And Aluminum Compound Patents (Class 501/89)
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Publication number: 20100248929Abstract: A ceramic component is provided, including a ceramic body containing silicon carbide, and an oxide layer provided on the ceramic body, the oxide layer being formed by oxidizing the ceramic body in the presence of alumina having a submicron particle size.Type: ApplicationFiled: June 7, 2010Publication date: September 30, 2010Applicant: SAINT-GOBAIN CERAMICS & PLASTICS, INC.Inventor: Raymond H. Bryden
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Publication number: 20100205920Abstract: Continuous ceramic (e.g., silicon carbide) nanofibers (502, 602, 604, 606, 608, 702, 704, 1102, 1104) which are optionally p or n type doped are manufactured by electrospinning a polymeric ceramic precursor to produce fine strands of polymeric ceramic precursor which are then pyrolized. The ceramic nanofibers may be used in a variety of applications not limited to reinforced composite materials (400), thermoelectric generators (600, 700) and high temperature particulate filters (1200).Type: ApplicationFiled: September 19, 2008Publication date: August 19, 2010Inventors: Pawel Czubarow, Philip Premysler
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Patent number: 7732026Abstract: A ceramic component is provided, including a ceramic body containing silicon carbide, and an oxide layer provided on the ceramic body, the oxide layer being formed by oxidizing the ceramic body in the presence of alumina having a submicron particle size.Type: GrantFiled: March 26, 2004Date of Patent: June 8, 2010Assignee: Saint-Gobain Ceramics & Plastics, Inc.Inventor: Raymond H. Bryden
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Publication number: 20100113249Abstract: A batch mixture including ceramic-forming ingredients, a pore former, a binder comprising an ammonium salt of an alkylated cellulose binder, and a liquid vehicle, as defined herein. Also disclosed is a method for producing a ceramic precursor article as defined herein having excellent extrusion properties.Type: ApplicationFiled: October 30, 2008Publication date: May 6, 2010Inventors: Patricia Ann Beauseigneur, Kevin Ying Chou
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Publication number: 20100093513Abstract: A refractory composition having excellent erosion resistance and infiltration resistance to a molten metal and a formed article and a sintered article produced from the refractory composition are provided. The refractory composition comprises for 100 parts by mass of at least one compound selected from the group consisting of silicon nitride, boron nitride, and silicon carbide, 5 to 40 parts by mass of at least one compound selected from the group consisting of calcium fluoride, magnesium fluoride, calcium oxide or its precursor, magnesium oxide or its precursor, barium oxide or its precursor, and barium sulfate. The content of the silicon nitride, boron nitride, and silicon carbide in the composition is 20 mass % or more.Type: ApplicationFiled: January 13, 2009Publication date: April 15, 2010Inventors: Shigeru Nakama, Norihiro Kihara, Munehiko Fukase
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Publication number: 20100081556Abstract: An oxide-based ceramic matrix composite and a method of making oxide-based ceramic composite are provided. The oxide-based ceramic matrix composite comprises a ceramic fiber and a mullite-alumina impregnating the ceramic fiber, wherein the mullite-alumina ceramic matrix comprises of 10-70 wt % mullite-alumina mixture.Type: ApplicationFiled: July 21, 2006Publication date: April 1, 2010Inventors: Vann Heng, Robert A. DiChiara, JR., Susan Saragosa, Elizabeth Chu, Carlos G. Levi, Frank W. Zok
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Publication number: 20100029463Abstract: Preparation for producing refractory materials, characterized in that it comprises one or more particulate, refractory components and one or more binders, where—the particulate, refractory component has a mean particle diameter of >0.3 m and—the binder is selected from among—from 0.05 to 50% by weight of a very finely particulate binder having a mean particle diameter of from 10 nm to 0.3 m selected from the group consisting of aluminium oxide, titanium dioxide, zirconium dioxide and/or mixed oxides of the abovementioned oxides, —from 0 to 20% by weight of an inorganic binder, from 0 to 20% by weight of a hydraulically setting binder, —from 0 to 15% by weight of an organic, silicon-free binder—and the preparation additionally contains from 0 to 35% by weight of water, where—the proportion of the particulate, refractory component is equal to 100 and the percentages of the further materials in the preparation are based on the particulate component.Type: ApplicationFiled: September 19, 2007Publication date: February 4, 2010Applicant: Evonik Degussa GmbHInventors: Tadeusz Von Rymon Lipinski, Christoph Tontrup, Wolfgang Lortz, Christoph Batz-Sohn
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Patent number: 7648932Abstract: The invention relates to a process for the production of a molded porous ceramic article containing ?-SiC, which process comprises the following steps: the preparation of a molded article containing silicon and carbon and the subsequent pyrolysis and siliconization of the article containing silicon and carbon to form SiC. The invention further relates to a molded porous ceramic article containing SiC which has been produced from a molded article containing silicon and carbon.Type: GrantFiled: July 5, 2006Date of Patent: January 19, 2010Assignee: Mann+Hummel Innenraumfilter GmbH & Co. KGInventors: Lars Weisensel, Thomas Wolff, Heino Sieber, Peter Greil
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Publication number: 20090227441Abstract: The invention relates to a refractory batch and to a process for its production. The batch comprises a refractory metal oxide main component containing Al2O3; the refractory metal oxide main component containing 40 to 60% by weight of Al2O3; a phosphate bond, in particular, the phosphate bond being produced by at least one of a phosphoric acid and a monoaluminum phosphate; finely particulate SiC having a grain size of <0.2 mm, the batch containing 3 to 15% by weight of the finely particulate SiC; and the grain size distribution of the SiC being selected so that more than 2.0% of the SiC, based on a total quantity of the batch, is <0.045 mm, whereby said batch excludes the presence of boron phosphate.Type: ApplicationFiled: May 12, 2009Publication date: September 10, 2009Inventors: Heinrich Liever, Hans-Jurgen Klischat, Holger Wirsing
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Publication number: 20090197073Abstract: A cutting insert 1 is made of an aluminum oxide-based composite sintered body constituted by a ternary ceramic material including aluminum oxide, silicon carbide, and a sialon. The sialon in the aluminum oxide-based composite sintered body is Si—Al—O—N as defined by JCPDS No. 32-0026 in X-ray diffraction analysis.Type: ApplicationFiled: August 29, 2007Publication date: August 6, 2009Inventors: Hiroko Nakayama, Kazuhiro Urashima
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Publication number: 20090156385Abstract: Carbides and nitrides are provided containing a controlled amount of pre-determined diluents and methods for their manufacture and use are disclosed. The pre-determined diluents include at least one of the silica, silicon metal, carbon, alumina, boron oxide, alkaline earth oxides such as calcium oxide, magnesium oxide, alkali oxides such as sodium oxide, potassium oxide, iron oxide, titanium oxide, and other components typically present in glass, ceramics, or metals. The carbides and nitrides with pre-determined diluents are formed by optionally pyrolyzing a precursor material to form a carboneous mixture and heat treating the carboneous mixture for a pre-determined time and at an elevated temperature during which carbon and/or nitrogen reacts with silica in the mixture to form carbides and/or nitrides and controlled amounts of pre-determined diluents.Type: ApplicationFiled: October 29, 2004Publication date: June 18, 2009Inventors: Giang Biscan, Hamid Hojaji, David Leslie Melmeth, Thinh Pham, Mark G. Stevens, Huagang Zhang
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Publication number: 20090130618Abstract: To provide a long-life refractory capable of maintaining durability under severe conditions. The castable refractory comprises a mixture containing at least one of 2 to 10 mass % of silicon carbide and 3 to 10 mass % of chamotte, as an auxiliary raw material, and a binder material, with the remaining balance being one or more main raw materials selected from corundum, mullite, bauxite, chamotte, talc and silica, and is used in an environment exposed to an alkali component-containing hot gas atmosphere. In an alkali component-containing gas atmosphere at a high temperature (750° C. or more), silicon carbide and/or chamotte are vitrified to a thickness of 1 mm or less in the surface layer of the refractory to prevent the alkali component-containing gas from intruding inside of the refractory.Type: ApplicationFiled: October 27, 2006Publication date: May 21, 2009Applicant: NIPPON STEEL CORPORATIONInventors: Satoru Ito, Hitoshi Nakamura, Taijiro Matsui, Michio Nitta
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Patent number: 7531476Abstract: The present invention provides refractory materials for the kilns in the cement industry. The refractory material comprises andalusite, silicon carbide, and clay, or kaolinite, silicon carbide, and clay. The refractory materials can be configured as bricks such as fired refractory firebricks or formless configurations such as mortar. The material can be applied to the inside of the kilns to counteract thermal and physical/chemical deformation that occurs inside the kilns.Type: GrantFiled: March 16, 2007Date of Patent: May 12, 2009Inventor: Pedro Fajardo Sola
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Publication number: 20090114365Abstract: An additive to foundry sand molding and core aggregates is used to produce sand cores and molds. The additive produces a sand-based foundry molding and core aggregate which resists the formation of some of the defects commonly associated with the production of castings produced by silica sand-based molding and core aggregates. In particular, the additive improves the quality of castings poured at temperatures higher than those of the pouring temperatures of molten iron, such as in steel castings and in iron castings with “hot spots.Type: ApplicationFiled: November 6, 2008Publication date: May 7, 2009Inventors: Jeffrey J. Cieplewski, Andrew Callan, Rebecca Roti
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Patent number: 7510990Abstract: A sputtering target contains Si and C as its major components and includes a texture in which a Si phase continuously exists in a net shape in gaps among SiC crystal grains. An average diameter of the Si phase is controlled to 1000 nm or less. The sputtering target is sputtered in an oxygen-containing gas, thereby depositing an optical thin film containing Si and O as its major components, and a third element other than the major components, a total amount of the third element being within a range from 10 to 2000 ppm.Type: GrantFiled: March 7, 2006Date of Patent: March 31, 2009Assignee: Kabushiki Kaisha ToshibaInventors: Yasuhiro Satoh, Tsukasa Nakai, Sumio Ashida, Shoko Suyama, Yoshiyasu Ito
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Publication number: 20080261799Abstract: The invention relates to a refractory batch and to a process for its production. The batch comprises a refractory metal oxide main component containing Al2O3; the refractory metal oxide main component containing 40 to 60% by weight of Al2O3; a phosphate bond, in particular, the phosphate bond being produced by at least one of a phosphoric acid and a monoaluminum phosphate; finely particulate SiC having a grain size of <0.2 mm, the batch containing 3 to 15% by weight of the finely particulate SiC; and the grain size distribution of the SiC being selected so that more than 2.0% of the SiC, based on a total quantity of the batch, is <0.045 mm, whereby said batch excludes the presence of boron phosphate.Type: ApplicationFiled: December 5, 2007Publication date: October 23, 2008Inventors: Heinrich Liever, Hans-Jurgen Klischat, Holger Wirsing
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Patent number: 7407523Abstract: An improved cutting tool insert and a method for the preparation of such cutting tool insert, having a sintered alumina and silicon carbide whisker composite material body, comprising the steps of milling and mixing the powdered starting materials of said composite material and forming said material into a preformed workpiece, heating up said workpiece at a heating rate of from about 20 to about 60° C. per minute to a sintering temperature of between from about 1600 to about 2300° C., and holding at said sintering temperature for a holding time of from about 5 to about 60 minutes at a pressure of between from about 20 to about 100 MPa.Type: GrantFiled: December 20, 2006Date of Patent: August 5, 2008Assignee: Sandvik Intellectual Property ABInventor: Gunnar Brandt
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Publication number: 20080093779Abstract: Pressureless sintering of silicon carbide with fracture toughness in excess of about 4 MPa-m1/2 as measured by the single-edge precracked beam (SEPB) technique while maintaining a density greater than 3.1 g/cc for compositions with SiC greater than about 94 wt. % is made possible through the use of metallic Al to promote sintering and grain growth. Boron and carbon may be used as traditional sintering aids, with nitrogen to suppress grain growth, and additions of yttrium and/or lanthanide elements to promote intergranular fracture.Type: ApplicationFiled: August 31, 2006Publication date: April 24, 2008Inventors: Raymond Ashton Cutler, Roger Marc Flinders, Darin Ray
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Patent number: 7345849Abstract: The magnetic head slider material of the present invention is constituted by a sintered body containing 100 parts by weight of alumina, 20 to 150 parts by weight of titanium carbide and silicon carbide in total, and 0.2 to 9 parts by weight of carbon.Type: GrantFiled: June 27, 2005Date of Patent: March 18, 2008Assignees: TDK Corporation, SAE Magnetics (H.K.) Ltd.Inventors: Yukio Kawaguchi, Kei Sugiura, Masahiro Itoh, Minoru Sakurabayashi, Atsushi Hitomi, Cheng Yih Liu
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Patent number: 7267882Abstract: An improved ceramic/metal composite material is disclosed which is fully reacted with aluminum. The composite is made from a ceramic preform, such as silicon carbide, having a binding agent, such as silica, that is contacted with a metal mixture or alloy, such as aluminum/silicon, that reacts with the binding agent to form a ceramic/metal composite material. Also disclosed is a method of making the improved composite material and articles made incorporating the material.Type: GrantFiled: July 23, 2003Date of Patent: September 11, 2007Assignee: RMG Technologies, Inc.Inventors: Michael C. Breslin, Andrew C. Strange, Michael E. Fuller
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Patent number: 7244685Abstract: A silicon carbide porous body of the present invention, comprising silicon carbide particles and metallic silicon bonded together in such a manner that pores are retained between the silicon carbide particles and/or between the silicon carbide particle and metallic silicon, wherein an oxide phase containing oxides of silicon, aluminum, and alkaline earth metal is buried in at least some of fine pore portions having a minimum distance of 10 ?m or less between the surfaces of the silicon carbide particles or between the surfaces of the silicon carbide particle and metallic silicon among the pores, and a ratio of a total volume of portions in which the oxide phase is not buried among the fine pore portions is 20% or less with respect to a total volume of portions in which the oxide phase is not buried among the pores including the fine pore portions.Type: GrantFiled: November 19, 2003Date of Patent: July 17, 2007Assignee: NGK Insulators, Ltd.Inventors: Masahiro Furukawa, Nobuyuki Tanahashi, Kenji Morimoto, Shinji Kawasaki
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Patent number: 7195722Abstract: Ceramic igniter compositions are provided that contain components of conductive material and insulating material, where the insulating material component includes a relatively high concentration of metal oxide. Ceramic igniters of the invention are particularly effective for high voltage use, including throughout the range of from about 187 to 264 volts.Type: GrantFiled: March 19, 2003Date of Patent: March 27, 2007Assignee: Saint-Gobain Ceramics and Plastics, Inc.Inventors: Roger J. Lin, Craig A. Willkens, Kevin C. Solofra, Thomas J. Sheridan
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Patent number: 7112549Abstract: A low-thermal-expansion, rigid and wear-resistant ceramic is provided. The low-thermal-expansion ceramic of the invention includes 60 vol % to 99.9 vol % of at least one selected from the group consisting of cordierite, spodumene and eucryptite and 0.1 vol % to 40 vol % of at least one selected from the group consisting of carbides, nitrides, borides and silicides of group IVa elements, group Va elements and group VIa elements, and boron carbide. The ceramic has a porosity of 0.5% or less and a thermal expansion coefficient, at 10° C. to 40° C., of 1.5×10?6/° C. or less.Type: GrantFiled: September 20, 2001Date of Patent: September 26, 2006Assignee: Sumitomo Metal Industries, Ltd.Inventors: Yasuki Yoshitomi, Tadahisa Arahori
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Patent number: 6995103Abstract: A silicon-containing composite body that would otherwise be brittle can be engineered to exhibit enhanced fracture toughness. Specifically, a silicon-ceramic composite body is produced, preferably by a reactive infiltration technique. The ceramic is selected such that it has a higher coefficient of thermal expansion (CTE) than does the silicon phase. At least at some point during processing, the silicon phase is at a temperature above its normal ductile/brittle transition temperature of about 500° C., and preferably above its melting point. The formed composite body containing the silicon phase is then cooled below its ductile/brittle transition. During cooling, the ceramic phase shrinks more than does the silicon phase, thereby placing the latter in a state of compressive stress. By the time the composite body has cooled to substantially ambient temperature, the induced compressive stress in the silicon phase is sufficient as to impart a measurable degree of semi-ductile character to the silicon phase.Type: GrantFiled: October 15, 2002Date of Patent: February 7, 2006Assignee: M Cubed Technologies, Inc.Inventor: Michael K. Aghajanian
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Patent number: 6905992Abstract: A ceramic composite made by compacting a starting powder blend. The composite includes between about 50 volume percent and about 99 volume percent of a ceramic matrix; and between about 1 volume percent and about 50 volume percent as-processed silicon carbide whiskers. The ceramic composite having a fracture toughness (KIC) of greater than about 4.0 MPam1/2. The ceramic has a silicon carbide whisker density as measured in whiskers per square millimeter equal to or less than about 1500 times the volume percent of silicon carbide whiskers, but in a density sufficient for the ceramic composite to have the fracture toughness.Type: GrantFiled: July 30, 2002Date of Patent: June 14, 2005Assignee: Kennametal Inc.Inventors: Pankaj K. Mehrotra, Shanghua Wu
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Patent number: 6887809Abstract: The invention relates to the field of ceramics and open-celled silicon carbide foam ceramics, which can find application, for example, as high temperature- and thermal shock-resistant silicon carbide foam. The aim of the invention is to disclose an open-celled silicon carbide foam ceramic with improved thermal shock resistance, which may be produced by a simple method. Said aim is achieved with an open-celled silicon carbide foam ceramic, the structure of which is made up of sintered silicon carbide with a 5 to 30% pore volume of closed pores with an average diameter of <20 ?m. The invention further relates to a method for the production of an open-celled silicon carbide foam ceramic, whereby coarse and fine silicon carbide powder in the ratio 20:80 to 80:20 parts are mixed and a suspension produced therefrom. An open-celled foam or open-celled network is then coated with said suspension, the foam or network material removed and sintering carried out at a temperature of >1800° C.Type: GrantFiled: August 3, 2001Date of Patent: May 3, 2005Assignee: Fraunhofer-Gesellschaft zur Foerderung der Angewandten Forschung E.V.Inventor: Jörg Adler
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Patent number: 6863759Abstract: Techniques to bond two or more smaller bodies or subunits to produce a unitary SiC composite structure extend the capabilities of reaction-bonded silicon carbide, for example, by making possible the fabrication of complex shapes. In a first aspect of the present invention, two or more preforms are bonded together with a binder material that imparts at least strength sufficient for handling during subsequent thermal processing. In a second aspect of the present invention, instead of providing the subunits to be bonded in the form of preforms, the subunits may be dense, SiC composite bodies, e.g., RBSC bodies. In each of the above embodiments, a preferable means for bonding two or more subunits combines aspects of adhesive and mechanical locking characteristics. One way to accomplish this objective is to incorporate a mechanical locking feature to the joining means, e.g., a “keyway” feature.Type: GrantFiled: January 23, 2002Date of Patent: March 8, 2005Assignee: M Cubed Technologies, Inc.Inventors: Michael A. Richmond, Michael K. Aghajanian, Allyn L. McCormick, W. Michael Waggoner, Brian E. Schultz
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Patent number: 6844281Abstract: A preform for use in a metal matrix composite, particularly for a magnesium metal composite. In the preform the reinforcing material typically is silicon carbide, boron nitride, titanium nitride, carbon or graphite. The binder used in the preform is sintered magnesium fluoride, which avoids the known problems which result from the high reactivity of molten magnesium metal with other binders, such as silica and alumina, which results in the formation of magnesium oxide in the reinforced composite. The presence of magnesium oxide crystals in the metal matrix adversely affects the properties of the composite. The preform generally has a void volume of from about 50% to about 95%.Type: GrantFiled: November 18, 2002Date of Patent: January 18, 2005Assignee: Her Majesty the Queen in right of Canada, as represented by the Minister of Natural ResourcesInventors: Jason S. H. Lo, Areekattuthazhayil K. Kuriakose, Raul Santos
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Patent number: 6839639Abstract: Shaped composite structures which are strong, stiff and hard and, at the same time, having high toughness, comprise a matrix, for example a cement or ceramics based matrix and embedded therein a plurality of plate shaped or at lest 60 mm thick elongated reinforcement components, the reinforcing component having at least 1.5 times higher tensile strength that the matrix, the minimum volume per cent concentration of the reinforcement components being related in the manner described in the specification to their tensile strength and (in case of elongated reinforcement components) also their thickness and to the compressive strength and modulus of elasticity and modulus of elasticity of the matrix. Methods for modeling and designing such structures are also disclosed, as are methods for establishing the structure for smaller matrix building blocks which may be pre-fabricated and which are arranged around pre-arranged reinforcement bodies and then fixed to each other and to the reinforcement.Type: GrantFiled: May 12, 2003Date of Patent: January 4, 2005Assignee: Giantcode A/SInventor: Hans Henrik Bache
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Patent number: 6815038Abstract: A honeycomb structure constituted by cell partition walls (ribs) which form combined cells being composed of a plurality of cells adjacent to each other, and a honeycomb outer wall surrounding and holding outermost cells located at the circumference of combined cells, characterized in that cell partition walls and the honeycomb outer wall are formed by a bonded texture containing silicon carbide (SiC) as an aggregate and cordierite as a binder, and that the proportion (volume %) of silidon carbide (SiC) forming the bonded texture to the total of cordierite and silicon carbide (SiC) is 40 to 90%. This honeycomb structure can exceed required levels, in all of thermal conductivity, chemical durability, low thermal expansion and mechanical strength, producible at a low cost, and suitably used in a filter for purification of automobile exhaust gas, a catalyst carrier, etc.Type: GrantFiled: October 18, 2002Date of Patent: November 9, 2004Assignee: NGK Insulators, Ltd.Inventors: Kenji Morimoto, Katsuhiro Inoue, Shinji Kawasaki, Hiroaki Sakai
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Patent number: 6811868Abstract: The object of the present invention is to provide a ceramic body that can support a required amount of a catalyst component, without lowering the characteristics such as strength, being manufactured without forming a coating layer and providing a high performance ceramic catalyst that is excellent in practical utility and durability. A noble metal catalyst is supported directly on the surface of the ceramic body and the second component, consisting of compound or composite compound of element having d or f orbit in the electron orbits thereof such as W, Co, Ti, Fe, Ga and Nb, is dispersed in the first component made of cordierite or the like that constitutes the substrate ceramic. The noble metal catalyst can be directly supported by bonding strength generated by sharing the d or f orbits of the second component, or through interaction with the dangling bond that is generated in the interface between the first component and the second component.Type: GrantFiled: June 6, 2003Date of Patent: November 2, 2004Assignee: Denso CorporationInventors: Jun Hasegawa, Tomomi Hase, Kazuhiko Koike, Miho Ito
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Publication number: 20040204305Abstract: A batch, in particular for the production of refractory shaped bodies, includes a mixture of a refractory, metal oxide main component containing 40 to 60% by weight of Al2O3, a phosphate bond and finely particulate SiC having a grain size of <0.2 mm, and a process using the mixture for forming the batch to produce the refractory shaped bodies.Type: ApplicationFiled: April 28, 2004Publication date: October 14, 2004Applicant: Refratechnik Holding GmbHInventors: Heinrich Liever, Hans-Jurgen Klischat, Holger Wirsing
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Publication number: 20040180776Abstract: An improved cutting tool insert and a method for the preparation of such cutting tool insert, having a sintered alumina and silicon carbide whisker composite material body, comprising the steps of milling and mixing the powdered starting materials of said composite material and forming said material into a preformed workpiece, heating up said workpiece at a heating rate of from about 20 to about 60° C. per minute to a sintering temperature of between from about 1600 to about 2300° C., and holding at said sintering temperature for a holding time of from about 5 to about 60 minutes at a pressure of between from about 20 to about 100 MPa.Type: ApplicationFiled: January 26, 2004Publication date: September 16, 2004Applicant: Sandvik ABInventor: Gunnar Brandt
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Patent number: 6777361Abstract: A ceramic composite material, for example, a ceramic molded body or a layer obtained by pyrolysis of a starting mixture, containing at least one polymer precursor material and at least one filler, which has an average particle size of less than 200 nm. Such a composite material may be used, for example, for producing fibers, filters, catalyst support materials, ceramic sheathed-element glow plugs, metal-containing reactive composite materials, porous protective shells for sensors, ceramic or partially ceramic coatings or microstructured ceramic components.Type: GrantFiled: October 29, 2002Date of Patent: August 17, 2004Assignee: Robert Bosch GmbHInventors: Wilfried Aichele, Wolfgang Dressler, Christof Rau, Volker Knoblauch, Alexander Kloncynski, Horst Boeder
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Patent number: 6762140Abstract: The present application is directed to ceramic compositions and, more specifically, to a silicon carbide composition and method of making it through liquid phase sintering. In one embodiment, the present invention is directed to an unsintered ceramic body including at least one liquid phase sintering aid. The unsintered ceramic body further includes a boron containing compound, a free carbon containing compound, and silicon carbide. In another embodiment, the present invention is directed to a method of making a sintered ceramic body. The method includes combining at least one liquid phase sintering aid, a boron containing compound, a free carbon containing compound, and silicon carbide to form a green ceramic, shaping the green ceramic into a ceramic body, and sintering the ceramic body.Type: GrantFiled: April 29, 2002Date of Patent: July 13, 2004Assignee: Saint-Gobain Ceramics & Plastics, Inc.Inventors: Vimal K. Pujari, William T. Collins, Matteo Scalabrino
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Publication number: 20040087430Abstract: The invention relates to a refractory material for cement industry kilns and the use thereof. The inventive material can be used inside cement industry kilns in order to counteract the thermal and physico-chemical deformation that occurs inside the said kilns.Type: ApplicationFiled: December 22, 2003Publication date: May 6, 2004Inventor: Pedro Farjardo Sola
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Patent number: 6716800Abstract: A composite body of silicon carbide having binderless, allotropic carbon granules distributed throughout is produced. The nominal size of the binderless allotropic carbon granules can range from 5 to 500 micrometers. The concentration of the binderless allotropic carbon particles can vary from 1.0 to 35.0 weight percent. The process to produce such a composite body is to sinter silicon carbide with binderless, carbon-yielding precursor granules. The composite body is utilized in tribological applications. The dense, impervious silicon carbide-binderless carbon composite exhibits excellent physical and tribological characteristics when used as a mechanical face seal, a sliding bearing arrangement, or some other rubbing component.Type: GrantFiled: April 12, 2002Date of Patent: April 6, 2004Assignee: John Crane Inc.Inventors: Joseph F. Demendi, Xin Chen, William R. Clemens
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Patent number: 6692839Abstract: A titanium based composite which includes a Ti(Al,O) base matrix, discrete ceramic particles, and an oxide layer on the surface of the composite. The discrete ceramic particles are integrally associated with the Ti(Al,O) base matrix and the oxide layer, so that at a temperature of above about 600° C., the composite is substantially resistant to oxidation and spallation.Type: GrantFiled: April 9, 2002Date of Patent: February 17, 2004Assignee: Titanox Developments LimitedInventors: Deliang Zhang, Wei Gao, Danyang Ying, Zhengwei Li, Zhihong Cai, Jing Liang
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Patent number: 6680267Abstract: The present application is directed to ceramic compositions and, more specifically, to a silicon carbide composition and method of making it through liquid phase sintering. In one embodiment, the present invention is directed to an unsintered ceramic body including a rare earth metal oxide, one of a glass phase metal oxide and a glass phase metal nitride, a boron containing compound, a free carbon containing compound and silicon carbide. In another embodiment, the present invention is directed to a method of making a sintered ceramic body. The method includes combining a rare earth metal oxide, one of a glass phase metal oxide and a glass phase metal nitride, a boron containing compound, a free carbon containing compound, and silicon carbide to form a green ceramic. The method further includes shaping the green ceramic into a ceramic body and sintering the ceramic body.Type: GrantFiled: August 20, 2001Date of Patent: January 20, 2004Assignee: Saint-Gobain Ceramics & Plastics, Inc.Inventors: Vimal K. Pujari, William T. Collins
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Publication number: 20030195122Abstract: A composite body of silicon carbide having binderless, allotropic carbon granules distributed throughout is produced. The nominal size of the binderless allotropic carbon granules can range from 5 to 500 micrometers. The concentration of the binderless allotropic carbon particles can vary from 1.0 to 35.0 weight percent. The process to produce such a composite body is to sinter silicon carbide with binderless, carbon-yielding precursor granules. The composite body is utilized in tribological applications. The dense, impervious silicon carbide-binderless carbon composite exhibits excellent physical and tribological characteristics when used as a mechanical face seal, a sliding bearing arrangement, or some other rubbing component.Type: ApplicationFiled: April 12, 2002Publication date: October 16, 2003Applicant: John Crane Inc.Inventors: Joseph F. Demendi, Xin Chen, William R. Clemens
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Publication number: 20030180579Abstract: Improved silicon carbide composites made by an infiltration process feature a metal phase in addition to any residual silicon phase. Not only are properties such as mechanical toughness improved, but the infiltrant can be so engineered as to have much diminished amounts of expansion upon solidification, thereby enhancing net-shape-making capabilities. Further, multi-component infiltrant materials may have a lower liquidus temperature than pure silicon, thereby providing the practitioner greater control over the infiltration process. In particular, the infiltration may be conducted at the lower temperatures, where low-cost but effective bedding or barrier materials can terminate the infiltration process once the infiltrant has migrated through the permeable mass up to the boundary between the mass and the bedding material.Type: ApplicationFiled: January 3, 2003Publication date: September 25, 2003Inventors: W. Michael Waggoner, Barry R. Rossing, Michael A. Richmond, Michael K. Aghajanian, Allyn L. McCormick
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Patent number: 6620756Abstract: A reinforcing material is uniformly dispersed in a yttrium aluminum garnet matrix material for use as a machine tool material specially suited for machining Ti or a Ti alloy. The matrix material and the reinforcing material are present in proportions selected such that the machine tool material is substantially resistant to transfer of impurities to a Ti or Ti alloy by way of either chemical reaction with or diffusion into the Ti or Ti alloy material to be machined. The matrix material preferably comprises Y3Al5O12. The reinforcing material may comprise SiCw, TiC, TiN, TiB2, or combinations thereof and is preferably present in an amount sufficient to enable electrical discharge machining of the machine tool material. In addition, the machine tool material defines a thermodynamically stable phase at relatively high machining temperatures.Type: GrantFiled: June 20, 2001Date of Patent: September 16, 2003Assignee: UES, Inc.Inventors: Tai-Il Mah, Triplicane A. Parthasarathy, Michael K. Cinibulk
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Patent number: 6605556Abstract: The present invention relates to high temperature composite materials formed from nano-sized powders suitable for use in the manufacture of jet engine components. The composite materials consist essentially of a matrix formed from a powdered material having a particle size in the range of from about 1 to about 100 nanometers and a plurality of reinforcing fibers embedded within the matrix and comprising from about 20% to about 40% by volume of the composite material. The method of manufacturing the composite materials broadly comprises the steps of mixing the powdered material with the reinforcing fibers and consolidating the mixture to form the composite material.Type: GrantFiled: June 7, 1995Date of Patent: August 12, 2003Assignee: United Technologies CorporationInventor: Sudhangshu Bose
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Patent number: 6582629Abstract: Ceramic igniter compositions are provided that contain components of conductive material and insulating material, where the insulating material component includes a relatively high concentration of metal oxide. Ceramic igniters of the invention are particularly effective for high voltage use, including throughout the range of from about 187 to 264 volts.Type: GrantFiled: December 20, 1999Date of Patent: June 24, 2003Assignee: Saint-Gobain Ceramics and Plastics, Inc.Inventors: Roger J. Lin, Craig A. Willkens, Kevin C. Solofra, Thomas J. Sheridan
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Publication number: 20030100434Abstract: A low-thermal-expansion, rigid and wear-resistant ceramic is provided.Type: ApplicationFiled: October 8, 2002Publication date: May 29, 2003Inventors: Yasuki Yoshitomi, Tadahisa Arahori
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Patent number: 6562745Abstract: This invention relates to an aging resistant SiC igniter having a second layer of recrystallized SiC within the body.Type: GrantFiled: July 24, 2001Date of Patent: May 13, 2003Assignee: Saint-Gobain Ceramics and Plastics, Inc.Inventors: Craig A. Willkens, Normand P. Arsenault, James Olson, Roger Lin
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Patent number: 6548787Abstract: A ceramic substrate for a ceramic heater includes aluminum nitride, silicon nitride or silicon carbide as the main component for increasing mechanical strength and improving thermal shock resistance, and a proper additive for controlling thermal conductivity. A temperature gradient from a heating element to a power feeding electrode is reduced by providing a dimensional ratio of the substrate effective for preventing oxidation of a power feeding contact that contacts the electrode of the heating element formed on the surface of the ceramic substrate. The dimensional ratio A/B≧20 is satisfied, wherein A represents the distance from the contact between a circuit of the heating element and the electrode to an end of the ceramic substrate closer to the electrode, and B represents the thickness of the ceramic substrate. The thermal conductivity of the ceramic substrate is adjusted to 30 to 80 W/m·K.Type: GrantFiled: January 11, 2001Date of Patent: April 15, 2003Assignee: Sumitomo Electric Industries, Ltd.Inventors: Masuhiro Natsuhara, Hirohiko Nakata, Syunji Nagao
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Publication number: 20030054940Abstract: By providing a cBN sintered body which containing, as a binder, at least one species selected from among nitrides, carbides, carbide nitrides, and borides of a Group IVa, Group Va, or Group VIa; and a boride containing a Group VIII element, and a Group IVa element, Group Va element, or Group VIa element; or when containing, as a binder, at least one species selected from among nitrides, carbides, carbide nitrides, and borides of a Group IVa, Group Va, or Group VIa element; a boride containing a Group VIII element, and a Group IVa element, Group Va element, or Group VIa element; and an Al compound, there can be provided a cBN sintered body which attain lower reactivity with a material to be cut while maintaining excellent ability to retain cBN grains.Type: ApplicationFiled: January 29, 2002Publication date: March 20, 2003Applicant: Showa Denko Kabushiki KaishaInventors: Yoshihiko Abe, Taishu Yanagisawa, Masao Fujimori, Kousuke Shioi
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Publication number: 20030050707Abstract: Cermet comprising ceramic and metal components and a molten metal infiltration method and process for fabrication thereof. The light weight cermets having improved porosity, strength, durability, toughness, elasticity fabricated from presintered ceramic powder infiltrated with a molten metal or metal alloy. Alumina titanium cermets biocompatible with the human body suitable for bone and joint replacements.Type: ApplicationFiled: March 31, 1997Publication date: March 13, 2003Inventor: RICHARD L. LANDINGHAM
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Publication number: 20030049149Abstract: Cermet comprising ceramic and metal components and a molten metal infiltration method and process for fabrication thereof. The light weight cermets having improved porosity, strength, durability, toughness, elasticity fabricated from presintered ceramic powder infiltrated with a molten metal or metal alloy. Alumina titanium cermets biocompatible with the human body suitable for bone and joint replacements.Type: ApplicationFiled: September 27, 2002Publication date: March 13, 2003Applicant: The Regents of the University of CaliforniaInventor: Richard L. Landingham