IP Library Granted Patent US 12,084,179
Granted Patent B2
US 12,084,179 · App. 17/055,537 · Granted Sep 10, 2024

System and method for drone tethering

Inventors: Gaemus Collins (San Diego, CA); Allan Matthew (San Diego, CA); David Twining (San Diego, CA)
Assignee: AEROVIRONMENT, INC.
B64C39/022B64C39/024B64D47/08B64F3/02G01L5/04G05D1/101H04W4/40B64U10/13B64U30/20B64U2101/30B64U2201/202
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Quick Facts
Patent No.
US 12,084,179
App. No.
17/055,537
Granted
Sep 10, 2024
Kind
B2
Abstract

Systems and methods including: a UAV comprising: a sensor configured to measure sensor data and a UAV propeller; a mobile platform; a tether attached to the UAV and to the mobile platform; and a digital processing device comprising: at least one processor, an operating system configured to perform executable instructions, a memory, and a computer program including instructions executable by the digital processing device to create a tethered UAV application comprising: a transmission module receiving the sensor data from the sensor at a selected rate; a locational module estimating a relative three-dimensional position of the UAV to the mobile platform, based on the sensor data; and a navigation module directing the UAV propeller and the mobile platform, based on the relative three-dimensional position, to adjust the relative three-dimensional position within a set value.

Claims (28)

1. A unmanned aerial vehicle (UAV) system, the UAV system comprising:

a UAV comprising:

a sensor configured to measure sensor data;

a mobile platform, wherein the mobile platform comprises a tether spool and an information-encoded target pattern;

a tether attached to the UAV and to the mobile platform; and

a digital processing device comprising: at least one processor, an operating system configured to perform executable instructions, a memory, and a computer program including instructions executable by the digital processing device to create a tethered UAV application comprising:

a transmission module configured to receive the sensor data from the sensor;

a locational module configured to detect and track the target pattern to determine a relative three-dimensional position of the UAV to the mobile platform, based on the sensor data;

a navigation module configured to direct the UAV, based on the relative three-dimensional position to maintain accurate and constant vertical distance from the mobile platform throughout at least a portion of a flight of the UAV, even as the mobile platform moves up and down; and

a spooling module configured to pay out or reel in the tether spool based at least on the relative three-dimensional position, wherein relative motion between the UAV and the mobile platform is reduced to thereby reduce heat generated and wear on the tether spool.

2. The UAV system of claim 1 , wherein the tethered UAV application is repeatedly executed for a plurality of times.

3. The UAV system of claim 1 , wherein the mobile platform comprises a boat, truck, car, van, sled, person, ship, aircraft, submarine, bicycle, motorcycle, crane, tractor, wind turbine, or a combination thereof.

4. The UAV system of claim 1 , wherein the spooling module is further configured to pay out or reel in the tether spool based on at least one of: a measured weather data and a predicted weather data.

5. The UAV system of claim 1 , wherein the tether is unspooled when the UAV takes off from the mobile platform.

6. The UAV system of claim 1 , wherein at least one of the UAV, the mobile platform, and the tether comprises a tensiometer configured to measure a tether tension force.

7. The UAV system of claim 6 , wherein the navigation module further directs at least one of the UAV propeller and the mobile platform based on the tether tension force.

8. The UAV system of claim 7 , wherein the navigation module directs at least one of the UAV and the mobile platform to maintain the tether tension force below a predetermined threshold.

9. The UAV system of claim 1 , wherein the navigation module directs at least one of the UAV and the mobile platform during a UAV takeoff, a UAV landing, a UAV translation, a UAV rotation, or any combination thereof.

10. The UAV system of claim 1 , wherein the target pattern is a unique 2-dimensional pattern with high contrast.

11. The UAV system of claim 1 , wherein the relative three-dimensional position comprises a vector, a distance, a position, an altitude, an attitude, a velocity, an acceleration, an orientation, or a combination thereof.

12. The UAV system of claim 1 , wherein the sensor comprises one or more of: a vision sensor, a proximity sensor, and an inertial sensor, a gyroscope, a pressure sensor, a tachometer, an anemometer, a camera, an ultrasonic sensor, a light detection and ranging (LIDAR) sensor, and an inertial measurement unit.

13. The UAV system of claim 1 , wherein at least one of the UAV and the mobile platform comprises a wireless communication unit configured to receive an instruction from a remote operator.

14. The UAV system of claim 13 , wherein the instruction comprises at least one of the relative three-dimensional position, a mobile platform heading, a mobile platform velocity, a UAV heading, a UAV velocity, and a UAV altitude.

15. The UAV system of claim 1 , wherein the mobile platform further comprises a tether spool.

16. The UAV system of claim 1 , wherein the tether spool comprises a motor driven pinch roller configured to feed the tether in or out based on the relative three-dimensional position of the UAV to the mobile platform on which the motor driven pinch roller is attached.

17. The UAV system of claim 1 , wherein the navigation module is further configured to direct the at least one of the UAV and the mobile platform based on the relative three-dimensional position, to maintain a substantially constant relative position of the UAV to the mobile platform.

18. The UAV system of claim 17 , wherein the substantially constant relative position comprises a substantially constant relative X position of the UAV to the mobile platform, a substantially constant relative Y position of the UAV to the mobile platform, a substantially constant relative Z position of the UAV to the mobile platform, a substantially constant relative three-dimensional position of the UAV to the mobile platform, or a combinations thereof.

19. The UAV system of claim 1 , wherein the navigation module is further configured to direct the UAV to maintain a substantially constant altitude of the UAV.

Assignments (3)
SECURITY INTEREST Recorded Oct 4, 2024
From: AEROVIRONMENT, INC.
To: BANK OF AMERICA, N.A., AS THE ADMINISTRATIVE AGENT
Reel/Frame 069113/0683 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 2, 2023
From: PLANCK AEROSYSTEMS, INC.
To: AEROVIRONMENT, INC.
Reel/Frame 063507/0257 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 26, 2021
From: COLLINS, GAEMUS; MATTHEW, ALLAN; TWINING, DAVID
To: PLANCK AEROSYSTEMS INC.
Reel/Frame 055030/0662 →
Continuity (2)
Provisional Application 62675643 · May 23, 2018
Related Publication 20210129982A1 · May 6, 2021
Cited By (1)
US 12,595,083