IP Library Granted Patent US 12,656,601
Granted Patent B2
US 12,656,601 · App. 18/594,358 · Granted Jun 16, 2026

Method and system for optimizing scanning of coherent lidar

Inventors: Stephen C. Crouch (Bozeman, MT); Edward Joseph Angus (Bozeman, MT); Michelle Milvich (Livingston, MT)
Assignee: AURORA OPERATIONS, INC.
G02B26/123G01S7/4817G01S17/02G01S17/931G01S7/481G01S13/426G01S13/428G01S17/00G01S17/88G01S17/933G02B26/129
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Quick Facts
Patent No.
US 12,656,601
App. No.
18/594,358
Granted
Jun 16, 2026
Kind
B2
Abstract

An apparatus include a motor, a first scanner, and a second scanner. The first scanner is coupled to the motor, and the motor is configured to rotate the first scanner at a first angular velocity about a rotation axis to deflect a first beam incident in a third plane on the first scanner into a first plane different from the third plane. The second scanner is coupled to the motor, and the motor is configured to rotate the second scanner at a second angular velocity different from the first angular velocity about the rotation axis to deflect a second beam incident in the third plane on the second scanner into a second plane different from the third plane.

Claims (37)

1 . A light detection and ranging (LIDAR) sensor system for a vehicle, comprising:

a laser source configured to output a beam;

an optic configured to receive the beam and to direct the beam in a first direction as a first scan beam and to direct the beam in a second direction as a second scan beam;

a first polygon scanner configured to receive the first scan beam and to scan the first scan beam in a first region, wherein the first polygon scanner has a first mass and is configured to be rotated at a first rotation rate; and

a second polygon scanner configured to receive the second scan beam and to scan the second scan beam in a second region, wherein the second polygon scanner has a second mass and is configured to be rotated at a second rotation rate, and a ratio of the first rotation rate to the second rotation rate is about equal to a ratio of the second mass to the first mass, wherein the first rotation rate is not equal to the second rotation rate.

2 . The LIDAR sensor system of claim 1 , wherein the ratio of the first rotation rate to the second rotation rate is from about 3 to about 10.

3 . The LIDAR sensor system of claim 1 , wherein the first region overlaps with the second region.

4 . The LIDAR sensor system of claim 1 , wherein the first polygon scanner is coaxial with and below the second polygon scanner.

5 . The LIDAR sensor system of claim 1 , wherein the first polygon scanner is configured to rotate in a different direction than the second polygon scanner.

6 . The LIDAR sensor system of claim 1 , further comprising a modulator configured to modulate at least one of a phase of the beam or a frequency of the beam.

7 . The LIDAR sensor system of claim 1 , wherein the first rotation rate is between about 1000 revolutions per minute (rpm) and about 5000 rpm, and the first rotation rate is greater than the second rotation rate.

8 . The LIDAR sensor system of claim 1 , wherein the optic comprises a scanner to direct the first scan beam to the first polygon scanner and the second scan beam to the second polygon scanner.

9 . The LIDAR sensor system of claim 1 , wherein:

the optic comprises a plurality of waveguides to simultaneously direct the first scan beam to the first polygon scanner and the second scan beam to the second polygon scanner; and

the LIDAR sensor system comprises a plurality of processing channels to process a first return beam received from the first polygon scanner and a second return beam received form the second polygon scanner simultaneous with the first return beam.

10 . The LIDAR sensor system of claim 1 , further comprising a motor configured to rotate the first polygon scanner and to rotate the second polygon scanner.

11 . An autonomous vehicle control system, comprising:

a laser source configured to output a beam;

an optic configured to receive the beam and to direct the beam in a first direction as a first scan beam and to direct the beam in a second direction as a second scan beam;

a first polygon scanner configured to receive the first scan beam and to scan the first scan beam in a first region, wherein the first polygon scanner has a first mass and is configured to be rotated at a first rotation rate;

a second polygon scanner configured to receive the second scan beam and to scan the second scan beam in a second region, wherein the second polygon scanner has a second mass and is configured to be rotated at a second rotation rate, and a ratio of the first rotation rate to the second rotation rate is about equal to a ratio of the second mass to the first mass, wherein the first rotation rate is not equal to the second rotation rate; and

one or more processors configured to:

receive a return beam from reflection of at least one of the first scan beam or the second scan beam by an object; and

control at least one of a direction or a speed of an autonomous vehicle responsive to the return beam.

12 . The autonomous vehicle control system of claim 11 , wherein the one or more processors are configured to control at least one of a steering system or a braking system of the autonomous vehicle to control the at least one of the direction or the speed of the autonomous vehicle.

13 . The autonomous vehicle control system of claim 11 , wherein the one or more processors are configured to determine at least one of a range to or a velocity of an object based on the return beam.

14 . The autonomous vehicle control system of claim 11 , wherein the first polygon scanner and the second polygon scanner are configured to simultaneously scan the first scan beam and the second scan beam.

15 . The autonomous vehicle control system of claim 11 , wherein the first polygon scanner is configured to scan the first scan beam in a third direction and the second polygon scanner is configured to scan the second scan beam in a fourth direction opposite the first direction.

16 . The autonomous vehicle control system of claim 11 , wherein the first polygon scanner is below the second polygon scanner relative to the autonomous vehicle.

17 . The autonomous vehicle control system of claim 11 , wherein the first region is below the second region in elevation relative to the autonomous vehicle.

18 . An autonomous vehicle, comprising:

a LIDAR sensor system as recited in claim 1 ;

a steering system;

a braking system; and

a vehicle controller comprising one or more processors configured to control at least one of the steering system or the braking system based on a return signal corresponding to at least one of the first scan beam or the second scan beam.

19 . The autonomous vehicle of claim 18 , wherein the LIDAR sensor system is mounted to at least one of a front or a top of the autonomous vehicle.

20 . The autonomous vehicle of claim 18 , wherein the second scan region has a greater range than the first scan region.

Assignments (3)
MERGER Recorded Apr 23, 2025
From: BLACKMORE SENSORS & ANALYTICS, INC.
To: BLACKMORE SENSORS & ANALYTICS, LLC
Reel/Frame 070919/0842 →
PATENT ASSIGNMENT AGREEMENT Recorded Apr 23, 2025
From: BLACKMORE SENSORS & ANALYTICS, LLC
To: AURORA OPERATIONS, INC.
Reel/Frame 071009/0062 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 4, 2024
From: CROUCH, STEPHEN C.; ANGUS, EDWARD; MILVICH, MICHELLE
To: BLACKMORE SENSORS AND ANALYTICS, INC.
Reel/Frame 066634/0913 →
Continuity (4)
Continuation 17066077 · Oct 8, 2020
Continuation 16590316 · Oct 1, 2019
Provisional Application 62739915 · Oct 2, 2018
Related Publication 20250180894A1 · Jun 5, 2025
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