Patents by Inventor Michelle A. Clifford

Michelle A. Clifford 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: 7409738
    Abstract: A system and method is provided for predicting an imbalance condition in a rotating device. The rotational imbalance prediction system (100) includes an accelerometer assembly (104), including at least one accelerometer (304), and a processor (306). The at least one accelerometer (304) provides acceleration measurements to the processor (306), the measurements describing the current acceleration of an orbit of the rotational device (102). The processor (306) receives the acceleration measurements and calculates an average radius of the orbit (202) to determine if the average radius is increasing, predictive of an imbalance condition. The processor (306) generates a signal in response to the prediction of an imbalance condition and transmits the signal to a motor control (308) or a remote alarm module (302). The system and method provides for countermeasures to be taken in response to the prediction of an imbalance condition, thereby eliminating the imbalance condition.
    Type: Grant
    Filed: April 28, 2005
    Date of Patent: August 12, 2008
    Assignee: Freescale Semiconductor, Inc.
    Inventors: Rodrigo L. Borras, Michelle A. Clifford, Leticia Gomez
  • Patent number: 7248172
    Abstract: A system and method is provided for detection of a human body fall event. The fall detection system (100, 200) includes a monitoring unit (102, 202), including a plurality of accelerometers (106, 206), a processor (108, 208) and a wireless transmitter (110, 210). The plurality of accelerometers (106, 206) provide acceleration measurements to the processor (108, 208), the measurements describing the current acceleration of the person wearing the monitoring unit (102, 202) in all directions. The processor (108, 208) receives the acceleration measurements and compares the acceleration measurements to a value range to determine if the wearer is currently experiencing a fall event. The processor (108, 208) generates a signal in response to the detection of a fall event and the transmitter (110, 210) transmits the signal to a remote signal receiver (104, 204).
    Type: Grant
    Filed: March 22, 2005
    Date of Patent: July 24, 2007
    Assignee: Freescale Semiconductor, Inc.
    Inventors: Michelle A. Clifford, Rodrigo L. Borras, Leticia Gomez
  • Patent number: 7191089
    Abstract: A system and method is provided for electronic device fall detection. The system and method provides the ability to reliably detect falls even in the presence of other motion in the electronic device. The fall detection system includes a plurality of accelerometers and a processor. The plurality of accelerometers provides acceleration measurements to the processor, with these measurements describing the current acceleration of the electronic device in all directions. The processor receives the acceleration measurements and compares the acceleration measurements to a value range to determine if the device is currently falling. Furthermore, the system and method can reliably detect a non-linear fall, such as when the fall is accompanied with device rotation or initiated by additional external force. To detect a non-linear fall, the processor compares combinations of acceleration measurements to a value range and further determines the smoothness of the acceleration measurement combinations.
    Type: Grant
    Filed: December 1, 2004
    Date of Patent: March 13, 2007
    Assignee: Freescale Semiconductor, Inc.
    Inventors: Michelle A. Clifford, Rodrigo L. Borras, Leticia Gomez, Akihiro Ueda
  • Publication number: 20060242769
    Abstract: A system and method is provided for predicting an imbalance condition in a rotating device. The rotational imbalance prediction system (100) includes an accelerometer assembly (104), including at least one accelerometer (304), and a processor (306). The at least one accelerometer (304) provides acceleration measurements to the processor (306), the measurements describing the current acceleration of an orbit of the rotational device (102). The processor (306) receives the acceleration measurements and calculates an average radius of the orbit (202) to determine if the average radius is increasing, predictive of an imbalance condition. The processor (306) generates a signal in response to the prediction of an imbalance condition and transmits the signal to a motor control (308) or a remote alarm module (302). The system and method provides for countermeasures to be taken in response to the prediction of an imbalance condition, thereby eliminating the imbalance condition.
    Type: Application
    Filed: April 28, 2005
    Publication date: November 2, 2006
    Inventors: Rodrigo Borras, Michelle Clifford, Leticia Gomez
  • Publication number: 20060227030
    Abstract: A control system and method are provided for controlling a device. The control system includes a control mechanism (100, 200), including a plurality of accelerometers (102, 204) and a processor (104, 206) for generating at least one control signal. The plurality of accelerometers (102, 204) provide acceleration measurements to the processor (104, 206), the measurements describing the current acceleration of control mechanism (100, 200) in all directions. The processor (104, 206) receives the acceleration measurements and compares the acceleration measurements to a value range stored to determine if the movement of the control mechanism can be mapped to a pre-programmed motion stored during setup of the system, indicative of a control function. The processor (104, 206) generates at least one control signal in response to the detection of a pre-programmed motion. The control signal provides for control of a device (110, 202).
    Type: Application
    Filed: March 31, 2005
    Publication date: October 12, 2006
    Inventors: Michelle Clifford, John Young
  • Publication number: 20060214806
    Abstract: A system and method is provided for detection of a human body fall event. The fall detection system (100, 200) includes a monitoring unit (102, 202), including a plurality of accelerometers (106, 206), a processor (108, 208) and a wireless transmitter (110, 210). The plurality of accelerometers (106, 206) provide acceleration measurements to the processor (108, 208), the measurements describing the current acceleration of the person wearing the monitoring unit (102, 202) in all directions. The processor (108, 208) receives the acceleration measurements and compares the acceleration measurements to a value range to determine if the wearer is currently experiencing a fall event. The processor (108, 208) generates a signal in response to the detection of a fall event and the transmitter (110, 210) transmits the signal to a remote signal receiver (104, 204).
    Type: Application
    Filed: March 22, 2005
    Publication date: September 28, 2006
    Inventors: Michelle Clifford, Rodrigo Borras, Leticia Gomez
  • Publication number: 20060116848
    Abstract: A system and method is provided for electronic device fall detection. The system and method provides the ability to reliably detect falls even in the presence of other motion in the electronic device. The fall detection system includes a plurality of accelerometers and a processor. The plurality of accelerometers provides acceleration measurements to the processor, with these measurements describing the current acceleration of the electronic device in all directions. The processor receives the acceleration measurements and compares the acceleration measurements to a value range to determine if the device is currently falling. Furthermore, the system and method can reliably detect a non-linear fall, such as when the fall is accompanied with device rotation or initiated by additional external force. To detect a non-linear fall, the processor compares combinations of acceleration measurements to a value range and further determines the smoothness of the acceleration measurement combinations.
    Type: Application
    Filed: December 1, 2004
    Publication date: June 1, 2006
    Inventors: Michelle Clifford, Rodrigo Borras, Leticia Gomez, Akihiro Ueda