Patents by Inventor Marco Beccani

Marco Beccani 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: 10799154
    Abstract: A clinical assessment tool coupled to a walking aid for enhancing a therapist's observation-based gait assessment with use of additional objective and quantitative data such as acceleration, angular velocity, and applied forces. The assessment tool facilitates appropriate assistive gait device prescription, provides patients and therapists feedback during gait training, and reduces wrist and shoulder injuries with walking aid usage. The assessment tool is configured to detect timing and speed of walking aid, placement, angular acceleration of the walking aid, and amounts of weight borne on the walking aid.
    Type: Grant
    Filed: March 11, 2016
    Date of Patent: October 13, 2020
    Assignee: Vanderbilt University
    Inventors: Nilanjan Sarkar, Thomas J. Withrow, Joshua W. Wade, Robert Boyles, Alec Myszka, Esube T. Bekele, Marco Beccani
  • Patent number: 10758111
    Abstract: Systems and methods are provided for controlling lateral movement of a medical capsule system. A capsule housing is configured to be inserted into an anatomical structure of a patient. The multichannel tether is coupled to a rear of the capsule and includes at least one liquid exhaust channel conveying liquid to the capsule housing. The plurality of liquid exhaust ports are positioned around an outer circumference of the capsule housing and each configured to controllably expel liquid laterally from the capsule housing at varying rates to affect lateral movement of the capsule housing.
    Type: Grant
    Filed: September 9, 2015
    Date of Patent: September 1, 2020
    Assignee: Vanderbilt University
    Inventors: Pietro Valdastri, Keith Obstein, Robert Caprara, Christopher Lyne, Federico Campisano, Gabrielmaria Scozzarro, Alexander Vartanian, William Jones, Christian Di Natali, Marco Beccani, Erdem Erdemir, Douglas R. Morgan
  • Patent number: 10485409
    Abstract: Systems and methods are described for determining an orientation and position of a capsule inserted into the body of a patient. A magnetic field is applied to an area of the patient where the capsule is located. Sensor data, including inertial data from an inertial sensor and magnetic field data indicative of the applied magnetic field as detected by at least one magnetic field sensor, is wirelessly received from the capsule. An orientation angle of the capsule is determined based at least in part on the inertial data. The magnetic field data is compared to known characteristics of the applied magnetic field and a location of the capsule is determined based on the comparison.
    Type: Grant
    Filed: January 17, 2014
    Date of Patent: November 26, 2019
    Assignee: Vanderbilt University
    Inventors: Christian Di Natali, Marco Beccani, Pietro Valdastri, Keith L. Obstein
  • Patent number: 9826904
    Abstract: A system and method for detecting a tissue property. The system comprises a first unit positioned outside a patient body and a second unit positioned inside the patient's body. The first unit includes a first housing, and a magnetic field source supported by the first housing. The second unit includes a second housing, a pressure sensor supported by the second housing, a localization module supported by the second housing, a controller, and a power source. The pressure sensor is configured to detect an indentation force applied to the tissue, and the second unit is configured to wirelessly transmit the indentation force data and localization data to a computer to generate a volumetric stiffness map for the tissue.
    Type: Grant
    Filed: March 20, 2014
    Date of Patent: November 28, 2017
    Assignee: Vanderbilt University
    Inventors: Pietro Valdastri, Marco Beccani, Christian Di Natali
  • Publication number: 20170245741
    Abstract: Systems and methods are provided for controlling lateral movement of a medical capsule system. A capsule housing is configured to be inserted into an anatomical structure of a patient. The multichannel tether is coupled to a rear of the capsule and includes at least one liquid exhaust channel conveying liquid to the capsule housing. The plurality of liquid exhaust ports are positioned around an outer circumference of the capsule housing and each configured to controllably expel liquid laterally from the capsule housing at varying rates to affect lateral movement of the capsule housing.
    Type: Application
    Filed: September 9, 2015
    Publication date: August 31, 2017
    Inventors: Pietro Valdastri, Keith Obstein, Robert Caprara, Christopher Lyne, Federico Campisano, Gabrielmaria Scozzarro, Alexander Vartanian, William Jones, Christian Di Natali, Marco Beccani, Erdem Erdemir
  • Publication number: 20160262661
    Abstract: A clinical assessment tool coupled to a walking aid for enhancing a therapist's observation-based gait assessment with use of additional objective and quantitative data such as acceleration, angular velocity, and applied forces. The assessment tool facilitates appropriate assistive gait device prescription, provides patients and therapists feedback during gait training, and reduces wrist and shoulder injuries with walking aid usage. The assessment tool is configured to detect timing and speed of walking aid, placement, angular acceleration of the walking aid, and amounts of weight borne on the walking aid.
    Type: Application
    Filed: March 11, 2016
    Publication date: September 15, 2016
    Inventors: Nilanjan Sarkar, Thomas J. Withrow, Joshua W. Wade, Robert Boyles, Alec Myszka, Esube T. Bekele, Marco Beccani
  • Publication number: 20150342501
    Abstract: Systems and methods are described for determining an orientation and position of a capsule inserted into the body of a patient. A magnetic field is applied to an area of the patient where the capsule is located. Sensor data, including inertial data from an inertial sensor and magnetic field data indicative of the applied magnetic field as detected by at least one magnetic field sensor, is wirelessly received from the capsule. An orientation angle of the capsule is determined based at least in part on the inertial data. The magnetic field data is compared to known characteristics of the applied magnetic field and a location of the capsule is determined based on the comparison.
    Type: Application
    Filed: January 17, 2014
    Publication date: December 3, 2015
    Applicant: Vanderbilt University
    Inventors: Christian Di Natali, Marco Beccani, Pietro Valdastri, Keith L. Obstein
  • Publication number: 20140206953
    Abstract: A system and method for detecting a tissue property. The system comprises a first unit positioned outside a patient body and a second unit positioned inside the patient's body. The first unit includes a first housing, and a magnetic field source supported by the first housing. The second unit includes a second housing, a pressure sensor supported by the second housing, a localization module supported by the second housing, a controller, and a power source. The pressure sensor is configured to detect an indentation force applied to the tissue, and the second unit is configured to wirelessly transmit the indentation force data and localization data to a computer to generate a volumetric stiffness map for the tissue.
    Type: Application
    Filed: March 20, 2014
    Publication date: July 24, 2014
    Applicant: Vanderbilt University
    Inventors: Pietro Valdastri, Marco Beccani, Christian Di Natali
  • Publication number: 20140081120
    Abstract: A system and method of detecting and assessing a tissue surface property without a separate access port to internal anatomical structures. The system includes a first unit positioned outside the patient's body and a second unit positioned inside the patient's body. The first unit includes a magnetic field source and a force sensor and is positioned outside the patient's body in a position that enables magnetic coupling with the second unit, which is inside the patient's body. The second unit includes a magnetic field source, a processor, a sensor, a telemetry unit, a power source, and an optional actuator or other components. The resulting attractive force between the internal and external magnetic field sources can be perceived by the force sensor of the first unit. By varying the distance between the two units, the attractive force triggers a variable stress on the tissue surrounding the second unit in the direction of the magnetic field source in the first unit.
    Type: Application
    Filed: September 16, 2013
    Publication date: March 20, 2014
    Applicant: Vanderbilt University
    Inventors: Pietro Valdastri, Marco Beccani, Christian Di Natali