IP Library Granted Patent US 12,613,340
Granted Patent B2
US 12,613,340 · App. 17/878,784 · Granted Apr 28, 2026

Device for scanning frequency-modulated continuous wave (FMCW) LiDAR range measurement

Inventor: Vladimir Davydenko (Bad Herrenalb, DE)
Assignee: Microvision, Inc.
G01S17/34G01S7/4812G01S7/4817G01S7/4913G01S17/931
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Quick Facts
Patent No.
US 12,613,340
App. No.
17/878,784
Granted
Apr 28, 2026
Kind
B2
Abstract

A device for scanning frequency-modulated continuous wave (FMCW) LiDAR range measurement has a light source producing light having a varying frequency, a splitter splitting the light into reference light and output light, and an optical system having an optical axis. A plurality of free space couplers are arranged along a line such that the distance between adjacent free space couplers increases with increasing distance from the optical axis. Each free space coupler outcouples the output light into the free space and receives input light that was reflected at an object. A detector detects a superposition of the input light with the reference light, and a calculation unit determines the range to the object from the superposition detected by the detector.

Claims (47)

1 . A device for scanning frequency-modulated continuous wave (FMCW) LiDAR range measurement, comprising

a light source configured to produce light having a varying frequency,

a splitter configured to split the light into reference light and output light,

a plurality of free space couplers arranged along a line, wherein each free space coupler is configured to

outcouple the output light into the free space and

to receive input light, which was reflected at an object,

an optical system having an optical axis and configured to deflect the output light outcoupled by the free space couplers so that the output light is emitted in different directions lying in a first scanning plane,

a detector configured to detect a superposition of the input light with the reference light, and

a calculation unit configured to determine the range to the object from the superposition detected by the detector,

wherein

at least for a plurality of adjacent free space couplers, a distance between adjacent free space couplers continuously increases with increasing distance from the optical axis.

2 . The device of claim 1 , wherein the distance between adjacent free space couplers continuously increases with increasing distance from the optical axis at least substantially according to a non-linear function.

3 . The device of claim 1 , wherein the free space couplers are arranged in a front focal plane of the optical system.

4 . The device of claim 1 , wherein the free space couplers are arranged in a two-dimensional array so that the output light is also emitted in different directions lying in a second scanning plane that is different from the first scanning plane, and wherein a density of the free space couplers continuously decreases along a second scanning direction, which is defined by the second scanning plane, with increasing distance from the optical axis of the optical system.

5 . The device of claim 1 , wherein

the optical system is arranged in a light path between the free space couplers and a mechanical scanning unit,

the mechanical scanning unit comprises a movable mirror and is configured to deflect the output light along directions lying in a second scanning plane that is different from the first scanning plane, and wherein

the device comprises a control unit that is configured to control the mechanical scanning unit such that a density of points, which are illuminated by the output light in a plane perpendicular to the optical axis, decreases along a second scanning direction, which is defined by the second scanning plane, with increasing distance from the optical axis.

6 . The device of claim 5 , wherein the control unit is configured to control the mechanical scanning unit such that the mirror performs rotational movements with a non-constant angular velocity.

7 . The device of claim 5 , wherein the control unit is configured to control the mechanical scanning unit such that the density of points depends on a velocity of the device.

8 . The device of claim 5 , wherein the control unit is configured to control the mechanical scanning unit such that the density of points depends on a measured range to the object.

9 . The device of claim 1 , comprising an optical distribution matrix comprising a plurality of optical switches and configured to distribute the output light selectively to different optical waveguide, and wherein there is a one-to-one correspondence between the optical waveguides and the free space couplers such that each free space coupler is connected to an associated optical waveguide.

10 . The device of claim 1 , wherein at least the free space couplers are components of a photonic integrated circuit.

11 . A device for scanning frequency-modulated continuous wave (FMCW) LiDAR range measurement, comprising

a light source configured to produce light having a varying frequency,

a splitter configured to split the light into reference light and output light,

at least one free space coupler configured to outcouple the output light into the free space and to receive input light, which was reflected at an object,

a mechanical scanning unit comprising a movable mirror and configured to deflect the output light into different directions that lie in a scanning plane, wherein said different directions include a central direction,

a detector configured to detect a superposition of the input light with the reference light,

a calculation unit configured to determine the range to the object from the superposition detected by the detector,

a control unit configured to control the mechanical scanning unit such that a density of points, which are illuminated by the output light in a plane that is perpendicular to the central direction, continuously decreases with increasing distance from the central direction.

12 . The device of claim 11 , wherein the control unit is configured to control the mechanical scanning unit such that the mirror performs rotational movements with a non-constant angular velocity.

13 . The device of claim 11 , wherein the control unit is configured to control the mechanical scanning unit such that the density of points depends on a velocity of the device.

14 . The device of claim 11 , wherein the control unit is configured to control the mechanical scanning unit such that the density of points depends on a measured range to the object.

15 . A device for scanning frequency-modulated continuous wave (FMCW) LiDAR range measurement, comprising

a light source configured to produce light having a varying frequency,

a splitter configured to split the light into reference light and output light,

a plurality of free space couplers arranged in a two-dimensional array, wherein each free space coupler is configured to outcouple the output light into the free space and to receive input light, which was reflected at an object,

an optical system having an optical axis and configured to deflect the output light outcoupled by the free space couplers so that the output light is emitted in different directions,

a detector configured to detect a superposition of the input light with the reference light, and

a calculation unit configured to determine the range to the object from the superposition detected by the detector,

wherein

a density of the free space couplers continuously decreases with increasing distance from the optical axis of the optical system.

16 . The device of claim 15 , wherein the density of the free space couplers continuously decreases with increasing distance from the optical axis at least substantially according to a non-linear function.

17 . The device of claim 15 , wherein the free space couplers are arranged in a front focal plane of the optical system.

18 . The device of claim 15 , comprising an optical distribution matrix comprising a plurality of optical switches and configured to distribute the output light selectively to different optical waveguide, and wherein there is a one-to-one correspondence between the optical waveguides and the free space couplers such that each free space coupler is connected to an associated optical waveguide.

19 . The device of claim 15 , wherein at least the free space couplers are components of a photonic integrated circuit.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 6, 2026
From: SCANTINEL PHOTONICS GMBH
To: SCANTINEL GMBH
Reel/Frame 075353/0757 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 11, 2024
From: DAVYDENKO, VLADIMIR
To: SCANTINEL PHOTONICS GMBH
Reel/Frame 067961/0894 →
Priority Claims (1)
EP 21212587 · Dec 6, 2021 · regional
Continuity (1)
Related Publication 20230176214A1 · Jun 8, 2023
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