IP Library Patent Application 18740266
Patent Application
App. No. 18/740,266

DUAL LENS RECEIVE PATH FOR LIDAR SYSTEM

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Quick Facts
Patent No.
US None
App. No.
18/740,266
Abstract

A dual lens assembly positioned along an optical receive path within a LiDAR system is provided. The dual lens assembly is constructed to reduce a numerical aperture of a returned light pulse and reduce a walk-off error associated with one or more mirrors of the LiDAR system.

Claims (31)

1 . A light detection and ranging (LiDAR) system comprising:

a light source configured to generate a pulse signal that is transmitted by the LiDAR system;

one or more mirrors configured to steer a returned light pulse associated with the transmitted pulse signal along an optical receive path;

a dual lens assembly positioned along the optical receive path, wherein the dual lens assembly is constructed to reduce a numerical aperture of the returned light pulse and reduce a walk-off error associated with the one or more mirrors; and

a fiber configured to receive the returned light pulse along the optical receive path from the dual lens assembly.

2 . The LiDAR system of claim 1 , wherein the dual lens assembly comprises:

a concave lens; and

a field lens, wherein the field lens is positioned downstream of the concave lens.

3 . The LiDAR system of claim 2 , wherein the concave lens reduces the numerical aperture and wherein the field lens reduces the walk-off error.

4 . The LiDAR system of claim 2 , wherein properties of the concave and field lenses are selected to balance a quantity of the returned light pulse and a focus of the returned light pulse that enter the fiber.

5 . The LiDAR system of claim 2 , wherein the one or more mirrors include a polygon mirror configured to rotate and a parabolic mirror, and wherein the field lens accounts for angle variation imposed on the returned light pulse by the polygon mirror and parabolic mirror.

6 . The LiDAR system of claim 2 , wherein a focal length of the concave lens is different than a focal length of the field lens.

7 . The LiDAR system of claim 6 , wherein differences in the focal lengths produces astigmatism in the returned light pulse.

8 . The LiDAR system of claim 1 , wherein the fiber comprises a core and wherein the dual lens assembly balances the numerical aperture and the walk-off error to ensure that a beam size resulting from a plurality of returned light pulses is optimized for entry into the core.

9 . The LiDAR system of claim 1 further comprising:

a light detector configured to receive the returned light pulse from an end of the fiber.

10 . A light detection and ranging (LiDAR) system comprising:

a steering system operative to steer a plurality of returned light pulses along an optical receive path;

a fiber configured to receive the plurality of returned light pulses along the optical receive path, the fiber comprising a core; and

a dual lens assembly positioned along the optical receive path in between the steering system and the fiber, wherein the dual lens assembly optimizes a spot beam produced by the plurality returned light pulses for entry into the core.

11 . The LiDAR system of claim 10 , wherein the dual lens assembly comprises:

a concave lens; and

a convex lens.

12 . The LiDAR system of claim 11 , wherein the concave lens is a concave cylindrical lens and wherein the convex lens is a convex cylindrical lens.

13 . The LiDAR system of claim 11 , wherein the concave lens has a first focal length, and wherein the convex lens has a second focal length, wherein the first and second focal lengths yield astigmatism.

14 . The LiDAR system of claim 11 , wherein the dual lens assembly is operative to reduce a numerical aperture of the plurality of returned light pulses and reduce a walk-off error associated with the steering system.

15 . The LiDAR system of claim 14 , wherein the concave lens reduces the numerical aperture and wherein the convex cylindrical lens reduces the walk-off error.

16 . The LiDAR system of claim 11 , wherein the steering system comprises a polygon mirror configured to rotate and a parabolic mirror, and wherein the convex lens compensates for angle variation imposed on the plurality of returned light pulses by the polygon mirror and parabolic mirror.

17 . The LiDAR system of claim 11 , wherein the concave lens comprises a light transmissive aperture surrounded by an anti-reflective coating.

18 . The LiDAR system of claim 11 , and wherein the convex lens comprises a light transmissive aperture surround by an anti-reflective coating.

19 . The LiDAR system of claim 14 , wherein the dual lens assembly balances the numerical aperture and the walk-off error to ensure that the spot size is optimized for entry into the core.

Assignments (3)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 25, 2024
From: LI, JIM
To: INNOVUSION IRELAND LIMITED
Reel/Frame 067836/0408 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 25, 2024
From: INNOVUSION IRELAND LIMITED
To: INNOVUSION, INC.
Reel/Frame 067836/0436 →
CHANGE OF NAME Recorded Jun 25, 2024
From: INNOVUSION, INC.
To: SEYOND, INC.
Reel/Frame 067839/0698 →