Patents by Inventor Chad E. Duty

Chad E. Duty 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: 11623395
    Abstract: An apparatus and device for creating a vertical strengthening feature within a 3D printed article of manufacture for improving mechanical performance in the Z-direction. Fill material is deposited in voids vertically crossing multiple layers during the build of 3D printing. The device includes a penetrating extension that fits within the void to create a vertical strengthening feature via heat and/or extruded fill material. The size and/or movement of the heated extension can impact the void side walls to reflow the build material and blend the layers together within the void side walls.
    Type: Grant
    Filed: October 25, 2021
    Date of Patent: April 11, 2023
    Assignee: UT-BATTELLE, LLC
    Inventors: Vlastimil Kunc, Seokpum Kim, John M. Lindahl, Jordan A. Failla, Chad E. Duty
  • Publication number: 20220040920
    Abstract: An apparatus and device for creating a vertical strengthening feature within a 3D printed article of manufacture for improving mechanical performance in the Z-direction. Fill material is deposited in voids vertically crossing multiple layers during the build of 3D printing. The device includes a penetrating extension that fits within the void to create a vertical strengthening feature via heat and/or extruded fill material. The size and/or movement of the heated extension can impact the void side walls to reflow the build material and blend the layers together within the void side walls.
    Type: Application
    Filed: October 25, 2021
    Publication date: February 10, 2022
    Applicant: UT-BATTELLE, LLC
    Inventors: Vlastimil Kunc, Seokpum KIM, John M. LINDAHL, Jordan A. Failla, Chad E. Duty
  • Patent number: 11199517
    Abstract: A structural health monitoring method is provided that utilizes self-sensing printed polymer structures. The method is based on resistivity properties of conductive materials, which can be integrated to a 3D printed polymer structure during additive manufacturing. An article to be monitored has at least one 3D printed polymer structure including a circuit comprising at least one conductive pathway extending through a non-conductive material. The resistance across the circuit is measured during or after loading of the article to determine a resistance value. The measured resistance value is compared to a known resistance value, and based on the comparison, a defect can be detected in the 3D printed polymer structure. Structural health monitoring systems and articles with integrated structural health monitoring are also provided.
    Type: Grant
    Filed: August 13, 2019
    Date of Patent: December 14, 2021
    Assignee: UT-Battelle, LLC
    Inventors: Vlastimil Kunc, Ahmed A. Hassen, Pooran C. Joshi, Seokpum Kim, John M. Lindahl, Chad E. Duty, Jordan A. Failla, Tyler C. H. Smith
  • Publication number: 20200049648
    Abstract: A structural health monitoring method is provided that utilizes self-sensing printed polymer structures. The method is based on resistivity properties of conductive materials, which can be integrated to a 3D printed polymer structure during additive manufacturing. An article to be monitored has at least one 3D printed polymer structure including a circuit comprising at least one conductive pathway extending through a non-conductive material. The resistance across the circuit is measured during or after loading of the article to determine a resistance value. The measured resistance value is compared to a known resistance value, and based on the comparison, a defect can be detected in the 3D printed polymer structure. Structural health monitoring systems and articles with integrated structural health monitoring are also provided.
    Type: Application
    Filed: August 13, 2019
    Publication date: February 13, 2020
    Inventors: Vlastimil Kunc, Ahmed A. Hassen, Pooran C. Joshi, Seokpum Kim, John M. Lindahl, Chad E. Duty, Jordan A. Failla, Tyler C. H. Smith
  • Publication number: 20190091927
    Abstract: An apparatus and device for creating a vertical strengthening feature within a 3D printed article of manufacture for improving mechanical performance in the Z-direction. Fill material is deposited in voids vertically crossing multiple layers during the build of 3D printing. The device includes a penetrating extension that fits within the void to create a vertical strengthening feature via heat and/or extruded fill material. The size and/or movement of the heated extension can impact the void side walls to reflow the build material and blend the layers together within the void side walls.
    Type: Application
    Filed: September 19, 2018
    Publication date: March 28, 2019
    Applicant: UT-BATTELLE, LLC
    Inventors: Vlastimil Kunc, Seokpum KIM, John M. LINDAHL, Jordan A. FAILLA, Chad E. DUTY
  • Patent number: 10137617
    Abstract: A method for producing a polymer composite fiber comprised of a polymer matrix with filaments incorporated therein whose lengthwise dimensions are substantially oriented with the axial dimension of the composite fiber, the method comprising subjecting a melt comprised of a polymer matrix and filaments to an extrusion process in which the melt is extruded into a fibrous form in the absence of screw extruders and in the substantial absence of shear forces that result in breakage of the filaments, followed by cooling and solidification of the extruded melt to provide the polymer composite fiber. Integration of these polymer composite fibers with additive manufacturing technologies, particularly rapid prototyping methods, such as FFF and 3D printing, are also described. The resulting polymer composite fibers and articles made thereof are also described.
    Type: Grant
    Filed: April 17, 2015
    Date of Patent: November 27, 2018
    Assignee: UT-BATTELLE, LLC
    Inventors: Vlastimil Kunc, Chad E. Duty, Lonnie J. Love, Amit K. Naskar
  • Patent number: 10124531
    Abstract: A method and apparatus for additive manufacturing that includes a nozzle and/or barrel for extruding a plastic material and a supply of polymeric working material provided to the nozzle, wherein the polymeric working material is magnetically susceptible and/or electrically conductive. A magneto-dynamic heater is provided for producing a time varying, high flux, frequency sweeping, alternating magnetic field in the vicinity of the nozzle to penetrate into and couple the working material to heat the material through at least one of an induced transient magnetic domain and an induced, annular current.
    Type: Grant
    Filed: December 30, 2013
    Date of Patent: November 13, 2018
    Assignee: UT-BATTELLE, LLC
    Inventors: Chad E. Duty, Vlastimil Kunc, Lonnie J. Love, William H. Peter, Orlando Rios
  • Publication number: 20180311891
    Abstract: An additive manufacturing method and component having a fill layer material injected into voids as a Z-direction liquid nail or pin to provide a better connection between layers. Rather than depositing a complete layer, the extruder stops extruding at certain sections of the layers to leave a void. This repeats in the same location for the next predetermined number of layers, to create a series of vertically aligned voids in the print. Once the void hole is deep enough, the extruder will go back to this hole after completing the layer and fill it in. When this is done, the material flows down to the bottom of the hole and fill in the hole until it reaches the level of the most recent layer. This can be done a plurality of times on each layer.
    Type: Application
    Filed: April 27, 2018
    Publication date: November 1, 2018
    Applicant: UT-BATTELLE, LLC
    Inventors: Chad E. DUTY, Seokpum KIM, Vlastimil KUNC, Lonnie J. LOVE, Brian K. POST, Jordan A. FAILLA, John M. LINDAHL
  • Patent number: 9909221
    Abstract: The invention is directed to a method for producing metal-containing particles, the method comprising subjecting an aqueous solution comprising a metal salt, Eh, lowering reducing agent, pH adjusting agent, and water to conditions that maintain the Eh value of the solution within the bounds of an Eh-pH stability field corresponding to the composition of the metal-containing particles to be produced, and producing said metal-containing particles in said aqueous solution at a selected Eh value within the bounds of said Eh-pH stability field. The invention is also directed to the resulting metal-containing particles as well as devices in which they are incorporated.
    Type: Grant
    Filed: March 12, 2014
    Date of Patent: March 6, 2018
    Assignee: UT-BATTELLE, LLC
    Inventors: Ji-Won Moon, Hyunsung Jung, Tommy Joe Phelps, Chad E. Duty, Ilia N. Ivanov, Pooran Chandra Joshi, Gerald Earle Jellison, Jr., Beth Louise Armstrong, Sean Campbell Smith, Adam Justin Rondinone, Lonnie J. Love
  • Patent number: 9868899
    Abstract: A method of forming a metal gallate spinel structure that includes mixing a divalent metal-containing salt and a gallium-containing salt in solution with fermentative or thermophilic bacteria. In the process, the bacteria nucleate metal gallate spinel nano-objects from the divalent metal-containing salt and the gallium-containing salt without requiring reduction of a metal in the solution. The metal gallate spinel structures, as well as light-emitting structures in which they are incorporated, are also described.
    Type: Grant
    Filed: March 14, 2013
    Date of Patent: January 16, 2018
    Assignee: UT-BATTELLE, LLC
    Inventors: Chad E. Duty, Gerald E. Jellison, Jr., Lonnie J. Love, Ji Won Moon, Tommy J. Phelps, Ilia N. Ivanov, Jongsu Kim, Jehong Park, Robert Lauf
  • Publication number: 20170151728
    Abstract: Several examples of additive manufacturing machines and methods for depositing a bead of composite polymer material having continuous fiber reinforcement are disclosed. A length of fiber reinforcement is provided to a nozzle. The fiber reinforcement is embedded into a stream of a base polymer material at the nozzle and deposited as a bead of composite polymer material having fiber reinforcement. The fiber reinforcement may be dry or pre-impregnated with a reinforcing polymer. The additional strength of the composite polymer material having fiber reinforcement allows for true, three-dimensional printing of articles having unsupported regions.
    Type: Application
    Filed: November 30, 2015
    Publication date: June 1, 2017
    Inventors: Vlastimil Kunc, Craig A. Blue, Chad E. Duty, Randall F. Lind, John M. Lindahl, Peter D. Lloyd, Lonnie J. Love, Matthew R. Love, Brian K. Post, Orlando Rios
  • Publication number: 20170152355
    Abstract: Several examples of an article of manufacture made with an additive manufacturing machine are disclosed. A length of fiber reinforcement is provided to a nozzle. The fiber reinforcement is embedded into a stream of a base polymer material at the nozzle and deposited as a bead of composite polymer material having fiber reinforcement. The fiber reinforcement may be dry or pre-impregnated with a reinforcing polymer. The additional strength of the composite polymer material having fiber reinforcement allows for true, three-dimensional printing of articles having unsupported regions.
    Type: Application
    Filed: November 30, 2015
    Publication date: June 1, 2017
    Inventors: Vlastimil Kunc, Craig A. Blue, Chad E. Duty, Randall F. Lind, John M. Lindahl, Peter D. Lloyd, Lonnie J. Love, Matthew R. Love, Brian K. Post, Orlando Rios
  • Patent number: 9650537
    Abstract: Methods and compositions for additive manufacturing that include reactive or thermosetting polymers, such as urethanes and epoxies. The polymers are melted, partially cross-linked prior to the depositing, deposited to form a component object, solidified, and fully cross-linked. These polymers form networks of chemical bonds that span the deposited layers. Application of a directional electromagnetic field can be applied to aromatic polymers after deposition to align the polymers for improved bonding between the deposited layers.
    Type: Grant
    Filed: April 14, 2014
    Date of Patent: May 16, 2017
    Assignee: UT-Battelle, LLC
    Inventors: Vlastimil Kunc, Orlando Rios, Lonnie J. Love, Chad E. Duty, Alexander Johs
  • Publication number: 20170057160
    Abstract: A manufactured component, method and apparatus for advanced manufacturing that includes a nozzle for extruding a working material, wherein the polymeric working material includes a carbon fiber reinforced polymer. The build of the component takes place on a work surface at atmospheric temperatures.
    Type: Application
    Filed: November 10, 2016
    Publication date: March 2, 2017
    Applicant: UT-BATTELLE, LLC
    Inventors: Chad E. Duty, Vlastimil KUNC, Lonnie J. LOVE, Charles L. CARNAL, Randal F. LIND, Peter D. LLOYD, Orlando RIOS
  • Publication number: 20160303779
    Abstract: A method for producing a polymer composite fiber comprised of a polymer matrix with filaments incorporated therein whose lengthwise dimensions are substantially oriented with the axial dimension of the composite fiber, the method comprising subjecting a melt comprised of a polymer matrix and filaments to an extrusion process in which the melt is extruded into a fibrous form in the absence of screw extruders and in the substantial absence of shear forces that result in breakage of the filaments, followed by cooling and solidification of the extruded melt to provide the polymer composite fiber. Integration of these polymer composite fibers with additive manufacturing technologies, particularly rapid prototyping methods, such as FFF and 3D printing, are also described. The resulting polymer composite fibers and articles made thereof are also described.
    Type: Application
    Filed: April 17, 2015
    Publication date: October 20, 2016
    Inventors: Vlastimil Kunc, Chad E. Duty, Lonnie J. Love, Amit K. Naskar
  • Patent number: 9196760
    Abstract: A method for producing a film, the method comprising melting a layer of precursor particles on a substrate until at least a portion of the melted particles are planarized and merged to produce the film. The invention is also directed to a method for producing a photovoltaic film, the method comprising depositing particles having a photovoltaic or other property onto a substrate, and affixing the particles to the substrate, wherein the particles may or may not be subsequently melted. Also described herein are films produced by these methods, methods for producing a patterned film on a substrate, and methods for producing a multilayer structure.
    Type: Grant
    Filed: March 22, 2012
    Date of Patent: November 24, 2015
    Assignee: UT-BATTELLE, LLC
    Inventors: Chad E. Duty, Charlee J C Bennett, Ji-Won Moon, Tommy J. Phelps, Craig A. Blue, Quanqin Dai, Michael Z. Hu, Ilia N. Ivanov, Gerald E. Jellison, Jr., Lonnie J. Love, Ronald D. Ott, Chad M. Parish, Steven Walker
  • Publication number: 20150291833
    Abstract: Methods and compositions for additive manufacturing that include reactive or thermosetting polymers, such as urethanes and epoxies. The polymers are melted, partially cross-linked prior to the depositing, deposited to form a component object, solidified, and fully cross-linked. These polymers form networks of chemical bonds that span the deposited layers. Application of a directional electromagnetic field can be applied to aromatic polymers after deposition to align the polymers for improved bonding between the deposited layers.
    Type: Application
    Filed: April 14, 2014
    Publication date: October 15, 2015
    Applicant: UT-Battelle, LLC
    Inventors: Vlastimil Kunc, Orlando Rios, Lonnie J. Love, Chad E. Duty, Alexander Johs
  • Publication number: 20150183159
    Abstract: A manufactured component, method and apparatus for advanced manufacturing that includes a nozzle for extruding a working material, wherein the polymeric working material includes a carbon fiber reinforced polymer. The build of the component takes place on a work surface at atmospheric temperatures.
    Type: Application
    Filed: December 30, 2013
    Publication date: July 2, 2015
    Inventors: Chad E. Duty, Vlastimil Kunc, Lonnie J. Love, Charles L. Carnal, Randal F. Lind, Peter D. Lloyd, Orlando Rios
  • Publication number: 20150183164
    Abstract: A method and apparatus for additive manufacturing that includes a nozzle for extruding a plastic material and a supply of polymeric working material provided to the nozzle, wherein the polymeric working material is magnetically susceptible and/or electrically conductive. A magneto-dynamic heater is provided for producing a time varying, high flux, frequency sweeping, alternating magnetic field in the vicinity of the nozzle to penetrate into and couple the working material to heat the material through at least one of an induced transient magnetic domain and an induced, annular current.
    Type: Application
    Filed: December 30, 2013
    Publication date: July 2, 2015
    Inventors: Chad E. DUTY, Vlastimil KUNC, Lonnie J. LOVE, Orlando RIOS
  • Publication number: 20150183138
    Abstract: A method and apparatus for additive manufacturing that includes a nozzle and/or barrel for extruding a plastic material and a supply of polymeric working material provided to the nozzle, wherein the polymeric working material is magnetically susceptible and/or electrically conductive. A magneto-dynamic heater is provided for producing a time varying, high flux, frequency sweeping, alternating magnetic field in the vicinity of the nozzle to penetrate into and couple the working material to heat the material through at least one of an induced transient magnetic domain and an induced, annular current.
    Type: Application
    Filed: December 30, 2013
    Publication date: July 2, 2015
    Inventors: Chad E. Duty, Vlastimil KUNC, Lonnie J. LOVE, William H. PETER, Orlando RIOS