Containing Boron(b) Or Nitrogen(n) Patents (Class 75/244)
  • Patent number: 6800145
    Abstract: A Nd—Fe—B type rare earth magnet alloy is provided with hard magnetic phases each of which has a size equal to or less than 80 nm, soft magnetic phases each of which has a size equal to or less than 80 nm, with the hard and soft magnetic phases being present in a mixed structure, and partly anisotropic regions wherein axes of easy magnetization of the hard magnetic phases are aligned in one direction and each having a size equal to or greater than 0.1 &mgr;m. Such a magnet alloy is obtained using a strip casting method or ultra cooling method and serves as material for an anisotropic exchange spring magnet to be applied to a motor.
    Type: Grant
    Filed: May 17, 2002
    Date of Patent: October 5, 2004
    Assignee: Nissan Motor Co., Ltd.
    Inventors: Munekatsu Shimada, Hideaki Ono
  • Patent number: 6793706
    Abstract: A bond coat composition for use in thermal barrier coatings comprises a NiAl—CoCrAlY matrix containing particles of AlN dispersed therein. The bond coat composition is prepared by croymilling NiAl and CoCrAlY in liquid nitrogen.
    Type: Grant
    Filed: September 10, 2002
    Date of Patent: September 21, 2004
    Assignee: Ohio Aerospace Institute
    Inventor: Mohan G. Hebsur
  • Patent number: 6773482
    Abstract: A cold work steel alloy for the manufacture of parts, comprising the elements C, Si, Mn, Cr, W, Mo, V, Nb, Co, S, N, Ni and accompanying elements in the concentration ranges recited in claim 1 and having an oxygen content of less than 100 ppm and a content of nonmetallic inclusions corresponding to a K0 value of a maximum of 3 when tested according to DIN 50 602, as well as a method of making a part of said steel alloy by powder metallurgy.
    Type: Grant
    Filed: April 9, 2002
    Date of Patent: August 10, 2004
    Assignee: Bohler Edelstahl, GmbH
    Inventors: Werner Liebfahrt, Roland Rabitsch
  • Publication number: 20040149083
    Abstract: With the objectives of alleviating the property of attacking on the mating member by scratching-off of local agglutinates on the sliding contact surface, achieving improved wear resistance, and achieving improved seizure resistance through restraint of frictional heat generation by a hard phase, a copper based sintered contact material contains shock-resistant ceramics in an amount of 0.05 to less than 0.5 wt % as non-metallic particles composed of one or more substances selected from pulverized oxides, carbides and nitrides. The shock-resistant ceramics are comprised of SiO2 and/or two or more substances selected from SiO2, Al2O3, LiO2, TiO2 and MgO.
    Type: Application
    Filed: January 23, 2004
    Publication date: August 5, 2004
    Inventors: Takemori Takayama, Tetsuo Ohnishi, Yoshikiyo Tanaka, Keiichi Maeda, Kan?apos;ichi Sato
  • Publication number: 20040149081
    Abstract: With the objectives of alleviating the property of attacking on the mating member by scratching-off of local agglutinates on the sliding contact surface, achieving improved wear resistance, and achieving improved seizure resistance through restraint of frictional heat generation by a hard phase, a copper based sintered contact material contains shock-resistant ceramics in an amount of 0.05 to less than 0.5 wt % as non-metallic particles composed of one or more substances selected from pulverized oxides, carbides and nitrides. The shock-resistant ceramics are comprised of SiO2 and/or two or more substances selected from SiO2, Al2O3, LiO2, TiO2 and MgO.
    Type: Application
    Filed: January 23, 2004
    Publication date: August 5, 2004
    Inventors: Takemori Takayama, Tetsuo Ohnishi, Yoshikiyo Tanaka, Keiichi Maeda, Kan?apos;ichi Sato
  • Publication number: 20040149082
    Abstract: With the objectives of alleviating the property of attacking on the mating member by scratching-off of local agglutinates on the sliding contact surface, achieving improved wear resistance, and achieving improved seizure resistance through restraint of frictional heat generation by a hard phase, a copper based sintered contact material contains shock-resistant ceramics in an amount of 0.05 to less than 0.5 wt % as non-metallic particles composed of one or more substances selected from pulverized oxides, carbides and nitrides. The shock-resistant ceramics are comprised of SiO2 and/or two or more substances selected from SiO2, Al2O3, LiO2, TiO2 and MgO.
    Type: Application
    Filed: January 23, 2004
    Publication date: August 5, 2004
    Inventors: Takemori Takayama, Tetsuo Ohnishi, Yoshikiyo Tanaka, Keiichi Maeda, Kan?apos;Ichi Sato
  • Publication number: 20040125537
    Abstract: An object of the present invention is to provide a niobium sintered body free of reduction in the CV value, a niobium powder for use in the manufacture of the niobium sintered body, and a capacitor using the niobium sintered body. A niobium powder of the present invention has niobium and tantalum, where the tantalum is present in an amount at most of about 700 ppm by mass. A sintered body and a capacitor each is manufactured using the niobium powder.
    Type: Application
    Filed: December 9, 2003
    Publication date: July 1, 2004
    Applicant: SHOWA DENKO K.K.
    Inventors: Kazumi Naito, Kazuhiro Omori
  • Patent number: 6752879
    Abstract: A compact is produced from an alloy powder for R—Fe—B type rare earth magnets including particles having a size in a range of about 2.0 &mgr;m to about 5.0 &mgr;m as measured by a light scattering method using a Fraunhofer forward scattering in a proportion of approximately 45 vol. % or more and particles having a size larger than about 10 &mgr;m in a proportion of less than about 1 vol. %. The compact is then sintered to obtain a R—Fe—B type rare earth magnet having an average crystal grain size in a range of about 5 &mgr;m to about 7.5 &mgr;m, and an oxygen concentration in a range of about 2.2 at. % to about 3.0 at. %.
    Type: Grant
    Filed: May 29, 2003
    Date of Patent: June 22, 2004
    Assignee: Sumitomo Special Metals Co., Ltd.
    Inventors: Shigeru Takaki, Ken Makita
  • Patent number: 6736909
    Abstract: A bulk exchange-spring magnet 12, a method of producing the same, and a device 20 incorporating the bulk exchange-spring magnet are disclosed. The magnet includes magnet powders 10 having hard and soft phases, and boron and oxygen atoms which cohere in boundary areas 16 between grains 14 of the densified magnet powders 10. In a production method, the magnet powders 10 are compacted so as to incorporate boron and oxygen atoms into the boundary areas 16 and are heated under a compacted state of the magnet powders at varying operating temperatures for a given time period. This results in formation of a highly densified magnet at a lower potential operating temperature for a shorter time period without the grain growth. The device 20 includes the bulk exchange-spring magnet 12 containing the boron and oxygen atoms cohering between the grains of the densified magnet powders.
    Type: Grant
    Filed: September 25, 2001
    Date of Patent: May 18, 2004
    Assignee: Nissan Motor Co., Ltd.
    Inventors: Norihisa Waki, Hideaki Ono, Munekatsu Shimada, Tatsuo Sugiyama
  • Publication number: 20040089100
    Abstract: A nitrogen containing niobium powder is disclosed as well as electrolytic capacitors formed from the niobium powders. Methods to reduce DC leakage in a niobium anode are also disclosed.
    Type: Application
    Filed: June 30, 2003
    Publication date: May 13, 2004
    Inventor: James A. Fife
  • Publication number: 20040079189
    Abstract: 1. A niobium powder for capacitors, wherein the chromium content is 50 ppm by mass or less, granulated product and sintered body thereof, and producing method of those; 2. a capacitor constructed by one part electrode formed of the niobium sintered body, another part electrode and a dielectric material interposed between two electrodes, and its producing method; and 3. an electronic circuit and electronic device using the capacitor. A capacitor having good voltage resistance properties can be manufactured by using the niobium sintered body for capacitors of the present invention, wherein the chromium content is 50 ppm by mass or less.
    Type: Application
    Filed: September 15, 2003
    Publication date: April 29, 2004
    Inventors: Masaaki Nishioka, Kazumi Naito, Isao Kabe
  • Patent number: 6723387
    Abstract: A thermal spray method for the fabrication of ceramic/metal and ceramic/ceramic hardcoating for wear applications. The method makes use of feedstock powder, composed of micron-scale aggregates of hard phase material particles that are either mixed or coated with a readily fusible nano-scale binder phase material. Thus, during thermal spraying, the nanostructured material undergoes rapid melting while the aggregated material is heated but not necessarily melted. A dense coating is formed when the molten nano-material fills the available pore spaces between the heated and softened aggregates, providing a strong and tough matrix for the consolidated material. Optimal wear properties are achieved when the volume fraction of aggregated particles is high, typically in the range of 0.5-0.9. Aggregated material may be composed of one, two or more particles of difference sizes and/or compositions, with particle size distribution that gives high packing density for the hard phase.
    Type: Grant
    Filed: September 19, 2002
    Date of Patent: April 20, 2004
    Assignee: Rutgers University
    Inventors: Bernard H. Kear, Ganesh Skandan
  • Publication number: 20040060391
    Abstract: An elemental powder or powder of compounds is disclosed consisting essentially of the primary metals chromium, nickel and molybdenum for blending with an atomized, prealloyed, stainless steel powder and followed by pressing the powder into a part for sintering includes an additive incorporated into the matrix of the stainless steel powder that enhances the machinability of the part and serves as a chip breaker. Among the candidate additives are hexagonal boron nitride, a powder with lubricating qualities, Monel Metal (Ni—Cu), cupro-nickel (Cu—Ni), and powders of electrical resistance alloys such as 80-20 alloy (80Ni—20Cr), 70-30 NiCr, Ni—Cr—Fe—Si alloys, and molybdenum disilicide (MoSi2).
    Type: Application
    Filed: September 23, 2002
    Publication date: April 1, 2004
    Inventor: Orville W. Reen
  • Publication number: 20040055416
    Abstract: High theoretical density, metal-based materials containing graphite or hexagonal boron nitride have low coefficients of friction and wear rates are useful for bearings, bushings and other articles subject to bearing loads.
    Type: Application
    Filed: September 20, 2002
    Publication date: March 25, 2004
    Applicant: OM Group
    Inventors: Stephen D. Dunmead, James M. Marder
  • Patent number: 6702869
    Abstract: A niobium powder is described which when formed into an electrolytic capacitor anode, the anode has the capacitance of at least 62,000 CV/g. Methods of making flaked niobium powder which have high capacitance capability when formed into electrolytic capacitor anodes is also described. Besides niobium, the present invention is also applicable to other metals, including valve metals.
    Type: Grant
    Filed: February 1, 2002
    Date of Patent: March 9, 2004
    Assignee: Cabot Corporation
    Inventors: Kurt A. Habecker, James A. Fife
  • Publication number: 20040035246
    Abstract: A compact is obtained from a mixed powder of a multi-component system ceramics composed of constitutive elements of at least two metal elements selected from the group consisting of Ti, Al, V, Nb, Zr, Hf, Mo, Ta, Cr, and W, N, and optionally C; and Fe, Ni, Co, or an alloy composed of a constitutive element of at least one metal element of Fe, Ni, and Co. A composite material is prepared by sintering the compact.
    Type: Application
    Filed: June 18, 2003
    Publication date: February 26, 2004
    Inventors: Mitsuo Kuwabara, Masanori Ohtsuka
  • Patent number: 6692548
    Abstract: A copper-based sliding material produced by sintering, comprising at least two phases of copper and/or copper alloys which phases have hardness levels different form each other, and hard particles with an average particle size of 0.1 to 10 &mgr;m which are dispersed in at least one phase with the exception of a softest phase in an amount of 0.1 to 10 vol. % of the whole copper-based sliding material, said sliding material satisfying (H2/H1)≧1.2 in which H1 is the Vickers hardness of the softest phase and in which H2 is the Vickers hardness of a phase hardest in hardness including said hard particles.
    Type: Grant
    Filed: June 25, 2001
    Date of Patent: February 17, 2004
    Assignee: Daido Metal Company Ltd.
    Inventors: Kenji Sakai, Naohisa Kawakami, Satoru Kurimoto, Takashi Inaba, Koichi Yamamoto, Takayuki Shibayama
  • Publication number: 20040002418
    Abstract: A sintered cubic boron nitride (cBN) compact for use in a tool is composed of between about 60 and 80 vol-% cBN having a volumetric mean particle size of between about 3 to 6 &mgr;m and between about 40 and 20 vol-% of a ceramic binder phase. The ceramic binder is composed of between about 20 and 60 vol-% of one or more of a carbide, nitride, or boride of a Group IVB or VIB metal, and between about 40 and 80 vol-% of one or more of carbides, nitrides, borides, or oxides of aluminum. The cBN compact additionally contains between about 3 and 15 wt-% tungsten. The cBN compacts are especially useful in machining iron and like chemically reactive parts, especially where such parts are powder metal parts.
    Type: Application
    Filed: May 14, 2003
    Publication date: January 1, 2004
    Inventors: Robert Dean Scurlock, Stephen Lee Dole
  • Patent number: 6669788
    Abstract: A Fe—B—R type permanent magnetic, consisting of: 13-19 atomic % R, where R consists essentially of a mixture of rare earth elements Nd and/or Pr, and Ce, where Ce is between 0.2 and 5.0 wt. % of R; 4-20 atomic % B, and the balance comprising Fe. In a preferred aspect, R comprises 15-16 atomic % B; of which Ce is approximately 0.5% and the remaining rare earths Pr and Nd are in a ratio of 3:1. A process of producing a Fe—B—R permanent magnet as described above, and a Fe—B—R magnetic material made by such process.
    Type: Grant
    Filed: May 21, 2001
    Date of Patent: December 30, 2003
    Assignees: General Electric Company, Batou Iron and Steel (Group) Co. LTD
    Inventors: Chen Pei Xin, Wang Biao, Ni De Zhen, Mark Gilbert Benz, Juliana C. Shei
  • Publication number: 20030233910
    Abstract: A sintered alloy having an improved wear resistance and a workability for a valve seat. The alloy contains iron as a main component, carbon, silicon, chromium, molybdenum, cobalt, maganese, lead, vanadium, advantageously boron nitride, and tungsten. The strength, wear resistance, and material properties are improved by a sub-zero treatment. Sintered alloy with wear resistance used for a valve seat comprises Fe as a main component, C of 1.2 to 1.7 wt %, Cr of 3.5 to 5.0 wt %, Mo of 2.0 to 4.0 wt %, V of 3.0 to 5.0 wt %, W of 7.0 to 10.0 wt %, Co of 2.0 to 3.5 wt %, boron nitride of 0.1 to 1.0 wt %, S of 0.2 to 0.4 wt %, Mn of 0.2 to 0.5 wt %, advantageously 0.2 to 0.6% Si, and Pb of 10.0 to 15.0 wt %. Sintered alloy for an valve seat is manufactured by a sub-zero treatment so that the amount of metallic particles separated from a base matrix decreases and a size of the separated metallic particle becomes small.
    Type: Application
    Filed: December 31, 2002
    Publication date: December 25, 2003
    Inventors: Lim Ho Jeong, Kwang Ho Song, Jung Seok Oh, Jong Dae Lim
  • Patent number: 6656245
    Abstract: A niobium sintered body for a capacitor, which exhibits an LC value of not larger than 300 &mgr;A/g as measured after an electrolytic oxide film is formed thereon. The sintered body preferably exhibits a product (CV) [i.e., a product of capacity (C) with electrolysis voltage (V)] of at least 40,000 &mgr;F·V/g. The sintered body is produced by sintering a niobium powder containing at least one niobium compound selected from niobium nitride, niobium carbide and niobium boride. A capacitor manufactured from the sintered body has a large capacity per unit weight and good leak current characteristics. Especially, a sintered body made of a niobium powder having a large average degree of roundness has a relatively large porosity and a good packed density, and a capacitor manufactured from this sintered body has a large capacity and good withstand voltage characteristics.
    Type: Grant
    Filed: July 8, 2002
    Date of Patent: December 2, 2003
    Assignee: Showa Denko Kabushiki Kaisha
    Inventors: Kazumi Naito, Atsushi Shimojima
  • Publication number: 20030217619
    Abstract: The allows: Ta—Si, Nb—Si, TaN—Si, NbN—Si and variants are used as enhanced powder anode substrates for electrolytic capacitor anodes (sintered powder masses) with dielectric oxide formation at walls of the internal pores.
    Type: Application
    Filed: May 21, 2002
    Publication date: November 27, 2003
    Applicant: H.C. Starck, Inc.
    Inventors: Leah Simkins, Anastasia Conlon
  • Patent number: 6652616
    Abstract: In accordance with the method according to the present invention, particles consisting of ferrotitanium, ferroniobium or ferrovanadium are dispersed and hot compacted in a metal matrix powder consisting of hardening steel or heat-resistant alloys. In so doing, titanium, niobium or vanadium carbide is obtained in situ by a solid-state reaction, i.e. without melting, from the carbon admixed or contained in the matrix powder and the ferroalloy particles. Carbon can also be absorbed from the gaseous phase and it may be substituted by nitrogen. This method permits a reasonably-priced introduction of hard particles into the composite material, the hard particles having a size that is necessary as a protection against scoring wear.
    Type: Grant
    Filed: May 28, 2002
    Date of Patent: November 25, 2003
    Assignee: Maschienfabrik Koppern GmbH & Co. KG
    Inventors: Hans Berns, Birgit Wewers
  • Patent number: 6635098
    Abstract: A low cost titanium, titanium alloy material, or Ti matrix composite comprising clean and divided titanium turnings that are blended with titanium, titanium alloy powder, and/or ceramic powder and consolidated is provided. A method of making the material is also provided. The low cost material is formed into preshapes, such as a billet, which is subsequently used as feedstock for extrusion, forging, casting, or rolling.
    Type: Grant
    Filed: February 12, 2002
    Date of Patent: October 21, 2003
    Assignee: Dynamet Technology, Inc.
    Inventors: Stanley Abkowitz, Susan M. Abkowitz, Harold L. Heussi, Kevin M. McCarthy
  • Publication number: 20030172774
    Abstract: A niobium sintered body which is prepared in such a manner that a niobium powder is sintered at a temperature of 500° C. to 2000° C. and allowed to stand at a maximum sintering temperature for 60 minutes to 150 minutes in the course of sintering. The niobium sintered body of the present invention is characterized in that a product (CV) of a capacitance (C) per unit mass and a forming voltage (V) is 90,000 &mgr;FV/g or more, and a value obtained by dividing a product of a mean particle diameter (D50) of a primary particle of said niobium powder and a leakage current (LC) by said CV is 5×10−4 &mgr;m&mgr;A (&mgr;FV) or less. And there can be provided a well-balanced capacitor with respect to a preferably low leakage current value regardless of the large capacitance, that is, a highly reliable capacitance.
    Type: Application
    Filed: February 7, 2003
    Publication date: September 18, 2003
    Inventors: Kazumi Naito, Isao Kabe
  • Patent number: 6602314
    Abstract: The present invention provides an aluminum composite material having neutron absorbing power that improves the ability to absorb neutrons by increasing the content of B, while also being superior to materials of the prior art in terms of mechanical properties and workability. The aluminum composite material having neutron absorbing power contains in Al or an Al alloy matrix phase B or a B compound having neutron absorbing power in an amount such that the proportion of B is 1.5% by weight or more to 9% by weight or less, and the aluminum composite material has been pressure sintered.
    Type: Grant
    Filed: March 30, 2001
    Date of Patent: August 5, 2003
    Assignee: Mitsubishi Heavy Industries, Ltd.
    Inventors: Yasuhiro Sakaguchi, Tomikane Saida, Kazuo Murakami, Kazuhisa Shibue, Naoki Tokizane, Tatsumi Takahashi
  • Publication number: 20030126944
    Abstract: A process for producing sintered pellets made from blends of refractory metal and refractory metal nitride powders were found to have a higher fraction of intra-agglomerate pores than those made from the refractory metal or refractory metal nitride alone resulting in improved capacitor grade powders, anodes and finished capacitors therefrom. The pellet porosity and total intrusion volume maximizes when the mixture is in the 50-75 W/W % refractory metal nitride range. The total pellet pore surface area was found to be relatively independent of refractory metal nitride concentration above 50%. A substrate consisting of a 50/50 or 25/75 W/W % refractory metal/refractory metal nitride powder mixture should produce solid capacitors with higher capacitance recovery and lower ESR.
    Type: Application
    Filed: October 25, 2002
    Publication date: July 10, 2003
    Applicant: H.C. Starck, Inc.
    Inventors: Terrance B. Tripp, Barbara L. Cox
  • Publication number: 20030117766
    Abstract: An object of the present invention is to provide a niobium sintered body free of reduction in the CV value, a niobium powder for use in the manufacture of the niobium sintered body, and a capacitor using the niobium sintered body. A niobium powder of the present invention has niobium and tantalum, where the tantalum is present in an amount at most of about 700 ppm by mass. A sintered body and a capacitor each is manufactured using the niobium powder.
    Type: Application
    Filed: December 19, 2002
    Publication date: June 26, 2003
    Applicant: SHOWA DENKO K.K.
    Inventors: Kazumi Naito, Kazuhiro Omori
  • Patent number: 6576036
    Abstract: A superfine material made by incorporation of an inorganic polymer precursor of a grain growth inhibitor into intermediates useful for the production of superfine materials. The precursor/nanostructured material composite is optionally heat treated at a temperature below the grain growth temperature of the superfine material in order to more effectively disperse the precursor. The composites are then heat treated at a temperature effective to decompose the precursor and to form superfine materials having grain growth inhibitors uniformly distributed at the grain boundaries. Synthesis of the inorganic polymer solution comprises forming an inorganic polymer from a solution of metal salts, filtering the polymer, and drying. Alloying additives as well as grain growth inhibitors may be incorporated into the superfine materials.
    Type: Grant
    Filed: May 1, 2001
    Date of Patent: June 10, 2003
    Assignee: Inframat Corporation
    Inventors: Danny T. Xiao, Chris W. Strock, Donald M. Wang, Peter R. Strutt
  • Patent number: 6572671
    Abstract: In the invention, a stainless steel powder of the desired composition is either directly mixed with a h-BN powder, compressed and sintered or the stainless steel powder is compressed, impregnated with a solution containing h-BN and then sintered or compressed, sintered and then impregnated with a solution containing h-BN. The sintered bodies in all the aforementioned cases may be resin impregnated. Steel body formation may be done by traditional press compacting or, alternatively, by injection molding steel powder in molds (metal injection molding, MIM).
    Type: Grant
    Filed: August 9, 2000
    Date of Patent: June 3, 2003
    Assignee: Maxtech Manufacturing Inc
    Inventors: Tandjaoui Baazi, Roch Angers, Danielle Lacombe
  • Publication number: 20030059332
    Abstract: A method of producing a ceramic matrix composite is provided, which production method reduces metal residual percentage within matrix with little energy consumption, without requiring special external heating means and special equipment while it is industrially simple and at a low price. It is a method of producing a ceramic matrix composite having the steps of filling mixed powder obtained by mixing metal powder and boron nitride powder into a predetermined container to form a green compact having a porous structure, and infiltrating the above described green compact with molten Al to form a composite material containing metal boride and having aluminum nitride as a matrix. The green compact is formed by compressing the mixed powder whose mixing ratio of metal powder to boron nitride powder is 1 : 1.8 to 1 : 2.2 (molar ratio) so that porosity of the green compact is 34 to 42%.
    Type: Application
    Filed: August 15, 2002
    Publication date: March 27, 2003
    Applicant: NGK Insulators, Ltd.
    Inventors: Makoto Kobashi, Naoyuki Kanetake, Takahiro Ishikawa, Masahiro Kida
  • Patent number: 6527822
    Abstract: Disclosed is a novel thin ribbon of a rare earth/iron/boron-based magnet alloy prepared by quenching of an alloy melt by the method of strip casting, from which a sintered permanent magnet is obtained by the powder metallurgical method.
    Type: Grant
    Filed: August 31, 2001
    Date of Patent: March 4, 2003
    Assignee: Shin-Etsu Chemical Co., Ltd.
    Inventors: Koichi Hirota, Takehisa Minowa, Takahiro Hashimoto, Koji Sato, Kenji Yamamoto
  • Patent number: 6514307
    Abstract: An sintered iron-based powder metal body with outstandingly lower re-compacting load and having a high density and a method of manufacturing an iron-based sintered component with fewer pores of a sharp shape and having high strength and high density, the method comprising mixing, an iron-based metal powder containing at most about 0.05% of carbon, at most about 0.3% of oxygen, at most about 0.010% of nitrogen, with at least about 0.03% and at most about 0.5% of graphite powder and a lubricant, preliminarily compacting the mixture into a preform, the density of which is about 7.3 Mg/m3 or more, and preliminarily sintering the preform in a non-oxidizing atmosphere in which a partial pressure of nitrogen is about 30 kPa or less at a temperature of about 1000° C. or higher and about 1300° C. or lower, thereby forming a sintered iron-based powder metal body with outstandingly lower re-compacting load and having high deformability, the density of which is about 7.
    Type: Grant
    Filed: August 21, 2001
    Date of Patent: February 4, 2003
    Assignees: Kawasaki Steel Corporation, Unisia Jecs Corporation
    Inventors: Naomichi Nakamura, Satoshi Uenosono, Shigeru Unami, Masashi Fujinaga, Takashi Yoshimura, Mitsumasa Iijima, Shin Koizumi, Hiroyuki Anma, Yasuo Hatai
  • Patent number: 6506265
    Abstract: A R—Fe—B base permanent magnet material is composed of a R—Fe—B magnet alloy which contains 87.5-97.5 vol % of a Fe14R2B1 primary phase and 0.1-3 vol % of a rare earth oxide or a rare earth and transition metal oxide. The alloy contains as a major component in its metal structure a compound selected from among zirconium-boron compounds, niobium-boron compounds and hafnium-boron compounds. The compound has an average grain size of at most 5 &mgr;m and is uniformly distributed within the alloy such that the maximum interval between neighboring grains of the compound is at most 50 &mgr;m. Rare-earth permanent magnet materials of this composition and structure have excellent magnetic properties.
    Type: Grant
    Filed: June 13, 2001
    Date of Patent: January 14, 2003
    Assignee: Shin-Etsu Chemical Co., Ltd.
    Inventors: Kenji Yamamoto, Koro Tatami, Takehisa Minowa
  • Publication number: 20020194954
    Abstract: A niobium sintered body for a capacitor, which exhibits an LC value of not larger than 300 &mgr;A/g as measured after an electrolytic oxide film is formed thereon. The sintered body preferably exhibits a product (CV) [i.e., a product of capacity (C) with electrolysis voltage (V)] of at least 40,000 &mgr;F·V/g. The sintered body is produced by sintering a niobium powder containing at least one niobium compound selected from niobium nitride, niobium carbide and niobium boride. A capacitor manufactured from the sintered body has a large capacity per unit weight and good leak current characteristics. Especially, a sintered body made of a niobium powder having a large average degree of roundness has a relatively large porosity and a good packed density, and a capacitor manufactured from this sintered body has a large capacity and good withstand voltage characteristics.
    Type: Application
    Filed: July 8, 2002
    Publication date: December 26, 2002
    Applicant: SHOWA DENKO K.K.
    Inventors: Kazumi Naito, Atsushi Shimojima
  • Patent number: 6468365
    Abstract: An R—T—B sintered permanent magnet having a composition including 28-33 weight % of R, and 0.5-2 weight % of B, the balance being substantially T and inevitable impurities, wherein R is at least one rare earth element including Y, at least one heavy rare earth element selected from the group consisting of Dy, Tb and Ho being indispensable, and T is Fe or Fe and Co, the permanent magnet having a crystal structure comprising first R2T14B-type, main-phase crystal grain particles having a higher heavy rare earth element concentration than that of a crystal grain boundary phase, and second R2T14B-type, main-phase crystal grain particles having a lower heavy rare earth element concentration than that of the crystal grain boundary phase.
    Type: Grant
    Filed: October 14, 1999
    Date of Patent: October 22, 2002
    Assignee: Hitachi Metals, Ltd.
    Inventors: Kimio Uchida, Tsunehiro Kawata
  • Patent number: 6464747
    Abstract: Sintered cermet materials far tools such as cutting tools, which are excellent in heat resistance, wear resistance and fracture resistance, are inexpensive, and have long life time, and a method for producing such sintered cermet materials. The sintered cermet materials for tools are composed of sintered bodies which are obtained by preparing a mixed powder containing powders of TiCN, Si3N4, Al2O3, CrxN (x=1-2.7 and ZrN, at least one powder of W and WC, and at least one kind of metal powder selected from the group consisting of Co, Ni, Ta and Mo, and sintering the mixed powder .
    Type: Grant
    Filed: November 26, 2001
    Date of Patent: October 15, 2002
    Assignees: Aisin Seiki Kabushiki Kaisha, Tomei Diamond Co., Ltd.
    Inventors: Yasuhiro Enya, Kenji Gotoh, Satoru Hosomi
  • Publication number: 20020106297
    Abstract: The invention relates to a Co-base target made of a sintered powder, having a restrained amount of oxygen, and a producing method thereof. The target contains from more than 10 to not more than 25 at % of B and not more than 100 ppm of oxygen. It may contain 30≧Pt≧5 at%, 30≧Cr≧10 at%, 10≧Ta>0 at% and/or 30≧Ni>0 at%. It may contain also from more than 0 (zero) to not more than 15 at% in total of one or more elements selected from the group consisting of Ti, Zr, Hf, V, Nb, Mo, W, Cu, Ag, Au, Ru, Rh, Pd, Os, Ir and rare earth elements. The target is produced by melting a Co-base alloy together with an additive B in an amount of from more than 10 to not more than 25 at% whereby deoxidizing, rapidly cooling the molten metal to produce an alloy powder and sintering the alloy powder.
    Type: Application
    Filed: November 29, 2001
    Publication date: August 8, 2002
    Applicant: HITACHI METALS, LTD.
    Inventors: Tomonori Ueno, Hideo Murata, Shigeru Taniguchi, Hide Ueno
  • Patent number: 6425961
    Abstract: The present invention provides a method for producing a composite hard magnetic material, wherein a composite powder—prepared by mixing; a composite hard magnetic material produced by consolidating a composite powder prepared by mixing an alloy powder having an amorphous phase containing a main component Co and at least Sm, and an alloy powder comprising an amorphous phase as a principal phase and containing at least Fe and/or Co, rare earth elements R and B; an alloy powder having an amorphous phase containing a main component Co and at least Sm; and an alloy powder having an amorphous phase containing at least Fe and/or Co, rare earth elements R and B—is consolidated by taking advantage of softening phenomenon caused by crystallization of the amorphous phase in the alloy powder comprising an amorphous phase as a principal phase.
    Type: Grant
    Filed: May 14, 1999
    Date of Patent: July 30, 2002
    Assignees: Alps Electric Co., Ltd.
    Inventors: Akinori Kojima, Akihiro Makino, Yutaka Yamamoto, Akihisa Inoue
  • Patent number: 6419723
    Abstract: Disclosed is a thin alloy ribbon prepared by the strip casting method as an intermediate for the preparation of a sintered rare earth-based permanent magnet or, in particular, a neodymium/iron/boron-type permanent magnet. The thin alloy ribbon is characterized by a specific volume fraction of the four-phase coexisting region consisting of the &agr;-iron phase, R-rich phase, RXT4B4 phase and R2T14B phase each having an average grain diameter in a specified range and a specific volume fraction of the chill crystalline phase. When these requirements are satisfied, the sintered rare earth-based permanent magnet prepared from the thin alloy ribbons can be imparted with improved magnetic properties and high sintering density even without increasing the sintering temperature.
    Type: Grant
    Filed: August 31, 2001
    Date of Patent: July 16, 2002
    Assignee: Shin-Etsu Chemical Co., Ltd.
    Inventors: Koichi Hirota, Takahiro Hashimoto, Koji Sato, Kenji Yamamoto, Takehisa Minowa
  • Patent number: 6399018
    Abstract: Solid objects are made by means of a novel multi-step forming, debinding, sintering and infiltrating process, using a metal-ceramic composition. In this process, the mixture is held for a period of time to degas and settle the powdered material from a liquid binder. The packed geometry is then heated to above the melting temperature of the binder to remove the binder portion of the solid geometry. Upon removal of the binder the binder-free solid geometry is raised to a temperature where the metal pre-sinters together into a three-dimensional rigid matrix with interconnected porosity to form a solid precursor. The porous matrix includes the particulate ceramic material and a first metal, which are at least partially sintered. A molten second metal is then introduced to the fill the porous matrix and form an infiltrated matrix.
    Type: Grant
    Filed: April 16, 1999
    Date of Patent: June 4, 2002
    Assignee: The Penn State Research Foundation
    Inventors: Randall M. German, Timothy J. Weaver, Julian A. Thomas, Sundar V. Atre, Anthony Griffo
  • Patent number: 6398843
    Abstract: A dispersion-strengthened material is described which comprises aluminium or aluminium alloy containing a substantially uniform dispersion of ceramic particles to confer dispersion strengthening which is inherently stable at high working temperatures, the ceramic particles having a diameter of less than 400 nm, and preferably in the range 10 nm to 100 nm. Suitable ceramic dispersoids include Al2O3, TiO2, Al3C4, ZrO2, Si3N4, SiC, SiO2.
    Type: Grant
    Filed: May 4, 2000
    Date of Patent: June 4, 2002
    Assignee: Qinetiq Limited
    Inventor: Andrew Tarrant
  • Patent number: 6355086
    Abstract: The present invention relates to a method an apparatus for fabricating a component by a direct laser process. One form of the present invention contemplates a gas turbine engine blade having an abrasive tip formed directly thereon.
    Type: Grant
    Filed: August 12, 1997
    Date of Patent: March 12, 2002
    Assignees: Rolls-Royce Corporation, Board of Regents, The University of Texas
    Inventors: Lawrence Evans Brown, Timothy Paul Fuesting, Joseph Jefferson Beaman, Jr., Suman Das
  • Patent number: 6338907
    Abstract: The invention relates to an abrasive tool comprising a support body and at least one abrasive element connected thereto. Said abrasive element has an abrasive grain which is joined by a sintered metal. The sintered metal used for joining is copper-coated iron and is alloyed with metal borides, metal carbides and/or metal silicides and also with tin.
    Type: Grant
    Filed: April 3, 2000
    Date of Patent: January 15, 2002
    Assignee: Tyrolit Schleifmittelwerke Swarovski K.G.
    Inventor: Wolfgang Strelsky
  • Patent number: 6336950
    Abstract: An aspect of this invention is an electrode rod for spark alloying, comprising a compact of a first powder of a first component which comprises a metal selected from a group of Fe, Co, Ni, metals of 4a, 5a and 6a of the periodic table and Si, and a second powder of a second component which is capable of self-propagating high temperature synthesis to form with said first component carbide, nitride, boride, silicide or intermetallic compound, said first and second powders being mixed intimately with each other and formed into an axial rod.
    Type: Grant
    Filed: May 5, 2000
    Date of Patent: January 8, 2002
    Assignees: The Ishizuka Research Institute Ltd., Moscow Steel and Alloys Institute, SHS-Center
    Inventors: Mitsue Koizumi, Manshi Ohyanagi, Satoru Hosomi, Evgeny Alexandrovich Levashov, Alexander Gennadievich Nikolaev, Alexander Evgenievich Kudryashov
  • Patent number: 6322637
    Abstract: Disclosed is a thin alloy ribbon prepared by the strip casting method as an intermediate for the preparation of a sintered rare earth-based permanent magnet or in particular, a neodymium/iron/boron-type permanent magnet. The thin alloy ribbon is characterized by a specific volume fraction of the four-phase coexisting region consisting of the &agr;-iron phase, R-rich phase, RxT4B4 phase and R2T14B phase each having an average grain diameter in a specified range and a specific volume fraction of the chill crystalline phase. When these requirements are satisfied, the sintered rare earth-based permanent magnet prepared from the thin alloy ribbons can be imparted with improved magnetic properties and high sintering density even without increasing the sintering temperature.
    Type: Grant
    Filed: June 7, 2000
    Date of Patent: November 27, 2001
    Assignee: Shin-Etsu Chemical Co., Ltd.
    Inventors: Koichi Hirota, Takahiro Hashimoto, Koji Sato, Kenji Yamamoto, Takehisa Minowa
  • Patent number: 6319336
    Abstract: A permanent magnet alloy having an improved heat resistance comprising, in terms of % by atom, 0.1 to 15 at. % C, 0.5 to 15 at. % B, provided that C and B in total account for 2 to 30 at. %; 40% or less Co (exclusive), 0.5 to 5 at. % in total of Dy and Tb, 8 to 20 at. % R. where R represents at least one element selected from the group consisting of Nd, Pr, Ce, La, Y, Gd, Ho, Er, and Tm; with the balance being Fe and unavoidable impurities.
    Type: Grant
    Filed: March 20, 2000
    Date of Patent: November 20, 2001
    Assignee: Dowa Mining Co., Ltd.
    Inventors: Masami Kamada, Michio Obata, Yuichi Sato
  • Patent number: 6319335
    Abstract: Disclosed is a novel thin ribbon of a rare earth/iron/boron-based magnet alloy prepared by quenching of an alloy melt by the method of strip casting, from which a sintered permanent magnet is obtained by the powder metallurgical method.
    Type: Grant
    Filed: February 11, 2000
    Date of Patent: November 20, 2001
    Assignee: Shin-Etsu Chemical Co., Ltd.
    Inventors: Koichi Hirota, Takehisa Minowa, Takahiro Hashimoto, Koji Sato, Kenji Yamamoto
  • Patent number: 6296720
    Abstract: Disclosed is a rare earth/iron/boron-based permanent magnet alloy composition capable of giving, by a powder metallurgical process, a permanent magnet having excellent coercive force and residual magnetization as well as good squareness ratio of the hysteresis loop. The magnet alloy composition consists of: (a) from 28 to 35% by weight of a rare earth element selected from the group consisting of neodymium, praseodymium, dysprosium, terbium and holmium; (b) from 0.1 to 3.6% by weight of cobalt; (c) from 0.9 to 1.3% by weight of boron; (d) from 0.05 to 1.0% by weight of aluminum; (e) from 0.02 to 0.25% by weight of copper; (f) from 0.02 to 0.3% by weight of zirconium or chromium; (g) from 0.03 to 0.1% by weight of carbon; (h) from 0.1 to 0.8% by weight of oxygen; (i) from 0.002 to 0.2% by weight of nitrogen; and (j) the balance to 100% by weight of iron and unavoidable impurity elements.
    Type: Grant
    Filed: December 8, 1999
    Date of Patent: October 2, 2001
    Assignee: Shin-Etsu Chemical Co., Ltd.
    Inventors: Kenji Yamamoto, Koro Tatami, Takehisa Minowa
  • Patent number: 6296681
    Abstract: The present invention relates to a sinter and a casting comprising a high-hardness glassy alloy containing at least Fe and at least a metalloid element and having a temperature interval &Dgr;Tx of a supercooled liquid as expressed by &Dgr;Tx=Tx−Tg (where, Tx is a crystallization temperature and Tg is a glass transition temperature) of at least 20° C., which permit easy achievement of a complicated concave/convex shape.
    Type: Grant
    Filed: September 29, 1999
    Date of Patent: October 2, 2001
    Assignee: Alps Electric Co., Ltd.
    Inventors: Takao Mizushima, Akihiro Makino, Akihisa Inoue