Method for calibrating a measurement coordinate system of a coherence tomograph to the processing coordinate system of a laser processing arrangement

By adjusting the camera coordinate system to the processing coordinate system through long-exposure photography and offset determination, the calibration of a coherence tomograph's measurement system is achieved without consumables, enhancing precision and reliability in laser processing systems.

DE102024115503A1Pending Publication Date: 2025-12-04TRUMPF LASER SE
View PDF 4 Cites 0 Cited by

Patent Information

Application Number
DE102024115503
Authority / Receiving Office
DE · DE
Patent Type
Applications
Current Assignee / Owner
Filing Date
2024-06-04
Publication Date
2025-12-04

AI Technical Summary

Technical Problem

Existing methods for calibrating a coherence tomograph's measurement coordinate system to a laser processing arrangement require consumables or expensive separate sensors, which are not suitable for fully automated processes.

Method used

A method that adjusts a camera coordinate system to the processing coordinate system by scanning a predefined scan figure, capturing it with an observation camera using long-exposure photography, determining offset and rotational deviation, and adjusting the measurement coordinate system accordingly, without using consumables.

Benefits of technology

Enables a fully automated, consumable-free calibration with increased accuracy and reliability, minimizing resource consumption and operational costs while improving measurement precision and stability under fluctuating lighting conditions.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure 00000000_0000_ABST
    Figure 00000000_0000_ABST
Patent Text Reader

Abstract

The invention relates to a method for calibrating a measurement coordinate system of a coherence tomograph (24) to the processing coordinate system of a laser processing arrangement (12) comprising the following method steps: a. Adjustment of a camera coordinate system (42) of an observation camera (26) to the processing coordinate system b. Adjustment of the measuring coordinate system to the camera coordinate system (42) by i. a predefined scan figure (52) is scanned by a scanner of the coherence tomograph (24). ii. the scan figure (52) is recorded by the observation camera (26), in particular with an exposure time adapted to the scan of the scan figure (52), iii. the scan figure (52) is captured in the camera image iv. an offset and a rotational deviation are determined v. the measurement coordinate system is adjusted taking into account offset and rotational deviation.
Need to check novelty before this filing date? Find Prior Art

Description

[0001] The invention relates to a method for calibrating a measurement coordinate system of a coherence tomograph to the processing coordinate system of a laser processing arrangement.

[0002] For example, when welding fillet welds, it is necessary to control the relative position between the laser focal spot and the workpiece. This weld position control can be achieved using optical coherence tomography (OCT). This method is based on the fundamental principle of light wave interference and makes it possible to detect height differences along a measurement beam axis in the micrometer range.

[0003] Calibrating a scanner, especially an OCT scanner or coherence tomograph, relative to the laser processing optics requires either consumables (sheet metal, film, etc.) or a separate sensor. Consumables cannot be used in fully automated processes. Separate sensors are expensive and sometimes cannot be integrated into a machine design.

[0004] From WO 2021 / 211 960 A1, a method for calibrating a coherence imaging measurement system is known. The method comprises providing a material processing system configured to generate and direct a processing beam to a target, providing a coherence imaging measurement system configured to generate a measurement beam, and providing a measurement system output for controlling and / or monitoring the material processing system, wherein the calibration measurement output is provided by the measurement system and / or by an auxiliary sensor.

[0005] The object of the present invention is to provide an improved method for calibrating a measurement coordinate system to a machining coordinate system.

[0006] According to a first aspect of the invention, this problem is solved by a method for calibrating a measurement coordinate system of a coherence tomograph to the processing coordinate system of a laser processing arrangement with the following method steps: a. Adjustment of a camera coordinate system of an observation camera to the processing coordinate system, b. Adjustment of the measuring coordinate system to the camera coordinate system by i. a predefined scan figure (or simply "figure") is scanned by a scanner of the coherence tomograph, ii. the scan figure is captured by the observation camera, in particular with an exposure time adapted to the scan of the scan figure, iii. the scan figure is captured in the camera image, iv. an offset and a rotational deviation are determined, and v. the measurement coordinate system is adjusted taking into account offset and rotational deviation.

[0007] The term “measuring coordinate system” can be understood within the meaning of the present invention as follows: A reference system used by a coherence tomograph to scan a scan figure on a workpiece.

[0008] The term "camera coordinate system" can be understood as the reference system used to determine the position of a structure shown in the camera image.

[0009] According to the invention, it is therefore proposed to use the calibration of the camera coordinate system to the processing coordinate system in order to calibrate or adjust the measuring coordinate system to the processing coordinate system. This can be done without consumables and fully automatically.

[0010] Such a consumable-free and fully automated calibration can be performed using a coaxial camera. This camera, or rather its camera coordinate system, is first calibrated to the laser processing optics or the processing coordinate system. The camera calibration serves as a reference for adjusting the measurement coordinate system. To calibrate the OCT scanner, a scan pattern, such as a cross geometry, a circle, or one or more individual lines, can be scanned and captured by the observation camera using long-exposure photography. A measurement beam can be emitted by a light source of the coherence tomograph, such as an SLED (superluminescent diode), for example, at a wavelength in the range of 820–860 nm.

[0011] It may be possible to record the scanned figure with the observation camera using an exposure time greater than 100 ms, in particular approximately 200 ms. Such an exposure time is significantly longer than that of a static measurement, where the exposure time is in the range of 1 ms. The exposure time can be tailored to the observation camera used.

[0012] By using a suitable exposure time of the observation camera, improved image recordings of the scanned figure can be made possible, especially when considering different ambient light conditions.

[0013] Another advantage can be increased reliability of the detection under fluctuating lighting conditions, which in turn allows for a more stable and robust calibration of the system.

[0014] It may be possible to adjust the measuring coordinate system to the camera coordinate system without consumables.

[0015] The term “consumable-free” can be understood within the meaning of the present invention to mean that no additional materials, substances or components are required, in particular for calibrating the measurement coordinate system to the camera coordinate system.

[0016] A significant technical advantage of this design lies in the minimization of resource consumption and the associated cost savings, as no consumables are required for the calibration process. Furthermore, eliminating consumables can simplify operational procedures and increase efficiency.

[0017] It may be planned that the coherence tomograph will be scaled.

[0018] A key technical advantage of this measure can lie in the increased accuracy of the measurement result. Scaling corrects errors caused by system-related deviations or environmental influences, thus enabling higher precision in the measurement.

[0019] It may be provided that the scanner of the coherence tomograph scans the specified scan figure with an offset compared to a previous scan, the scan figure is captured in the camera image, an offset is determined, and a scaling is determined from the ratio of the set offset and the captured offset.

[0020] The term “offset” can be understood, within the meaning of the present invention, as referring to a deliberately introduced displacement of the scan of the scan figure, which serves to check and fine-tune the agreement between the measuring coordinate system and the camera coordinate system.

[0021] The term "offset" can be understood as a measurable difference between the expected and the actually detected position of a scan figure in the camera image, which is used to assess the measurement accuracy of the system and, if necessary, to make adjustments.

[0022] A significant technical advantage of this feature is that the deliberate introduction of an offset and its subsequent determination allows for a higher degree of fine-tuning of the coherence tomograph's scaling. This contributes to improved measurement accuracy and calibration reliability.

[0023] It may be provided that the scan of the scan figure with offset, the capture of the scan figure in the camera image and the determination of the offset are repeated at least once and that an average value for scaling is determined from the repeated measurements.

[0024] This leads to an increase in the accuracy and reliability of the coherence tomograph's scaling. By repeating the measurements and calculating a mean value, random errors are compensated for, resulting in a more precise calibration.

[0025] Furthermore, repeated application of the process steps and the resulting averaging can improve the consistency and stability of the calibration procedure, which is particularly advantageous in industrial applications with high precision requirements.

[0026] A laser processing optic with a focal length in the range of 200 to 600 millimeters can be used. This makes it possible to scan a large figure.

[0027] The camera coordinate system can be adjusted to the processing coordinate system by a. by laser processing of a workpiece a pattern, in particular a dot pattern, is created on the workpiece, b. a picture is taken with the observation camera, c. the pattern is captured in the camera image, d. an offset, a rotational deviation and / or a scaling are determined, and e. the camera coordinate system is adjusted based on the values ​​determined in the previous step.

[0028] The term “pattern” can be understood, within the meaning of the present invention, as a precise arrangement of visually distinguishable markings that are applied to a workpiece and serve as reference points or lines for the adjustment of coordinate systems.

[0029] In this context, the term "dot pattern" can refer to a specific type of pattern consisting of a group of points that are in a known, especially predetermined, geometric relationship to each other.

[0030] By using a pattern created through laser processing, an accurate reference for adjusting the camera coordinate system can be established.

[0031] By capturing the point pattern in the camera image and subsequently fine-tuning the camera coordinate system, precise alignment relative to the processing coordinate system can be achieved.

[0032] The position of the pattern, especially the points within the dot pattern, can be detected. This makes it possible to align the camera coordinate system with the pattern. To do this, the camera coordinate system can be focused on the pattern, specifically the points.

[0033] A workpiece with a black surface, especially an anodized sheet metal, can be used.

[0034] This enables the creation of precise and easily recognizable patterns and markings through laser processing. This can contribute to improved visibility and detectability when adjusting the camera coordinate system.

[0035] A beam splitter can be used between the observation camera and the coherence tomograph, which has a transmission of more than 1% for the wavelength of the measuring beam, or the measuring beam reflected from the workpiece can be converted into a different wavelength range.

[0036] This ensures that the scan of the scan figure is reliably captured by the observation camera.

[0037] According to another aspect of the invention, it can be provided that a laser processing system comprising a coherence tomograph, a laser beam source, a laser processing optics, an observation camera and a control system is provided, which is configured to carry out the method according to the invention.

[0038] Suitable laser beam sources include, for example, a solid-state laser, in particular a fiber laser or a disk laser, a diode laser or a CO2 laser.

[0039] The term "laser processing optics" describes the components that serve to focus, guide and direct the laser processing beam onto the workpiece.

[0040] The term "observation camera" refers to a camera unit that is capable of observing both the processing process and reference patterns for calibration purposes, especially with spatial resolution.

[0041] The control system can be connected to the observation camera, the coherence tomograph, the laser beam source, and the laser processing optics, particularly via signal transmission, and can receive data from and send data, especially commands, to these components. The control system can be connected to the observation camera, the coherence tomograph, the laser beam source, and / or the laser processing optics via a wired or wireless connection. The control system can include a processing unit and a memory in which control instructions are stored as software.

[0042] With such a laser processing system, the calibration of the coherence tomograph's measurement coordinate system to the camera coordinate system can be carried out automatically and without consumables.

[0043] In another aspect, the invention relates to a computer program product containing machine-readable control instructions which, when loaded into a control system of a laser processing system according to the invention, cause the laser processing system to carry out the method according to the invention.

[0044] Further features and advantages of the invention will become apparent from the following detailed description of exemplary embodiments of the invention with reference to the figures in the drawing, which show essential details of the invention, as well as from the claims. The features shown therein are not necessarily to scale and are depicted in such a way that the inventive features are clearly visible. The various features can be implemented individually or in any combination in variants of the invention.

[0045] The schematic drawing shows exemplary embodiments of the invention in various stages of use, which are explained in more detail in the following description.

[0046] They show: Fig. 1 a highly schematic representation of a laser processing system; Fig. 2a a processing coordinate system of a laser processing arrangement and a measurement coordinate system of a coherence tomograph before calibration; Fig. 2b the coordinate systems after calibration; Fig. 3 a schematic representation of the laser processing system to explain the adjustment of the measuring coordinate system to the camera coordinate system; Fig. 4a a scan figure scanned by a scanner of the coherence tomograph in relation to the camera coordinate system; Fig. 4b the scanned figure after calibration to the camera coordinate system by the coherence tomograph scanner; Fig. 5a scanning multiple scan figures by the coherence tomograph scanner to determine a scaling; and Fig. 5b the scanned figure after scaling.

[0047] The Fig. Figure 1 shows a laser processing system 10 with a laser processing arrangement 12, which includes a laser beam source 14 and a laser processing optic 16, comprising a focusing optic 18, for focusing a processing beam 20 onto a workpiece 22. The workpiece 22 can, for example, be a black sheet, in particular anodized sheet.

[0048] Furthermore, the laser processing system 10 includes a coherence tomograph 24, in particular an OCT tomograph. The laser processing system 10 also includes a monitoring camera 26. The monitoring camera 26 can capture a spatially resolved image of the workpiece 22, which is indicated by the monitoring beam 28. The monitoring beam 28 is directed onto the monitoring camera 26 by a mirror 30.

[0049] The processing beam 20 can be moved in the xy direction relative to the workpiece 22. This can be achieved, for example, by the laser processing optics 16 having a processing scanner that can deflect the processing beam 20 in the xy direction. Alternatively, the workpiece 22 can be arranged on a workpiece support that is movable in the xy direction, or a laser processing head can be movable relative to the workpiece 22.

[0050] The positioning of the machining beam 20 relative to the workpiece 22 is carried out taking into account a machining coordinate system. The evaluation of the image recorded by the observation camera 26 is carried out taking into account a camera coordinate system.

[0051] A control unit 31 can be set up to carry out or trigger the steps of the method according to the invention and to evaluate the images taken by the observation camera 26.

[0052] The Fig. Figure 2a shows that a pattern 32 was generated on the workpiece 22 by means of the machining beam 20, controlled by the controller 31. In particular, a point pattern with points 34 and 36 was generated, where point 34 lies on the x-axis 38 and point 36 on the y-axis 40 of the machining coordinate system. The camera coordinate system 42, on the other hand, has an offset in both the x- and y-directions. Furthermore, it is rotated relative to the machining coordinate system, i.e., it exhibits a rotational deviation. The lateral offset, i.e., the offset in the x- and y-directions, as well as the rotation of the camera coordinate system 42, are detected. Corresponding correction values ​​are applied, in particular by the controller 31, so that the camera coordinate system 42 is brought into alignment with the machining coordinate system, as shown in Figure 2a. Fig. 2b is shown.

[0053] The camera coordinate system 42 is thus calibrated to the processing coordinate system. The next calibration step is based on the Fig. 3 explained. Fig. Figure 3 shows the laser processing system 10 according to Fig. 1, where the processing beam is switched off, which is why it is in the Fig. Figure 3 is not shown. A measuring beam 46 is emitted by a light source 44, in particular a SLED, of the coherence tomograph 24. The measuring beam 46 is directed onto the workpiece 22 by a scanner optic 48, hereinafter also referred to as scanner. In particular, the scanner 48 scans a scan figure on the workpiece 22. The scan figure can be, for example, a cross or a single line. The measuring beam 46 is reflected by the workpiece 22 and directed by a beam splitter 50, so that an observation beam 28 is captured by the observation camera 26. The observation camera 26 can therefore capture the scan figure scanned by the scanner 48 on the workpiece 22.

[0054] In the Fig. Figure 4a shows that the scan figure 52, which is formed here as a cross and which was generated taking into account a measurement coordinate system, has a lateral offset in both the x and y directions, as well as a rotation (rotational deviation) compared to the camera coordinate system 42.

[0055] The Fig. Figure 4b shows that the offset, i.e., lateral displacement, can be determined, for example, using the control 31. The rotation relative to the camera coordinate system 42 can also be recorded. By applying appropriate correction values, the measurement coordinate system can be adjusted to the camera coordinate system 42 so that the camera coordinate system 42 and the scan figure 52, and thus the measurement coordinate system, coincide, as shown in the Fig. 4b is shown.

[0056] In the Fig. Figure 5a shows that the scan figure 52 can be scanned multiple times with an offset, see reference numerals 52', 52". The center point 54, 54', 54" of the scan figures 52, 52', 52" can be determined – in the example shown, this is the intersection of the lines forming the respective cross. Furthermore, the offset of the center points 54, 54', 54" from the center point or origin of the camera coordinate system 42 can be determined. A scale can be determined from the ratio of the set offset and the measured offset. By scanning several scan figures 52, 52', 52" and determining the corresponding offset, an average can be calculated, thereby increasing the accuracy. The result of the scaling is shown in the Fig. 5b shown. QUOTES INCLUDED IN THE DESCRIPTION

[0000] This list of documents cited by the applicant was automatically generated and is included solely for the reader's convenience. The list is not part of the German patent or utility model application. The DPMA accepts no liability for any errors or omissions. Cited patent literature

[0000] WO 2021 / 211 960 A1

[0004]

Claims

[1] Method for calibrating a measurement coordinate system of a coherence tomograph (24) to the processing coordinate system of a laser processing arrangement (12) comprising the following process steps: a. Adjustment of a camera coordinate system (42) of an observation camera (26) to the processing coordinate system, b. Adjustment of the measuring coordinate system to the camera coordinate system (42) by i. a predefined scan figure (52) is scanned by a scanner (48) of the coherence tomograph (24), ii. the scan figure (52) is recorded by the observation camera (26), in particular with an exposure time adapted to the scan of the scan figure (52), iii. the scan figure (52) is captured in the camera image, iv. an offset and a rotation deviation are determined, v. the measurement coordinate system is adjusted taking into account offset and rotational deviation. [2] Method according to claim 1, characterized by , that the scan figure (52) is captured by the observation camera (26) with an exposure time greater than 100 ms, in particular of approximately 200 ms. [3] Method according to any one of the preceding claims, characterized by , that step 1.b. is carried out without consumables. [4] Method according to any one of the preceding claims, characterized by , that a scaling of the coherence tomograph (24) is performed. [5] Method according to claim 4, characterized by , that the scanner (48) of the coherence tomograph (24) scans the specified scan figure (52, 52', 52") with an offset compared to step 1.bi, the scan figure (52, 52', 52") is captured in the camera image, an offset is determined, and a scaling is determined from the ratio of the set offset and the captured offset. [6] Method according to claim 5, characterized bythat the process steps of claim 5 are repeated at least once and an average value for scaling is determined. [7] Method according to any one of the preceding claims, characterized by , that a laser processing optic (16) with a focal length in the range of 200-600mm is used. [8] Method according to any one of the preceding claims, characterized by , that the camera coordinate system (42) is adjusted to the processing coordinate system by a. by laser processing of a workpiece (22) a pattern (32), in particular a dot pattern, on which the workpiece (22) is produced, b. a picture is taken with the observation camera (26), c. the pattern (32) is captured in the camera image, d. an offset, a rotation deviation and / or a scaling is determined, e. the camera coordinate system (42) is adjusted using the values ​​determined in the previous step. [9] Method according to claim 8, characterized by , that the position of the pattern (32), in particular the points of the point pattern, is detected. [10] Method according to any one of the preceding claims, characterized by , that a black, in particular anodized, sheet metal is used as the workpiece (22). [11] Method according to any one of the preceding claims, characterized by , that a beam splitter (50) with a transmission > 1 % for the wavelength of the measuring beam (46) is located between the observation camera (26) and the coherence tomograph (24), or that the measuring beam (46) reflected at the workpiece (22) is converted into a different wavelength range. [12] Laser processing system (10) comprising a coherence tomograph (24), a laser beam source (14), a laser processing optics (16), an observation camera (26) and a control system (31) configured to perform the method according to one of the preceding claims. [13] Computer program product containing machine-readable control instructions which, when loaded into a controller (31) of a laser processing system (10) according to claim 12, cause the laser processing system (10) to carry out the method according to any one of claims 1 to 11.

Citation Information

Patent Citations

  • Calibration method for a sensor deflection system of a laser processing device and calibration system for carrying out such a calibration method

    DE102016106648A1

  • Method for calibrating one or more optical sensors of a laser processing head, laser processing head and laser processing system

    DE102021128707A1

  • Method for calibrating a measuring scanner on a laser processing optic

    DE102022120834A1

  • Static and dynamic calibration for coherence imaging measurement systems and methods

    WO2021211960A1