Patents by Inventor Robert J. Pinault

Robert J. Pinault 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: 6037071
    Abstract: A current interrupt mechanism for electrochemical cells is disclosed. A thermally activated current interrupt mechanism is integrated into an end cap assembly for an electrochemical cell. The thermally responsive mechanism preferably includes a free floating bimetallic disk or shape memory alloy member which deforms when exposed to elevated temperature causing a break in an electrical pathway within the end cap assembly. This prevents current from flowing through the cell and effectively shuts down an operating cell. The thermally responsive mechanism may include a heat producing electrical resistance means, preferably a Zener diode, to enhance thermal sensitivity. The end cap assembly may include a pressure responsive mechanism which ruptures when there is extreme gas pressure buildup. Gas is allowed to escape from the cell interior to the external environment through a series of vent apertures within the end cap assembly.
    Type: Grant
    Filed: November 6, 1997
    Date of Patent: March 14, 2000
    Assignee: Duracell Inc
    Inventors: Jeffrey Poirier, Paul Cheeseman, Michael McDermott, Jane A. Blasi, Reynald Cantave, Jeffrey Hewes, Yelena Kouznetsova, Bhupendra Patel, Alex Kaplan, Viet Vu, William T. McHugh, Lucien P. Fontaine, Robert J. Pinault
  • Patent number: 5998051
    Abstract: A current interrupt assembly for electrochemical cells is disclosed. The current interrupter assembly may be a self-contained, sealed unit which may be separately inserted into the cell during cell construction. Several current interrupt assemblies may be inserted in the cell. The current interrupter assembly has particular utility for thin rechargeable cells and when inserted in the cell forms a portion of the electrical pathway between a cell electrode and corresponding terminal. The current interrupt mechanism comprises a thin thermally responsive member preferably comprising a disk of a shape memory metal alloy having a curved surface. The current interrupt mechanism may include a heat producing electrical resistance means, preferably a Zener diode in proximity to the thermally responsive member. When cell temperature exceeds a predetermined value the disk deflects to cause a break in the electrical pathway within the assembly.
    Type: Grant
    Filed: November 6, 1997
    Date of Patent: December 7, 1999
    Assignee: Duracell Inc.
    Inventors: Jeffrey Poirier, Paul Cheeseman, Michael McDermott, Jane A. Blasi, Reynald Cantave, Jeffrey Hewes, Yelena Kouznetsova, Bhupendra Patel, Alex Kaplan, Viet Vu, William T. McHugh, Lucien P. Fontaine, Robert J. Pinault
  • Patent number: 5879832
    Abstract: A current interrupt mechanism for electrochemical cells is disclosed. A thermally activated current interrupt mechanism is integrated into an end cap assembly for an electrochemical cell. The thermally responsive mechanism preferably includes a free floating bimetallic disk or shape memory alloy member which deforms when exposed to elevated temperature causing a break in an electrical pathway within the end cap assembly. This prevents current from flowing through the cell and effectively shuts down an operating cell. The end cap assembly may include a pressure responsive mechanism which ruptures when there is extreme gas pressure buildup. Gas is allowed to escape from the cell interior to the external environment through a series of vent apertures within the end cap assembly.
    Type: Grant
    Filed: April 10, 1997
    Date of Patent: March 9, 1999
    Assignee: Duracell Inc.
    Inventors: Viet H. Vu, William T. McHugh, Jane A. Blasi, Lucien P. Fontaine, Robert J. Pinault
  • Patent number: 5750277
    Abstract: A current interrupt mechanism for electrochemical cells is disclosed. A thermally activated current interrupt mechanism is integrated into an end cap assembly for an electrochemical cell. The thermally responsive mechanism preferably includes a free floating bimetallic disk which deforms when exposed to elevated temperature causing a break in an electrical pathway within the end cap assembly. This prevents current from flowing through the cell and effectively shuts down an operating cell. Alternatively, the thermally responsive mechanism may include a meltable mass of material which melts when exposed to elevated temperature to break an electrical pathway within the end cap assembly. The end cap assembly may also include integrated therein a pressure responsive current interrupt mechanism.
    Type: Grant
    Filed: October 2, 1996
    Date of Patent: May 12, 1998
    Assignees: Texas Instruments Incorporated, Duracell Inc.
    Inventors: Viet H. Vu, Lucien P. Fontaine, William T. McHugh, Robert J. Pinault, Jane A. Blasi, Steven K. Sullivan, Geoffrey J. Paquin, Stephen S. Johnson, Gary K. Maus, Lance E. Cambra
  • Patent number: 5691073
    Abstract: A current interrupt mechanism for electrochemical cells is disclosed. A thermally activated current interrupt mechanism is integrated into an end cap assembly for an electrochemical cell. The thermally responsive mechanism preferably includes a free floating bimetallic disk which deforms when exposed to elevated temperature causing a break in an electrical pathway within the end cap assembly. This prevents current from flowing through the cell and effectively shuts down an operating cell. Alternatively, the thermally responsive mechanism may include a meltable mass of material which melts when exposed to elevated temperature to break an electrical pathway within the end cap assembly. The end cap assembly may also include integrated therein a pressure responsive current interrupt mechanism.
    Type: Grant
    Filed: October 2, 1996
    Date of Patent: November 25, 1997
    Assignee: Duracell Inc.
    Inventors: Viet H. Vu, Jane A. Blasi, Robert J. Pinault, William T. McHugh, Lucien P. Fontaine