IP Library › Granted Patent US 12,618,674
Granted Patent B2
US 12,618,674 · App. 18/467,490 · Granted May 5, 2026

Interferometric resonator optical gyroscope with optical frequency comb

Inventors: Jianfeng Wu (Tucson, AZ); Steven Tin (Edina, MN); Matthew Wade Puckett (Phoenix, AZ); Tiequn Qiu (Glendale, AZ)
Assignee: Honeywell International Inc.
G01C19/727G01C19/661G02F2/02G02F2203/15G02F2203/56
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Quick Facts
Patent No.
US 12,618,674
App. No.
18/467,490
Granted
May 5, 2026
Kind
B2
Abstract

An interferometric resonator optical gyroscope includes an optical frequency comb generator configured to generate an optical frequency comb. Optical signals representative of the optical frequency comb pass through an optical resonator in different directions, and a rotation rate is determined based on the extent of interference between the optical signals. Parameters of the optical frequency comb generator can be controlled by a control servo based on an intensity of the optical signals after propagating in the optical resonator. Utilizing an optical frequency comb generator reduces the bias error during gyroscope operation.

Claims (45)

1 . An interferometric resonator optical gyroscope, comprising:

an optical frequency comb generator configured to generate an optical signal, wherein the optical signal is representative of an optical frequency comb;

at least one optical coupler, wherein the at least one optical coupler is configured to split the optical signal into a first optical signal and a second optical signal;

an optical resonator coupled to the at least one optical coupler and configured to receive the first optical signal and the second optical signal, wherein the first optical signal propagates through the optical resonator in a first direction, wherein the second optical signal propagates through the optical resonator in a second direction; and

a rate calculation circuit coupled to the optical resonator, wherein the rate calculation circuit is configured to:

determine phase shift between the first optical signal and the second optical signal; and

determine a rotation rate based on the phase shift;

a control servo comprising at least one processor coupled to the optical frequency comb generator, wherein the control servo is configured to:

determine at least one parameter of the optical frequency comb generator based on an intensity noise of the first optical signal or the second optical signal, and

control the optical frequency comb generator based on the at least one parameter;

a first relative intensity noise (RIN) detector and a second RIN detector coupled to the optical resonator;

wherein the first RIN detector is configured to receive the first optical signal after propagating in the optical resonator, and to determine the intensity noise of the first optical signal;

wherein the second RIN detector is configured to receive the second optical signal after propagating in the optical resonator, and to determine the intensity noise of the second optical signal;

wherein one of the first RIN detector and the second RIN detector is configured to provide the intensity noise of the first optical signal or the second optical signal to the control servo.

2 . The interferometric resonator optical gyroscope of claim 1 , comprising a first phase modulator and a second phase modulator coupled to the at least one optical coupler, wherein the first phase modulator and the second phase modulator are respectively configured to modulate a phase of the first optical signal and the second optical signal; and to provide the first optical signal and the second optical signal to the optical resonator.

3 . The interferometric resonator optical gyroscope of claim 1 , comprising a detector coupled to the control servo, wherein the detector is configured to:

receive the first optical signal or the second optical signal;

convert the first optical signal or the second optical signal to an electric signal; and

provide the electric signal to the control servo, wherein the control servo is configured to control the optical frequency comb generator based on an intensity of the electric signal.

4 . The interferometric resonator optical gyroscope of claim 1 , wherein the at least one optical coupler is configured to:

receive the first optical signal and the second optical signal after propagating in the optical resonator;

combine the first optical signal and the second optical signal; and

provide the combined optical signal to the rate calculation circuit.

5 . A method for operating an interferometric resonator optical gyroscope, the method comprising:

generating, with an optical frequency comb generator, an optical frequency comb;

transmitting a first optical signal and a second optical signal from the optical frequency comb;

coupling the first optical signal into an optical resonator in a first direction;

coupling the second optical signal into the optical resonator in a second direction;

coupling the first and the second optical signals out of the optical resonator;

determining a phase shift between the first and the second optical signals;

determining a rotation rate based on the phase shift;

determining an intensity of the first optical signal or the second optical signal after propagating in the optical resonator;

determining that the intensity is outside a set level;

determining adjusted parameters of the optical frequency comb in response to determining that the intensity is outside the set level; and

controlling the optical frequency comb generator with the adjusted parameters.

6 . The method of claim 5 , further comprising:

determining at least one parameter of the optical frequency comb generator based on the intensity of the first optical signal or the second optical signal; and

controlling the optical frequency comb generator based on the at least one parameter.

7 . The method of claim 6 , wherein determining the at least one parameter comprises determining a carrier envelope offset frequency and a repetition rate of the optical frequency comb, and further comprises tuning the optical frequency comb based on the carrier envelope offset frequency and the repetition rate.

8 . The method of claim 6 , wherein determining the at least one parameter comprises determining a repetition rate of the optical frequency comb, and further comprising:

setting the repetition rate of the optical frequency comb to a free spectral range of the optical resonator or an integer multiple of the free spectral range.

9 . The method of claim 5 , wherein generating the optical frequency comb comprises generating an optical frequency comb with a Kerr frequency comb generator or a single frequency laser coupled with an electro-optic modulator.

10 . The method of claim 5 , wherein generating the optical frequency comb comprises:

generating an optical signal having a single frequency; and

generating the optical frequency comb from the optical signal having the single frequency.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 21, 2023
From: WU, JIANFENG; TIN, STEVEN; PUCKETT, MATTHEW WADE; QIU, TIEQUN
To: HONEYWELL INTERNATIONAL INC.
Reel/Frame 064984/0035 →
Continuity (1)
Related Publication 20250093158A1 · Mar 20, 2025
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