IP Library Granted Patent US 10,317,914
Granted Patent B2
US 10,317,914 · App. 15/131,914 · Granted Jun 11, 2019

Wind finding and compensation for unmanned aircraft systems

Inventors: Jason Michael K. Douglas (Tucson, AZ); Justin Armer (Tucson, AZ); Carlos Murphy (Tucson, AZ)
Assignee: LATITUDE ENGINEERING, LLC
G05D1/0816B64C29/0008B64C39/024G05D1/0833G05D1/0858B64C2201/024B64C2201/042B64C2201/044B64C2201/088B64C2201/108B64C2201/141
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 10,317,914
App. No.
15/131,914
Granted
Jun 11, 2019
Kind
B2
Abstract

An unmanned aircraft includes a forward propulsion system comprising one or more forward thrust engines and one or more corresponding rotors coupled to the forward thrust engines; a vertical propulsion system comprising one or more vertical thrust engines and one or more corresponding rotors coupled to the vertical thrust engines; a plurality of sensors; and a yaw control system, that includes a processor configured to monitor one or more aircraft parameters received from at least one of the plurality of sensors and to enter a free yaw control mode based on the received aircraft parameters.

Claims (37)

1. An unmanned aircraft, comprising:

a forward propulsion system comprising a forward thrust engine and a first rotor coupled to the forward thrust engine;

a vertical propulsion system comprising a plurality of vertical thrust engines and a plurality of second rotors each coupled to one of the plurality of vertical thrust engines;

a plurality of sensors; and

a yaw control system, comprising a processor configured to monitor one or more aircraft parameters received from at least one of the plurality of sensors and to enter a free yaw control mode by determining that a high-yaw moment condition exists based on the received aircraft parameters.

2. The unmanned aircraft of claim 1 , wherein determining that a high-yaw moment condition exists comprises:

monitoring at least a yaw moment parameter of the received aircraft parameters, the yaw moment parameter associated with a vertical takeoff and landing (VTOL) multirotor system control of a yaw orientation;

determining whether the monitored yaw moment parameter is above a predetermined threshold; and

entering the free yaw control mode if the monitored yaw moment is above the determined threshold.

3. The unmanned aircraft of claim 2 , wherein the processor is further configured to monitor the unmanned aircraft to determine whether to exit the free yaw control mode.

4. The unmanned aircraft of claim 3 , wherein monitoring the unmanned aircraft to determine whether to exit the free yaw control mode comprises determining whether a forward thrust for the unmanned aircraft is below a determined threshold.

5. The unmanned aircraft of claim 2 , wherein the free yaw control mode comprises eliminating yaw control for the unmanned aircraft such that the yaw orientation is controlled by an airflow of relative wind.

6. The unmanned aircraft of claim 2 , wherein the free yaw control mode comprises reducing yaw control for the aircraft such that the yaw orientation is at least partially controlled by an airflow of relative wind.

7. The unmanned aircraft of claim 1 , wherein the unmanned aircraft is a multirotor aircraft and the vertical propulsion system comprises four vertical thrust engines and four corresponding rotors.

8. The unmanned aircraft of claim 1 , wherein the unmanned aircraft is a hybrid multirotor aircraft.

9. The unmanned aircraft of claim 1 , wherein the forward thrust engine comprises an internal combustion engine or an electric motor.

10. An unmanned aircraft system, comprising:

an unmanned aircraft, comprising:

a forward propulsion system comprising a forward thrust engine and a first rotor coupled to the forward thrust engine;

a vertical propulsion system comprising a plurality of vertical thrust engines and a plurality of second rotors each coupled to one of the plurality of vertical thrust engines;

an onboard aircraft controller comprising a first output coupled to the forward propulsion system and a second output coupled to the vertical propulsion system; and

a first communication transceiver coupled to the aircraft controller configured to communicate with a remote control system;

the remote control system, comprising:

a second communication transceiver configured to communicate with the unmanned aircraft; and

an aircraft control system communicatively coupled to the second communication transceiver; and

a yaw control system, comprising a processor configured to monitor one or more aircraft parameters received from at least one of a plurality of sensors and to enter a free yaw control mode by determining that a high-yaw moment condition exists based on the received aircraft parameters.

11. The unmanned aircraft system of claim 10 , wherein determining that a high-yaw moment condition exists comprises:

monitoring at least a yaw moment parameter of the received aircraft parameters, the yaw moment parameter associated with a vertical takeoff and landing (VTOL) multirotor system control of a yaw orientation;

determining whether the monitored yaw moment parameter is above a predetermined threshold; and

entering the free yaw control mode if the monitored yaw moment is above the determined threshold.

12. The unmanned aircraft system of claim 11 , wherein the processor is further configured to monitor the unmanned aircraft to determine whether to exit the free yaw control mode.

13. The unmanned aircraft system of claim 12 , wherein monitoring the unmanned aircraft to determine whether to exit the free yaw control mode comprises determining whether a forward thrust for the aircraft is below a determined threshold.

14. The unmanned aircraft system of claim 11 , wherein the free yaw control mode comprises eliminating yaw control for the unmanned aircraft such that the yaw orientation is controlled by an airflow of the relative wind.

15. The unmanned aircraft system of claim 11 , wherein the free yaw control mode comprises reducing yaw control for the unmanned aircraft such that the yaw orientation is at least partially controlled by an airflow of relative wind.

16. The unmanned aircraft system of claim 10 , wherein the unmanned aircraft is a multirotor aircraft and the vertical propulsion system comprises four vertical thrust engines and four corresponding rotors.

17. The unmanned aircraft system of claim 10 , wherein the unmanned aircraft is a hybrid multirotor aircraft.

18. The unmanned aircraft system of claim 10 , wherein the forward thrust engine comprises an internal combustion engine or an electric motor.

Assignments (6)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 3, 2025
From: L3 TECHNOLOGIES, INC.
To: VERTICAL AUTONOMY, LLC
Reel/Frame 073100/0928 →
MERGER AND CHANGE OF NAME Recorded Jan 22, 2024
From: L3HARRIS UNMANNED SYSTEMS, INC.; L3 TECHNOLOGIES, INC.
To: L3 TECHNOLOGIES, INC.
Reel/Frame 066199/0569 →
MERGER Recorded Mar 9, 2023
From: L3HARRIS LATITUDE LLC
To: L3HARRIS UNMANNED SYSTEMS, INC.
Reel/Frame 062933/0130 →
CHANGE OF NAME Recorded Jan 20, 2022
From: L3 LATITUDE, LLC
To: L3HARRIS LATITUDE LLC
Reel/Frame 059396/0829 →
CHANGE OF NAME Recorded Feb 8, 2019
From: LATITUDE ENGINEERING, LLC
To: L3 LATITUDE, LLC
Reel/Frame 049859/0017 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 16, 2016
From: DOUGLAS, JASON MICHAEL K.; ARMER, JUSTIN; MURPHY, CARLOS
To: LATITUDE ENGINEERING, LLC
Reel/Frame 038937/0258 →
Continuity (1)
Related Publication 20170300066A1 · Oct 19, 2017
Cited By (3)
US 12,434,830 US 12,600,470 US 12,649,572