Laser assembly, industrial detection device, and industrial work system

By using a slip ring mover and a slip ring stator to achieve stable electrical conduction between the laser and the control motherboard, the problem of electrical conduction during laser rotation setting is solved, ensuring the continuity and efficiency of industrial testing.

CN224681511UActive Publication Date: 2026-08-25SHENZHEN SHENSHI INTELLIGENT TECH CO LTD
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Patent Information

Application Number
CN202522202143.7
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-10-17
Publication Date
2026-08-25
Estimated Expiration
2035-10-17

AI Technical Summary

Technical Problem

In industrial inspection, when the laser is rotatable relative to the base, the electrical conductivity between the laser and the power supply may be affected, causing the connecting wires to be pulled, twisted, or broken, thus affecting the progress and efficiency of the scanning operation.

Method used

By replacing the connecting cable with a slip ring mover and a slip ring stator, electrical connection between the laser and the control motherboard is achieved through the contact between the slip ring mover and the slip ring stator, ensuring a stable electrical connection during laser rotation.

Benefits of technology

Maintaining electrical continuity between the laser and the control motherboard prevents stretching and twisting of the connecting wires, ensuring normal laser operation and not affecting the overall progress and efficiency of industrial testing.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application discloses a laser assembly, an industrial detection device and an industrial operation system. The laser assembly is applied to the industrial detection device. The industrial detection device comprises a mounting platform and a control mainboard. The control mainboard is assembled on the mounting platform. The laser assembly comprises a mounting bracket, a laser, a slip ring rotor and a slip ring stator. The mounting bracket is rotationally connected to the mounting platform. The laser is fixedly assembled at a first position of the mounting bracket. The slip ring rotor is used for electrically connecting the laser. The slip ring rotor is fixedly assembled at a second position of the mounting bracket. The second position is spaced from the first position. The slip ring stator is fixedly assembled on the mounting platform. The slip ring stator comprises an output end and an input end. The output end is used for electrically connecting the control mainboard. The input end is used for abutting against the slip ring rotor, so that the slip ring stator and the laser are electrically connected. The laser assembly in the application can stably perform laser operation.
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Description

Technical Field

[0001] This application relates to the field of industrial operation technology, and more particularly to a laser component, an industrial detection device, and an industrial operation system. Background Technology

[0002] In industrial inspection scanning scenarios, especially for large or complex-shaped industrial parts, it is necessary to quickly and comprehensively acquire three-dimensional data of the scanned object from various angles in order to build a complete and accurate three-dimensional model and meet the needs of high-precision modeling and dimensional measurement. Therefore, the laser can be configured as needed to be rotatable relative to the base in order to expand the laser's scanning field of view, improve the laser's scanning efficiency, and ensure the completeness of the laser's scanning results for the scanned object.

[0003] However, when the laser is rotatable relative to the base, the electrical conductivity between the laser and the power supply may be affected. Once the laser is disconnected from the power supply, the normal operation of the laser will be interrupted, which will cause abnormalities in the laser scanning process in industrial inspection and affect the progress of the overall industrial inspection operation. Utility Model Content

[0004] In view of this, and in response to the aforementioned technical problems, this application provides a laser component, an industrial detection device, and an industrial operation system.

[0005] The first aspect of this application provides a laser assembly applied in an industrial detection device. The industrial detection device includes a mounting platform and a control mainboard. The control mainboard is mounted on the mounting platform. The laser assembly includes a mounting bracket, a laser, a slip ring mover, and a slip ring stator. The mounting bracket is rotatably connected to the mounting platform. The laser is fixedly mounted on the mounting bracket at a first position. The slip ring mover is electrically connected to the laser and is fixedly mounted on the mounting bracket at a second position, spaced from the first position. The slip ring stator is fixedly mounted on the mounting platform and includes an output end and an input end. The output end is electrically connected to the control mainboard, and the input end abuts against the slip ring mover to electrically connect the slip ring stator and the laser.

[0006] In this application, compared to the existing scheme where the laser and the control motherboard are connected by a connecting cable, in the above embodiment, the slip ring mover and slip ring stator together replace the connecting cable. The laser is electrically connected to the control motherboard through the abutting cooperation between the slip ring mover and the slip ring stator. Since the slip ring mover and the slip ring stator achieve electrical connection through abutting, compared to the scheme of setting a connecting cable, the slip ring mover will not be stretched or twisted when it rotates with the laser relative to the slip ring stator. The slip ring mover and the slip ring stator can maintain a stable electrical connection. In this way, the laser and the control motherboard can maintain electrical conductivity, so that the laser component can maintain a normal operating state and will not affect the progress and efficiency of the entire industrial operation system.

[0007] The second aspect of this application provides an industrial detection device, which includes an installation platform, a control motherboard, and the laser component described in the first aspect of this application. The control motherboard is mounted on the installation platform, the laser is rotatably connected to the installation platform, and the follower end of the connecting cable is electrically connected to the control motherboard.

[0008] The third aspect of this application provides an industrial operation system, which includes the industrial detection device described in the second aspect of this application.

[0009] Since the beneficial effects of the second and third aspects of the embodiments of this application are derived from the first aspect of the embodiments of this application, the main beneficial effects of the second aspect of the embodiments of this application can be specifically referred to the beneficial effects of the first aspect of the embodiments of this application, and will not be repeated here.

[0010] To make the above-mentioned objectives, features and advantages of this application more apparent and understandable, embodiments of this application are described below in detail with reference to the accompanying drawings. Attached Figure Description

[0011] To more clearly illustrate the technical solutions in the embodiments of this application or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this application. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0012] Figure 1 This is a schematic diagram of the composition of an industrial operation system according to this application; Figure 2 for Figure 1 A structural diagram of an industrial detection device; Figure 3 for Figure 2 Structural diagram of the laser component; Figure 4 for Figure 3 Exploded view; Figure 5 A connection diagram of the laser and its associated structures; Figure 6 for Figure 3 Structural diagram of the slip ring stator; Figure 7 A structural diagram of the slip ring stator and slip ring mover; Figure 8 for Figure 3 Diagram showing the connection between the main support structure and the support platform.

[0013] It should be noted that the accompanying drawings are not necessarily drawn to scale, but are shown only in a schematic manner without affecting the reader's understanding.

[0014] Reference numerals: 1000-Industrial operating system, 10-Industrial detection device, 11-Mounting platform, 12-Control motherboard, 13-Laser assembly, 14-Image acquisition assembly, 15-Housing, 150-Window, 16-Drive assembly, 160-Axial motor, 161-Drive bracket, 100-Mounting bracket, 200-Laser, 210-Laser body, 220-Connecting lead wire, 230-Crimping component, 300-Slip ring mover, 400-Slip ring stator, 410-Output end, 411-First output sub-end, 412-Second output sub-end, 420-Input end, 421-First input sub-end, 422-Second input sub-end, 430-Slip ring stator body, 440-First pin row group, 450-Second pin row group, 500-Support body, 510-Support platform. Detailed Implementation

[0015] To make the objectives, technical solutions, and advantages of the embodiments of this application clearer, the technical solutions of the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are merely some embodiments of this application, and not all embodiments. Based on the embodiments of this application, all other embodiments obtained by those skilled in the art without creative effort should fall within the scope of protection of this application.

[0016] Unless otherwise defined, the technical or scientific terms used herein shall have the ordinary meaning as understood by one of ordinary skill in the art to which this application pertains. The terms “an,” “a,” or “the,” as used herein, do not indicate a limitation of quantity, but are merely used to indicate the presence of at least one. Terms such as “comprising” or “including” mean that the element or object preceding the word encompasses the elements or objects listed following the word and their equivalents, without excluding other elements or objects. Terms such as “connected” or “linked” are not limited to physical or mechanical connections, but may include electrical connections, whether direct or indirect.

[0017] In this document, the term "embodiment" means that a particular feature, structure, or characteristic described in connection with an embodiment may be included in at least one embodiment of this application. The appearance of this phrase in various places throughout the specification does not necessarily refer to the same embodiment, nor is it a separate or alternative embodiment mutually exclusive with other embodiments. It will be explicitly and implicitly understood by those skilled in the art that the embodiments described herein can be combined with other embodiments.

[0018] In industrial inspection scanning scenarios, especially for large or complex-shaped industrial parts, it is necessary to quickly and comprehensively acquire three-dimensional data of the scanned object from various angles in order to build a complete and accurate three-dimensional model and meet the needs of high-precision modeling and dimensional measurement. Therefore, the laser can be configured as needed to be rotatable relative to the base in order to expand the laser's scanning field of view, improve the laser's scanning efficiency, and ensure the completeness of the laser's scanning results for the scanned object.

[0019] However, when the laser is rotatable relative to the base, the electrical conductivity between the laser and the power supply may be affected. The connecting wire between the laser and the power supply may be pulled (the wire length cannot meet the distance between the two ends of the connecting wire) or twisted (due to the change in the position of the connecting wire and the laser relative to the base, causing misalignment at both ends of the connecting wire and resulting in twisting deformation) due to the movement of the laser relative to the base, causing damage to the wire or causing the wire to detach from the laser or the power supply. Once the laser is disconnected from the power supply, the normal operation of the laser will be interrupted, resulting in abnormalities in the laser scanning process in industrial inspection and affecting the progress of the overall industrial inspection operation.

[0020] Therefore, in view of the above problems, this application provides a laser component, an industrial detection device, and an industrial operation system, wherein the laser component is applied to the industrial detection device, and the industrial operation system includes the industrial detection device.

[0021] To better understand the technical content of this solution, the appendix in the embodiments of this application will be discussed below. Figure 1 To be continued Figure 8The technical solutions in the embodiments of this application are clearly and completely described, wherein the directions appearing in each figure are mutually corresponding.

[0022] like Figure 1 This application provides an industrial operation system 1000, which includes an industrial detection device 10. The industrial detection device 10 includes a mounting platform 11, a control motherboard 12, and a laser component 13. The mounting platform 11 provides a position for mounting the laser component 13 and the control motherboard 12. The laser component 13 is used to scan the target and form three-dimensional data. The control motherboard 12 is used to preliminarily process the three-dimensional data formed by the laser component 13. In other words, the control motherboard 12 is mounted on the mounting platform 11, the laser 200 is rotatably connected to the mounting platform 11, and the output terminal 410 is electrically connected to the control motherboard 12.

[0023] It should also be noted that the control motherboard 12 in the industrial detection device 10 needs to be electrically connected to the terminal equipment in the industrial operation system 1000 so that the data initially processed by the control motherboard 12 can be transmitted to the terminal equipment for modeling. In the industrial operation system 1000, the industrial detection device 10 can be powered on and operated by a built-in power supply or an external power supply. After the industrial detection device 10 is powered on, the laser 200 in the laser assembly 13, the connecting cable, and the control motherboard 12 are all electrically connected to the terminal equipment.

[0024] In some embodiments, the industrial detection device 10 further includes an image acquisition component 14, which is mounted on the mounting platform 11 and electrically connected to the control motherboard 12. The image acquisition component 14 is used to collect image data of the target and transmit the image data to the control motherboard 12. The control motherboard 12 performs preliminary processing of the image data and then transmits the processed data to the terminal device for modeling.

[0025] like Figures 2 to 8 In some embodiments, the laser assembly 13 includes a mounting bracket 100, a laser 200, a slip ring mover 300, and a slip ring stator 400. The mounting bracket 100 is rotatably connected to the mounting platform 11, and the laser 200 is fixedly mounted in a first position on the mounting bracket 100. Thus, both the laser 200 and the mounting bracket 100 are rotatable relative to the mounting platform 11.

[0026] The slip ring mover 300 is used to electrically connect to the laser 200. The slip ring mover 300 is fixedly mounted on the mounting bracket 100 at a second position, which is spaced from the first position. Thus, the slip ring mover 300 can rotate with the mounting bracket 100. The first and second positions represent two different connection positions of the mounting bracket 100 in space. The first and second positions can appear on the same surface of the mounting bracket 100 or on two different surfaces. The interval between the first and second positions is only used to express the spacing between the two positions, and does not limit the first and second positions to being on the same surface of the mounting bracket 100.

[0027] The slip ring stator 400 is fixedly mounted on the mounting platform 11. The slip ring stator 400 includes an output end 410 and an input end 420. The output end 410 is used to electrically connect to the control motherboard 12, and the input end 420 is used to abut against the slip ring mover 300 so that the slip ring stator 400 and the laser 200 are electrically connected. In this way, the slip ring mover 300 and the slip ring stator 400 can jointly serve as a conductive medium between the laser 200 and the control motherboard 12, so that the laser 200 and the control motherboard 12 are electrically connected, so that the three-dimensional data formed by the laser 200 scanning is transmitted from the input end 420 to the output end 410 to the control motherboard 12.

[0028] In summary, the slip ring mover 300 can rotate with the mounting bracket 100 relative to the mounting platform 11, while the slip ring stator 400 remains stationary relative to the mounting platform 11. When the laser assembly 13 is operating, the laser 200, slip ring mover 300, slip ring stator 400, and control motherboard 12 are electrically connected. As the laser 200 rotates relative to the mounting platform 11, the mounting bracket 100 and slip ring mover 300 also rotate relative to the mounting platform 11. The slip ring mover 300 rotates relative to the slip ring stator 400. Since the input terminal 420 abuts against the slip ring mover 300, the slip ring mover 300 and slip ring stator 400 can maintain a continuous electrical connection during the rotation of the slip ring mover 300 relative to the slip ring stator 400, so that the laser 200 is electrically connected to the control motherboard 12.

[0029] Therefore, compared to the existing scheme where the laser 200 and the control motherboard 12 are connected by a connecting cable, in the above embodiment, the slip ring mover 300 and the slip ring stator 400 together replace the connecting cable. Through the abutting cooperation between the slip ring mover 300 and the slip ring stator 400, the laser 200 is electrically connected to the control motherboard 12. Since the slip ring mover 300 and the slip ring stator 400 are electrically connected through abutting, compared to the scheme of setting a connecting cable, when the slip ring mover 300 rotates with the laser 200 relative to the slip ring stator 400, the cable will not be stretched or twisted. The slip ring mover 300 and the slip ring stator 400 can maintain a stable electrical connection. In this way, the laser 200 and the control motherboard 12 can maintain electrical conductivity, so that the laser component 13 can maintain a normal operating state and will not affect the progress and efficiency of the entire chain operation of the industrial operation system 1000.

[0030] like Figures 3 to 5 In some embodiments, the slip ring mover 300 is a columnar connecting part. The slip ring mover 300 can be cylindrical, prismatic, etc. When the slip ring mover 300 is cylindrical, when the slip ring mover 300 rotates relative to the slip ring stator 400, the slip ring mover 300 and the slip ring stator 400 can rotate smoothly to maintain the electrical conduction state between the slip ring mover 300 and the slip ring stator 400.

[0031] In some embodiments, the mounting bracket 100 is a metal bracket, and the slip ring mover 300 is electrically connected to the mounting bracket 100. The laser 200 includes a laser body 210 and a connecting lead 220 connected to each other. The laser body 210 is used to scan the target to obtain three-dimensional data of the target. The connecting lead 220 is used to electrically connect to the slip ring mover 300, so that the laser body 210 is electrically connected to the control main board 12. The laser body 210 is fixedly mounted in a first position on the mounting bracket 100 so that it can rotate synchronously with the mounting bracket 100. One end of the connecting lead 220 is electrically connected to the mounting bracket 100, and the other end of the connecting lead 220 is electrically connected to the laser body 210, so that the laser body 210 is electrically connected to the mounting bracket 100, thereby further realizing the electrical connection of the laser body 210 to the control main board 12.

[0032] In the above embodiments, when the length of the connecting lead 220 is insufficient to directly connect the slip ring mover 300, the laser 200 can be electrically connected to the slip ring mover 300 through the mounting bracket 100. In other words, the mounting bracket 100 can meet the physical assembly connection requirements in the laser assembly 13, and its conductivity can also meet the electrical connection relationship between the laser 200 and the slip ring mover 300. In this way, the relative positional relationship between the laser 200 and the slip ring mover 300 is more flexible, increasing the flexibility of the installation position layout of the laser 200 and the slip ring mover 300 on the mounting bracket 100. The laser assembly 13 can optimize the space volume occupied by the laser assembly 13 by reasonably arranging the positions of the laser 200 and the slip ring mover 300, thereby optimizing the volume of the industrial detection device.

[0033] like Figures 3 to 5 In some embodiments, the laser assembly 13 further includes a crimping member 230, which is assembled to the mounting bracket 100. The crimping member 230 is used to fix the connecting lead 220 to the surface of the mounting bracket 100 so that the connecting lead 220 can be stably electrically connected to the mounting bracket 100, thereby forming a conductive path between the laser 200, the mounting bracket 100 and the slip ring mover 300.

[0034] In some embodiments, the crimping member 230 is a screw, which is used to fasten the connecting lead 220 to the surface of the mounting bracket 100 so that the connecting lead 220 can be stably electrically connected to the mounting bracket 100, thereby forming a conductive path between the laser 200, the mounting bracket 100, and the slip ring mover 300. Meanwhile, screws are readily available, and the screw fastening process is simple and mature, which can reduce the production and processing costs of the laser assembly 13 to some extent.

[0035] Please refer to the main reference. Figure 6 and Figure 7 In some embodiments, the slip ring stator 400 includes a slip ring stator body 430, a first row of needles 440, and a second row of needles 450. The slip ring stator body 430 is used for fixed assembly on the mounting platform 11.

[0036] The input terminal 420 includes a first input sub-terminal 421 and a second input sub-terminal 422, and the output terminal 410 includes a first output sub-terminal 411 and a second output sub-terminal 412. The first input sub-terminal 421 and the first output sub-terminal 411 are respectively formed at opposite ends of the first needle row group 440, and the second input sub-terminal 422 and the second output sub-terminal 412 are respectively formed at opposite ends of the second needle row group 450. The first input sub-terminal 421 and the second input sub-terminal 422 are used to abut against the slip ring mover 300, and the first input sub-terminal 421 and the second input sub-terminal 422 abut against opposite sides of the outer periphery of the slip ring mover 300. The first output sub-terminal 411 and the second output sub-terminal 412 are connected to the slip ring stator body 430, and the first output sub-terminal 411 is spaced apart from the second output sub-terminal 412.

[0037] The slip ring stator 400 is provided with a first row of needles 440 and a second row of needles 450, which can increase the connectable area between the slip ring stator 400 and the slip ring mover 300 to a certain extent, thereby improving the connection stability between the slip ring stator 400 and the slip ring mover 300, so that the laser assembly 13 can maintain normal operation when the industrial detection device 10 is in operation.

[0038] like Figure 6 and Figure 7 In some embodiments, the first row of pins 440 is inclined to the connecting surface of the slip ring stator body 430 on the side where the second row of pins 450 is located, and the second row of pins 450 is inclined to the connecting surface of the slip ring stator body 430 on the side where the first row of pins 440 is located, so that the first row of pins 440 and the second row of pins 450 are inclined to each other on the connecting surface of the slip ring stator body 430. In this way, the first row of pins 440 and the second row of pins 450 can be clamped on opposite sides of the slip ring mover 300, thereby improving the connection stability between the slip ring stator 400 and the slip ring mover 300, so that the laser assembly 13 can maintain normal operation when the industrial detection device 10 is in operation.

[0039] In some embodiments, at least one first row of pins in the first pin group 440 is a resilient pin group, and / or at least one second row of pins in the second pin group 450 is a resilient pin group, to improve the connection stability between the slip ring stator 400 and the slip ring mover 300, so that the laser assembly 13 can maintain normal operation when the industrial detection device 10 is in operation.

[0040] In some embodiments, the slip ring stator 400 is a conductive clamp. When the first input terminal 421 abuts against the opposite sides of the slip ring mover 300, the elastic deformation of the first pin group 440 is greater than 0, and / or, when the second input terminal 422 abuts against the opposite sides of the slip ring mover 300, the elastic deformation of the second pin group 450 is greater than 0. Thus, the first pin group 440 and / or the second pin group 450 can undergo elastic deformation when abutting against the slip ring mover 300, thereby improving the connection stability between the slip ring stator 400 and the slip ring mover 300, so that the laser assembly 13 can maintain normal operation when the industrial detection device 10 is in operation.

[0041] In some embodiments, at least one first row of pins in the first pin group 440 includes a first input connection segment and a first output connection segment connected by bending, with the first input sub-end 421 located at the end of the first input connection segment away from the first output connection segment, and the first output sub-end 411 located at the end of the first output connection segment away from the first input connection segment. And / or, at least one second row of pins in the second pin group 450 includes a second input connection segment and a second output connection segment connected by bending, with the second input sub-end 422 located at the end of the second input connection segment away from the second output connection segment, and the second output sub-end 412 located at the end of the second output connection segment away from the second input connection segment. Thus, when the slip ring stator 400 is electrically connected to the slip ring mover 300, the first input connection segment and the second input connection segment can hold the dynamic connector, reducing the risk of the dynamic connector disengaging from the first input connection segment and the second input connection segment due to vibration or other reasons during the operation of the laser assembly 13. This improves the connection stability between the slip ring stator 400 and the slip ring mover 300, enabling the laser assembly 13 to maintain normal operation during the operation of the industrial detection device 10.

[0042] In some embodiments, the first pin group 440 includes a plurality of first pins, each first pin including a first input sub-terminal 421 and a first output sub-terminal 411. The plurality of first pins are arranged in parallel, and the first input sub-terminal 421 of any first pin abuts against the slip ring mover 300. In the natural state of the slip ring stator 400, on the surface of the slip ring stator body 430, along the distribution direction of the plurality of first pins, the projected length of each first pin on the surface of the slip ring stator body 430 gradually increases or decreases. The second row of pins 450 includes multiple second rows of pins, each second row of pins including a second input sub-terminal 422 and a second output sub-terminal 412. The multiple second rows of pins are arranged in parallel, and the second input sub-terminal 422 of any second row of pins abuts against the slip ring mover 300. In the natural state of the slip ring stator 400, on the surface of the slip ring stator body 430, along the direction in which the multiple second rows of pins are distributed, the projection length of each second row of pin on the surface of the slip ring stator body 430 gradually increases or decreases.

[0043] In this way, it can be ensured that the first input terminal 421 and / or the second input terminal 422 abut against the movable connecting part, so that an electrical connection path is formed between the movable connecting part and the slip ring stator 400. In addition, when the slip ring stator 400 is in use, the needles at different positions in the same needle row group form different abutment forces with the movable connecting part. Compared with the embodiment in which the abutment force between the needle row group and the movable connecting part is the same, this setting can reduce the possibility of all needles becoming loose and the connection between the movable connecting part becoming loose due to the aging and loosening of the needle row group in the later stage, and maintain the connection stability between the slip ring mover 300 and the slip ring stator 400.

[0044] Main parameters Figure 8 In some embodiments, the laser assembly 13 further includes a connected support body 500 and a support platform 510, with the support body 500 fixedly mounted on the mounting platform 11 (e.g., ...). Figure 2 The support platform 510 is located on the side of the support body 500 away from the mounting platform 11. The slip ring stator 400 is fixedly assembled to the support platform 510 so that the slip ring stator 400 is spaced apart from the surface of the mounting platform 11. The slip ring mover 300 is spaced apart from the surface of the mounting platform 11, and the slip ring mover 300 and the slip ring stator 400 are located on the same side of the surface of the mounting platform 11. In this way, the height of the slip ring stator 400 relative to the surface of the mounting platform 11 and the height of the slip ring mover 300 relative to the surface of the mounting platform 11 can be adapted to each other, reducing the positional interference when the slip ring stator 400 and the slip ring mover 300 are in contact.

[0045] like Figure 3 and Figure 4 In some embodiments, the industrial detection device 10 further includes a drive assembly 16, which is mounted on the mounting platform 11 and drives the laser 200 and the mounting bracket 100 to rotate relative to the mounting platform 11.

[0046] The drive assembly 16 can directly drive the laser 200, or indirectly drive the laser 200 through the drive connection mounting bracket 100.

[0047] In some embodiments, the drive assembly 16 includes an axial motor 160 to drive the laser 200 to rotate axially relative to the mounting platform 11. The rotation axis of the movable connection and the rotation axis of the laser 200 are collinear, so that the movable connection can drive the laser 200 to rotate along the drive axis of the axial motor 160.

[0048] like Figure 3 and Figure 4In some embodiments, the drive assembly 16 further includes a drive bracket 161, which is fixedly mounted on the mounting platform 11. The drive part of the drive assembly 16 (such as the drive shaft of the axial motor 160) protrudes outside the drive bracket 161 to drive the connected mounting bracket 100.

[0049] like Figure 1 and Figure 2 In some embodiments, the industrial detection device 10 further includes a housing 15, within which the control motherboard 12, image acquisition component 14, and laser component 13 are located. The mounting platform 11 is at least partially exposed inside the housing 15. The housing 15 has at least one window 150 through which the image acquisition component 14 and laser component 13 acquire image data and 3D data of the target outside the housing 15 for processing by the control motherboard 12. The housing 15 protects the control motherboard 12, image acquisition component 14, and laser component 13, reducing contamination from external objects and impacts, thus improving the operational efficiency of the industrial detection device 10.

[0050] It should be noted that the descriptions of each embodiment in the above embodiments have different emphases. Parts not described in detail in a certain embodiment can be referred to in the relevant descriptions of other embodiments. Furthermore, those skilled in the art should also understand that the embodiments described in the specification are all preferred embodiments, and the actions and modules involved are not necessarily essential to this application.

[0051] The above embodiments are only used to illustrate the technical solutions of this application, and are not intended to limit them. Although this application has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that modifications can still be made to the technical solutions described in the foregoing embodiments, or equivalent substitutions can be made to some of the technical features. Such modifications or substitutions do not cause the essence of the corresponding technical solutions to deviate from the scope of the technical solutions of the embodiments of this application.

Claims

1. A laser component for use in an industrial detection device, the industrial detection device comprising a mounting platform and a control motherboard, the control motherboard being mounted on the mounting platform, characterized in that, include: Mounting bracket, which is rotatably connected to the mounting platform; A laser, which is fixedly mounted on the mounting bracket at a first position; A slip ring actuator, the slip ring actuator being electrically connected to the laser, the slip ring actuator being fixedly mounted on a second position of the mounting bracket, the second position being spaced apart from the first position; as well as A slip ring stator is fixedly mounted on the mounting platform. The slip ring stator includes an output end and an input end. The output end is used to electrically connect to the control motherboard, and the input end is used to abut against the slip ring mover to make the slip ring stator electrically connected to the laser.

2. The laser assembly as described in claim 1, characterized in that, The mounting bracket is a metal bracket, and the slip ring mover is electrically connected to the mounting bracket; The laser includes a laser body and a connecting lead connected to each other. The laser body is fixedly mounted on the first position of the mounting bracket. One end of the connecting lead is electrically connected to the mounting bracket, and the other end of the connecting lead is electrically connected to the laser body.

3. The laser assembly as described in claim 2, characterized in that, The laser assembly also includes a crimping member, which is assembled to the mounting bracket and is used to fix the connecting lead to the surface of the mounting bracket.

4. The laser assembly as described in claim 3, characterized in that, The crimping component is a screw, which is used to secure the connecting lead to the surface of the mounting bracket.

5. The laser assembly as described in claim 1, characterized in that, The slip ring stator includes a slip ring stator body, a first row of needles and a second row of needles, and the slip ring stator body is used for fixed assembly on the mounting platform; The input terminal includes a first input sub-terminal and a second input sub-terminal, and the output terminal includes a first output sub-terminal and a second output sub-terminal. The first input sub-terminal and the first output sub-terminal are respectively formed at opposite ends of the first needle row group, and the second input sub-terminal and the second output sub-terminal are respectively formed at opposite ends of the second needle row group. The first input sub-terminal and the second input sub-terminal are used to abut against the slip ring mover, and the first input sub-terminal and the second input sub-terminal are respectively abut against opposite sides of the outer periphery of the slip ring mover. The first output sub-terminal and the second output sub-terminal are connected to the slip ring stator body, and the first output sub-terminal is spaced apart from the second output sub-terminal.

6. The laser assembly as described in claim 5, characterized in that, The first pin row is inclined to the side where the second pin row is located and connected to the connecting surface of the slip ring stator body, and the second pin row is inclined to the side where the first pin row is located and connected to the connecting surface of the slip ring stator body.

7. The laser assembly as described in any one of claims 1 to 6, characterized in that, The laser assembly also includes a support body and a support platform connected to each other. The support body is fixedly mounted on the surface of the mounting platform, and the support platform is located on the side of the support body away from the mounting platform. The slip ring stator is fixedly mounted on the support platform so that the slip ring stator is spaced apart from the surface of the mounting platform. The slip ring mover is spaced apart from the surface of the mounting platform, and the slip ring mover and the slip ring stator are located on the same side of the surface of the mounting platform.

8. An industrial detection device, characterized in that, The system includes a mounting platform, a control motherboard, and a laser assembly as described in any one of claims 1-7, wherein the control motherboard is mounted on the mounting platform, the laser is rotatably connected to the mounting platform, and the output terminal is electrically connected to the control motherboard.

9. The industrial detection device as described in claim 8, characterized in that, The industrial detection device also includes an image acquisition component, which is mounted on the installation platform and electrically connected to the control motherboard.

10. An industrial operation system, characterized in that, Including the industrial detection device as described in claim 8 or 9.