IP Library Granted Patent US 12,025,468
Granted Patent B2
US 12,025,468 · App. 17/111,045 · Granted Jul 2, 2024

Optical sensor with overview camera

Inventors: Patrick Ilg (Wangen, DE); Patryk Wroclawski (Wangen, DE); Jonas Wuest (Oberriet, CH)
Assignee: HEXAGON TECHNOLOGY CENTER GMBH
G01C3/02G01B11/005G06T7/521G06T7/70H04N23/56G06T2207/30204
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Quick Facts
Patent No.
US 12,025,468
App. No.
17/111,045
Granted
Jul 2, 2024
Kind
B2
Abstract

A measuring system for triangulation-based distance measuring device having a light emitting unit, a light receiving unit for detecting measuring light reflected from an object and a processing unit for deriving distance information based on a detected reflection of measuring light. The system comprises a visual guiding unit projecting a visual marker onto the object. The light emitting unit and the visual guiding unit provide a light reflection onto the object by emitting the measuring light and the projection of the visual marker onto the object. The measuring system comprises a camera, the field of view of the camera being greater than the field of view of the light receiving unit and the camera captures an image covering the light reflection and the projection of the visual marker and to provide image information according to a captured image.

Claims (40)

1. A measuring system comprising:

a triangulation-based distance measuring device having:

a light emitting unit having a measuring light source for providing measuring light,

a light receiving unit having a sensor for detecting measuring light reflected from an object to be measured, and

a processing unit for deriving distance information based on a detected reflection of measuring light, and

a visual guiding unit having a guiding light source for providing a projection of a visual marker onto the object, the guiding light source is different from the measuring light source,

wherein the light emitting unit, the light receiving unit and the visual guiding unit are arranged with known spatial positions and orientations relative to each other,

wherein the light emitting unit and the visual guiding unit are arranged relative to each other to provide:

a light reflection onto the object by emitting the measuring light, and

the projection of the visual marker onto the object with defined spatial relationship depending on a particular distance or orientation of the triangulation-based distance measuring device relative to the object, and

wherein the measuring system comprises a camera, wherein the field of view of the camera is greater than the field of view of the light receiving unit, and the camera is arranged and configured to capture an image covering the light reflection and the projection of the visual marker and to provide image information according to a captured image,

wherein the light emitting unit, the light receiving unit, the camera, and the visual guiding unit are arranged with fixed and known spatial positions and orientations relative to each other, wherein their optical axes provide fixed orientations.

2. The measuring system according to claim 1 , wherein the optical axis of the light emitting unit and the optical axis of the camera are parallel.

3. The measuring system according to claim 1 , wherein the optical axis of the visual guiding unit is tilted relative to the optical axis of the camera.

4. The measuring system according to claim 1 , wherein the optical axis of the visual guiding unit is tilted relative to the optical axis of the light receiving unit.

5. The measuring system according to claim 1 , wherein the visual marker is designed so as to provide an indication if the triangulation-based distance measuring device is provided inside of a desired measuring range relative to the object, the indication is based on a spatial position of the light reflection relative to the visual marker.

6. The measuring system according to claim 1 , wherein:

the visual guiding unit comprises a diffractive optical element which is configured to provide a particular pattern representing the visual marker, or

the visual guiding unit comprises an active projection unit which is configured to provide varying patterns representing the visual marker.

7. The measuring system according to claim 1 , wherein the processing unit is configured to provide an output concerning currently derived distance information.

8. The measuring system according to claim 7 , wherein the measuring system comprises a controlling unit which is configured to provide the image information to the display and to control displaying on side of the display.

9. The measuring system according to claim 8 , wherein the controlling unit is configured to provide the output concerning currently derived distance information to the display, wherein the output is designed to provide a currently determined distance to the object or to indicate a measure concerning a deviation from the measuring range of the triangulation-based distance measuring device.

10. The measuring system according to claim 1 , wherein the measuring system comprises a display which is configured to provide the image information in an operator-observable manner.

11. The measuring system according to claim 1 , wherein the processing unit is configured to provide an alignment information, wherein the alignment information is derived by image processing and provides an information about an alignment of the triangulation-based distance measuring device relative to the object based on an evaluation of the spatial relationship of the light reflection and the projection of the visual marker in the image.

12. A method for aligning a triangulation-based distance measuring device relative to an object, wherein the triangulation-based distance measuring device includes at least a light emitting unit and a light receiving unit, the method comprising:

emitting measuring light toward the object by the light emitting unit;

projecting a visual marker onto the object by a visual guiding unit;

providing:

a light reflection onto the object by emitting of the measuring light, and

a projection of the visual marker onto the object with defined spatial relationship depending on a particular distance or orientation of the triangulation-based distance measuring device relative to the object;

capturing an image which covers the light reflection and the projection of the visual marker by a camera, wherein the camera is different from the light receiving unit; and

providing image information according to the captured image, wherein the light emitting unit, the light receiving unit, the camera, and the visual guiding unit are arranged with fixed and known spatial positions and orientations relative to each other, wherein their optical axes provide fixed orientations.

13. The method according to claim 12 ,

capturing the image and providing the image information is performed continuously and the image information is provided to an operator by visually outputting.

14. A non-transitory computer program product having computer-executable instructions implemented for executing and respectively controlling at least the steps of aligning a triangulation-based distance measuring device, wherein the triangulation-based distance measuring device includes at least a light emitting unit and a light receiving unit, the steps comprising:

emitting measuring light toward the object by the light emitting unit;

projecting a visual marker onto the object by a visual guiding unit;

providing a light reflection onto the object by emitting of the measuring light and a projection of the visual marker onto the object with defined spatial relationship depending on a particular distance or orientation of the triangulation-based distance measuring device relative to the object;

capturing an image which covers the light reflection and the projection of the visual marker by a camera, wherein the camera is different from the light receiving unit; and

providing image information according to the captured image, wherein the light emitting unit, the light receiving unit, the camera, and the visual guiding unit are arranged with fixed and known spatial positions and orientations relative to each other, wherein their optical axes provide fixed orientations.

Assignments (4)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 4, 2025
From: HEXAGON TECHNOLOGY CENTER GMBH
To: HEXAGON INNOVATION HUB GMBH
Reel/Frame 073833/0471 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 19, 2021
From: ILG, PATRICK; WUEST, JONAS
To: HEXAGON TECHNOLOGY CENTER GMBH
Reel/Frame 055341/0962 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 19, 2021
From: WROCLAWSKI, PATRYK
To: M&H INPROCESS MESSTECHNIK GMBH
Reel/Frame 055342/0021 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 19, 2021
From: M&H INPROCESS MESSTECHNIK GMBH
To: HEXAGON TECHNOLOGY CENTER GMBH
Reel/Frame 055342/0032 →
Priority Claims (1)
EP 19217367 · Dec 18, 2019 · regional
Continuity (1)
Related Publication 20210190483A1 · Jun 24, 2021