TY - JOUR A1 - Polte, J. A1 - Polte, M. A1 - Lorenz, D. A1 - Oberschmidt, D. A1 - Sturm, Heinz A1 - Uhlmann, E. T1 - Binderless-cBN as cutting material for ultra-precision machining of stainless steel N2 - The ultra–precision cutting of steel materials is possible but needs modifications of machine tools or the workpiece material. One approach of actual research is the development of cutting materials that gives the opportunity for direct cutting of surfaces with ultra–precision quality. Binderless–cBN is here one of the most promising materials. The paper shows results of experimental studies with binderless–cBN as cutting material while turning stainless steel. Various investigations were carried out to determine the wear mechanisms. Furthermore, measurements are shown regarding the surface quality. The achieved results show the high potential ofbinderless–cBN as cutting material for the machining of steel. KW - Cubic boron nitride KW - Stainless steel KW - Ultra-precision PY - 2014 DO - https://doi.org/10.4028/www.scientific.net/AMR.1018.107 SN - 1022-6680 SN - 1662-8985 VL - 1018 SP - 107 EP - 114 PB - Trans Tech Publ. CY - Zurich AN - OPUS4-32377 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - JOUR A1 - Holtappels, Kai A1 - Dietlen, Siegmund A1 - Schulze, Heinz-Peter A1 - Stickling, J. A1 - Schönbucher, A. T1 - Experimentelle Bestimmung des Inert- und Brenngaseinflusses auf die Stabilitätsgrenzdrücke von Ethin PY - 2003 DO - https://doi.org/10.1002/cite.200303192 SN - 0009-286X SN - 1522-2640 VL - 75 IS - 7 SP - 909 EP - 912 PB - Wiley-VCH Verl. CY - Weinheim AN - OPUS4-2611 LA - deu AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - JOUR A1 - Mierczynska, A. A1 - Friedrich, Jörg Florian A1 - Maneck, Heinz-Eberhard A1 - Boiteux, G. A1 - Jeszka, J.K. T1 - Segregated network polymer/carbon nanotubes composites N2 - In this work we present the preparation of conductive polyethylene/carbon nanotube composites based on the segregated network concept. Attention has been focused on the effect of decreasing the amount of filler necessary to achieve low resistivity. Using high- and low-grade single-walled carbon nanotube materials we obtained conductive composites with a low percolation threshold of 0.5 wt.% for high-grade nanotubes, about 1 wt% for commercial nanotubes and 1.5 wt% for low-grade material. The higher percolation threshold for low-grade material is related to low effectiveness of other carbon fractions in the network formation. The electrical conductivity was measured as a function of the single-walled carbon nanotubes content in the polymer matrix and as a function of temperature. It was also found that processing parameters significantly influenced the electrical conductivity of the composites. Raman spectroscopy was applied to study single wall nanotubes in the conductive composites. KW - Polymer KW - Single-walled carbon nanotubes KW - Composite KW - Segregated network KW - Sintering KW - Conductivity KW - Raman spectroscopy PY - 2004 DO - https://doi.org/10.2478/BF02475579 SN - 1644-3624 SN - 1895-1066 VL - 2 IS - 2 SP - 363 EP - 370 PB - Central European Science Journals CY - Warsaw AN - OPUS4-3583 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER - TY - JOUR A1 - Maibohm, C. A1 - Brewer, J.R. A1 - Sturm, Heinz A1 - Balzer, F. A1 - Rubahn, H.-G. T1 - Bleaching and coating of organic nanofibers N2 - Based on an analysis of the diffusive heat flow equation, we determine limits on the localization of heating of soft materials and biological tissues by electromagnetically excited nanoparticles. For heating by rf magnetic fields or heating by typical continuous wave lasers, the local temperature rise adjacent to magnetic or metallic nanoparticles is negligible. However, heat dissipation for a large number of nanoparticles dispersed in a macroscopic region of a material or tissue produces a global temperature rise that is orders of magnitude larger than the temperature rise adjacent to a single nanoparticle. One approach for producing a significant local temperature rise on nanometer length scales is heating by high-power pulsed or modulated lasers with low duty cycle. KW - Nanofibers KW - Degradation KW - Bleaching KW - Luminescence KW - Silicon monoxide KW - Diffusion barrier KW - Security labels PY - 2006 DO - https://doi.org/10.1063/1.2335783 SN - 0021-8979 SN - 1089-7550 VL - 100 SP - 054304-1 - 054304-6 PB - American Institute of Physics CY - Melville, NY AN - OPUS4-12761 LA - eng AD - Bundesanstalt fuer Materialforschung und -pruefung (BAM), Berlin, Germany ER -