Patents by Inventor Chad Tyler HARRIS

Chad Tyler HARRIS 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: 10180472
    Abstract: A method of configuring a conducting grid of elements interconnected at intersecting nodes by switches is described.
    Type: Grant
    Filed: November 15, 2016
    Date of Patent: January 15, 2019
    Assignee: SYNAPTIVE MEDICAL (BARBADOS) Inc.
    Inventors: Chad Tyler Harris, Alexander Gyles Panther, Stephen B. E. McFadyen
  • Publication number: 20190004137
    Abstract: The present disclosure provides a method and system for correcting errors caused by non-linearities in a gradient field profile of a gradient coil in a magnetic resonance imaging (MRI) system. The method includes obtaining a non-linearity tensor at each voxel within the imaging space using a computer model of the gradient coil; correcting motion sensitive encoding using the non-linearity tensor; and generating a corrected image using the corrected motion sensitive encoding.
    Type: Application
    Filed: June 28, 2017
    Publication date: January 3, 2019
    Inventors: Chad Tyler HARRIS, Andrew Thomas CURTIS, Philip BEATTY, Jeff Alan STAINSBY
  • Publication number: 20180340992
    Abstract: Some implementations provide an MRI system that includes: a housing having a bore accommodating a portion of a subject; a main magnet enclosed by said housing and configured to generate a substantially uniform magnet field within the bore; a gradient sub-system to provide perturbations to the substantially uniform magnet field; a flexible coil assembly configured to (i) receive radio frequency (RF) signals from the subject in response to the portion of the subject being scanned, and (ii) generate and apply B0 shimming to improve a field homogeneity of the substantially uniform magnetic field; and a control unit configured to: drive the gradient sub-system using a gradient waveform; and receive measurement results responsive to the gradient waveform such that a coupling between the gradient sub-system and the flexible coil assembly is determined and subsequently reduced in response to the determined coupling exceeding a pre-determined threshold.
    Type: Application
    Filed: May 25, 2017
    Publication date: November 29, 2018
    Inventors: Chad Tyler Harris, Geron André Bindseil
  • Patent number: 10139460
    Abstract: A delta-relaxation magnetic resonance imaging (DREMR) system is provided. The system includes a main field magnet and field shifting coils. A main magnetic field with a strength B0 can be generated using the main filed magnet and the strength B0 of the main magnetic field can be varied through the use of the field-shifting coils. The DREMR system can be used to perform signal acquisition based on a pulse sequence for acquiring at least one of T2*-weighted signals imaging; MR spectroscopy signals; saturation imaging signals and MR signals for fingerprinting. The MR signal acquisition can be augmented by varying the strength B0 of the main magnetic field for at least a portion of the pulse sequence used to acquire the MR signal.
    Type: Grant
    Filed: February 23, 2015
    Date of Patent: November 27, 2018
    Assignee: SYNAPTIVE MEDICAL (BARBADOS) Inc.
    Inventors: Alexander Gyles Panther, Cameron Anthony Piron, Jeff Alan Stainsby, Chad Tyler Harris
  • Publication number: 20180335489
    Abstract: Methods for correcting a non-uniform power response of a radiofrequency (“RF”) transmit coil used in magnetic resonance imaging (“MRI”) are described. Transmit power response data for an RF transmit coil are processed to compute RF amplitude scaling factors for the RF transmit coil as a function of transmit frequency offset. The RF amplitude scaling factors can be used to correct transmitted RF power, and thus flip angle, to be more uniform over a range of transmit frequency offsets, as may be encountered when imaging with lower field MRI systems or MRI systems with high strength or asymmetric gradients.
    Type: Application
    Filed: May 18, 2017
    Publication date: November 22, 2018
    Inventors: Jeff Alan Stainsby, Chad Tyler Harris, Andrew Thomas Curtis, Alexander Gyles Panther
  • Publication number: 20180335495
    Abstract: Some implementations provide a system that includes: a housing having a bore in which a subject to be image is placed; a main magnet configured to generate a volume of magnetic field within the bore, the volume of magnetic field having inhomogeneity below a defined threshold; one or more gradient coils configured to linearly vary the volume of magnetic field as a function of spatial location; one or more pulse generating coils configured to generate and apply radio frequency (RF) pulses to the volume of magnetic field in sequence to scan the portion of the subject; one or more shim gradient coils configured to perturb a spatial distribution of the linearly varying volume of magnetic field; and a control unit configured to operate the gradient coils, pulse generating coils, and shim gradient coils such that only the user-defined region within the volume of magnetic field is imaged.
    Type: Application
    Filed: May 22, 2017
    Publication date: November 22, 2018
    Inventors: Jeff Alan Stainsby, Chad Tyler Harris
  • Publication number: 20180299523
    Abstract: A method of manufacturing electromagnet coils for use in a magnetic resonance imaging (MRI) system is provided. The electromagnet coils are located in a non-homogeneous external magnetic field. The method comprises forming a coil representation of a coil surface for the electromagnet coils; setting limits for performance metrics for the electromagnet coils including a magnetic field-shape metric and at least one of an external torque metric and an external force metric, the external torque metric and the external force metric based, respectively, at least in part on a torque and a force exerted on the electromagnet coil by the non-homogeneous external magnetic field; forming a performance functional, based on the coil representation and the performance metrics, for generating a current density pattern over the coil surface; optimizing the performance functional and generating a current density pattern based on the optimized performance functional; and obtaining coil windings.
    Type: Application
    Filed: June 19, 2018
    Publication date: October 18, 2018
    Inventors: Geron Andre BINDSEIL, Chad Tyler HARRIS
  • Publication number: 20180279904
    Abstract: A method of imaging an implant device in a computing device is provided. The computing device includes a processor interconnected with a memory and a display. The method includes, at the processor: obtaining a first magnetic resonance (MR) image of a patient tissue, the first MR image containing a first magnetic field strength indicator; responsive to the implant device being inserted in the patient tissue, obtaining a second MR image of the patient tissue, the second MR image containing a second magnetic field strength indicator smaller than the first magnetic field strength indicator; registering the second MR image with the first MR image; generating a composite image from the first MR image and the second MR image; and presenting the composite image on the display.
    Type: Application
    Filed: October 6, 2015
    Publication date: October 4, 2018
    Inventors: Jeff STAINSBY, Alexander Gyles PANTHER, Chad Tyler HARRIS, Cameron Anthony PIRON
  • Patent number: 10082547
    Abstract: Some implementations provide a method for safe operation of a magnetic resonance imaging (MRI) system, the method including: determining, at least in part by using a sensor device, location information that indicates a location of an MR-incompatible object relative to the MRI system, the MRI system generating a polarizing magnetic field for imaging a subject; based on the determined location information, determining, by a control unit associated with the MRI system, that the MR-incompatible object poses an operational hazard to the MRI system; and in response to determining that the MR-incompatible object poses an operational hazard to the MRI system, reducing, by the control unit, a strength of the polarizing magnetic field.
    Type: Grant
    Filed: March 11, 2015
    Date of Patent: September 25, 2018
    Assignee: Synaptive Medical (Barbados) Inc.
    Inventors: Cameron Anthony Piron, Chad Tyler Harris, Jeff Alan Stainsby, Alexander Gyles Panther, Gal Sela
  • Patent number: 10078121
    Abstract: Gradient coils are operated to acquire magnetic resonance (MR) signals encoding a first MRI image over a first region inside a main magnet of the MRI system in which at least a portion of a subject is placed, the first region being located within a volume of uniform magnetic field with inhomogeneity below a defined threshold. An active coil is energized to shift the volume of uniform magnetic field such that a second region inside the main magnet of the MRI system is located within the shifted volume of uniform magnetic field, at least a portion of the second region being located outside of the volume of uniform magnetic field before the volume of uniform magnetic field has been shifted. The gradient coil is operated to acquire MR signals encoding a second MRI image over the second region.
    Type: Grant
    Filed: October 19, 2017
    Date of Patent: September 18, 2018
    Assignee: Synaptive Medical (Barbados) Inc.
    Inventors: Geron André Bindseil, Chad Tyler Harris
  • Publication number: 20180231624
    Abstract: Some implementations provide a system that includes: a main magnet including a bore and configured to generate a substantially uniform magnetic field in the bore; one or more gradient coils configured to perturb the substantially uniform magnetic field in the bore, wherein perturbing the substantially uniform magnetic field results in a first varying magnetic field outside of the bore; and one or more shielding units located outside of the bore and configured to generate a second varying magnetic field con figured to attenuate the first varying magnetic field outside of the bore.
    Type: Application
    Filed: August 6, 2015
    Publication date: August 16, 2018
    Inventors: Alexander Gyles PANTHER, Geron André BINDSEIL, Chad Tyler HARRIS, Mark Tuilio MORREALE
  • Patent number: 10024936
    Abstract: A method of manufacturing electromagnet coils for use in a magnetic resonance imaging (MRI) system is provided. The electromagnet coils are located in a non-homogeneous external magnetic field. The method comprises forming a coil representation of a coil surface for the electromagnet coils; setting limits for performance metrics for the electromagnet coils including a magnetic field-shape metric and at least one of an external torque metric and an external force metric, the external torque metric and the external force metric based, respectively, at least in part on a torque and a force exerted on the electromagnet coil by the non-homogeneous external magnetic field; forming a performance functional, based on the coil representation and the performance metrics, for generating a current density pattern over the coil surface; optimizing the performance functional and generating a current density pattern based on the optimized performance functional; and obtaining coil windings.
    Type: Grant
    Filed: December 9, 2014
    Date of Patent: July 17, 2018
    Assignee: SYNAPTIVE MEDICAL (BARBADOS) INC.
    Inventors: Geron Bindseil, Chad Tyler Harris
  • Patent number: 9989615
    Abstract: A method of correcting warping of an acquired image in an MRI system, caused by non-linearities in gradient field profiles of gradient coils is set forth, comprising a) constructing a computer model representing conducting pathways for each gradient coil in said MRI system; b) calculating a predicted magnetic field at each point in space for each said gradient coil in said model; c) measuring actual magnetic field at each point in space for each said gradient coil in said MRI system; d) verifying accuracy of said model by comparing said predicted magnetic field to said actual magnetic field at each said point in space and in the event said model is not accurate then repeating a)-d), and in the event said model is accurate then; constructing a distortion map for mapping coordinates in real space to coordinates in warped space of said acquired image based on deviations of said predicted magnetic field from linearity; and unwarping said warping of the acquired image using said distortion map.
    Type: Grant
    Filed: November 17, 2016
    Date of Patent: June 5, 2018
    Assignee: SYNAPTIVE MEDICAL (BARBADOS) INC.
    Inventors: Alexander Gyles Panther, Chad Tyler Harris, Philip J. Beatty
  • Publication number: 20180136292
    Abstract: A magnetic resonance imaging system is provided. The system includes a solenoid magnet configured to generate a static magnetic field and an annular coil assembly housed within at least a portion of the solenoid magnet. The coil assembly includes a gradient coil, wherein the annular coil assembly has an aperture formed therein.
    Type: Application
    Filed: January 12, 2018
    Publication date: May 17, 2018
    Inventors: Cameron Anthony Piron, Alexander Gylers Panther, Sheryl Rae Thingvold, Chad Tyler Harris, Jeff Alan Stainsby
  • Publication number: 20180113186
    Abstract: Disclosed herein are cerebrospinal diffusion phantoms which include a housing having a shape and size configured for insertion into a magnetic resonance coil in one or more preselected poses. A scaffold support structure is mounted on an interior of said housing and a plurality of elongated diffusion mimicking members supported on the support array. The elongated diffusion mimicking members are affixed to the scaffold support structure such that elongated diffusion mimicking members extend in directions needed to substantially emulate a 3 dimensional arrangement of cerebrospinal diffusion fiber tracts in a living organism; as well as modules for elimination of resolution based-bias, angular accuracy evaluation, diffusion rate calibration, and quality assurance image referencing. Each elongated diffusion mimicking member includes an aqueous component which can undergo diffusion along the elongated diffusion mimicking member.
    Type: Application
    Filed: December 21, 2017
    Publication date: April 26, 2018
    Inventors: Fergal KERINS, Timotheus Anton GMEINER, Jeff Alan STAINSBY, Chad Tyler HARRIS, Sheryl Rae THINGVOLD, Gregory Allan WHITTON
  • Publication number: 20180103890
    Abstract: A magnetic resonance imaging (MRI) system is provided for imaging immune response of soft tissue to therapy by, prior to therapy, administering a contrast agent to the soft tissue; imaging a region of interest using delta relaxation enhanced magnetic resonance (DREMR) to define a functional section; selectively sampling local cells in the functional section; conducting immuno-assay analysis on the sampled local cells; and following therapy, further imaging said region of interest using DREMR to assess immune response of said cells to therapy.
    Type: Application
    Filed: March 11, 2015
    Publication date: April 19, 2018
    Inventors: Cameron Anthony PIRON, Chad Tyler HARRIS, Jeff STAINSBY, Alexander Gyles PANTHER
  • Publication number: 20180102215
    Abstract: A method of manufacturing electromagnet coils for use in a magnetic resonance imaging (MRI) system is provided. The method comprises forming a coil representation of a coil surface for the electromagnet coils; setting a plurality of performance metric requirements for a plurality of performance metrics for the electromagnet coils, the plurality of performance metrics including a magnetic field-shape metric and an eddy-field metric; forming a performance functional, based on the coil representation and the plurality of performance metrics, for generating a current density pattern over the coil surface; optimizing the performance functional based on the plurality of performance metric requirements; generating a current density pattern over the coil surface based on the minimized performance functional; and obtaining coil windings from the current density pattern.
    Type: Application
    Filed: December 11, 2017
    Publication date: April 12, 2018
    Inventors: Geron André Bindseil, Chad Tyler Harris, William Bradfield Handler, Blaine Alexander Chronik
  • Publication number: 20180052210
    Abstract: Some implementations provide a method for safe operation of a magnetic resonance imaging (MRI) system, the method including: determining, at least in part by using a sensor device, location information that indicates a location of an MR-incompatible object relative to the MRI system, the MRI system generating a polarizing magnetic field for imaging a subject; based on the determined location information, determining, by a control unit associated with the MRI system, that the MR-incompatible object poses an operational hazard to the MRI system; and in response to determining that the MR-incompatible object poses an operational hazard to the MRI system, reducing, by the control unit, a strength of the polarizing magnetic field.
    Type: Application
    Filed: March 11, 2015
    Publication date: February 22, 2018
    Inventors: Cameron Anthony Piron, Chad Tyler Harris, Jeff Alan Stainsby, Alexander Gyles Panther, Gal Sela
  • Patent number: 9897668
    Abstract: A magnetic resonance imaging system is provided. The system includes a solenoid magnet configured to generate a static magnetic field and an annular coil assembly housed within at least a portion of the solenoid magnet. The coil assembly includes a gradient coil, wherein the annular coil assembly has an aperture formed therein.
    Type: Grant
    Filed: September 17, 2014
    Date of Patent: February 20, 2018
    Assignee: Synaptive Medical (Barbados) Inc.
    Inventors: Cameron Anthony Piron, Alexander Gylers Panther, Sheryl Rae Thingvold, Chad Tyler Harris, Jeff Alan Stainsby
  • Publication number: 20180038927
    Abstract: Gradient coils are operated to acquire magnetic resonance (MR) signals encoding a first MRI image over a first region inside a main magnet of the MRI system in which at least a portion of a subject is placed, the first region being located within a volume of uniform magnetic field with inhomogeneity below a defined threshold. An active coil is energized to shift the volume of uniform magnetic field such that a second region inside the main magnet of the MRI system is located within the shifted volume of uniform magnetic field, at least a portion of the second region being located outside of the volume of uniform magnetic field before the volume of uniform magnetic field has been shifted. The gradient coil is operated to acquire MR signals encoding a second MRI image over the second region.
    Type: Application
    Filed: October 19, 2017
    Publication date: February 8, 2018
    Inventors: Geron André Bindseil, Chad Tyler Harris