IP Library › Granted Patent US 12,736,800
Granted Patent B2
US 12,736,800 · App. 18/441,874 · Granted Sep 15, 2026

Compact closed-loop bypass optical beam sensing and correction

Inventors: Jason R. Lavine (McKinney, TX); Liam T. Skoyles (Allen, TX)
Assignee: Raytheon Company
G02B26/0891G02B27/14F41H13/0062
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Quick Facts
Patent No.
US 12,736,800
App. No.
18/441,874
Filed
Feb 14, 2024
Granted
Sep 15, 2026
Kind
B2
Art Unit
2872
USPC
359/196.1
Abstract

An apparatus includes an optical device configured to spatially separate a first optical beam and a second optical beam. The apparatus also includes a divergence controller configured to adjust a divergence of the second optical beam and a steering controller configured to adjust a steering direction of the second optical beam. The apparatus further includes a far field sensor configured to receive a sample of the second optical beam after adjustment of the divergence and the steering direction of the second optical beam and generate measurements of the sample. In addition, the apparatus includes at least one controller configured to control the divergence controller and the steering controller based on the measurements of the sample.

Claims (60)

1 . An apparatus comprising:

an optical device configured to spatially separate a first optical beam and a second optical beam;

a bypass optical beam sensing and correction unit configured to receive the second optical beam after the spatial separation, the bypass optical beam sensing and correction unit comprising:

a divergence controller configured to adjust a divergence of the second optical beam;

a steering controller configured to adjust a steering direction of the second optical beam;

a far field sensor configured to receive a sample of the second optical beam after adjustment of the divergence and the steering direction of the second optical beam and generate measurements of the sample; and

at least one controller configured to control the divergence controller and the steering controller based on the measurements of the sample.

2 . The apparatus of claim 1 , wherein the divergence controller comprises:

a pair of lenses; and

at least one motor configured to adjust a spacing between the lenses.

3 . The apparatus of claim 1 , wherein the steering controller comprises one of:

a pair of Risley wedges and at least one motor configured to rotate at least one of the Risley wedges; or

at least one steering mirror.

4 . The apparatus of claim 1 , wherein the far field sensor and the at least one controller form part of a closed control loop for controlling the divergence of the second optical beam in real-time and part of a closed control loop for controlling the steering direction of the second optical beam in real-time.

5 . The apparatus of claim 1 , wherein the at least one controller is further configured to receive input from an auto-alignment sensor and to use the input from the auto-alignment sensor to control at least one of the divergence of the second optical beam and the steering direction of the second optical beam.

6 . The apparatus of claim 1 , further comprising:

a range-finding laser configured to generate a range-finding beam; and

a beamsplitter configured to reflect one of the range-finding beam or the second optical beam in order to direct the range-finding beam and the second optical beam through a common aperture.

7 . The apparatus of claim 1 , wherein the optical device comprises a beamsplitter configured to reflect one of the first optical beam or the second optical beam and transmit another of the first optical beam or the second optical beam.

8 . A system comprising:

multiple optical sources configured to generate multiple input optical beams, the multiple input optical beams including two or more optical beams and an additional optical beam;

a beam combiner configured to combine the two or more optical beams in order to generate a combined optical beam;

an optical device configured to spatially separate the combined optical beam and the additional optical beam;

a bypass optical beam sensing and correction unit configured to receive the additional optical beam after the spatial separation, the bypass optical beam sensing and correction unit comprising:

a divergence controller configured to adjust a divergence of the additional optical beam;

a steering controller configured to adjust a steering direction of the additional optical beam;

a far field sensor configured to receive a sample of the additional optical beam after adjustment of the divergence and the steering direction of the additional optical beam and generate measurements of the sample; and

at least one controller configured to control the divergence controller and the steering controller based on the measurements of the sample.

9 . The system of claim 8 , wherein the divergence controller comprises:

a pair of lenses; and

at least one motor configured to adjust a spacing between the lenses.

10 . The system of claim 8 , wherein the steering controller comprises one of:

a pair of Risley wedges and at least one motor configured to rotate at least one of the Risley wedges; or

at least one steering mirror.

11 . The system of claim 8 , wherein the far field sensor and the at least one controller form part of a closed control loop for controlling the divergence of the additional optical beam in real-time and part of a closed control loop for controlling the steering direction of the additional optical beam in real-time.

12 . The system of claim 8 , wherein the at least one controller is further configured to receive input from an auto-alignment sensor and to use the input from the auto-alignment sensor to control at least one of the divergence of the additional optical beam and the steering direction of the additional optical beam.

13 . The system of claim 8 , further comprising:

a range-finding laser configured to generate a range-finding beam; and

a beamsplitter configured to reflect one of the range-finding beam or the additional optical beam in order to direct the range-finding beam and the additional optical beam through a common aperture.

14 . The system of claim 8 , wherein the optical device comprises a beamsplitter configured to reflect one of the combined optical beam or the additional optical beam and transmit another of the combined optical beam or the additional optical beam.

15 . The system of claim 8 , further comprising:

one of a beamsplitter or a window configured to reflect the sample of the additional optical beam towards the far field sensor.

16 . The system of claim 15 , further comprising:

a neutral density filter configured to filter the sample of the additional optical beam; and

a lens configured to focus the filtered sample of the additional optical beam onto the far field sensor.

17 . The system of claim 8 , further comprising:

one or more beam control elements configured to adjust the combined optical beam after the combined optical beam is spatially separated from the additional optical beam;

wherein the additional optical beam bypasses the one or more beam control elements.

18 . A method comprising:

generating multiple input optical beams, the multiple input optical beams including two or more optical beams and an additional optical beam;

combining the two or more optical beams in order to generate a combined optical beam;

spatially separating the combined optical beam and the additional optical beam;

after spatially separating the combined optical beam and the additional optical beam, controlling a divergence of the additional optical beam;

after spatially separating the combined optical beam and the additional optical beam, controlling a steering direction of the additional optical beam;

receiving a sample of the additional optical beam after controlling of the divergence and the steering direction of the additional optical beam and generating measurements of the sample; and

adjusting the controlling of the divergence and the controlling of the steering direction of the additional optical beam based on the measurements of the sample.

19 . The method of claim 18 , wherein the controlling of the divergence and the controlling of the steering direction of the additional optical beam are adjusted using closed control loops.

20 . The method of claim 18 , further comprising:

receiving input from an auto-alignment sensor; and

using the input from the auto-alignment sensor to control at least one of the divergence of the additional optical beam and the steering direction of the additional optical beam.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 15, 2024
From: LAVINE, JASON R.; SKOYLES, LIAM T.
To: RAYTHEON COMPANY
Reel/Frame 066474/0164 →
Continuity (1)
Related Publication 20250258368A1 · Aug 14, 2025
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