Patents by Inventor Benjamin H. Cohen

Benjamin H. Cohen 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: 20250095912
    Abstract: A thin resonant induction wireless power transmission transfer coil assembly designed for low loss and ease of manufacturing includes one or more printed circuit boards having a first conductor pattern wound in a spiral on a first side and a second conductor pattern wound in a spiral on a second side thereof, where the second conductor pattern is aligned with the first conductor pattern whereby the second conductor pattern reinforces magnetic flux generated by the first conductor pattern. At least one electrical connection electrically connects the respective conductors of the first and second conductor patterns and the first and second conductor patterns are placed relative to one another so as to provide uniform flux transmission in a same direction. One or more of such printed circuit boards form a wireless power transmission coil assembly with a conductive winding layer, a ferrite flux diversion layer, conformal spacing layers, an eddy current shield layer and an assembly enclosure.
    Type: Application
    Filed: October 27, 2024
    Publication date: March 20, 2025
    Inventors: Bruce Richard Long, Andrew W. Daga, John M. Wolgemuth, Peter C. Schrafel, Benjamin H. Cohen, Moses M. Kreener, Francis J. McMahon
  • Patent number: 12174269
    Abstract: A current sensing method measures a fractional current through a coil having a plurality of coil windings by using a current sensing resistor to measure a current through a subset of the plurality of coil windings and using a voltage sensor to measure a voltage drop across the current sensing resistor. The measured current and voltage values are provided to a processor to determine the fractional current and phase of the coil. For example, the fractional current and phase of the coil may be determined by calculating a total current of the coil as I=n(V/Rx), where n is the number of coil windings of the coil, V is the measured voltage, and Rx is the impedance of the current sensing resistor. The coil may be a secondary winding used in a wireless power transfer system.
    Type: Grant
    Filed: December 13, 2022
    Date of Patent: December 24, 2024
    Assignee: InductEV, Inc.
    Inventors: John M. Wolgemuth, Benjamin H. Cohen, Daniel S. Hackman
  • Patent number: 12159745
    Abstract: A thin resonant induction wireless power transmission transfer coil assembly designed for low loss and ease of manufacturing includes one or more printed circuit boards having a first conductor pattern wound in a spiral on a first side and a second conductor pattern wound in a spiral on a second side thereof, where the second conductor pattern is aligned with the first conductor pattern whereby the second conductor pattern reinforces magnetic flux generated by the first conductor pattern. The first and second conductor patterns are placed relative to one another so as to provide flux transmission in a same direction. One or more of such printed circuit boards form a wireless power transmission coil assembly with a conductive winding layer, a ferrite flux diversion layer, conformal spacing layers, an eddy current shield layer and an assembly enclosure.
    Type: Grant
    Filed: May 30, 2018
    Date of Patent: December 3, 2024
    Assignee: InductEV, Inc.
    Inventors: Bruce Richard Long, Andrew W. Daga, John M. Wolgemuth, Peter C. Schrafel, Benjamin H. Cohen, Moses M. Keener, Francis J. McMahon
  • Publication number: 20230105687
    Abstract: A current sensing method measures a fractional current through a coil having a plurality of coil windings by using a current sensing resistor to measure a current through a subset of the plurality of coil windings and using a voltage sensor to measure a voltage drop across the current sensing resistor. The measured current and voltage values are provided to a processor to determine the fractional current and phase of the coil. For example, the fractional current and phase of the coil may be determined by calculating a total current of the coil as I=n(V/Rx), where n is the number of coil windings of the coil, V is the measured voltage, and Rx is the impedance of the current sensing resistor. The coil may be a secondary winding used in a wireless power transfer system.
    Type: Application
    Filed: December 13, 2022
    Publication date: April 6, 2023
    Inventors: John M. Wolgemuth, Benjamin H. Cohen, Daniel S. Hackman
  • Patent number: 11585836
    Abstract: A current sensing method measures a fractional current through a coil having a plurality of coil windings by using a current sensing resistor to measure a current through a subset of the plurality of coil windings and using a voltage sensor to measure a voltage drop across the current sensing resistor. The measured current and voltage values are provided to a processor to determine the fractional current and phase of the coil. For example, the fractional current and phase of the coil may be determined by calculating a total current of the coil as I=n(V/Rx), where n is the number of coil windings of the coil, V is the measured voltage, and Rx is the impedance of the current sensing resistor. The coil may be a secondary winding used in a wireless power transfer system.
    Type: Grant
    Filed: March 20, 2020
    Date of Patent: February 21, 2023
    Assignee: InductEV, Inc.
    Inventors: John M. Wolgemuth, Benjamin H. Cohen, Daniel S. Hackman
  • Publication number: 20210293855
    Abstract: A current sensing method measures a fractional current through a coil having a plurality of coil windings by using a current sensing resistor to measure a current through a subset of the plurality of coil windings and using a voltage sensor to measure a voltage drop across the current sensing resistor. The measured current and voltage values are provided to a processor to determine the fractional current and phase of the coil. For example, the fractional current and phase of the coil may be determined by calculating a total current of the coil as I=n(V/Rx), where n is the number of coil windings of the coil, V is the measured voltage, and Rx is the impedance of the current sensing resistor. The coil may be a secondary winding used in a wireless power transfer system.
    Type: Application
    Filed: March 20, 2020
    Publication date: September 23, 2021
    Inventors: John M. Wolgemuth, Benjamin H. Cohen, Daniel S. Hackman
  • Publication number: 20200168393
    Abstract: A thin resonant induction wireless power transmission transfer coil assembly designed for low loss and ease of manufacturing includes one or more printed circuit boards having a first conductor pattern wound in a spiral on a first side and a second conductor pattern wound in a spiral on a second side thereof, where the second conductor pattern is aligned with the first conductor pattern whereby the second conductor pattern reinforces magnetic flux generated by the first conductor pattern. The first and second conductor patterns are placed relative to one another so as to provide flux transmission in a same direction. One or more of such printed circuit boards form a wireless power transmission coil assembly with a conductive winding layer, a ferrite flux diversion layer, contormal spacing layers, an eddy current shield layer and an assembly enclosure.
    Type: Application
    Filed: May 30, 2018
    Publication date: May 28, 2020
    Inventors: Bruce Richard Long, Andrew W. Daga, John M. Wolgemuth, Peter C. Schrafel, Benjamin H. Cohen, Moses M. Keener, Francis J. McMahon
  • Patent number: 8548488
    Abstract: In an overlay, network-based Wireless Location System, Location Measurement Units (LMUs) are used to collect radio signaling both in the forward and reverse channels for use in TDOA and/or AoA positioning methods. Information broadcast from the radio network and by global satellite navigation system constellations can be received by the LMUs and used to reduce the difficulty of initial system configuration and reconfiguration due to radio network changes.
    Type: Grant
    Filed: November 30, 2007
    Date of Patent: October 1, 2013
    Assignee: TruePosition, Inc.
    Inventors: Robert J. Anderson, Rashidus S. Mia, Robert Binion, II, Benjamin H. Cohen
  • Patent number: 8436768
    Abstract: A Wide Area Sensor Network is disclosed that utilizes wideband software defined radios (SDRs) to provide a capability to monitor the airwaves over a wide frequency range, detect when critical frequencies are being jammed or otherwise interfered with, and locate the source of the interference so that the interference can be eliminated. In addition, a diversity receiver is disclosed. The diversity receiver generates position, time and frequency references for use in locating and synchronizing sensor platforms of a WLS. In an illustrative embodiment, the diversity receiver comprises a first receiver subsystem comprising a terrestrial broadcast receiver, and a common processor platform (CPP) coupled via first link means to the first receiver subsystem. The first receiver subsystem provides a stable time reference and position information to the CPP via the first link means.
    Type: Grant
    Filed: July 24, 2009
    Date of Patent: May 7, 2013
    Assignee: TruePosition, Inc.
    Inventors: Jeffrey F. Bull, Benjamin H. Cohen, Adam W. Norgaard
  • Publication number: 20120256789
    Abstract: A Wide Area Sensor Network is disclosed that utilizes wideband software defined radios (SDRs) to provide a capability to monitor the airwaves over a wide frequency range, detect when critical frequencies are being jammed or otherwise interfered with, and locate the source of the interference so that the interference can be eliminated. In addition, a diversity receiver is disclosed. The diversity receiver generates position, time and frequency references for use in locating and synchronizing sensor platforms of a WLS. In an illustrative embodiment, the diversity receiver comprises a first receiver subsystem comprising a terrestrial broadcast receiver, and a common processor platform (CPP) coupled via first link means to the first receiver subsystem. The first receiver subsystem provides a stable time reference and position information to the CPP via the first link means.
    Type: Application
    Filed: July 24, 2009
    Publication date: October 11, 2012
    Inventors: Jeffrey F. Bull, Benjamin H. Cohen, Adam W. Norgaard
  • Publication number: 20090143018
    Abstract: In an overlay, network-based Wireless Location System, Location Measurement Units (LMUs) are used to collect radio signaling both in the forward and reverse channels for use in TDOA and/or AoA positioning methods. Information broadcast from the radio network and by global satellite navigation system constellations can be received by the LMUs and used to reduce the difficulty of initial system configuration and reconfiguration due to radio network changes.
    Type: Application
    Filed: November 30, 2007
    Publication date: June 4, 2009
    Applicant: TruePosition, Inc.
    Inventors: Robert J. Anderson, Rashidus S. Mia, Robert Binion, II, Benjamin H. Cohen