Detection system
10006745 ยท 2018-06-26
Assignee
Inventors
Cpc classification
G01S3/782
PHYSICS
F41H11/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
G08B21/00
PHYSICS
F41H11/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A threat detection system is disclosed. The threat detection system may also determine the location of the threat. The treat detection system may determine the threat attributes. The threat detection system may detect lasers.
Claims
1. A detection system comprising: a sensor system, a processing control unit, a display, and a countermeasure system, wherein the sensor system, the processing control unit, the display and the countermeasure system are integrated with one another, and the detection system is operatively integrated into an aircraft in order to provide continuous surveillance and detection capabilities in three dimensions about the aircraft, wherein the sensor system comprises a plurality of photonic detectors configured to detect a laser beam illuminating the aircraft and each of the detectors are selectively tunable to laser beam wavelength(s) of interest, wherein the processing control unit is configured to determine a geographic location of a source of the laser beam, and wherein the countermeasure system is configured to generate instructions to physically maneuver the aircraft to avoid the laser beam, wherein the plurality of photonic detectors includes a first photonic detector and a second photonic detector that is spaced apart from the first photonic detector and the processing control unit is configured to provide the geographic location of the source of the laser beam in the map coordinate system based on at least one of a wave's time of arrival, phase of arrival, and angle of arrival at the first photonic detector and the second photonic detector, wherein the processing control unit is configured to receive user input indicative of a known location of the source of the laser beam and determine the geographic location of the source of the laser beam in the map coordinate system based on the user input.
2. The detection system of claim 1 wherein the detectors are designed to detect the polarization state of the threat.
3. The detection system of claim 1 wherein the detection system is configured to detect laser wavelengths in the visible range.
4. The detection system of claim 3 wherein the detection system comprises components that have a minimal impact upon vehicle aerodynamic geometry and the plurality of photonic detectors comprises micro-sized detectors.
5. The detection system of claim 1 wherein the processing control unit comprises detection circuitry and a signal conditioner.
6. The detection system of claim 5 wherein the detection system generates a threat warning signal comprising a cue perceptible by any one or any combination of human senses.
7. A method of detecting a threat, the method comprising the steps of: providing a sensor system configured to couple with an aircraft and to detect a laser threat, a control unit, and a display; sensing a laser threat illuminating the aircraft with the sensor system; processing the laser threat with the control unit; generating a threat warning signal; disseminating the threat warning signal as a warning cue; and wherein the sensor system, the control unit, and the display are integrated with one another, the method further comprising the steps of displaying the warning cue as one or more of an aural, visual, tactile, and an olfactory cue; locating a geographic position of the laser threat; and actuating a countermeasure system, wherein actuating the countermeasure system includes generating instructions to physically maneuver a vehicle to avoid the laser threat based on the geographic position of the laser threat, wherein the sensor system comprises a plurality of photonic detectors configured to sense the laser threat and each of the photonic detectors are selectively tunable to laser beam wavelength(s) of interest, wherein the plurality of photonic detectors includes a first photonic detector and a second photonic detector that is spaced apart from the first photonic detector and the processing control unit is configured to provide the geographic position of the source of the laser beam in a map coordinate system based on at least one of a wave's time of arrival, phase of arrival, and angle of arrival at the first photonic detector and the second photonic detector, wherein the processing control unit is configured to receive user input indicative of a known location of the source of the laser beam and determine the geographic position of the source of the laser beam in the map coordinate system based on the user input.
8. The detection system of claim 1 wherein the countermeasure system further includes at least one of chaff, flares, and a protective shield.
9. The detection system of claim 1 wherein the countermeasure system further includes an optical filter configured to deflect light having a wavelength in the visible range.
10. The detection system of claim 1 wherein the countermeasure system further includes an optical filter configured to alter a wavelength of light having a wavelength in the visible range.
11. The method of claim 7 wherein actuating the countermeasure system further includes at least one of deflecting the laser threat, altering a wavelength of the laser threat, deploying chaff, activating flares, activating protective shields, and activating an optical filter.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
DETAILED DESCRIPTION OF THE DRAWINGS
(3) For the purposes of promoting an understanding of the principles of the disclosure, reference will now be made to a number of illustrative embodiments illustrated in the drawings and specific language will be used to describe the same.
(4) Referring to the Figures, an illustrative detection system 10 is depicted as further described by in the Summary and the claims appended hereto. As seen in
(5) Referring to
(6) Illustrative countermeasures may include chaff, flares, protective shields, optical filters, physical maneuvers, a weapon that targets the source of the threat, and the like. The protective shield may be opaque or translucent. For example, it may comprise a completely opaque piece of metal, plastic, wood, or composite material. The glass of the cockpit, or the pilot's visor, or an optical device's lens may change as required. For example, the glass may transition from completely clear or transparent to translucent to opaque, moving from clear, to smokey, to opaque. The glass may change its composition or it may be overlaid by a filter to deflect or alter certain wavelengths, for example wavelengths in the visible range, including for example laser wavelengths.
(7) Illustratively, the sensors 20 comprise diode detectors. The diode detectors may be micro-sized and may be tuned to detect a desired wavelength, for example a laser beam in the optical range. These small and light weight diode detectors or sensors 20 illustratively may provide total surveillance of the surrounding airspace. The system further comprises a diagnostic instrument 30, illustratively integrated with the sensors 20 and an information display and warning system (not shown). The diagnostic instrument may comprise a data processing control unit and a signal conditioner, which, illustratively, operate to identify and calculate attribution or the geographic location of a threat, for example a laser threat. The display and warning system may provide graphical and/or textual or other threat notice or warning of and location data on the threat system. The system may generate a threat signal or threat warning signal or notice. The sensors or detectors 20, data processing or attribution control unit, signal conditioner, and display and threat warning system illustratively are integrated together with one another and the vehicle or person to be protected. The detectors may sense or detect a threat, such as an optical threat source. The system illustratively is low profile and minimizes impact to aerodynamic geometry of any vehicle integrated therewith. The system illustratively is low power and light weight. Signal processing components and algorithms compute and process any detected threat, generate a threat signal or warning cue, and disseminate or display the threat signal or warning notice providing information of the threat, for example a laser beam. Information including geographic location (geo location) data of the threat may be displayed. The system illustratively comprises high-speed detection circuitry for near-instantaneous detection, analysis, and display or dissemination of warning or alert cues. One or more, or a combination of possible protective measures may also be suggested or implemented by the system as noted herein.
(8) It will be appreciated that the system 10 illustratively protects an optical devicefor example a human eyeball, a camera lens, a forward looking infrared lens, or other receiverfrom a threat including a laser beam operating in the visual spectrum.
(9) Geolocation techniques may include analysis of, for example, any one or a combination of a beam's or wave's time of arrival, phase of arrival, angle of arrival at one sensor, with that at another sensor or sensors. Known locations of threats may also be used in the analysis. Also, the pilot or other user may input additional data including visual, aural or other sensory data into the system for analysis.
(10) A detection system is disclosed, the detection system generally comprising: a sensor system, a processing control unit, a display; and a countermeasure system; wherein the sensor system, the processing control unit; the display and the countermeasure system are integrated with one another.
(11) The sensor system may comprise a photonic detector. It may also comprise a plurality of photonic detectors.
(12) Illustratively, any detector may comprise micro-sized detectors.
(13) The photonic detector(s) may comprise detectors tuned to wavelengths of interest. For example, the detectors may be selectively tunable to wavelength(s) of interest.
(14) The detectors may be designed to detect the polarization state of the threat.
(15) Illustratively, the detection system may be optimized to detect laser wavelengths of interest.
(16) The detection system may be operatively integrated into a vehicle in order to provide continuous surveillance and detection around the vehicle. Such a vehicle may for example comprise ab aircraft. The detection system may provide continuous and uninterrupted surveillance and detection capabilities in three dimensions about the vehicle.
(17) The detection system may comprise components that have a minimal impact upon vehicle aerodynamic geometry.
(18) Illustratively, the processing control unit comprises detection circuitry and a signal conditioner.
(19) Illustratively, the control unit comprises a Graphical Processing Unit (GPU).
(20) Illustratively, the control unit and the vehicle are integrated together.
(21) The detection system illustratively generates a threat warning signal comprising a cue perceptible by any one or any combination of human senses.
(22) The detection system may further comprise a countermeasure system. The countermeasure system may comprise a self-protection system.
(23) Also disclosed is a detection system comprising: a sensor system, a processing control unit, and a display.
(24) The sensor system illustratively comprises an optical sensor.
(25) Further disclosed is a method of detecting a threat, the method comprising the steps of: providing a sensor system, providing a control unit, providing a display; sensing a threat; processing the threat; generating a threat warning signal; disseminating the threat warning signal as a warning cue; and wherein the sensor system, the control unit and the display are integrated with one another.
(26) The method illustratively may further comprise the steps of displaying the warning cue as any one of or any combination of an aural, visual, tactile, and an olfactory cue; locating the geographic position of the threat; and actuating a countermeasure system.
(27) While the disclosure has been illustrated and described in detail in the foregoing drawings and description, the same is to be considered as exemplary and not restrictive in character, it being understood that only illustrative embodiments thereof have been shown and described and that all changes and modifications that come within the spirit of the disclosure are desired to be protected.