Academic literature on the topic 'Metallurgical powder'
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Journal articles on the topic "Metallurgical powder"
Eck, R., H. P. Martinz, T. Sakaki, and M. Kato. "Powder metallurgical chromium." Materials Science and Engineering: A 120-121 (November 1989): 307–12. http://dx.doi.org/10.1016/0921-5093(89)90755-7.
Full textLiu, Na, Zhou Li, Hua Yuan, Wen Yong Xu, Yong Zhang, and Guo Qing Zhang. "Powder Metallurgical Processing of Ti6Al4V Alloy." Advanced Materials Research 217-218 (March 2011): 1336–42. http://dx.doi.org/10.4028/www.scientific.net/amr.217-218.1336.
Full textLiu, Hu Ran. "The Profile Calculation and the Best Fillet of Powder Metallurgical Gears." Materials Science Forum 694 (July 2011): 851–54. http://dx.doi.org/10.4028/www.scientific.net/msf.694.851.
Full textJasper, Bruno, Jan W. Coenen, Johann Riesch, Till Höschen, Martin Bram, and Christian Linsmeier. "Powder Metallurgical Tungsten Fiber-Reinforced Tungsten." Materials Science Forum 825-826 (July 2015): 125–33. http://dx.doi.org/10.4028/www.scientific.net/msf.825-826.125.
Full textKruzhanov, Vladislav, and Volker Arnhold. "Energy consumption in powder metallurgical manufacturing." Powder Metallurgy 55, no. 1 (February 2012): 14–21. http://dx.doi.org/10.1179/174329012x13318077875722.
Full textKruth, J. P., B. Van der Schueren, J. E. Bonse, and B. Morren. "Basic Powder Metallurgical Aspects in Selective Metal Powder Sintering." CIRP Annals 45, no. 1 (1996): 183–86. http://dx.doi.org/10.1016/s0007-8506(07)63043-1.
Full textChen, Wei Ping, Dong Hui Yang, Jun Lu, Yuan Feng, Jian Qing Chen, Lei Wang, Jing Hua Jiang, and Ai Bin Ma. "Fabrication of Zn Alloy Foam via Powder Metallurgical Approach." Materials Science Forum 849 (March 2016): 819–24. http://dx.doi.org/10.4028/www.scientific.net/msf.849.819.
Full textČapek, Jaroslav, and Dalibor Vojtěch. "Powder Metallurgical Techniques for Fabrication of Biomaterials." Manufacturing Technology 15, no. 6 (December 1, 2015): 964–69. http://dx.doi.org/10.21062/ujep/x.2015/a/1213-2489/mt/15/6/964.
Full textJones, D. G. R., J. P. Fairclough, J. S. Abell, and I. R. Harris. "Powder metallurgical processing of Tb0.27Dy0.73Fe2−x(0." Journal of Applied Physics 69, no. 8 (April 15, 1991): 5774–76. http://dx.doi.org/10.1063/1.347872.
Full textPrado, Jose Manuel. "Plastic Behaviour of Green Powder Metallurgical Compacts." Materials Science Forum 534-536 (January 2007): 305–8. http://dx.doi.org/10.4028/www.scientific.net/msf.534-536.305.
Full textDissertations / Theses on the topic "Metallurgical powder"
Kero, Ida. "Ti3SiC2 synthesis by powder metallurgical methods." Licentiate thesis, Luleå tekniska universitet, Materialvetenskap, 2007. http://urn.kb.se/resolve?urn=urn:nbn:se:ltu:diva-17858.
Full textGodkänd; 2007; 20070523 (ysko)
Kero, Ida. "Ti₃3SiC₂ synthesis by powder metallurgical methods /." Luleå : Luleå tekniska universitet/Tillämpad fysik, maskin- och materialteknik/Materialteknik, 2007. http://epubl.ltu.se/1402-1757/2007/34/.
Full textStüpp, César Augusto. "Powder metallurgical processing of magnesium-hydroxyapatite composites for biomedical applications." reponame:Repositório Institucional da UFSC, 2015. https://repositorio.ufsc.br/xmlui/handle/123456789/159631.
Full textMade available in DSpace on 2016-03-01T04:00:54Z (GMT). No. of bitstreams: 1 337500.pdf: 167170234 bytes, checksum: febf5b6bf3b44787af43f7794c3d6e26 (MD5) Previous issue date: 2015
Abstract : Biodegradable metal alloys are a new class of implant materials suitable for implants such as stents, bone plates and screws. The corrosion of magnesium alloys might provide a new mechanism where they could be used as degradable metal implants to be applied in musculo-skeletal surgery. In this case, a secondary surgery for implant retrieval is not needed. For that, magnesium alloys with controlled in vivo corrosion rates need to be developed. There is a high demand to design magnesium alloys with adjustable corrosion rates and suitable mechanical properties. An approach to this challenge is a magnesium metal matrix composite (Mg-MMC) composed of the magnesium alloy ZK60 and hydroxyapatite (HA) particles for tailoring its properties such as mechanical properties and corrosion resistance. The composite was produced by mechanical alloying followed by hot extrusion. HA in contact with molten magnesium releases toxic gases like phosphine (PH3), so solid-state processing such as mechanical milling and extrusion is feasible. This work presents the influence of different amounts of HA on the degradation behavior and mechanical properties, which shows that the HA addition has a substantial increase in the compression strength (up to 14% for 20 wt.% HA addition) and no negative effect on the controlled degradation behavior of this biomaterial.
Ligas metálicas biodegradáveis são uma nova classe de materiais de implante adequados para a cirurgia óssea. A corrosão de ligas de magnésio pode proporcionar um novo mecanismo onde tais ligas podem ser utilizadas como implantes metálicos degradáveis a serem aplicados em cirurgia músculo-esquelética. Nestes casos, a segunda cirurgia para retirada do implante não seria necessária. Para isso, ligas de magnésio com taxas de corrosão in vivo controladas precisam ser desenvolvidas. Há uma grande procura para projetar ligas de magnésio com taxas de corrosão ajustáveis e propriedades mecânicas aplicáveis. Uma abordagem a este desafio é um compósito de matriz metálica (CMM) composto pela liga de magnésio ZK60 e hidroxiapatita (HA) para aperfeiçoar suas propriedades como resistência mecânica e resistência à corrosão. O compósito é produzido via moagem de alta energia seguida de extrusão à quente. Uma vez que HA em contato com magnésio líquido libera gases tóxicos como fosfina (PH3), esta é a melhor forma de sua produção. Este trabalho mostra a influência de diferentes quantidades de hidroxiapatita na taxa de degradação e propriedades mecânicas do compósito, as quais evidenciam um aumento substancial na resistência à compressão com a adição de HA (até 14% para o compósito com 20% de HA), sem detrimento às propriedades de degradação controlada do biomaterial.
Ma, Taoran. "Powder-metallurgical processing and phase separation in ternary transition metal carbides." Doctoral thesis, KTH, Materialvetenskap, 2017. http://urn.kb.se/resolve?urn=urn:nbn:se:kth:diva-207839.
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Erdem, Derya. "Microwave Sintering And Characterization Of Soft Magnetic Powder Metallurgical Ni-fe Alloys." Master's thesis, METU, 2011. http://etd.lib.metu.edu.tr/upload/12613550/index.pdf.
Full textPayton, Eric John. "Characterization and Modeling of Grain Coarsening in Powder Metallurgical Nickel-Based Superalloys." The Ohio State University, 2009. http://rave.ohiolink.edu/etdc/view?acc_num=osu1250265477.
Full textFredriksson, Wendy. "Depth Profiling of the Passive Layer on Stainless Steel using Photoelectron Spectroscopy." Doctoral thesis, Uppsala universitet, Institutionen för kemi - Ångström, 2012. http://urn.kb.se/resolve?urn=urn:nbn:se:uu:diva-179399.
Full textSeemüller, Hans Christoph Maximilian [Verfasser], and M. [Akademischer Betreuer] Heilmaier. "Evaluation of Powder Metallurgical Processing Routes for Multi-Component Niobium Silicide-Based High-Temperature Alloys / Hans Christoph Maximilian Seemüller. Betreuer: M. Heilmaier." Karlsruhe : KIT-Bibliothek, 2016. http://d-nb.info/1100529713/34.
Full textSeemüller, Hans Christoph Maximilian [Verfasser], and Martin [Akademischer Betreuer] Heilmaier. "Evaluation of Powder Metallurgical Processing Routes for Multi-Component Niobium Silicide-Based High-Temperature Alloys / Hans Christoph Maximilian Seemüller. Betreuer: M. Heilmaier." Karlsruhe : KIT-Bibliothek, 2016. http://nbn-resolving.de/urn:nbn:de:swb:90-544644.
Full textKewes, Eloi. "Silicon grinding and fine particles : generation and behavior of metallurgical-grade silicon fine particles during grinding for the silicones industry." Thesis, Ecully, Ecole centrale de Lyon, 2015. http://www.theses.fr/2015ECDL0030/document.
Full textMetallurgical-grade silicon (MG-Si, 99 %) powders were extensively investigated, particularly focusing on the fine particles (whose size is between 1 and 10 μm) comprised in these powders. This material is a reactant widely used in the silicones industry for the Direct Synthesis and is obtained by size reduction of millimetric silicon lumps. Powder properties are major stakes of the industrial process. Smaller sizes favor high specific surfaces and high rates of production, but can decrease the lowability, thus inducing poor heat evacuation resulting in hot spots and a decrease in selectivity. Such lowability issues are particularly associated with fine particles, hence understand the generation of these particles during grinding is of critical importance. New chemical and crystallographic characterization of MG-Si is presented, showing that fine particles contain on average less alloying elements than larger particles, yet their crystallographic structure is preserved through grinding. On the contrary, superfine particles (smaller than 1 μm) exhibit amorphous zones: this transformation is pressure induced, showing that these particles experience larger stresses during the grinding step. The behavior of MG-Si in grinding mills has been studied for the first time. At the single particle level, it has been confirmed that transgranular fracture is preferred in MG-Si. Moreover, fine particles can be produced from a single fracture event, due to multiple crack propagation and branching. The critical size under which plastic deformation preferentially occurs over fracture has been evaluated to be approximately 1 μm. These two facts are consistent with a lower level of impurities in fines, yet remaining crystalline, and with superfines exhibiting amorphous areas. At the multiple particle level, pilot scale batch milling experiments have been performed. The results are not included in this public version of the manuscript, please refer to the full manuscript. The consequences of the presence of fine particles in ground MG-Si powder on lowability has been assessed by means of angle of repose, compaction tests and fluidization experiments. A new elutriation behavior has been observed and characterized: for naturally ground MS-Si powders (including fine particles), particles smaller than 30 μm are entrained first, then only larger particles. This was not the case in absence of fine particles. The explanation may probably lie within the presence of polydisperse clusters, formed only in presence of fine particles. Parallel to this elutriation behavior, electrostatic measurements with an external electrometer showed that high potential with sign correlated with the type of particle elutriated are attained during elutriation. This may suggest that electrostatics is responsible for cluster formation
Books on the topic "Metallurgical powder"
P, Beiss, Dalal K, Peters R, Huppmann W. J, and Metal Powder Industries Federation, eds. International atlas of powder metallurgical microstructures. Princeton, N.J: MPIF, 2002.
Find full textHuiping, Tang, ed. Fen mo ye jin tai ji jie gou cai liao: Powder metallurgical titanium base structural materials. Changsha Shi: Zhong nan da xue chu ban she, 2012.
Find full textJones, David Geraint Rhys. The study of hydrogen in REFe [inferior] 2 (RE=Rare Earth) giant magnetostrictive laves phase compounds andits application to their powder metallurgical processing. Birmingham: University of Birmingham, 1992.
Find full textAdaskin, Anatoliy, Aleksandr Krasnovskiy, and Tat'yana Tarasova. Materials science and technology of metallic, non-metallic and composite materials. ru: INFRA-M Academic Publishing LLC., 2021. http://dx.doi.org/10.12737/1143245.
Full textAll, India Seminar on Metallurgical Problems in Power Projects (1987 Lucknow India). All India Seminar on Metallurgical Problems in Power Projects: Proceedings, October 30-31, 1987. Lucknow: Institution of Engineers (India), Uttar Pradesh State Centre, 1987.
Find full textSalʹnikov, V. G. Ėffektivnye sistemy ėlektrosnabzhenii͡a︡ predprii͡a︡tiĭ t͡s︡vetnoĭ metallurgii. Moskva: Metallurgii͡a︡, 1986.
Find full textHosler, Dorothy. The sounds and colors of power: The sacred metallurgical technology of ancient West Mexico. Cambridge, Mass: MIT Press, 1994.
Find full textCzajkowski, C. Metallurgical evaluation of an 18-inch feedwater line failure at the Surry Unit 2 power station. Atlanta, GA: Region II, U.S. Nuclear Regulatory Commission, 1987.
Find full textShanghai jing ji qu gong ye gai mao: Shanghai ye jin, dian li juan. Shanghai Shi: Xue lin chu ban she, 1986.
Find full textKravchenko, Igor. Technological processes in the technical service of machinery and equipment. ru: INFRA-M Academic Publishing LLC., 2017. http://dx.doi.org/10.12737/25226.
Full textBook chapters on the topic "Metallurgical powder"
Beiss, P., and P. Neumann. "7 Powder metallurgical filters." In Powder Metallurgy Data, 504–27. Berlin, Heidelberg: Springer Berlin Heidelberg, 2003. http://dx.doi.org/10.1007/10689123_26.
Full textEck, R., W. Köck, and G. Kneringer. "“Creep of Powder Metallurgical Chromium”." In Mechanics of Creep Brittle Materials 2, 202–17. Dordrecht: Springer Netherlands, 1991. http://dx.doi.org/10.1007/978-94-011-3688-4_18.
Full textPrado, Jose Manuel. "Plastic Behaviour of Green Powder Metallurgical Compacts." In Progress in Powder Metallurgy, 305–8. Stafa: Trans Tech Publications Ltd., 2007. http://dx.doi.org/10.4028/0-87849-419-7.305.
Full textKainer, K. U., J. Schroder, and B. L. Mordike. "Powder Metallurgical Production of Whisker Reinforced Magnesium." In Developments in the Science and Technology of Composite Materials, 171–76. Dordrecht: Springer Netherlands, 1989. http://dx.doi.org/10.1007/978-94-009-1123-9_23.
Full textGornik, Christian, and Jochen Perko. "Comprehensive Wear Study on Powder Metallurgical Steels for the Plastics Industry, Especially Injection Moulding Machines." In Progress in Powder Metallurgy, 657–60. Stafa: Trans Tech Publications Ltd., 2007. http://dx.doi.org/10.4028/0-87849-419-7.657.
Full textLi, Jia-lin, Yong-fu Yu, Wen Chen, and Xiao-yin Liu. "Study on Limonite Powder by Flash-Magnetic Roasting." In 5th International Symposium on High-Temperature Metallurgical Processing, 311–18. Hoboken, NJ, USA: John Wiley & Sons, Inc., 2014. http://dx.doi.org/10.1002/9781118887998.ch39.
Full textBenzeşik, Kağan, Ahmet Turan, and Onuralp Yücel. "A New Approach for the Production of Li4SiO4 Powder." In 11th International Symposium on High-Temperature Metallurgical Processing, 561–67. Cham: Springer International Publishing, 2020. http://dx.doi.org/10.1007/978-3-030-36540-0_50.
Full textBrocchi, Eduardo, Douglas Torres, Rogério Navarro, Rodrigo Souza, and José Brant. "Chemical Processing of a High Carbon FeCr Alloy Fine Powder." In 6th International Symposium on High-Temperature Metallurgical Processing, 223–30. Hoboken, NJ, USA: John Wiley & Sons, Inc., 2015. http://dx.doi.org/10.1002/9781119093381.ch29.
Full textTunçer, Buket, Mehmet Buğdaycı, and Onuralp Yücel. "Production of CrB2 Powder Via Self Propagating High Temperature Synthesis." In 6th International Symposium on High-Temperature Metallurgical Processing, 211–14. Cham: Springer International Publishing, 2015. http://dx.doi.org/10.1007/978-3-319-48217-0_27.
Full textBrocchi, Eduardo, Douglas Torres, Rogério Navarro, Rodrigo Souza, and José Brant. "Chemical Processing of a High Carbon FeCr Alloy Fine Powder." In 6th International Symposium on High-Temperature Metallurgical Processing, 223–30. Cham: Springer International Publishing, 2015. http://dx.doi.org/10.1007/978-3-319-48217-0_29.
Full textConference papers on the topic "Metallurgical powder"
Matikas, Theodore E., Prasanna Karpur, and Robert L. Crane. "Ultrasonic measurement of elastic moduli of porous powder metallurgical samples." In Nondestructive Evaluation Techniques for Aging Infrastructure and Manufacturing, edited by Steven R. Doctor, Carol A. Nove, and George Y. Baaklini. SPIE, 1996. http://dx.doi.org/10.1117/12.259075.
Full textYi, Chew Pei, You Ah Heng, and Vijayaram Thoguluva Raghavan. "Fabrication and characterization of Cu pellet using Powder Metallurgical method." In 2012 10th IEEE International Conference on Semiconductor Electronics (ICSE). IEEE, 2012. http://dx.doi.org/10.1109/smelec.2012.6417178.
Full textPettersson, Ola. "Isostatic Dry Bag Compacted Powder Metallurgical Cylinder Liner, Applications and Properties." In International Congress & Exposition. 400 Commonwealth Drive, Warrendale, PA, United States: SAE International, 1992. http://dx.doi.org/10.4271/920219.
Full textYin, Xiaowei, Chaogang Lou, Xiaobing Zhang, Wei Lei, and Kai Hou. "Field Emission From the Carbon Nanotube Cathode Fabricated by Powder Metallurgical Method." In 2006 19th International Vacuum Nanoelectronics Conference. IEEE, 2006. http://dx.doi.org/10.1109/ivnc.2006.335213.
Full textIbraheem, F. H. "Modified pyro-metallurgical technology for recovery of impurities from crude lead using chalk powder." In PETROLEUM 2012. Southampton, UK: WIT Press, 2012. http://dx.doi.org/10.2495/pmr120261.
Full textChoi, Gwangbo, Seokjun Ha, Guhyun Kim, and Inbum Jung. "Improvement of soft magnetic properties of Fe-Si-Al metal powder cores by metallurgical process." In 2012 IEEE Vehicle Power and Propulsion Conference (VPPC). IEEE, 2012. http://dx.doi.org/10.1109/vppc.2012.6422781.
Full textNastic, A., B. Jodoin, D. Poirier, and J. G. Legoux. "Powder Impact Temperature Influence on Metallurgical Bonding—An Investigation for Soft Particle Deposition on Hard Substrate." In ITSC2021, edited by F. Azarmi, X. Chen, J. Cizek, C. Cojocaru, B. Jodoin, H. Koivuluoto, Y. C. Lau, et al. ASM International, 2021. http://dx.doi.org/10.31399/asm.cp.itsc2021p0189.
Full textStringer, Craig, Andy Wright, and Pete Imbrogno. "Powder Metallurgical Solution for a Complex Geometry Coupler Requiring High Dimensional Stability and Microstructural Uniformity through Heat Treatment." In HT2021. ASM International, 2021. http://dx.doi.org/10.31399/asm.cp.ht2021p0017.
Full textLangerman, Michael A., Gregory A. Buck, Umesh A. Korde, and Vojislav D. Kalanovic. "Thermal Control of Laser Powder Deposition: Heat Transfer Considerations." In ASME 2004 International Mechanical Engineering Congress and Exposition. ASMEDC, 2004. http://dx.doi.org/10.1115/imece2004-60386.
Full textEboo, G. M., and A. G. Blake. "Laser Cladding of Gas Turbine Components." In ASME 1986 International Gas Turbine Conference and Exhibit. American Society of Mechanical Engineers, 1986. http://dx.doi.org/10.1115/86-gt-298.
Full textReports on the topic "Metallurgical powder"
Fraser, Hamish L., and James C. Williams. Metallurgical Factors Influencing Direct Laser Deposition of Metallic Powers for Unitized Structures. Fort Belvoir, VA: Defense Technical Information Center, January 2005. http://dx.doi.org/10.21236/ada435779.
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