Patents Examined by Nicholas A Wang
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Patent number: 10933497Abstract: A method for improving the surface of an aluminum alloy article includes manufacturing the aluminum alloy article using an additive manufacturing technique, wherein the article as-manufactured includes one or more of cracks, roughness, or porosity at a surface of the article; coating the surface of the aluminum alloy article with a diffusion element, the diffusion element being capable of diffusing at least 0.2 mils into the article; heating the aluminum alloy article coated with the diffusion element to cause the diffusion element to diffuse the at least 0.2 mils into the article, thereby forming a diffusion layer of at least 0.2 mils in thickness comprising both aluminum alloy and diffusion element; and removing the diffusion layer from the aluminum alloy article, whereby upon the removing, a resulting improved surface of the article comprises fewer or smaller cracks, reduced roughness, or reduced porosity.Type: GrantFiled: August 9, 2018Date of Patent: March 2, 2021Assignee: HONEYWELL INTERNATIONAL INC.Inventors: Andy Szuromi, Steve Starr, Donald G. Godfrey, Mark C. Morris
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Patent number: 10937455Abstract: Provided is an Fe—Pt based magnetic material sintered compact, comprising BN and SiO2 as non-magnetic materials, wherein Si and O are present in a region where B or N is present at a cut surface of the sintered compact. A high density sputtering target is provided which enables production of a magnetic thin film for heat-assisted magnetic recording media, and also reduces the amount of particles generated during sputtering.Type: GrantFiled: July 20, 2020Date of Patent: March 2, 2021Assignee: JX Nippon Mining & Metals CorporationInventor: Shin-ichi Ogino
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Patent number: 10934606Abstract: Nanostructured materials that contain amorphous intergranular films (AIFs) are described herein. Amorphous intergranular films are structurally disordered (lacking the ordered pattern of a crystal) films that are up to a few nanometers thick. Nanostructured materials containing these films exhibit increased ductility, strength, and thermal stability simultaneously. A nanocrystalline material system that has two or more elements can be designed to contain AIFs at the grain boundaries, provided that the dopants segregate to the interface and certain materials science design rules are followed. An example of AIFs in a nanostructured Cu—Zr alloy is provided to illustrate the benefits of integrating AIFs into nanostructured materials.Type: GrantFiled: February 14, 2018Date of Patent: March 2, 2021Assignee: THE REGENTS OF THE UNIVERSITY OF CALIFORNIAInventors: Timothy J. Rupert, Amirhossein Khalajhedayati
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Patent number: 10829838Abstract: The present invention addresses the problem of providing a novel, sold metal alloy. Provided is a metal alloy containing two or more types of metal, wherein an equilibrium diagram of the metal alloy shows the two or more types of metal in a finely mixed state at the nanolevel in a specific region where the two types of metal are unevenly distributed. This metal alloy has a substitutional solid solution of the two or more types of metal as the principal constituent thereof. This metal alloy is preferably one obtained by precipitation after mixing ions of two or more types of metal and a reducing agent in a thin-film fluid formed between processing surfaces, at least one of which rotates relative to the other, which are arranged so as to face one another and are capable of approaching and separating from one another.Type: GrantFiled: July 12, 2017Date of Patent: November 10, 2020Assignee: M. TECHNIQUE CO., LTD.Inventors: Masaki Maekawa, Daisuke Honda, Masakazu Enomura, Kazuya Araki
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Patent number: 10808307Abstract: The present disclosure relates to a chromium-aluminum binary alloy with excellent corrosion resistance and a method of producing the same, and more particularly to a chromium-aluminum binary alloy with excellent corrosion resistance. The chromium-aluminum binary alloy may be easily produced and has ductility, thus being highly applicable as a coating material for a material requiring high-temperature corrosion resistance and wear resistance.Type: GrantFiled: May 31, 2017Date of Patent: October 20, 2020Assignee: Korea Atomic Energy Research InstituteInventors: Hyun Gil Kim, Il Hyun Kim, Yang-Il Jung, Dong Jun Park, Jung Hwan Park, Jeong-Yong Park, Yang-Hyun Koo
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Patent number: 10781507Abstract: Provided are an anti-fatigue in-situ aluminum-based nanocomposite material for heavy-load automobile hubs and a preparation method therefor. By means of the fine adjustment of components and a forming process, in situ nano-compositing, micro-alloying and rapid compression moulding techniques are combined. That is, after the addition of Zr and B, an in-situ reaction occurs to form a nano ZrB2 ceramic reinforcement, which is distributed in aluminum crystals and crystal boundaries and bonded to a metallurgical interface kept firm with the matrix.Type: GrantFiled: June 20, 2016Date of Patent: September 22, 2020Assignees: Jiangsu University, Sumec Wheels Co., Ltd.Inventors: Yutao Zhao, Yuanpu Peng, Tongxiang Fan, Xizhou Kai, Gang Chen, Wenling Wang
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Patent number: 10758976Abstract: A method of processing a powdered feedstock to form a fabricated component is provided. The fabricated component includes a plurality of grains having a nominal grain size. The method includes providing the powdered feedstock material having a population of phase particulates with a first nominal size distribution disposed within a host matrix material. The method includes building a consolidated component from the powdered feedstock material in an additive manufacturing process, and fabricating the fabricated component from the consolidated component. The first nominal size distribution of the population of phase particulates is sized such that at least a portion of the population of phase particulates persists throughout the additive manufacturing process and is present as a processed population of phase particulates in the consolidated component.Type: GrantFiled: June 21, 2017Date of Patent: September 1, 2020Assignee: General Electric CompanyInventors: Laura Cerully Dial, Andrew David Deal, Timothy Hanlon
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Patent number: 10755737Abstract: Provided is an Fe—Pt based magnetic material sintered compact, comprising BN and SiO2 as non-magnetic materials, wherein Si and O are present in a region where B or N is present at a cut surface of the sintered compact. An object of the present invention is to provide a high density sputtering target which enables production of a magnetic thin film for heat-assisted magnetic recording media, and also reduces the amount of particles generated during sputtering.Type: GrantFiled: August 6, 2013Date of Patent: August 25, 2020Assignee: JX Nippon Mining & Metals CorporationInventor: Shin-ichi Ogino
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Patent number: 10745786Abstract: A method for producing an iron-based sintered alloy, which is used in sliding components in pairs and has a composition including, in terms of percent by mass, Ti: 18.4 to 24.6%, Mo: 2.8 to 6.6%, C: 4.7 to 7.0%, Cr: 7.5 to 10.0%, Ni: 4.5 to 6.5%, Co: 1.5 to 4.5%, Al: 0.6 to 1.0%, the balance being Fe and unavoidable impurities, wherein the method is carried out such that the alloy has a structure in which hard particles are dispersed in an island form in a matrix and, while an area ratio thereof is kept constant, a maximum circle equivalent diameter thereof is controlled to a predetermined value of 40 to 10 ?m.Type: GrantFiled: June 23, 2016Date of Patent: August 18, 2020Assignee: THE JAPAN STEEL WORKS, LTD.Inventors: Yusuke Watanabe, Kakeru Kusada, Tetsuo Makida, Youhei Sawamura
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Patent number: 10717131Abstract: The present invention discloses a method of manufacturing, powder making device for rare earth magnet alloy powder, and a rare earth magnet. The method comprises a process of fine grinding at least one kind of rare earth magnet alloy or at least one kind of rare earth magnet alloy coarse powder in inert jet stream with an oxygen content below 1000 ppm to obtain powder that has a grain size smaller than 50 ?m. Low oxygen content ultra-fine powder having a grain size smaller than 1 ?m is not separated from the pulverizer, and the oxygen content of the atmosphere is reduced to below 1000 ppm in the pulverizer when crushing the powder. Therefore, abnormal grain growth (AGG) rarely happens in the sintering process. A low oxygen content sintered magnet is obtained and the advantages of a simplified process and reduced manufacturing cost are realized.Type: GrantFiled: March 27, 2018Date of Patent: July 21, 2020Assignees: XIAMEN TUNGSTEN CO., LTD., FUJIAN CHANGTING GOLDEN DRAGON RARE-EARTH CO., LTDInventors: Hiroshi Nagata, Chonghu Wu
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Patent number: 10707397Abstract: Materials and systems and methods of manufacture thereof that function as thermoelectric materials both in and near a cryogenic temperature range. In particular, the synthesis of heavy fermion materials that exhibit higher ZTs than previously achieved at cryogenic and near-cryogenic temperatures.Type: GrantFiled: March 13, 2015Date of Patent: July 7, 2020Assignee: UNIVERSITY OF HOUSTON SYSTEMInventors: Zhifeng Ren, Machhindra Koirala
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Patent number: 10703012Abstract: A tool to differentially compress a powder material comprises a differential compression piston and a support. The piston comprises a first part configured to apply a pressure on a first region of an external surface of the powder material. The piston comprises a second part with a recess which is located at a lateral distance from the first part and which is configured to face a second region of the external surface of the powder material. The tool further comprises a membrane that can be deformed by the piston. The deformable membrane is configured to at least partially retain the powder material in the tool.Type: GrantFiled: December 7, 2016Date of Patent: July 7, 2020Assignee: COMMISSARIAT A L'ENERGIE ATOMIQUE ET AUX ENERGIES ALTERNATIVESInventor: Mathieu Boidot
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Patent number: 10689730Abstract: A method (500) for producing a titanium product is disclosed. The method (500) can include obtaining TiO2-slag (501) and reducing impurities in the TiO2-slag (502) to form purified TiO2 (503). The method (500) can also include reducing the purified TiO2 using a metallic reducing agent (504) to form a hydrogenated titanium product comprising TiH2 (505). The hydrogenated titanium product can be dehydrogenated (506) to form a titanium product (508). The titanium product can also be optionally deoxygenated (507) to reduce oxygen content.Type: GrantFiled: November 6, 2015Date of Patent: June 23, 2020Assignee: University of Utah Research FoundationInventors: Zhigang Zak Fang, Ying Zhang, Yang Xia, Pei Sun
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Patent number: 10643770Abstract: When a steel sheet containing Si: 2-5 mass % after cold rolling is subjected to a primary recrystallization annealing and a finishing annealing for secondary recrystallization to form a grain-oriented electrical steel sheet, the primary recrystallization annealing is performed by rapid heating in the heating process and temperature keeping treatment at a certain temperature in the course of the heating to thereby obtain a grain-oriented electrical steel sheet having plural peaks in a distribution of misorientation angle between crystal orientation of secondary recrystallized grains and Goss orientation, wherein misorientation angle of the second smallest peak among the plural peaks is preferably not less than 5° and a grain size of secondary recrystallized grains is not more than 15 mm.Type: GrantFiled: December 11, 2013Date of Patent: May 5, 2020Assignee: JFE STEEL CORPORATIONInventors: Takeshi Imamura, Yukihiro Shingaki, Ryuichi Suehiro, Toshito Takamiya
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Patent number: 10633723Abstract: There are provided methods and systems for creating multi-phase covetics. For example, there is provided a process for making a composite material. The process includes forming a multi-phase covetic. The forming includes heating a melt including a metal in a molten state and a carbon source to a first temperature threshold to form metal-carbon bonds. The forming further includes subsequently heating the melt to a second temperature threshold, the second temperature threshold being greater than the first temperature threshold. The second temperature threshold is a temperature at or above which ordered multi-phase covetics form in the melt.Type: GrantFiled: September 10, 2018Date of Patent: April 28, 2020Assignee: GDC Industries, LLCInventors: Michael Dennis Braydich, Harry Couch, Louis A. Luedtke
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Patent number: 10633722Abstract: There are provided methods and systems for creating multi-phase covetics. For example, there is provided a process for making a composite material. The process includes forming a multi-phase covetic. The forming includes heating a melt including a metal in a molten state and a carbon source to a first temperature threshold to form metal-carbon bonds. The forming further includes subsequently heating the melt to a second temperature threshold, the second temperature threshold being greater than the first temperature threshold. The second temperature threshold is a temperature at or above which ordered multi-phase covetics form in the melt.Type: GrantFiled: September 10, 2018Date of Patent: April 28, 2020Assignee: GDC Industries, LLCInventors: Michael Dennis Braydich, Harry Couch, Louis A. Luedtke
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Patent number: 10625336Abstract: A castable, moldable, or extrudable structure using a metallic base metal or base metal alloy. One or more insoluble additives are added to the metallic base metal or base metal alloy so that the grain boundaries of the castable, moldable, or extrudable structure includes a composition and morphology to achieve a specific galvanic corrosion rates partially or throughout the structure or along the grain boundaries of the structure. The insoluble additives can be used to enhance the mechanical properties of the structure, such as ductility and/or tensile strength. The insoluble particles generally have a submicron particle size. The final structure can be enhanced by heat treatment, as well as deformation processing such as extrusion, forging, or rolling, to further improve the strength of the final structure as compared to the non-enhanced structure.Type: GrantFiled: October 17, 2016Date of Patent: April 21, 2020Assignee: Terves, LLCInventors: Andrew Sherman, Brian Doud, Nicholas Farkas
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Patent number: 10619222Abstract: Metal components subject to wear or contact fatigue in a first area, and subject to bending, axial and/or torsional stress loading in a second area comprise a surface hardened, first surface layer in the first area; and a surface compressive-stress treated, second surface layer in the second area. The second surface layer has a material hardness different from, and typically lower than the first surface layer, and induced residual compressive stress to improve fatigue strength. Example components described include a gear, a cog, a pinion, a rack, a splined shaft, a splined coupling, a torquing tool and a nut driving tool. A hybrid manufacturing process is described, including area-selective surface hardening combined with a process to add compressive stress to fatigue failure prone areas.Type: GrantFiled: April 8, 2016Date of Patent: April 14, 2020Assignee: METAL IMPROVEMENT COMPANY, LLCInventor: Lloyd A. Hackel
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Patent number: 10590516Abstract: A vanadium alloy essentially consisting of: vanadium; and aluminium having a content of greater than 0 to 10 at %, and a process of producing thereof.Type: GrantFiled: June 24, 2014Date of Patent: March 17, 2020Assignee: COMMONWEALTH SCIENTIFIC AND INDUSTRIAL RESEARCH ORGANISATIONInventors: Daniel Dong Liang, Michael David Dolan
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Patent number: 10570487Abstract: A rolled steel material for fracture splitting connecting rods consists of, C: 0.30 to 0.40%, Si: 0.60 to 1.00%, Mn: 0.50 to 1.00%, P: 0.04 to 0.07%, S: 0.04 to 0.13%, Cr: 0.10 to 0.30%, V: 0.05 to 0.14%, Ti: more than 0.15% to 0.20% or less, N: 0.002 to 0.020%, and optionally may contain Cu, Ni, Mo, Pb, Te, Ca, and Bi, with the balance being Fe and impurities. fn1, defined by Formula (1), ranges from 0.65 to 0.80. Relative to the V content in the steel material, a V content in coarse precipitates having a particle size of 200 nm or more is 70% or less, and relative to the Ti content in the steel material, a Ti content in the coarse precipitates is 50% or more.Type: GrantFiled: October 17, 2014Date of Patent: February 25, 2020Assignees: NIPPON STEEL CORPORATION, HONDA MOTOR CO., LTD.Inventors: Motoki Takasuga, Yusuke Miyakoshi, Tatsuya Hasegawa, Hideki Matsuda, Masashi Kawakami, Isamu Saito