IP Library Granted Patent US 12,584,744
Granted Patent B2
US 12,584,744 · App. 18/393,295 · Granted Mar 24, 2026

Cascaded optical modulation system

Inventors: Steven M. Kim (Santa Clarita, CA); Daniel A. Tazartes (West Hills, CA); Gregory A. Zimmerman (Sandy, UT); Leonard A. Atkinson (Herndon, VA)
Assignee: NORTHROP GRUMMAN SYSTEMS CORPORATION
G01C19/722G02F1/0115G02F1/0121G02F2203/26G02F2203/50
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Quick Facts
Patent No.
US 12,584,744
App. No.
18/393,295
Granted
Mar 24, 2026
Kind
B2
Abstract

One example includes an optical system. The system includes a laser configured to generate an optical beam and an optical modulation system comprising a plurality of optical modulators arranged in a cascaded sequence. Each of the optical modulators can be configured to provide successive modulation of the optical beam in the cascaded sequence to provide a modulated optical beam. The system further includes an optical assembly configured to receive the modulated optical beam and to implement the modulated optical beam for an optical functional application.

Claims (44)

1 . An optical system comprising:

a laser configured to generate an optical beam;

an optical modulation system comprising a plurality of optical modulators arranged in a cascaded sequence, each of the optical modulators being configured to provide successive modulation of the optical beam in the cascaded sequence to provide a modulated optical beam by providing an approximately equal amount of phase-shift to a same phase of the optical beam in succession in the cascaded sequence; and

an optical assembly configured to receive the modulated optical beam and to implement the modulated optical beam for an optical functional application.

2 . The system of claim 1 , wherein each of the optical modulators in the cascaded sequence after a first one of the optical modulators is configured to provide a successively increasing amount of delay to the modulation of the optical beam to provide the modulated optical beam.

3 . The system of claim 1 , wherein the optical modulation system comprises a modulation controller configured to generate an approximately Gaussian noise signal, such that each of the optical modulators is configured to provide the successive modulation based on the approximately Gaussian noise signal.

4 . The system of claim 3 , wherein the optical modulation system comprises a broadband noise source configured to generate the approximately Gaussian noise signal as a digital pseudo-random noise (PRN) signal and to condition the digital PRN signal in each of a plurality of digital modulation paths to provide a respective plurality of modulation signals to the respective optical modulators.

5 . The system of claim 4 , wherein the optical modulation system further comprises at least one delay element, each of the at least one delay element being arranged in a respective one of the digital modulation paths and being configured to delay the respective one of the digital modulation signals.

6 . The system of claim 5 , wherein each of the at least one delay element is configured to provide an amount of delay of the respective one of the digital modulation signals approximately equal to a propagation time of the optical beam from a first one of the optical modulators to the respective one of the optical modulators to which the respective one of the delayed digital modulation signals is provided.

7 . The system of claim 1 , wherein the optical modulators are each configured as electro-optic modulators (EOMs) configured to modulate a phase of the optical beam.

8 . The system of claim 1 , wherein the cascaded sequence of the optical modulators is configured to modulate the optical beam to broaden a frequency bandwidth of the optical beam and to suppress a carrier signal amplitude of the optical beam.

9 . The system of claim 1 , wherein the optical assembly is configured as a fiber-optic gyroscope (FOG) assembly comprising an optical fiber coil, wherein the FOG assembly is configured to measure rotation about a sensitive axis associated with the optical fiber coil based on a relative phase difference of the modulated optical beam propagating in each of opposite directions through the optical fiber coil.

10 . The system of claim 9 , wherein the FOG assembly further comprises:

an optical coupler configured to receive the modulated optical beam at a first port, to provide the modulated optical beam from a second port, and to receive a combined output beam at the second port;

a multifunction integrated optical chip (MIOC) configured to split the modulated optical beam into a first modulated optical beam and a second modulated optical beam, the first modulated optical beam being provided to a first port of the optical fiber coil and the second modulated optical beam being provided to a second port of the optical fiber coil, the MIOC being further configured to combine the first modulated optical beam provided from the second port of the optical fiber coil and the second modulated optical beam provided from the first port of the optical fiber coil to provide the combined output beam;

a photodetector coupled to a third port of the optical coupler and configured to monitor the combined output beam; and

a controller configured to determine the rotation about the sensitive axis based on the monitored combined output beam.

11 . A method for determining rotation about a sensitive axis for a fiber-optic gyroscope (FOG) system, the method comprising:

generating an optical beam via a laser;

successively modulating the optical beam via a plurality of optical modulators arranged in a cascaded sequence along an optical path of the optical beam to generate a modulated optical beam by providing an approximately equal amount of phase-shift to a same phase of the optical beam in succession in the cascaded sequence;

splitting the modulated optical beam into a first modulated optical beam and a second modulated optical beam;

providing the first modulated optical beam to a first port of an optical fiber coil comprising an optical fiber counter-wound in opposite orientations;

providing the second modulated optical beam to a second port of the optical fiber coil, the first and second ports corresponding to respective opposite ends of the optical fiber;

monitoring a relative phase between the first modulated optical beam being provided from the second port of the optical fiber coil and the second modulated optical beam being provided from the first port of the optical fiber coil; and

measuring rotation of the FOG about the sensitive axis based on the relative phase between the first and second modulated optical beams.

12 . The method of claim 11 , wherein successively modulating the optical beam comprises generating a plurality of modulation signals, each of the modulation signals being associated with one of the respective plurality of optical modulators.

13 . The method of claim 12 , wherein successively modulating the optical beam further comprises delaying each of the modulation signals provided to the optical beam relative to providing a previous one of the modulation signals after a first one of the optical modulators to provide a successively increasing amount of delay to the modulation of the optical beam to provide the modulated optical beam.

14 . The method of claim 11 , wherein successively modulating the optical beam comprises:

generating a Gaussian noise signal; and

conditioning the Gaussian noise signal in each of a plurality of digital modulation paths to provide a respective plurality of digital modulation signals associated with the Gaussian noise signal to the respective optical modulators.

15 . A fiber-optic gyroscope (FOG) system comprising:

a laser configured to generate an optical beam;

an optical modulation system comprising:

a modulation controller configured to generate a digital Gaussian noise signal and to condition the digital Gaussian noise signal in each of a plurality of digital modulation paths to provide a respective plurality of digital modulation signals; and

a plurality of optical modulators arranged in a cascaded sequence, each of the optical modulators being configured to provide successive modulation of the optical beam in the cascaded sequence to provide a modulated optical beam by providing an approximately equal amount of phase shift to a same phase of the optical beam in succession in the cascaded sequence; and

a FOG assembly comprising an optical fiber coil, the FOG assembly being configured to measure rotation about a sensitive axis associated with the optical fiber coil based on a relative phase difference of the modulated optical beam propagating in each of opposite directions through the optical fiber coil.

16 . The system of claim 15 , wherein the optical modulation system comprises at least one delay element, each of the at least one delay element being arranged in a respective one of the digital modulation paths and being configured to delay the respective one of the digital modulation signals, wherein each of the at least one delay element is configured to provide an amount of delay of the respective one of the digital modulation signals approximately equal to a propagation time of the optical beam from a first one of the optical modulators to the respective one of the optical modulators to which the respective one of the delayed digital modulation signals is provided.

17 . The system of claim 15 , wherein the optical modulators are each configured as electro-optic modulators (EOMs) configured to modulate a phase of the optical beam.

18 . The system of claim 15 , wherein the cascaded sequence of the optical modulators is configured to modulate the optical beam to broaden a frequency bandwidth of the optical beam and to suppress a carrier signal amplitude of the optical beam.

19 . The system of claim 15 , wherein the FOG assembly further comprises:

an optical coupler configured to receive the modulated optical beam at a first port, to provide the modulated optical beam from a second port, and to receive a combined output beam at the second port;

a multifunction integrated optical chip (MIOC) configured to split the modulated optical beam into a first modulated optical beam and a second modulated optical beam, the first modulated optical beam being provided to a first port of the optical fiber coil and the second modulated optical beam being provided to a second port of the optical fiber coil, the MIOC being further configured to combine the first modulated optical beam provided from the second port of the optical fiber coil and the second modulated optical beam provided from the first port of the optical fiber coil to provide the combined output beam;

a photodetector coupled to a third port of the optical coupler and configured to monitor the combined output beam; and

a controller configured to determine the rotation about the sensitive axis based on the monitored combined output beam.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 21, 2023
From: KIM, STEVEN M.; TAZARTES, DANIEL A.; ZIMMERMAN, GREGORY A.; ATKINSON, LEONARD A.
To: NORTHROP GRUMMAN SYSTEMS CORPORATION
Reel/Frame 065935/0824 →
Continuity (1)
Related Publication 20250207919A1 · Jun 26, 2025
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