B64U80/30

METHODS FOR LAUNCHING AND LANDING AN UNMANNED AERIAL VEHICLE
20230409048 · 2023-12-21 ·

An aerial vehicle landing method includes controlling to decelerate, with aid of one or more processors and in response to at least two of a plurality of conditions being satisfied, the aerial vehicle to cause the aerial vehicle to land autonomously. The plurality of conditions includes determining that an external signal related to a human is detected via one or more sensors; determining that a location/orientation change of the aerial vehicle is detected while the aerial vehicle is airborne; and determining that an external contact from an external object is exerted upon the aerial vehicle, the external object being an object that is not part of the aerial vehicle.

Methods and systems of anchoring an unmanned aerial vehicle on a ground station

An unmanned aerial vehicle (UAV) ground station, comprising: a landing surface having a perimeter and a center; a plurality of pushers held above the landing surface by a plurality of linear actuators; at least one electro-mechanical connector attached to one of the plurality of pushers, mechanically adapted to be electrically connected to a compatible electro-mechanical connector of a UAV; and a landing detection controller adapted to instruct the plurality of linear actuators to move the plurality of pushers simultaneously from the perimeter toward the center when a landing event related to the UAV is detected.

DEVICE AND SYSTEM FOR DOCKING AN AERIAL VEHICLE
20210056856 · 2021-02-25 ·

A system for securing an aerial vehicle to a lower portion of a docking station, including a docking station having a top section located in an upper portion of the docking station, the top section having an interface configured to hang the docking station above the ground and a bottom section located in a lower portion of the docking station, the docking station having a latching mechanism located on the bottom section, configured to secure the aerial vehicle to the docking station, the system also including the aerial vehicle having a docking member configured to dock the aerial vehicle into the docking station and to release the aerial from the latching mechanism of the docking station, and a processing module configured to control the operation of the docking member.

Pod cover system for a vertical take-off and landing (VTOL) unmanned aerial vehicle (UAV)

An unmanned aerial vehicle (UAV) storage and launch system includes a UAV pod having an open position and a closed position, the closed position establishing an interior that is weather resistant to an environment external to the UAV pod and a vertical takeoff and landing (VTOL) UAV enclosed in the UAV pod so that the UAV pod in the closed position provides a weather resistant interior for the VTOL UAV.

AERIAL VEHICLE FLEET MAINTENANCE SYSTEMS AND METHODS

Systems and methods to maintain a fleet of aerial vehicles may include a maintenance system, a charging power source, and a control system. For example, the maintenance system may include a plurality of workstations to perform maintenance tasks, a charging rail that connects the workstations with the charging power source, and a plurality of platforms that move along the charging rail. The control system may instruct a platform to receive an aerial vehicle, couple the aerial vehicle to the charging rail, move the aerial vehicle among the workstations, and charge a battery of the aerial vehicle via the charging rail during movement and/or performance of various maintenance tasks.

AUTONOMOUS DRONE DIAGNOSIS
20200361634 · 2020-11-19 ·

Embodiments of the present disclosure are directed to systems and methods for autonomously performing and/or facilitating drone diagnostic functions. Prior to a mission of a UAV, an inspection station comprising at least one imaging sensor and at least one directional force sensor may be used to perform a plurality of air worthiness inspections and/or maintenance checks with little to no human intervention. Once the UAV has been determined to be air worthy, it is approved for a subsequent mission.

UAV LANDING SYSTEMS AND METHODS
20200310465 · 2020-10-01 ·

Example UAV landing systems and methods are described. In one implementation, a landing platform includes a conveyor belt capable of supporting an unmanned aerial vehicle (UAV). The conveyor belt can move in a first direction and a second direction that is opposite the first direction. The landing platform also includes a first positioning bumper and a second positioning bumper, where the first positioning bumper and the second positioning bumper are capable of repositioning the UAV on the conveyor belt. The landing platform further includes a cradle that can receive and secure the UAV.

SYSTEMS AND METHODS FOR AUTONOMOUS ROBOTIC SURGERY
20200281670 · 2020-09-10 ·

Systems and methods are provided for autonomous robotic surgery which is preferably integrated with autonomous-assisted intraoperative real-time single modality and/or multi-modality fusion imaging/electrophysiological diagnostics. The robotic surgery systems and methods can be integrated with autonomous-assisted intraoperative body/limb positioning, and integrated with autonomous-assisted land and unmanned aerial vehicular patient transportation.

Drones convertible into personal computers
10766618 · 2020-09-08 · ·

Drones convertible into personal computers are disclosed, A disclosed unmanned aerial vehicle (UAV) includes a body and rotors carried by the body. The rotors move relative to the body from a first position when the UAV is in a drone mode to a second position when the UAV is in a computer mode.

Drone physical and data interface for enhanced distance coverage

There are provided systems and methods for a drone physical and data interface for enhanced distance coverage. An unmanned aerial vehicle or a drone may be unable to operate over a distance due to range limitations. The drone may utilize onboard systems and communications with other devices and servers to detect another vehicle operating over at least a portion of the distance, where connecting to the vehicle and using the vehicles resources for travel over the portion of the distance decreases the flight time of the drone. The drone may utilize a camera and communications with the vehicle or server to determine a connection point to the vehicle, and may connect to the vehicle to travel the portion of the distance. If the drone has not yet arrived at the destination and still requires further assistance reaching it, the drone may locate another vehicle to further use.