849 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - CHAP A1 - Gehlen, C. A1 - Kränkel, T. A1 - Meng, Birgit A1 - Osterminski, K. A1 - Meyer, F. A1 - Schröder, P. ED - Zilch, K. T1 - Baustoffe im Betonbau N2 - In dem Kap. „Baustoffe im Betonbau“ werden zunächst die Baustoffe vorgestellt, die für die Herstellung von Stahlbeton- und Spannbetonbauwerken erforderlich sind (im Wesentlichen Beton, Betonstahl und Spannstahl). Herstellungsbedingte, typische Eigenschaftsprofile der Baustoffe werden aufgezeigt und ein Bezug zu entsprechenden Anwendungsgebieten hergestellt. KW - Betontechnik KW - Bindemittel KW - Betonstahl KW - Spannstahl KW - Herstellungsprozesse KW - Eigenschaften KW - Anwendungsbeispiele PY - 2019 SN - 978-3-658-21749-5 DO - https://doi.org/10.1007/978-3-658-21749-5_15-1 SP - 1 EP - 63 PB - Springer Fachmedien Wiesbaden GmbH AN - OPUS4-54173 LA - deu AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - JOUR A1 - Schmidt, C. A1 - Schierack, P. A1 - Gerber, U. A1 - Schröder, C. A1 - Choi, Youngeun A1 - Bald, Ilko A1 - Lehmann, W. A1 - Rödiger, S. T1 - Streptavidin Homologues for Applications on Solid Surfaces at High Temperatures N2 - One of the most commonly used bonds between two biomolecules is the bond between biotin and streptavidin (SA) or streptavidin homologues (SAHs). A high dissociation constant and the consequent high-temperature stability even allows for its use in nucleic acid detection under polymerase chain reaction (PCR) conditions. There are a number of SAHs available, and for assay design, it is of great interest to determine as to which SAH will perform the best under assay conditions. Although there are numerous single studies on the characterization of SAHs in solution or selected solid phases, there is no systematic study comparing different SAHs for biomolecule-binding, hybridization, and PCR assays on solid phases. We compared streptavidin, core streptavidin, traptavidin, core traptavidin, neutravidin, and monomeric streptavidin on the surface of microbeads (10–15 μm in diameter) and designed multiplex microbead-based experiments and analyzed simultaneously the binding of biotinylated oligonucleotides and the hybridization of oligonucleotides to complementary capture probes. We also bound comparably large DNA origamis to capture probes on the microbead surface. We used a real-time fluorescence microscopy imaging platform, with which it is possible to subject samples to a programmable time and temperature profile and to record binding processes on the microbead surface depending on the time and temperature. With the exception of core traptavidin and monomeric streptavidin, all other SA/SAHs were suitable for our investigations. We found hybridization efficiencies close to 100% for streptavidin, core streptavidin, traptavidin, and neutravidin. These could all be considered equally suitable for hybridization, PCR applications, and melting point analysis. The SA/SAH–biotin bond was temperature-sensitive when the oligonucleotide was mono-biotinylated, with traptavidin being the most stable followed by streptavidin and neutravidin. Mono-biotinylated oligonucleotides can be used in experiments with temperatures up to 70 °C. When oligonucleotides were bis-biotinylated, all SA/SAH–biotin bonds had similar temperature stability under PCR conditions, even if they comprised a streptavidin variant with slower biotin dissociation and increased mechanostability. KW - Biopolymers Probes KW - Hybridization KW - Fluorescence KW - Genetics PY - 2020 DO - https://doi.org/10.1021/acs.langmuir.9b02339 VL - 36 IS - 2 SP - 628 EP - 636 PB - American Chemical Society Publication CY - Washington AN - OPUS4-50357 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER -