Patents by Inventor Thomas S. Chiang

Thomas S. Chiang 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).

  • Patent number: 11826993
    Abstract: A thermally conductive curing process adds conductive additives to create pathways for dissipating heat during a curing process, thereby reducing the cure time, increasing the output capability, and reducing cost. Conductive particles or short fibers can be dispersed throughout the resin system or composite fiber layers in pre-impregnated or RTM-processed composite material. By disposing conductive particles or short fibers in a resin as part of the curing process, heat generated during the curing process can dissipate more quickly from any type of composite, especially thick composites. Conductive additive examples include multi-walled carbon nanotubes (MWCNTs), single-walled carbon nanotubes (SWCNTs), graphene/graphite powder, buckyballs, short fibrous particulate, nano-clays, nano-particles, and other suitable materials.
    Type: Grant
    Filed: February 21, 2019
    Date of Patent: November 28, 2023
    Assignee: Textron Innovations Inc.
    Inventors: Thomas S. Chiang, Jared M. Paulson
  • Patent number: 11629600
    Abstract: An airfoil member having a root end, a tip end, a leading edge, and a trailing edge, the airfoil member including an upper skin; a lower skin; and a support network having a plurality of interconnected support members in a lattice arrangement and/or a reticulated arrangement, the support network being configured to provide tailored characteristics of the airfoil member. Also provided are methods and systems for repairing an airfoil member.
    Type: Grant
    Filed: March 18, 2020
    Date of Patent: April 18, 2023
    Assignee: Textron Innovations Inc.
    Inventors: Jeffrey Nissen, Jared M. Paulson, Thomas S. Chiang
  • Publication number: 20200269556
    Abstract: A thermally conductive curing process adds conductive additives to create pathways for dissipating heat during a curing process, thereby reducing the cure time, increasing the output capability, and reducing cost. Conductive particles or short fibers can be dispersed throughout the resin system or composite fiber layers in pre-impregnated or RTM-processed composite material. By disposing conductive particles or short fibers in a resin as part of the curing process, heat generated during the curing process can dissipate more quickly from any type of composite, especially thick composites. Conductive additive examples include multi-walled carbon nanotubes (MWCNTs), single-walled carbon nanotubes (SWCNTs), graphene/graphite powder, buckyballs, short fibrous particulate, nano-clays, nano-particles, and other suitable materials.
    Type: Application
    Filed: February 21, 2019
    Publication date: August 27, 2020
    Applicant: Bell Helicopter Textron Inc.
    Inventors: Thomas S. Chiang, Jared M. Paulson
  • Patent number: 10717261
    Abstract: An intentionally activated frangible bonding system comprises a frangible adhesive, adhesive primer, composite material matrix, and/or the like, having a polydispersion of at least one additive spread throughout the frangible bonding material. The additive degrades a bond provided by the frangible bonding material, upon application of a specific energy to the frangible bonding material. An energy emitter is configured to selectively direct the specific energy toward a structure or assembly comprising components bonded by the frangible bonding material to degrade the frangible bonding material bonding the components for disassembly.
    Type: Grant
    Filed: October 19, 2017
    Date of Patent: July 21, 2020
    Assignee: Bell Helicopter Textron Inc.
    Inventors: Thomas S. Chiang, Jared Mark Paulson
  • Publication number: 20200217206
    Abstract: An airfoil member having a root end, a tip end, a leading edge, and a trailing edge, the airfoil member including an upper skin; a lower skin; and a support network having a plurality of interconnected support members in a lattice arrangement and/or a reticulated arrangement, the support network being configured to provide tailored characteristics of the airfoil member. Also provided are methods and systems for repairing an airfoil member.
    Type: Application
    Filed: March 18, 2020
    Publication date: July 9, 2020
    Applicant: Bell Textron Inc.
    Inventors: Jeffrey Nissen, Jared M. Paulson, Thomas S. Chiang
  • Patent number: 10633976
    Abstract: In a first aspect, there is a method of making a rotor blade, including designing at least one of an upper skin, a lower skin, a support network, and components therefor; and forming at least one of the upper skin, the lower skin, a support network, and components therefor using an additive manufacturing process. In a second aspect, there is an airfoil member having a root end, a tip end, a leading edge, and a trailing edge, the airfoil member including an upper skin; a lower skin; and a support network having a plurality of interconnected support members in a lattice arrangement and/or a reticulated arrangement, the support network being configured to provide tailored characteristics of the airfoil member. Also provided are methods and systems for repairing an airfoil member.
    Type: Grant
    Filed: July 25, 2017
    Date of Patent: April 28, 2020
    Assignee: Bell Helicopter Textron Inc.
    Inventors: Jeffrey Nissen, Jared M. Paulson, Thomas S. Chiang
  • Publication number: 20190118523
    Abstract: An intentionally activated frangible bonding system comprises a frangible adhesive, adhesive primer, composite material matrix, and/or the like, having a polydispersion of at least one additive spread throughout the frangible bonding material. The additive degrades a bond provided by the frangible bonding material, upon application of a specific energy to the frangible bonding material. An energy emitter is configured to selectively direct the specific energy toward a structure or assembly comprising components bonded by the frangible bonding material to degrade the frangible bonding material bonding the components for disassembly.
    Type: Application
    Filed: October 19, 2017
    Publication date: April 25, 2019
    Applicant: Bell Helicopter Textron Inc.
    Inventors: Thomas S. Chiang, Jared Mark Paulson
  • Publication number: 20190032491
    Abstract: In a first aspect, there is a method of making a rotor blade, including designing at least one of an upper skin, a lower skin, a support network, and components therefor; and forming at least one of the upper skin, the lower skin, a support network, and components therefor using an additive manufacturing process. In a second aspect, there is an airfoil member having a root end, a tip end, a leading edge, and a trailing edge, the airfoil member including an upper skin; a lower skin; and a support network having a plurality of interconnected support members in a lattice arrangement and/or a reticulated arrangement, the support network being configured to provide tailored characteristics of the airfoil member. Also provided are methods and systems for repairing an airfoil member.
    Type: Application
    Filed: July 25, 2017
    Publication date: January 31, 2019
    Applicant: Bell Helicopter Textron Inc.
    Inventors: Jeffrey Nissen, Jared M. Paulson, Thomas S. Chiang