Patents by Inventor Stephen W. Allison

Stephen W. Allison 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: 10743776
    Abstract: A system for measuring the blood loss comprises a measuring device that determines a hemoglobin concentration of fluid within a container utilizing a light source and a light detector. The container receives blood and other fluids from a patient during a medical procedure. Light from the light source is passed through the blood and other fluids in the container and is detected by the light detector. Based upon a magnitude of light detected, a hemoglobin concentration of the fluid in the container can be determined. A volume-measuring device determines the volume of blood and fluid in the container. Knowing the hemoglobin concentration and volume of fluid in the container, the volume of patient blood loss in the container can be determined. The blood loss measuring device in combination with infusion systems maintains a real-blood volume status so that proper infusion of blood, crystalloid and/or colloid solutions occurs.
    Type: Grant
    Filed: May 13, 2019
    Date of Patent: August 18, 2020
    Assignee: MAJELCO MEDICAL, INC.
    Inventors: Alfred Akerman, Stephen W. Allison, Matthew B. Scudiere, Michael R. Cates, David L. Beshears, Lara M. Brewer Cates, Adan James Akerman, Annette MacIntyre
  • Patent number: 10690684
    Abstract: A system for measuring the blood loss comprises a measuring device that determines the hemoglobin concentration of fluid within a container utilizing a light source and a light detector. The container receives blood and other fluids from a patient during a medical procedure. Light from the light source is passed through the blood and other fluids in the container and is detected by the light detector. Based upon a magnitude of light detected, the hemoglobin concentration of the fluid in the container can be determined. A volume-measuring device determines the volume of blood and fluid in the container. Knowing the hemoglobin concentration and volume of fluid in the container, the volume of patient blood loss in the container can be determined. The blood loss measuring device in combination with infusion systems maintains a real-blood volume status so that proper infusion of blood, crystalloid and/or colloid solutions occurs.
    Type: Grant
    Filed: October 11, 2018
    Date of Patent: June 23, 2020
    Assignees: Majelco Medical, Inc., University of Utah Research Foundation
    Inventors: Annette Macintyre, Lara Brewer Cates, Suzanne Wendelken, Quinn Tate, Soeren Hoehne, Alfred Akerman, Stephen W. Allison, Matthew B. Scudiere, Michael R. Cates, David L. Beshears, Adan James Akerman
  • Publication number: 20190261868
    Abstract: A system for measuring the blood loss comprises a measuring device that determines a hemoglobin concentration of fluid within a container utilizing a light source and a light detector, The container receives blood and other fluids from a patient during a medical procedure, Light from the light source is passed through the blood and other fluids in the container and is detected by the light detector. Based upon a magnitude of light detected, a hemoglobin concentration of the fluid in the container can be determined. A volume-measuring device determines the volume of blood and fluid in the container. Knowing the hemoglobin concentration and volume of fluid in the container, the volume of patient blood loss in the container can be determined. The blood loss measuring device in combination with infusion systems maintains a real-blood volume status so that proper infusion of blood, crystalloid and/or colloid solutions occurs.
    Type: Application
    Filed: May 13, 2019
    Publication date: August 29, 2019
    Inventors: Alfred Akerman, Stephen W. Allison, Matthew B. Scudiere, Michael R. Cates, David L. Beshears, Lara M. Brewer Cates, Adan James Akerman, Annette MacIntyre
  • Patent number: 10285596
    Abstract: A system for measuring the blood loss comprises a measuring device that determines a hemoglobin concentration of fluid within a container utilizing a light source and a light detector. The container receives blood and other fluids from a patient during a medical procedure. Light from the light source is passed through the blood and other fluids in the container and is detected by the light detector. Based upon a magnitude of light detected, a hemoglobin concentration of the fluid in the container can be determined. A volume-measuring device determines the volume of blood and fluid in the container. Knowing the hemoglobin concentration and volume of fluid in the container, the volume of patient blood loss in the container can be determined. The blood loss measuring device in combination with infusion systems maintains a real-blood volume status so that proper infusion of blood, crystalloid and/or colloid solutions occurs.
    Type: Grant
    Filed: April 11, 2017
    Date of Patent: May 14, 2019
    Assignee: MAJELCO MEDICAL, INC.
    Inventors: Alfred Akerman, Stephen W. Allison, Matthew B. Scudiere, Michael R. Cates, David L. Beshears, Lara Brewer, Adan James Akerman
  • Patent number: 10240986
    Abstract: A system includes a thermographic temperature sensor that may measure a temperature of a fluid. The thermographic temperature sensor includes a probe, an optical source coupled to the probe, and a detector coupled to the probe. The system also includes a housing of the probe; and a light pipe of the probe disposed within the housing and including a thermographic phosphor that may phosphoresce in response to absorbing light from the optical source. The phosphorescence by the thermographic phosphor is representative of a temperature of the fluid within a flow path of the fluid, and the detector may detect the phosphorescence by the thermographic phosphor.
    Type: Grant
    Filed: September 28, 2016
    Date of Patent: March 26, 2019
    Assignee: General Electric Company
    Inventors: Donald W. Shaw, Andrew David Ellis, David Beshears, Duane Weldon Dinkel, Jason Ryan Henderson, Stephen W. Allison
  • Patent number: 10222274
    Abstract: A thermographic temperature sensor includes a probe having a housing and a light pipe disposed within the housing. The light pipe includes a thermographic phosphor that may phosphoresce in response to absorbing light. The phosphorescence by the thermographic phosphor is representative of a temperature of a fluid in contact with the probe, and a surface area of the light pipe is not in contact with an inner surface of the housing.
    Type: Grant
    Filed: September 28, 2016
    Date of Patent: March 5, 2019
    Assignee: General Electric Company
    Inventors: Andrew David Ellis, Donald W. Shaw, David Beshears, Duane Weldon Dinkel, Jason Ryan Henderson, Stephen W. Allison
  • Publication number: 20190041405
    Abstract: A system for measuring the blood loss comprises a measuring device that determines a hemoglobin concentration of fluid within a container utilizing a light source and a light detector. The container receives blood and other fluids from a patient during a medical procedure. Light from the light source is passed through the blood and other fluids in the container and is detected by the light detector. Based upon a magnitude of light detected, a hemoglobin concentration of the fluid in the container can be determined. A volume-measuring device determines the volume of blood and fluid in the container. Knowing the hemoglobin concentration and volume of fluid in the container, the volume of patient blood loss in the container can be determined. The blood loss measuring device in combination with infusion systems maintains a real-blood volume status so that proper infusion of blood, crystalloid and/or colloid solutions occurs.
    Type: Application
    Filed: October 11, 2018
    Publication date: February 7, 2019
    Inventors: Annette Macintyre, Lara Brewer, Suzanne Wendelken, Quinn Tate, Soeren Hoehne, Alfred Akerman, Stephen W. Allison, Matthew B. Scudiere, Michael R. Cates, David L. Beshears, Adan James Akerman
  • Publication number: 20180087975
    Abstract: A thermographic temperature sensor includes a probe having a housing and a light pipe disposed within the housing. The light pipe includes a thermographic phosphor that may phosphoresce in response to absorbing light. The phosphorescence by the thermographic phosphor is representative of a temperature of a fluid in contact with the probe, and a surface area of the light pipe is not in contact with an inner surface of the housing.
    Type: Application
    Filed: September 28, 2016
    Publication date: March 29, 2018
    Inventors: Andrew David Ellis, Donald W. Shaw, David Beshears, Duane Weldon Dinkel, Jason Ryan Henderson, Stephen W. Allison
  • Publication number: 20180087974
    Abstract: A system includes a thermographic temperature sensor that may measure a temperature of a fluid. The thermographic temperature sensor includes a probe, an optical source coupled to the probe, and a detector coupled to the probe. The system also includes a housing of the probe; and a light pipe of the probe disposed within the housing and including a thermographic phosphor that may phosphoresce in response to absorbing light from the optical source. The phosphorescence by the thermographic phosphor is representative of a temperature of the fluid within a flow path of the fluid, and the detector may detect the phosphorescence by the thermographic phosphor.
    Type: Application
    Filed: September 28, 2016
    Publication date: March 29, 2018
    Inventors: Donald W. Shaw, Andrew David Ellis, David Beshears, Duane Weldon Dinkel, Jason Ryan Henderson, Stephen W. Allison
  • Publication number: 20170290518
    Abstract: A system for measuring the blood loss comprises a measuring device that determines a hemoglobin concentration of fluid within a container utilizing a light source and a light detector. The container receives blood and other fluids from a patient during a medical procedure. Light from the light source is passed through the blood and other fluids in the container and is detected by the light detector. Based upon a magnitude of light detected, a hemoglobin concentration of the fluid in the container can be determined. A volume-measuring device determines the volume of blood and fluid in the container. Knowing the hemoglobin concentration and volume of fluid in the container, the volume of patient blood loss in the container can be determined. The blood loss measuring device in combination with infusion systems maintains a real-blood volume status so that proper infusion of blood, crystalloid and/or colloid solutions occurs.
    Type: Application
    Filed: April 11, 2017
    Publication date: October 12, 2017
    Inventors: Alfred Akerman, Stephen W. Allison, Matthew B. Scudiere, Michael R. Cates, David L. Beshears, Lara Brewer, Adan James Akerman
  • Patent number: 8406837
    Abstract: A functionalized tip is incorporated into catheters for the cytometric delivery of cells into the brain and other body parts. For use in the brain, the tip forms part of a neurosurgical probe having a proximal end and a distal end. In addition to the functionalized tip, the probe has at least one cell slurry delivery lumen and a plurality of optical fibers configured along the probe, terminating in the tip to provide the photo-optical capability needed to monitor the viability and physiological behavior of the grafted cells as well as certain characteristics of the cellular environment. Details are also presented of the use of a neurocatheter having a cytometric tip of the type disclosed in the invention, as employed within the context of a feedback and control system for regulating the number of cells delivered to the brain of a patient.
    Type: Grant
    Filed: November 1, 2007
    Date of Patent: March 26, 2013
    Assignees: UT-Battelle, LLC, University of Virginia Patent Foundation
    Inventors: George T. Gillies, Helen Fillmore, William C. Broaddus, Boyd M. Evans, III, Stephen W. Allison
  • Publication number: 20100210927
    Abstract: A functionalized tip is incorporated into catheters for the cytometric delivery of cells into the brain and other body parts. For use in the brain, the tip forms part of a neurosurgical probe having a proximal end and a distal end. In addition to the functionalized tip, the probe has at least one cell slurry delivery lumen and a plurality of optical fibers configured along the probe, terminating in the tip to provide the photo-optical capability needed to monitor the viability and physiological behavior of the grafted cells as well as certain characteristics of the cellular environment. Details are also presented of the use of a neurocatheter having a cytometric tip of the type disclosed in the invention, as employed within the context of a feedback and control system for regulating the number of cells delivered to the brain of a patient.
    Type: Application
    Filed: November 1, 2007
    Publication date: August 19, 2010
    Applicants: UT-BATTELLE, LLC, UNIVERSITY OF VIRGINIA PATENT FOUNDATION
    Inventors: George T. Gillies, Helen Fillmore, William C. Broaddus, Boyd M. Evans, Stephen W. Allison
  • Patent number: 7446860
    Abstract: A method and system for determining range to a target are provided. A beam of electromagnetic energy is transmitted through an aperture in an opaque screen such that a portion of the beam passes through the aperture to generate a region of diffraction that varies as a function of distance from the aperture. An imaging system is focused on a target plane in the region of diffraction with the generated image being compared to known diffraction patterns. Each known diffraction pattern has a unique value associated therewith that is indicative of a distance from the aperture. A match between the generated image and at least one of the known diffraction patterns is indicative of a distance between the aperture and target plane.
    Type: Grant
    Filed: September 18, 2006
    Date of Patent: November 4, 2008
    Assignee: The United States of America as represented by the Administrator of the National Aeronautics and Space Administration
    Inventors: Jonathan W. Campbell, David L. Lehner, Larry L. Smalley, Molly C. Smith, legal representative, Alvin J. Sanders, Dennis Duncan Earl, Stephen W. Allison, Kelly L. Smith
  • Publication number: 20020174794
    Abstract: This invention is an identifiable bullet having a slug made from an unsintered powdered metal composite core and a luminescent taggant mixture. The luminescent taggant mixture portion of the slug serves as an identifying agent that can be traced to the manufactured origin of the bullet thereby providing a means for matching the identity of a post-fired bullet with the identity of a pre-fired bullet manufacturer.
    Type: Application
    Filed: April 23, 2001
    Publication date: November 28, 2002
    Inventors: Richard A. Lowden, Norman L. Vaughn, Stephen W. Allison, Cyrus M. Smith
  • Patent number: 6456383
    Abstract: This invention relates to a method and apparatus for making absolute distance or ranging measurements using Fresnel diffraction. The invention employs a source of electromagnetic radiation having a known wavelength or wavelength distribution, which sends a beam of electromagnetic radiation through a screen at least partially opaque at the wavelength. The screen has an aperture sized so as to produce a Fresnel diffraction pattern. A portion of the beam travels through the aperture to a detector spaced some distance from the screen. The detector detects the central intensity of the beam as well as a set of intensities displaced from a center of the aperture. The distance from the source to the target can then be calculated based upon the known wavelength, aperture radius, and beam intensity.
    Type: Grant
    Filed: November 3, 2000
    Date of Patent: September 24, 2002
    Assignees: UT Battelle, LLC, The University of Tennessee Research Corporation
    Inventors: Dennis D. Earl, Stephen W. Allison, Michael R. Cates, Alvin J. Sanders
  • Patent number: 5914785
    Abstract: This invention relates to a method and apparatus for making absolute distance or ranging measurements using Fresnel diffraction. The invention employs a source of electromagnetic radiation having a known wavelength or wavelength distribution, which sends a beam of electromagnetic radiation through an object which causes it to be split (hereinafter referred to as a "beamsplitter"), and then to a target. The beam is reflected from the target onto a screen containing an aperture spaced a known distance from the beamsplitter. The aperture is sized so as to produce a Fresnel diffraction pattern. A portion of the beam travels through the aperture to a detector, spaced a known distance from the screen. The detector detects the central intensity of the beam. The distance from the object which causes the beam to be split to the target can then be calculated based upon the known wavelength, aperture radius, beam intensity, and distance from the detector to the screen.
    Type: Grant
    Filed: February 4, 1998
    Date of Patent: June 22, 1999
    Assignees: The University of Tennesee Research Corporation, Lockheed Martin Energy Research Corporation
    Inventors: Stephen W. Allison, Michael R. Cates, William S. Key, Alvin J. Sanders, Dennis D. Earl
  • Patent number: 5885484
    Abstract: A high temperature phosphor consists essentially of a material having the general formula LuPO.sub.4 :Dy.sub.(x),Eu.sub.y) wherein: 0.1 wt %.ltoreq.x.ltoreq.20 wt % and 0.1 wt %.ltoreq.y.ltoreq.20 wt %.The high temperature phosphor is in contact with an article whose temperature is to be determined. The article having the phosphor in contact with it is placed in the environment for which the temperature of the article is to be determined. The phosphor is excited by a laser causing the phosphor to fluoresce. The emission from the phosphor is optically focused into a beam-splitting mirror which separates the emission into two separate emissions, the emission caused by the dysprosium dopant and the emission caused by the europium dopent. The separated emissions are optically filtered and the intensities of the emission are detected and measured. The ratio of the intensity of each emission is determined and the temperature of the article is calculated from the ratio of the intensities of the separate emissions.
    Type: Grant
    Filed: September 23, 1997
    Date of Patent: March 23, 1999
    Assignee: Lockheed Martin Energy Research Corp.
    Inventors: Stephen W. Allison, Michael R. Cates, Lynn A. Boatner, George T. Gillies
  • Patent number: 5812729
    Abstract: A new light-transmitting device using a SCIN glass core and a novel calcium sodium cladding has been developed. The very high index of refraction, radiation hardness, similar solubility for rare earths and similar melt and viscosity characteristics of core and cladding materials makes them attractive for several applications such as high-numerical-aperture optical fibers and specialty lenses. Optical fibers up to 60 m in length have been drawn, and several simple lenses have been designed, ground, and polished. Preliminary results on the ability to directly cast optical components of lead-indium phosphate glass are also discussed as well as the suitability of these glasses as a host medium for rare-earth ion lasers and amplifiers.
    Type: Grant
    Filed: July 21, 1995
    Date of Patent: September 22, 1998
    Assignee: Lockheed Martin Energy Systems, Inc.
    Inventors: Stephen W. Allison, Lynn A. Boatner, Brian C. Sales
  • Patent number: 5730528
    Abstract: A high temperature phosphor consists essentially of a material having the general formula LuPO.sub.4 :Dy.sub.(x),Eu.sub.(y), wherein: 0.1 wt %.ltoreq.x.ltoreq.20 wt % and 0.1 wt %.ltoreq.y.ltoreq.20 wt %. The high temperature phosphor is in contact with an article whose temperature is to be determined. The article having the phosphor in contact with it is placed in the environment for which the temperature of the article is to be determined. The phosphor is excited by a laser causing the phosphor to fluoresce. The emission from the phosphor is optically focused into a beam-splitting mirror which separates the emission into two separate emissions, the emission caused by the dysprosium dopant and the emission caused by the europium dopent. The separated emissions are optically filtered and the intensities of the emission are detected and measured.
    Type: Grant
    Filed: August 28, 1996
    Date of Patent: March 24, 1998
    Assignee: Lockheed Martin Energy Systems, Inc.
    Inventors: Stephen W. Allison, Michael R. Cates, Lynn A. Boatner, George T. Gillies
  • Patent number: 5701370
    Abstract: Fiber-optic sensors employing optical fibers of elastomeric material are incorporated in devices adapted to be worn by human beings in joint and chest regions for the purpose of monitoring and measuring the extent of joint articulation and chest expansion especially with respect to time.
    Type: Grant
    Filed: December 17, 1996
    Date of Patent: December 23, 1997
    Assignee: Lockheed Martin Energy Systems, Inc.
    Inventors: Jeffrey D. Muhs, Stephen W. Allison