IP Library Granted Patent US 12,339,360
Granted Patent B2
US 12,339,360 · App. 17/082,910 · Granted Jun 24, 2025

Multi-beam measuring device

Inventors: Rainer Wohlgenannt (Klaus, AT); Martin De Lange (Kesswil, CH); Benjamin Seifert (Grabs, CH); Simon Bestler (Langenargen, DE); Jürg Hinderling (Marbach, CH)
Assignee: HEXAGON TECHNOLOGY CENTER GMBH
G01S17/10G01S7/484G01S7/4865G01S7/497G01S17/89
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Quick Facts
Patent No.
US 12,339,360
App. No.
17/082,910
Granted
Jun 24, 2025
Kind
B2
Abstract

An absolute distance measuring method and device including a transmission unit having a laser array comprising multiple measurement laser emitters arranged along a laser array axis and a receiver unit having at least one receiver array comprising multiple measurement receivers arranged along a receiver array axis for measuring of an absolute distance based on a respective detected transmission beam and the principle of time-of-flight. The laser array comprises at least a first reference laser emitter and the receiver array comprises at least a first reference receiver. The reference laser emitter and reference receiver define an internal absolute distance reference beam path for calibration of the device with respect to said measuring of absolute distance.

Claims (50)

1. An absolute distance measuring device comprises:

a transmission unit having:

at least one laser array, the laser array comprising multiple measurement laser emitters arranged along a laser array axis and configured to generate a beam pattern, and

a beam exit area,

the transmission unit being configured to emit a plurality of transmission beams via the beam exit area at different measurement angles; and

a receiver unit having:

a measurement beam entry area, and

at least one receiver array comprising multiple measurement receivers arranged along a receiver array axis,

the receiver unit being designed:

for beam detection by a respective measurement receiver of at least one transmission beam of the plurality of transmission beams returning via the beam entry area, and

for measuring of an absolute distance based on a respective detected transmission beam and the principle of time-of-flight,

wherein the laser array comprises at least a first reference laser emitter and the receiver array comprises at least a first reference receiver, the reference laser emitter and reference receiver defining an internal absolute distance reference beam path of defined length for calibration of the device with respect to said measuring of absolute distance,

wherein the device further comprises:

a second reference laser emitter in addition to and separate from the laser array, and

a second reference receiver in addition to and separate from the receiver array.

2. The absolute distance measuring device according to claim 1 , wherein

one of the measurement laser emitters serves as first reference laser emitter, or

one of the measurement receivers serves as first reference receiver.

3. The absolute distance measuring device according to claim 1 , wherein the internal absolute distance reference beam path is subdivided into:

a first distance reference beam path defined between the first reference laser emitter and the second reference receiver,

a second absolute distance reference beam path defined between the second reference laser emitter and the second reference receiver, and

a third absolute distance reference beam path defined between the second reference laser emitter and the first reference receiver.

4. The absolute distance measuring device according to claim 1 , wherein the device comprises:

at least one optical guiding or deflection element for guiding part of the laser light of at least one, in particular all, laser emitter of the laser array to the second reference receiver, or

at least one optical guiding or deflection element for guiding laser light of the second reference laser emitter directly to at least one receiver of the receiver array, or

at least one optical guiding or deflection element for guiding laser light of the second reference laser emitter directly to the second reference receiver.

5. The absolute distance measuring device according to claim 4 , wherein the optical guiding or deflection element for guiding laser light of all laser emitters directly to the second reference receiver is situated in an area where the beams of all laser emitters are mixed.

6. The absolute distance measuring device according to claim 1 , wherein the absolute distance measuring device further comprises a variable optical attenuator situated in the reference beam path.

7. The absolute distance measuring device according to claim 1 , wherein the transmission beams are emittable as sequences of distinct laser pulses with a time gap in between subsequent sequences, and the calibration is based on at least one calibration measuring of an absolute distance of the absolute distance reference beam path of defined length using at least one laser pulse separate from the sequences of distinct laser pulses during said time gap in between subsequent sequences.

8. The absolute distance measuring device according to claim 1 , wherein the device is designed for multiple calibration measurements with different laser pulse intensity for range walk calibration.

9. The absolute distance measuring device according to claim 1 , wherein the internal absolute distance reference beam path is subdivided into a first, second and third absolute distance reference beam path and the calibration is based on:

a first calibration measuring of an absolute distance of the first absolute distance reference beam path during a first time gap in between subsequent sequences of distinct laser pulses,

a second calibration measuring of an absolute distance of the second absolute distance reference beam path of defined length during a second time gap in between subsequent sequences of the distinct laser pulses, and

a third calibration measuring of an absolute distance of the second absolute distance reference beam path of defined length during a third time gap in between subsequent sequences of the distinct laser pulses.

10. An absolute distance measuring device comprises:

a transmission unit having:

at least one laser array, the laser array comprising multiple measurement laser emitters arranged along a laser array axis and configured to generate a beam pattern, and

a beam exit area,

the transmission unit being configured to emit a plurality of transmission beams via the beam exit area at different measurement angles; and

a receiver unit having:

a measurement beam entry area, and

at least one receiver array comprising multiple measurement receivers arranged along a receiver array axis,

the receiver unit being designed:

for beam detection by a respective measurement receiver of at least one transmission beam of the plurality of transmission beams returning via the beam entry area, and

for measuring of an absolute distance based on a respective detected transmission beam and the principle of time-of-flight,

wherein the laser array comprises at least a first reference laser emitter and the receiver array comprises at least a first reference receiver, the reference laser emitter and reference receiver defining an internal absolute distance reference beam path of defined length for calibration of the device with respect to said measuring of absolute distance,

wherein the internal absolute distance reference beam path is subdivided into a first, second and third absolute distance reference beam path and the calibration is based on:

a first calibration measuring of an absolute distance of the first absolute distance reference beam path during a first time gap in between subsequent sequences of distinct laser pulses,

a second calibration measuring of an absolute distance of the second absolute distance reference beam path of defined length during a second time gap in between subsequent sequences of the distinct laser pulses, and

a third calibration measuring of an absolute distance of the second absolute distance reference beam path of defined length during a third time gap in between subsequent sequences of the distinct laser pulses.

Assignments (3)
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 Nov 16, 2020
From: WOHLGENANNT, RAINER; BESTLER, SIMON; HINDERLING, JÜRG
To: HEXAGON TECHNOLOGY CENTER GMBH
Reel/Frame 054374/0918 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 29, 2020
From: DE LANGE, MARTIN; SEIFERT, BENJAMIN
To: HEXAGON TECHNOLOGY CENTER GMBH
Reel/Frame 054207/0963 →
Priority Claims (3)
EP 19205917 · Oct 29, 2019 · regional
EP 20204389 · Oct 28, 2020 · regional
EP 20204461 · Oct 28, 2020 · regional
Continuity (1)
Related Publication 20210124049A1 · Apr 29, 2021
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