IP Library Granted Patent US 12,099,120
Granted Patent B2
US 12,099,120 · App. 17/054,242 · Granted Sep 24, 2024

LIDAR system based on complementary modulation of multiple lasers and coherent receiver for simultaneous range and velocity measurement

Inventors: Phillip Sandborn (Mountain View, CA); Sen Lin (Mountain View, CA)
Assignee: AURORA OPERATIONS, INC.
G01S17/34G01S7/4817G01S7/491G01S17/58G01S17/95G01S7/4815
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 12,099,120
App. No.
17/054,242
Granted
Sep 24, 2024
Kind
B2
Abstract

A LIDAR system and method for determining a distance and a velocity of a target. The LIDAR system can include laser bank ( 62 ) is configured to generate a laser field from a first laser beam having a positive frequency sweep and a second laser beam having a negative frequency sweep, an optical combiner ( 65 ), an optical coupler ( 63 ), a photoreceiver ( 66 ), and a control circuit ( 69 ). The optical coupler direct a first portion of the laser field at the target such that the first portion is reflected by the target to the optical combiner. The optical combiner can optically combine the portions of the laser field. The output an 1-output ( 67 ) and a Q-output ( 68 ) according to the optically combined portions of the laser field. The control circuit can determine a nominal beat frequency, which corresponds to the distance of the target, and a frequency shift, which corresponds to the velocity of the target, accordingly.

Claims (77)

1. A LIDAR system comprising:

a laser bank comprising:

a first laser configured to output a first laser beam having a positive frequency sweep; and

a second laser configured to output a second laser beam having a negative frequency sweep, wherein the laser bank is configured to generate a laser field from the first laser beam and the second laser beam;

an optical combiner;

an optical coupler coupled to the laser bank, the optical coupler configured to:

direct a first portion of the laser field at an object such that the first portion of the laser field is reflected by the object to the optical combiner; and

direct a second portion of the laser field at the optical combiner; and

a control circuit configured to process signals based on the reflected first portion of the laser field and the second portion of the laser field to:

determine a first peak power spectral density (PSD) value at a positive frequency value;

determine a second peak PSD value at a negative frequency value;

determine a nominal PSD frequency according to a difference between the positive frequency value and the negative frequency value; and

determine a frequency shift from the nominal PSD frequency according to a sum of the positive frequency value and the negative frequency value;

wherein the distance of the target corresponds to the nominal PSD frequency; and

wherein the velocity of the target corresponds to the frequency shift.

2. The LIDAR system of claim 1 , wherein the optical combiner is configured to:

receive the reflected first portion of the laser field; and

optically combine the reflected first portion of the laser field and the second portion of the laser field.

3. The LIDAR system of claim 2 further comprising:

a photoreceiver coupled to the optical coupler, the photoreceiver configured to output an I-output and a Q-output according to the reflected first portion of the laser field and the second portion of the laser field that have been optically combined.

4. The LIDAR system of claim 3 , wherein the control circuit is configured to:

determine the first peak PSD value and the second peak PSD value according to the I-output and the Q-output;

determine a distance of the object from the LIDAR system based on the first peak PSD value and the second peak PSD value; and

determine a velocity of the object based on the first peak PSD value and the second peak PSD value.

5. The LIDAR system of claim 3 , wherein the photoreceiver comprises an I-Q detector.

6. The LIDAR system of claim 1 , wherein the laser bank comprises an N×1 incoherent coupler coupled to each of the first laser and the second laser.

7. The LIDAR system of claim 1 , wherein the optical combiner comprises an optical hybrid configured to generate four output signals: S+L, S−L, S+jL, S−jL based on input signals S and L.

8. The LIDAR system of claim 7 further comprising: a photoreceiver comprising a four-channel photoreceiver configured to receive the output signals of the optical hybrid.

9. The LIDAR system of claim 1 , wherein the optical coupler comprises a 2×2 coupler.

10. The LIDAR system of claim 1 , further comprising a target arm assembly coupled to the optical coupler, the target arm assembly configured to direct the first portion of the laser field at the object and direct the reflected first portion of the laser field to the optical combiner.

11. The LIDAR system of claim 10 , wherein the target arm assembly comprises:

a circulator configured to:

receive the first portion of the laser field from the optical coupler; and

direct the reflected first portion of the laser field to the optical combiner; and

scanning optics coupled to the circulator, the scanning optics configured to:

receive the first portion of the laser field from the circulator;

direct the first portion of the laser field at the object;

receive the reflected first portion of the laser field from the object; and

direct the reflected first portion of the laser field to the circulator.

12. The LIDAR system of claim 11 , wherein the scanning optics includes galvanometric scanning mirrors or MEMS-based scanning mirrors.

13. The LIDAR system of claim 10 , wherein the target arm assembly comprises:

a circulator configured to:

receive the first portion of the laser field from the optical coupler; and

direct the reflected first portion of the laser field to the optical combiner; and

an integrated photonic device coupled to the circulator, the integrated photonic device configured to:

receive the first portion of the laser field from the circulator;

direct the first portion of the laser field at the object;

receive the reflected first portion of the laser field from the object; and

direct the reflected first portion of the laser field to the circulator.

14. The LIDAR system of claim 10 , wherein the target arm assembly comprises:

a 2×2 coupler configured to:

receive the first portion of the laser field from the optical coupler; and

direct the reflected first portion of the laser field to the optical combiner; and

an integrated photonic device coupled to the 2×2 coupler, the integrated photonic device configured to:

receive the first portion of the laser field from the 2×2 coupler;

direct the first portion of the laser field at the object;

receive the reflected first portion of the laser field from the object; and

direct the reflected first portion of the laser field to the 2×2 coupler.

15. The LIDAR system of claim 1 , wherein;

the first laser is further configured to output a third laser beam having a negative frequency sweep; and

the second laser is further configured to output a fourth laser beam having a positive frequency sweep.

16. A method for determining a distance and a velocity of an object via a LIDAR system, the method comprising:

generating, by a laser bank, a first laser beam having a positive frequency sweep and a second laser beam having a negative frequency sweep, wherein a laser field includes the first laser beam and the second laser beam;

directing, by an optical coupler, a first portion of the laser field at the object such that the first portion of the laser field is reflected by the object to an optical combiner;

receiving, by the optical combiner, the first portion of the laser field reflected from the object;

receiving, by the optical combiner, a second portion of the laser field from the optical coupler;

determining, by a control circuit, a positive frequency value associated with a first peak power spectral density (PSD) and a negative frequency value associated with a second peak PSD value based on the first portion of the laser field and the second portion of the laser field;

determining, by a control circuit, a nominal beat frequency according to a difference between the positive frequency value and the negative frequency value; and

determining, by the control circuit, a frequency shift from the nominal beat frequency according to a sum of the positive frequency value and the negative frequency value;

wherein the distance of the object from the LIDAR system corresponds to the nominal beat frequency;

wherein the velocity of the object corresponds to the frequency shift.

17. The method of claim 16 , wherein the first laser beam is generated by a first laser of the laser bank and the second laser beam is generated by a second laser of the laser bank.

18. The method of claim 16 further comprising:

optically combining, by the optical combiner, the first portion of the laser field reflected from the object and the second portion of the laser field.

19. The method of claim 16 further comprising:

outputting, by a photoreceiver, an I-output and a Q-output according to the optically combined portions of the laser field.

20. The method of claim 16 , wherein the laser bank comprises an N×1 incoherent coupler coupled to a first laser and a second laser of the laser bank.

Assignments (3)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 20, 2023
From: OURS TECHNOLOGY, LLC
To: AURORA OPERATIONS, INC.
Reel/Frame 065630/0417 →
MERGER Recorded May 5, 2021
From: OURS TECHNOLOGY INC.
To: OURS TECHNOLOGY, LLC
Reel/Frame 056148/0650 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 7, 2021
From: SANDBORN, PHILLIP; LIN, SEN
To: OURS TECHNOLOGY, INC.
Reel/Frame 054849/0051 →
Continuity (4)
Provisional Application 62669801 · May 10, 2018
Provisional Application 62669803 · May 10, 2018
Provisional Application 62669808 · May 10, 2018
Related Publication 20210096253A1 · Apr 1, 2021