Patents by Inventor Yukinori Yamamoto

Yukinori Yamamoto has filed for patents to protect the following inventions. This listing includes patent applications that are pending as well as patents that have already been granted by the United States Patent and Trademark Office (USPTO).

  • Publication number: 20170335437
    Abstract: The present disclosure concerns embodiments of aluminum alloy compositions exhibiting microstructural stability and strength at high temperatures. The disclosed aluminum alloy compositions comprise particular combinations of components that contribute the ability of the compositions to exhibit improved microstructural stability and hot tearing resistance as compared to conventional alloys. Also disclosed herein are embodiments of methods of making and using the alloys.
    Type: Application
    Filed: May 20, 2016
    Publication date: November 23, 2017
    Inventors: Amit Shyam, Yukinori Yamamoto, Dongwon Shin, Shibayan Roy, James A. Haynes, Philip J. Maziasz, Adrian Sabau, Andres F. Rodriguez-Jasso, Jose A. Gonzalez-Villarreal, Jose Talamantes-Silva, Lin Zhang, Christopher R. Glaspie, Seyed Mirmiran
  • Patent number: 9217187
    Abstract: The method provides heat-resistant chromia- or alumina-forming Fe-, Fe(Ni), Ni(Fe), or Ni-based alloys having improved creep resistance. A precursor is provided containing preselected constituents of a chromia- or alumina-forming Fe-, Fe(Ni), Ni(Fe), or Ni-based alloy, at least one of the constituents for forming a nanoscale precipitate MaXb where M is Cr, Nb, Ti, V, Zr, or Hf, individually and in combination, and X is C, N, O, B, individually and in combination, a=1 to 23 and b=1 to 6. The precursor is annealed at a temperature of 1000-1500° C. for 1-48 h in the presence of a magnetic field of at least 5 Tesla to enhance supersaturation of the MaXb constituents in the annealed precursor. This forms nanoscale MaXb precipitates for improved creep resistance when the alloy is used at service temperatures of 500-1000° C. Alloys having improved creep resistance are also disclosed.
    Type: Grant
    Filed: July 20, 2012
    Date of Patent: December 22, 2015
    Assignee: UT-BATTELLE, LLC
    Inventors: Michael P. Brady, Gail M. Ludtka, Gerard M. Ludtka, Govindarajan Muralidharan, Don M. Nicholson, Orlando Rios, Yukinori Yamamoto
  • Patent number: 8815146
    Abstract: An austenitic stainless steel alloy, consists essentially of, in weight percent 2.5 to 4 Al; 25 to 35 Ni; 12 to 19 Cr; at least 1, up to 4 total of at least one element selected from the group consisting of Nb and Ta; 0.5 to 3 Ti; less than 0.5 V; 0.1 to 1 of at least on element selected from the group consisting of Zr and Hf; 0.03 to 0.2 C; 0.005 to 0.1 B; and base Fe. The weight percent Fe is greater than the weight percent Ni. The alloy forms an external continuous scale including alumina, and contains coherent precipitates of ??-Ni3Al, and a stable essentially single phase FCC austenitic matrix microstructure. The austenitic matrix is essentially delta-ferrite-free and essentially BCC-phase-free.
    Type: Grant
    Filed: April 5, 2012
    Date of Patent: August 26, 2014
    Assignee: UT-Battelle, LLC
    Inventors: Yukinori Yamamoto, Govindarajan Muralidharan, Michael P. Brady
  • Publication number: 20140020797
    Abstract: The method provides heat-resistant chromia- or alumina-forming Fe-, Fe(Ni), Ni(Fe), or Ni-based alloys having improved creep resistance. A precursor is provided containing preselected constituents of a chromia- or alumina-forming Fe-, Fe(Ni), Ni(Fe), or Ni-based alloy, at least one of the constituents for forming a nanoscale precipitate MaXb where M is Cr, Nb, Ti, V, Zr, or Hf, individually and in combination, and X is C, N, O, B, individually and in combination, a=1 to 23 and b=1 to 6. The precursor is annealed at a temperature of 1000-1500° C. for 1-48 h in the presence of a magnetic field of at least 5 Tesla to enhance supersaturation of the MaXb constituents in the annealed precursor. This forms nanoscale MaXb precipitates for improved creep resistance when the alloy is used at service temperatures of 500-1000° C. Alloys having improved creep resistance are also disclosed.
    Type: Application
    Filed: July 20, 2012
    Publication date: January 23, 2014
    Applicant: UT-BATTELLE, LLC
    Inventors: Michael P. BRADY, Gail M. LUDTKA, Gerard M. LUDTKA, Govindarajan MURALIDHARAN, Don M. NICHOLSON, Orlando RIOS, Yukinori YAMAMOTO
  • Publication number: 20130266477
    Abstract: An austenitic stainless steel alloy, consists essentially of, in weight percent 2.5 to 4 Al; 25 to 35 Ni; 12 to 19 Cr; at least 1, up to 4 total of at least one element selected from the group consisting of Nb and Ta; 0.5 to 3 Ti; less than 0.5 V; 0.1 to 1 of at least on element selected from the group consisting of Zr and Hf; 0.03 to 0.2 C; 0.005 to 0.1 B; and base Fe. The weight percent Fe is greater than the weight percent Ni. The alloy forms an external continuous scale including alumina, and contains coherent precipitates of ??—Ni3Al, and a stable essentially single phase FCC austenitic matrix microstructure. The austenitic matrix is essentially delta-ferrite-free and essentially BCC-phase-free.
    Type: Application
    Filed: April 5, 2012
    Publication date: October 10, 2013
    Applicant: UT-BATTELLE, LLC
    Inventors: Yukinori YAMAMOTO, Govindarajan MURALlDHARAN, Michael P. BRADY
  • Patent number: 8431072
    Abstract: An austenitic stainless steel alloy consisting essentially of, in terms of weight percent ranges 0.15-0.5C; 8-37Ni; 10-25Cr; 2.5-5Al; greater than 0.6, up to 2.5 total of at least one element selected from the group consisting of Nb and Ta; up to 3Mo; up to 3Co; up to 1W; up to 3Cu; up to 15Mn; up to 2Si; up to 0.15B; up to 0.05P; up to 1 total of at least one element selected from the group consisting of Y, La, Ce, Hf, and Zr; <0.3Ti+V; <0.03N; and, balance Fe, where the weight percent Fe is greater than the weight percent Ni, and wherein the alloy forms an external continuous scale comprising alumina, and a stable essentially single phase FCC austenitic matrix microstructure, the austenitic matrix being essentially delta-ferrite free and essentially BCC-phase-free. A method of making austenitic stainless steel alloys is also disclosed.
    Type: Grant
    Filed: May 24, 2011
    Date of Patent: April 30, 2013
    Assignee: UT-Battelle, LLC
    Inventors: Govindarajan Muralidharan, Yukinori Yamamoto, Michael P. Brady
  • Publication number: 20120301347
    Abstract: An austenitic stainless steel alloy consisting essentially of, in terms of weight percent ranges 0.15-0.5C; 8-37Ni; 10-25Cr; 2.5-5Al; greater than 0.6, up to 2.5 total of at least one element selected from the group consisting of Nb and Ta; up to 3Mo; up to 3Co; up to 1W; up to 3Cu; up to 15Mn; up to 2Si; up to 0.15B; up to 0.05P; up to 1 total of at least one element selected from the group consisting of Y, La, Ce, Hf, and Zr; <0.3Ti+V; <0.03N; and, balance Fe, where the weight percent Fe is greater than the weight percent Ni, and wherein the alloy forms an external continuous scale comprising alumina, and a stable essentially single phase FCC austenitic matrix microstructure, the austenitic matrix being essentially delta-ferrite free and essentially BCC-phase-free. A method of making austenitic stainless steel alloys is also disclosed.
    Type: Application
    Filed: May 24, 2011
    Publication date: November 29, 2012
    Applicant: UT-Battelle, LLC
    Inventors: Govindarajan MURALIDHARAN, Yukinori Yamamoto, Michael P. Brady
  • Patent number: 7754144
    Abstract: An austenitic stainless steel HTUPS alloy includes, in weight percent: 15 to 30 Ni; 10 to 15 Cr; 2 to 5 Al; 0.6 to 5 total of at least one of Nb and Ta; no more than 0.3 of combined Ti+V; up to 3 Mo; up to 3 Co; up to 1 W; up to 0.5 Cu; up to 4 Mn; up to 1 Si; 0.05 to 0.15 C; up to 0.15 B; up to 0.05 P; up to 1 total of at least one of Y, La, Ce, Hf, and Zr; less than 0.05 N; and base Fe, wherein the weight percent Fe is greater than the weight percent Ni wherein said alloy forms an external continuous scale comprising alumina, nanometer scale sized particles distributed throughout the microstructure, said particles comprising at least one composition selected from the group consisting of NbC and TaC, and a stable essentially single phase fcc austenitic matrix microstructure, said austenitic matrix being essentially delta-ferrite-free and essentially BCC-phase-free.
    Type: Grant
    Filed: April 16, 2008
    Date of Patent: July 13, 2010
    Assignees: UT-Battelle, LLC, University of Tennessee Research Foundation
    Inventors: Michael P Brady, Michael L Santella, Yukinori Yamamoto, Chain-tsuan Liu
  • Patent number: 7754305
    Abstract: An austenitic stainless steel alloy includes, in weight percent: >4 to 15 Mn; 8 to 15 Ni; 14 to 16 Cr; 2.4 to 3 Al; 0.4 to 1 total of at least one of Nb and Ta; 0.05 to 0.2 C; 0.01 to 0.02 B; no more than 0.3 of combined Ti+V; up to 3 Mo; up to 3 Co; up to 1W; up to 3 Cu; up to 1 Si; up to 0.05 P; up to 1 total of at least one of Y, La, Ce, Hf, and Zr; less than 0.05 N; and base Fe, wherein the weight percent Fe is greater than the weight percent Ni, and wherein the alloy forms an external continuous scale including alumina, nanometer scale sized particles distributed throughout the microstructure, the particles including at least one of NbC and TaC, and a stable essentially single phase FCC austenitic matrix microstructure that is essentially delta-ferrite-free and essentially BCC-phase-free.
    Type: Grant
    Filed: July 29, 2008
    Date of Patent: July 13, 2010
    Assignee: UT-Battelle, LLC
    Inventors: Yukinori Yamamoto, Michael L Santella, Michael P Brady, Philip J Maziasz, Chain-tsuan Liu
  • Patent number: 7744813
    Abstract: An austenitic stainless steel displaying high temperature oxidation and creep resistance has a composition that includes in weight percent 15 to 21 Ni, 10 to 15 Cr, 2 to 3.5 Al, 0.1 to 1 Nb, and 0.05 to 0.15 C, and that is free of or has very low levels of N, Ti and V. The alloy forms an external continuous alumina protective scale to provide a high oxidation resistance at temperatures of 700 to 800° C. and forms NbC nanocarbides and a stable essentially single phase fcc austenitic matrix microstructure to give high strength and high creep resistance at these temperatures.
    Type: Grant
    Filed: January 4, 2007
    Date of Patent: June 29, 2010
    Assignee: UT-Battelle, LLC
    Inventors: Michael P. Brady, Bruce A. Pint, Chain-Tsuan Liu, Philip J. Maziasz, Yukinori Yamamoto, Zhao P. Lu
  • Publication number: 20080304996
    Abstract: An austenitic stainless steel HTUPS alloy includes, in weight percent: 15 to 30 Ni; 10 to 15 Cr; 2 to 5 Al; 0.6 to 5 total of at least one of Nb and Ta; no more than 0.3 of combined Ti+V; up to 3 Mo; up to 3 Co; up to 1 W; up to 0.5 Cu; up to 4 Mn; up to 1 Si; 0.05 to 0.15 C; up to 0.15 B; up to 0.05 P; up to 1 total of at least one of Y, La, Ce, Hf, and Zr; less than 0.05 N; and base Fe, wherein the weight percent Fe is greater than the weight percent Ni wherein said alloy forms an external continuous scale comprising alumina, nanometer scale sized particles distributed throughout the microstructure, said particles comprising at least one composition selected from the group consisting of NbC and TaC, and a stable essentially single phase fcc austenitic matrix microstructure, said austenitic matrix being essentially delta-ferrite-free and essentially BCC-phase-free.
    Type: Application
    Filed: April 16, 2008
    Publication date: December 11, 2008
    Applicant: UT-BATTELLE, LLC
    Inventors: Michael P. Brady, Michael L. Santella, Yukinori Yamamoto, Chain-tsuan Liu
  • Publication number: 20080292489
    Abstract: An austenitic stainless steel alloy includes, in weight percent: >4 to 15 Mn; 8 to 15 Ni; 14 to 16 Cr; 2.4 to 3 Al; 0.4 to 1 total of at least one of Nb and Ta; 0.05 to 0.2 C; 0.01 to 0.02 B; no more than 0.3 of combined Ti+V; up to 3 Mo; up to 3 Co; up to 1W; up to 3 Cu; up to 1 Si; up to 0.05 P; up to 1 total of at least one of Y, La, Ce, Hf, and Zr; less than 0.05 N; and base Fe, wherein the weight percent Fe is greater than the weight percent Ni, and wherein the alloy forms an external continuous scale including alumina, nanometer scale sized particles distributed throughout the microstructure, the particles including at least one of NbC and TaC, and a stable essentially single phase FCC austenitic matrix microstructure that is essentially delta-ferrite-free and essentially BCC-phase-free.
    Type: Application
    Filed: July 29, 2008
    Publication date: November 27, 2008
    Applicant: UT-BATTELLE, LLC
    Inventors: Yukinori Yamamoto, Michael L. Santella, Michael P. Brady, Philip J. Maziasz, Chain-Tsuan Liu
  • Publication number: 20080163957
    Abstract: An austenitic stainless steel displaying high temperature oxidation and creep resistance has a composition that includes in weight percent 15 to 21 Ni, 10 to 15 Cr, 2 to 3.5 Al, 0.1 to 1 Nb, and 0.05 to 0.15 C, and that is free of or has very low levels of N, Ti and V. The alloy forms an external continuous alumina protective scale to provide a high oxidation resistance at temperatures of 700 to 800° C. and forms NbC nanocarbides and a stable essentially single phase fcc austenitic matrix microstructure to give high strength and high creep resistance at these temperatures.
    Type: Application
    Filed: January 4, 2007
    Publication date: July 10, 2008
    Applicant: UT-Battelle, LLC
    Inventors: Michael P. Brady, Bruce A. Pint, Chain-Tsuan Liu, Philip J. Maziasz, Yukinori Yamamoto, Zhao P. Lu
  • Publication number: 20070263526
    Abstract: Of file management information for managing a file, information indicating at least a recording location of the file is recorded in a data area and a spare area, and the file is reproduced based on the information of the two areas. Even when a new defect is caused, because a File Entry, that is, a location and a size of image data is held in two locations, image reproduction is enabled even if the File Entry held in one location is lost. In addition, back up of the File Entry, which is held in one location due to the defect, can further be performed, whereby new defects caused afterward can be dealt with.
    Type: Application
    Filed: May 9, 2007
    Publication date: November 15, 2007
    Applicant: Canon Kabushiki Kaisha
    Inventor: Yukinori Yamamoto
  • Patent number: 7042947
    Abstract: This invention is to provide a decoding apparatus/method in which a bitstream obtained by coding a plurality of object data in units of objects and multiplexing the coded data is input, coded data of each object is separated from the bitstream, a predetermined object is selected from the plurality of objects contained in the bitstream, the coded data of the object selected by selection means is decoded, object data is output, and the decoded object data is synthesized.
    Type: Grant
    Filed: February 10, 2000
    Date of Patent: May 9, 2006
    Assignee: Canon Kabushiki Kaisha
    Inventor: Yukinori Yamamoto
  • Publication number: 20050259973
    Abstract: Provided is a recording/reproducing apparatus that records and reproduces MPEG streams, which can display images that are reproduced in special manners and images with an OSD added thereto on a digital TV or the like connected to the recording/reproducing apparatus via a digital interface. In shooting, a stream coded in a PS format by an MPEG coding unit is recorded in a recording medium, and in reproducing, the PS format stream is decoded by an MPEG decoding unit. The decoded image information is composited with still picture information by an OSD and a mixer, then the composite data is decoded in a TS format by the MPEG coding unit to be outputted to the digital TV through a digital interface input/output unit.
    Type: Application
    Filed: April 21, 2005
    Publication date: November 24, 2005
    Applicant: Canon Kabushiki Kaisha
    Inventor: Yukinori Yamamoto
  • Patent number: 6963691
    Abstract: The invention provides an apparatus for reproducing a plurality of image data which has been recorded in a plurality of independent areas on a disk-shaped recording medium and specified so as to be reproduced in predetermined order, from the disk-shaped recording medium by using a pickup mechanism. The apparatus has a memory for storing the reproduced image data and a memory control unit for reading out the image data stored in the memory in the predetermined order, and controls whether the image data recorded in the plurality of areas is reproduced in order different from the predetermined order and written in the memory or not, on the basis of position information indicative of positions of the plurality of areas on the disk-shaped recording medium, a capacity of the memory, and a seeking time between the plurality of areas by the pickup mechanism.
    Type: Grant
    Filed: December 11, 2000
    Date of Patent: November 8, 2005
    Assignee: Canon Kabushiki Kaisha
    Inventor: Yukinori Yamamoto
  • Publication number: 20040107223
    Abstract: A file management method has highly general versatility among applications, does not waste recording area, and facilitates handling of volumes of discrete and grouped files and group information. A recording medium for use in the file management method.
    Type: Application
    Filed: September 11, 2003
    Publication date: June 3, 2004
    Inventors: Shinichiro Uno, Takaaki Ashinuma, Yukinori Yamamoto, Masanori Ito, Masafumi Shimotashiro, Tadashi Nakamura, Makoto Mitsuda
  • Patent number: 6538696
    Abstract: A CCD converts an optical image of an object formed on its image sensing surface into electrical charges, and sequentially outputs the electrical charges of all of the light receiving pixels in one scanning operation in non-interlaced form. The outputs from the CCD are converted to the digital image signals by an analog-digital converter. A camera signal processing unit processes the digital image signals, thereby generating two streams of signals; one is digital video signals SV1 which are standard digital video signals in interlaced form, and the other is signals SV2 which are not outputted as the digital video signals SV1 out of the digital image signals of all of the light receiving pixels. These two streams of signals, SV1 and SV2, are processed differently depending upon a mode selected by a switch.
    Type: Grant
    Filed: November 24, 1999
    Date of Patent: March 25, 2003
    Assignee: Canon Kabushiki Kaisha
    Inventors: Teruo Hieda, Kousuke Nobuoka, Izumi Matsui, Yukinori Yamamoto
  • Patent number: 6453109
    Abstract: A signal processing apparatus includes a first clock generation circuit for generating a first clock signal having a constant frequency, a detection circuit for detecting a phase change in an input video signal, a second clock generation circuit for generating a second clock signal having a frequency different from the frequency of the first clock signal by selectively using the first clock signal and an output from the detection circuit, and a signal processing circuit for processing the video signal using the second clock signal.
    Type: Grant
    Filed: July 14, 1998
    Date of Patent: September 17, 2002
    Assignee: Canon Kabushiki Kaisha
    Inventor: Yukinori Yamamoto