Laser assembly, industrial detection device, and industrial work system

By using a bent connection section in the connection cable between the laser and the power supply, the problem of unstable electrical conduction when the laser rotates is solved, achieving stability of electrical conduction and durability of the connection cable, thus improving the efficiency of industrial inspection.

CN224552330UActive Publication Date: 2026-07-24SHENZHEN SHENSHI INTELLIGENT TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
SHENZHEN SHENSHI INTELLIGENT TECH CO LTD
Filing Date
2025-10-17
Publication Date
2026-07-24

AI Technical Summary

Technical Problem

In industrial testing, 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, which affects the normal operation of the scanning process and the overall progress.

Method used

The cable design includes a fixed end, a bent connecting section, and a follower end. The follower end rotates with the laser, causing the bending position of the bent connecting section to change, maintaining the cable in a bent or naturally extended state, reducing deformation damage, and ensuring electrical conductivity stability.

Benefits of technology

This effectively maintains the electrical conductivity stability between the laser and the control motherboard, extends the service life of the connection cable, and improves the operational stability and scanning efficiency of the laser assembly.

✦ 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, wherein the industrial operation system comprises the industrial detection device, 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 fixedly assembled to the mounting platform, the laser assembly comprises a laser, a connecting flat cable and a rotating support, the laser is used for rotating connection with the mounting platform, the connecting flat cable comprises a fixed end, a bending connection section and a following end which are sequentially connected, the following end is electrically connected with the laser, the fixed end of the connecting flat cable is used for electrically connecting with the control mainboard, the rotating support comprises a support main body, the support main body is rotationally connected with the mounting platform, the support main body is connected with the laser so as to rotate with the laser, and the following end rotates with the laser compared with the fixed end so as to drive the bending position of the bending connection section to change. 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 to an industrial detection device. The industrial detection device includes a mounting platform and a control motherboard. The control motherboard is fixedly mounted on the mounting platform. The laser assembly includes a laser, a connecting cable, and a rotating support. The laser is rotatably connected to the mounting platform. The connecting cable includes a fixed end, a bent connecting section, and a follower end connected in sequence. The follower end is electrically connected to the laser. The fixed end of the connecting cable is electrically connected to the control motherboard. The rotating support includes a support body, which is rotatably connected to the mounting platform. The support body is connected to the laser so that it rotates with the laser. The follower end rotates with the laser relative to the fixed end, thereby causing the bending position of the bent connecting section to change.

[0006] In this application, because the connecting cable has a bent connecting section, and the length of the bent connecting section is fixed, when the laser rotates relative to the mounting platform with the rotating support, the lengths of the two opposing cable segments due to bending deformation will be adaptively adjusted according to the change of the bending position. In this way, each part of the cable in the bent connecting section can maintain a bent state (the cable at the bending position) or a naturally extended state (the cable outside the bending position) during the rotation of the laser, rather than being twisted or taut. Therefore, the degree of damage to the bent connecting section due to deformation can be effectively reduced, effectively maintaining the service life of the connecting cable. Moreover, the fixed end and the follower end will not be pulled loose from the connection position due to the tension of the cable. That is, the fixed end can be stably connected to the mounting platform, and the follower end can be stably connected to the laser. This effectively maintains the stability of the electrical conduction between the laser, the connecting cable, and the control motherboard, thereby maintaining the operational stability of the laser assembly.

[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 and related structures in the middle; Figure 4 for Figure 3 Exploded view; Figure 5 for Figure 2 The structural diagram excluding the connecting cables; Figure 6 for Figure 2 Structural diagram of the rotating support; Figure 7 for Figure 2 Assembly drawing of the rotating support and connecting cable; Figure 8 for Figure 2 Structural diagram of the middle limiting shell; Figure 9 for Figure 2 Assembly drawing of the middle limiting shell and connecting cable.

[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, 100-Industrial detection device, 101-Mounting platform, 102-Control motherboard, 103-Laser assembly, 104-Image acquisition assembly, 105-Housing, 1050-Window, 106-Drive assembly, 1060-Axial motor, 1061-Drive bracket, 10-Laser, 11-Laser bracket, 20-Connecting cable, 21-Fixed end, 22-Bent connection 220-First main body segment, 2201-Strip connecting sub-segment, 2202-Sheet connecting sub-segment, 221-Second main body segment, 23-Follower end, 30-Rotating support, 31-Support body, 32-Constraint baffle, 33-Protrusion, 34-Support edge, 35-Constraint channel, 36-Positioning notch, 40-Limiting shell, 41-Limiting baffle, 42-Limiting connection part, 43-Positioning rib, P-Bending position. 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 9The 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 As shown, the industrial operation system 1000 in this application includes an industrial detection device 100. Please refer to [link / reference needed]. Figures 2 to 9 The industrial detection device 100 includes a mounting platform 101, a control motherboard 102, and a laser assembly 103. The mounting platform 101 provides an assembly surface so that the industrial detection device 100 has a position surface for assembling the working structure. The control motherboard 102 processes the scanning data of the laser assembly 103. The control motherboard 102 is fixedly mounted to the mounting platform 101, and the laser assembly 103 is electrically connected to the control motherboard 102 to achieve electrical conductivity. The laser assembly 103 is used to scan the target object to obtain three-dimensional data of the target object for subsequent modeling by terminal equipment (such as a computer).

[0023] To address the aforementioned technical problems, the industrial detection device 100 of this application improves the laser assembly 103. Specifically, the laser assembly 103 includes a laser 10, a connecting cable 20, and a rotating support 30. The laser 10 is rotatably connected to the mounting platform 101, allowing it to rotate relative to the mounting platform 101. The connecting cable 20 includes a fixed end 21, a bent connecting section 22, and a follower end 23 connected in sequence. The follower end 23 is fixed and electrically connected to the laser 10 and can rotate with the laser 10. The fixed end 21 of the connecting cable 20 is fixed and electrically connected to the control motherboard 102, so that the laser 10 is electrically connected to the control motherboard 102. Thus, the connecting cable 20 serves as the electrical conduction medium between the laser 10 and the control motherboard 102, enabling electrical conduction between the laser 10 and the control motherboard 102 during operation of the industrial detection device 100, thereby meeting the need for the laser 10 to transmit data to the control motherboard 102.

[0024] like Figure 6 The rotating support 30 includes a support body 31 and a constraint baffle 32. The support body 31 is rotatably connected to the mounting platform 101 and is connected to the laser 10 so that it rotates with the laser 10. The support body 31 is used to assemble the laser 10 so that the laser 10 can be spaced apart from the surface of the mounting platform 101, thereby reducing mutual wear when the laser 10 and the surface of the mounting platform 101 rotate relative to each other. The follower end 23 rotates with the laser 10 relative to the fixed end 21, thereby causing the bending position P of the bent connecting section 22 to change.

[0025] It should be noted that, as Figure 7 and Figure 9As shown, the bending position P mentioned above refers to the position where the bending connection section 22 undergoes bending deformation. When the laser assembly 103 is operating, since the fixed end 21 is fixed to the mounting platform 101 through the control motherboard 102 and the follower end 23 is fixed to the laser 10, the length of the bending connection section 22 located between the follower end 23 and the fixed end 21 is fixed. When the laser 10 rotates relative to the control platform, the follower end 23 will move accordingly relative to the control platform as the laser 10 rotates. Under the combined constraints of the bending connection section 22's own length and deformation capacity, the bending position P is adaptively adjusted and changed.

[0026] The length of the bent connecting section 22 is set according to the rotation path of the laser 10 relative to the mounting platform 101. In order to produce the bending effect, the actual length of the wire must be greater than the diameter of the moving path of the laser 10 relative to the mounting platform 101. Based on this, in this embodiment, each part of the connecting cable 20 can always be in a bent or naturally extended state. The wire of the connecting cable 20 will not be damaged or broken due to excessive tension or twisting. The follower end 23 and the fixed end 21 will not loosen from their connection target due to the tension of the wire, so that the laser 10 and the control motherboard 102 always maintain electrical conductivity.

[0027] In this embodiment, since the connecting cable 20 has a bent connecting section 22, and the length of the bent connecting section 22 is constant, when the laser 10 rotates relative to the mounting platform 101 with the rotating support 30, the lengths of the two opposing cable segments due to bending deformation will be adaptively adjusted according to the change in the bending position P. In this way, each part of the cable in the bent connecting section 22 can maintain a bent state (the cable at the bending position P) or a naturally extended state (the cable other than the bending position P) during the rotation of the laser 10. Instead of being twisted or taut, the degree of damage to the bent connection section 22 due to deformation can be effectively reduced, effectively maintaining the service life of the connection cable 20. Furthermore, the fixed end 21 and the follower end 23 will not be pulled loose from the connection position due to the tension of the cable. That is, the fixed end 21 can be stably connected to the installation platform 101, and the follower end 23 can be stably connected to the laser 10, effectively maintaining the stability of the electrical conduction between the laser 10, the connection cable 20, and the control motherboard 102, thereby maintaining the operational stability of the laser assembly 103.

[0028] For reference Figure 2 , Figure 6 and Figure 7In some embodiments, the support body 31 further includes a constraint baffle 32, which is bent and connected to the outer periphery of the support body 31. The constraint baffle 32 is used to constrain the bent connecting segment 22. The constraint baffle 32 is bent and connected to the support body 31 in that the plate extension direction of the constraint baffle 32 intersects with the body extension direction of the support body 31.

[0029] The bent connecting section 22 also includes a first main body section 220 and a second main body section 221. The first main body section 220 and the second main body section 221 are bent and connected at the bending position P. The first main body section 220 and the second main body section 221 are arranged at a distance from each other to reduce the friction between them. The first main body section 220 is positioned close to the constraint baffle 32 relative to the second main body section 221. During the change of the bending position P, the constraint baffle 32 can constrain the position of the first main body section 220 to limit its space and prevent it from entering the rotation space of the laser 10 and interfering with its rotation.

[0030] It is important to understand that the first main body segment 220 and the second main body segment 221 are not two lines defined on the bent connecting segment 22. The target line of the first main body segment 220 and the second main body segment 221 will change accordingly with the change of the bending position P. In other words, the first main body segment 220 and the second main body segment 221 are lines defined according to the distance between the lines of different areas on the connecting cable 20 and the constraint baffle 32. When the laser assembly 103 is working, the line of the connecting cable 20 that is relatively closer to the constraint baffle 32 is defined as the first main body segment 220, and the line of the connecting cable 20 that is relatively farther away from the constraint baffle 32 is defined as the second main body segment 221. The bending position P of the bent connecting segment 22 is located at the bending connection of the first main body segment 220 and the second main body segment 221.

[0031] It should also be noted that the first main body segment 220 and the second main body segment 221 can be spaced apart because the material of the connecting cable 20 itself has elastic deformation characteristics. When the connecting cable 20 is under stress, the stressed area of ​​the connecting cable 20 will bend and deform evenly instead of breaking suddenly. Combined with the fact that the cross-section of the connecting cable 20 can evenly distribute stress when the cable bends, avoiding stress concentration, this causes the stressed area of ​​the connecting cable 20 to form an arc. Under the action of the arc portion of the cable, the first main body segment 220 and the second main body segment 221 can be spaced apart when they are facing each other. In some embodiments, the bent connecting segment 22 uses elastic sheathing and / or built-in elastic metal wire.

[0032] You can continue to refer to this. Figure 4 , Figures 6 to 7In some embodiments, the rotating support 30 further includes at least one protrusion 33, which protrudes from the surface of the constraint baffle 32 away from the support body 31. The protrusion 33 is used to abut against the first main body segment 220 so that the first main body segment 220 is located between the protrusion 33 and the support body 31. In this way, the protrusion 33 can further constrain the position of the first main body segment 220 so that there will be no excessive misalignment and relative twisting between the first main body segment 220 and the second main body segment 221.

[0033] In this embodiment, the constraint baffle 32 and the protrusion 33 jointly constrain the first main body segment 220. Based on the support constraint in different directions of the first main body segment 220, the first main body segment 220 can move along the constraint path formed by the constraint baffle 32 and the protrusion 33. Thus, when the bent connecting segment 22 changes due to the bending position P, the first main body segment 220 can maintain its relative state with the second main body segment 221 due to the restriction of its movement path. It will not cause the bent connecting segment 22 to twist due to spatial misalignment with the second main body segment 221, or the first main body segment 220 to become entangled with the second main body segment 221. This maintains the service life of the connecting cable 20 and reduces the frequency of malfunctions of the laser component 103.

[0034] like Figure 4 , Figure 6 and Figure 7 As shown, in some embodiments, the rotating support 30 includes a plurality of protrusions 33, which are spaced apart on the surface of the constraint baffle 32 along the rotation direction of the laser 10. Thus, the plurality of protrusions 33 can jointly constrain the movement path of the first main body segment 220, and the plurality of protrusions 33 can increase the contact area that forms the constraint path together with the constraint baffle 32, thereby increasing the contact area when the rotating support 30 contacts the first main body segment 220, thereby further constraining the movement path direction of the first main body segment 220.

[0035] In other embodiments, multiple bumps 33 are integrally connected.

[0036] For reference Figure 4 , Figure 6 and Figure 7 In some embodiments, the rotating support 30 further includes a support edge 34 spaced apart from the protrusion 33, the support edge 34 being connected to the outer periphery of the support body 31 and extending along the extending direction of the support body 31. A constraint baffle 32 is located at the connection between the support body 31 and the support edge 34, so that the constraint baffle 32, the support edge 34, and the protrusion 33 together constrain to form a constraint channel 35, the constraint channel 35 being used to accommodate at least a portion of the first body segment 220.

[0037] Among them, the support edge 34 further constrains the movement path of the first main body segment 220. The setting of the support edge 34 increases the constraint area of ​​the constraint channel 35, increases the contact area between the first main body segment 220 and the rotating support 30, and improves the constraint effect of the rotating support 30 on the first main body segment 220. This allows the first main body segment 220 to move along the channel direction of the constraint channel 35, thereby reducing the occurrence of twisting and entanglement between the first main body segment 220 and the second main body segment 221, and maintaining the service life of the connecting cable 20.

[0038] For reference Figure 4 , Figure 7 and Figure 9 In some embodiments, the first main body segment 220 includes a connected cable connecting segment 2201 and a sheet connecting segment 2202. In the flat state of the connecting cable 20, the follower end 23, the cable connecting segment 2201, the sheet connecting segment 2202 and the second main body segment 221 are connected sequentially. The cable connecting segment 2201 has greater deformation flexibility than the sheet connecting segment 2202, and the sheet connecting segment 2202 has greater spatial adaptability than the cable connecting segment 2201. Therefore, the cable connecting segment 2201 can connect the laser 10 and the sheet connecting segment 2202 through deformation. The sheet connecting segment 2202 can be located within the constraint channel 35 to reduce the size of the constraint channel 35, thereby reducing the space occupied by the laser component 103 in the industrial detection device 100.

[0039] For reference Figure 4 , Figure 7 and Figure 9 In some embodiments, the rotating support 30 further includes a positioning notch 36, which is located on the edge 34 of the support and extends from the edge of the edge 34 of the support towards the side where the support body 31 is located. A portion of the first body segment 220 is located in the positioning notch 36 so that the follower end 23 can be stably connected to the laser 10, and the connecting cable 20 can be stably connected to the laser 10, thereby maintaining the electrical conduction state between the laser 10 and the control motherboard 102.

[0040] In other embodiments, the plate body of the constraint baffle 32 is provided with a positioning groove, or the constraint baffle 32 is provided with a positioning notch 36 extending from the edge of the support edge 34 toward the side near the support body 31 on the side away from the support body 31, for positioning the first main body segment 220.

[0041] For reference Figure 4 , Figure 8 and Figure 9In some embodiments, the laser assembly 103 further includes a limiting shell 40, which is fixed to the mounting platform 101 and spaced apart from the constraint baffle 32, so that the limiting shell 40 and the constraint baffle 32 together constrain and form a limiting channel. The limiting channel is used to accommodate the first main body segment 220 and the second main body segment 221. The limiting shell 40 can constrain the second main body segment 221 to reduce the degree of freedom of deformation of the second main body segment 221, and can also guide the second main body segment 221 to move along the inner wall of the limiting shell 40, so that the bent connecting segment 22 can adapt to the positional changes of the laser 10 more quickly when the laser 10 moves. The first main body segment 220 and the second main body segment 221 will also move adaptively during the adaptive changes of the bent connecting segment 22, reducing the occurrence of entanglement and twisting between them.

[0042] You can continue to refer to this. Figure 4 , Figure 8 and Figure 9 In some embodiments, the limiting shell 40 includes a limiting baffle 41, a limiting connecting portion 42, and a positioning rib 43. The limiting baffle 41 is spaced apart from the constraint baffle 32, and the limiting channel is located between the limiting baffle 41 and the constraint baffle 32. The limiting connecting portion 42 is used to connect the mounting platform 101. The positioning rib 43 protrudes from the surface of the limiting baffle 41 facing the constraint baffle 32. The end of the positioning rib 43 away from the limiting connecting portion 42 is used to support the second main body segment 221.

[0043] In the above embodiment, the limiting baffle 41 is used to constrain the linear surface of the second main body segment 221, and the positioning rib 43 can support the side of the second main body segment 221 to jointly constrain the movement path of the second main body segment 221 when it moves with the bending connecting segment 22, maintain the relative position state of the second main body segment 221 and the first main body segment 220 when they move relative to each other, so that the first main body segment 220 and the second main body segment 221 are kept apart, and the first main body segment 220 and the second main body segment 221 are prevented from entangled and causing the connecting bending segment to twist.

[0044] Combined with references Figure 1 In some embodiments, the industrial detection device 100 further includes an image acquisition component 104, which is mounted on the mounting platform 101 and electrically connected to the control motherboard 102. The image acquisition component 104 is used to acquire image data required for scanning and transmit the image data to the control motherboard 102. The control motherboard 102 performs preliminary processing on the collected image data and laser scanning data and then transmits the preliminarily processed data to the terminal device to generate complete data that can be used for analysis, modeling or quality inspection.

[0045] Please return and refer to the reference. Figure 2In some embodiments, the industrial detection device 100 further includes a housing 105. The control motherboard 102, image acquisition component 104, and laser component 103 are located within the housing 105. The mounting platform 101 is at least partially exposed inside the housing 105. The housing 105 has at least one window 1050 through which the image acquisition component 104 and laser component 103 acquire image data and three-dimensional data of the target outside the housing 105 for processing by the control motherboard 102. The housing 105 protects the control motherboard 102, image acquisition component 104, and laser component 103, reducing contamination from external objects and impacts, thus improving the operational efficiency of the industrial detection device 100.

[0046] For reference Figure 3 and Figure 4 In some embodiments, the industrial detection device 100 further includes a drive assembly 106, which is mounted on the mounting platform 101 and drives the laser 10 and the rotating support 30 to rotate relative to the mounting platform 101.

[0047] The drive assembly 106 can directly drive the laser 10, or indirectly drive the laser 10 through the drive assembly 30.

[0048] In some embodiments, the drive assembly 106 includes an axial motor 1060 to drive the laser 10 to rotate axially relative to the mounting bracket. In this way, the bent connecting section 22 can exhibit a smoother track-like movement effect, reducing the probability of the first main body section 220 and the second main body section 221 coming into contact and extending the service life of the connecting cable 20.

[0049] In some embodiments, the drive assembly 106 further includes a drive bracket 1061, which is fixedly mounted on the mounting platform 101. The drive portion of the drive assembly 106 (such as the drive shaft of the axial motor 1060) protrudes from the drive bracket 1061 to drive the connection mounting support.

[0050] In some embodiments, the industrial detection device 100 further includes a laser bracket 11, the laser 10 is fixedly mounted on the laser bracket 11, the laser bracket 11 is driven by the drive unit of the drive assembly 106 (such as the drive shaft of the axial motor 1060), and the laser bracket 11 is fixedly connected to the rotating support 30. The laser bracket 11 can support the laser 10 away from the mounting platform 101, and an indirect connection is achieved between the laser bracket 11 and the rotating support.

[0051] This application also provides an industrial operation system 1000, which includes the aforementioned industrial detection device 100.

[0052] In some embodiments, the industrial operation system 1000 includes an industrial detection device 100 and a terminal device (such as a computer). The terminal device is electrically connected to a control motherboard 102. After the control motherboard 102 initially processes the data transmitted by the image acquisition component 104 and the laser component 103, it transmits the processed data to the terminal device for use by the terminal device.

[0053] It should be noted that in the industrial operation system 1000, the industrial detection device 100 can be powered on and operated by a built-in power supply or an external power supply. After the industrial detection device 100 is powered on, the laser 10, the connecting cable 20 and the control motherboard 102 in the laser assembly 103 are all electrically connected to the terminal equipment.

[0054] 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.

[0055] 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 fixedly mounted on the mounting platform, characterized in that, include: A laser, the laser being used for rotatably connecting to the mounting platform; The connecting cable includes a fixed end, a bent connecting section, and a follower end connected in sequence. The follower end is fixed and electrically connected to the laser. The fixed end of the connecting cable is used to fix and electrically connect to the control motherboard. The follower end rotates with the laser relative to the fixed end to drive the bending position of the bent connecting section to change. as well as A rotating support, comprising a support body, is rotatably connected to the mounting platform and to the laser, so as to rotate with the laser.

2. The laser assembly as described in claim 1, characterized in that, The support body also includes a constraint baffle, which is bent and connected to the outer periphery of the support body; The bent connecting section further includes a first main body section and a second main body section, which are bent and connected at the bending position. The first main body section and the second main body section are arranged at intervals relative to each other, and the first main body section is arranged closer to the constraint baffle relative to the second main body section. The rotating support also includes at least one protrusion, which protrudes from the surface of the constraint baffle away from the support body. The protrusion is used to abut against the first body segment so that the first body segment is located between the protrusion and the support body.

3. The laser assembly as described in claim 2, characterized in that, The rotating support includes multiple protrusions, which are spaced apart on the surface of the constraint baffle along the rotation direction of the laser.

4. The laser assembly as described in claim 2, characterized in that, The rotating support also includes a support edge spaced apart from the protrusion, the support edge being connected to the outer periphery of the support body and extending along the extension direction of the support body; The constraint baffle is located at the connection between the support body and the support edge, so that the constraint baffle, the support edge and the protrusion together constrain to form a constraint channel, the constraint channel being used to accommodate at least a portion of the first body segment.

5. The laser assembly as described in claim 4, characterized in that, The first main body segment includes connected cable connecting segments and sheet connecting segments. In the flat state of the connecting cable, the follower end, the cable connecting segments, the sheet connecting segments and the second main body segment are connected in sequence.

6. The laser assembly as described in claim 5, characterized in that, The rotating support also includes a positioning notch, which is located along the edge of the support and extends from the edge of the support towards the side where the support body is located. A portion of the first main body segment is located at the positioning notch to ensure that the follower end is stably connected to the laser.

7. The laser assembly as described in any one of claims 2-6, characterized in that, The laser assembly also includes a limiting shell, which is fixed to the mounting platform and spaced apart from the constraint baffle, so that the limiting shell and the constraint baffle together constrain and form a limiting channel, which is used to accommodate the first main body segment and the second main body segment.

8. The laser assembly as described in claim 7, characterized in that, The limiting shell includes a limiting baffle, a limiting connecting part, and a positioning rib. The limiting baffle is spaced apart from the constraint baffle. The limiting channel is located between the limiting baffle and the constraint baffle. The limiting connecting part is used to connect the mounting platform. The positioning rib protrudes from the surface of the limiting baffle facing the constraint baffle. The end of the positioning rib away from the limiting connecting part is used to support the second main body segment.

9. An industrial detection device, characterized in that, The device includes an installation platform, a control motherboard, an image acquisition component, and a laser component as described in any one of claims 1-8, wherein the control motherboard is mounted on the installation platform, the laser is rotatably connected to the installation platform, the follower end of the connection cable is electrically connected to the control motherboard, and the image acquisition component 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 9.