Patents by Inventor David Malametz

David Malametz 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: 8218218
    Abstract: A microelectromechanical system (MEMS) includes a conductor with improved reliability. The conductor flexes with a moving member in the MEMS device, and the improved reliability is achieved through material selections that provides increased fatigue resistance, reduced crack propagation, and/or mechanisms for improved live at a given strain level. The conductor may include a single material, or may include layers of different materials.
    Type: Grant
    Filed: April 8, 2009
    Date of Patent: July 10, 2012
    Assignee: Microvision, Inc.
    Inventors: Jason B. Tauscher, Matthew Ellis, Dean R. Brown, Mark P. Helsel, Wyatt O. Davis, Yunfei Ma, Michael E. Sherwood, John Wyatt Coy, David Malametz
  • Publication number: 20100259806
    Abstract: A microelectromechanical system (MEMS) includes a conductor with improved reliability. The conductor flexes with a moving member in the MEMS device, and the improved reliability is achieved through material selections that provides increased fatigue resistance, reduced crack propagation, and/or mechanisms for improved live at a given strain level. The conductor may include a single material, or may include layers of different materials.
    Type: Application
    Filed: April 8, 2009
    Publication date: October 14, 2010
    Applicant: Microvision, Inc.
    Inventors: Jason B. Tauscher, Matthew Ellis, Dean R. Brown, Mark P. Helsel, Wyatt O. Davis, Yunfei Ma, Michael E. Sherwood, John Wyatt Coy, David Malametz
  • Publication number: 20060185433
    Abstract: An apparatus and method for force sensing device having a pendulous mechanism proof mass formed in a silicon semiconductor substrate and structured for rotation about an intermediate rotational axis, the proof mass being substantially rectangular in shape with opposing first and second lateral peripheral edges and opposing first and second endwise peripheral edges. A plurality of capacitor comb teeth are formed symmetrically along the opposing first and second endwise peripheral proof mass edges and along the opposing first and second lateral peripheral proof mass edges adjacent to the first and second endwise peripheral edges, and one or more mass reduction apertures are formed in an interior portion of the proof mass on one side of the intermediate hinge axis.
    Type: Application
    Filed: June 6, 2005
    Publication date: August 24, 2006
    Applicant: Honeywell International, Inc.
    Inventors: Ronald Leonardson, David Malametz
  • Publication number: 20050268719
    Abstract: A Micro Electro-Mechanical System (MEMS) acceleration sensing device formed of a silicon substrate having a substantially planar surface; a pendulous sensing element having a substantially planar surface suspended in close proximity to the substrate planar surface; a flexure suspending the sensing element for motion relative to the substrate planar surface, the flexure having a both static geometric centerline and a dynamic centerline that is offset from the static geometric centerline; and a metal electrode positioned on the substrate surface for forming a capacitor with the pendulous sensing element, the metal electrode being positioned as a function of the dynamic centerline of the flexure.
    Type: Application
    Filed: June 7, 2004
    Publication date: December 8, 2005
    Applicant: Honeywell International, Inc.
    Inventor: David Malametz
  • Publication number: 20050183503
    Abstract: An apparatus and method for sensing accelerations and other forces. The apparatus having a capacitance pick-off force sensor having a proof mass that is suspended relative to a relatively stationary frame by a plurality of serpentine suspension members having internal caging. The device provides easily implemented fabrication modification for trading-off between input range and pick-off sensitivity by altering etching periods of the serpentine suspension members. The input range and pick-off sensitivity can be traded-off by enlarging or reducing the quantity of elongated flexure fingers forming the serpentine suspension member. Different ones of the elongated flexure fingers are optionally formed with different thicknesses, whereby the serpentine suspension member exhibits a spring rate that progressively increases as it is compressed by in-plane motion of the proof mass relative to the relatively stationary frame.
    Type: Application
    Filed: April 8, 2005
    Publication date: August 25, 2005
    Applicant: Honeywell International, Inc.
    Inventor: David Malametz
  • Publication number: 20050139942
    Abstract: A Micro Electro-Mechanical System (MEMS) acceleration sensing device, formed of a an elongated sensing element of substantially uniform thickness suspended for motion relative to a rotational axis offset between first and second ends thereof such that a first portion of the sensing element between the rotational axis and the first end is longer than a shorter second portion between the rotational axis and the second end; a stationary silicon substrate spaced away from the sensing element; a capacitor formed by a surface of the substrate and each of the first and second portions of the sensing element; and a valley formed in the substrate surface opposite from the first longer portion of the sensing element and spaced away from the rotational axis a distance substantially the same as the distance between the rotational axis and the second end of the sensing element.
    Type: Application
    Filed: February 23, 2005
    Publication date: June 30, 2005
    Applicant: Honeywell International, Inc.
    Inventors: Mark Eskridge, David Malametz
  • Publication number: 20050126287
    Abstract: An apparatus and method for sensing accelerations and other forces. The apparatus having a capacitance pick-off force sensor having a proof mass that is suspended relative to a relatively stationary frame by a plurality of serpentine suspension members having internal caging. The device provides easily implemented fabrication modification for trading-off between input range and pick-off sensitivity by altering etching periods of the serpentine suspension members. The input range and pick-off sensitivity can be traded-off by enlarging or reducing the quantity of elongated flexure fingers forming the serpentine suspension member. Different ones of the elongated flexure fingers are optionally formed with different thicknesses, whereby the serpentine suspension member exhibits a spring rate that progressively increases as it is compressed by in-plane motion of the proof mass relative to the relatively stationary frame.
    Type: Application
    Filed: December 15, 2003
    Publication date: June 16, 2005
    Applicant: Honeywell International, Inc.
    Inventor: David Malametz
  • Publication number: 20050109109
    Abstract: A Micro Electro-Mechanical System (MEMS) acceleration sensing device, formed of a an elongated sensing element of substantially uniform thickness suspended for motion relative to a rotational axis offset between first and second ends thereof such that a first portion of the sensing element between the rotational axis and the first end is longer than a shorter second portion between the rotational axis and the second end; a stationary silicon substrate spaced away from the sensing element; a capacitor formed by a surface of the substrate and each of the first and second portions of the sensing element; and a valley formed in the substrate surface opposite from the first longer portion of the sensing element and spaced away from the rotational axis a distance substantially the same as the distance between the rotational axis and the second end of the sensing element.
    Type: Application
    Filed: November 20, 2003
    Publication date: May 26, 2005
    Applicant: Honeywell International, Inc.
    Inventors: Mark Eskridge, David Malametz