A laser triangulation measurement method and sensor calibration structure
By using an asymmetric laser triangulation measurement method and calibration device to adjust the relative position of the board-level camera and imaging lens, the problem of insufficient stability and sensitivity of the sensor under the same hardware conditions is solved, achieving lower nonlinear error and higher measurement accuracy.
Patent Information
- Application Number
- CN202411936760.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-26
- Publication Date
- 2025-09-26
- Estimated Expiration
- 2044-12-26
AI Technical Summary
Existing laser measurement sensors are difficult to improve both stability and sensitivity under the same hardware conditions, and there is a problem of large nonlinear errors.
A laser triangulation measurement method and calibration device with an asymmetric layout is used to optimize the sensor's measurement performance by adjusting the relative positions of the board-level camera and imaging lens and combining them with image point position calculation.
Under the same hardware conditions, it can reduce nonlinear errors, improve measurement accuracy and stability, and give full play to the performance limit of the sensor.
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Figure CN119959963B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of machine vision measurement, in particular to a laser triangulation measurement method and a sensor calibration structure. Background Art
[0002] At present, the known line laser measurement sensor is composed of a board-level camera, an imaging lens, and a laser, and its measurement structure follows the laser triangulation method. However, different tests and performance requirements will produce different structures. Reference [1] creatively demonstrates a method using two image sensors arranged symmetrically around the laser beam axis. This structure improves the performance of optical triangulation by reducing the shadow effect while maintaining resolution. In addition, it is easy to obtain a very large field of view. However, the structure is large in size and uses two board-level cameras, which further increases the cost of the sensor. Reference [2] achieves fast scanning by adding a fast turning mirror to the outside of the existing sensor to get rid of the limitation of the measurement time by the moving speed of the traditional translation stage. However, the installation of the fast turning mirror invisibly increases the volume of the sensor and reduces its flexibility of use. Reference [3] also shows the addition of a reflector inside the sensor to reduce the volume of the sensor. The above structural designs are all adapted to their respective application scenarios, but none of them consider how the sensor structure should be arranged under the same hardware conditions to maximize the stability and sensitivity of the sensor.
[0003] Literature [1]: F. Blais, "Review of 20 years of range sensor development," Journal of Electronic Imaging, vol. 13, no. 1, pp. 231-243, Jan, 2004.
[0004] Literature [2]: J. Schlarp, E. Csencsics, and G. Schitter, "Optical Scanning of a Laser Triangulation Sensor for 3-D Imaging," Ieee Transactions onInstrumentation and Measurement, vol. 69, no. 6, pp. 3606-3613, Jun, 2020.
[0005] Literature [3]: ZJ Nan, W. Tao, and H. Zhao, “Development of a small-sizelaser triangulation displacement sensor and temperature drift compensation method,” Measurement Science and Technology, vol. 32, no. 9, Sep, 2021. Summary of the Invention
[0006] In order to overcome the above-mentioned defect of the existing technology that lacks a universal high-precision laser measurement system, the present invention proposes a laser triangulation measurement method, which can greatly develop the measurement performance of the sensor under the same hardware conditions, and can reduce the nonlinear error of the sensor, making its measurement results more stable.
[0007] The present invention proposes a laser triangulation method. First, a laser, an imaging lens, a board-level camera, and an object motion trajectory are arranged. After the laser light is reflected by the object to be measured on the object motion trajectory, it is imaged on the board-level camera through the imaging lens. The end of the board-level camera close to the laser is recorded as the inner end, and the end of the board-level camera away from the laser is recorded as the outer end. The straight line on which the optical axis of the imaging lens passes through the inner end. The object to be measured is moved from a starting point to an end point on the object motion trajectory, and the laser and board-level camera are activated for tracking imaging. The position of the object to be measured is calculated based on the position of the image point on the board-level camera. The calculation formula is as follows:
[0008]
[0009] in, x' is the distance from the image point to the inner end of the board-level camera on the image point motion trajectory, x is the distance from the measured object to the starting point on the object's motion trajectory; d 0 is the distance from the intersection of the laser optical axis and the imaging lens optical axis to the principal point of the lens on the optical axis of the imaging lens, d 1 is the distance from the principal point of the lens to the inner end on the optical axis of the imaging lens; β is the angle between the laser optical axis and the imaging lens optical axis, µ It is the angle between the optical axis of the imaging lens and the photosensitive surface of the board-level camera.
[0010] Preferably, the object's motion trajectory is located on the optical axis of the laser.
[0011] Preferably, the starting point of the object's motion trajectory is the intersection of the optical axis of the imaging lens and the optical axis of the laser.
[0012] Preferably, when the imaging lens is a thin lens, the principal point of the lens is the coincidence point of the object side principal point and the image side principal point; when the imaging lens is a thick lens, d 0 is the distance from the intersection of the laser optical axis and the imaging lens optical axis to the principal point of the lens object side, d 1 is the distance from the principal point of the image side of the lens to the inner end on the optical axis of the imaging lens; β is the angle between the laser optical axis and the imaging lens optical axis, µ It is the angle between the optical axis of the imaging lens and the photosensitive surface of the board-level camera.
[0013] Preferably, the laser is a point laser or a line laser.
[0014] The present invention proposes a laser triangulation calibration device, comprising: a first linear translation stage, a first rotation stage, a lens barrel, a fiber optic adapter, a second linear translation stage, and a second rotation stage; the first linear translation stage is arranged on the first rotation stage, the first linear translation stage is used to place a board-level camera, and is used to drive the board-level camera to move linearly; the first rotation stage is used to adjust the placement angle of the board-level camera; the second linear translation stage is arranged on the second rotation stage, the lens barrel is arranged on the second linear translation stage through a lens support frame, the imaging lens is located in the lens barrel, and the optical axis of the imaging lens coincides with the central axis of the lens barrel; the fiber optic adapter is arranged on the side of the lens barrel away from the first linear translation stage, and the fiber optic adapter is used to provide a fiber optic socket.
[0015] Preferably, the optical fiber is first connected through a fiber optic adapter so that the light emitted from the optical fiber is emitted through the imaging lens; the relative angle of the imaging lens and the board-level camera is adjusted by the first rotating table and the second rotating table so that the light emitted from the imaging lens forms a light spot on the board-level camera; the relative position of the imaging lens and the board-level camera is adjusted by the relative movement of the first linear displacement table and the second linear displacement table so that the light spot is at the inner end of the board-level camera and the light spot is at its minimum state.
[0016] The advantages of the present invention are:
[0017] (1) This invention proposes a laser triangulation method in which the optical axis of the imaging lens is located on the side of the board-level camera closest to the laser line. The object-image relationship curve and sensitivity curve derived from the laser triangulation method show that when the measurement range, i.e., the object's motion trajectory, is in the positive direction of measurement, the nonlinearity of the measurement is lower and the overall sensitivity is greater. This fully ensures and improves the stability and measurement accuracy of the sensor under the same hardware conditions.
[0018] (2) Under the same hardware conditions, the present invention can reduce the nonlinear error of the measurement system and improve the measurement accuracy by simply adjusting the position of the board-level camera on the optical axis. This fully explores the performance limit of the existing line laser triangulation measurement sensor under the same hardware conditions. It can not only greatly develop the measurement performance of the sensor under the same hardware conditions, but also make the nonlinear error of the sensor lower, making its measurement results more stable.
[0019] (3) The laser triangulation calibration device proposed in the present invention can accurately adjust the relative position of the imaging lens and the board-level camera in advance, further improving the measurement accuracy. BRIEF DESCRIPTION OF THE DRAWINGS
[0020] Figure 1 A laser triangulation measurement system for an existing symmetrical structure;
[0021] Figure 2 The laser triangulation measurement system with an asymmetric structure proposed in this application;
[0022] Figure 3 is the sensitivity curve of the laser triangulation system;
[0023] Figure 4 Flowchart of the laser triangulation method proposed for this application;
[0024] Figure 5 Schematic diagram of the measurement system of the embodiment;
[0025] Figure 6 Comparison of measurement errors between asymmetric and symmetric structures;
[0026] Figure 7 Schematic diagram of the laser triangulation calibration device.
[0027] Diagram: 1. Laser; 2. Imaging lens; 3. Board-level camera; 4. First linear translation stage; 5. Lens barrel; 6. Fiber optic adapter; 7. Second linear translation stage; 71. Lens support frame; 8. Second rotation stage; 10. Dual-frequency laser interferometer; 9. First rotation stage; 100. Measured object. DETAILED DESCRIPTION
[0028] The following will provide a clear and complete description of the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. All other embodiments obtained by ordinary technicians in this field based on the embodiments of the present invention without making any creative efforts shall fall within the scope of protection of the present invention.
[0029] like Figure 1As shown, in existing laser triangulation systems, the straight line along the optical axis of imaging lens 2 passes through the center point of the photosensitive surface of board-level camera 3, which is the midpoint of the motion trajectory of the image point on the photosensitive surface. Thus, an object motion trajectory BC is set on the optical axis of laser 1. This object motion trajectory constitutes the system's measurement range. Laser light emitted by laser 1 is projected onto the surface of the object being measured. The resulting diffusely reflected light is partially imaged by imaging lens 2 and formed on the photosensitive surface of board-level camera 3. As the object moves within the measurement range, the position of the light spot on its surface relative to laser 1 changes, and the corresponding image point on the photosensitive surface of board-level camera 3 also changes. Accurately measuring the displacement of the image point on board-level camera 3 can determine the displacement of the object being measured. Figure 1 In the figure, the straight line where the optical axis of the imaging lens 2 is located passes through the center point of the photosensitive surface of the board-level camera 3, that is, the lengths of the board-level cameras 3 on both sides of the straight line where the optical axis of the imaging lens 2 is located are equal. This structure is referred to as a symmetrical structure.
[0030] In this embodiment, the laser is a line laser.
[0031] Figure 2 The laser triangulation measurement system proposed in this application is shown in FIG. 2 , in which the straight line where the optical axis of the imaging lens 2 is located passes through the end of the board-level camera 3 close to the laser 1. In this way, the photosensitive surface of the board-level camera 3 is completely distributed on the same side of the straight line where the optical axis of the imaging lens 2 is located, so that this structure is recorded as an asymmetric structure.
[0032] Reference Figure 1 、 Figure 2 , let the intersection of the optical axis of the imaging lens 2 and the optical axis of the laser 1 be point A, and let there be points C and B on the optical axis of the laser 1, with point C located on the side of point A closer to the laser 1, and point B located on the side of point A farther from the laser 1. When the object to be measured is located at point C, the image of the object to be measured on the board-level camera 3 is located at the end of the photosensitive surface farther from the imaging lens 2; when the object to be measured is located at point B, the image of the object to be measured on the board-level camera 3 is located at the end of the photosensitive surface closer to the laser. Obviously, point B only exists in symmetrical structures; point B does not exist in asymmetrical structures, or point B coincides with point A.
[0033] Let the image point of the object under test at point A on the board-level camera 3 be recorded as A', the image point of the object under test at point B on the board-level camera 3 be recorded as B', and the image point of the object under test at point C on the board-level camera 3 be recorded as C'; stipulate The direction is positive, The direction is negative, and the corresponding The direction is positive, The direction is negative.
[0034] The sensor based on the laser triangulation measurement principle uses the proportional relationship of similar triangles such as Figure 3 As shown, according to Figure 3The dotted area in the figure can be derived as follows:
[0035]
[0036] in, x' is the distance from the image point to the inner end of the board-level camera 3 on the image point motion trajectory, x is the distance from the measured object to the starting point on the object's motion trajectory; d 0 is the distance from the intersection of the optical axis of laser 1 and the optical axis of imaging lens 2 to the principal point of the lens on the optical axis of imaging lens 2, d 1 is the distance from the principal point to the inner end of the imaging lens 2 on the optical axis; β is the angle between the optical axis of laser 1 and the optical axis of imaging lens 2, µ is the angle between the optical axis of the imaging lens 2 and the photosensitive surface of the board-level camera 3.
[0037] In a specific embodiment, the displacement of the object 100 is measured using an asymmetric structure and a symmetric structure. When measuring the symmetric structure, the motion trajectory of the object 100 is BAC; Figure 2 When measuring the asymmetric structure shown, the motion trajectory of the object 100 is AC. The motion trajectory of the object corresponds to the measurement range. Obviously, Figure 2 The measurement range of the asymmetric structure shown is less than Figure 1 Measuring range for the symmetrical structure shown.
[0038] In this embodiment, the object to be measured moves in the direction of the optical axis of the laser 1, such as Figure 5 As shown in FIG, the actual moving distance of the measured object is measured by a dual-frequency laser interferometer 10 to calculate the measurement errors of the asymmetric structure and the symmetric structure. The error statistics of the two measurement methods are shown in FIG. Figure 6 As shown. Figure 6 It can be seen that when measuring the symmetrical structure, the maximum error is 12.05 microns; when measuring the asymmetrical structure, the maximum error is 8.2 microns, and the maximum error is reduced by 31.95%. l Smaller than the testable bit distance of the symmetrical structure l , but the asymmetric structure has higher test accuracy.
[0039] When arranging an asymmetric structure, it is necessary to debug the relative positions of the imaging lens 2 and the board-level camera 3. For this purpose, the present application also proposes Figure 7The laser triangulation calibration device shown in the figure includes: a first linear translation stage 4, a first rotation stage 9, a lens barrel 5, a fiber optic adapter 6, a second linear translation stage 7, and a second rotation stage 8. The second linear translation stage 7 is mounted on the second rotation stage 8, and the lens barrel 5 is mounted on the second linear translation stage 7. The imaging lens 2 is mounted on the side of the lens barrel 5 facing the board-level camera 3. A lens support frame 71 is provided on the second linear translation stage 7 to support the portion of the imaging lens 2 extending from the lens barrel 5. The optical axis of the imaging lens 2 coincides with the central axis of the lens barrel 5. The first linear translation stage 4 is mounted on the first rotation stage 9; it is used to place the board-level camera 3 and drive the board-level camera 3 in linear motion to adjust its three-dimensional spatial position. The first rotation stage 9 is used to drive the first linear translation stage 4 in rotation to adjust the angle of the board-level camera 3. The second linear translation stage 7 is used to drive the lens barrel 5 in linear motion to adjust the three-dimensional spatial position of the imaging lens 2. The second rotation stage 8 is used to drive the lens barrel 5 in rotation to adjust the angle of the imaging lens 2. The optical fiber adapter 6 is disposed on a side of the lens barrel 5 away from the first linear translation stage 4 , and the optical fiber adapter 6 is used to provide an optical fiber socket.
[0040] During debugging, first connect the optical fiber through the optical fiber adapter 6 so that the optical fiber output light passes through the imaging lens 2 and is emitted to the first linear translation stage 4;
[0041] Then, the first rotating stage 9 and the second rotating stage 8 are adjusted so that the imaging lens 2 and the board-level camera 3 are positioned opposite each other, the board-level camera 3 is located on the optical axis of the imaging lens 2, and the light emitted from the imaging lens 2 forms a light spot on the board-level camera 3;
[0042] Then, the first linear displacement stage 4 and the second linear displacement stage 7 are debugged to adjust the position and state of the light spot of the imaging lens 2 on the board-level camera 3 so that the light spot is at the inner end of the board-level camera 3 and is minimized.
[0043] In this way, the relative position debugging of the imaging lens 2 and the board-level camera 3 is completed; during testing, it is only necessary to arrange the board-level camera 3 and the imaging lens according to the debugging results, and then set the laser 1 so that the optical axis of the laser 1 intersects with the optical axis of the imaging lens 2. When testing the object to be measured, the object to be measured is moved on the optical axis of the laser 1 from the intersection of the optical axis of the laser 1 and the optical axis of the imaging lens 2 to the laser 1, and the moving distance of the image point of the feature point on the object to be measured on the board-level camera 3 is detected, so as to calculate the moving distance of the object to be measured.
[0044] Of course, it will be apparent to those skilled in the art that the present invention is not limited to the details of the exemplary embodiments described above, but also encompasses the same or similar structures that can be implemented in other specific forms without departing from the spirit or essential characteristics of the invention. Therefore, the embodiments should be considered in all respects as illustrative and non-restrictive, and the scope of the invention is defined by the appended claims, not the foregoing description, and it is intended that all variations that fall within the meaning and range of equivalents of the claims be encompassed within the present invention. Any reference signs in the claims should not be construed as limiting the claim to which they relate.
[0045] In addition, it should be understood that although this specification is described in terms of implementation methods, not every implementation method contains only one independent technical solution. This narrative method of the specification is only for the sake of clarity. Those skilled in the art should regard the specification as a whole. The technical solutions in each embodiment can also be appropriately combined to form other implementation methods that can be understood by those skilled in the art.
[0046] The technology, shape, and structure not described in detail in the present invention are all well-known technologies.
Claims
1. A laser triangulation method, characterized in that: First, a laser (1), an imaging lens (2), a board-level camera (3), and an object motion track are arranged; light emitted from the laser (1) is reflected by the object to be measured on the object motion track, and then forms an image on the board-level camera (3) through the imaging lens (2); the end of the board-level camera (3) close to the laser (1) is recorded as the inner end, and the end of the board-level camera (3) far from the laser (1) is recorded as the outer end; the straight line where the optical axis of the imaging lens (2) is located passes through the inner end; The object to be measured is made to move from the starting point to the end point along the object motion trajectory, and the laser (1) and the board-level camera (3) are started to track and image. The position of the object to be measured is calculated based on the position of the image point on the board-level camera (3). The calculation formula is as follows: Wherein, x' is the distance from the image point on the image point motion trajectory to the inner end of the board-level camera (3), x is the distance from the measured object to the starting point on the object motion trajectory; d0 is the distance from the intersection of the optical axis of the laser (1) and the optical axis of the imaging lens (2) on the optical axis of the imaging lens (2) to the lens principal point, d1 is the distance from the lens principal point to the inner end on the optical axis of the imaging lens (2); β is the angle between the optical axis of the laser (1) and the optical axis of the imaging lens (2), and μ is the angle between the optical axis of the imaging lens (2) and the photosensitive surface of the board-level camera (3).
2. The laser triangulation method according to claim 1, wherein: The object's motion trajectory is located on the optical axis of the laser (1).
3. The laser triangulation method according to claim 2, wherein: The starting point of the object's motion trajectory is the intersection of the optical axis of the imaging lens (2) and the optical axis of the laser (1).
4. The laser triangulation method according to claim 1, wherein: When the imaging lens (2) is a thin lens, the principal point of the lens is the coincidence point of the object side principal point and the image side principal point; when the imaging lens (2) is a thick lens, d0 is the distance from the intersection of the optical axis of the laser (1) and the optical axis of the imaging lens (2) on the optical axis of the imaging lens (2) to the object side principal point of the lens, d1 is the distance from the image side principal point of the lens on the optical axis of the imaging lens (2) to the inner end; β is the angle between the optical axis of the laser (1) and the optical axis of the imaging lens (2), and μ is the angle between the optical axis of the imaging lens (2) and the photosensitive surface of the board-level camera (3).
5. The laser triangulation method according to claim 1, wherein: The laser uses a point laser or a line laser.
6. A laser triangulation calibration device for the laser triangulation method according to any one of claims 1 to 5, characterized in that: include: A first linear displacement stage (4), a first rotating stage (9), a lens barrel (5), an optical fiber adapter (6), a second linear displacement stage (7) and a second rotating stage (8); the first linear displacement stage (4) is arranged on the first rotating stage (9), the first linear displacement stage (4) is used to place the board-level camera (3), and is used to drive the board-level camera (3) to move linearly; the first rotating stage (9) is used to adjust the placement angle of the board-level camera (3); the second linear displacement stage (7) is arranged on the second rotating stage (8), the lens barrel (5) is arranged on the second linear displacement stage (7) through a lens support frame (71), the imaging lens (2) is located in the lens barrel (5), and the optical axis of the imaging lens (2) coincides with the central axis of the lens barrel (5); the optical fiber adapter (6) is arranged on the side of the lens barrel (5) away from the first linear displacement stage (4), and the optical fiber adapter (6) is used to provide an optical fiber socket.
7. The laser triangulation calibration device according to claim 6, wherein: First, an optical fiber is connected through an optical fiber adapter (6) so that the optical fiber output light is emitted through the imaging lens (2); the relative angle between the imaging lens (2) and the board-level camera (3) is adjusted through the first rotating platform (9) and the second rotating platform (8) so that the output light of the imaging lens (2) forms a light spot on the board-level camera (3); and the relative position of the imaging lens (2) and the board-level camera (3) is adjusted through the relative movement of the first linear displacement platform (4) and the second linear displacement platform (7) so that the light spot is located at the inner end of the board-level camera (3) and is in a minimum state.
Citation Information
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