Laser detection equipment capable of cutting outer diameter of base stand

By designing sliding and adjustable installation components and automated conveying, cleaning, and spraying components, the adaptability problem of the base column outer diameter testing equipment was solved, realizing an efficient and stable testing and storage process, and improving the equipment's versatility and work efficiency.

CN121783024APending Publication Date: 2026-04-03YANCHENG MAIYOU MEDICAL TECHNOLOGY CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-12-31
Publication Date
2026-04-03

AI Technical Summary

Technical Problem

Existing equipment for testing the outer diameter of abutment columns cannot adapt to abutment columns of different specifications and shapes, resulting in a cumbersome and error-prone testing process. Furthermore, after testing, the abutment columns are prone to oxidation or moisture during storage.

Method used

A laser detection device for the outer diameter of a machinable base column was designed. It adopts a sliding and adjustable mounting component, combined with a rotary positioning mechanism and automated conveying, cleaning and spraying components to realize the automated detection and storage of the base column, including laser detection, automatic unloading, conveyor belt flipping and spraying anti-corrosion and moisture-proof liquid, and cleaning roller cleaning impurities.

Benefits of technology

It improves the versatility and ease of operation of the equipment, reduces detection errors, increases work efficiency, ensures the quality stability of the base column during storage, and avoids oxidation and moisture problems.

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Abstract

The invention relates to the technical field of base station processing, and discloses laser detection equipment capable of cutting the outer diameter of a base station column. Comprising a mounting assembly, a supporting assembly movably arranged at the bottom of the mounting assembly, a conveying assembly arranged in the supporting assembly, a vibration assembly fixedly arranged at the bottom of the conveying assembly, a spraying assembly movably arranged on the vibration assembly and a cleaning assembly movably arranged on the vibration assembly. And the laser detector is arranged at the upper end of the supporting assembly. The device has the beneficial effects that through the design of the two mounting assemblies capable of being adjusted in a sliding mode, the second spring is used for being connected with the adjusting base, elastic adjustment of the distance between the two mounting plates is achieved, and base stand columns of various diameter specifications can be clamped in a compatible mode; meanwhile, a rotary positioning mechanism composed of a rotary shaft, a rotary plate and an annular rail is matched with locking matching of an insertion column and a mounting hole, and the mounting plate can be rapidly and accurately switched between the upright state and the side turning state by 90 degrees.
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Description

Technical Field

[0001] This invention relates to the field of base plate processing technology, specifically to a laser detection device for the outer diameter of a machinable base plate column. Background Technology

[0002] In modern dental treatment, the outer diameter measurement of the abutment post is a key step in ensuring a precise fit between implants and restorations. With the continuous development of dental technology, higher requirements are being placed on the accuracy and efficiency of abutment post outer diameter measurement.

[0003] While existing abutment outer diameter testing equipment has improved measurement accuracy and efficiency to some extent, several problems remain. For example, many devices lack flexibility in abutment installation, failing to adapt to abutments of different specifications and shapes, leading to a cumbersome and error-prone testing process. Furthermore, the handling and storage of the abutments after testing presents challenges. Existing equipment typically requires manual removal of the abutments from the testing equipment and placement in the storage location. This not only increases the workload for operators but may also cause oxidation or moisture absorption on the abutment surface during storage, affecting subsequent processing and use. Summary of the Invention

[0004] Technical problems to be solved To address the shortcomings of existing technologies, this invention provides a laser detection device for the outer diameter of machinable abutment columns, solving the problem of not being able to adapt to abutment columns of different specifications and shapes.

[0005] (II) Technical Solution To achieve the above objectives, the present invention provides the following technical solution: a laser detection device for the outer diameter of a machinable base column, comprising: a mounting assembly, a support assembly movably disposed at the bottom of the mounting assembly, a conveying assembly disposed inside the support assembly, a vibration assembly fixedly disposed at the bottom of the conveying assembly, a spraying assembly movably disposed on the vibration assembly, a cleaning assembly movably disposed on the vibration assembly, and a laser detector disposed at the upper end of the support assembly; the cleaning assembly, the vibration assembly, and the conveying assembly are all movably connected to the support assembly, and the mounting assembly is provided in two sets.

[0006] According to one embodiment of the present invention, the mounting assembly includes two sets of mounting plates, rotating shafts respectively fixedly disposed at both ends of the two sets of mounting plates, two sets of adjusting seats respectively rotatably connected to the two sets of rotating shafts, a rotating plate fixedly disposed at one end of the rotating shaft, a plug disposed through the rotating plate, and a first spring fixedly disposed on the plug; the other end of the first spring is fixedly connected to the rotating plate.

[0007] According to one embodiment of the present invention, the adjusting seat includes an annular rail, mounting holes at both ends of the annular rail, and a slider fixedly disposed at the bottom end of the adjusting seat; the mounting plate is provided with a plurality of clamping holes; the insert moves along the trajectory of the annular rail, and the insert is adapted to two sets of mounting holes; the mounting assembly further includes two sets of second springs, the two ends of the second springs being fixedly connected to the adjusting seats on the two sets of mounting assemblies respectively.

[0008] According to one embodiment of the present invention, the support assembly includes a workbench, a discharge port opened in the workbench, four sets of ramps fixedly arranged around the discharge port, two sets of slide grooves opened on the surface of the workbench, and a support cabinet fixedly arranged at the bottom of the workbench; the bottom ends of the four sets of ramps are fixedly connected to the workbench, and the slider is slidably connected to the slide grooves.

[0009] According to one embodiment of the present invention, the conveying assembly includes a conveyor belt disposed at the bottom end of the discharge port, two sets of first drive shafts sleeved at both ends of the conveyor belt, two sets of positioning plates rotatably disposed at both ends of the two sets of first drive shafts, and a first motor fixedly disposed at one end of the first drive shaft.

[0010] According to one embodiment of the present invention, the conveying assembly further includes two sets of support plates fixedly disposed at the bottom ends of the two sets of positioning plates, two sets of moving shafts fixedly disposed between the two sets of support plates, and a connecting plate fixedly disposed between the two sets of moving shafts.

[0011] According to one embodiment of the present invention, the vibration assembly includes a connecting shaft fixedly disposed at the bottom of the connecting plate, teeth fixedly disposed on the connecting shaft, limiting grooves formed at both ends of the connecting shaft, a driven frame rotatably disposed at the end of the connecting shaft away from the connecting plate, a driving frame rotatably disposed at the end of the driven frame away from the connecting shaft, a first gear fixedly disposed at the end of the driving frame away from the driven frame, a second gear meshing with the first gear, and a second motor fixedly disposed at one end of the second gear.

[0012] According to one embodiment of the present invention, the support assembly further includes a limiting seat fixedly disposed on the support cabinet, a limiting block disposed on one side of the limiting seat and slidably connected to the limiting groove, and two sets of support frames fixedly disposed on the support cabinet; the limiting seat is slidably connected to the moving shaft, and the first gear and the second gear are rotatably connected to the support frame.

[0013] According to one embodiment of the present invention, the spraying assembly includes an incomplete gear meshing with a first gear, a spray gun fixedly disposed on the incomplete gear, and a rotatable connection limit seat for the spray gun.

[0014] According to one embodiment of the present invention, the cleaning assembly includes a second drive shaft fixedly connected to the side of the second gear away from the second motor, a drive wheel fixedly connected to the end of the second drive shaft away from the second gear, a belt sleeved on the drive wheel, a driven wheel sleeved on the end of the belt away from the drive wheel, and a cleaning roller fixedly connected to the driven wheel; the cleaning roller is rotatably connected to a support frame.

[0015] (III) Beneficial Effects Compared with the prior art, the present invention provides a laser detection device for the outer diameter of a machinable pedestal column, which has the following beneficial effects: 1. This laser inspection device for the outer diameter of machinable base columns features two sets of slidingly adjustable mounting components. Utilizing a second spring connecting the adjusting seat, the distance between the two mounting plates is elastically adjustable, allowing for the clamping of base columns of various diameters. Simultaneously, a rotary positioning mechanism consisting of a rotating shaft, rotating plate, and an annular rail, combined with the locking engagement between the insertion column and the mounting hole, enables rapid and precise 90-degree switching between upright and tilted positions of the mounting plate. This not only meets the upright inspection requirements of conventional base columns but also solves the inspection difficulties caused by space limitations for long base columns, improving the equipment's versatility and ease of operation.

[0016] 2. This laser-guided inspection equipment for the outer diameter of machinable base columns integrates automatic unloading, conveying, and storage through the coordinated operation of conveying, cleaning, vibrating, and spraying components. After inspection, the mounting plate separates, allowing the base column to automatically fall and be guided to the conveyor belt via a ramp. A second motor drives a crank-connecting rod vibrating component via gear transmission, causing the conveying component to reciprocate and continuously rotate the base column during transport. Simultaneously, an incomplete gear mechanism converts the vibration into the oscillating motion of a spray gun, uniformly spraying an anti-corrosion and moisture-proof storage solution onto the surface of the rotated base column. Simultaneously, the second motor drives the cleaning component, using belt transmission to continuously rotate the cleaning rollers and clean the conveyor belt surface, effectively removing impurities and avoiding repetitive manual unloading. This solves the problem of easy oxidation and moisture absorption of base columns during storage, significantly improving work efficiency and product quality stability. Attached Figure Description

[0017] Figure 1 This is a schematic diagram of the overall structure of a laser detection device for the outer diameter of a machinable base column proposed in this invention; Figure 2 This is a schematic diagram of the cutting structure of the support component of a laser detection device for the outer diameter of a machinable base column proposed in this invention; Figure 3 This is a schematic diagram of the installation component structure of a laser detection device for the outer diameter of a machinable base column proposed in this invention; Figure 4This is a partial structural schematic diagram of a laser detection device for the outer diameter of a machinable base column proposed in this invention; Figure 5 This is a schematic diagram of the cutting structure of the support component of a laser detection device for the outer diameter of a machinable base column proposed in this invention; Figure 6 This is a schematic diagram of the cutting structure of the conveying component of a laser detection device for the outer diameter of a machinable base column proposed in this invention; Figure 7 This is a partial structural schematic diagram of a laser detection device for the outer diameter of a machinable base column proposed in this invention; Figure 8 This is a schematic diagram of the cutting structure of the conveying component of a laser detection device for the outer diameter of a machinable base column proposed in this invention.

[0018] In the diagram: 1. Mounting assembly; 2. Support assembly; 3. Conveying assembly; 4. Vibration assembly; 5. Spraying assembly; 6. Cleaning assembly; 7. Laser detector; 11. Mounting plate; 12. Rotating shaft; 13. Adjusting seat; 14. Rotating plate; 15. Insertion post; 16. First spring; 131. Circular rail; 132. Mounting hole; 133. Slider; 111. Clamping hole; 17. Second spring; 21. Workbench; 22. Discharge port; 23. Inclined ramp; 24. Slide; 25. Support cabinet; 26. Limiting seat; 2 7. Limiting block; 28. Support frame; 31. Conveyor belt; 32. First drive shaft; 33. Positioning plate; 34. First motor; 35. Support plate; 36. Moving shaft; 37. Connecting plate; 41. Connecting shaft; 42. Gear; 43. Limiting groove; 44. Driven frame; 45. Driving frame; 46. First gear; 47. Second gear; 48. Second motor; 51. Incomplete gear; 52. Spray gun; 61. Second drive shaft; 62. Driving wheel; 63. Belt; 64. Driven wheel; 65. Cleaning roller. Detailed Implementation

[0019] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0020] Example 1, please refer to Figure 1-8This is the first embodiment of the present invention, which provides a laser detection device for the outer diameter of a machinable base column. Specifically, the device includes: a mounting assembly 1, a support assembly 2 movably disposed at the bottom of the mounting assembly 1, a conveying assembly 3 disposed inside the support assembly 2, a vibration assembly 4 fixedly disposed at the bottom of the conveying assembly 3, a spraying assembly 5 movably disposed on the vibration assembly 4, a cleaning assembly 6 movably disposed on the vibration assembly 4, and a laser detector 7 disposed at the upper end of the support assembly 2; the cleaning assembly 6, the vibration assembly 4, and the conveying assembly 3 are all movably connected to the support assembly 2, and the mounting assembly 1 is provided in two sets.

[0021] It should be noted that the mounting component 1 is used to mount the base column to be tested, the support component 2 is used to support the entire equipment, the conveying component 3 is used to transport the tested base columns to the storage location, the vibration component 4 is used to flip the base columns being conveyed on the conveying component 3, the spraying component 5 is used to spray the preservation liquid onto the conveying component 3, the cleaning component 6 is used to clean impurities on the conveying component 3, and the laser detector 7 is used to detect the outer diameter of the base column.

[0022] Laser detector 7 employs a laser displacement sensor, a technology already in use. This sensor measures the distance to the target object by emitting a laser beam and receiving the reflected light, then calculates the outer diameter of the pedestal column based on a preset algorithm and parameters. Laser displacement sensors offer advantages such as high precision, high speed, and non-contact measurement, ensuring the accuracy and reliability of the detection results. In practical applications, appropriate laser displacement sensor models and specifications can be selected according to specific needs to meet the outer diameter detection requirements of pedestal columns of different sizes and shapes.

[0023] In actual operation, the base column must first be securely installed on the bottom of the laser detector 7. However, since the specifications and models of the base column are diverse, an installation structure suitable for base columns of different specifications is required. Therefore, the present invention is designed as follows: the installation component 1 includes two sets of mounting plates 11, rotating shafts 12 respectively fixedly installed at both ends of the two sets of mounting plates 11, two sets of adjusting seats 13 respectively rotatably connected to the two sets of rotating shafts 12, a rotating plate 14 fixedly installed at one end of the rotating shaft 12, a plug 15 penetrating the rotating plate 14, and a first spring 16 fixedly installed on the plug 15; the other end of the first spring 16 is fixedly connected to the rotating plate 14.

[0024] Furthermore, the adjusting seat 13 includes an annular rail 131, mounting holes 132 at both ends of the annular rail 131, and a slider 133 fixedly disposed at the bottom end of the adjusting seat 13; the mounting plate 11 has a plurality of clamping holes 111; the insert 15 moves along the trajectory of the annular rail 131, and the insert 15 is adapted to the two sets of mounting holes 132; the mounting assembly 1 also includes two sets of second springs 17, the two ends of the second springs 17 being fixedly connected to the adjusting seats 13 on the two sets of mounting assemblies 1 respectively.

[0025] Furthermore, the support assembly 2 includes a workbench 21, a discharge port 22 opened in the workbench 21, four sets of ramps 23 fixedly arranged around the discharge port 22, two sets of slide grooves 24 opened on the surface of the workbench 21, and a support cabinet 25 fixedly arranged at the bottom of the workbench 21; the bottom ends of the four sets of ramps 23 are fixedly connected to the workbench 21, and the slider 133 is slidably connected to the slide grooves 24.

[0026] During installation, first pull the adjusting seats 13 on the two sets of mounting components 1 apart in opposite directions. The slider 133 on the adjusting seat 13 moves along the slide groove 24, and the second spring 17 is stretched accordingly. The two sets of mounting plates 11 separate from each other, and the distance between the clamping holes 111 on them increases synchronously. After the distance is adapted to the specifications and dimensions of the base column, place the base column to be tested into the clamping hole 111, and then release the adjusting seat 13. Under the reset action of the second spring 17, the two sets of mounting plates 11 merge towards each other, and the two sets of clamping holes 111 can firmly clamp the base column.

[0027] Preferably, due to the excessive length of some base columns and testing requirements, the base columns need to be installed sideways on the mounting plate 11. Therefore, the insertion post 15 is pulled out from the mounting hole 132 closest to the worktable 21 at a vertical distance, the spring is stretched, and then the rotating plate 14 is rotated. The rotating plate 14 drives the insertion post 15 to move along the trajectory of the annular track 131 towards the other mounting hole 132 in the opposite direction. During the rotation of the rotating plate 14, since the rotating plate 14 is fixedly connected to the rotating shaft 12, the mounting plate 11 also rotates. When the insertion post 15 moves to the other mounting hole 132, it automatically inserts into the mounting hole 132 under the action of the first spring 16, achieving automatic locking. At this time, the mounting plate 11 has rotated exactly ninety degrees and is parallel to the worktable 21. The other set of mounting components 1 is then operated in the same manner. At this time, the central axes of the two sets of clamping holes 111 are parallel to the horizontal line, allowing the base column to be installed sideways in the clamping holes 111.

[0028] When the inserts 15 on the two sets of mounting components 1 are located in the mounting hole 132 closest to the worktable 21 at a vertical distance, the central axes of the two sets of clamping holes 111 are perpendicular to the horizontal line, and the base column is in an upright installation state, which can meet the conventional inspection requirements. However, when the mounting plate 11 is rotated 90 degrees according to the aforementioned operation, so that the central axes of the two sets of clamping holes 111 are parallel to the horizontal line, the base column is installed on its side. This installation method is particularly suitable for base columns that are long and difficult to fully inspect or whose inspection accuracy is affected when in an upright state. Through this design that allows for flexible switching of installation states, the applicability of the laser inspection equipment to base columns of different sizes and inspection requirements is greatly improved, which can effectively improve the efficiency and accuracy of inspection work and reduce inspection errors and repetitive operations caused by limitations in the installation method.

[0029] In practice, it is often necessary to move the base column after testing to the storage location. However, in existing technologies, the base column is usually removed from the installation structure by hand and placed in the storage location. This repetitive operation reduces work efficiency. Therefore, this equipment is designed as follows: the conveying assembly 3 includes a conveyor belt 31 disposed at the bottom of the discharge port 22, two sets of first drive shafts 32 sleeved at both ends of the conveyor belt 31, two sets of positioning plates 33 rotatably disposed at both ends of the two sets of first drive shafts 32, and a first motor 34 fixedly disposed at one end of the first drive shaft 32.

[0030] Furthermore, the conveying assembly 3 also includes two sets of support plates 35 fixedly disposed at the bottom ends of the two sets of positioning plates 33, two sets of moving shafts 36 fixedly disposed between the two sets of support plates 35, and a connecting plate 37 fixedly disposed between the two sets of moving shafts 36.

[0031] After the test is completed, the two sets of mounting plates 11 are first separated. The base column installed in the clamping hole 111 will automatically fall along the discharge port 22 to the conveyor belt 31 under its own gravity. Then the first motor 34 is started, driving the first drive shaft 32 to rotate on the positioning plate 33. The conveyor belt 31, driven by the two sets of first drive shafts 32, transports the base column to the storage position. This process significantly improves work efficiency.

[0032] Ideally, the four sets of ramps 23 on the workbench 21 can guide the base column to slide smoothly onto the conveyor belt 31, avoiding the base column from getting stuck or piling up at the discharge port 22, and ensuring the smoothness of the entire conveying process.

[0033] In actual operation, after the base column is placed in the storage location after testing, it may experience surface oxidation or moisture due to the influence of humidity and temperature in the storage environment, which is detrimental to subsequent processing and storage. Therefore, this device is designed as follows: the vibration component 4 includes a connecting shaft 41 fixedly disposed at the bottom of the connecting plate 37, a tooth 42 fixedly disposed on the connecting shaft 41, a limiting groove 43 opened at both ends of the connecting shaft 41, a driven frame 44 rotatably disposed at the end of the connecting shaft 41 away from the connecting plate 37, a driving frame 45 rotatably disposed at the end of the driven frame 44 away from the connecting shaft 41, a first gear 46 fixedly disposed at the end of the driving frame 45 away from the driven frame 44, a second gear 47 meshing with the first gear 46, and a second motor 48 fixedly disposed at one end of the second gear 47.

[0034] Furthermore, the support assembly 2 also includes a limiting seat 26 fixedly mounted on the support cabinet 25, a limiting block 27 mounted on one side of the limiting seat 26 and slidably connected to the limiting groove 43, and two sets of support frames 28 fixedly mounted on the support cabinet 25; the limiting seat 26 is slidably connected to the moving shaft 36, and the first gear 46 and the second gear 47 are rotatably connected to the support frame 28.

[0035] Furthermore, the spraying assembly 5 includes an incomplete gear 51 that meshes with the first gear 46, a spray gun 52 fixedly mounted on the incomplete gear 51, and a rotatable connection limit seat 26 for the spray gun 52.

[0036] It should be noted that the spray gun 52 adopts a common spraying device structure in existing technology, which features automatic spraying and uniform spraying. It can achieve spraying operations of different ranges and intensities by controlling relevant parameters such as pressure and flow rate according to actual needs. The preservation solution sprayed by the spray gun 52 uses a common anti-corrosion and moisture-proof preservation solution in existing technology. This preservation solution has good chemical stability and can form a uniform and dense protective film on the surface of the base column, effectively isolating moisture and oxygen in the air and preventing oxidation and moisture absorption on the base column surface.

[0037] Furthermore, the cleaning assembly 6 includes a second drive shaft 61 fixedly connected to the side of the second gear 47 away from the second motor 48, a drive wheel 62 fixedly connected to the end of the second drive shaft 61 away from the second gear 47, a belt 63 sleeved on the drive wheel 62, a driven wheel 64 sleeved on the end of the belt 63 away from the drive wheel 62, and a cleaning roller 65 fixedly connected to the driven wheel 64; the cleaning roller 65 is rotatably connected to the support frame 28.

[0038] Vibration process: When the base column is transported on the conveyor belt 31, the second motor 48 starts, driving the second gear 47 to rotate. The second gear 47 meshes with the first gear 46, thereby driving the first gear 46 to rotate. The first gear 46 drives the drive frame 45 to rotate, and the drive frame 45 drives the connecting shaft 41 to reciprocate within the slider 133 through the driven frame 44. Since the other end of the connecting shaft 41 is fixedly connected to the connecting plate 37, the two sets of moving shafts 36 reciprocate within the limiting seat 26 under the drive of the connecting shaft 41. The two sets of positioning plates 33 are fixedly connected to the support plate 35, so the entire conveying assembly 3 reciprocates within the limiting seat 26. At this time, the base column located on the conveyor belt 31 will continuously rotate due to the reciprocating motion of the conveyor belt 31, and the entire surface of the base column will contact the surface of the conveyor belt 31.

[0039] Spraying process: Due to the reciprocating motion of the connecting shaft 41 within the limiting block 27, the teeth 42 on the connecting shaft 41 also reciprocate, driving the incomplete gear 51 to continuously oscillate on the limiting seat 26. At this time, the spray gun 52, driven by the incomplete gear 51, also oscillates and sprays the preservation liquid onto the surface of the conveyor belt 31. Combined with the vibration process, the surface of the base column is evenly coated with the preservation liquid. The preservation liquid forms a protective film on the surface of the base column, preventing oxidation, corrosion, and other damage during storage, thus ensuring the quality and performance of the base column. Simultaneously, the oscillating motion of the spray gun 52 makes the spraying range of the preservation liquid wider and more uniform, avoiding excessive or insufficient spraying in certain areas, further improving the effectiveness of the preservation liquid.

[0040] Cleaning Process: When the second motor 48 starts and drives the second gear 47 to rotate, the second drive shaft 61 will also rotate accordingly, further driving the drive wheel 62 to rotate. Under the connection of the transmission belt 63, the rotation of the drive wheel 62 is transmitted to the driven wheel 64, causing the driven wheel 64 to rotate as well. The rotation of the driven wheel 64 drives the cleaning roller 65 to rotate synchronously. At this time, the cleaning roller 65 maintains close contact with the surface of the conveyor belt 31. Through continuous rotation, the cleaning roller 65 can effectively and thoroughly remove various impurities, dust, and particles adhering to the surface of the conveyor belt 31, thereby ensuring that the conveyor belt 31 is always kept clean and guaranteeing the normal operation and efficiency of the equipment. The surface of the cleaning roller 65 has high friction and adsorption, effectively cleaning dust, debris, and other impurities from the conveyor belt 31.

[0041] In summary, this laser inspection device for the outer diameter of machinable base columns, through its design of two sets of slidingly adjustable mounting components and the use of a second spring connecting the adjusting seat, achieves flexible adjustment of the distance between the two sets of mounting plates, making it compatible with base columns of various diameters. Simultaneously, through a rotary positioning mechanism consisting of a rotating shaft, rotating plate, and annular rail, combined with the locking engagement of the insertion column and mounting hole, it can quickly and accurately switch the mounting plate between upright and tilted states by 90 degrees. This not only meets the upright inspection requirements of conventional base columns but also solves the inspection difficulties caused by space limitations for long base columns, improving the equipment's versatility and ease of operation. The coordinated use of the conveying, cleaning, vibration, and spraying components integrates automatic unloading and conveying / storage into a single unit. After testing, the mounting plate separates, allowing the base column to automatically drop and be guided to the conveyor belt via a ramp. The second motor drives a crank-connecting rod type vibration component through gear transmission, causing the conveyor component to reciprocate and vibrate, causing the base column to continuously rotate during the conveying process. Simultaneously, the incomplete gear mechanism converts the vibration motion into the oscillating motion of the spray gun, uniformly spraying an anti-corrosion and moisture-proof preservation liquid onto the surface of the rotated base column. At the same time, the second motor synchronously drives the cleaning component, using belt transmission to make the cleaning roller continuously rotate and brush the surface of the conveyor belt, effectively removing impurities and avoiding repetitive manual unloading. This solves the problem of easy oxidation and moisture absorption of the base column during storage, significantly improving work efficiency and product quality stability.

[0042] It should be noted that, in this document, relational terms such as "first" and "second" are used merely to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such a process, method, article, or apparatus. Without further limitations, an element defined by the phrase "comprising one..." does not exclude the presence of other identical elements in the process, method, article, or apparatus that includes said element.

Claims

1. A laser detection device for the outer diameter of a machinable pedestal column, characterized in that: include, The installation assembly (1), the support assembly (2) movably disposed at the bottom of the installation assembly (1), the conveying assembly (3) disposed inside the support assembly (2), the vibration assembly (4) fixedly disposed at the bottom of the conveying assembly (3), the spraying assembly (5) movably disposed on the vibration assembly (4), the cleaning assembly (6) movably disposed on the vibration assembly (4), and the laser detector (7) disposed at the upper end of the support assembly (2); the cleaning assembly (6), the vibration assembly (4) and the conveying assembly (3) are all movably connected to the support assembly (2), and the installation assembly (1) is provided in two sets.

2. The laser detection device for the outer diameter of a machinable pedestal column according to claim 1, characterized in that: The mounting assembly (1) includes two sets of mounting plates (11), rotating shafts (12) fixedly disposed at both ends of the two sets of mounting plates (11), two sets of adjusting seats (13) rotatably connected to the two sets of rotating shafts (12), a rotating plate (14) fixedly disposed at one end of the rotating shaft (12), a plug (15) passing through the rotating plate (14), and a first spring (16) fixedly disposed on the plug (15); the other end of the first spring (16) is fixedly connected to the rotating plate (14).

3. The laser detection device for the outer diameter of a machinable pedestal column according to claim 2, characterized in that: The adjusting seat (13) includes an annular rail (131), mounting holes (132) at both ends of the annular rail (131), and a slider (133) fixedly disposed at the bottom end of the adjusting seat (13); the mounting plate (11) is provided with a plurality of clamping holes (111); the insert (15) moves along the trajectory of the annular rail (131), and the insert (15) is adapted to the two sets of mounting holes (132); The mounting assembly (1) also includes two sets of second springs (17), with the two ends of the second springs (17) respectively fixedly connected to the adjustment seats (13) on the two sets of mounting assemblies (1).

4. The laser detection device for the outer diameter of a machinable pedestal column according to claim 3, characterized in that: The support assembly (2) includes a workbench (21), a discharge port (22) opened in the workbench (21), four sets of ramps (23) fixedly arranged around the discharge port (22), two sets of slide grooves (24) opened on the surface of the workbench (21), and a support cabinet (25) fixedly arranged at the bottom of the workbench (21); the bottom ends of the four sets of ramps (23) are fixedly connected to the workbench (21), and the slider (133) is slidably connected to the slide grooves (24).

5. The laser detection device for the outer diameter of a machinable pedestal column according to claim 4, characterized in that: The conveying assembly (3) includes a conveyor belt (31) disposed at the bottom of the discharge port (22), two sets of first drive shafts (32) sleeved at both ends of the conveyor belt (31), two sets of positioning plates (33) rotatably disposed at both ends of the two sets of first drive shafts (32), and a first motor (34) fixedly disposed at one end of the first drive shaft (32).

6. The laser detection device for the outer diameter of a machinable pedestal column according to claim 5, characterized in that: The conveying assembly (3) further includes two sets of support plates (35) fixedly disposed at the bottom of the two sets of positioning plates (33), two sets of moving shafts (36) fixedly disposed between the two sets of support plates (35), and a connecting plate (37) fixedly disposed between the two sets of moving shafts (36).

7. The laser detection device for the outer diameter of a machinable pedestal column according to claim 6, characterized in that: The vibration assembly (4) includes a connecting shaft (41) fixedly disposed at the bottom of the connecting plate (37), a tooth (42) fixedly disposed on the connecting shaft (41), a limiting groove (43) opened at both ends of the connecting shaft (41), a driven frame (44) rotatably disposed at one end of the connecting shaft (41) away from the connecting plate (37), an active frame (45) rotatably disposed at one end of the driven frame (44) away from the connecting shaft (41), a first gear (46) fixedly disposed at one end of the active frame (45) away from the driven frame (44), a second gear (47) meshing with the first gear (46), and a second motor (48) fixedly disposed at one end of the second gear (47).

8. The laser detection device for the outer diameter of a machinable pedestal column according to claim 7, characterized in that: The support assembly (2) further includes a limiting seat (26) fixedly mounted on the support cabinet (25), a limiting block (27) mounted on one side of the limiting seat (26) and slidably connected to the limiting groove (43), and two sets of support frames (28) fixedly mounted on the support cabinet (25); the limiting seat (26) is slidably connected to the moving shaft (36), and the first gear (46) and the second gear (47) are rotatably connected to the support frame (28).

9. The laser detection device for the outer diameter of a machinable pedestal column according to claim 8, characterized in that: The spraying assembly (5) includes an incomplete gear (51) meshing with the first gear (46) and a spray gun (52) fixedly mounted on the incomplete gear (51); the spray gun (52) is rotatably connected to a limiting seat (26).

10. The laser detection device for the outer diameter of a machinable pedestal column according to claim 9, characterized in that: The cleaning assembly (6) includes a second drive shaft (61) fixedly connected to the side of the second gear (47) away from the second motor (48), a drive wheel (62) fixedly connected to the end of the second drive shaft (61) away from the second gear (47), a belt (63) sleeved on the drive wheel (62), a driven wheel (64) sleeved on the end of the belt (63) away from the drive wheel (62), and a cleaning roller (65) fixedly connected to the driven wheel (64); the cleaning roller (65) is rotatably connected to the support frame (28).