Systems and methods for detecting, tracking and identifying small unmanned systems such as drones
10739451 ยท 2020-08-11
Assignee
Inventors
- Dwaine A. Parker (Naples, FL, US)
- Damon E. Stern (Riverview, FL, US)
- Lawrence S. Pierce (Huntsville, AL, US)
Cpc classification
G01S13/88
PHYSICS
G01S7/021
PHYSICS
H04K3/45
ELECTRICITY
H04K3/42
ELECTRICITY
G08G5/006
PHYSICS
G01S3/782
PHYSICS
B64C39/024
PERFORMING OPERATIONS; TRANSPORTING
H04K3/44
ELECTRICITY
G01S13/42
PHYSICS
F41H11/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B64U2201/10
PERFORMING OPERATIONS; TRANSPORTING
G01S13/86
PHYSICS
F41H13/0075
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B64U2101/30
PERFORMING OPERATIONS; TRANSPORTING
B64U2101/00
PERFORMING OPERATIONS; TRANSPORTING
H04K3/65
ELECTRICITY
International classification
G01S13/86
PHYSICS
G01S7/41
PHYSICS
F41H13/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
G01S13/88
PHYSICS
G01S13/42
PHYSICS
F41H11/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A system for providing integrated detection and countermeasures against unmanned aerial vehicles include a detecting element, a location determining element and an interdiction element. The detecting element detects an unmanned aerial vehicle in flight in the region of, or approaching, a property, place, event or very important person. The location determining element determines the exact location of the unmanned aerial vehicle. The interdiction element can either direct the unmanned aerial vehicle away from the property, place, event or very important person in a non-destructive manner, or can cause disable the unmanned aerial vehicle in a destructive manner.
Claims
1. A method for detecting and defeating a drone comprising: utilizing a detection antenna array to scan for at least one of a drone control link and a video link associated with the drone; utilizing said detection antenna array to determine a source direction of the drone based on the at least one of the drone control link and the video link; utilizing a neutralization system to generate an interdiction signal, said interdiction signal at least partially generated with reference to the at least one of the drone control link and the video link; and utilizing a transmission antenna to transmit said interdiction signal.
2. The method of claim 1, further comprising: transmitting a first interdiction signal followed by transmitting a second interdiction signal; and providing a time interval between transmitting the first interdiction signal and transmitting the second interdiction signal to allow the detection antenna array to receive signals.
3. The method of claim 1, further comprising: detecting at least one additional drone; performing at least one of determining each drone's size, determining each drone's range, determining each drone's position, generating interdiction signals for each drone; and transmitting interdiction signals to each drone.
4. The method of claim 1, further comprising: comparing the video link to radio signatures stored in a library of downlink frequencies used by drones.
5. The method of claim 1, wherein the interdiction signal disrupts at least one of uplink signals and downlink signals.
6. The method of claim 1, further comprising identifying one or more drones using a transponder identification process.
7. The method of claim 1, further comprising tracking one or more drones using at least one of a radar, a laser range finder, a camera, and a radio receiver.
8. The method of claim 1, further comprising classifying one or more drones based on at least one of drone uplink signals and drone downlink signals.
9. The method of claim 1, further comprising generating a visual display of detected drone locations.
10. A system for detecting and defeating a drone comprising: a detection antenna array configured to scan for at least one of a drone control link and a video link associated with the drone, said detection antenna array configured to determine a source direction of the drone based on the at least one of the drone control link and the video link; a neutralization system configured to generate an interdiction signal, said interdiction signal at least partially generated with reference to the at least one of the drone control link and the video link; and a transmission antenna configured to transmit said interdiction signal.
11. The system of claim 10, wherein: the transmission antenna is configured for transmitting a first interdiction signal followed by transmitting a second interdiction signal; and the neutralization system is further configured to provide a time interval between transmitting the first interdiction signal and transmitting the second interdiction signal to allow the detection antenna array to receive signals.
12. The system of claim 10, wherein: the detection antenna array is configured for detecting at least one additional drone; and the system further includes a processor configured to perform at least one of determining each drone's size, determining each drone's range, and determining each drone's position.
13. The system of claim 10, further comprising a processor configured for comparing the video link to radio signatures stored in a library of downlink frequencies used by drones.
14. The system of claim 10, wherein the interdiction signal disrupts at least one of uplink signals and downlink signals.
15. The system of claim 10, wherein the detection antenna array is configured for identifying one or more drones using a transponder identification process.
16. The system of claim 10, further comprising at least one of a radar, a laser range finder, a camera, and a radio receiver configured to track one or more drones.
17. The system of claim 10, further comprising a processor configured for classifying one or more drones based on at least one of drone uplink signals and drone downlink signals.
18. The system of claim 10, further comprising a visual display configured for displaying detected drone locations.
19. An apparatus, comprising at least one processor, at least one memory in electronic communication with the at least one processor, and instructions stored in the at least one memory, the stored instructions comprising instructions executable by the at least one processor for: utilizing a detection antenna array to scan for at least one of a drone control link and a video link associated with the drone; utilizing said detection antenna array to determine a source direction of the drone based on the at least one of the drone control link and the video link; utilizing a neutralization system to generate an interdiction signal, said interdiction signal at least partially generated with reference to the at least one of the drone control link and the video link; and utilizing a transmission antenna to transmit said interdiction signal.
20. The apparatus of claim 19, further comprising instructions stored in the at least one memory executable by the at least one processor for controlling transmission of a first interdiction signal followed by transmission of a second interdiction signal, and providing a time interval between transmitting the first interdiction signal and transmitting the second interdiction signal to allow the detection antenna array to receive signals.
21. The apparatus of claim 19, further comprising instructions stored in the at least one memory executable by the at least one processor for: detecting at least one additional drone; performing at least one of determining each drone's size, determining each drone's range, determining each drone's position, generating interdiction signals for each drone; and controlling transmission of interdiction signals to each drone.
22. The apparatus of claim 19, further comprising instructions stored in the at least one memory executable by the at least one processor for comparing the video link to radio signatures stored in a library of downlink frequencies used by drones.
23. The apparatus of claim 19, wherein the interdiction signal disrupts at least one of uplink signals and downlink signals.
24. The apparatus of claim 19, further comprising instructions stored in the at least one memory executable by the at least one processor for identifying one or more drones using a transponder identification process.
25. The apparatus of claim 19, further comprising instructions stored in the at least one memory executable by the at least one processor for tracking one or more drones using at least one of a radar, a laser range finder, a camera, and a radio receiver.
26. The apparatus of claim 19, further comprising instructions stored in the at least one memory executable by the at least one processor for classifying one or more drones based on at least one of drone uplink signals and drone downlink signals.
27. The apparatus of claim 19, further comprising instructions stored in the at least one memory executable by the at least one processor for generating a visual display of detected drone locations.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
DETAILED DESCRIPTION OF THE INVENTION
Part Numbers
(5) 10 Transmitting multi band high gain directional antenna array with vertical polarity 12 Receive directional antenna array 14 Receive Omni antenna array 16 EO/IR (Electro Optical/Infra Red) sensor 18 Automatic antenna alignment assembly 20 Multi-band LNA assembly 22 Automatic antenna alignment assembly 24 High fidelity RF receivers/host work station CPU 26 Azimuth and elevation vector coordinate data processor 28 Empower 1189-BBM3 wideband HPA assembly 30 Receive blanking 32 Direction detect and range estimation 34 Key sight N9310A RF signal generator with multiple modulation sources 36 Spectral signals detect and type identification 38 ECM modulation type select 40 Frequency and waveform parameters 42 Modulation database 43 Commercial 4 kband radar 44 Subject UAS (Unmanned Aerial System) 45 Radar clutter and target filter processor 46 Azimuth and elevation vector coordinate data processor 99 System power and status monitor 100 Entire system 102 Countermeasure and deterrent section of entire system 103 Radio Frequency (RF) detection section of entire system 104 Radar detection section of entire system 105 Electro Optical and Infer Red (EO/IR) detection section of entire system
Glossary
(6) As used herein and in the claims each of the terms defined in this glossary is understood to have the meaning set forth in this glossary.
(7) Algorithma process or set of rules to be followed in calculations or other problem-solving operations by a computer
(8) Automatic Antenna Alignment Assemblydesignated as 18 in
(9) Azimuth and Elevation Vector Coordinate Datadesignated as 26 in
(10) Blankingdesignated as 30 in
(11) C2 CommunicationsCommand and Control Communications links
(12) Commercialrelating to or engaged in commerce (i.e. NON-military)
(13) Counterto offer in response or act in opposition
(14) CUASs2Counter Unmanned Aerial Systems of Systems, the system of the present invention used to detect, identify and deter or interdict unmanned aerial vehicles or systems
(15) Directional Antennadesignated as 10 in
(16) Direction Detection and Range Estimationdesignated as 32 in
(17) DFdesignated as 12 in
(18) Dronedesignated as 44 in
(19) EARExport Administration Regulations are regulations that are administered by the United States Department of Commerce and regulate the export of dual use items; technology designed for commercial purposes and with potential military applications, such as computers, software, aircraft, and pathogens as well the re-export of items
(20) Electro-Optical and Infrared Sensorsdesignated as 16 in
(21) Electronic Counter Measure (ECM) Modulation Type Selectdesignated as 38 in
(22) Emitterto send or give out a matter of energy
(23) EOElectro-Optics is a branch of electrical engineering and materials science involving components, devices and systems that operate by modification of the optical properties of a material by an electric field, thus it concerns the interaction between the electromagnetic (optical) and the electrical (electronic) states of materials
(24) Frequencythe rate at which a vibration occurs that constitutes a wave, either in a material (as in sound waves), or in an electromagnetic field (as in radio waves and light), usually measured per second
(25) Frequency and Waveform Parametersdesignated as 40 in
(26) IRinfrared is invisible (to the human eye) radiant energy, electromagnetic radiation with longer wavelengths than those of visible light, extending from the nominal red edge of the visible spectrum at 700 nanometers (frequency 430 THz) to 1 mm (300 GHz)
(27) ISRIntelligence, Surveillance, Reconnaissance is an activity that synchronizes and integrates the planning and operation of sensors, assets, and processing, exploitation, and dissemination systems in direct support of current and future operations
(28) ITARInternational Traffic in Arms Regulations is a set of United States government regulations that control the export and import of defense-related articles and services on the United States Munitions List (USML)
(29) Jam or Jammed or Jammers or Jammingto interfere with or prevent the clear reception of broadcast signals by electronic means to become unworkable or to make unintelligible by sending out interfering signals by any means
(30) Lasera device that emits light through a process of optical amplification based on the stimulated emission of electromagnetic radiation
(31) Laser Range Finderdesignated as 16 in
(32) LEDLight-Emitting Diode is a semiconductor device that emits visible light when an electric current passes through it
(33) Matrixan environment in which something develops
(34) Matrix Directional Transmit Antenna Arraydesignated as 10 in
(35) Mobile Platform (MP)the mobile Counter Unmanned Aerial System of Systems equipment installed on any vehicle with the intent to move from one location to another location as needed to fulfill a short-term need in the detection, identification and deterrence or interdiction of an unmanned aerial vehicle
(36) Modulationthe process of varying one or more properties of a periodic waveform, called the carrier signal, with a modulating signal that typically contains information to be transmitted
(37) Modulation Function Generationdesignated as 34 in
(38) Modulation Lookup Tabledesignated as 42 in
(39) Multi-Banda communication device that supports multiple radio frequency bands
(40) Multiband Low Noise Amplifier (LNA) Assemblydesignated as 20 in
(41) Omni-directional Antennadesignated as 14 in
(42) OTSOff The Shelf refers to materials or equipment that currently exists and is readily available for purchased or use
(43) Permanent Platform (PP)the installation of the Counter Unmanned Aerial System of Systems equipment at a specific location to fulfill a long-term need in the detection, identification and deterrence or interdiction of an unmanned aerial vehicle
(44) Pulsea single vibration or short burst of sound, electric current, light, or other wave
(45) RPARemotely Piloted Aircraft, aka UAV, UAS
(46) RFRadio Frequency is a rate of oscillation in the range of around 3 kHz to 300 GHz, which corresponds to the frequency of radio waves, and the alternating currents that carry radio signals
(47) Receive Blankingdesignated as 30 in
(48) Receive Directional Antenna Arraydesignated as 12 in
(49) Receive Omni Antenna Arraydesignated as 14 in
(50) STCSlew To Cue, the autonomous actions of electronic, radio or optical sensors to rotate using an automatic antenna alignment assembly designated as 18 in
(51) Spectral Signaldesignated as 36 in
(52) Spectral Signal Detection and Type Identificationdesignated as 36 in
(53) sUASdesignated as 44 in
(54) Targetdesignated as 44 in
(55) Target Tracking Loga graphic or table of coordinates documenting the target's path in space during area of concern
(56) Technologythe application of science, especially to industrial or commercial objectives
(57) Threata declaration or an act of an intention or determination to inflict the destruction of property or harm, punishment, injury or death of person(s)
(58) UASdesignated as 44 in
(59) UAVdesignated as 44 in
(60) Uplinkthe part of a network connection used to send, or upload, data from one device to a remote device
(61) Uplink Video/Radio Transmitter Assemblydesignated as 28 in
(62) Uplink/Video Standard Definition (SD) Receiver & Host Workstationdesignated as 24 in
(63) Vectora quantity having direction as well as magnitude, especially as determining the position of one point in space relative to another
(64) Wattthe system unit of power, equivalent to one joule per second, corresponding to the power in an electric circuit in which the potential difference is one volt and the current one ampere
(65) Waveforma graphic representation of the shape of a wave that indicates its characteristics as frequency and amplitude
(66) Referring to
(67) A second function of the system is providing countermeasures against sUAS that is determined to be a threat in or approaching the vicinity of a property, place, event or VIP. Azimuthal data for a sUAS is determined by the detection section 103-105 of the system. The system's control software/hardware provides this information to the integrated Electro-Optical (EO) and Infrared (IR) sensor 16 which autonomously centers the field of regard of the EO/IR sensor to the known location of the subject sUAS 44. When the visual identification is confirmed to be a sUAS; by either video analytics or human verification, the system of invention's software/hardware will then determine the precise x, y, z coordinates (x=longitude, y=latitude, z=altitude) of the sUAS. This precise location and range information is provided to the countermeasure and deterrent section 102 of the system 100. Using this data the countermeasure and deterrent section 102 computes the RF spectral characteristics that will nullify signals that the sUAS expects to receive. A signal generator 34 produces a tailored signal and a variable strength amplifier 28 generates the output power required; causing the desired effect at the desired range to the subject sUAS 44. The countermeasure and deterrent section 102 broadcasts the unique generated RF waveform using highly directional and focused antennae 10. The system uses Blanking 30 at the time between the last radio transmitting signal and the beginning of the next radio-transmitting signal of the transmitted signal in accordance with the frequency and waveform parameters 40 to avoid negative internal effects to system 103. The system then disables the sUAS sensors, or causes the sUAS navigation system to malfunction due to communication interference causing most sUAS to enter a Fail Safe Mode (either land immediately or return to the launch point). This action is sUAS specific and is based on the manufacturer design and sUAS operational capabilities.
(68) The interdict element of a system of the present invention interdicts the operation of an sUAS initially in a non-destructive manner, increasing to a destructive manner based on the response of the target sUAS. A system of the present invention may interdict the operation of a sUAS in a non-destructive manner by transmitting a concentrated Radio Frequency (RF) emission tuned to the specific sUAS characteristics identified by the spectral analysis during the detection process. These RF waveforms are then used to disrupt the expected inputs to the onboard controller of the identified sUAS. The video downlink signal is the initial target of the interdiction process. If this interruption is not sufficient to deter the sUAS, the RF transmitter will be tuned to the appropriate control frequency to disrupt the sUAS on-board electronics. These actions will cause most sUAS to enter the Fail Safe Mode (either land immediately or return to the launch point). The present invention considers the differences based on the manufacturer design and operational capabilities of the sUAS on a case-by-case basis and tailors the inventions countermeasure/deterrent response accordingly.
(69) The countermeasure and deterrent section 102 of the system 100 interdicts the operation of an sUAS in a non-destructive manner by using the non-destructive technology described to generate a interdict transmission signal that is significantly stronger than control signals from an operator of the sUAS. This interdict transmission will have significantly higher gain (Stronger Signal) and target both the sensor and the control electronics of the sUAS. The interdiction process may be augmented with electro-magnetic pulse technology, pulsed laser and is specifically designed to accept other current or future counter-measures used to defeat the sUAS' electronics, motors and or navigation systems. The effects of the higher gain radio transmission will cause amongst other effects, servo-chatter, resulting in the loss of control of the sUAS and disruption of most on-board electronic processes increasing the probability of a forced landing. In addition, a counter sUAS can be dispatched with autonomous navigation data being supplied by the system of present invention to locate and intentionally disable the opposing sUAS by flying into it, dropping a net on the threat, covering it with spray foam or liquid or capturing the opposing sUAS.
(70) The system of the present invention will use direction finding (DF) equipment 12, 16 to search for the radio communications link of an airborne sUAS 44, commonly referred to as a drone. Integrating multiple Direction Finding (DF) equipment 26, 46 to the system of the present invention will increase the precision in obtaining the azimuth that the sUAS is flying. Integrating radar equipment 43 provided with a radar clutter and target filter processor 45, with the direction finding (DF) equipment will provide the present invention the ability to determine with greater accuracy the altitude and azimuth of the sUAS 44 at the time of discovery and during the time it remains within the systems detection boundaries.
(71) When the DF equipment 26, 46 has detected a communication link of a sUAS within the system boundaries, the receive host workstation 24 will analyze the radio frequency wave signature and confirm that the RF detected is from a sUAS. This process also applies when a radar unit 43 is integrated with the DF equipment.
(72) The information obtained from DF 26, 46 and or radar unit 43 is then sent to the direction detect and range estimation unit 32 where algorithms will be used to send sUAS location coordinates to the Automatic Antenna Alignment Assembly (A4) 22, 18. Put another way, using Slew To Cue, the autonomous actions of electronic, radio or optical sensors to rotate using an automatic antenna alignment assembly 18, 22 to move and point cameras 16 and countermeasures in the direction of a suspect target 44 based on input from data processed by the azimuth and elevation unit 26 46, thus, keeping the cued targets in view at all times with or without human intervention. This information will then direct the Automatic Antenna Alignment Assembly (A4) 22 to point the Electro-Optical and Laser Range Finding unit 16 at the sUAS to allow for visual confirmation, distance and elevation of the sUAS to be known.
(73) The information obtained by the Laser Range Finding equipment will be sent to the Azimuth and Elevation Vector Coordinate Data unit 26 which will send exact azimuth and elevation information to the A4 system 18 controlling the Matrix Directional Transmit Antenna Array 10 via the Direction Detect and Range Estimation unit 32.
(74) When the communications link between the subject sUAS and its' operator is detected by the Radio Frequency (RF) detection section 103 of the system the information is passed through the Multiband LNA Assembly 20 and through the Uplink Receive Host Workstation 24. The information is then sent to the Spectral Signal Detect and Type Identification unit 36 where the type of sUAS is determined based on a known database containing Spectral Signal Wave information 36. When the Spectral Signal Wave information is known the information is sent to the Frequency and Wave Form Parameters unit 40 where the analyzed RF data is sent to the Modulation Look Up Table 42. When the Modulation information is known the information is then sent to the ECM Modulation Type Select unit 38.
(75) The selected modulation waveform is then sent to the Uplink Video Transmitter Assembly 28 that unit works in conjunction with the Receive Blanking unit 30. When the Uplink Video Transmitter 28 is transmitting a radio signal the Receive Blanking unit 30 will force the DF antennae 12, 14 to stop receiving the radio frequency being transmitted by the Matrix Directional Transmit Antenna Array 10. The radio frequency selected to disrupt the communication link of the sUAS with its' operator is then transmitted by the Transmitter Assembly 28 using the Matrix Directional Transmit Antenna Array 10 aimed at the sUAS 44 via the Automatic Antenna Alignment Assembly 18.
(76) While the invention has been described with reference to certain exemplary embodiments, obvious modifications and alterations are possible by those skilled in the related art. Therefore, it is intended that the invention include all such modifications and alterations to the full extent that they come within the scope of the following claims or the equivalents thereof.