Patents Examined by Leo B. Tentoni
  • Patent number: 11001945
    Abstract: A thermoplastic filament comprising multiple polymers of differing flow temperatures in a regular geometric arrangement, and a method for producing such a filament, are described. Because of the difference in flow temperatures, there exists a temperature range at which one polymer is mechanically stable while the other is flowable. This property is extremely useful for creating thermoplastic monofilament feedstock for three-dimensionally printed parts, wherein the mechanically stable polymer enables geometric stability while the flowable polymer can fill gaps and provide strong bonding and homogenization between deposited material lines and layers. These multimaterial filaments can be produced via thermal drawing from a thermoplastic preform, which itself can be three-dimensionally printed. Furthermore, the preform can be printed with precisely controlled and complex geometries, enabling the creation of monofilament and fiber with unique decorative or functional properties.
    Type: Grant
    Filed: March 25, 2016
    Date of Patent: May 11, 2021
    Assignee: The United States of America as represented by the Secretary of the Army
    Inventors: Eric D. Wetzel, Larry R. Holmes, Jr., Ricardo X. Rodriguez, Patrick M. Toal, Jr.
  • Patent number: 11001047
    Abstract: Techniques for integrating a machine-readable matrix with a component of a mechanical structure using three-dimensional (3-D) printing are disclosed. Such techniques include generating at least one data model representing the component, and projecting a matrix pattern identifying one or more features of the component onto a selected surface portion of the component to produce a modified data model for use as an input to a 3-D printer.
    Type: Grant
    Filed: June 21, 2019
    Date of Patent: May 11, 2021
    Assignee: Divergent Technologies, Inc.
    Inventors: Donald J. Christian, John Russell Bucknell
  • Patent number: 11001000
    Abstract: In a three-dimensional printing method example, a pre-treatment coating is formed on a part precursor by applying and drying, alternatingly: a polycation solution including a chloride ion and a polyanion solution including a sodium ion to form at least two layers. An ink is selectively deposited on the pre-treatment coating.
    Type: Grant
    Filed: October 21, 2015
    Date of Patent: May 11, 2021
    Assignee: Hewlett-Packard Development Company, L.P.
    Inventors: Sterling Chaffins, Kevin P. DeKam
  • Patent number: 10995436
    Abstract: The invention relates to a method for producing a nonwoven fabric from fibres, wherein the fibres are spun by means of at least one spinneret, are cooled and then deposited on a collection device to form a nonwoven web. The nonwoven web undergoes hot fluid bonding during at least two consecutive bonding steps. In a first bonding step, the surface of the nonwoven web is subjected to a hot fluid and, in a second bonding step, the surface of the nonwoven web is also subsequently subjected to a hot fluid and, in addition and at the same time, surface pressure is exerted on the nonwoven web.
    Type: Grant
    Filed: February 23, 2018
    Date of Patent: May 4, 2021
    Assignees: REIFENHAEUSER GMBH & CO. KG MASCHINENFABRIK, MANN + HUMMEL GMBH
    Inventors: Claudio Cinquemani, Detlef Frey, Stefan Orendt, Thomas Pemsel
  • Patent number: 10994475
    Abstract: Methods of layerwise fabrication of a three-dimensional object, and objected obtained thereby are provided. The methods are effected by dispensing at least a first modeling formulation and a second modeling formulation to form a core region using both said first and said second modeling formulations, an inner envelope region at least partially surrounding said core region using said first modeling formulation but not said second modeling formulation, and an outer envelope region at least partially surrounding said inner envelope region using said second modeling formulations but not said first modeling formulation; and exposing said layer to curing energy, thereby fabricating the object, The first and second modeling formulations are selected such they differ from one another, when hardened, by at least one of Heat Deflection Temperature (HDT), Izod Impact resistance, Tg and elastic modulus.
    Type: Grant
    Filed: September 20, 2017
    Date of Patent: May 4, 2021
    Assignee: Stratasys Ltd.
    Inventors: Avraham Levy, Diana Ravich, Lior Zonder, Gil Shelef, Cesar M. Manna
  • Patent number: 10987869
    Abstract: Described herein are three-dimensional (3D) printer systems and methods, which may provide for “continuous pull” 3D printing. An illustrative 3D printer includes: a resin container, a base plate, a light source arranged below the resin container and operable to cure resin in the resin container; and a control system operable to: (a) receive model data specifying a 3D structure; (b) determine 2D images corresponding to layers of the 3D object; and (c) generate control signals to operate the light source and the base plate to sequentially form the layers of the 3D object onto the base plate, wherein the base plate moves a formed portion of the 3D object upward after formation of each layer, and wherein at least a surface of a formed portion of the 3D object remains in contact with the resin in the resin container throughout the formation of the layers of the 3D object.
    Type: Grant
    Filed: July 1, 2019
    Date of Patent: April 27, 2021
    Assignee: X Development LLC
    Inventors: Jeff Linnell, Jonathan Proto, Brandon Kruysman, Steven Moody
  • Patent number: 10982022
    Abstract: Synergistic visbreaking composition of peroxide and a hydroxylamine ester for increasing the visbreaking efficiency for polypropylene polymers at melt extrusion temperatures below 250° C. and its use in visbreaking polypropylene. The present invention is furthermore related to the use of such visbroken polypropylene polymers for producing melt blown non-wovens with improved barrier properties.
    Type: Grant
    Filed: October 21, 2019
    Date of Patent: April 20, 2021
    Assignee: BOREALIS AG
    Inventors: Joachim Fiebig, Henk Van Paridon, Jingbo Wang, Markus Gahleitner
  • Patent number: 10981375
    Abstract: In the additive manufacturing process, a monitored or controlled mixture of materials is deposited to form an additive manufactured product by delivering the mixture of materials through a material flow path while using an excitation source to introduce electromagnetic energy into the material flow path using a circuit element having inductive or capacitive reactance disposed adjacent the material ejecting orifice. The excitation source produces an electromagnetic field condition within the material flow path that is responsive to at least one of the permeability and permittivity properties of a space within the material flow path. A sensing means coupled electrically or magnetically to the excitation means is responsive to the electromagnetic field condition and provides at least one control parameter based on the electromagnetic field condition that may be used to control the composition of the mixture of materials by adjusting proportions of constituent materials.
    Type: Grant
    Filed: September 19, 2019
    Date of Patent: April 20, 2021
    Assignee: Lawrence Livermore National Security, LLC
    Inventors: Manyalibo Joseph Matthews, Eric Duoss
  • Patent number: 10981323
    Abstract: An additive manufacturing apparatus includes a platform, a dispenser to deliver a plurality of layers of feed material, one or more light sources configured to emit a first light beam and a second light beam, and a polygon beam scanner including a rotatable mirror having a plurality of reflective facets to redirect the first light beam and the second light beam toward the platform to deliver energy to an uppermost layer of feed material. The mirror is positioned and rotatable such that motion of each facet of the plurality of reflective facets causes the first light beam to sweep along a first path on the uppermost layer and causes the second light beam to sweep along the first path following the first light beam.
    Type: Grant
    Filed: April 23, 2018
    Date of Patent: April 20, 2021
    Assignee: Applied Materials, Inc.
    Inventors: Jeffrey L. Franklin, Hou T. Ng, Nag B. Patibandla
  • Patent number: 10974499
    Abstract: A three-dimensional electronic, biological, chemical, thermal management, and/or electromechanical apparatus can be configured by depositing one or more layers of a three-dimensional structure on a substrate. Such a three-dimensional structure can include one or more internal cavities using an additive manufacturing system enhanced with a range of secondary embedding processes. The three-dimensional structure can be further configured with structural integrated metal objects spanning the internal cavities (possibly filled with air or even evacuated) of the three-dimensional structure for enhanced electromagnetic properties.
    Type: Grant
    Filed: October 7, 2019
    Date of Patent: April 13, 2021
    Assignee: Board of Regents, The University of Texas System
    Inventors: Eric MacDonald, Ryan Wicker, David Espalin
  • Patent number: 10968315
    Abstract: Provided is a polymer nanofiber sheet having high delamination resistance, a high mechanical strength, and a high specific surface area. Specifically, provided is a polymer nanofiber sheet, including polymer nanofibers, the polymer nanofibers being laminated and three-dimensionally entangled with each other, in which: at least part of the polymer nanofibers are crosslinked at a crosslinked part having crosslinking portions and a non-crosslinking portion; and the crosslinked part contains a low-molecular weight epoxy compound having a molecular weight of from 100 to 3,000.
    Type: Grant
    Filed: December 10, 2019
    Date of Patent: April 6, 2021
    Assignee: CANON KABUSHIKI KAISHA
    Inventors: Tetsuo Hino, Kazuhiro Yamauchi
  • Patent number: 10968539
    Abstract: A thermoplastic filament comprising multiple polymers of differing flow temperatures in a geometric arrangement and an interior channel containing a structural or functional thread therein is described. A method for producing such a filament is also described. Because of the difference in flow temperatures, there exists a temperature range at which one polymer is mechanically stable while the other is flowable. This property is extremely useful for creating thermoplastic monofilament feedstock for three-dimensionally printed parts, wherein the mechanically stable polymer enables geometric stability while the flowable polymer can fill gaps and provide strong bonding and homogenization between deposited material lines and layers. These multimaterial filaments can be produced via thermal drawing from a thermoplastic preform, which itself can be three-dimensionally printed.
    Type: Grant
    Filed: June 22, 2017
    Date of Patent: April 6, 2021
    Assignee: The United States of America as represented by the Secretary of the Army
    Inventors: Eric D. Wetzel, Larry R. Holmes, Jr., Ricardo X. Rodriguez, Patrick M. Toal, Jr.
  • Patent number: 10953594
    Abstract: The present invention is a printing device using multiple inks and a printing method using thereof, and more specifically, relates to a three-dimensional printing method of a printed product with a cross-sectional pattern comprising a step of providing different inks into each partitioned spaces and applying the same pressure condition to the inks retained in the ink-receiving part, thereby extruding the inks into a single extruding port to prepare and print an extruded ink product, using the printing device comprising an ink extruding member comprising an ink-receiving part receiving the multiple inks in each partitioned space, and an ink-extruding part equipped with a single passage in which the multiple inks received in the ink-receiving part are passed together.
    Type: Grant
    Filed: March 31, 2017
    Date of Patent: March 23, 2021
    Assignee: T & R BIOFAB CO., LTD.
    Inventors: Geunseon Ahn, Songwan Jin, Jinhyung Shim, Wonsoo Yun, Donggu Kang
  • Patent number: 10947643
    Abstract: A continuous wire drive system for a needleless electrospinning apparatus, the electrospinning apparatus including an electrospinning enclosure and within which a nanoscale or submicron scale polymer fiber web is formed onto a substrate from a liquid polymer layer coated onto a plurality of continuous electrode wires passing through the electrospinning enclosure. The continuous wire drive system includes a master wire drive drum and a slave wire drive drum, each of the master wire drive drum and slave wire drive drum including a plurality of wire guides, each of the wire guides including a channel or groove for receiving one of the plurality of continuous electrode wires. The continuous wire drive system is external to the electrospinning apparatus, and the continuous wire drive system drives the plurality of continuous electrode wires through the electrospinning enclosure.
    Type: Grant
    Filed: January 5, 2018
    Date of Patent: March 16, 2021
    Assignee: SHPP GLOBAL TECHNOLOGIES B.V.
    Inventors: Xuezhi Jin, Richard Peters, Evelyn Pearson
  • Patent number: 10946583
    Abstract: Methods for manufacturing articles of footwear are provided. In various aspects, the methods comprise utilizing additive manufacturing methods with foam particles. In some aspects, the disclosed methods comprise selectively depositing a binding material on foam particles in a target area such that the binding material coats at least a portion of defining surfaces of the foam particles with the binding material. The binding material is then cured to affix foam particles in the target area to one another. In various aspects, the disclosed methods can be used to manufacturer articles with sub-regions that differential levels of affixing between the foam particles, and thereby resulting in sub-regions with different properties such as density, resilience, and/or flexural modulus. This abstract is intended as a scanning tool for purposes of searching in the particular art and is not intended to be limiting of the present disclosure.
    Type: Grant
    Filed: March 27, 2020
    Date of Patent: March 16, 2021
    Assignee: NIKE, Inc.
    Inventors: Jay Constantinou, Harleigh Doremus, Luis Folgar, Brandon Kvamme, Denis Schiller
  • Patent number: 10940641
    Abstract: An additive manufacturing apparatus includes a platform, a dispenser to dispense a plurality of layers of feed material on a top surface of the platform, and an energy delivery system. The energy delivery system has one or more light sources configured to emit a first light beam and a second light beam, and one or more reflective members each having reflective facets to redirect the first light beam or the second light beam toward an uppermost layer of feed material to deliver energy to the uppermost layer. The one or more reflective members are each rotatable such that motion of each sequential facet of the reflective facets of each of the one or more reflective members sweeps the first light beam along a first path on the uppermost layer or sweeps the second light beam along a second path on the uppermost layer.
    Type: Grant
    Filed: April 23, 2018
    Date of Patent: March 9, 2021
    Assignee: Applied Materials, Inc.
    Inventors: Jeffrey L. Franklin, Hou T. Ng, Nag B. Patibandla
  • Patent number: 10926472
    Abstract: An internal tissue including a lesion region in the human body is modeled as a three-dimensional model. By reconstructing thickness or flexibility of a lumen wall portion including the lesion region and making it possible to confirm a motion of the lumen wall or a flow of fluid in the inside of the lumen wall, a state of the lesion region in the lumen can be confirmed clearly by visual inspection or the like. As a result, the diagnosis in the lumen can be made easier.
    Type: Grant
    Filed: June 22, 2018
    Date of Patent: February 23, 2021
    Assignee: TERUMO CORPORATION
    Inventor: Hiroshi Misawa
  • Patent number: 10927477
    Abstract: A process of forming a fiber comprised of a plurality of bio-char particles, comprising: combining a portion of a polymer with a hemp derivative, said hemp derivative selected form a hemp carbon made by pyrolyzing a quantity of hemp stalk at between 1100-1500° C. to create a char; adding the char to a milling vessel and milling the char for a period of between 1 to 16 hours, and a full spectrum hemp extract, or combinations thereof, wherein the polymer and hemp derivative are extruded to form a fiber.
    Type: Grant
    Filed: April 27, 2020
    Date of Patent: February 23, 2021
    Assignees: Thomas Jefferson University, Ecofibre USA Inc.
    Inventors: Mark Sunderland, Jeffrey William Bruner, Lee Benjamin Williams
  • Patent number: 10925998
    Abstract: Aspects herein relate to biocompatible polyisobutylene-fiber composite materials and related methods. In one aspect a biocompatible composite material is included. The biocompatible composite material can include a network of fibers comprising one or more polymers to form a substrate and a continuous, interpenetrating polyisobutylene matrix that is non-porous and completely surrounds the electrospun fibers. Other aspects are included herein.
    Type: Grant
    Filed: April 23, 2018
    Date of Patent: February 23, 2021
    Assignee: Boston Scientific Scimed, Inc.
    Inventors: Joseph Thomas Delaney, Jr., Patrick Willoughby, David Robert Wulfman, Andrew J. Ro, Niraj Gurung
  • Patent number: 10920002
    Abstract: The present disclosure provides a novel method of 3D printing using frontal polymerization chemistry. This method enables the printing of tough, high quality thermosets in a short time with the option of adding fiber reinforcement. As such, it facilitates fabrication of mechanically robust 3D-printed devices and structures.
    Type: Grant
    Filed: May 14, 2018
    Date of Patent: February 16, 2021
    Assignee: THE BOARD OF TRUSTEES OF THE UNIVERSITY OF ILLINOIS
    Inventors: Jeffrey S. Moore, Scott R. White, Ian D. Robertson, Nancy R. Sottos, Jia En Aw