Powder Pretreatment (prior To Consolidation Or Sintering) Patents (Class 419/30)
-
Publication number: 20130068986Abstract: Disclosed herein is an engine valve seat, including: iron (Fe) as a main component; about 0.6˜1.2 wt % of carbon (C); about 1.0˜3.0 wt % of nickel (Ni); about 8.0˜11.0 wt % of cobalt (Co); about 3.0˜6.0 wt % of chromium (Cr); about 4.0˜7.0 wt % of molybdenum (Mo); about 0.5˜2.5 wt % of tungsten (W); about 1.0˜3.0 wt % of manganese (Mn); about 0.2˜1.0 wt % of calcium (Ca); and other inevitable impurities.Type: ApplicationFiled: December 12, 2011Publication date: March 21, 2013Applicants: HYUNDAI MOTOR COMPANY, KOREA SINTERED METAL CO., LTD., KIA MOTORS CORPORATIONInventors: Ki Bum Kim, Eui Jun Kim, Seong Jin Kim, Sung Kweon Jang, Ki Jung Kim, Shin Gyu Kim, Jong Kwan Park, Sung Tae Choi
-
Publication number: 20130071284Abstract: A process for production of titanium alloy material has steps of hydrogenating titanium alloy material to generate hydrogenated titanium alloy; grinding, sifting and dehydrogenating the hydrogenated titanium alloy powder to generate titanium alloy powder; adding at least one of copper powder, chromium powder or iron powder to obtain titanium alloy complex powder; consolidating the titanium alloy complex powder by CIP process and subsequent HIP process, or by HIP process after filling the titanium alloy complex powder into a capsule. In addition, titanium alloy complex powder and titanium alloy material produced by the process are provided.Type: ApplicationFiled: May 31, 2011Publication date: March 21, 2013Inventors: Osamu Kano, Hideo Takatori, Satoshi Sugawara
-
Publication number: 20120315178Abstract: The systems and methods of this patent application are directed to producing a composition of nano-grained NiTi (Ni—nickel, Ti—titanium) alloy for use in producing nano-grained wires. Nano-grained wires, for example, are used to generate medical instruments such as an endodontic instrument. A specific method of producing the nano-grained composition includes preparing a mixture of nickel (Ni) powder and titanium (Ti) powder. The mixture of nickel powder and titanium powder is sintered to produce a nano-grained NiTi alloy. In one embodiment, an endodontic instrument is formed using the nano-grained NiTi alloy and heat-treated.Type: ApplicationFiled: June 9, 2011Publication date: December 13, 2012Applicant: KING SAUD UNIVERSITYInventors: Dina Ibrahim Al-Sudani, Nasser Al-Aqeeli, Gianluca Gambarini
-
Publication number: 20120299675Abstract: A method for producing an anisotropic rare earth magnet according to the present invention comprises a forming step of obtaining a formed body by press-forming a mixed raw material of a magnet raw material capable of generating R2TM14B1-type crystals of a tetragonal compound of a rare earth element (R), boron (B), and a transition element (TM), and a diffusion raw material to serve as a supply source of at least a rare earth element (R?) and Cu; and a diffusing step of diffusing at least R? and Cu onto surfaces or into crystal grain boundaries of the R2TM14B1-type crystals by heating the formed body. In this production method, the diffusion raw material having a low melting point and high wettability envelops the R2TM14B1-type crystals, and therefore an anisotropic rare earth magnet having high coercivity can be obtained without decreasing magnetization which should be inherently exhibited by the magnet raw material.Type: ApplicationFiled: August 27, 2010Publication date: November 29, 2012Applicant: AICHI STEEL CORPORATIONInventors: Yoshinobu Honkura, Chisato Mishima
-
Publication number: 20120282130Abstract: A carbothermic reduction method is provided for reducing a rare earth element-containing oxide including at least one of neodymium (Nd) and praseodymium (Pr) and possibly other rare earth elements (La, Ce, Sm, Eu, Gd, Tb, Dy, Ho, Er, Tm, Yb, Lu, Sc, and Y) as alloying agents in the presence of carbon and a source of a reactant element including one or more of silicon, germanium, tin, lead, arsenic, antimony and bismuth to form a rare earth element-containing intermediate alloy as a master alloy for making permanent magnet material. The process is a more efficient, lower cost and environmentally friendly technology than current methods of manufacturing rare earth metals. The intermediate material is useful as a master alloy for making a permanent magnet material comprising at least one of neodymium and praseodymium, and possibly other rare earth metals as alloying additives.Type: ApplicationFiled: April 18, 2012Publication date: November 8, 2012Inventors: Karl A. Gschneidner, JR., Frederick A. Schmidt, Ralph W. McCallum
-
Patent number: 8273291Abstract: A controlled combustion synthesis apparatus comprises an ignition system, a pressure sensor for detecting internal pressure, a nitrogen supply, a gas pressure control valve for feeding nitrogen and exhausting reaction gas, means for detecting the internal temperature of the reaction container, a water cooled jacket, and a cooling plate. A temperature control system controls the temperature of the reaction container by controlling the flow of cooling water supplied to the jacket and the cooling plate in response to the detected temperature. By combustion synthesizing, while controlling the internal pressure and temperature, the apparatus can synthesize a silicon alloy including 30-70 wt. % silicon, 10-45 wt. % nitrogen, 1-40 wt. % aluminum, and 1-40 wt % oxygen.Type: GrantFiled: March 19, 2009Date of Patent: September 25, 2012Assignee: Sumikin Bussan CorporationInventors: Toshiyuki Watanabe, Masafumi Matsushita, Toshitaka Sakurai, Kazuya Sato, Yoko Matsushita
-
Publication number: 20120201712Abstract: A water atomized stainless steel powder which comprises by weight-%: 10.5-30.0 Cr 0.5-9.0 Ni 0.01-2.0 Mn 0.01-3.0 Sn 0.1-3.0 Si 0.01-0.4 N optionally max 7.0 Mo optionally max 7.0 Cu optionally max 3.0 Nb optionally max 6.0 V balance iron and max 0.5 of unavoidable impurities.Type: ApplicationFiled: October 14, 2010Publication date: August 9, 2012Applicant: HOGANAS AKTIEBOLAG (PUBL)Inventor: Denis Oshchepkov
-
Publication number: 20120182104Abstract: There are provided a permanent magnet and a manufacturing method thereof enabling carbon content contained in magnet particles to be reduced in advance before sintering even when wet milling is employed, and also the entirety of the magnet to be densely sintered without making a gap between a main phase and a grain boundary phase in the sintered magnet. Coarsely-milled magnet powder is further milled by a bead mill in an organic solvent. Thereafter, a compact body of compacted magnet powder is held for several hours in hydrogen atmosphere at 200 through 900 degrees Celsius to perform hydrogen calcination process. Thereafter, through sintering process, a permanent magnet 1 is formed.Type: ApplicationFiled: March 28, 2011Publication date: July 19, 2012Applicant: NITTO DENKO CORPORATIONInventors: Izumi Ozeki, Katsuya Kume, Keisuke Hirano, Tomohiro Omure, Keisuke Taihaku, Takashi Ozaki
-
Publication number: 20120176211Abstract: Disclosed is a sintered NdFeB magnet having high coercivity (HcJ) a high maximum energy product ((BH)max) and a high squareness ratio (SQ) even when the sintered magnet has a thickness of 5 mm or more. The sintered NdFeB magnet is produced by diffusing Dy and/or Tb in grain boundaries in a base material of the sintered NdFeB magnet by a grain boundary diffusion process. The sintered NdFeB magnet is characterized in that the amount of rare earth in a metallic state in the base material is between 12.7 and 16.0% in atomic ratio, a rare earth-rich phase continues from the surface of the base material to a depth of 2.5 mm from the surface at the grain boundaries of the base material, and the grain boundaries in which RH has been diffused by the grain boundary diffusion process reach a depth of 2.5 mm from the surface.Type: ApplicationFiled: July 9, 2010Publication date: July 12, 2012Applicant: INTERMETALLICS CO., LTD.Inventor: Masato Sagawa
-
Publication number: 20120176212Abstract: A method and system for producing a slim-shaped sintered NdFeB magnet having a high level of coercive force and high degree of orientation, as well as a sintered NdFeB magnet produced by the aforementioned method or system. A system for producing a slim-shaped sintered NdFeB magnet according to the present invention includes: a filling unit and filling alloy powder; an orienting unit; a sintering furnace; and a conveying unit. The orienting unit is provided with a heating and orienting coil for heating the alloy powder in the molds before and/or after the application of the magnetic field so as to decrease the coercive force of the individual particles of the alloy powder.Type: ApplicationFiled: August 27, 2010Publication date: July 12, 2012Applicant: INTERMETALLICS CO., LTD.Inventors: Masato Sagawa, Tetsuhiko Mizoguchi, Michiyasu Asazuma, Shinichi Hayashi
-
Patent number: 8216508Abstract: A method for preparing an article of a base metal alloyed with an alloying element includes the steps of preparing a compound mixture by the steps of providing a chemically reducible nonmetallic base-metal precursor compound of a base metal, providing a chemically reducible nonmetallic alloying-element precursor compound of an alloying element, and thereafter mixing the base-metal precursor compound and the alloying-element precursor compound to form a compound mixture. The compound mixture is thereafter reduced to a metallic alloy, without melting the metallic alloy. The step of preparing or the step of chemically reducing includes the step of adding an other additive constituent. The metallic alloy is thereafter consolidated to produce a consolidated metallic article, without melting the metallic alloy and without melting the consolidated metallic article.Type: GrantFiled: August 7, 2008Date of Patent: July 10, 2012Assignee: General Electric CompanyInventors: Andrew Philip Woodfield, Eric Allen Ott, Clifford Earl Shamblen, Michael Francis Xavier Gigliotti
-
Patent number: 8211358Abstract: A cemented carbide including WC, a binder phase based on Co, Ni or Fe, and gamma phase, in which said gamma phase has an average grain size <1 ?m. A method of making the cemented carbide is provided in which the powders forming gamma phase are added as mixed cubic carbides of one or more of Ti, Ta, Nb, Zr, Hf and V, and a ratio, fWC, between an amount of WC (in mol fraction of WC) and an equilibrium gamma phase WC content at a sintering temperature (in mol fraction WC) is given by fWC=xWC/xeWC, wherein fWC is 0.6 to 1.0.Type: GrantFiled: February 12, 2007Date of Patent: July 3, 2012Assignee: Sandvik Intellectual Property ABInventors: Bo Jansson, Susanne Norgren
-
Publication number: 20120128522Abstract: Disclosed herein is a sintered composition comprising iron; about 0.05 to about 1 wt % molybdenum; about 3 to about 4.5 wt % silicon; about 0.05 to about 0.5 wt % chromium; about 0.011 to about 0.015 wt % magnesium; all weight percents being based on the total weight of the composition; the composition being devoid of carbon except for trace amounts; and wherein the composition is sintered. Disclosed herein too is a method comprising blending a powdered composition that comprises iron; about 0.05 to about 1 wt % molybdenum; about 3 to about 4.5 wt % silicon; about 0.05 to about 0.5 wt % chromium; about 0.011 to about 0.015 wt % magnesium; all weight percents being based on the total weight of the composition; the composition being devoid of carbon except for trace amounts; compacting and sintering the composition.Type: ApplicationFiled: November 11, 2011Publication date: May 24, 2012Applicant: ALPHA SINTERED METALS, INC.Inventors: Thomas J. Cornelio, Leonid I. Frayman, Thomas E. Haberberger
-
Publication number: 20120128523Abstract: A clay-like composition for forming a sintered copper body of the present invention includes a powder constituent containing a copper-containing metal powder which contains copper and a copper-containing oxide powder which contains copper; a binder; and water, wherein the amount of oxygen contained in the powder constituent is in a range of from 4 mass % to 8 mass %.Type: ApplicationFiled: November 17, 2011Publication date: May 24, 2012Applicant: MITSUBISHI MATERIALS CORPORATIONInventors: Takashi Yamaji, Yoshifumi Yamamoto, Yasuo Ido, Shinji Otani
-
Patent number: 8173065Abstract: The present invention provides an apparatus, system and method for handling glass containers that has a takeout jaw assembly with a base with a first side, a second side and a groove. The groove extends from the first side to the second side and is adapted to fit an insert. The groove also has a recess with one or more flexible retaining tabs positioned to secure the insert and a yoke extending substantially perpendicular from the base.Type: GrantFiled: September 30, 2008Date of Patent: May 8, 2012Inventor: Fred Heldoorn
-
Patent number: 8168118Abstract: A method of forming a sputtering target and other metal articles having controlled oxygen and nitrogen content levels and the articles so formed are described. The method includes surface-nitriding a deoxidized metal powder and further includes consolidating the powder by a powder metallurgy technique. Preferred metal powders include, but are not limited to, valve metals, including tantalum, niobium, and alloys thereof.Type: GrantFiled: September 2, 2009Date of Patent: May 1, 2012Assignee: Cabot CorporationInventors: Christopher A. Michaluk, Shi Yuan, James D. Maguire, Jr.
-
Publication number: 20120092106Abstract: A composite magnetic body is formed by pressure-molding Fe—Al—Si based magnetic metal powder having a composition not more than 5.7 wt % and not less than 8.5 wt % of Al, not more than 6.0 wt % and not less than 9.5 wt % of Si, and the balance of Fe together with an insulating binder, and heat-treating the molded powder at a temperature ranging from 600° C. to 900° C. The magnetic metal powder has a negative magnetocrystalline anisotropy constant at a room temperature, and has a positive magnetostriction constant at the room temperature. A temperature coefficient of core loss at the room temperature is negative. This composite magnetic body has improved temperature characteristics of the core-loss as well as excellent soft magnetic characteristics, such as lower loss and higher permeability.Type: ApplicationFiled: July 30, 2010Publication date: April 19, 2012Applicant: PANASONIC CORPORATIONInventors: Takeshi Takahashi, Nobuya Matsutani
-
Publication number: 20120081840Abstract: A method for producing agglomerated tantalum particles, comprising: a step for grinding secondary tantalum particles, which are obtained by reducing a tantalum salt, and adding water thereto to give a water-containing mass; a step for drying said water-containing mass to give a dry mass; a step for sieving said dry mass to give spherical particles; and a step for heating said spherical particles. A mixed tantalum powder comprising a mixture of agglomerated tantalum particles (X) with agglomerated tantalum particles (Y), wherein said agglomerated tantalum particles (X) show a cumulative percentage of particles with particle size of 3 ?m or less of 5 mass % or less after 25 W ultrasonic radiation for 10 min, while said agglomerated tantalum particles (Y) show a cumulative percentage of particles with particle size of 3 ?m or less of 10 mass % or more after 25 W ultrasonic radiation for 10 min.Type: ApplicationFiled: November 11, 2011Publication date: April 5, 2012Applicant: CABOT CORPORATIONInventors: Ryosuke Matsuoka, Eiji Kataoka, Yoshikazu Noguchi, John Koenitzer, Sridhar Venigalla
-
Publication number: 20120065739Abstract: In one embodiment, the present invention may be a method of making a porous biocompatible metal article by combining a metal powder with a homogenizing aid to form metal granules, including blending the metal granules and an extractable particulate to form a composite, forming the composite into a green article, removing the extractable particulate from the green article to form a metal matrix and pore structure, and sintering the metal matrix and pore structure. Furthermore the present invention may include a second homogenizing aid combined with the extractable particulate. The present invention also includes shaping the metal matrix and pore structure with or without the use of a binder.Type: ApplicationFiled: October 11, 2011Publication date: March 15, 2012Applicant: PRAXIS POWDER TECHNOLOGY, INC.Inventor: Joseph A. Grohowski, JR.
-
Patent number: 8119203Abstract: A method of treating a substrate by applying a layer of at least one metal to the substrate to form an applied metal layer on the substrate and followed by curing of the applied metal layer at sub-atmospheric pressure to form a metal protective layer. A method of treating a substrate by applying a layer of at least one metal to a substrate of an unassembled component of a reactor system to form an applied metal layer on the substrate of the unassembled component and curing the applied metal layer on the substrate of the unassembled component to form a metal protective layer. A method of treating a substrate by applying a layer of at least one metal to the substrate to form an applied metal layer, curing the applied metal layer at a first temperature and pressure for a first period of time, and curing the applied metal layer at a second temperature and pressure for a second period of time, wherein the curing forms a metal protective layer.Type: GrantFiled: May 30, 2006Date of Patent: February 21, 2012Assignee: Chevron Phillips Chemical Company LPInventors: Robert L. Hise, Geoffrey E. Scanlon, Joseph Bergmeister, III, Daniel B. Knorr
-
Publication number: 20110206174Abstract: The invention refers to a nuclear fuel, a fuel element, a fuel assembly and a method of manufacturing a nuclear fuel. The nuclear fuel is adapted for use in a water cooled nuclear reactor, including light water reactors LWR, such as Boiling Water Reactors BWR and Pressure Water Reactors PWR. The nuclear fuel comprises an uranium-containing compound consisting of UN. The uranium content of the uranium-containing compound comprises less than 10% by weight of the isotope 235U. The nuclear fuel comprises an additive substantially consisting of at least one element, in elementary form or as a compound, selected from the group consisting of Zr, Mo, Si, Al, Nb and U.Type: ApplicationFiled: February 22, 2010Publication date: August 25, 2011Applicant: WESTINGHOUSE ELECTRIC SWEDEN ABInventors: Lars HALLSTADIUS, Edward J. LAHODA, Janne WALLENIUS, Mikael JOLKKONEN, Radu POMIRLEANU, Sumit RAY
-
Publication number: 20110168363Abstract: A composite article (1; 10; 40) comprises a plurality of inclusions (5) of a magnetocalorically active material embedded in a matrix (4) of a magnetocalorically passive material. The inclusions (5) and the matrix (4) have a microstructure characteristic of a compacted powder.Type: ApplicationFiled: December 27, 2007Publication date: July 14, 2011Inventors: Georg Werner Reppel, Matthias Katter
-
Publication number: 20110159216Abstract: A colored metal composite including a metal matrix; and colored particles distributed throughout the metal matrix AND/OR a method including providing metal powder as a first phase of a composite; providing colored particles to form a second phase of the composite; mixing the metal powder and colored particles; and sintering the metal powder around the colored particles to form a metal matrix that has colored particles distributed throughout.Type: ApplicationFiled: December 29, 2009Publication date: June 30, 2011Inventors: Caroline Elizabeth MILLAR, Stuart Paul GODFREY
-
Patent number: 7943084Abstract: The present invention demonstrates a superior, more economical, and scalable process to increase the fluidity of metal powders by surface modification with alkylsilane reagents. This invention discloses that the most efficient process results from treatment with methyltrichlorosilane in hexane. In particular, the fluidity of aluminum powders having mean diameters smaller than 10 micrometers was considerably improved by the process of the present invention. It is emphasized that this abstract is provided to comply with the rules requiring an abstract that will allow a searcher or other reader to quickly ascertain the subject matter of the technical disclosure. It is submitted with the understanding that it will not be used to interpret or limit the scope of the claims.Type: GrantFiled: May 23, 2007Date of Patent: May 17, 2011Assignee: The United States of America as represented by the Secretary of the NavyInventors: Curtis E. Johnson, Kelvin T. Higa, Roger M. Sullivan
-
Publication number: 20110100409Abstract: A thermoelectric nano-composite including a thermoelectric matrix; a nano-metal particle; and a nano-thermoelectric material represented by Formula 1: AxMyBz??Formula 1 wherein A includes at least one element of indium, bismuth, or antimony, B includes at least one element of tellurium or selenium (Se), M includes at least one element of gallium, thallium, lead, rubidium, sodium, or lithium, x is greater than 0 and less than or equal to about 4, y is greater than 0 and less than or equal to about 4, and z is greater than 0 and less than or equal to about 3.Type: ApplicationFiled: November 4, 2010Publication date: May 5, 2011Applicant: SAMSUNG ELECTRONICS CO., LTD.Inventors: Hyun-sik KIM, Kyu-hyoung LEE, Sang-mock LEE, Eun-sung LEE, Sang-soo JEE, Xiangshu LI
-
Publication number: 20110097236Abstract: Molybdenum titanium sputter targets are provided. In one aspect, the targets are substantially free of the ?(Ti, Mo) alloy phase. In another aspect, the targets are substantially comprised of single phase ?(Ti, Mo) alloy. In both aspects, particulate emission during sputtering is reduced. Methods of preparing the targets, methods of bonding targets together to produce large area sputter targets, and films produced by the targets, are also provided.Type: ApplicationFiled: November 2, 2010Publication date: April 28, 2011Applicant: H. C. Starck Inc.Inventors: Mark E. Gaydos, Prabhat Kumar, Steve Miller, Norman C. Mills, Gary Rozak, Rong-Chein Richard Wu
-
Patent number: 7931756Abstract: A method of making a rare-earth alloy granulated powder according to the present invention includes the steps of: preparing a rare-earth alloy powder; generating remnant magnetization in the powder; and granulating the powder by utilizing agglomeration force produced by the remnant magnetization of the powder. Since the agglomeration force produced by the remnant magnetization is utilized, the addition of a granulating agent may be omitted.Type: GrantFiled: October 5, 2009Date of Patent: April 26, 2011Assignee: Hitachi Metals, Ltd.Inventors: Futoshi Kuniyoshi, Tomoiku Otani
-
Publication number: 20110070118Abstract: A mold which is inexpensive and easy to process and does not embrittle. Also provided is a process by which a sintered. NdFeB magnet can be produced using the mold without suffering bending or deformation. At least part (e.g., a bottom plate) of the mold is made of a carbon material. Carbon materials have lower friction with a sinter during sintering than metals. The mold hence enables a sintered NdFeB magnet to be produced without suffering the bending or deformation caused by friction due to sintering shrinkage. Carbon materials are inexpensive and easy to process. The mold does not embrittle even when repeatedly used. Such effects can be significantly produced when a carbon material is used as the bottom plate, on which the load of the sinter is imposed during sintering.Type: ApplicationFiled: August 20, 2008Publication date: March 24, 2011Applicants: INTERMETALLICS CO., LTD., MITSUBISHI CORPORATIONInventor: Masato Sagawa
-
Publication number: 20110058975Abstract: A method of processing a bimetallic part includes depositing an intermediary material having a metal powder onto a tooling surface of a cavity of a tool, transforming the intermediary material into a metal layer having a first composition on the tooling surface, and forming a metal core having a second, different composition in the cavity such that the metal layer bonds to the metal core to form a bimetallic part.Type: ApplicationFiled: September 10, 2009Publication date: March 10, 2011Inventor: Clifford C. Bampton
-
Publication number: 20110056691Abstract: A shaped charge includes a casing defining an interior volume, wherein the casing is prepared by sintering a metal powder or a mixture of metal powders; a liner located in the interior volume; and an explosive between the liner and the casing. A method for manufacturing a shaped charge casing includes the steps of mixing a metal powder or a metal powder mixture with a binder to form a pre-mix; pressing the pre-mix in a mold to form a casing green body; heating the casing green body to a first temperature to vaporize the binder; raising the temperature to a second temperature in an inert or reducing atmosphere to sinter the metal powder or the metal powder mixture to produce the shaped charge casing.Type: ApplicationFiled: September 9, 2010Publication date: March 10, 2011Applicant: SCHLUMBERGER TECHNOLOGY CORPORATIONInventors: Allan W. King, Richard Caminari
-
Publication number: 20100289194Abstract: A roller for a roller hearth furnace comprising a dispersion strengthened steel is disclosed. The roller does not require any coating or reconditioning.Type: ApplicationFiled: October 5, 2007Publication date: November 18, 2010Applicant: SANDVIK INTELLECTUAL PROPERTY ABInventors: Dilip Chandrasekaran, Thomas Helander, Thomas Lewin, Thomas Odelstam, Jan Innerman
-
Publication number: 20100284853Abstract: A method for producing high strength L12 aluminum alloy armor plate by using gas atomization to produce powder that is then consolidated into L12 aluminum alloy billets before it is forged or rolled into plate form.Type: ApplicationFiled: May 7, 2009Publication date: November 11, 2010Applicant: UNITED TECHNOLOGIES CORPORATIONInventor: Awadh B. Pandey
-
Publication number: 20100278680Abstract: A method of making a combustion turbine component includes forming a metallic powder including at least one metal and at least one rare-earth element and processing the metallic powder including at least one metal and at least one rare-earth element to form a cohesive metallic mass. A primary aging heat treatment may be performed on the cohesive metallic mass. A homogenization heat treatment may be performed on the cohesive metallic mass prior to the primary aging heat treating. Furthermore, a secondary aging heat treatment may be performed on the cohesive metallic mass after the primary aging heat treating.Type: ApplicationFiled: September 24, 2008Publication date: November 4, 2010Applicant: SIEMENS POWER GENERATION, INC.Inventors: Anand A. Kulkarni, Allister W. James, Douglas J. Arrell
-
Patent number: 7815847Abstract: A process for mass production of three-dimensional articles made of intermetallic compounds based on titanium and aluminium by an electron beam melting technology. The articles are produced in successive sections from powders of the intermetallic compound with which the articles are to be produced. For each section, melting of the powders preceded by a preheating step is performed.Type: GrantFiled: July 7, 2007Date of Patent: October 19, 2010Assignees: Avio Investments S.p.A., Avioprop S.r.l.Inventors: Paolo Gennaro, Giovanni Paolo Zanon, Giuseppe Pasquero
-
Patent number: 7794554Abstract: Refractory metal products, such as tantalum, can be rejuvenated after metal consumption in selected zones by filling the zones with powder and simultaneously applying focused radiant energy to the powder.Type: GrantFiled: January 19, 2005Date of Patent: September 14, 2010Assignee: H.C. Starck Inc.Inventors: Paul R. Aimone, Prabhat Kumar, Peter R. Jepson, Henning Uhlenhut, Howard V. Goldberg, Steven A. Miller
-
Publication number: 20100226812Abstract: A high-strength and high-toughness magnesium based alloy contains, by weight, 1 to 8% rare earth element and 1 to 6% calcium and the maximum crystal grain diameter of magnesium constituting a matrix is not more than 30 ?m. At least one intermetallic compound (6) of rare earth element and calcium has a maximum grain diameter of 20 ?m or less and it is dispersed in a crystal grain boundary (5) and a crystal grain (4) of magnesium of the matrix.Type: ApplicationFiled: May 18, 2010Publication date: September 9, 2010Inventor: Katsuyoshi Kondoh
-
Publication number: 20100226811Abstract: A process comprising: (a) forming a feature comprising uncoalesced silver-containing nanoparticles; (b) heating the uncoalesced silver-containing nanoparticles to form coalesced silver-containing nanoparticles; and (c) subjecting to a plasma treatment the uncoalesced silver-containing nanoparticles or the coalesced silver-containing nanoparticles, or both the uncoalesced silver-containing nanoparticles and the coalesced silver-containing nanoparticles, wherein the feature prior to the action (c) exhibits a low electrical conductivity but the electrical conductivity of the feature subsequent to the actions (b) and (c) is increased by at least about 100 times, wherein the action (c) is undertaken during one or more of prior to the heating, or during the heating, or after the heating.Type: ApplicationFiled: March 5, 2009Publication date: September 9, 2010Applicant: XEROX CORPORATIONInventors: Yiliang Wu, Mahya Mokhtari
-
Publication number: 20100222214Abstract: A process and apparatus for producing chain agglomerations of nano-scale metal particles includes feeding at least one decomposable moiety selected from the group consisting of organometallic compounds, metal complexes, metal coordination compounds and mixtures thereof into a reactor vessel; exposing the decomposable moiety to a source of energy sufficient to decompose the moiety and produce nano-scale metal particles; and deposit or collection of chain agglomerations of nano-scale metal particles.Type: ApplicationFiled: May 14, 2010Publication date: September 2, 2010Inventor: Robert A Mercuri
-
Publication number: 20100222212Abstract: A process and apparatus for producing chain agglomerations of nano-scale metal particles includes feeding at least one decomposable moiety selected from the group consisting of organometallic compounds, metal complexes, metal coordination compounds and mixtures thereof into a reactor vessel; exposing the decomposable moiety to a source of energy sufficient to decompose the moiety and produce nano-scale metal particles; and deposit or collection of chain agglomerations of nano-scale metal particles.Type: ApplicationFiled: May 14, 2010Publication date: September 2, 2010Inventor: Robert A. Mercuri
-
Publication number: 20100193612Abstract: A fuel injector for fuel injection systems of internal combustion engines has an excitable actuator for activating a valve closing element, which forms a sealing seat together with a valve face implemented on a valve seat element. Multiple spray-discharge openings are implemented in the valve seat element downstream from the valve face. The fuel injector is distinguished in that the spray-discharge openings include at least one upstream first spray-discharge opening section and one downstream second spray-discharge opening section having a different opening width and a wall area of the second spray-discharge opening section of all spray-discharge openings on a semi-circle runs either parallel or at a right angle to the longitudinal axis of the valve seat element having the spray-discharge openings. The valve seat element is manufactured using metal injection molding methods.Type: ApplicationFiled: June 14, 2006Publication date: August 5, 2010Inventors: Andreas Schrade, Dieter Maier, Gerhard Stransky
-
Publication number: 20100194507Abstract: A magnet core (1) made of a composite of platelet-shaped particles of a thickness D and a binder has a particularly linear relative permeability curve over a pre-magnetised constant field. For this purpose, the platelet-shaped particles (5) are provided with an amorphous volume matrix (8), wherein areas (9) with a crystalline structure having a thickness d of 0.04*D?d?0.25*D and covering a proportion x of x?0.1 of the surface (6, 7) of the particle (5) are embedded on the surface (6, 7) of the particle (5).Type: ApplicationFiled: July 23, 2008Publication date: August 5, 2010Applicant: Vacuumschmeize GmbH & Co. KGInventor: Markus Brunner
-
Publication number: 20100143177Abstract: A method and apparatus produces high strength aluminum alloys from a powder containing L12 intermetallic dispersoids. The powder is degassed, sealed under vacuum in a container, heated, consolidated by vacuum hot pressing, and extruded.Type: ApplicationFiled: December 9, 2008Publication date: June 10, 2010Applicant: United Technologies CorporationInventor: Awadh B. Pandey
-
Patent number: 7727462Abstract: An article made of a metallic material having its constituent elements is made by furnishing at least one nonmetallic precursor compound, wherein all of the nonmetallic precursor compounds collectively include the constituent elements of the metallic material in their respective constituent-element proportions. The precursor compounds are chemically reduced to produce particles comprising the metallic material, without melting the precursor compounds and without melting the metallic material. The particles may be consolidated into a rod, which may be used as a welding rod in a welding operation. Alternatively, the nonmetallic precursor compounds may be consolidated prior to the chemical reduction.Type: GrantFiled: December 23, 2002Date of Patent: June 1, 2010Assignee: General Electric CompanyInventors: Eric Allen Ott, Andrew Philip Woodfield, Clifford Earl Shamblen
-
Publication number: 20100116471Abstract: A composite article (1; 10; 40) comprises a plurality of inclusions (5) of a magnetocalorically active material embedded in a matrix (4) of a magnetocalorically passive material. The inclusions (5) and the matrix (4) have a microstructure characteristic of a compacted powder.Type: ApplicationFiled: December 27, 2007Publication date: May 13, 2010Inventors: Georg Werner Reppel, Matthias Katter
-
Publication number: 20100108503Abstract: In one example embodiment, a sputter target structure for depositing semiconducting chalcogenide films is described. The sputter target includes a target body comprising at least one chalcogenide alloy having a chalcogenide alloy purity of at least approximately 2N7, gaseous impurities less than 500 ppm for oxygen (O), nitrogen (N), and hydrogen (H) individually, and a carbon (C) impurity less than 500 ppm. In a particular embodiment, the chalcogens of the at least one chalcogenide alloy comprises at least 20 atomic percent of the target body composition, and the chalcogenide alloy has a density of at least 95% of the theoretical density for the chalcogenide alloy.Type: ApplicationFiled: October 27, 2009Publication date: May 6, 2010Applicant: APPLIED QUANTUM TECHNOLOGY, LLCInventors: Brian Josef Bartholomeusz, Michael Bartholomeusz
-
Publication number: 20100111746Abstract: It is an object of the present invention to obtain a highly coercive R-T-B system sintered magnet by making the crystal microstructure of a raw material alloy prepared by strip casting more uniform, thereby making the crushed powder obtained from such raw material alloy more fine and making the size distribution more narrow. The present invention provides a raw material alloy for an R-T-B system sintered magnet containing grains of an R2T14B compound, wherein a P and/or S content is between 100 and 950 ppm. This raw material alloy preferably has a composition comprising 25 to 35% by weight of R, 0.5 to 4% by weight of B, 0.02 to 0.6% of one or both of Al and Cu, 5% by weight or less of Co, and the balance of Fe.Type: ApplicationFiled: December 23, 2009Publication date: May 6, 2010Applicant: TDK CORPORATIONInventors: Yasushi Enokido, Chikara Ishizaka, Gouichi Nishizawa
-
Patent number: 7704448Abstract: High temperature-resistant niobium wire enriched with phosphorous is suitable as a connecting wire for niobium, niobium oxide, or tantalum capacitors.Type: GrantFiled: March 3, 2005Date of Patent: April 27, 2010Assignee: W.C. Heraeus GmbHInventor: Bernd Spaniol
-
Publication number: 20100080726Abstract: A composition suitable for use as a target containing antimony to be irradiated by accelerated charged particles (e.g., by protons to produce tin-117m) comprises an intermetallic compound of antimony and titanium which is synthesized at high-temperature, for example, in an arc furnace. The formed material is powdered and melted in an induction furnace, or heated at high gas pressure in gas static camera. The obtained product has a density, temperature stability and heat conductivity sufficient to provide appropriate target material.Type: ApplicationFiled: April 16, 2009Publication date: April 1, 2010Inventors: Yurii D. Seropeghin, Boris L. Zhuikov
-
Publication number: 20100068088Abstract: Hot briquette iron includes a plurality of reduced iron particles which are bonded to each other by hot forming, wherein the reduced iron particles each have a surface region having an average carbon content of 0.1 to 2.5% by mass and a central region positioned inside the surface region and having an average carbon content higher than that of the surface region.Type: ApplicationFiled: November 7, 2007Publication date: March 18, 2010Applicant: Kabushiki Kaisha Kobe Seiko Sho (Kobe Steel, Ltd.)Inventors: Hidetoshi Tanaka, Takeshi Sugiyama
-
Patent number: 7666247Abstract: A method for spherically granulating and agglomerating metal particles such as tantalum and/or niobium powders is described in the present invention, which includes the steps of: a). comminuting the metal particles to form fine particles having D50 less than 50 ?m; b). granulating the comminuted metal particles comprising volatile liquid, for example, tantalum and/or niobium particles comprising volatile liquid, to form wet spherical particles; c). still drying the wet spherical particles and removing volatile liquid to form flowable pre-agglomerated particles with increased bulk density; d). heat treating the pre-agglomerated particles; e). screening the heat treated powder to obtain the flowable agglomerated particles. The present invention provides a flowable spherical agglomerated metal particles, and especially tantalum and/or niobium particles having improved properties. The present agglomerated tantalum powder have a flow rate of at least about 2.0 g/sec, a BET surface area of from about 0.Type: GrantFiled: February 17, 2006Date of Patent: February 23, 2010Assignee: Ningxia Orient Tantalum Industry Co., Ltd.Inventors: Jilin He, Luntao Pan, Aiguo Zheng, Yuewei Cheng, Yuezhong Ma, Hongdong Liu, Guoqi Yang, Chunxiang Wang, Yanping Wang, Shiping Zheng