Patents Examined by Daniel McCracken
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Patent number: 10377672Abstract: A method for the production of polygranular graphite bodies including the step of provisioning a mixture including a high-temperature treated anthracite having a high vitrinite content and a petroleum-based needle coke and/or a pitch-based needle coke, and provisioning at least one binder coke precursor. The method also includes the steps of forming a green body from the mixture from the provisioning step, and carbonizing and graphitizing the green body.Type: GrantFiled: April 2, 2018Date of Patent: August 13, 2019Assignee: Showa Denko Carbon Germany GmbHInventors: Wilhelm Frohs, Rainer Schmitt
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Patent number: 10370759Abstract: The invention concerns a substrate that is electrical conductive on at least one of the faces of same, provided with a stack of thin layers comprising at least one layer of catalyst material suitable for accelerating the growth of carbon nanotubes, characterized in that the stack comprises the sequence of thin layers deposited in the following order on top of said at least one electrically conductive face of the substrate: a) optionally, a metal made from metal M or a layer of a metal alloy made from metal M or a graphene layer; b) a titanium layer (Ti); c) an aluminum layer (Al); d) a layer of catalyst material(s) for the growth of carbon nanotubes. The invention also concerns a functional substrate (6) comprising a substrate coated with a carbon nanotube (NTC) mat, a production method and the uses of such a functional substrate.Type: GrantFiled: May 27, 2014Date of Patent: August 6, 2019Assignee: COMMISSARIAT A L'ENERGIE ATOMIQUE ET AUX ENERGIES ALTERNATIVESInventors: Hanako Okuno, Raphael Ramos, Jean Dijon
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Patent number: 10357765Abstract: The present invention relates to metal catalyst particles for carbon nanotube synthesis, comprising carbon-containing regions on their surfaces.Type: GrantFiled: June 20, 2013Date of Patent: July 23, 2019Assignees: THE UNIVERSITY OF TOKYO, HITACHI CHEMICAL COMPANY, LTD.Inventors: Suguru Noda, Zhongming Chen, Dong Young Kim, Shunsuke Ueda, Eisuke Haba
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Patent number: 10343112Abstract: A method for recapturing sulfur in a chemical looping system includes receiving a flue gas stream containing a sulfur-containing species, reducing a temperature of the flue gas stream, introducing a calcium-based makeup material to the reduced temperature flue gas stream, capturing the sulfur-containing species from the reduced temperature flue gas stream, and recycling the sulfur-containing species to a reducer of the chemical looping system.Type: GrantFiled: December 27, 2016Date of Patent: July 9, 2019Assignee: General Electric CompanyInventor: David Gordon Turek
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Patent number: 10343918Abstract: The method of the present disclosure is directed towards the formation of a three-dimensional carbon structure and includes the steps of adding a radical initiator to an amount of carbon starting material, forming a mixture, placing the mixture in a mold, maintaining the mixture and the mold at an elevated temperature for a period of time to form a thermally cross-linked molded mixture and removing the thermally cross-linked molded mixture from the mold. The disclosure also includes a three-dimensional carbon structure, with that structure including a thermally cross-linked carbon base material in a predetermined formation.Type: GrantFiled: November 14, 2017Date of Patent: July 9, 2019Assignee: The Research Foundation for The State University of New YorkInventors: Balaji Sitharaman, Gaurav Lalwani
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Patent number: 10343217Abstract: A method for manufacturing a component includes providing a metallic first powder having a plurality of first particles with a first mean particle diameter. A second powder added to the first powder has a plurality of second particles with a second mean particle diameter less than the first mean particle diameter. Energy is applied to at least the second powder so as to selectively heat the second particles. The first powder is combined with the heated second powder to form a modified powder including modified powder particles. Modified powder particles have an interior portion containing an interior composition, and an outer surface portion with an outer composition different from the interior composition.Type: GrantFiled: January 12, 2015Date of Patent: July 9, 2019Assignee: United Technologies CorporationInventors: Yan Zhang, Wayde R. Schmidt
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Patent number: 10336611Abstract: Disclosed are methods for decapping single wall carbon nanotubes and purifying the decapped single wall carbon nanotubes. The disclosed methods include the steps of oxidizing the single wall carbon nanotubes to remove the terminal end cap and subsequently acid washing the single wall carbon nanotubes to remove the catalyst particles. The resulting carbon nanotubes have improved BET surface area and pore volume.Type: GrantFiled: October 28, 2016Date of Patent: July 2, 2019Assignee: Technology Acquisition Group 2018, LLCInventors: Ricardo Prada Silvy, Yongqiang Tan
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Patent number: 10329378Abstract: Provided are graphene nanoribbons with controlled zig-zag edge and cove edge configuration and methods for preparing such graphene nanoribbons. The nanoribbons are selected from the following formulae.Type: GrantFiled: February 9, 2015Date of Patent: June 25, 2019Assignees: BASF SE, EMPA-Eidgenoessische Materialpruefungs-und Forschungsanstalt, Max-Planck-Gesellschaft zur Foerderung der Wissenschaften e.V.Inventors: Matthias Georg Schwab, Klaus Muellen, Xinliang Feng, Bo Yang, Tim Dumslaff, Roman Fasel, Pascal Ruffieux, Jia Liu, Jinming Cai, Carlos Sanchez-Sanchez, Junzhi Liu
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Patent number: 10316433Abstract: Carbon fibers having a high tensile strength satisfy the relationship represented by formula (1) and one of the relationships represented by formulas (2) to (5): La?1??(1), La??0.5+0.01×TM when 170?TM?230??(2), La??37.3+0.17×TM when 230<TM?240??(3), La??2.5+0.025×TM when 240<TM?300??(4), and La?2+0.01×TM when 300<TM??(5) where La is a crystal size in nm in a direction parallel to an axis of the fibers measured with by X-ray diffraction, and TM is a tensile modulus in GPa.Type: GrantFiled: March 29, 2016Date of Patent: June 11, 2019Assignee: TOHO TENAX Co., LTD.Inventors: Yoshinori Suzuki, Toshimichi Nakajima
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Patent number: 10308513Abstract: A method for the production of graphite bodies, including the step of provisioning a mixture including a high-temperature treated anthracite having a high vitrinite content and provisioning at least one binder coke precursor. The method also includes the steps of forming a green body from the mixture provided in the provisioning step, and carbonizing and graphitizing the green body.Type: GrantFiled: March 6, 2018Date of Patent: June 4, 2019Assignee: Showa Denko Carbon Germany GmbHInventors: Wilhelm Frohs, Rainer Schmitt
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Patent number: 10294133Abstract: Methods for synthesizing macroscale 3D heteroatom-doped carbon nanotube materials (such as boron doped carbon nanotube materials) and compositions thereof. Macroscopic quantities of three-dimensionally networked heteroatom-doped carbon nanotube materials are directly grown using an aerosol-assisted chemical vapor deposition method. The porous heteroatom-doped carbon nanotube material is created by doping of heteroatoms (such as boron) in the nanotube lattice during growth, which influences the creation of elbow joints and branching of nanotubes leading to the three dimensional super-structure. The super-hydrophobic heteroatom-doped carbon nanotube sponge is strongly oleophilic and an soak up large quantities of organic solvents and oil. The trapped oil can be burnt off and the heteroatom-doped carbon nanotube material can be used repeatedly as an oil removal scaffold.Type: GrantFiled: March 19, 2012Date of Patent: May 21, 2019Assignee: CSS NANOTECH, INC.Inventors: Daniel Paul Hashim, Pulickel M. Ajayan, Mauricio Terrones
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Patent number: 10294108Abstract: A method of producing a carbon nanostructure is provided that enables production of a high-quality carbon nanostructure with a high yield. The method of producing a carbon nanostructure includes supplying a feedstock gas to a catalyst and growing a carbon nanostructure by chemical vapor deposition. A gas X that is derived from the feedstock gas and that comes into contact with the catalyst contains a hydrocarbon A having at least one cyclopentadiene skeleton and a hydrocarbon B having at least one acetylene skeleton. A total volume concentration [A] of the hydrocarbon A is at least 0.06%.Type: GrantFiled: May 30, 2018Date of Patent: May 21, 2019Assignee: ZEON CORPORATIONInventor: Akiyoshi Shibuya
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Patent number: 10287174Abstract: A method for revamping a front-end of an ammonia plant, said front-end comprising a reforming section (1, 2) with air-fired secondary reformer or autothermal reformer (2), a treatment section (3) of the effluent from said reforming section, and an air feed compressor (6), wherein an O2-containing stream (8) is directed to said reforming section (2) for use as oxidant, at least one nitrogen stream (9) is introduced at a suitable location of the front-end, to provide a desired molar ratio between hydrogen and nitrogen in the product gas, and at least part of said nitrogen stream (9) is compressed via said feed compressor (6).Type: GrantFiled: April 3, 2015Date of Patent: May 14, 2019Assignee: Casale SAInventors: Ermanno Filippi, Raffaele Ostuni
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Patent number: 10273574Abstract: A continuous method for manufacturing graphene films using a metal substrate, wherein a first surface of the metal substrate is heated such that a top layer of the first surface melts to form a molten metal layer, and devices for carrying out the same.Type: GrantFiled: March 13, 2017Date of Patent: April 30, 2019Assignee: HONDA MOTOR CO., LTD.Inventor: Avetik Harutyunyan
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Patent number: 10272421Abstract: The present invention relates to a catalytic wall-flow monolith for use in an emission treatment system, the monolith comprising a porous substrate and having a first face and a second face defining a longitudinal direction therebetween and first and second pluralities of channels extending in the longitudinal direction, the first plurality of channels provides a first plurality of inner surfaces and is open at the first face and closed at the second face, and the second plurality of channels is open at the second face and closed at the first face, a first catalytic material is distributed within the porous substrate, a microporous membrane is provided in the first plurality of channels on a first portion, extending in the longitudinal direction, of the first plurality of inner surfaces, and the first portion extends from the first face for 75 to 95% of a length of the first plurality of channels.Type: GrantFiled: June 27, 2016Date of Patent: April 30, 2019Assignee: Johnson Matthey Public Limited CompanyInventors: Guy Richard Chandler, Paul Richard Phillips
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Patent number: 10273159Abstract: Disclosed herein is a method of producing a graphene from a graphite material. The method comprises the step of dispersing the graphite material in a solution, followed by shearing and exfoliating the graphite material produce a graphene-containing solution. The present method does not involve the use of chemical reagent and/or sonication treatment.Type: GrantFiled: January 4, 2017Date of Patent: April 30, 2019Assignee: CHUNG YUAN CHRISTIAN UNIVERSITYInventors: Wei-Jen Liu, Pin-Chun Lin
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Patent number: 10269488Abstract: The present invention provides a method for preparing a permanent magnet material, the method comprising coating step and infiltrating step, wherein, coating a rare earth element-containing substance on the surface of a permanent magnet, the magnet having a thickness of 10 mm or less at least in one direction, then placing the magnet into a container, vacuuming to an atmospheric pressure of below 10 Pa, closing the passageway, and then heat treating the closed container. Using the method of the present invention enables the rare earth element to infiltrate homogeneously with a high permeability. In addition, the present invention may have a lower production cost, significantly increase coercive force of the permanent magnet material, but decrease the remanence very little.Type: GrantFiled: March 3, 2016Date of Patent: April 23, 2019Assignee: Tianhe (Baotou) Advanced Tech Magnet Co., Ltd.Inventors: Haibo Yi, Yi Dong, Shulin Diao, Yi Yuan, Shujie Wu, Cailing Sun, Juchang Miao, Ya Chen, Wenjie Yuan
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Patent number: 10266411Abstract: A method of producing a carbon nanotube-containing composition is a method of producing a carbon nanotube-containing composition for synthesizing carbon nanotube aggregates by introducing a ferrocene derivative, a sulfur compound, a carbon source, and a carrier gas into a gas phase flowing in a heating furnace within a temperature range of higher than 1,200° C. to 1,800° C. The carbon source substantially consists of benzene or toluene. The carrier gas includes hydrogen at 10% by volume to 85% by volume. The carrier gas has a linear velocity of 500 cm/min to 2,200 cm/min.Type: GrantFiled: July 13, 2016Date of Patent: April 23, 2019Assignee: Toray Industries, Inc.Inventors: Takayoshi Hirai, Kenshi Miyaura, Hidekazu Nishino, Shiro Honda
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Patent number: 10260173Abstract: The problem of the present invention is to provide a carbon fiber manufacturing device in which fiber to be carbonized is irradiated with microwaves and thereby heated, wherein the carbon fiber manufacturing device is compact and capable of performing carbonization at atmospheric pressure without requiring an electromagnetic wave absorber or other additives or preliminary carbonization through external heating. This carbon fiber manufacturing device (200) includes: a cylindrical furnace (27) comprising a cylindrical waveguide in which one end is closed, a fiber outlet (27b) being formed in the one end of the cylindrical waveguide and a fiber inlet (27a) being formed in the other end of the cylindrical waveguide; a microwave oscillator (21) for introducing microwaves into the cylindrical furnace (27); and a connection waveguide (22) having one end connected to the microwave oscillator (21) side and the other end connected to one end of the cylindrical furnace (27).Type: GrantFiled: March 26, 2015Date of Patent: April 16, 2019Assignees: TEIJIN LIMITED, NATIONAL INSTITUTE OF ADVANCED INDUSTRIAL SCIENCE AND TECHNOLOGY, THE UNIVERSITY OF TOKYOInventors: Hiroaki Zushi, Takaya Suzuki, Jun-ichi Sugiyama
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Patent number: 10258956Abstract: Photoluminescent carbon nanoparticles and a method of preparing the same are described herein. A method of preparing photoluminescent carbon nanoparticles includes obtaining carbon nanodots, and treating the carbon nanodots with plasma.Type: GrantFiled: May 3, 2017Date of Patent: April 16, 2019Assignee: Korea Basic Science InstituteInventors: Hyun-Uk Lee, Jouhahn Lee, So Young Park