Patents Examined by Catherine Voorhees
  • Patent number: 9636500
    Abstract: Active surveillance of potential lead anomalies in implanted medical leads utilizes test signal(s) delivered through an output current pathway and induced signals monitored via an independent monitor current pathway to detect for any reactions to the test signals in the induced signals. Various specific responses can be initiated if a potential insulation breach or anomaly in the implanted medical lead is identified due to detection of a “positive” test result in the induced signals on the monitor current pathway in reaction to a test signal applied to the output current pathway.
    Type: Grant
    Filed: March 25, 2014
    Date of Patent: May 2, 2017
    Assignee: Lambda Nu Technology LLC
    Inventors: Charles D. Swerdlow, Mark W. Kroll
  • Patent number: 9630009
    Abstract: Methods, systems, and computing devices for fitting bilateral hearing prostheses. An example method includes sending a signal to a first hearing prosthesis and a second hearing prosthesis. The signal causes the first hearing prosthesis to deliver a first stimulus to a body part in a left auditory pathway of a user. The signal also causes the second hearing prosthesis to deliver a second stimulus to a body part in a right auditory pathway of the user. The first stimulus and the second stimulus cause the user to perceive a sound and are delivered simultaneously. The method also includes receiving an indication of a perception of the sound by the user. The method further includes determining an adjustment to at least one of the first stimulus or the second stimulus based on the perception of the sound by the user.
    Type: Grant
    Filed: December 14, 2015
    Date of Patent: April 25, 2017
    Assignee: Cochlear Limited
    Inventor: Zachary M. Smith
  • Patent number: 9616242
    Abstract: Embodiments of the invention provide apparatus, systems and methods for harvesting energy from bio-kinetic events to power various implanted medical devices. One embodiment provides an energy harvesting mechanism for a cardiac pacemaker comprising an energy converter and a signal path component. The energy converter is positionable inside a human body and configured to generate electric power signals in response to a bio-kinetic event of the human body such as a heart beat, respiration or arterial pulse. The converter can comprise a piezoelectric material which generates electricity in response to mechanical deformation of the converter. The converter can also have a power generation characteristic that is matched to the frequency of the bio-kinetic event. For heart beat powered applications, the power generation characteristic can be matched to the physiologic range of pulse rates.
    Type: Grant
    Filed: April 3, 2015
    Date of Patent: April 11, 2017
    Assignee: InCube Labs, LLC
    Inventor: Mir A. Imran
  • Patent number: 9603536
    Abstract: A patient's vital sign measurements are displayed in a fishbone diagram defined by a horizontal line with a vertical line crossing it to form four compartments. The patient's respiratory rate and heart rate are displayed in assigned compartments above the horizontal line separated by the vertical line and the patient's oxygen saturation (SpO2) and temperature are displayed in assigned compartments below the horizontal line separated by vertical lines. Two diverging horizontal lines form a sideways “V” are connected with the right hand side of the horizontal line to define a fifth compartment in which the patient's blood pressure is displayed.
    Type: Grant
    Filed: May 28, 2015
    Date of Patent: March 28, 2017
    Assignee: KONINKLIJKE PHILIPS N.V.
    Inventors: John Francis Humphrys, Youssef Abou-Hawili
  • Patent number: 9597522
    Abstract: An implantable medical device, comprising an implantable component having a rechargeable power supply and an external wireless charger. The wireless charger has a rechargeable power supply, and an inductive coil configured to transcutaneously transfer power from the charger power supply to the implantable power supply, and configured to detect and receive, via the inductive coil, power from an auxiliary charger for recharging of the charger power supply.
    Type: Grant
    Filed: August 28, 2015
    Date of Patent: March 21, 2017
    Assignee: Cochlear Limited
    Inventor: Werner Meskens
  • Patent number: 9597505
    Abstract: Electrical crosstalk between two implantable medical devices or two different therapy modules of a common implantable medical device may be evaluated, and, in some examples, mitigated. In some examples, one of the implantable medical devices or therapy modules delivers electrical stimulation to a nonmyocardial tissue site or a nonvascular cardiac tissue site, and the other implantable medical device or therapy module delivers cardiac rhythm management therapy to a heart of the patient.
    Type: Grant
    Filed: January 30, 2009
    Date of Patent: March 21, 2017
    Assignee: Medtronic, Inc.
    Inventors: William T. Donofrio, John E. Burnes, Paul G. Krause, Xiaohong Zhou, Gerald P. Arne, David J. Peichel, James D. Reinke
  • Patent number: 9592385
    Abstract: A patient feedback device for use in an electrical stimulation system is calibrated. The electrical stimulation system includes an implantable pulse generator (IPG) implanted in a patient and a patient feedback device having a force sensor. Input from the patient is sensed using the patient feedback device. At a first time, an electrical stimulus is applied with the IPG. The force sensor is monitored at a plurality of time points. A level of force sensed by the force sensor at each of the plurality of time points is recorded. A time point at which a maximum force is applied is identified, or a time point at which a minimum force is applied is identified. The first time is compared to the time point at which a minimum force is applied or the time point at which a maximum force is applied, in order to determine a patient response time.
    Type: Grant
    Filed: July 28, 2015
    Date of Patent: March 14, 2017
    Assignee: Nuvectra Corporation
    Inventors: Norbert Kaula, Yohannes Iyassu
  • Patent number: 9592390
    Abstract: Intermittent delivery of ventricular pacing pulses synchronized to occur during an atrial diastole time period can be used to provide atrial stretch therapy and augment the production and release of atrial natriuretic hormone.
    Type: Grant
    Filed: August 12, 2015
    Date of Patent: March 14, 2017
    Assignee: Cardiac Pacemakers, Inc.
    Inventors: Jeffrey E. Stahmann, Ramesh Wariar, Stephen B. Ruble
  • Patent number: 9592401
    Abstract: A device for assisting a rescuer in delivering therapy to an adult or pediatric patient, the device including a user interface comprising a display and/or audio speakers, the user interface being configured to deliver prompts to a rescuer to assist the rescuer in delivering therapy to a patient; a processor configured to provide prompts to the user interface and to perform an ECG analysis algorithm on ECG information detected from the patient; at least one detection element configured to determine without rescuer input via the user interface that a pediatric patient is being treated; wherein, if a pediatric patient is detected, the processor modifies the ECG analysis algorithm or the prompts provided to the user interface to use an ECG analysis algorithm or prompts adapted for a pediatric patient rather than for an adult patient.
    Type: Grant
    Filed: May 5, 2014
    Date of Patent: March 14, 2017
    Assignee: ZOLL Medical Corporation
    Inventors: Gary A. Freeman, Ziad F. Elghazzawi, Frederick J. Geheb, Michael Parascandola
  • Patent number: 9592007
    Abstract: A wearable system and methods for measuring physiological data from a device worn about a body part of a user is provided comprising a base module and sensor module. The base module comprises a display and a base computing unit. The sensor module is spatially positioned relative to the base module and over a portion of the body part for measuring one or more physiological characteristics. The base module is adjustably positioned by the user relative to the sensor module such that the sensor module maintains its positioning over the body part for sufficient contact with the body part for accurate measurements of physiological data regardless of the anthropometric size of the body part.
    Type: Grant
    Filed: May 21, 2015
    Date of Patent: March 14, 2017
    Assignee: SAMSUNG ELECTRONICS CO., LTD.
    Inventors: Frank Settemo Nuovo, Sheldon George Phillips
  • Patent number: 9572504
    Abstract: The invention provides systems and methods for monitoring the wellbeing of a fetus by the non-invasive detection and analysis of fetal cardiac electrical activity data.
    Type: Grant
    Filed: March 16, 2016
    Date of Patent: February 21, 2017
    Assignee: Nuvo Group Ltd.
    Inventors: Oren Oz, Ilya Divinsky, Muhammad Mhajna, Elad Knoll, Amit Kam, Nathan Intrator
  • Patent number: 9559353
    Abstract: Implantable medical devices, implantable medical device systems that include such implantable medical devices, and implantable medical device batteries, as well as methods of making. Such devices can include a battery of relatively small volume but of relatively high power (reported as therapeutic power) and relatively high capacity (reported as capacity density).
    Type: Grant
    Filed: May 4, 2015
    Date of Patent: January 31, 2017
    Assignee: Medtronic, Inc.
    Inventors: John D. Norton, Craig L. Schmidt, Kevin Wilmot Eberman, Lawrence Robert Heyn
  • Patent number: 9545511
    Abstract: A catheter may include electrodes for transvascular nerve stimulation. The electrodes may be positioned within lumens of the catheter and aligned with apertures in the outer wall of the catheter. The electrodes may produce focused electrical fields for stimulation of one or more nerves. In one embodiment, the catheter may include a set of proximal electrodes and a set of distal electrodes, and the proximal electrodes may stimulate a patient's left phrenic nerve and the distal electrodes may stimulate a patient's right phrenic nerve.
    Type: Grant
    Filed: December 15, 2015
    Date of Patent: January 17, 2017
    Assignee: Simon Fraser University
    Inventors: Viral Thakkar, Joaquin Andres Hoffer, Bao Dung Tran, Douglas G. Evans, John Nash
  • Patent number: 9545521
    Abstract: One or more efficacious electrode combinations for delivering electrical stimulation therapy to a patient may be selected based on the delivery of electrical stimulation to the patient via a predefined set of test electrode combinations in a predetermined order. In some examples, the electrode combinations of the set are arranged in the predetermined order such that adjacent electrode combinations in the order include at least one shared anode electrode or cathode electrode. In addition, the electrode combinations in the predetermined order may define a predetermined sequence of electrode patterns, each electrode pattern defining a relative arrangement between one or more anodes and one or more cathodes of the respective electrode pattern. In some examples, the transition between electrode combinations in the predefined set is achieved by incrementally adjusting at least one of anodic amplitudes assigned to active anode electrodes or cathodic amplitudes assigned to active cathode electrodes.
    Type: Grant
    Filed: December 18, 2014
    Date of Patent: January 17, 2017
    Assignee: MEDTRONIC, INC.
    Inventors: Nathan A. Torgerson, Lynn A. Davenport
  • Patent number: 9539432
    Abstract: A system is provided for driving an implantable neurostimulator lead, the lead having an associated plurality of electrodes disposed in at least one array on the lead. The system comprises an implantable pulse generator (IPG), the IPG including an electrode driver, a load system for determining load requirements, an IPG power coupler, and an IPG communication system. The system also includes an external unit, which includes an external variable power generator, an external power coupler, an external communication system, and a controller for varying the power level of the variable power generator.
    Type: Grant
    Filed: January 7, 2016
    Date of Patent: January 10, 2017
    Assignee: Syntilla Medical LLC
    Inventors: Harry Dellamano, Kenneth Lyle Reed, Robert Raymond Bulger, Claire Denault, Michael Steven Colvin, Paul Griffith, Francis Menezes
  • Patent number: 9533096
    Abstract: An implantable infusion pump possesses operational functionality that is, at least in part, controlled by software operating in two processor ICs which are configured to perform some different and some duplicate functions. The pump exchanges messages with an external device via telemetry. Each processor controls a different part of the drug infusion mechanism such that both processors must agree on the appropriateness of drug delivery for infusion to occur. Delivery accumulators are incremented and decremented with delivery requests and with deliveries made. When accumulated amounts reach or exceed, quantized deliverable amounts, infusion is made to occur. The accumulators are capable of being incremented by two or more independent types of delivery requests. Operational modes of the infusion device are changed automatically in view of various system errors that are trapped, various system alarm conditions that are detected, and when excess periods of time lapse between pump and external device interactions.
    Type: Grant
    Filed: October 30, 2014
    Date of Patent: January 3, 2017
    Assignee: MEDTRONIC MINIMED, INC.
    Inventors: Ronald J. Lebel, Timothy J. Starkweather, Philip T. Weiss
  • Patent number: 9533164
    Abstract: In one embodiment, a method of operating an implantable pulse generator comprises: providing power to a voltage converter at a first voltage level; outputting a second voltage level by the voltage converter, the second voltage level being a variable voltage level that is controlled by a control signal provided to the voltage converter, the second voltage level being provided to pulse generating circuitry of the implantable pulse generator, the second voltage level being selectable from a plurality of voltages including non-integer multiples of the first voltage level; generating pulses by the pulse generating circuitry, the pulse generating circuitry including current control circuitry for controlling the pulses to cause the pulses to provide substantially constant current to tissue of the patient; and applying at least two different control signals to the voltage converter during individual pulses to provide successively increasing voltages to the pulse generating circuitry during a respective pulse.
    Type: Grant
    Filed: October 3, 2008
    Date of Patent: January 3, 2017
    Assignee: Advanced Neuromodulation Systems, Inc.
    Inventors: John H. Erickson, Robert L. McCormick, Benjamin A. Tranchina
  • Patent number: 9532758
    Abstract: An X-ray diagnostic apparatus according to an embodiment includes a processing circuitry. The processing circuitry configured to acquire blood flow state information indicating a blood flow state in a blood vessel of a subject, and control at least one of an injection start, an injection speed, and an injection amount of injection of a contrast media into the subject by an injector based on the blood flow state information acquired.
    Type: Grant
    Filed: May 26, 2015
    Date of Patent: January 3, 2017
    Assignee: Toshiba Medical Systems Corporation
    Inventor: Ryuji Zaiki
  • Patent number: 9526431
    Abstract: Embodiments of the present invention comprise systems and methods for noninvasion measurements of physiological properties of tissues. The system comprises a light emitter, an optical detector, a mechanical sensor and a processor. The light emitter is capable of emitting light of at least two different wavelengths and comprises at least one light source. The processor is capable of evaluating physiological properties of the tissues from measurements of the optical and the mechanical sensor. More precisely, the processor is capable of evaluating physiological properties of venous blood by using data measured by the mechanical sensor and the optical detector. For example, the oxygenation of venous blood can be measured. Furthermore, the systems can optionally comprise a light emitter which emits three wavelengths and/or the light emitter and the optical detector are arranged in reflection geometry and are located at a distance of at most 10 mm from each other.
    Type: Grant
    Filed: October 19, 2011
    Date of Patent: December 27, 2016
    Assignee: BIOVOTION AG
    Inventors: Pavel Zakharov, Mark Talary, Andreas Caduff
  • Patent number: 9526571
    Abstract: Methods and devices for treating nasal airways are provided. Such devices and methods may improve airflow through an internal and/or external nasal valve, and comprise the use of mechanical re-shaping, energy application and other treatments to modify the shape, structure, and/or air flow characteristics of an internal nasal valve, an external nasal valve or other nasal airways.
    Type: Grant
    Filed: December 9, 2015
    Date of Patent: December 27, 2016
    Assignee: AERIN MEDICAL, INC.
    Inventors: Scott J. Wolf, Andrew Frazier