IP Library Granted Patent US 11,875,691
Granted Patent B2
US 11,875,691 · App. 17/410,988 · Granted Jan 16, 2024

Drone encroachment avoidance monitor

Inventor: Timothy Just (Victorville, CA)
G08G5/0069G01S3/04G01S3/043G01S3/20G01S3/26G01S5/04G01S11/02G01S11/04G08G5/0013G08G5/0043G08G5/0082H01Q3/04H01Q3/06H01Q3/08H01Q11/08H01Q21/30H04B7/18502H04B17/27H04B17/318G08G5/0026G08G5/0065G08G5/025H01Q1/42H01Q21/28
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Quick Facts
Patent No.
US 11,875,691
App. No.
17/410,988
Granted
Jan 16, 2024
Kind
B2
Abstract

Disclosed are examples of systems, apparatus, methods and computer program products for locating unmanned aerial vehicles (UAVs). A region of airspace may be scanned with two scanning apparatuses. Each scanning apparatus may include one or more directional Radio Frequency (RF) antennae. The two scanning apparatuses may have different locations. Radio frequency signals emitted by a UAV can be received at each of the two scanning apparatuses. The received radio frequency signals can be processed to determine a first location of the UAV.

Claims (50)

1. A method for detecting unmanned aerial vehicles (UAVs) in a sensitive security area, the method comprising:

scanning, with a plurality of scanning apparatuses, a region of airspace associated with the sensitive security area, each scanning apparatus comprising one or more directional Radio Frequency (RF) antennae, each of the scanning apparatuses having different locations, at least one of the scanning apparatuses being connected with a moveable vehicle;

receiving first radio frequency signals emitted by a first UAV at the scanning apparatuses, a frequency of the first radio frequency signals being a downlink frequency of the first UAV, the first radio frequency signals being downlink signals generated by the first UAV to communicate with a first device controlling the first UAV, the scanning apparatuses being independent from generation of the first radio frequency signals;

processing, based on an angular relationship between the locations of the scanning apparatuses and the first UAV, the first radio frequency signals to determine a first location of the first UAV;

scanning, with an aircraft-mounted scanning apparatus, a region of ground space associated with the sensitive security area, the aircraft-mounted scanning apparatus comprising one or more further directional RF antennae;

receiving, at the aircraft-mounted scanning apparatus, radio frequency signals corresponding to an uplink frequency of the first UAV; and

processing, based on an angular relationship between the location of the aircraft-mounted scanning apparatus and a source of the further radio frequency signals, the further radio frequency signals to determine a first location of the source of the further radio frequency signals, the source of the further radio frequency signals being associated with an operator of the first UAV.

2. The method of claim 1 , further comprising:

providing the first radio frequency signals to a display device, the display device being configured to process the first radio frequency signals to cause display of video associated with a camera associated with the first UAV.

3. The method of claim 1 , wherein the uplink frequency is in a range of 1850-1990 MHz or 824-894 MHz.

4. The method of claim 1 , wherein at least one of the scanning apparatuses is mounted on a stationary observation tower.

5. The method of claim 3 , wherein the sensitive security area is a region including a portion of the US-Mexico border.

6. The method of claim 1 , wherein processing the first radio frequency signals to determine the first location of the first UAV comprises:

determining a signal strength associated with the first radio frequency signals at each of the scanning apparatuses;

generating, using the signal strength, first data indicating an angular relationship between the locations of the scanning apparatuses and the first UAV;

processing, using the locations of the scanning apparatuses, the first data to determine the first location of the first UAV.

7. The method of claim 1 , further comprising:

determining a second location of the first UAV; and

determining, using the first and second location of the first UAV, a velocity of the first UAV.

8. The method of claim 1 , wherein the first UAV has a weight of 10 pounds or less.

9. A system for detecting unmanned aerial vehicles (UAVs) in a sensitive security area, the system comprising:

a plurality of scanning apparatuses, each scanning apparatus comprising an array of one or more directional antennae configured to receive radio frequency signals having a designated frequency, the array of directional antennae having a spatial configuration, at least one of the scanning apparatus being connected with a moveable vehicle, each scanning apparatus being configured to:

receive radio frequency signals associated with one or more UAVs, a frequency of each radio frequency signal being a downlink frequency of a corresponding UAV;

determine a signal strength associated with each of the radio frequency signals; and

generate, using the signal strength and the spatial configuration, data indicating an angular relationship between a location one of the plurality of scanning apparatuses and the corresponding UAV;

one or more processors in communication with each of the scanning apparatuses, the one or more processors operable to:

receive data from at least two of the plurality of scanning apparatuses;

process, using locations of the at least two ground data terminals, the data from the at least two scanning apparatuses to determine a location of a first UAV;

track both the UAV and the second UAV; and

an aircraft-mounted scanning apparatus comprising one or more further directional Radio Frequency (RF) antennae, the aircraft mounted scanning apparatus being configured to:

scan a region of ground space associated with the sensitive security area, and

receive radio frequency signals corresponding to an uplink frequency of the first UAV; and

the one or more processors being further operable to:

process, based on an angular relationship between the location of the aircraft-mounted scanning apparatus and a source of the further radio frequency signals, the further radio frequency signals to determine a first location of the source of the further radio frequency signals, the source of the radio frequency signals being associated with an operator of the first UAV.

10. The system of claim 9 , the one or more processors being further operable to:

provide the first radio frequency signals to a display device, the display device being configured to process the first radio frequency signals to cause display of video associated with a camera associated with the first UAV.

11. The system of claim 9 , wherein at least one of the scanning apparatuses is mounted on a stationary observation tower.

12. The system of claim 11 , wherein the sensitive security area is a region including a portion of the US-Mexico border.

13. A computer program product comprising computer-readable program code to be executed by one or more processors when retrieved from a non-transitory computer-readable medium, the program code including instructions configured to cause:

scanning, with a plurality of scanning apparatuses, a region of airspace associated with a sensitive security area each scanning apparatus comprising one or more directional Radio Frequency (RF) antennae, each of the scanning apparatuses having different locations, at least one of the scanning apparatuses being connected with a moveable vehicle;

processing first radio frequency signals emitted by a first UAV at the scanning apparatuses, a frequency of the first radio frequency signals being a downlink frequency of the first UAV;

processing, based on an angular relationship between the locations of the scanning apparatuses and the first UAV, the first radio frequency signals to determine a first location of the first UAV;

scanning, with an aircraft-mounted scanning apparatus, a region of ground space associated with the sensitive security area, the aircraft-mounted scanning apparatus comprising one or more further directional Radio Frequency (RF) antennae;

processing, at the aircraft-mounted scanning apparatus, radio frequency signals corresponding to an uplink frequency of the first UAV; and

processing, based on an angular relationship between the location of the aircraft-mounted scanning apparatus and a source of the further radio frequency signals, the further radio frequency signals to determine a first location of the source of the further radio frequency signals, the source of the further radio frequency signals being associated with an operator of the first UAV.

14. The computer program product of claim 13 , the program code including further instructions configured to cause:

providing the first radio frequency signals to a display device, the display device being configured to process the first radio frequency signals to cause display of video associated with a camera associated with the first UAV.

15. The computer program product of claim 13 , wherein the uplink frequency is in a range of 1850-1990 MHz or 824-894 MHz.

16. The computer program product of claim 13 , wherein at least one of the scanning apparatuses is mounted on a stationary observation tower.

17. The computer program product of claim 13 , wherein the sensitive security area is a region including a portion of the US-Mexico border.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 13, 2026
From: JUST, TIMOTHY, MR.
To: MYDEFENCE A/S
Reel/Frame 074648/0188 →
Continuity (6)
Continuation 16852029 · Apr 17, 2020
Continuation 16261212 · Jan 29, 2019
Continuation In Part 16114086 · Aug 27, 2018
Continuation 14723299 · May 27, 2015
Provisional Application 62129672 · Mar 6, 2015
Related Publication 20210383707A1 · Dec 9, 2021
Cited By (1)
US 12,705,991