Patents by Inventor Morris P. Kesler

Morris P. Kesler 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: 8901778
    Abstract: A medical device-powering wireless receiver for use with a first electromagnetic resonator coupled to a power supply. The wireless receiver including a load is configured to power the medical device using electrical power, and a second electromagnetic resonator adapted to be housed within the medical device and configured to be coupled to the load, wherein the second electromagnetic resonator is configured to be wirelessly coupled to the first electromagnetic resonator to provide resonant, non-radiative wireless power to the second electromagnetic resonator from the first electromagnetic resonator, the area circumscribed by the inductive element of at least one of the electromagnetic resonators can be varied to improve performance.
    Type: Grant
    Filed: October 21, 2011
    Date of Patent: December 2, 2014
    Assignee: WiTricity Corporation
    Inventors: Morris P. Kesler, Katherine L. Hall, Konrad Kulikowski, Aristeidis Karalis, Andre B. Kurs, Marin Soljacic, Andrew J. Campanella, Volkan Efe
  • Publication number: 20140327320
    Abstract: A wireless energy transfer system includes wirelessly powered footwear. Device resonators in footwear may capture energy from source resonators. Captured energy may be used to generate thermal energy in the footwear. Wireless energy may be generated by wireless warming installations. Installations may be located in public locations and may activate when a user is near the installation. In some cases, the warming installations may include interactive displays and may require user input to activate energy transfer.
    Type: Application
    Filed: May 1, 2014
    Publication date: November 6, 2014
    Inventors: Jeffrey Muhs, Aaron Gilchrist, Kylee D. Sealy, Andre B. Kurs, Alexander P. McCauley, Morris P. Kesler, Katherine L. Hall, Gozde Guckaya
  • Patent number: 8875086
    Abstract: A method includes defining and storing one or more attributes of a source resonator and a device resonator forming a system, defining and storing the interaction between the source resonator and the device resonator, modeling the electromagnetic performance of the system to derive one or more modeled values and utilizing the derived one or more modeled values to design an impedance matching network.
    Type: Grant
    Filed: December 31, 2013
    Date of Patent: October 28, 2014
    Assignee: WiTricity Corporation
    Inventors: Simon Verghese, Volkan Efe, Morris P. Kesler, Andre B. Kurs, Aristeidis Karalis, Alexander Patrick McCauley, Maria Empar Rollano Hijarrubia
  • Publication number: 20140312707
    Abstract: Described herein are improved configurations for a resonator enclosure for wireless high power transfer that includes a support plate, a sheet of good conductor positioned on one side of the support plate, a separator piece for maintaining a separation distance between the resonator and the sheet of good conductor, and a cover of a non-lossy material covering the resonator, the separator, the sheet of good conductor and attached to the support plate, wherein the size of the sheet of good conductor is larger than the size of the resonator.
    Type: Application
    Filed: February 27, 2014
    Publication date: October 23, 2014
    Inventors: Ron Fiorello, Morris P. Kesler, Andre B. Kurs, Konrad J. Kulikowski, Steven J. Ganem
  • Patent number: 8847548
    Abstract: Wireless energy transfer methods and designs for implantable electronics and devices include, in at least one aspect, a source resonator external to a patient, a device resonator coupled to an implantable device and being internal to the patient, a temperature sensor, and a tunable component coupled to the device resonator, wherein the tunable component is adjusted to detune a resonant frequency in response to measurement from the temperature sensor, and wherein a strength of the oscillating magnetic fields generated by the source resonator is adjusted to increase power output to maintain a level of power captured by the device resonator, thereby compensating for reduced efficiency resulting from detuning of the device resonator via the tunable component.
    Type: Grant
    Filed: August 7, 2013
    Date of Patent: September 30, 2014
    Assignee: WiTricity Corporation
    Inventors: Morris P. Kesler, Katherine L. Hall, Andre B. Kurs, Aristeidis Karalis, Marin Soljacic, Andrew J. Campanella, David A. Schatz
  • Publication number: 20140265617
    Abstract: A wireless power system includes: i) a power source; ii) a source resonator configured to receive power from the power source; iii) a receiver resonator configured to provide power to a load; and iv) at least one repeater resonator configured to couple power wirelessly from the source resonator to the receiver resonator. The power source is configured to provide power to the source resonator at a first frequency f1 different from at least one of the resonant frequencies corresponding to the resonators.
    Type: Application
    Filed: March 6, 2014
    Publication date: September 18, 2014
    Inventors: Arunanshu Mohan Roy, Volkan Efe, Aristeidis Karalis, Andre B. Kurs, Alexander Patrick McCauley, Morris P. Kesler, Katherine L. Hall
  • Publication number: 20140265555
    Abstract: Described herein are improved capabilities for a system and method for wireless energy distribution across a vehicle compartment of defined area, comprising a source resonator coupled to an energy source of a vehicle and generating an oscillating magnetic field with a frequency, and at least one repeater resonator positioned along the vehicle compartment, the at least one repeater resonator positioned in proximity to the source resonator, the at least one repeater resonator having a resonant frequency and comprising a high-conductivity material adapted and located between the at least one repeater resonator and a vehicle surface to direct the oscillating magnetic field away from the vehicle surface, wherein the at least one repeater resonator provides an effective wireless energy transfer area within the defined area.
    Type: Application
    Filed: March 15, 2013
    Publication date: September 18, 2014
    Applicant: WITRICITY CORPORATION
    Inventors: Katherine L. Hall, Konrad Kulikowski, Morris P. Kesler, Andre B. Kurs, Steve J. Ganem, David A. Schatz, Eric R. Giler
  • Publication number: 20140175892
    Abstract: Described herein are improved configurations for a wireless power transfer and mechanical enclosures. The described structure holds and secures the components of a resonator while providing adequate structural integrity, thermal control, and protection against environmental elements. The coil enclosure structure comprises a flat, planar material with a recess for an electrical conductor wrapped around blocks of magnetic material as well as an additional planar material to act as a cover for the recess.
    Type: Application
    Filed: September 19, 2013
    Publication date: June 26, 2014
    Applicant: WITRICITY CORPORATION
    Inventors: Jude R. Jonas, Matthew J. MacDonald, Morris P. Kesler, Andre B. Kurs, Jonathan Sirota, Konrad J. Kulikowski, Hamik Amirkhani
  • Publication number: 20140175898
    Abstract: Described herein are improved configurations for providing a stranded printed circuit board trace comprising, a plurality of conductor layers, a plurality of individual conductor traces on each of the said conductor layers, and a plurality of vias for connecting individual conductor traces on different said conductor layers, the vias located on the outside edges of the stranded trace. The individual conductor traces of each layer may be routed from vias on one side of the stranded printed circuit board trace to vias on the other side in a substantially diagonal direction with respect to the axis of the stranded printed circuit board trace. In embodiments, the stranded printed circuit board trace configuration may be applied to a wireless power transfer system.
    Type: Application
    Filed: February 26, 2014
    Publication date: June 26, 2014
    Inventors: Andre B. Kurs, Aristeidis Karalis, Morris P. Kesler, Andrew J. Campanella, Katherine L. Hall, Konrad J. Kulikowski, Marin Soljacic
  • Publication number: 20140181782
    Abstract: A method includes defining and storing one or more attributes of a source resonator and a device resonator forming a system, defining and storing the interaction between the source resonator and the device resonator, modeling the electromagnetic performance of the system to derive one or more modeled values and utilizing the derived one or more modeled values to design an impedance matching network.
    Type: Application
    Filed: December 31, 2013
    Publication date: June 26, 2014
    Applicant: WiTricity Corporation
    Inventors: Simon Verghese, Volkan Efe, Morris P. Kesler, Andre B. Kurs, Aristeidis Karalis, Alexander Patrick McCauley, Maria Empar Rollano Hijarrubia
  • Publication number: 20140159652
    Abstract: Described herein are improved configurations for a wireless power converter that includes at least one receiving magnetic resonator configured to capture electrical energy received wirelessly through a first oscillating magnetic field characterized by a first plurality of parameters, and at least one transferring magnetic resonator configured to generate a second oscillating magnetic field characterized by a second plurality of parameters different from the first plurality of parameters, wherein the electrical energy from the at least one receiving magnetic resonator is used to energize the at least one transferring magnetic resonator to generate the second oscillating magnetic field.
    Type: Application
    Filed: July 19, 2013
    Publication date: June 12, 2014
    Inventors: Katherine L. Hall, Morris P. Kesler, Konrad J. Kulikowski, Andrew J. Campanella
  • Publication number: 20140142876
    Abstract: A device for testing a wireless power network is disclosed. The network includes at least one power source, at least one load, and multiple resonators configured to couple wireless power from the at least one power source to the at least one load.
    Type: Application
    Filed: November 18, 2013
    Publication date: May 22, 2014
    Inventors: Michael Sasha John, Katherine L. Hall, Konrad J. Kulikowski, Morris P. Kesler, Andre B. Kurs, Arunanshu M. Roy, Gozde Guckaya
  • Publication number: 20140139037
    Abstract: A wireless power network including multiple electromagnetic resonators each capable of storing electromagnetic energy at a resonant frequency is disclosed. The multiple resonators include: a first resonator configured to be coupled to a power source to receive power from the power source; a second resonator configured to be coupled to a load to provide power to the load, and one or more intermediate resonators. The first resonator is configured to provide power from the power source to the second resonator through the one or more intermediate resonators. At least a first pair of resonators among the multiple resonators is configured to exchange power wirelessly, and at least a second pair of the resonators among the multiple resonators is configured to exchange power through a wired electrically conductive connection.
    Type: Application
    Filed: November 18, 2013
    Publication date: May 22, 2014
    Inventors: Michael Sasha John, Katherine L. Hall, Konrad J. Kulikowski, Morris P. Kesler, Andre B. Kurs, Arunanshu M. Roy, Gozde Guckaya
  • Patent number: 8729737
    Abstract: A bag for wireless energy transfer comprising a compartment for storing an electronic device enabled for wireless energy transfer, and at least one magnetic resonator positioned for wireless energy transfer to the electronic device, wherein a the at least one magnetic resonator optionally operates in one of three modes: (1) as a repeater resonator to extend the energy transfer to the electronic device from an external wireless energy source, (2) as a source resonator transferring energy from a battery in the bag to the electronic device, and (3) as an energy capture resonator receiving wireless energy from an external source to recharge a battery in the bag.
    Type: Grant
    Filed: February 8, 2012
    Date of Patent: May 20, 2014
    Assignee: WiTricity Corporation
    Inventors: David A. Schatz, Katherine L. Hall, Morris P. Kesler, Andre B. Kurs, Konrad J. Kulikowski
  • Patent number: 8723366
    Abstract: Described herein are improved configurations for a resonator enclosure for wireless high power transfer that includes a support plate, a sheet of good conductor positioned on one side of the support plate, a separator piece for maintaining a separation distance between the resonator and the sheet of good conductor, and a cover of a non-lossy material covering the resonator, the separator, the sheet of good conductor and attached to the support plate, wherein the size of the sheet of good conductor is larger than the size of the resonator.
    Type: Grant
    Filed: March 10, 2010
    Date of Patent: May 13, 2014
    Assignee: WiTricity Corporation
    Inventors: Ron Fiorello, Morris P. Kesler, Andre B. Kurs, Konrad J. Kulikowski, Steven J. Ganem
  • Publication number: 20140111154
    Abstract: The disclosure features apparatus, methods, and systems for wireless power transfer that include a power source featuring at least one resonator, a power receiver featuring at least one resonator, a first detector featuring one or more loops of conductive material and configured to generate an electrical signal based on a magnetic field between the power source and the power receiver, a second detector featuring conductive material, and control electronics coupled to the first and second detectors, where during operation, the control electronics are configured to measure the electrical signal of the first detector and compare the measured electrical signal of the first detector to baseline electrical information for the first detector to determine information about whether debris is positioned between the power source and the power receiver.
    Type: Application
    Filed: October 21, 2013
    Publication date: April 24, 2014
    Inventors: Arunanshu Mohan Roy, Noam Katz, Andre B. Kurs, Christopher Buenrostro, Simon Verghese, Morris P. Kesler, Katherine L. Hall, Herbert Toby Lou
  • Publication number: 20140111019
    Abstract: The disclosure features apparatus, methods, and systems for wireless power transfer that include a power source featuring at least one resonator, a power receiver featuring at least one resonator, a first detector featuring one or more loops of conductive material and configured to generate an electrical signal based on a magnetic field between the power source and the power receiver, a second detector featuring conductive material, and control electronics coupled to the first and second detectors, where during operation, the control electronics are configured to measure the electrical signal of the first detector and compare the measured electrical signal of the first detector to baseline electrical information for the first detector to determine information about whether debris is positioned between the power source and the power receiver.
    Type: Application
    Filed: October 21, 2013
    Publication date: April 24, 2014
    Inventors: Arunanshu Mohan Roy, Noam Katz, Andre B. Kurs, Christopher Buenrostro, Simon Verghese, Morris P. Kesler, Katherine L. Hall, Herbert Toby Lou
  • Publication number: 20140103738
    Abstract: Described herein are improved configurations for a wireless power transfer. A power source for driving a resonator includes a switching amplifier. The duty cycle of the switching amplifier may be adjusted as well as optionally inductors and/or capacitors of the circuit to improve the efficiency of power transfer from the power source to the resonators when the parameters of the resonant load change.
    Type: Application
    Filed: December 24, 2013
    Publication date: April 17, 2014
    Inventors: Andrew J. Campanella, Herbert T. Lou, Morris P. Kesler, Katherine L. Hall, Ron Fiorello, Aristeidis Karalis
  • Patent number: 8692410
    Abstract: Described herein are improved capabilities for a source resonator having a Q-factor Q1>100 and a characteristic size x1 coupled to an energy source, and a second resonator having a Q-factor Q2>100 and a characteristic size x2 coupled to an energy drain located a distance D from the source resonator, where the source resonator and the second resonator are coupled to exchange energy wirelessly among the source resonator and the second resonator.
    Type: Grant
    Filed: December 31, 2009
    Date of Patent: April 8, 2014
    Assignee: WiTricity Corporation
    Inventors: David A. Schatz, Aristeidis Karalis, Katherine L. Hall, Morris P. Kesler, Marin Soljacic, Eric R. Giler, Andre B. Kurs, Konrad J. Kulikowski
  • Publication number: 20140091636
    Abstract: Methods and systems for wireless transmission of power to a battery-operated device include a power receiving apparatus featuring at least one receiving resonator and a housing dimensioned to engage with a battery compartment of a battery-operated device, and a power transmitting apparatus including: a first pair of spaced source resonators, where each source resonator in the first pair features a loop of conducting material surrounding a common first axis; a second pair of spaced source resonators, where each source resonator in the second pair features a loop of conducting material surrounding a common second axis different from the first axis; and a controller coupled to the first and second pairs of source resonators and configured to provide non-radiative wireless power transfer from the power transmitting apparatus to the power receiving apparatus by alternately activating the first and second pairs of source resonators.
    Type: Application
    Filed: October 2, 2013
    Publication date: April 3, 2014
    Inventors: Robert B. Ofstein, Volkan Efe, Andre B. Kurs, Alexander P. McCauley, Arunanshu M. Roy, Empar Rollano, Abdel Sam Rhoufiry, Benjamin K Sampson, Morris P. Kesler, Matthew J. MacDonald, Eric R. Giler, Katherine L. Hall, Simone Agha