Patents by Inventor Bernard J. Michini

Bernard J. Michini 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: 10764196
    Abstract: Methods, systems, and apparatus, including computer programs encoded on computer storage media, for a distributed system architecture for unmanned air vehicles. One of the methods includes obtaining information identifying flight information of a UAV, with the flight information including flight phase information or a contingency condition associated with a flight critical module included in the UAV. The obtained information is analyzed, and one or more first payload modules are determined to enter a modified power state. Requests to enter the modified power state are caused to be transmitted to each determined payload module in the one or more first payload modules.
    Type: Grant
    Filed: June 6, 2016
    Date of Patent: September 1, 2020
    Assignee: Skydio, Inc.
    Inventors: Jonathan Downey, Bernard J. Michini, Brian Richman
  • Patent number: 10761525
    Abstract: Methods, systems, and apparatus, including computer programs encoded on computer storage media, for an unmanned aerial system inspection system. One of the methods is performed by a UAV and includes obtaining, from a user device, flight operation information describing an inspection of a vertical structure to be performed, the flight operation information including locations of one or more safe locations for vertical inspection. A location of the UAV is determined to correspond to a first safe location for vertical inspection. A first inspection of the structure is performed is performed at the first safe location, the first inspection including activating cameras. A second safe location is traveled to, and a second inspection of the structure is performed. Information associated with the inspection is provided to the user device.
    Type: Grant
    Filed: August 9, 2017
    Date of Patent: September 1, 2020
    Assignee: Skydio, Inc.
    Inventors: Brett Michael Bethke, Hui Li, Bernard J. Michini
  • Publication number: 20200269633
    Abstract: Systems, methods and apparatus for automated vehicle wheel removal and replacement are provided. One system includes a computer system with applications for scheduling the replacement of tires for the vehicle. An electronically controlled lift device and robotic apparatus is configured for interaction with the computer system. The lift device mechanically adjusts arms for placement on lift points of vehicles. The robotic apparatus detects positioning of lug nut configuration for a wheel, removes lug nuts, and then removes the wheel from the wheel hub with gripping arms. The wheel and tire are then handed off to a separate tire changing machine. When a new tire is replaced the robotic apparatus then mounts the wheel to the original wheel hub, and then secures the lug nuts to the lug nut bolts.
    Type: Application
    Filed: May 12, 2020
    Publication date: August 27, 2020
    Inventors: Jonathan Downey, Victor Darolfi, Robert Baranowski, Mark Bauer, Bernard J. Michini
  • Patent number: 10755585
    Abstract: Methods, systems, and apparatus, including computer programs encoded on computer storage media, for unmanned aerial vehicle authorization and geofence envelope determination. One of the methods includes determining, by an electronic system in an Unmanned Aerial Vehicle (UAV), an estimated fuel remaining in the UAV. An estimated fuel consumption of the UAV is determined. Estimated information associated with wind affecting the UAV is determined using information obtained from sensors included in the UAV. Estimated flights times remaining for a current path, and one or more alternative flight paths, are determined using the determined estimated fuel remaining, determined estimated fuel consumption, determined information associated wind, and information describing each flight path. In response to the electronic system determining that the estimated fuel remaining, after completion of the current flight path, would be below a first threshold, an alternative flight path is selected.
    Type: Grant
    Filed: February 13, 2017
    Date of Patent: August 25, 2020
    Assignee: Skydio, Inc.
    Inventors: Jonathan Downey, Bernard J. Michini, Joseph Moster, Donald Curry Weigel, James Ogden
  • Publication number: 20200108659
    Abstract: Systems, methods and apparatus for automated vehicle wheel removal and replacement are provided. One system includes a computer system with applications for scheduling the replacement of tires for the vehicle. An electronically controlled lift device and robotic apparatus is configured for interaction with the computer system. The lift device mechanically adjusts arms for placement on lift points of vehicles. The robotic apparatus detects positioning of lug nut configuration for a wheel, removes lug nuts, and then removes the wheel from the wheel hub with gripping arms. The wheel and tire are then handed off to a separate tire changing machine. When a new tire is replaced the robotic apparatus then mounts the wheel to the original wheel hub, and then secures the lug nuts to the lug nut bolts.
    Type: Application
    Filed: April 17, 2019
    Publication date: April 9, 2020
    Applicant: Everyday Robotics, Inc.
    Inventors: Jonathan Downey, Victor Darolfi, Robert Baranowski, Mark Bauer, Bernard J. Michini
  • Patent number: 10083616
    Abstract: Methods, systems, and apparatus, including computer programs encoded on computer storage media, for an unmanned aerial system inspection system. One of the methods is performed by a UAV and includes receiving, by the UAV, flight information describing a job to perform an inspection of a rooftop. A particular altitude is ascended to, and an inspection of the rooftop is performed including obtaining sensor information describing the rooftop. Location information identifying a damaged area of the rooftop is received. The damaged area of the rooftop is traveled to. An inspection of the damaged area of the rooftop is performed including obtaining detailed sensor information describing the damaged area. A safe landing location is traveled to.
    Type: Grant
    Filed: March 11, 2016
    Date of Patent: September 25, 2018
    Assignee: UNMANNED INNOVATION, INC.
    Inventors: Mark Patrick Bauer, Brian Richman, Alan Jay Poole, Bernard J. Michini, Jonathan Anders Lovegren, Brett Michael Bethke, Hui Li
  • Patent number: 10061470
    Abstract: Methods, systems, and apparatus, including computer programs encoded on computer storage media, for an unmanned aerial system inspection system. One of the methods is performed by a UAV and includes receiving, by the UAV, flight information describing a job to perform an inspection of a rooftop. A particular altitude is ascended to, and an inspection of the rooftop is performed including obtaining sensor information describing the rooftop. Location information identifying a damaged area of the rooftop is received. The damaged area of the rooftop is traveled to. An inspection of the damaged area of the rooftop is performed including obtaining detailed sensor information describing the damaged area. A safe landing location is traveled to.
    Type: Grant
    Filed: March 27, 2017
    Date of Patent: August 28, 2018
    Assignee: Unmanned Innovation, Inc.
    Inventors: Brian Richman, Mark Patrick Bauer, Bernard J. Michini, Alan Jay Poole
  • Publication number: 20180204469
    Abstract: Methods, systems and apparatus, including computer programs encoded on computer storage media for unmanned aerial vehicle flight operations near physical structures or objects. In particular, a point cloud of the physical structure is generated using aerial images of the structure. The point cloud is then referenced to determine a flight path for the UAV to follow around the physical structure, determine whether a planned flight path to desired locations around the structure is possible, determine the fastest route to return home and land from a given position around the physical structure, determine possibility of inflight collision to surface represented in point cloud, or determine an orientation of a fixed or gimbaled camera given a position of the UAV relative the point cloud.
    Type: Application
    Filed: January 12, 2018
    Publication date: July 19, 2018
    Inventors: Joseph Moster, Donna Okazaki, Bernard J. Michini
  • Patent number: 10025307
    Abstract: A modular vehicle management system is described, comprising a controller module configured to control different types of carrier modules. The controller module includes a computer system and optionally one or more sensors. The computer system is configured to perform operations comprising detecting whether a carrier module is connected to the controller module. If the carrier module is connected to the controller module, the carrier module is authenticated. If the authentication fails, operation of the vehicle is inhibited. The control module is configured to determine carrier module capabilities including information regarding a navigation processing device, and/or a radio modem. The controller adapts to the capabilities of the controller module. Using information from the sensors and the navigation processing device, the vehicle management system navigates the vehicle.
    Type: Grant
    Filed: January 7, 2016
    Date of Patent: July 17, 2018
    Assignee: Unmanned Innovation, Inc.
    Inventors: Jonathan B. Downey, Bernard J. Michini
  • Publication number: 20180188721
    Abstract: Methods, systems, and apparatus, including computer programs encoded on computer storage media, for an unmanned aerial system inspection system. One of the methods is performed by a UAV and includes obtaining, from a user device, flight operation information describing an inspection of a vertical structure to be performed, the flight operation information including locations of one or more safe locations for vertical inspection. A location of the UAV is determined to correspond to a first safe location for vertical inspection. A first inspection of the structure is performed is performed at the first safe location, the first inspection including activating cameras. A second safe location is traveled to, and a second inspection of the structure is performed. Information associated with the inspection is provided to the user device.
    Type: Application
    Filed: August 9, 2017
    Publication date: July 5, 2018
    Inventors: Brett Michael Bethke, Hui Li, Bernard J. Michini
  • Publication number: 20180156614
    Abstract: Methods, systems, and apparatus, including computer programs encoded on computer storage media, for ground control point assignment and determination. One of the methods includes receiving information describing a flight plan for the UAV to implement, the flight plan identifying one or more waypoints associated with geographic locations assigned as ground control points. A first waypoint identified in the flight plan is traveled to, and an action to designate a surface at the associated geographic location is designated as a ground control point. Location information associated with the designated surface is stored. The stored location information is provided to an outside system for storage.
    Type: Application
    Filed: December 1, 2017
    Publication date: June 7, 2018
    Inventors: Bernard J. Michini, Brett Michael Bethke, Fabien Blanc-Paques
  • Publication number: 20180109767
    Abstract: Methods, systems, and apparatus, including computer programs encoded on computer storage media, for a sensor activation and correlation system. One of the methods includes obtaining information describing a flight plan for implementation. A trigger associated with activating a camera included in an unmanned aerial vehicle (UAV) is determined to be satisfied. Information indicating that the camera is to capture an image is provided to the camera. A first timestamp associated with the image is obtained and stored. Information indicating that the image was captured is received and associated with the obtained first timestamp. Information indicating that the camera captured the image is provided to a user device in communication with the UAV.
    Type: Application
    Filed: February 12, 2016
    Publication date: April 19, 2018
    Inventors: Hui Li, John Bressler, Volkan Gurel, Bernard J. Michini
  • Patent number: 9915946
    Abstract: Methods, systems, and apparatus, including computer programs encoded on computer storage media, for an unmanned aerial system inspection system. One of the methods is performed by a UAV and includes receiving, by the UAV, flight information describing a job to perform an inspection of a rooftop. A particular altitude is ascended to, and an inspection of the rooftop is performed including obtaining sensor information describing the rooftop. Location information identifying a damaged area of the rooftop is received. The damaged area of the rooftop is traveled to. An inspection of the damaged area of the rooftop is performed including obtaining detailed sensor information describing the damaged area. A safe landing location is traveled to.
    Type: Grant
    Filed: March 17, 2017
    Date of Patent: March 13, 2018
    Assignee: UNMANNED INNOVATION, INC.
    Inventors: Alan Jay Poole, Mark Patrick Bauer, Volkan Gurel, Bernard J. Michini, Justin Eugene Kuehn
  • Patent number: 9881213
    Abstract: Methods, systems, and apparatus, including computer programs encoded on computer storage media, for an unmanned aerial system inspection system. One of the methods is performed by a UAV and includes receiving, by the UAV, flight information describing a job to perform an inspection of a rooftop. A particular altitude is ascended to, and an inspection of the rooftop is performed including obtaining sensor information describing the rooftop. Location information identifying a damaged area of the rooftop is received. The damaged area of the rooftop is traveled to. An inspection of the damaged area of the rooftop is performed including obtaining detailed sensor information describing the damaged area. A safe landing location is traveled to.
    Type: Grant
    Filed: March 17, 2017
    Date of Patent: January 30, 2018
    Assignee: UNMANNED INNOVATION, INC.
    Inventors: Bernard J. Michini, Hui Li, Brett Michael Bethke
  • Publication number: 20180004207
    Abstract: In some implementations, a UAV flight system can dynamically adjust UAV flight operations based on radio frequency (RF) signal data. For example, the flight system can determine an initial flight plan for inspecting a RF transmitter and configure a UAV to perform an aerial inspection of the RF transmitter. Once airborne, the UAV can collect RF signal data and the flight system can automatically adjust the flight plan to avoid RF signal interference and/or damage to the UAV based on the collected RF signal data. In some implementations, the UAV can collect RF signal data and generate a three-dimensional received signal strength map that describes the received signal strength at various locations within a volumetric area around the RF transmitter. In some implementations, the UAV can collect RF signal data and determine whether a RF signal transmitter is properly aligned.
    Type: Application
    Filed: June 29, 2017
    Publication date: January 4, 2018
    Inventors: Bernard J. Michini, Fabien Blanc-Pâques, Logan Cummings
  • Publication number: 20180003656
    Abstract: Methods, systems, and program products of inspecting solar panels using unmanned aerial vehicles (UAVs) are disclosed. A UAV can obtain a position of the Sun in a reference frame, a location of a solar panel in the reference frame, and an orientation of the solar panel in the reference frame. The UAV can determine a viewing position of the UAV in the reference frame based on at least one of the position of the Sun, the location of the solar panel, and the orientation of the solar panel. The UAV can maneuver to the viewing position and point a thermal sensor onboard the UAV at the solar panel. The UAV can capture, by the thermal sensor, a thermal image of at least a portion of the solar panel. A server onboard the UAV or connected to the UAV can detect panel failures based on the thermal image.
    Type: Application
    Filed: June 30, 2017
    Publication date: January 4, 2018
    Applicant: Unmanned Innovation Inc.
    Inventors: Bernard J. Michini, Fabien Blanc-Paques, Edward Dale Steakley
  • Publication number: 20180004231
    Abstract: In some implementations, a UAV flight system can dynamically adjust UAV flight operations based on thermal sensor data. For example, the flight system can determine an initial flight plan for inspecting a flare stack and configure a UAV to perform an aerial inspection of the flare stack. Once airborne, the UAV can collect thermal sensor data and the flight system can automatically adjust the flight plan to avoid thermal damage to the UAV based on the thermal sensor data.
    Type: Application
    Filed: June 29, 2017
    Publication date: January 4, 2018
    Inventors: Bernard J. Michini, Fabien Blanc-Pâques
  • Publication number: 20180003161
    Abstract: Methods, systems and apparatus, including computer programs encoded on computer storage media for an unmanned aerial vehicle (UAV) wind turbine inspection system. One of the methods includes obtaining first sensor information by an unmanned aerial vehicle (UAV), the first sensor information describing physical aspects of a wind turbine, including one or more blades of the wind turbine. An orientation of the blades of the wind turbine are determined based on the obtained first sensor information. A flight pattern for the UAV to inspect the blades of the wind turbine is determined, the flight pattern being based on the determined orientation of the blades. Each of the blades of the wind turbine is inspected by the UAV according to the determined flight pattern, the inspection including obtaining second sensor information describing the blades of the wind turbine.
    Type: Application
    Filed: June 29, 2017
    Publication date: January 4, 2018
    Inventors: Bernard J. Michini, Fabien Blanc-Paques
  • Publication number: 20180002010
    Abstract: Methods, systems, and apparatus, including computer programs encoded on computer storage media, for an unmanned aerial system inspection system. One of the methods is performed by a UAV and includes obtaining, from a user device, flight operation information describing an inspection of a vertical structure to be performed, the flight operation information including locations of one or more safe locations for vertical inspection. A location of the UAV is determined to correspond to a first safe location for vertical inspection. A first inspection of the structure is performed is performed at the first safe location, the first inspection including activating cameras. A second safe location is traveled to, and a second inspection of the structure is performed. Information associated with the inspection is provided to the user device.
    Type: Application
    Filed: June 29, 2017
    Publication date: January 4, 2018
    Inventors: Mark Patrick Bauer, Bernard J. Michini, Brett Michael Bethke
  • Publication number: 20170357273
    Abstract: Methods, systems and apparatus, including computer programs encoded on computer storage media for unmanned aerial vehicle beyond visual line of sight (BVLOS) flight operations. In an embodiment, a flight planning system of an unmanned aerial vehicle (UAV) can identify handoff zones along a UAV flight corridor for transferring control of the UAV between ground control stations. The start of the handoff zones can be determined prior to a flight or while the UAV is in flight. For handoff zones determined prior to flight, the flight planning system can identify suitable locations to place a ground control station (GCS). The handoff zone can be based on a threshold visual line of sight range between a controlling GCS and the UAV. For determining handoff zones while in flight, the UAV can monitor RF signals from each GCS participating in the handoff to determine the start of a handoff period.
    Type: Application
    Filed: June 8, 2017
    Publication date: December 14, 2017
    Inventors: Bernard J. Michini, Logan Cummings, Edward Dale Steakley