QUICK-MOUNT WARNING RECEIVER
20240185725 ยท 2024-06-06
Inventors
Cpc classification
G01S7/495
PHYSICS
B64D45/00
PERFORMING OPERATIONS; TRANSPORTING
G01S7/021
PHYSICS
G01S7/36
PHYSICS
G01J1/4257
PHYSICS
G01J1/0266
PHYSICS
G01S7/4804
PHYSICS
International classification
B64D45/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A warning receiver can be detachably mounted on the inside of a window of a manned platform to detect RF or RF and laser threats and to provide visual or audio warnings to the human occupant. The warning receiver is fully self-contained and independent of any systems on the manned platform. In different packaging configurations, the receiver can be manually rotated to better visualize the threat and/or the receiver's human-machine interface (HMIF) can be manually rotated to better display the warnings. Although most typically used in manned aircraft the warning receiver can be used in other manned vehicles or ships.
Claims
1. A self-contained quick-mount RF/laser warning receiver, comprising: a warning receiver including a forward-facing aperture having a field-of-view (FOV), an optical detector and a forward-facing RF antenna having an antenna pattern and a rearward-facing human-machine interface (HMIF); and a quick release mechanism for mounting the warning receiver to a flat or curved inner surface of an optically and RF transparent window of a manned platform to position the forward-facing aperture and RF antenna to receive light within the FOV and RF within the antenna pattern through the optically and RF transparent window and to provide visual or audio warnings via the HMIF of a detected laser or RF source to the human occupant.
2. The self-contained quick-mount RF/laser warning receiver of claim 1, wherein the warning receiver is configured to detect continuous wave (CW) or pulsed laser sources in the visible or NIR/SWIR bands and pulsed RF sources.
3. The self-contained quick-mount RF/laser warning receiver of claim 1, wherein the warning receiver includes optics that couple received light within the FOV to a pixelated optical detector to generate a first electrical signal, a seed laser configured to produce an optical beam, an electro-optic (EO) modulator configured to modulate the optical beam with the received RF, one or more pixels of the optical detector configured to sense the modulated optical beam and generate a second electrical signal, and EO electronics configured to process the first electrical signal to detect the laser source and to process one or more samples of the second electrical signal to detect the RF source.
4. The self-contained quick-mount RF/laser warning receiver of claim 1, wherein the quick release mechanism includes two or more feet coupled to a stationary device platform on which the warning receiver is mounted.
5. The self-contained quick-mount RF/laser warning receiver of claim 4, wherein the RF antenna is configured such that its antenna pattern is coincident with a surface normal to the window.
6. The self-contained quick-mount RF/laser warning receiver of claim 4, wherein the RF antenna is configured such that its antenna pattern is biased at an angle to a surface normal to the window.
7. The self-contained quick-mount RF/laser warning receiver of claim 4, wherein the RF antenna comprises an array of electronically-controlled antenna elements to point the antenna pattern at an angle to a surface normal to the window.
8. The self-contained quick-mount RF/laser warning receiver of claim 4, wherein the stationary device platform is formed with locking features, wherein the warning receiver is formed with complementary locking features that allow the warning receiver to be lifted, rotated about a surface normal to the window and re-engaged with the locking features on the stationary device platform to cylindrically rotate the FOV and antenna pattern.
9. The self-contained quick-mount RF/laser warning receiver of claim 1, wherein the quick release mechanism further comprises a rotation coupler configured to manually rotate the FOV and antenna pattern in a full 3-axis of rotation.
10. The self-contained quick-mount RF/laser warning receiver of claim 1, wherein the quick release mechanism includes at least two feet rotatably coupled to a stationary device platform including a ball joint interface for mounting on the inner surface of the optically transparent window and an optical ball joint that engages the ball joint interface, wherein the optical ball joint rigidly and optically couples the forward-facing aperture to the optical detector to rotate the FOV in three axes, wherein the RF antenna is positioned outside the optical path to the optical detector so that the antenna pattern rotates with the FOV in three axes.
11. The self-contained quick-mount RF/laser warning receiver of claim 1, wherein the quick release mechanism comprises includes at least two feet rotatably coupled to a stationary device platform including a ball joint interface for mounting on the inner surface of the optically transparent window and an optical ball joint that engages the ball joint interface, wherein the optical ball joint rigidly and optically couples the forward-facing aperture to the optical detector to rotate the FOV in three axes, wherein the RF antenna comprises a conductive optically transparent coating on the optical joint such that the antenna pattern rotates with the FOV in three axes.
12. The self-contained quick-mount RF/laser warning receiver of claim 1, wherein the quick release mechanism includes a single suction cup including a mechanical ball joint that engages a ball joint interface on the warning receiver, wherein the RF antenna is positioned inside the single suction cup, wherein the forward-facing aperture is positioned outside the single suction cup to rotate the FOV in three axes.
13. The self-contained quick-mount RF/laser warning receiver of claim 1, wherein the quick release mechanism includes a single suction cup including a rotatable mount with a cantilever arm attached to the warning receiver to point the FOV and the antenna pattern.
14. A self-contained quick-mount RF warning receiver, comprising: a warning receiver including a forward-facing RF antenna having an antenna pattern and a rearward-facing human-machine interface (HMIF); and a quick release mechanism including a single lockable suction for mounting the warning receiver to a flat or curved inner surface of an RF transparent window of a manned platform, wherein the forward-facing RF antenna is positioned within the single lockable suction cup to receive RF within the antenna pattern through the RF transparent window and to provide visual or audio warnings via the HMIF of a detected RF source to the human occupant.
15. The self-contained quick-mount RF warning receiver of claim 14, wherein the RF antenna is configured such that its antenna pattern is biased at an angle to a surface normal to the window.
16. The self-contained quick-mount RF warning receiver of claim 15, wherein the RF antenna comprises an array of electronically-controlled antenna elements to point the antenna pattern at the angle.
17. A self-contained quick-mount RF warning receiver, comprising: a warning receiver including a forward-facing RF antenna configured to receive RF within an antenna pattern in an RF band between the L and Ka bands and a rearward-facing human-machine interface (HM IF); and a quick release mechanism for mounting the warning receiver to a flat or curved inner surface of an RF transparent window of a manned platform to position the forward-facing RF antenna to receive RF within the antenna pattern through the RF transparent window and to provide visual or audio warnings via the HMIF of a detected RF source to the human occupant, wherein the warning receiver includes a seed laser configured to produce an optical beam, an electro-optic (EO) modulator configured to modulate the optical beam with the received RF, an optical detector configured to sense the modulated optical beam and generate a temporal electrical signal, and EO electronics configured to process one or more samples of the temporal electrical signal to detect the RF source, wherein the warning receiver spans the bandwidth between the L and Ka bands.
18. The self-contained quick-mount RF warning receiver of claim 17, wherein the RF antenna comprises an array of electronically-controlled antenna elements to point the antenna pattern at an angle to a surface normal to the window.
19. The self-contained quick-mount RF warning receiver of claim 17, wherein the quick release mechanism includes a single suction cup including a mechanical ball joint that engages a ball joint interface on the warning receiver, wherein the RF antenna is positioned outside the single suction cup to rotate the antenna pattern in three axes.
20. The self-contained quick-mount RF warning receiver of claim 17, wherein the quick release mechanism comprises includes at least two feet rotatably coupled to a stationary device platform including a ball joint interface for mounting on the inner surface of the RF transparent window and an RF transparent ball joint that engages the ball joint interface, wherein the ball joint rotates the antenna pattern in three axes.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
[0022] The present disclosure provides a warning receiver that can be detachably mounted on the inside of a window of a manned platform to detect RF or RF and laser threats and to provide visual or audio warnings to the human occupant. The warning receiver is fully self-contained and independent of any systems on the manned platform. In different packaging configurations, the receiver can be manually rotated to better visualize the threat and/or the receiver's human-machine interface (HMIF) can be manually rotated to better display the warnings. Although most typically used in manned aircraft the warning receiver can be used in other manned vehicles or ships.
[0023] Referring now to
[0024] Each warning receiver 10 may include the capability to rotate (point) the optical FOV and RF antenna pattern to better receive the threat (laser source 24 or RF source 26) or to rotate (orient) the HMIF towards the pilot 30 as desired such that a single design can be used on multiple different platforms with multiple different window shapes and slopes to address multiple different threats, ground vs air-based, takeoff and landing only vs all phases of flight, etc. The rotation capability may be limited to cylindrical rotation about the X-axis 32 (surface normal to the window) or may provide rotation about the Z-axis 34 to tip the FOV up/down or may provide rotation about the Y-axis 36 to tip the optical FOV and RF antenna pattern left/right or preferably provide rotation about all 3 axes. The HMIF may be rigidly coupled to the forward-facing apertures such that they rotate in the same manner. Alternately, the optical FOV or RF antenna pattern could be fixed and the HMIF allowed to rotate or multiple coupling mechanisms could be provided to allow for independent pointing of the optical FOV/RF antenna pattern and orientation of the HMIF. In general, the rotational coupling can provide 360 degrees of cylindrical rotation and approximately 20-30 degrees of rotation about the X and Y axis as constrained by limitations of the mount e.g., spacing of the aperture to the window, spacing between the aperture and the mount, etc. The capability designed into warning receiver 10 will depend on the platform (e.g., slope of the window), nature of the threat and SWAP-C requirement.
[0025] The warning receiver is fully self-contained (e.g., own power source, electronics, human-machine interface) and independent of any systems on the manned platform. The warning receiver includes a quick release mechanism 40 (adapted for mounting on either a flat or curved surface) that allows the pilot to position each warning receiver 10 as best suited to detect the threat based at least in part on the nature of the threat, the slope of window 12, other instrumentation in the cockpit and pilot preference. The nature of the threat may, for example, be limited to only a person on the ground with a laser pointer (e.g., a continuous wave (CW) source in the visible or NIR/SWIR bands). This threat is most pervasive during takeoff or landing. Alternately, the threat may be a rangefinder or guidance beam for a weapons system, typically pulsed. The threat could also be a ground or air-based CW or pulsed RF source. The pointing of the optical FOV/RF antenna pattern can be adjusted in-flight, if desired, based suspected threat locations. Warning receiver 10 may be configured to detect and warn based on either threat and to provide warnings that characterize or identify the threat and to possible locate the threat. Detection and possible characterization or location of the threat sources may allow the pilot to don aircrew laser eye protection (ALEP), activate sensor protection, to radio the source characterization or location information to address the threat or to take evasive action or deploy countermeasures.
[0026] This attachable/detachable self-contained warning receiver 10 provides much needed laser or RF threat detection capability for both commercial and military aircraft. The Size, Weight and PowerCost (SWAP-C) of the warning 10 is highly favorable when compared to the cost and complexity of implementation or retro-fit of dedicated laser or RF receivers mounted around the aircraft that feed data to a central computer that presents warnings via a hard-wired system in the cockpit. The warning receiver 10 is simple and easy to use.
[0027] Referring now to
[0028] Alternately, an RF/laser warning receiver may use a common optical backend including an optical detector and E/O electronics that span the entire spectrum from L to Ka band to process both the laser and RF threats. One advantage of this common optical backend is that because it spans the entire spectrum L to Ka bands it does not have to be redesigned for a particular RF antenna within the spectrum.
[0029] Referring now to
[0030] Optical input channel 104 includes a forward-facing optical aperture 120 with an optical FOV 122 and optics 124 to receive and form incident light 125. RF input channel 106 includes a forward-facing RF aperture 126, an RF antenna 128 with an antenna pattern 130, an E/O modulator 132 and a seed laser 134 to receive RF radiation and convert it to light 135. The particular RF frequency or band appears as an offset to the seed laser frequency.
[0031] Common optical backend 108 includes a pixelated optical detector 136 and E/O electronics 137. Light 125 from the optical input channel 104 is spatially coupled to a plurality of pixels on pixelated optical detector 136. Light 135 from the RF input channel 106 is coupled to one or more (suitably just one) pixel on pixelated optical detector 136. Light 125 may, for example, form a spot 138 on pixelated optical detector 136 indicating the presence of a laser source in optical FOV 122. Light 135 may, for example, be read out from a single pixel over one or more time samples 139 indicating the presence (or absence) of an RF source within antenna pattern 130. E/O electronics 137 have sufficient bandwidth to process RF across the entire spectrum from the L to Ka bands.
[0032] An RF only warning receiver may be configured without the optical input channel but still use the optical backend to process the received RF radiation. In this manner, different RF only warning receivers whose antennas are configured for different RF bands can use the same common optical backend.
[0033] Referring now to
[0034] Referring now to
[0035] Referring now to
[0036] Referring now to
[0037] Referring now to
[0038] Referring now to
[0039] As shown in
[0040] As shown in
[0041] As shown in
[0042] As shown in
[0043] Referring now to
[0044] While several illustrative embodiments of the disclosure have been shown and described, numerous variations and alternate embodiments will occur to those skilled in the art. Such variations and alternate embodiments are contemplated, and can be made without departing from the spirit and scope of the disclosure as defined in the appended claims.