IP Library Granted Patent US 11,438,062
Granted Patent B2
US 11,438,062 · App. 17/085,107 · Granted Sep 6, 2022

Optical and radio frequency terminal for space-to-ground communications

Inventor: Graham Martin Arbery (Cambridge, CA)
Assignee: Honeywell Limited Honeywell Limitée
H04B10/1125H01Q15/14H04B1/38H04B10/118H04B10/40H04B10/43
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Quick Facts
Patent No.
US 11,438,062
App. No.
17/085,107
Granted
Sep 6, 2022
Kind
B2
Abstract

Disclosed are systems for transmitting and receiving a radio frequency (RF) signal and an optical signal. One system may include a communication terminal comprising a primary concave reflector providing a first focal length to a focal point, and a secondary concave reflector providing a second focal length to the focal point. The communication terminal may further comprise an optical transceiver facing the secondary concave reflector, and one or more RF transceivers facing the primary concave reflector. The optical transceiver may be configured to transmit and receive the optical signal via the primary and secondary concave reflectors through the focal point, and the one or more RF transceivers may be configured to transmit and receive the RF signal via the primary concave reflector. The one or more RF transceivers may be positioned adjacent to the focal point and offset from a path of the optical signal.

Claims (36)

1. An antenna for transmitting and receiving a radio frequency (RF) signal and an optical signal, the antenna comprising:

a primary concave reflector configured to provide a first focal length to a focal point;

a secondary concave reflector configured to provide a second focal length to the focal point, wherein the focal point is located between the primary concave reflector and the secondary concave reflector, and wherein the first focal length is longer than the second focal length;

an optical transceiver facing the secondary concave reflector, wherein the optical transceiver is configured to transmit and receive the optical signal via the primary and secondary concave reflectors, wherein a path of the optical signal passes through the focal point;

one or more RF transceivers facing the primary concave reflector, wherein the one or more RF transceivers are positioned adjacent to the focal point and offset from the optical signal path, and wherein the one or more RF transceivers are configured to transmit and receive the RF signal via the primary concave reflector; and

a controller configured to selectively activate the optical transceiver and/or the one or more RF transceivers.

2. The antenna of claim 1 , wherein the one or more RF transceivers comprise one feed horn positioned at one side of the focal point,

wherein an RF boresight for the feed horn is offset from an optical boresight for the optical transceiver, and

wherein the controller is configured to alternately activate the optical transceiver and the feed horn.

3. The antenna of claim 2 , wherein the controller is configured to alternately activate the optical transceiver and the feed horn by:

utilizing a steering mechanism of the antenna to align the optical boresight to a target prior to activating the optical transceiver;

activating the optical transceiver after the optical boresight is aligned with the target;

utilizing the steering mechanism of the antenna to align the RF boresight with the target prior to activating the feed horn; and

activating the feed horn after the RF boresight is aligned with the target.

4. The antenna of claim 1 , wherein the one or more RF transceivers comprise an array of feed horns.

5. The antenna of claim 4 , wherein the array of feed horns is positioned symmetrically around the focal point such that the focal point is located at a center of the array of feed horns.

6. The antenna of claim 5 , wherein each feed horn included in the array of feed horns is tilted inwards towards the primary concave reflector.

7. The antenna of claim 5 , wherein an RF boresight for the array of feed horns is substantially aligned with an optical boresight for the optical transceiver.

8. The antenna of claim 7 , wherein the controller is configured to simultaneously and/or alternately activate the optical transceiver and the array of feed horns.

9. The antenna of claim 4 , wherein the array of feed horns comprises four feed horns.

10. The antenna of claim 4 , wherein the controller is configured to: (i) obtain a beacon signal via the array of feed horns, (ii) determine a target position based on the obtained beacon signal, (iii) utilize a steering mechanism of the antenna to align an optical boresight for the optical transceiver with the target position prior to activating the optical transceiver, and (iv) activate the optical transceiver after the optical boresight is aligned with the target position.

11. A communication terminal comprising:

a primary concave reflector configured to provide a first focal length to a focal point;

a secondary concave reflector configured to provide a second focal length to the focal point, wherein the focal point is located between the primary concave reflector and the secondary concave reflector;

an optical transceiver facing the secondary concave reflector, wherein the optical transceiver is configured to transmit and receive an optical signal via the primary and secondary concave reflectors through the focal point;

one or more RF transceivers facing the primary concave reflector, wherein the one or more RF transceivers are positioned adjacent to the focal point and offset from a path of the optical signal, and wherein the one or more RF transceivers are configured to transmit and receive an RF signal via the primary concave reflector.

12. The communication terminal of claim 11 , further comprising

a controller configured to selectively activate the optical transceiver and/or the one or more RF transceivers.

13. The communication terminal of claim 12 , wherein the one or more RF transceivers comprise one feed horn positioned at one side of the focal point.

14. The communication terminal of claim 13 , wherein the controller is configured to alternately activate the optical transceiver and the feed horn.

15. The communication terminal of claim 12 , wherein the one or more RF transceivers comprise an array of feed horns, the array of feed horns being positioned symmetrically around the focal point such that the focal point is located at a center of the array of feed horns.

16. The communication terminal of claim 15 , wherein each feed horn included in the array of feed horns is tilted inwards towards the primary concave reflector.

17. The communication terminal of claim 15 , wherein an RF boresight for the array of feed horns is substantially aligned with an optical boresight for the optical transceiver.

18. The communication terminal of claim 17 , wherein the controller is configured to simultaneously and/or alternately activate the optical transceiver and the array of feed horns.

19. The communication terminal of claim 15 , wherein the array of feed horns comprises four feed horns.

20. The communication terminal of claim 11 , wherein the first focal length is longer than the second focal length.

Assignments (2)
MERGER AND CHANGE OF NAME Recorded Jul 26, 2022
From: COM DEV LTD.; HONEYWELL LIMITED HONEYWELL LIMITÉE
To: HONEYWELL LIMITED HONEYWELL LIMITÉE
Reel/Frame 060919/0952 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 30, 2020
From: ARBERY, GRAHAM MARTIN
To: COM DEV LTD.
Reel/Frame 054224/0163 →
Continuity (1)
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