Patents by Inventor Robert A. Sainati

Robert A. Sainati 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: 20240077756
    Abstract: An optical construction includes optical stacks arranged across the construction and spaced apart from each other. Each of the optical stacks has a transmittance of at least 60% for at least one visible wavelength and includes one or more electrically conductive layers. The optical stacks are co-extensive with first and second antennas. Each of the electrically conductive layers defines a through opening aligned with at least one of the first and second antennas. For each of an s-polarized first incident signal incident on the optical construction in a first incident plane and a p-polarized second incident signal incident on the optical construction in a second incident plane orthogonal to the first incident plane, for at least one frequency in a range from 0.5 GHz to 10 GHz, and for incident angles of up to 40 degrees, the optical construction has a transmission coefficient of between 0 dB and ?10 dB.
    Type: Application
    Filed: August 25, 2023
    Publication date: March 7, 2024
    Inventors: Jaewon Kim, Lars Schrix, Gregory M. Haugen, Robert A. Sainati
  • Publication number: 20230314544
    Abstract: A tracker device for a first responder including a radio configured to receive a first radio signal from an emitter, and receive a second radio signal from an unmanned aerial vehicle (UAV). The second radio signal includes at least one data packet including location information associated with the emitter. Processing circuitry in communication with the radio is configured to determine at least one location parameter associated with the emitter based on the first radio signal and the location information of the at least one data packet of the second radio signal.
    Type: Application
    Filed: March 17, 2023
    Publication date: October 5, 2023
    Inventors: Nathan J. Montgomery, Matthew Shannon, Richard J. Sabacinski, Craig M. Parkulo, Wesley M. Barbee, Mike E. Hamerly, Elias Wilken-Resman, Ronald D. Jesme, Robert A. Sainati, Longin J. Kloc, Darin K. Thompson, Gary T, Silsby
  • Publication number: 20230065918
    Abstract: A compact munition antenna system that includes a curvilinear transmit antenna on a top and bottom of a ring-shaped substrate, and a curvilinear receive antenna on the top and bottom of the substrate. The transmit antenna and receive antenna are positioned opposite one another on the substrate, and are separated by a pair of isolation barriers to reduce coupling of the two antennas. The munition antenna system may be mounted on a metal cylindrical portion of a guidance system in a nose section of the munition, using a vertical convex surface of the cylindrical portion and a horizontal surface of the munition as a reflector for improving antenna performance.
    Type: Application
    Filed: May 26, 2022
    Publication date: March 2, 2023
    Inventors: Jacob M. Parrow, Robert A. Sainati
  • Patent number: 11578956
    Abstract: A body spin detection device for a projectile, the device including a perturbing element and a detection element electrically connected to detection circuitry in the projectile. The detection circuitry configured to receive, via the detection element, a first and second input signals and determine that the first input signal is different from the second input signal based on signal characteristics for the first and second input signals. The detection circuitry is further configured to determine a spin rate for at least one of the despun control portion and the chassis by determining a time period between receiving the first input signal and the second input signal.
    Type: Grant
    Filed: November 1, 2018
    Date of Patent: February 14, 2023
    Assignee: Northrop Grumman Systems Corporation
    Inventors: Philip Cheung, Jared Wall, John Lamberg, Matthew P. Contons, Michael Balk, Robert A. Sainati, David Nohre
  • Publication number: 20220183153
    Abstract: A patterned article includes a unitary polymeric layer and a plurality of electrically conductive elements embedded at least partially in the unitary polymeric layer. Each electrically conductive element includes a conductive seed layer having a top major surface and an opposite bottom major surface in direct contact with the unitary polymeric layer, and includes a metallic body disposed on the top major surface of the conductive seed layer. The metallic body has a bottom major surface and at least one sidewall. The bottom major surface contacts the conductive seed layer. Each sidewall is in direct contact with the unitary polymeric layer and extends from the bottom major surface of the metallic body toward or to, but not past, a top major surface of the unitary polymeric layer. The conductive elements may be electrically isolated from one another. Processes for making the patterned article are described.
    Type: Application
    Filed: May 5, 2020
    Publication date: June 9, 2022
    Inventors: Raymond P. Johnston, John J. Sullivan, Matthew C. Messina, Charles D. Hoyle, Jaewon Kim, Haiyan Zhang, Matthew S. Stay, Robert A. Sainati, Kevin W. Gotrik, Kenneth A.P. Meyer, Gregory L. Abraham, Joseph C. Carls, Douglas S. Dunn
  • Patent number: 11349201
    Abstract: A compact munition antenna system that includes a curvilinear transmit antenna on a top and bottom of a ring-shaped substrate, and a curvilinear receive antenna on the top and bottom of the substrate. The transmit antenna and receive antenna are positioned opposite one another on the substrate, and are separated by a pair of isolation barriers to reduce coupling of the two antennas. The munition antenna system may be mounted on a metal cylindrical portion of a guidance system in a nose section of the munition, using a vertical convex surface of the cylindrical portion and a horizontal surface of the munition as a reflector for improving antenna performance.
    Type: Grant
    Filed: January 23, 2020
    Date of Patent: May 31, 2022
    Assignee: Northrop Grumman Systems Corporation
    Inventors: Jacob M. Parrow, Robert A. Sainati
  • Patent number: 10777901
    Abstract: An antenna system may include a source antenna, a frequency selective surface (FSS), and a second antenna or a fluidic channel associated with a housing. In both examples, the FSS has a first side and a second side opposite from the first side. The first side includes horizontally oriented unit cells positioned as multiple columns of unit cells. The first side of the FSS faces the source antenna and is separated from the source antenna by a defined distance. The housing is positioned on the second side of the FSS. In the latter example, the fluidic channel of the housing includes one of air or deionized water. The fluidic channel is positioned on a portion of the second side of the FSS that is opposite to a subset of the horizontally oriented unit cells on the first side of the FSS.
    Type: Grant
    Filed: February 7, 2019
    Date of Patent: September 15, 2020
    Assignee: Regents of the University of Minnesota
    Inventors: Rhonda R. Franklin, Robert Sainati, Chanjoon Lee, Aditya Dave
  • Publication number: 20190245273
    Abstract: An antenna system may include a source antenna, a frequency selective surface (FSS), and a second antenna or a fluidic channel associated with a housing. In both examples, the FSS has a first side and a second side opposite from the first side. The first side includes horizontally oriented unit cells positioned as multiple columns of unit cells. The first side of the FSS faces the source antenna and is separated from the source antenna by a defined distance. The housing is positioned on the second side of the FSS. In the latter example, the fluidic channel of the housing includes one of air or deionized water. The fluidic channel is positioned on a portion of the second side of the FSS that is opposite to a subset of the horizontally oriented unit cells on the first side of the FSS.
    Type: Application
    Filed: February 7, 2019
    Publication date: August 8, 2019
    Inventors: Rhonda R. Franklin, Robert Sainati, Chanjoon Lee, Aditya Dave
  • Patent number: 8998099
    Abstract: Antennas suitable for use in RFID devices include an insulating substrate and a first conductive micropattern disposed on or in the substrate, the first conductive micropattern defining a contiguous mesh conductor. The first conductive micropattern forms an antenna responsive to at least a frequency of 915 MHz, and includes interconnected traces having a trace width in a range from 0.5 to 20 microns. Furthermore, the first conductive micropattern is characterized by an open area fraction of at least 80% or 90%. RFID devices include such an antenna and an integrated circuit configured to transmit and receive signals using the antenna. Cards, such as financial transaction cards or identification cards, include such an antenna carried by a card layer.
    Type: Grant
    Filed: November 17, 2011
    Date of Patent: April 7, 2015
    Assignee: 3M Innovative Properties Company
    Inventors: Matthew H. Frey, Lijun Zu, William C. Egbert, Swagata R. Banerjee, Robert A. Sainati
  • Patent number: 8717244
    Abstract: In general, the disclosure describes an RFID tag designed such that the tag is both covert and not easily blocked from the interrogation signal by the hand or other body part of a person. In particular, the RFID tag is designed to have a long, narrow aspect that allows placement of the tag in locations on or in a book that are inconspicuous to the casual observer while extending beyond a hand of a person holding the book by the spine on or near a geometry centerline. The RFID tag includes a dipole segment and a loop segment coupled to the dipole segment. The loop segment of the modified dipole antenna provides the antenna with larger signal strength than conventional dipole antennas. Moreover, the conductive loop segment also provides improved impedance matching capabilities to allow the modified dipole antenna to match the impedance of an integrated circuit (IC) chip of the RFID tag.
    Type: Grant
    Filed: October 11, 2007
    Date of Patent: May 6, 2014
    Assignee: 3M Innovative Properties Company
    Inventors: Terrence H. Joyce, Jr., Swagata R. Banerjee, William C. Egbert, Katherine A. Brown, Jaewon Kim, William A. Mittelstadt, Robert A. Sainati
  • Publication number: 20130264390
    Abstract: Antennas suitable for use in RFID devices include an insulating substrate and a first conductive micropattern disposed on or in the substrate, the first conductive micropattern defining a contiguous mesh conductor. The first conductive micropattern forms an antenna responsive to at least a frequency of 915 MHz, and includes interconnected traces having a trace width in a range from 0.5 to 20 microns. Furthermore, the first conductive micropattern is characterized by an open area fraction of at least 80% or 90%. RFID devices include such an antenna and an integrated circuit configured to transmit and receive signals using the antenna. Cards, such as financial transaction cards or identification cards, include such an antenna carried by a card layer.
    Type: Application
    Filed: November 17, 2011
    Publication date: October 10, 2013
    Applicant: 3M INNOVATIVE PROPERTIES COMPANY
    Inventors: Matthew H. Frey, Lijun Zu, William C. Egbert, Swagata R. Banerjee, Robert A. Sainati
  • Patent number: 7982616
    Abstract: This disclosure describes a radio frequency identification (RFID) tag that includes a three-dimensional (3D) loop antenna. The 3D loop antenna includes a first conductive portion having a length and width that substantially exceed a thickness. The length and width of the first conductive portion substantially lie in a first plane. The 3D loop antenna includes a second conductive portion having a length and width that substantially exceed a thickness. The length and width of the second conductive portion substantially lie in a second plane that is substantially parallel to the first plane. An RFID circuit electrically connected to the loop antenna excites a current through the first and second conductive portions in a current loop that lies in a third plane that is not substantially parallel to the first and second planes. In some instances the third plane may be substantially perpendicular to the first and second planes.
    Type: Grant
    Filed: June 20, 2008
    Date of Patent: July 19, 2011
    Assignee: 3M Innovative Properties Company
    Inventors: Swagata R. Banerjee, Robert A. Sainati, William C. Egbert, David K. Misemer
  • Patent number: 7938334
    Abstract: The present disclosure relates to multiple embodiments of a signage having radio-frequency responsive features, methods of making and using the signage, and the performance characteristics of the signage. These embodiments include a cutout, aperture, or opening in an electrically conductive element into which or adjacent to which is placed an RFID tag or chip.
    Type: Grant
    Filed: April 18, 2008
    Date of Patent: May 10, 2011
    Assignee: 3M Innovative Properties Copmpany
    Inventors: Ronald D. Jesme, Robert A. Sainati, Swagata R. Banerjee, Paul J. Northey, Nancy H. Phillips
  • Patent number: 7938335
    Abstract: The present disclosure relates to multiple embodiments of a signage having radio-frequency responsive features, methods of making and using the signage, and the performance characteristics of the signage. These embodiments include a cutout, aperture, or opening in an electrically conductive sign into which or adjacent to which is placed an RFID tag or chip.
    Type: Grant
    Filed: April 18, 2008
    Date of Patent: May 10, 2011
    Assignee: 3M Innovative Properties Company
    Inventors: Ronald D. Jesme, Robert A. Sainati, Swagata R. Banerjee
  • Patent number: 7922094
    Abstract: One exemplary electrically conductive, RFID-enabled signage includes (1) an electrically conductive article including an opening and (2) an assembled device that is coupled to the electrically conductive article to provide RFID functionality to the electrically conductive article. One exemplary kit includes (1) an RFID IC arrangement including conductive leads adjacent to an integrated circuit; (2) an insert attached to the RFID IC arrangement; and (3) an attachment device capable of attaching the RFID IC arrangement-insert combination to an electrically conductive signage such that the RFID IC arrangement is positioned to span at least a portion of an opening in the signage and to electrically couple the integrated circuit to the electrically conductive signage. One exemplary method involves providing an assembled device including and RFID IC arrangement and an insert and coupling the assembled device with an electrically conductive signage.
    Type: Grant
    Filed: January 9, 2009
    Date of Patent: April 12, 2011
    Assignee: 3M Innovative Properties Company
    Inventors: Swagata R. Banerjee, Jacob D. Chatterton, Justin M. Johnson, Michael C. Molinet, Robert A. Sainati
  • Patent number: 7847697
    Abstract: This disclosure describes a radio frequency identification (RFID) tag that includes a three-dimensional (3D) loop antenna. The 3D loop antenna includes a first conductive portion having a length and width that substantially exceed a thickness. The length and width of the first conductive portion substantially lie in a first plane. The 3D loop antenna includes a second conductive portion having a length and width that substantially exceed a thickness. The length and width of the second conductive portion substantially lie in a second plane that is substantially parallel to the first plane. An RFID circuit electrically connected to the loop antenna excites a current through the first and second conductive portions in a current loop that lies in a third plane that is not substantially parallel to the first and second planes. In some instances the third plane may be substantially perpendicular to the first and second planes.
    Type: Grant
    Filed: June 20, 2008
    Date of Patent: December 7, 2010
    Assignee: 3M Innovative Properties Company
    Inventors: Swagata R. Banerjee, Robert A. Sainati, William C. Egbert, David K. Misemer
  • Publication number: 20100176971
    Abstract: One exemplary electrically conductive, RFID-enabled signage includes (1) an electrically conductive article including an opening and (2) an assembled device that is coupled to the electrically conductive article to provide RFID functionality to the electrically conductive article. One exemplary kit includes (1) an RFID IC arrangement including conductive leads adjacent to an integrated circuit; (2) an insert attached to the RFID IC arrangement; and (3) an attachment device capable of attaching the RFID IC arrangement-insert combination to an electrically conductive signage such that the RFID IC arrangement is positioned to span at least a portion of an opening in the signage and to electrically couple the integrated circuit to the electrically conductive signage. One exemplary method involves providing an assembled device including and RFID IC arrangement and an insert and coupling the assembled device with an electrically conductive signage.
    Type: Application
    Filed: January 9, 2009
    Publication date: July 15, 2010
    Inventors: Swagata R. Banerjee, Jacob D. Chatterton, Justin M. Johnson, Michael C. Molinet, Robert A. Sainati
  • Publication number: 20100123553
    Abstract: This disclosure describes RFID tags designed to provide improved impedance matching capabilities. An RFID tag may include a radiating component and a tuning component located on different layers of the RFID tag. The radiating component and tuning component are located proximate to one another to provide a proximate coupling (e.g., an inductive and/or capacitive coupling). In one embodiment, at least a portion of the radiating component of a first layer overlaps at least a portion of the tuning component of a second layer, resulting in a proximate coupling. The tuning component may be used for tuning the antenna, e.g., matching an impedance of the radiating element and an IC chip electrically connected to the tuning component. Because the radiating element does not have to be designed to match impedances, the radiating element may be designed to provide better gain, polarization purity, larger radar cross section or other antenna parameters.
    Type: Application
    Filed: November 18, 2009
    Publication date: May 20, 2010
    Inventors: Swagata R. Banerjee, Robert A. Sainati, Ronald D. Jesme
  • Publication number: 20100051692
    Abstract: A system includes a plurality of carriers for storing articles sensitive to electrostatic discharge (ESD), wherein each of the plurality of carriers includes a device having a sensor to sense one or more environmental parameters. At least one of the environmental parameters comprises an ESD parameter. The system also includes a plurality of radio frequency (RF) receiving devices and a coordinator unit to which the RF receiving devices communicate according to a wireless networking standard. The RF receiving devices are configured to obtain data associated with the sensed environmental parameters from the devices of the plurality of carriers via wireless communications according to the wireless networking standard. The plurality of RF receiving devices route the data obtained from the devices of the plurality of carriers to the coordinator unit.
    Type: Application
    Filed: September 4, 2008
    Publication date: March 4, 2010
    Inventors: Orlin B. Knudson, Justin M. Johnson, Travis W. Rasmussen, Subhalakshmi M. Ananthanarayanan, Robert A. Sainati, Brock A. Hable, Vladimir Kraz
  • Publication number: 20090321529
    Abstract: The present disclosure relates to multiple embodiments of a signage having radio-frequency responsive features, methods of making and using the signage, and the performance characteristics of the signage. These embodiments include a cutout, aperture, or opening in an electrically conductive element into which or adjacent to which is placed an RFID tag or chip.
    Type: Application
    Filed: April 18, 2008
    Publication date: December 31, 2009
    Inventors: Ronald D. Jesme, Robert A. Sainati, Swagata R. Banerjee, Paul J. Northey, Nancy H. Phillips