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Auswahl der wissenschaftlichen Literatur zum Thema „Non oxyde ceramic“
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Zeitschriftenartikel zum Thema "Non oxyde ceramic"
Martinelli, Antonio E., Rubens M. Nascimento, Tarcisio E. de Andrade, Augusto J. A. Buschinelli, Jorge C. L. B. S. Pereira, Sonja M. Gross und Uwe Reisgen. „Wetting Oxide and Non-Oxide Ceramics with Active Metals“. Materials Science Forum 730-732 (November 2012): 164–69. http://dx.doi.org/10.4028/www.scientific.net/msf.730-732.164.
Der volle Inhalt der QuelleGao, Xiong, Jingyi Chen, Xiaotong Chen, Wenqing Wang, Zengchan Li und Rujie He. „How to Improve the Curing Ability during the Vat Photopolymerization 3D Printing of Non-Oxide Ceramics: A Review“. Materials 17, Nr. 11 (29.05.2024): 2626. http://dx.doi.org/10.3390/ma17112626.
Der volle Inhalt der QuelleKusunose, Takafumi, und Tohru Sekino. „Non-Oxide Ceramic Nanocomposites with Multifunctionality“. Key Engineering Materials 403 (Dezember 2008): 45–48. http://dx.doi.org/10.4028/www.scientific.net/kem.403.45.
Der volle Inhalt der QuelleKaradimas, George, und Konstantinos Salonitis. „Ceramic Matrix Composites for Aero Engine Applications—A Review“. Applied Sciences 13, Nr. 5 (26.02.2023): 3017. http://dx.doi.org/10.3390/app13053017.
Der volle Inhalt der QuelleBöttcher, Maike, Daisy Nestler, Jonas Stiller und Lothar Kroll. „Injection Moulding of Oxide Ceramic Matrix Composites: Comparing Two Feedstocks“. Key Engineering Materials 809 (Juni 2019): 140–47. http://dx.doi.org/10.4028/www.scientific.net/kem.809.140.
Der volle Inhalt der QuelleMitomo, Mamoru, und Günter Petzow. „Recent Progress in Silicon Nitride and Silicon Carbide Ceramics“. MRS Bulletin 20, Nr. 2 (Februar 1995): 19–22. http://dx.doi.org/10.1557/s0883769400049162.
Der volle Inhalt der QuelleWang, Ruzhuan, Dingyu Li und Weiguo Li. „Temperature dependence of hardness prediction for high-temperature structural ceramics and their composites“. Nanotechnology Reviews 10, Nr. 1 (01.01.2021): 586–95. http://dx.doi.org/10.1515/ntrev-2021-0041.
Der volle Inhalt der QuelleSilvestre, J., N. Silvestre und J. de Brito. „An Overview on the Improvement of Mechanical Properties of Ceramics Nanocomposites“. Journal of Nanomaterials 2015 (2015): 1–13. http://dx.doi.org/10.1155/2015/106494.
Der volle Inhalt der QuelleGalusek, D., Z. Lencés, P. Sajgalík und Ralf Riedel. „Thermal analysis study of polymer-to-ceramic conversion of organosilicon precursors“. Journal of Mining and Metallurgy, Section B: Metallurgy 44, Nr. 1 (2008): 35–38. http://dx.doi.org/10.2298/jmmb0801035g.
Der volle Inhalt der QuelleBao, X. Y., Song Li, Xiao Xia Tang und Yue Zhang. „Synthesis of Si-N-C Ceramic Composites by Pyrolysis of Polysilazane and Polycarbosilane“. Key Engineering Materials 512-515 (Juni 2012): 306–9. http://dx.doi.org/10.4028/www.scientific.net/kem.512-515.306.
Der volle Inhalt der QuelleDissertationen zum Thema "Non oxyde ceramic"
Schlienger, Sébastien. „Nouvelles voies de synthèses de carbones et céramiques non-oxydes à porosités contrôlées“. Thesis, Mulhouse, 2011. http://www.theses.fr/2011MULH5991.
Der volle Inhalt der QuelleNanoporous materials (meso-and / or micro-porous) target applications in relation to the adsorption phenomena such as catalysis, waste removal, gas or energy storage.... Recently, various types of syntheses have been developed to control the porosity and adapted to applications: direct route synthesis, nanocasting process, reactive templating. For most of them, they are used for the preparation of meso-and micro-porous oxide materials. The objective of this thesis was therefore to extend these methods to a wider range of materials in chemical composition, while keeping control of the porosity. Indeed, the porous oxides have a limited scope because, for example, their maximum operating temperature, their fragility under certain atmospheres or in some cases, their adsorption properties, are unsuitable. To reduce these limitations, we searched to extend the range of chemical composition of porous materials in the non-oxide field (carbon, nitride ceramics,...) while controlling their porosity. For this, different approaches were used. The first approach consisted to study formation mechanism of mesostructured carbon materials obtained directly by the self-assembly of a surfactant and a polymer carbon precursor. We were then able to determine the relevant parameters to control syntheses reproducibility taking place both in aqueous phase and by solvent evaporation. Analogies with the formation mechanisms of siliceous materials have been identified. With a better understanding of the formation mechanisms, we declined in a second time this method of direct synthesis to other materials by varying the nature of the precursors. Thus, a "green" synthesis of a carbonaceous material with ordered mesoporosity was developed in the absence of all toxic reagents such as formaldehyde and phenol, by using a natural precursor, the mimosa tannin. [...]
Ben, Miled Marwan. „Synthèse in situ de nanoparticules métalliques dans une matrice céramique dérivées de polymères précéramiques pour l'électrolyse de l'eau en milieu alcalin“. Electronic Thesis or Diss., Limoges, 2024. http://www.theses.fr/2024LIMO0083.
Der volle Inhalt der QuelleGlobal warming caused by human activity and the use of fossil fuels, urges the need to find new sources of carbon free energy. Dihydrogen (H2) more known as “hydrogen” is rapidly emerging as a technically viable and benign energy vector according to its ability to produce a higher density of combustion than fossil fuels and to produce only water as a waste product when used in a fuel cell. Moreover, its use generates no noise pollution, unlike the combustion engines currently in use. Nevertheless, it requires a very high degree of purity in order to avoid pollution of the catalytic materials contained in the cells. Nowadays, nearly 95% of the hydrogen produced is obtained by catalytic reforming of methane, and therefore requires purification processes that are often complex and costly. One way of avoiding these purification steps would be to produce hydrogen directly by electrolysis of water more known as water splitting. This process consists of separating a molecule of water under the action of an electric current (produced in a renewable way) to produce hydrogen and dioxygen (O2) at the electrodes of an electrolyser. Unfortunately, this reaction has kinetic limitations due to a very complex Oxygen Evolution Reaction (OER) mechanism, including several electrons and several reaction intermediates. The emergence of new anion exchange membrane technologies has paved the way for the use of electrolysis in alkaline media, thus allowing the use of non-noble transition metals as catalysts, which are less expensive than the metals traditionally used (Ir and Ru). Within this context, this PhD thesis has explored the synthesis of catalytic materials to reduce the energy and kinetic barriers of OER. In order to propose materials that are performant, stable over time and resistant to the aggressive environments imposed by the electrolysis of water in an alkaline medium, the polymer-derived ceramics (PDC) route has been selected as a synthesis method of choice. The interest of this method is to implement organosilicon polymers (here a polysilazane) serving as a molecular platform for the growth of non-noble metals via the use of metal complexes such as chlorides and acetylacetonates of nickel (Ni), iron (Fe) or cobalt (Co). This polymer modified by these metals serves as a precursor for the in situ formation of metal nanoparticles in a porous matrix based on the elements silicon (Si), carbon (C), oxygen (O) and nitrogen (N) allowing their accessibility and stability after heat treatment at 500 ° C under argon. This manuscript illustrated through five chapters describes works dedicated to the synthesis and characterization of Ni (chapter 3), Ni-Fe (chapter 4) and medium and high entropy alloys (chapter 5) nanoparticles which complete a state of the art (chapter 1) and a description of the materials and methods implemented during this thesis (chapter 2). The materials which have been prepared were studied at each stage of their synthesis through the implementation of complementary characterization tools before assessing their electrochemical performances; in particular by measuring the anodic overpotential during OER, in order to determine the best metal combinations. Post mortem tests were carried out to evaluate the potential of the prepared materials. Considering the simplicity of the synthesis route, and the low cost of reactants used, this work leads to a new family of materials and to several promising perspectives, not only for the development of efficient and stable catalysts for the OER but more generally for numerous applications in electrochemistry. These opportunities are now being addressed
Tao, Ming. „Proprietes electriques du joint de grains de la ceramique a base d'oxyde de zinc : application aux varistances basse-tension“. Toulouse 3, 1987. http://www.theses.fr/1987TOU30249.
Der volle Inhalt der QuelleSeron, Alain. „Synthèse ß'-SiAlON par hydrogéno réduction nitrurante : application à l'élaboration de films sur des composites thermostructuraux“. Orléans, 1993. http://www.theses.fr/1993ORLE2035.
Der volle Inhalt der QuelleGasse, Adrien. „Rôle des interfaces dans le brasage non réactif du SiC par les siliciures de Co et de Cu“. Grenoble INPG, 1996. http://www.theses.fr/1996INPG0114.
Der volle Inhalt der QuelleFayeulle, Dominique. „Elaboration et étude de révêtements céramiques à sous-couche d'accrochage cellulaire pour la protection chimique et thermique de composants de turbomachines“. Paris, ENMP, 1989. http://www.theses.fr/1989ENMP0149.
Der volle Inhalt der QuelleHassine, Nabile. „Microwave-assisted synthesis of non-oxide ceramic powders“. Thesis, University of Nottingham, 1994. http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.240494.
Der volle Inhalt der QuelleBras, François. „Étude et modélisation de l'endommagement des composites stratifiés SIC-SIC : exploitation d'essais statiques et de type Hopkinson“. Cachan, Ecole normale supérieure, 1996. http://www.theses.fr/1996DENS0012.
Der volle Inhalt der QuelleAshley, Nicholas J. „Defect Properties of Binary Non-Oxide Ceramics“. Thesis, Imperial College London, 2009. http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.520879.
Der volle Inhalt der QuelleMansour, Rabih. „Mode I Interlaminar Fracture Properties of Oxide and Non-Oxide Ceramic Matrix Composites“. University of Akron / OhioLINK, 2017. http://rave.ohiolink.edu/etdc/view?acc_num=akron1494248628194216.
Der volle Inhalt der QuelleBücher zum Thema "Non oxyde ceramic"
Stuart, Hampshire, und Commission of the European Communities., Hrsg. Non-oxide technical and engineering ceramics. London: Elsevier Applied Science, 1986.
Den vollen Inhalt der Quelle findenMartin, Jansen, Hrsg. High performance non-oxide ceramics. Berlin: Springer, 2002.
Den vollen Inhalt der Quelle findenHampshire, Stuart, Hrsg. Non-Oxide Technical and Engineering Ceramics. Dordrecht: Springer Netherlands, 1987. http://dx.doi.org/10.1007/978-94-009-3423-8.
Der volle Inhalt der QuelleJansen, Martin, Hrsg. High Performance Non-Oxide Ceramics II. Berlin, Heidelberg: Springer Berlin Heidelberg, 2002. http://dx.doi.org/10.1007/3-540-45623-6.
Der volle Inhalt der QuelleStuart, Hampshire. Non-Oxide Technical and Engineering Ceramics. Dordrecht: Springer Netherlands, 1987.
Den vollen Inhalt der Quelle findenHuang, Zhenkun, und Laner Wu. Phase Equilibria Diagrams of High Temperature Non-oxide Ceramics. Singapore: Springer Singapore, 2018. http://dx.doi.org/10.1007/978-981-13-0463-7.
Der volle Inhalt der QuelleMüller, E., M. Jansen, F. Aldinger, H. J. Seifert, U. Herzog, S. Frühauf, B. Jäschke, T. Jäschke, G. Roewer und K. Trommer. High Performance Non-Oxide Ceramics I. Springer, 2011.
Den vollen Inhalt der Quelle findenühauf, S., M. Jansen, F. Aldinger und U. Herzog. High Performance Non-Oxide Ceramics I. Springer London, Limited, 2003.
Den vollen Inhalt der Quelle finden(Contributor), R. Haubner, M. Herrmann (Contributor), B. Lux (Contributor), G. Petzow (Contributor), R. Weissenbacher (Contributor), M. Wilhelm (Contributor) und M. Jansen (Editor), Hrsg. High Performance Non-Oxide Ceramics II (Structure and Bonding). Springer, 2002.
Den vollen Inhalt der Quelle finden(Contributor), F. Aldinger, S. Frühauf (Contributor), U. Herzog (Contributor), M. Jansen (Contributor Editor), B. Jäschke (Contributor), T. Jäschke (Contributor), E. Müller (Contributor), G. Roewer (Contributor), H. J. Seifert (Contributor) und K. Trommer (Contributor), Hrsg. High Performance Non-Oxide Ceramics I (Structure and Bonding). Springer, 2002.
Den vollen Inhalt der Quelle findenBuchteile zum Thema "Non oxyde ceramic"
Knoch, Heinrich. „Non-Oxide Technical Ceramics“. In 2nd European Symposium on Engineering Ceramics, 151–69. Dordrecht: Springer Netherlands, 1989. http://dx.doi.org/10.1007/978-94-009-1105-5_7.
Der volle Inhalt der QuelleKusunose, Takafumi, und Tohru Sekino. „Non-Oxide Ceramic Nanocomposites with Multifunctionality“. In SiAlONs and Non-oxides, 45–48. Stafa: Trans Tech Publications Ltd., 2008. http://dx.doi.org/10.4028/3-908454-00-x.45.
Der volle Inhalt der QuelleMühlratzer, August, und Martin Leuchs. „Applications of Non-Oxide CMCs“. In High Temperature Ceramic Matrix Composites, 288–98. Weinheim, FRG: Wiley-VCH Verlag GmbH & Co. KGaA, 2006. http://dx.doi.org/10.1002/3527605622.ch46.
Der volle Inhalt der QuelleYang, Jinlong, und Yong Huang. „Gelcasting of Non-oxide Ceramics“. In Novel Colloidal Forming of Ceramics, 225–310. Singapore: Springer Singapore, 2020. http://dx.doi.org/10.1007/978-981-15-1872-0_5.
Der volle Inhalt der QuelleKalemtas, A., Gürsoy Arslan und Ferhat Kara. „Pressureless Melt Infiltrated Non-Oxide Ceramic-Metal Composites“. In SiAlONs and Non-oxides, 251–52. Stafa: Trans Tech Publications Ltd., 2008. http://dx.doi.org/10.4028/3-908454-00-x.251.
Der volle Inhalt der QuelleBrunner, Dieter G., Gaby Böhm, Friedrich Raether und Andreas Klimera. „Debindering of Non Oxide Ceramics under Protective Atmosphere“. In Ceramic Transactions Series, 77–86. Hoboken, NJ, USA: John Wiley & Sons, Inc., 2010. http://dx.doi.org/10.1002/9780470909836.ch7.
Der volle Inhalt der QuelleLewis, M. H., S. Mason und A. Szweda. „Syalon Ceramic for Application at High Temperature and Stress“. In Non-Oxide Technical and Engineering Ceramics, 175–90. Dordrecht: Springer Netherlands, 1986. http://dx.doi.org/10.1007/978-94-009-3423-8_13.
Der volle Inhalt der QuelleMcDonnell, L., und E. M. Cashell. „Non-destructive Evaluation of Ceramic Surfaces and Sub-surfaces“. In Non-Oxide Technical and Engineering Ceramics, 213–21. Dordrecht: Springer Netherlands, 1986. http://dx.doi.org/10.1007/978-94-009-3423-8_16.
Der volle Inhalt der QuelleHuang, Zhenkun, und Laner Wu. „Si3N4 Ceramics Systems“. In Phase Equilibria Diagrams of High Temperature Non-oxide Ceramics, 1–50. Singapore: Springer Singapore, 2018. http://dx.doi.org/10.1007/978-981-13-0463-7_1.
Der volle Inhalt der QuelleBosković, S., und E. Kostić. „Sintering and some Properties of Si3N4 Based Ceramics“. In Non-Oxide Technical and Engineering Ceramics, 165–74. Dordrecht: Springer Netherlands, 1986. http://dx.doi.org/10.1007/978-94-009-3423-8_12.
Der volle Inhalt der QuelleKonferenzberichte zum Thema "Non oxyde ceramic"
Hille, Carmen, Wolfgang Lippmann, Marion Herrmann und Antonio Hurtado. „Non-Oxide Ceramics: Chances for Application in Nuclear Hydrogen Production“. In 16th International Conference on Nuclear Engineering. ASMEDC, 2008. http://dx.doi.org/10.1115/icone16-48408.
Der volle Inhalt der QuelleLippmann, Wolfgang, Marion Herrmann, Carmen Hille und Antonio Hurtado. „Laser Joining of Ceramics: A Contribution to High Temperature Range Application of Ceramic Components“. In 16th International Conference on Nuclear Engineering. ASMEDC, 2008. http://dx.doi.org/10.1115/icone16-48409.
Der volle Inhalt der QuelleThapa, Juddha, Benjamin T. Chorpening und Michael P. Buric. „Non-contact temperature Raman measurement in YSZ and alumina ceramics“. In Oxide-based Materials and Devices IX, herausgegeben von Ferechteh H. Teherani, David C. Look und David J. Rogers. SPIE, 2018. http://dx.doi.org/10.1117/12.2291944.
Der volle Inhalt der QuelleBao, Y., D. T. Gawne und T. Zhang. „The Influence of Matrix Phase Viscosity on the Plasma-Spray Deposition of Silicon-Nitride Composite Coatings“. In ITSC2003, herausgegeben von Basil R. Marple und Christian Moreau. ASM International, 2003. http://dx.doi.org/10.31399/asm.cp.itsc2003p0263.
Der volle Inhalt der QuelleD'Orazio, Giancarlo, Grace E. Falanga, Zachariah Chazen, Jason Jones und Sadaf Sobhani. „Non-Oxide Ceramic Additive Manufacturing Processes for Aerospace Applications“. In AIAA SCITECH 2023 Forum. Reston, Virginia: American Institute of Aeronautics and Astronautics, 2023. http://dx.doi.org/10.2514/6.2023-0315.
Der volle Inhalt der QuelleSuzuki, M., S. Sodeoka, T. Inoue und K. Ueno. „Basic Research for Reactive Plasma Spraying of TiO2“. In ITSC 1998, herausgegeben von Christian Coddet. ASM International, 1998. http://dx.doi.org/10.31399/asm.cp.itsc1998p1443.
Der volle Inhalt der QuelleMacBeth, J. W., M. O. Ten Eyck und R. W. Ohnsorg. „Non-oxide Ceramics for Advanced Heat Engine Applications“. In SAE International Congress and Exposition. 400 Commonwealth Drive, Warrendale, PA, United States: SAE International, 1987. http://dx.doi.org/10.4271/870468.
Der volle Inhalt der QuelleSingh, S. K., Shyamalendu M. Bose, S. N. Behera und B. K. Roul. „Preparation of Non Oxide Ceramics in Thermal Plasma“. In MESOSCOPIC, NANOSCOPIC AND MACROSCOPIC MATERIALS: Proceedings of the International Workshop on Mesoscopic, Nanoscopic and Macroscopic Materials (IWMNMM-2008). AIP, 2008. http://dx.doi.org/10.1063/1.3027157.
Der volle Inhalt der QuelleFloristán, M., R. Gadow und A. Killinger. „Electrically Conductive Plasma Sprayed Oxide-Metal Coatings on Glass Ceramic Substrates“. In ITSC2009, herausgegeben von B. R. Marple, M. M. Hyland, Y. C. Lau, C. J. Li, R. S. Lima und G. Montavon. ASM International, 2009. http://dx.doi.org/10.31399/asm.cp.itsc2009p0612.
Der volle Inhalt der QuelleKulinich, Ekaterina A., und Tamara A. Khabas. „Non-metal dental ceramics on the base of titanium oxide“. In 2012 7th International Forum on Strategic Technology (IFOST). IEEE, 2012. http://dx.doi.org/10.1109/ifost.2012.6357598.
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