Patents by Inventor Wilson Greatbatch

Wilson Greatbatch 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: 8059779
    Abstract: An improved 3He nuclear reactor with provision for direct electric conversion of a relativistic proton stream into useable electric power at a voltage level compatible with the national power grid (one million V DC). Various embodiments include multiple collector cages for extracting relativistic protons of various energy levels, diverter wires for deflecting high-energy proton streams to either side of lower energy cages to avoid unwanted impact. Other embodiments include arrangements for dividing multi-megavolt voltages down to a useable one megavolt level compatible with the national power grid. Further embodiments comprise guiding the proton stream by the cusps of magnetron cavities to permit conversion of the relativistic proton energies into microwave power. A proposal is also made for harvesting 3He from the Moon to supply earth-bound and space-bound reactors.
    Type: Grant
    Filed: November 27, 2004
    Date of Patent: November 15, 2011
    Inventor: Wilson Greatbatch
  • Publication number: 20070217163
    Abstract: An implantable device includes a device case comprising amorphous non-ferrous metal alloy material and having lower electrical conductivity than crystalline atomic structures comprising the same alloy constituents. The generation of eddy currents is thereby reduced and inductive charging and/or telemetry system operation can take place at higher frequencies with a resulting improvement in energy and data transfer efficiency.
    Type: Application
    Filed: March 15, 2006
    Publication date: September 20, 2007
    Inventors: Wilson Greatbatch, Jeffrey Deal
  • Patent number: 7136701
    Abstract: A hybrid battery power source for implantable medical use provides a generally constant low internal resistance during discharge and avoids voltage delays of the type that develop as a result of run down-induced resistance increase in Li/SVO cells. The hybrid battery power source utilizes two batteries or cells, one being a primary cell of relatively high energy density and the other being a secondary cell of relatively low internal resistance that is rechargeable. The primary and secondary cells are connected in a parallel arrangement via a voltage boost/charge control circuit that is powered by the primary cell and adapted to charge the secondary cell while limiting charge/discharge excursions thereof in a manner that optimizes its output for high energy medical device use. The energy storage capacitors of the medical device in which the hybrid battery power source is situated are driven by the secondary cell. The primary cell is used to as an energy source for recharging the secondary cell.
    Type: Grant
    Filed: December 3, 2003
    Date of Patent: November 14, 2006
    Assignee: GentCorp Ltd.
    Inventors: Wilson Greatbatch, Jeffrey Deal
  • Patent number: 7079893
    Abstract: A hybrid battery power source for implantable medical use provides a generally constant low internal resistance during discharge and avoids voltage delays of the type that develop as a result of run down-induced resistance increase in Li/SVO cells. The hybrid battery power source utilizes two batteries or cells, one being a primary cell of relatively high energy density and the other being a secondary cell of relatively low internal resistance that is rechargeable. The primary and secondary cells are connected in a parallel arrangement via a voltage boost/charge control circuit that is powered by the primary cell and adapted to charge the secondary cell while limiting charge/discharge excursions thereof in a manner that optimizes its output for high energy medical device use. The energy storage capacitors of the medical device in which the hybrid battery power source is situated are driven by the secondary cell. The primary cell is used to as an energy source for recharging the secondary cell.
    Type: Grant
    Filed: January 24, 2004
    Date of Patent: July 18, 2006
    Assignee: GentCorp Ltd.
    Inventors: Wilson Greatbatch, Jeffrey Deal
  • Publication number: 20060129192
    Abstract: A high energy battery power source suitable for use in an implantable medical device includes an input, an output, and two or more battery modules each comprising two or more battery cells. The battery cells are of relatively low voltage and permanently configured within each battery module in an electrically parallel arrangement in order to provide a desired current discharge level needed to achieve high-energy output. A switching system configures the battery modules between a first configuration wherein the battery modules are electrically connected in parallel to each other and to the input in order to receive charging energy at the relatively low voltage, and a second configuration wherein the battery modules are electrically connected in series to each other in order to provide to the output a relatively high voltage corresponding to the number of battery modules at a current level corresponding to the number of battery cells in a single battery module.
    Type: Application
    Filed: November 15, 2005
    Publication date: June 15, 2006
    Inventors: Wilson Greatbatch, Jeffrey Deal, Glenn Thomas
  • Publication number: 20060122655
    Abstract: A high-energy power source with low internal self discharge for implantable use includes a multiplicity of rechargeable energy storage battery cells, a primary power source adapted to charge the energy storage cells, a switching system adapted to switch the energy storage cells between a parallel connection configuration for charging and a series connection configuration for discharging, and circuitry adapted to initiate charging of the energy storage cells only in response to an input signifying a need to discharge energy and to refrain from charging the energy storage cells until the input is received. In this way, the energy storage cells are maintained in a low charge state until discharge energy is required, the low charge state being at a level that promotes low internal self-discharge of the energy storage cells.
    Type: Application
    Filed: December 2, 2004
    Publication date: June 8, 2006
    Inventor: Wilson Greatbatch
  • Publication number: 20060111752
    Abstract: A high energy battery power source suitable for use in an implantable medical device includes an input, an output, and two or more battery modules each comprising two or more battery cells. The battery cells are of relatively low voltage and permanently configured within each battery module in an electrically parallel arrangement in order to provide a desired current discharge level needed to achieve high-energy output. A switching system configures the battery modules between a first configuration wherein the battery modules are electrically connected in parallel to each other and to the input in order to receive charging energy at the relatively low voltage, and a second configuration wherein the battery modules are electrically connected in series to each other in order to provide to the output a relatively high voltage corresponding to the number of battery modules at a current level corresponding to the number of battery cells in a single battery module.
    Type: Application
    Filed: November 22, 2004
    Publication date: May 25, 2006
    Inventors: Wilson Greatbatch, Jeffrey Deal
  • Patent number: 7047074
    Abstract: An electromagnetic immune tissue invasive system includes a primary device housing. The primary device housing having a control circuit therein. A shielding is formed around the primary device housing to shield the primary device housing and any circuits therein from electromagnetic interference. A lead system transmits and receives signals between the primary device housing. The lead system is either a fiber optic system or an electrically shielded electrical lead system.
    Type: Grant
    Filed: February 19, 2002
    Date of Patent: May 16, 2006
    Assignee: Biophan Technologies, Inc.
    Inventors: Patrick R. Connelly, Michael L. Weiner, Stuart G. MacDonald, Thomas H. Foster, Wilson Greatbatch, Victor Miller
  • Patent number: 7020519
    Abstract: A hybrid battery power source for implantable medical use provides a generally constant low internal resistance during discharge and avoids voltage delays of the type that develop as a result of run down-induced resistance increase in Li/SVO cells. The hybrid battery power source utilizes two batteries or cells, one being a primary cell of relatively high energy density and the other being a secondary cell of relatively low internal resistance that is rechargeable. The primary and secondary cells are connected in a parallel arrangement via a voltage boost/charge control circuit that is powered by the primary cell and adapted to charge the secondary cell while limiting charge/discharge excursions thereof in a manner that optimizes its output for high energy medical device use. The energy storage capacitors of the medical device in which the hybrid battery power source is situated are driven by the secondary cell. The primary cell is used to as an energy source for recharging the secondary cell.
    Type: Grant
    Filed: April 4, 2003
    Date of Patent: March 28, 2006
    Assignee: GentCorp Ltd
    Inventors: Wilson Greatbatch, Jeffrey Deal
  • Patent number: 6988001
    Abstract: A hermetic component housing for use with a photonic catheter connected to a photonic pacemaker or other medical system designed for compatibility with Magnetic Resonance Imaging (MRI) procedures. The hermetic housing includes a housing body having a proximal end and a distal end. The body is formed with a hermetically sealed interior for carrying one or more electrical and/or optical components therein. The proximal end of the body is adapted to mount to a distal end of a photonic catheter carrying a fiber optic element or bundle. A hermetic terminal is provided to allow the fiber optic element or bundle to communicate with the body interior. The body can be adapted to mount (or function as) one or more electrodes designed for delivering or sensing electrical signals to body tissue, or it may be adapted to mount no electrodes. The component housing may be implemented by itself at the distal end of the photonic catheter, or it may be used in conjunction with other housings of like or different construction.
    Type: Grant
    Filed: October 30, 2002
    Date of Patent: January 17, 2006
    Assignee: Biophan Technologies, Inc.
    Inventors: Wilson Greatbatch, Michael L. Weiner
  • Publication number: 20050220243
    Abstract: An improved 3He nuclear reactor with provision for direct electric conversion of a relativistic proton stream into useable electric power at a voltage level compatible with the national power grid (one million V DC). Various embodiments include multiple collector cages for extracting relativistic protons of various energy levels, diverter wires for deflecting high-energy proton streams to either side of lower energy cages to avoid unwanted impact. Other embodiments include arrangements for dividing multi-megavolt voltages down to a useable one megavolt level compatible with the national power grid. Further embodiments comprise guiding the proton stream by the cusps of magnetron cavities to permit conversion of the relativistic proton energies into microwave power. A proposal is also made for harvesting 3He from the Moon to supply earth-bound and space-bound reactors.
    Type: Application
    Filed: November 27, 2004
    Publication date: October 6, 2005
    Inventor: Wilson Greatbatch
  • Patent number: 6909915
    Abstract: A hybrid battery power source for implantable medical use provides relatively stable resistance during discharge and avoids the voltage delays that develop as a result of variable resistance increase in Li/SVO cells. The hybrid battery power source utilizes two batteries or cells, one being a primary battery of relatively high energy density and the other being a rechargeable secondary battery of low relatively stable internal resistance. The primary and secondary batteries are connected in a parallel arrangement, preferably via an intermediate voltage boost circuit having an inductor and a pulse generating control circuit therein. The energy storage capacitors of the medical device in which the hybrid battery power source is situated are driven in whole or substantial part by the secondary battery. The primary battery is used to as an energy source for recharging the secondary battery.
    Type: Grant
    Filed: January 24, 2003
    Date of Patent: June 21, 2005
    Assignee: GentCorp Ltd.
    Inventors: Wilson Greatbatch, Jeffrey Deal
  • Publication number: 20040225333
    Abstract: A hybrid battery power source for implantable medical use provides a generally constant low internal resistance during discharge and avoids voltage delays of the type that develop as a result of run down-induced resistance increase in Li/SVO cells. The hybrid battery power source utilizes two batteries or cells, one being a primary cell of relatively high energy density and the other being a secondary cell of relatively low internal resistance that is rechargeable. The primary and secondary cells are connected in a parallel arrangement via a voltage boost/charge control circuit that is powered by the primary cell and adapted to charge the secondary cell while limiting charge/discharge excursions thereof in a manner that optimizes its output for high energy medical device use. The energy storage capacitors of the medical device in which the hybrid battery power source is situated are driven by the secondary cell. The primary cell is used to as an energy source for recharging the secondary cell.
    Type: Application
    Filed: January 24, 2004
    Publication date: November 11, 2004
    Inventors: Wilson Greatbatch, Jeffrey Deal
  • Patent number: 6795730
    Abstract: An implantable device used to monitor and maintain at least one physiologic function, which is capable of operating in the presence of damaging electromagnetic interference. The implantable device includes primary and secondary modules, each independently protected from EMI damage via at least one shielding and/or filtering, and a non-electrical communication device for communicating in at least one direction between the primary and the secondary modules. The primary module, in response to input from electrical sensing leads, activates the secondary module in a failsafe mode. In the failsafe mode, the secondary module carries out a physiologic function upon activation and in the presence of electromagnetic interference.
    Type: Grant
    Filed: April 20, 2001
    Date of Patent: September 21, 2004
    Assignee: Biophan Technologies, Inc.
    Inventors: Patrick R. Connelly, Michael Weiner, Wilson Greatbatch
  • Patent number: 6795736
    Abstract: An electromagnetic immune tissue invasive system includes a primary device housing. The primary device housing having a control circuit therein. A shielding is formed around the primary device housing to shield the primary device housing and any circuits therein from electromagnetic interference. A lead system transmits and receives signals between the primary device housing. The lead system is either a fiber optic system or an electrically shielded electrical lead system.
    Type: Grant
    Filed: February 19, 2002
    Date of Patent: September 21, 2004
    Assignee: Biophan Technologies, Inc.
    Inventors: Patrick R. Connelly, Wilson Greatbatch, Victor Miller
  • Patent number: 6778856
    Abstract: An electromagnetic immune tissue invasive system includes a primary device housing. The primary device housing having a control circuit therein. A shielding is formed around the primary device housing to shield the primary device housing and any circuits therein from electromagnetic interference. A lead system transmits and receives signals between the primary device housing. The lead system is either a fiber optic system or an electrically shielded electrical lead system.
    Type: Grant
    Filed: February 19, 2002
    Date of Patent: August 17, 2004
    Assignee: Biophan Technologies, Inc.
    Inventors: Patrick R. Connelly, Stuart G. MacDonald, Wilson Greatbatch, Victor Miller
  • Publication number: 20040158296
    Abstract: A hybrid battery power source for implantable medical use provides a generally constant low internal resistance during discharge and avoids voltage delays of the type that develop as a result of run down-induced resistance increase in Li/SVO cells. The hybrid battery power source utilizes two batteries or cells, one being a primary cell of relatively high energy density and the other being a secondary cell of relatively low internal resistance that is rechargeable. The primary and secondary cells are connected in a parallel arrangement via a voltage boost/charge control circuit that is powered by the primary cell and adapted to charge the secondary cell while limiting charge/discharge excursions thereof in a manner that optimizes its output for high energy medical device use. The energy storage capacitors of the medical device in which the hybrid battery power source is situated are driven by the secondary cell. The primary cell is used to as an energy source for recharging the secondary cell.
    Type: Application
    Filed: December 3, 2003
    Publication date: August 12, 2004
    Inventors: Wilson Greatbatch, Jeffrey Deal
  • Publication number: 20040147971
    Abstract: A hybrid battery power source for implantable medical use provides relatively stable resistance during discharge and avoids the voltage delays that develop as a result of variable resistance increase in Li/SVO cells. The hybrid battery power source utilizes two batteries or cells, one being a primary battery of relatively high energy density and the other being a rechargeable secondary battery of low relatively stable internal resistance. The primary and secondary batteries are connected in a parallel arrangement, preferably via an intermediate voltage boost circuit having an inductor and a pulse generating control circuit therein. The energy storage capacitors of the medical device in which the hybrid battery power source is situated are driven in whole or substantial part by the secondary battery. The primary battery is used to as an energy source for recharging the secondary battery.
    Type: Application
    Filed: January 24, 2003
    Publication date: July 29, 2004
    Inventors: Wilson Greatbatch, Jeffrey Deal
  • Publication number: 20040147972
    Abstract: A hybrid battery power source for implantable medical use provides a generally constant low internal resistance during discharge and avoids voltage delays of the type that develop as a result of run down-induced resistance increase in Li/SVO cells. The hybrid battery power source utilizes two batteries or cells, one being a primary cell of relatively high energy density and the other being a secondary cell of relatively low internal resistance that is rechargeable. The primary and secondary cells are connected in a parallel arrangement via a voltage boost/charge control circuit that is powered by the primary cell and adapted to charge the secondary cell while limiting charge/discharge excursions thereof in a manner that optimizes its output for high energy medical device use. The energy storage capacitors of the medical device in which the hybrid battery power source is situated are driven by the secondary cell. The primary cell is used to as an energy source for recharging the secondary cell.
    Type: Application
    Filed: April 4, 2003
    Publication date: July 29, 2004
    Inventors: Wilson Greatbatch, Jeffrey Deal
  • Patent number: 6711440
    Abstract: An optical sense signal generator for medical device's having a photonic catheter containing optical conductors conducting light energy in two directions between electronics at a catheter proximal end and electrical stimulation and sensing components at a catheter distal end. An optical unit receives light delivered from the catheter proximal end and transmits a first portion of the light while diverting a second portion of the light. The transmitted light is fed to an opto-electrical converter for conversion into electrical stimulation signals. The diverted light is directed to one or more optical modulators that modulate the diverted light output under an applied electrical signal. An electrical circuit generates electrical sense signals corresponding to one or more sensed physiological conditions and provides the signals to the optical modulator(s). This results in modulation of the diverted light output into optical sense signals that are transmitted to the catheter proximal end.
    Type: Grant
    Filed: April 11, 2002
    Date of Patent: March 23, 2004
    Assignee: Biophan Technologies, Inc.
    Inventors: Jeffrey T. Deal, Wilson Greatbatch