WO2016195765A1 - Methods and apparatus for mobile phased array system - Google Patents

Methods and apparatus for mobile phased array system Download PDF

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Publication number
WO2016195765A1
WO2016195765A1 PCT/US2016/018412 US2016018412W WO2016195765A1 WO 2016195765 A1 WO2016195765 A1 WO 2016195765A1 US 2016018412 W US2016018412 W US 2016018412W WO 2016195765 A1 WO2016195765 A1 WO 2016195765A1
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WO
WIPO (PCT)
Prior art keywords
phased array
array
puck
uavs
lattice spacing
Prior art date
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Application number
PCT/US2016/018412
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French (fr)
Inventor
John P. GIANVITTORIO
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Raytheon Co
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Raytheon Co
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Classifications

    • GPHYSICS
    • G01MEASURING; TESTING
    • G01SRADIO DIRECTION-FINDING; RADIO NAVIGATION; DETERMINING DISTANCE OR VELOCITY BY USE OF RADIO WAVES; LOCATING OR PRESENCE-DETECTING BY USE OF THE REFLECTION OR RERADIATION OF RADIO WAVES; ANALOGOUS ARRANGEMENTS USING OTHER WAVES
    • G01S7/00Details of systems according to groups G01S13/00, G01S15/00, G01S17/00
    • G01S7/02Details of systems according to groups G01S13/00, G01S15/00, G01S17/00 of systems according to group G01S13/00
    • G01S7/36Means for anti-jamming, e.g. ECCM, i.e. electronic counter-counter measures
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01QANTENNAS, i.e. RADIO AERIALS
    • H01Q1/00Details of, or arrangements associated with, antennas
    • H01Q1/27Adaptation for use in or on movable bodies
    • H01Q1/28Adaptation for use in or on aircraft, missiles, satellites, or balloons
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01QANTENNAS, i.e. RADIO AERIALS
    • H01Q21/00Antenna arrays or systems
    • H01Q21/0006Particular feeding systems
    • H01Q21/0025Modular arrays
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01QANTENNAS, i.e. RADIO AERIALS
    • H01Q3/00Arrangements for changing or varying the orientation or the shape of the directional pattern of the waves radiated from an antenna or antenna system
    • H01Q3/26Arrangements for changing or varying the orientation or the shape of the directional pattern of the waves radiated from an antenna or antenna system varying the relative phase or relative amplitude of energisation between two or more active radiating elements; varying the distribution of energy across a radiating aperture
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01QANTENNAS, i.e. RADIO AERIALS
    • H01Q3/00Arrangements for changing or varying the orientation or the shape of the directional pattern of the waves radiated from an antenna or antenna system
    • H01Q3/26Arrangements for changing or varying the orientation or the shape of the directional pattern of the waves radiated from an antenna or antenna system varying the relative phase or relative amplitude of energisation between two or more active radiating elements; varying the distribution of energy across a radiating aperture
    • H01Q3/30Arrangements for changing or varying the orientation or the shape of the directional pattern of the waves radiated from an antenna or antenna system varying the relative phase or relative amplitude of energisation between two or more active radiating elements; varying the distribution of energy across a radiating aperture varying the relative phase between the radiating elements of an array
    • H01Q3/34Arrangements for changing or varying the orientation or the shape of the directional pattern of the waves radiated from an antenna or antenna system varying the relative phase or relative amplitude of energisation between two or more active radiating elements; varying the distribution of energy across a radiating aperture varying the relative phase between the radiating elements of an array by electrical means

Definitions

  • rapidly deployable antennas such as inflatable dish antennas which are typically deployed on the ground.
  • inflatable dish antennas which are typically deployed on the ground.
  • conventional rapidly deployable antenna systems may have limited scan capability, weather issues, and less than robust survivability.
  • Embodiments of the invention provide a rapidly deployable phased array system having relatively compact unmanned aerial vehicles (UAVs) capable of flying in a formation with an array lattice spacing.
  • the UAVs comprise battery-powered quadcopters.
  • the UAVs include a puck having a phased array element capable of operating in a range of wavelengths.
  • a remote beacon generating station can provide a reference beacon to enable the UAVs to navigate to the desired array element lattice spacing.
  • the array lattice spacing is less than the wavelength of operation of the phased array elements.
  • the UAVs include a Global Positioning Receiver (GPS) unit for synchronizing the phased array elements.
  • GPS Global Positioning Receiver
  • Embodiments of the invention provide a rapidly deployable, scalable and dynamically reconfigurable phased array system.
  • the phased array system can be transported via one or more backpacks.
  • the phased array system enables high speed wireless communications, radar operations, and the like.
  • System operation can be dynamically configured for a particular mission, terrain, weather condition, etc.
  • battery-powered UAVs can be rotated in and out via a changing station to reduce or eliminate down time of the system.
  • a phased array system comprises: a plurality of unmanned aerial vehicles (UAVs) configured to fly in an array formation having an array lattice spacing, the UAVs comprising: a puck having a phased array element; and a signal l processing module configured to receive and process a signal to achieve for the array lattice spacing a spacing that is less than a wavelength of operation of the phased array elements.
  • UAVs unmanned aerial vehicles
  • the system can further include one or more of the following features: the UAVs comprise multi-rotor copters, the puck comprises a phased locked loop system to process the received signal for synchronizing the phased array elements, the puck comprises a transceiver configured to provide a wireless data downlink and a connection to the phase locked loop system, the array lattice spacing is configured to be less than or equal to 0.5 of the wavelength of operation, the system comprises a phased array radar, the system comprises an anti-jammer, and or the system comprises a communication system.
  • UAVs unmanned aerial vehicles
  • the UAVs comprising: a puck having a phased array element; and a signal processing module configured to receive and process a signal to achieve for the array lattice spacing a spacing that is less than a wavelength of operation of the phased array elements.
  • the method can further include one or more of the following features: the UAVs comprise multi-rotor copters, the puck comprises a phased locked loop system to process the received signal for synchronizing the phased array elements, the puck comprises a transceiver configured to provide a wireless data downlink and a connection to the phase locked loop system, the array lattice spacing is configured to be less than or equal to 0.5 of the wavelength of operation, the system comprises a phased array radar, the system comprises an anti-jammer, and or the system comprises a communication system.
  • a system comprises: a controller; and a means for providing a hovering phased array radar configured for wireless communication with the controller, the means for providing a hovering phased array radar having an array lattice spacing and comprising: a puck having a phased array element; and a signal processing module configured to receive and process a signal to achieve for the array lattice spacing a spacing that is less than a wavelength of operation of the phased array elements.
  • the system can further include one or more of the following features: the puck comprises a phased locked loop system to process the received signal for synchronizing the phased array elements, the puck comprises a transceiver configured to provide a wireless data downlink and a connection to the phase locked loop system, the array lattice spacing is configured to be less than or equal to 0.5 of the wavelength of operation, the system comprises a phased array radar, the system comprises an anti-jammer, and or the system comprises a communication system.
  • the puck comprises a phased locked loop system to process the received signal for synchronizing the phased array elements
  • the puck comprises a transceiver configured to provide a wireless data downlink and a connection to the phase locked loop system
  • the array lattice spacing is configured to be less than or equal to 0.5 of the wavelength of operation
  • the system comprises a phased array radar
  • the system comprises an anti-jammer
  • the system comprises a communication system.
  • FIG. 1 is a schematic representation of a phased array radar system
  • FIG. 2 is a schematic block diagram of a UAV forming a part of the system of FIG. 1 ;
  • FIG. 3a is a schematic representation of a puck forming a part of the UAV of FIG. 2;
  • FIG. 3B is a schematic representation of a beacon system for synchronizing the pucks of FIG. 2;
  • FIG. 4 is a schematic representation of a synchronization system including a Phased Locked Loop (PLL) circuit for enabling puck synchronization using a beacon signal;
  • PLL Phased Locked Loop
  • FIG. 5 is a schematic representation of a transceiver portion of the puck of FIG. 3a;
  • FIG. 6 is a graphical representation of simulated phase noise performance for a 2.4GHz beacon phase locked to a puck using a 100 MHz reference oscillator
  • FIGs. 7a-7d show simulated performance parameters for an illustrative phased array system
  • FIG. 8 is a schematic representation of an illustrative computer that can perform processing described herein.
  • FIG. 1 shows a phased array system 100 operating in a deployment area 101 where unmanned aerial vehicles (UAVs) 1 10, shown as multi-rotor copters, are deployed in an array formation of a desired lattice size and array shape.
  • UAVs unmanned aerial vehicles
  • a quad-copter 110 having an onboard RF puck 102 provides nodes/elements of a phased array system.
  • An array lattice spacing includes a first lattice spacing 103, which is shown as horizontal, and a second lattice spacing 104, which is shown as vertical. The lattice spacing of the array elements should be maintained as the UAVs 1 10 move in the air for proper operation of the phased array elements provided by the onboard pucks 102.
  • the UAVs 1 10 should move in a coherent manner through space.
  • the horizontal 103 and vertical 104 lattice spacing is kept under a wavelength ⁇ used by the phased array elements. In one embodiment, a wavelength of less than ⁇ /2 is used.
  • a phased array comprises an array of antennas in which the relative phases of the respective signals feeding the antennas are controlled to provide an effective radiation pattern of the array in a desired direction and suppressed in undesired directions.
  • the antenna element phase relationships may be fixed or adjustable to provide beam steering. Operation of phased array radars and communication systems are well known to one of ordinary skill in the art.
  • the pucks 105 enable wireless communication 107 to provide data-links 106 to a remote station and to receive a beacon reference signal 105.
  • the reference beacon signal can be generated by a beacon generator that can be located in a nearby protected zone on the ground or on a nearby aircraft or on a sea vessel.
  • the onboard pucks 102 include a phase locked loop (PLL) to synchronize the pucks to the beacon signal 105.
  • PLL phase locked loop
  • the PLL of the pucks 102 enable coherent spacing and movement of the UAVs.
  • each UAV receives instructions for achieving a desired lattice spacing and phased array operation, e.g, signal transmit and receive, signal frequency, beamforming etc.
  • each UAV/copter provides a single element in the phased array where the geometrical arrangement of the copters is accomplished using station keeping controls in a manner known in the art. The copters can be commanded to maintain a set position offset from an object in view of an onboard camera, for example.
  • a first copter in the array is commanded to a position at a given offset from a beacon.
  • the next copter is commanded to position itself relative to the first copter, and so on, until all the copters are positioned in their desired location.
  • the copters are positioned in relation to a fixed two-dimensional grid with a specified spacing.
  • each UAV/copter has an onboard transceiver and antenna element.
  • each transceiver In transmit mode, each transceiver is commanded to radiate a waveform with a specified amplitude and phase shift based on its position in the array to form a phased array beam pointing in the desired direction.
  • receive mode each transceiver receives a signal and applies a phase and amplitude weight based on its position.
  • Each transceiver sends its data over a wireless link to the base station for summing with the signals from the other copters. It is understood that transmitting and receiving signals in a phased array system are well known in the art.
  • each element in the array can transmit at a power up to the limit provided by the onboard battery.
  • the range is in the order of up to 100 mW per element.
  • the directivity of the array is dependent on the number of copters and their arrangement.
  • coherent refers to the phase reference for each of the elements being aligned to a suitable tolerance, such as within 15 degrees of each other.
  • the phased array hovers in place. It is contemplated that the phased array can move while providing transmit and receive capability.
  • each transceiver receives a signal and applies a phase and amplitude weight based on its position and desired beam characteristics, such as steer angle and sidelobe control. In embodiments, this is calculated for each element at a base station and transmitted to the UAV. Each transceiver sends its data over a wireless link to the base station to be summed to all the other signals from the other copters.
  • the system 100 can be rapidly deployed and configured for a desired operation, such as radar imaging systems, anti-jamming systems, and electronic warfare (EW) systems.
  • the UAV-mounted RF radiators enable composable and flexible systems that can be shared by users of communication systems.
  • LTA lighter than air
  • Other systems can include drones having mounted array elements to meet the needs of a particular application.
  • FIG. 2 shows an illustrative quadcopter 200 including a battery 214, rotors 215, radio and communication (R/C) receiver 215, control systems 217, and electro-optic subsystems such as a camera (218).
  • the RF puck 202 provides signal transmit and receive
  • the puck 202 includes a transmit/receive subsystem 220, a datalink interface 230 and a PLL subsystem 240.
  • FIG. 3a shows an illustrative puck 300 including a RF transceiver subsystem 320 connected to a programmable datalink subsystem 330 and a PLL subsystem 340.
  • FIG. 3b shows a beacon generator 350 including a transmit antenna 351 to transmit a beacon signal.
  • the transceiver subsystem 320 includes a RF receive antenna 321, a receive communication antenna 322, a RF transmit antenna 323, and a transmit communication antenna 324.
  • the transceiver sub-system 320 receives and transmits radar waveforms that are synchronized to a beacon by the PLL subsystem 340.
  • the PLL subsystem 340 includes a beacon receive antenna 341 is attached to the PLL subsystem 340.
  • the datalink subsystem 330 interfaces with the transceiver subsystem 320 and the PLL subsystem 340 and provides datalink interface with a remote ground station or an airborne or shipboard platform.
  • the datalink subsystem 330 generates wave- forms to support various missions.
  • the beacon generator 350 can be located at any suitable location within range of the UAVs.
  • the beacon generator can be positioned by mobile personnel, carried by a vehicle, such as an aircraft or vessel, or an independently controlled UAV.
  • the beacon generator generates a beacon at a selected frequency that is used for synchronizing the phased array and providing coherent element spacing for the phased array aperture.
  • FIG. 4 shows an illustrative PLL system 400 of the puck.
  • the PLL system 400 comprises a beacon signal receive antenna 441 connected to a band pass filter (BPF) 442 the output of which is provided to a RF amplifier 443.
  • BPF band pass filter
  • the output of the RF amplifier 443 is fed to a "divide by N" circuit 444 which is then fed to a phase detection/comparison circuit 445.
  • the phase locked loop includes a local oscillator 448, which is then passed through a divide by M circuit 446 and fed back to the phase detection/comparison circuit 445 for comparing the phases to lock into the beacon signal frequency and phase.
  • Filter 447 filters an output of the comparison circuit 445 for output to the local oscillator 448.
  • Other embodiments and variations of the illustrated PLL subsystem can be expanded by one in the art and are anticipated by this disclosure.
  • FIG. 5 shows an illustrative agile RF transceiver system 500 within the puck.
  • a transmit front-end 568 and a receive front-end 528 respectively interface to the transmit and receive antennas.
  • PLL circuits 569 and control circuits 529 provide control and synchronization.
  • Digitized data is buffered and transported (in or out as appropriate) by a data subsystem 570 that interfaces 571 to a datalink subsystem, which can be provided in a FPGA.
  • a data subsystem 570 that interfaces 571 to a datalink subsystem, which can be provided in a FPGA.
  • parallel paths for differential RF inputs and parallel I/Q output paths are provided inside the transceiver subsystem. These parallel paths on the receive side comprises receive amplifiers 522 that provide amplification of the differential RF inputs before mixing (523) with receive local oscillator output (RX LO).
  • ADC Automatic Gain Control
  • the transmit paths illustrated in this embodiment 500 of the transmit/receive subsystem is similar to the receive side described above.
  • the analog output of the DAC Digital to analog converter
  • the output of 525 is fed to an AGC unit 564 which is then input to the mixer for carrier mixing with the Transmit Local Oscillator (Tx/LO) 563.
  • Tx/LO Transmit Local Oscillator
  • This is further amplified by amplifiers 562 before feeding transmit front-end 568.
  • Transmit antennas are connected to this transmit front-end 568.
  • the transceiver can be provided as Analog Devices Part No. AD9361 and the datalink interface can be provided as a programmable FPGA made by Enclustra.
  • the transmit and receive functionality can be provided in a variety of alternative embodiments known to those of ordinary skill in the art of radar signal processing. Other elements can be added or removed for performance or cost reasons.
  • the choice of components and level of integration may be dictated by the lattice spacing and frequency.
  • the UAV should be sized to enable operation less than a wavelength, or less than half a wavelength of operation to avoid multi-static grading lobes.
  • FIG. 6 illustrates phase noise performance of a simulated embodiment for frequency of operation versus input receive power using a 100 MHz reference local oscillator locked to a 2.4GHz beacon signal. As can be seen, the phase noise is acceptable when the input receive power varies from about -50dbm to about -20dbm.
  • FIGs. 7a-d show simulation results for the parameters listed in FIG. 7a.
  • Operation at 0.8 GHz corresponds to a wavelength ⁇ of 0.375 meters.
  • a 0.55 wavelength spacing wavelengths results in an element spacing of 0.206 meters (0.55 x 0.375).
  • the illustrative simulation comprises a 43 by 4 element array, as shown in FIG. 7d.
  • FIG. 7d For the example array, 2.68 meter range resolution using a 0.8 GHz frequency is provided, as shown in FIG. 7a.
  • FIG. 7b illustrates range resolution for azimuth (az) and elevation (el) from array broadside.
  • FIG. 7c illustrates normalized power distribution along the azimuth direction.
  • FIG. 8 shows an exemplary computer 800 that can perform at least part of the processing described herein.
  • the computer 800 includes a processor 802, a volatile memory 804, a non-volatile memory 806 (e.g., hard disk), an output device 807 and a graphical user interface (GUI) 808 (e.g., a mouse, a keyboard, a display, for example).
  • the non-volatile memory 806 stores computer instructions 812, an operating system 816 and data 818.
  • the computer instructions 812 are executed by the processor 802 out of volatile memory 804.
  • an article 820 comprises non-transitory computer-readable instructions.
  • Processing may be implemented in hardware, software, or a combination of the two.
  • Processing may be implemented in computer programs executed on programmable computers/machines that each includes a processor, a storage medium or other article of manufacture that is readable by the processor (including volatile and non-volatile memory and/or storage elements), at least one input device, and one or more output devices.
  • Program code may be applied to data entered using an input device to perform processing and to generate output information.
  • the system can perform processing, at least in part, via a computer program product, (e.g., in a machine-readable storage device), for execution by, or to control the operation of, data processing apparatus (e.g., a programmable processor, a computer, or multiple computers).
  • a computer program product e.g., in a machine-readable storage device
  • data processing apparatus e.g., a programmable processor, a computer, or multiple computers.
  • Each such program may be implemented in a high level procedural or object-oriented programming language to communicate with a computer system.
  • the programs may be implemented in assembly or machine language.
  • the language may be a compiled or an interpreted language and it may be deployed in any form, including as a stand-alone program or as a module, component, subroutine, or other unit suitable for use in a computing environment.
  • a computer program may be deployed to be executed on one computer or on multiple computers at one site or distributed across multiple sites and interconnected by a communication network.
  • a computer program may be stored on a storage medium or device (e.g., CD-ROM, hard disk, or magnetic diskette) that is readable by a general or special purpose programmable computer for configuring and operating the computer when the storage medium or device is read by the computer.
  • Processing may also be implemented as a machine-readable storage medium, configured with a computer program, where upon execution, instructions in the computer program cause the computer to operate. Processing may be performed by one or more programmable processors executing one or more computer programs to perform the functions of the system. All or part of the system may be implemented as, special purpose logic circuitry (e.g., an FPGA (field
  • ASIC application-specific integrated circuit

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Abstract

Method and apparatus for a phased array system including a plurality of unmanned aerial vehicles (UAVs) configured to fly in an array formation having an array lattice spacing. The UAVs can include a puck having a phased array element and a signal processing module configured to receive and process a signal to achieve for the array lattice spacing a spacing that is less than a wavelength of operation of the phased array elements.

Description

METHODS AND APPARATUS FOR
MOBILE PHASED ARRAY SYSTEM
BACKGROUND
As is known in the art, there exist a variety of rapidly deployable antennas, such as inflatable dish antennas which are typically deployed on the ground. However, such antennas remain in a fixed position and have limited scalability and transportability. In addition, conventional rapidly deployable antenna systems may have limited scan capability, weather issues, and less than robust survivability.
SUMMARY
Embodiments of the invention provide a rapidly deployable phased array system having relatively compact unmanned aerial vehicles (UAVs) capable of flying in a formation with an array lattice spacing. In one embodiment, the UAVs comprise battery-powered quadcopters. In embodiments, the UAVs include a puck having a phased array element capable of operating in a range of wavelengths. A remote beacon generating station can provide a reference beacon to enable the UAVs to navigate to the desired array element lattice spacing. In illustrative embodiments, the array lattice spacing is less than the wavelength of operation of the phased array elements. In alternative embodiments, the UAVs include a Global Positioning Receiver (GPS) unit for synchronizing the phased array elements.
Embodiments of the invention provide a rapidly deployable, scalable and dynamically reconfigurable phased array system. In embodiments, the phased array system can be transported via one or more backpacks. The phased array system enables high speed wireless communications, radar operations, and the like. System operation can be dynamically configured for a particular mission, terrain, weather condition, etc. In embodiments, battery-powered UAVs can be rotated in and out via a changing station to reduce or eliminate down time of the system.
In one aspect of the invention, a phased array system comprises: a plurality of unmanned aerial vehicles (UAVs) configured to fly in an array formation having an array lattice spacing, the UAVs comprising: a puck having a phased array element; and a signal l processing module configured to receive and process a signal to achieve for the array lattice spacing a spacing that is less than a wavelength of operation of the phased array elements. The system can further include one or more of the following features: the UAVs comprise multi-rotor copters, the puck comprises a phased locked loop system to process the received signal for synchronizing the phased array elements, the puck comprises a transceiver configured to provide a wireless data downlink and a connection to the phase locked loop system, the array lattice spacing is configured to be less than or equal to 0.5 of the wavelength of operation, the system comprises a phased array radar, the system comprises an anti-jammer, and or the system comprises a communication system.
In another aspect of the invention, a method of providing a phased array system
comprises: providing commands to a plurality of unmanned aerial vehicles (UAVs) to fly in an array formation having an array lattice spacing, the UAVs comprising: a puck having a phased array element; and a signal processing module configured to receive and process a signal to achieve for the array lattice spacing a spacing that is less than a wavelength of operation of the phased array elements. The method can further include one or more of the following features: the UAVs comprise multi-rotor copters, the puck comprises a phased locked loop system to process the received signal for synchronizing the phased array elements, the puck comprises a transceiver configured to provide a wireless data downlink and a connection to the phase locked loop system, the array lattice spacing is configured to be less than or equal to 0.5 of the wavelength of operation, the system comprises a phased array radar, the system comprises an anti-jammer, and or the system comprises a communication system.
In a further aspect of the invention, a system comprises: a controller; and a means for providing a hovering phased array radar configured for wireless communication with the controller, the means for providing a hovering phased array radar having an array lattice spacing and comprising: a puck having a phased array element; and a signal processing module configured to receive and process a signal to achieve for the array lattice spacing a spacing that is less than a wavelength of operation of the phased array elements. The system can further include one or more of the following features: the puck comprises a phased locked loop system to process the received signal for synchronizing the phased array elements, the puck comprises a transceiver configured to provide a wireless data downlink and a connection to the phase locked loop system, the array lattice spacing is configured to be less than or equal to 0.5 of the wavelength of operation, the system comprises a phased array radar, the system comprises an anti-jammer, and or the system comprises a communication system. BRIEF DESCRIPTION OF THE DRAWINGS
For a more complete understanding of the present disclosure and its advantages, reference is now made to the following description taken in conjunction with the accompanying drawings, in which like reference numerals represent like parts: FIG. 1 is a schematic representation of a phased array radar system;
FIG. 2 is a schematic block diagram of a UAV forming a part of the system of FIG. 1 ;
FIG. 3a is a schematic representation of a puck forming a part of the UAV of FIG. 2;
FIG. 3B is a schematic representation of a beacon system for synchronizing the pucks of FIG. 2;
FIG. 4 is a schematic representation of a synchronization system including a Phased Locked Loop (PLL) circuit for enabling puck synchronization using a beacon signal;
FIG. 5 is a schematic representation of a transceiver portion of the puck of FIG. 3a;
FIG. 6 is a graphical representation of simulated phase noise performance for a 2.4GHz beacon phase locked to a puck using a 100 MHz reference oscillator;
FIGs. 7a-7d show simulated performance parameters for an illustrative phased array system; and FIG. 8 is a schematic representation of an illustrative computer that can perform processing described herein.
DETAILED DESCRIPTION FIG. 1 shows a phased array system 100 operating in a deployment area 101 where unmanned aerial vehicles (UAVs) 1 10, shown as multi-rotor copters, are deployed in an array formation of a desired lattice size and array shape. A quad-copter 110 having an onboard RF puck 102 provides nodes/elements of a phased array system. An array lattice spacing includes a first lattice spacing 103, which is shown as horizontal, and a second lattice spacing 104, which is shown as vertical. The lattice spacing of the array elements should be maintained as the UAVs 1 10 move in the air for proper operation of the phased array elements provided by the onboard pucks 102. The UAVs 1 10 should move in a coherent manner through space. In embodiments, the horizontal 103 and vertical 104 lattice spacing is kept under a wavelength λ used by the phased array elements. In one embodiment, a wavelength of less than λ/2 is used.
It is understood that a phased array comprises an array of antennas in which the relative phases of the respective signals feeding the antennas are controlled to provide an effective radiation pattern of the array in a desired direction and suppressed in undesired directions. The antenna element phase relationships may be fixed or adjustable to provide beam steering. Operation of phased array radars and communication systems are well known to one of ordinary skill in the art. The pucks 105 enable wireless communication 107 to provide data-links 106 to a remote station and to receive a beacon reference signal 105. The reference beacon signal can be generated by a beacon generator that can be located in a nearby protected zone on the ground or on a nearby aircraft or on a sea vessel. In embodiments, the onboard pucks 102 include a phase locked loop (PLL) to synchronize the pucks to the beacon signal 105. The PLL of the pucks 102 enable coherent spacing and movement of the UAVs. In general, each UAV receives instructions for achieving a desired lattice spacing and phased array operation, e.g, signal transmit and receive, signal frequency, beamforming etc. In embodiments of the invention, each UAV/copter provides a single element in the phased array where the geometrical arrangement of the copters is accomplished using station keeping controls in a manner known in the art. The copters can be commanded to maintain a set position offset from an object in view of an onboard camera, for example. A first copter in the array is commanded to a position at a given offset from a beacon. The next copter is commanded to position itself relative to the first copter, and so on, until all the copters are positioned in their desired location. In one embodiment, the copters are positioned in relation to a fixed two-dimensional grid with a specified spacing.
In embodiments, each UAV/copter has an onboard transceiver and antenna element. In transmit mode, each transceiver is commanded to radiate a waveform with a specified amplitude and phase shift based on its position in the array to form a phased array beam pointing in the desired direction. In receive mode, each transceiver receives a signal and applies a phase and amplitude weight based on its position. Each transceiver sends its data over a wireless link to the base station for summing with the signals from the other copters. It is understood that transmitting and receiving signals in a phased array system are well known in the art.
In general, each element in the array can transmit at a power up to the limit provided by the onboard battery. In one particular embodiment, the range is in the order of up to 100 mW per element. It is understood that the directivity of the array is dependent on the number of copters and their arrangement. It is further understood that as used herein "coherent" refers to the phase reference for each of the elements being aligned to a suitable tolerance, such as within 15 degrees of each other. In embodiments, the phased array hovers in place. It is contemplated that the phased array can move while providing transmit and receive capability.
In general, in receive mode, each transceiver receives a signal and applies a phase and amplitude weight based on its position and desired beam characteristics, such as steer angle and sidelobe control. In embodiments, this is calculated for each element at a base station and transmitted to the UAV. Each transceiver sends its data over a wireless link to the base station to be summed to all the other signals from the other copters.
The system 100 can be rapidly deployed and configured for a desired operation, such as radar imaging systems, anti-jamming systems, and electronic warfare (EW) systems. The UAV-mounted RF radiators enable composable and flexible systems that can be shared by users of communication systems.
While illustrative embodiments of the invention are shown in conjunction with UAVs in the form of quadcopters, it is understood that any suitable UAV can be used. For example, lighter than air (LTA) vehicles can be used in larger lattice size systems. Other systems can include drones having mounted array elements to meet the needs of a particular application.
FIG. 2 shows an illustrative quadcopter 200 including a battery 214, rotors 215, radio and communication (R/C) receiver 215, control systems 217, and electro-optic subsystems such as a camera (218). The RF puck 202 provides signal transmit and receive
functionality for a phased array system. The puck 202 includes a transmit/receive subsystem 220, a datalink interface 230 and a PLL subsystem 240. FIG. 3a shows an illustrative puck 300 including a RF transceiver subsystem 320 connected to a programmable datalink subsystem 330 and a PLL subsystem 340. FIG. 3b shows a beacon generator 350 including a transmit antenna 351 to transmit a beacon signal. The transceiver subsystem 320 includes a RF receive antenna 321, a receive communication antenna 322, a RF transmit antenna 323, and a transmit communication antenna 324. The transceiver sub-system 320 receives and transmits radar waveforms that are synchronized to a beacon by the PLL subsystem 340. The PLL subsystem 340 includes a beacon receive antenna 341 is attached to the PLL subsystem 340.
The datalink subsystem 330 interfaces with the transceiver subsystem 320 and the PLL subsystem 340 and provides datalink interface with a remote ground station or an airborne or shipboard platform. The datalink subsystem 330 generates wave- forms to support various missions. The beacon generator 350 can be located at any suitable location within range of the UAVs. The beacon generator can be positioned by mobile personnel, carried by a vehicle, such as an aircraft or vessel, or an independently controlled UAV. The beacon generator generates a beacon at a selected frequency that is used for synchronizing the phased array and providing coherent element spacing for the phased array aperture.
FIG. 4 shows an illustrative PLL system 400 of the puck. The PLL system 400 comprises a beacon signal receive antenna 441 connected to a band pass filter (BPF) 442 the output of which is provided to a RF amplifier 443. The output of the RF amplifier 443 is fed to a "divide by N" circuit 444 which is then fed to a phase detection/comparison circuit 445. The phase locked loop includes a local oscillator 448, which is then passed through a divide by M circuit 446 and fed back to the phase detection/comparison circuit 445 for comparing the phases to lock into the beacon signal frequency and phase. Filter 447 filters an output of the comparison circuit 445 for output to the local oscillator 448. Other embodiments and variations of the illustrated PLL subsystem can be expanded by one in the art and are anticipated by this disclosure.
FIG. 5 shows an illustrative agile RF transceiver system 500 within the puck. A transmit front-end 568 and a receive front-end 528 respectively interface to the transmit and receive antennas. PLL circuits 569 and control circuits 529 provide control and synchronization. Digitized data is buffered and transported (in or out as appropriate) by a data subsystem 570 that interfaces 571 to a datalink subsystem, which can be provided in a FPGA. Inside the transceiver subsystem, parallel paths for differential RF inputs and parallel I/Q output paths are provided. These parallel paths on the receive side comprises receive amplifiers 522 that provide amplification of the differential RF inputs before mixing (523) with receive local oscillator output (RX LO). This is fed to a series of amplifiers 524 to provide for Automatic Gain Control (AGC). DC offset correction, quadrature correction and digital filtering elements can be done in the block 525 before feeding the output to the frequency synthesizing block 526. The output of the frequency synthesizer block 526 is then fed to an ADC (Analog to Digital Converter) 527. The digitized output is then fed to the data buffering block 570 that interfaces with the programmable data link system.
The transmit paths illustrated in this embodiment 500 of the transmit/receive subsystem is similar to the receive side described above. The analog output of the DAC (Digital to analog converter) is fed to the frequency synthesizer 566 which is then fed to a phase correction/filtering block 525. The output of 525 is fed to an AGC unit 564 which is then input to the mixer for carrier mixing with the Transmit Local Oscillator (Tx/LO) 563. This is further amplified by amplifiers 562 before feeding transmit front-end 568. Transmit antennas are connected to this transmit front-end 568.
In illustrative embodiments, the transceiver can be provided as Analog Devices Part No. AD9361 and the datalink interface can be provided as a programmable FPGA made by Enclustra.
It is understood that the transmit and receive functionality can be provided in a variety of alternative embodiments known to those of ordinary skill in the art of radar signal processing. Other elements can be added or removed for performance or cost reasons. The choice of components and level of integration may be dictated by the lattice spacing and frequency. In general, the UAV should be sized to enable operation less than a wavelength, or less than half a wavelength of operation to avoid multi-static grading lobes.
FIG. 6 illustrates phase noise performance of a simulated embodiment for frequency of operation versus input receive power using a 100 MHz reference local oscillator locked to a 2.4GHz beacon signal. As can be seen, the phase noise is acceptable when the input receive power varies from about -50dbm to about -20dbm.
FIGs. 7a-d show simulation results for the parameters listed in FIG. 7a. Operation at 0.8 GHz corresponds to a wavelength λ of 0.375 meters. A 0.55 wavelength spacing wavelengths results in an element spacing of 0.206 meters (0.55 x 0.375). The illustrative simulation comprises a 43 by 4 element array, as shown in FIG. 7d. For the example array, 2.68 meter range resolution using a 0.8 GHz frequency is provided, as shown in FIG. 7a. FIG. 7b illustrates range resolution for azimuth (az) and elevation (el) from array broadside. FIG. 7c illustrates normalized power distribution along the azimuth direction.
FIG. 8 shows an exemplary computer 800 that can perform at least part of the processing described herein. The computer 800 includes a processor 802, a volatile memory 804, a non-volatile memory 806 (e.g., hard disk), an output device 807 and a graphical user interface (GUI) 808 (e.g., a mouse, a keyboard, a display, for example). The non-volatile memory 806 stores computer instructions 812, an operating system 816 and data 818. In one example, the computer instructions 812 are executed by the processor 802 out of volatile memory 804. In one embodiment, an article 820 comprises non-transitory computer-readable instructions.
Processing may be implemented in hardware, software, or a combination of the two.
Processing may be implemented in computer programs executed on programmable computers/machines that each includes a processor, a storage medium or other article of manufacture that is readable by the processor (including volatile and non-volatile memory and/or storage elements), at least one input device, and one or more output devices.
Program code may be applied to data entered using an input device to perform processing and to generate output information.
The system can perform processing, at least in part, via a computer program product, (e.g., in a machine-readable storage device), for execution by, or to control the operation of, data processing apparatus (e.g., a programmable processor, a computer, or multiple computers). Each such program may be implemented in a high level procedural or object-oriented programming language to communicate with a computer system. However, the programs may be implemented in assembly or machine language. The language may be a compiled or an interpreted language and it may be deployed in any form, including as a stand-alone program or as a module, component, subroutine, or other unit suitable for use in a computing environment. A computer program may be deployed to be executed on one computer or on multiple computers at one site or distributed across multiple sites and interconnected by a communication network. A computer program may be stored on a storage medium or device (e.g., CD-ROM, hard disk, or magnetic diskette) that is readable by a general or special purpose programmable computer for configuring and operating the computer when the storage medium or device is read by the computer. Processing may also be implemented as a machine-readable storage medium, configured with a computer program, where upon execution, instructions in the computer program cause the computer to operate. Processing may be performed by one or more programmable processors executing one or more computer programs to perform the functions of the system. All or part of the system may be implemented as, special purpose logic circuitry (e.g., an FPGA (field
programmable gate array) and/or an ASIC (application-specific integrated circuit)).
Having described exemplary embodiments of the invention, it will now become apparent to one of ordinary skill in the art that other embodiments incorporating their concepts may also be used. The embodiments contained herein should not be limited to disclosed embodiments but rather should be limited only by the spirit and scope of the appended claims. All publications and references cited herein are expressly incorporated herein by reference in their entirety.
Elements of different embodiments described herein may be combined to form other embodiments not specifically set forth above. Various elements, which are described in the context of a single embodiment, may also be provided separately or in any suitable subcombination. Other embodiments not specifically described herein are also within the scope of the following claims.

Claims

What is claimed is:
1. A phased array system comprising:
a plurality of unmanned aerial vehicles (UAVs) configured to fly in an array formation having an array lattice spacing, the UAVs comprising:
a puck having a phased array element; and
a signal processing module configured to receive and process a signal to achieve for the array lattice spacing a spacing that is less than a wavelength of operation of the phased array elements.
2. The system of claim 1, wherein the UAVs comprise multi-rotor copters.
3. The system of claim 1, wherein the puck comprises a phased locked loop system to process the received signal for synchronizing the phased array elements.
4. The system of claim 3, wherein the puck comprises a transceiver configured to provide a wireless data downlink and a connection to the phase locked loop system.
5. The system of claim 1, wherein the array lattice spacing is configured to be less than or equal to 0.5 of the wavelength of operation.
6. The system of claim 1, wherein the system comprises a phased array radar.
7. The system of claim 1, wherein the system comprises an anti-jammer.
8. The system of claim 1, wherein the system comprises a communication system.
9. A method of providing a phased array system comprising:
providing commands to a plurality of unmanned aerial vehicles (UAVs) to fly in an array formation having an array lattice spacing, the UAVs comprising:
a puck having a phased array element; and
a signal processing module configured to receive and process a signal to achieve for the array lattice spacing a spacing that is less than a wavelength of operation of the phased array elements.
10. The method of claim 9, wherein the UAVs comprise multi-rotor copters.
11. The method of claim 9, wherein the puck comprises a phased locked loop system to process the received signal for synchronizing the phased array elements.
12. The method of claim 1 1, wherein the puck comprises a transceiver configured to provide a wireless data downlink and a connection to the phase locked loop system.
13. The method of claim 9, wherein the array lattice spacing is configured to be less than or equal to 0.5 of the wavelength of operation.
14. The method of claim 9, wherein the system comprises a phased array radar.
15. The method of claim 9, wherein the system comprises an anti -jammer.
16. The method of claim 9, wherein the system comprises a communication system.
17. A system, comprising:
a controller; and
a means for providing a hovering phased array radar configured for wireless communication with the controller, the means for providing a hovering phased array radar having an array lattice spacing and comprising:
a puck having a phased array element; and
a signal processing module configured to receive and process a signal to achieve for the array lattice spacing a spacing that is less than a wavelength of operation of the phased array elements.
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Cited By (10)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN106483979A (en) * 2016-12-19 2017-03-08 重庆信首科技有限公司 A kind of unmanned aerial vehicle control system for land for growing field crops bird repellent
CN106774364A (en) * 2016-12-14 2017-05-31 歌尔科技有限公司 Unmanned plane progress control method and unmanned plane
CN107222224A (en) * 2017-05-23 2017-09-29 成都希德电子信息技术有限公司 Radio extension system based on ZYNQ
CN107509244A (en) * 2017-08-24 2017-12-22 深圳市高巨创新科技开发有限公司 A kind of communication means of UAV Formation Flight
RU2656285C1 (en) * 2017-06-05 2018-06-04 Федеральное государственное бюджетное образовательное учреждение высшего образования "Поволжский государственный университет телекоммуникаций и информатики" (ФГБОУ ВО ПГУТИ) Method for deploying a phased array
CN108226871A (en) * 2018-01-18 2018-06-29 西安电子工程研究所 Diversity phased array design method based on millimeter wave collision avoidance radar
CN110161902A (en) * 2019-04-30 2019-08-23 桂林电子科技大学 A kind of unmanned plane figure passes and the Universal-purpose quick acquisition device and acquisition method of remote signal
CN112448145A (en) * 2019-08-30 2021-03-05 Oppo广东移动通信有限公司 Electronic device
WO2021137905A3 (en) * 2019-09-26 2021-09-02 Rogers Corporation Radar-enabled multi-vehicle system
US11190267B2 (en) 2017-08-24 2021-11-30 Ford Global Technologies, Llc Vehicle-to-vehicle communication using drones focusing antenna beams

Families Citing this family (7)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20170283054A1 (en) * 2016-03-29 2017-10-05 Chengwen Chris WANG Unmanned spatial vehicle performance
US10338610B2 (en) 2016-11-13 2019-07-02 Intel IP Corporation Aerial display visualization
WO2021158208A1 (en) * 2020-02-03 2021-08-12 4S-Silversword Software And Services, Llc Airborne mesh network forming phase array antenna
US12362474B2 (en) 2017-05-30 2025-07-15 4S-Silversword Software And Services, Llc System and method for aligning RF phase in a distributed mobile platform ensemble utilizing a free space optical system to improve RF phase alignment
US11855360B1 (en) * 2018-05-29 2023-12-26 4S-Silversword Software And Services, Llc Airborne mesh network forming phase array antenna
FR3098600A1 (en) * 2019-07-11 2021-01-15 Dassault Aviation RADAR SYSTEM AND ASSOCIATED RADAR DETECTION METHOD
DE102019007833A1 (en) * 2019-11-12 2021-05-12 Mbda Deutschland Gmbh Radar system

Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US7051636B1 (en) * 2004-09-21 2006-05-30 The United States Of America As Represented By The Secretary Of The Navy Electromagnetic weapon
WO2007059508A1 (en) * 2005-11-15 2007-05-24 University Of Florida Research Foundation, Inc. Time reversal antenna network based directed energy systems
US20120013498A1 (en) * 2010-07-14 2012-01-19 Hilliard Lawrence M Expandable and reconfigurable instrument node arrays
US20140269856A1 (en) * 2013-03-15 2014-09-18 Raytheon Company Rf puck

Family Cites Families (20)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US5521817A (en) * 1994-08-08 1996-05-28 Honeywell Inc. Airborne drone formation control system
FR2733042B1 (en) * 1995-04-13 1997-05-23 Thomson Csf METHOD AND DEVICE FOR SWATCHING DRONES ON CURVED PATHS AROUND ONE OR MORE REFERENCE POINTS
US5896105A (en) 1997-06-23 1999-04-20 Northrop Grumman Corporation Distributed phased array antenna system
US6507739B1 (en) 2000-06-26 2003-01-14 Motorola, Inc. Apparatus and methods for controlling a cellular communications network having airborne transceivers
US20040030571A1 (en) * 2002-04-22 2004-02-12 Neal Solomon System, method and apparatus for automated collective mobile robotic vehicles used in remote sensing surveillance
US6963795B2 (en) * 2002-07-16 2005-11-08 Honeywell Interntaional Inc. Vehicle position keeping system
US6926233B1 (en) * 2004-02-21 2005-08-09 Corcoran, Iii James John Automatic formation flight control system (AFFCS)—a system for automatic formation flight control of vehicles not limited to aircraft, helicopters, or space platforms
US20060163349A1 (en) * 2004-09-30 2006-07-27 W5 Networks, Inc. Wireless systems suitable for retail automation and promotion
GB0614093D0 (en) 2006-07-14 2006-08-23 Bae Systems Plc Deployable antenna system
US20090091492A1 (en) * 2007-10-09 2009-04-09 The Mitre Corporation Detection and mitigation radio frequency memory (DRFM)-based interference in synthetic aperture radar (SAR) images
US8922421B2 (en) 2009-12-10 2014-12-30 Lockheed Martin Corporation Method and system for use of GPS disciplined oscillators for coherent timing reference in distributed radar systems
KR20120064532A (en) * 2010-12-09 2012-06-19 한국전자통신연구원 Receiver of pulse radar
US9104201B1 (en) * 2012-02-13 2015-08-11 C&P Technologies, Inc. Method and apparatus for dynamic swarming of airborne drones for a reconfigurable array
GB201219732D0 (en) * 2012-11-02 2012-12-12 Qinetiq Ltd A radar imaging system
US8781727B1 (en) * 2013-01-15 2014-07-15 Google Inc. Methods and systems for performing flocking while executing a long-range fleet plan
US9513371B2 (en) * 2013-02-28 2016-12-06 Identified Technologies Corporation Ground survey and obstacle detection system
US10110270B2 (en) 2013-03-14 2018-10-23 Tarana Wireless, Inc. Precision array processing using semi-coherent transceivers
US8818572B1 (en) * 2013-03-15 2014-08-26 State Farm Mutual Automobile Insurance Company System and method for controlling a remote aerial device for up-close inspection
US9302782B2 (en) * 2014-08-18 2016-04-05 Sunlight Photonics Inc. Methods and apparatus for a distributed airborne wireless communications fleet
US9599994B1 (en) * 2015-08-03 2017-03-21 The United States Of America As Represented By The Secretary Of The Army Collisionless flying of unmanned aerial vehicles that maximizes coverage of predetermined region

Patent Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US7051636B1 (en) * 2004-09-21 2006-05-30 The United States Of America As Represented By The Secretary Of The Navy Electromagnetic weapon
WO2007059508A1 (en) * 2005-11-15 2007-05-24 University Of Florida Research Foundation, Inc. Time reversal antenna network based directed energy systems
US20120013498A1 (en) * 2010-07-14 2012-01-19 Hilliard Lawrence M Expandable and reconfigurable instrument node arrays
US20140269856A1 (en) * 2013-03-15 2014-09-18 Raytheon Company Rf puck

Non-Patent Citations (2)

* Cited by examiner, † Cited by third party
Title
PETKO J S ET AL: "Positional tolerance analysis and error correction of micro-UAV swarm based antenna arrays", ANTENNAS AND PROPAGATION SOCIETY INTERNATIONAL SYMPOSIUM, 2009. APSURSI '09. IEEE, IEEE, PISCATAWAY, NJ, USA, 1 June 2009 (2009-06-01), pages 1 - 4, XP031536269, ISBN: 978-1-4244-3647-7 *
TONETTI ET AL: "Distributed Control of Antenna Array with Formation of UAVs", PROCEEDINGS OF THE 18TH WORLD CONGRESS THE INTERNATIONAL FEDERATION OF AUTOMATIC CONTROL; MILANO, ITALY; AUGUST 28 - SEPTEMBER 2, 2011., vol. 18, 28 August 2011 (2011-08-28), Red Hook, NY, pages 7848 - 7853, XP055267910, ISSN: 1474-6670, ISBN: 978-1-123-47890-7, DOI: 10.3182/20110828-6-IT-1002.02460 *

Cited By (13)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN106774364A (en) * 2016-12-14 2017-05-31 歌尔科技有限公司 Unmanned plane progress control method and unmanned plane
CN106774364B (en) * 2016-12-14 2023-09-15 歌尔科技有限公司 Unmanned aerial vehicle operation control method and unmanned aerial vehicle
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RU2656285C1 (en) * 2017-06-05 2018-06-04 Федеральное государственное бюджетное образовательное учреждение высшего образования "Поволжский государственный университет телекоммуникаций и информатики" (ФГБОУ ВО ПГУТИ) Method for deploying a phased array
US11190267B2 (en) 2017-08-24 2021-11-30 Ford Global Technologies, Llc Vehicle-to-vehicle communication using drones focusing antenna beams
CN107509244A (en) * 2017-08-24 2017-12-22 深圳市高巨创新科技开发有限公司 A kind of communication means of UAV Formation Flight
CN108226871A (en) * 2018-01-18 2018-06-29 西安电子工程研究所 Diversity phased array design method based on millimeter wave collision avoidance radar
CN108226871B (en) * 2018-01-18 2021-08-10 西安电子工程研究所 Diversity phased array design method based on millimeter wave collision avoidance radar
CN110161902A (en) * 2019-04-30 2019-08-23 桂林电子科技大学 A kind of unmanned plane figure passes and the Universal-purpose quick acquisition device and acquisition method of remote signal
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WO2021137905A3 (en) * 2019-09-26 2021-09-02 Rogers Corporation Radar-enabled multi-vehicle system
GB2601977A (en) * 2019-09-26 2022-06-15 Rogers Corp Radar-enabled multi-vehicle system

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