Automatic positioning and jacking device for optical detection system carrier
By designing a drive mechanism and a flipping device, the automatic positioning and lifting of optical components are achieved, solving the problem of low efficiency in flipping and height adjustment of optical components in optical inspection systems and improving work efficiency.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- HEFEI ZHICHANG PHOTOELECTRIC TECH
- Filing Date
- 2023-12-28
- Publication Date
- 2026-05-15
AI Technical Summary
In existing optical inspection systems, the inefficiency of flipping and height adjustment of optical components leads to low work efficiency.
An optical inspection system carrier including a drive mechanism, a transmission mechanism, a flipping device, and an adjustment mechanism was designed. The drive motor controls the drive rack to move the rack, thereby realizing the automatic positioning, flipping, and height adjustment of the optical elements.
It improves the efficiency of optical element flipping and height adjustment, thereby enhancing the efficiency of optical inspection.
Smart Images

Figure CN224247569U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of optical inspection, specifically an automatic positioning and lifting device for an optical inspection system carrier. Background Technology
[0002] Existing transparent optical components inevitably have surface defects to varying degrees. Surface defects are a crucial indicator of the surface quality of optical components, causing scattering and energy loss of incident light beams. Small defects can also lead to severe diffraction phenomena, such as film damage, diffraction fringes, energy absorption, and defect distortion, further impacting the efficiency and lifespan of the optical components. Therefore, optical components typically require inspection. Currently, for low-precision optical components, inspection is generally performed by the human eye. For high-precision optical components, such as high-precision microscope lenses, visual inspection devices are typically used, requiring a carrier to fix the optical component during inspection.
[0003] The aforementioned comparative document number 202120350339x, by setting up a lifting component, can drive the clamping component to lift and lower. Thus, when the clamping component clamps the optical element, the height can be adjusted under the drive of the lifting component, increasing the adjustable freedom of the optical element carrier. However, this device can only detect one side of the optical element, making it inconvenient to flip the optical element, and the working efficiency needs to be improved.
[0004] The present invention aims to solve the technical problems existing in the prior art. To this end, it proposes an automatic positioning and lifting device for an optical inspection system carrier. Utility Model Content
[0005] The purpose of this invention is to provide an automatic positioning and lifting device for an optical inspection system carrier, so as to solve the problems mentioned in the background art.
[0006] To achieve the above objectives, this utility model provides the following technical solution:
[0007] An automatic positioning and lifting device for an optical inspection system carrier includes a worktable, one end of which is fixedly connected to a drive mechanism that extends into the worktable, and a transmission mechanism that is slidably connected inside the worktable.
[0008] An adjustment mechanism is rotatably connected to one side of the workbench, and a flipping device is installed inside the workbench. The flipping device cooperates with the adjustment mechanism and is slidably connected to the transmission mechanism.
[0009] As a further embodiment of this utility model: the driving mechanism includes a driving motor, which is fixedly connected to the worktable. A driving rack is fixedly connected to the contact surface between the driving motor and the worktable. The driving rack extends into the worktable and is engaged with the driving rack transmission mechanism.
[0010] As a further embodiment of this utility model: the transmission mechanism includes a transmission component that slides in contact with the worktable. A limiting groove is formed on the inner surface of the worktable, and the transmission component is located in the limiting groove. An inner groove is formed on the contact surface between the transmission component and the worktable, and a sliding plate is provided in the inner groove. The sliding plate slides in contact with the transmission component. A guide groove is formed at one end of the sliding plate, and a rack is provided in the guide groove. The rack is fixedly connected to the sliding plate and meshes with a drive rack. A pusher is fixedly connected to the other end of the transmission component, and a flipping device is slidably connected to the pusher.
[0011] As a further embodiment of this utility model: the flipping device includes a carrier, with rotating rods fixedly connected to both ends of the carrier. The rotating rods slide in contact with the inner surface of the workbench. A sliding groove is provided on the inner surface of the workbench, and the rotating rods are located in the sliding groove. A sleeve is rotatably connected to one end of the rotating rods, and the sleeves cooperate with the adjustment mechanism. A guide groove is provided on the cylindrical surface of the rotating rods.
[0012] As a further embodiment of this utility model: a movable block is slidably connected to the cylindrical surface of the rotating rod, the movable block is sleeved on the rotating rod, a slider is fixedly connected to the inner surface of the movable block, the slider is located in the guide groove and slides in contact with the rotating rod, a connecting rod is fixedly connected to one end of the movable block, and the other end of the connecting rod extends into the pushing member and slides in contact with the pushing member.
[0013] As a further embodiment of this utility model: the adjustment device includes a rotating component, which is rotatably connected to the worktable. One end of the rotating component is fixedly connected to a sector-shaped disk. A slot is provided inside the sector-shaped disk. A sleeve passes through the slot and slides in contact with the sector-shaped disk. A guide groove is fixedly connected inside the worktable.
[0014] Compared with the prior art, the beneficial effects of this utility model are as follows: When the device is in use, the drive motor starts and controls the drive rack to rotate. Since the drive rack meshes with the rack, the drive rack drives the rack to move horizontally. When the rack moves to the leftmost or rightmost position, in order to satisfy the meshing of the drive rack and rack, the slide plate slides along the inner groove to change the meshing direction. Then the rack changes its movement direction to achieve reciprocating motion of left and right movement. The rack drives the transmission component to move left and right through the slide plate. The transmission component drives the pushing component to move. The pushing component drives the moving block to move through the connecting rod. The moving block drives the slider to move. Since the slider is located in the guide... The slider slides into the groove and makes contact with the rotating rod. The guide groove is spiral-shaped, meaning that when the slider moves, it presses against the rotating rod, causing the rotating rod to rotate. The rotating rod drives the carrier to rotate and flip the component. At the same time, the rotating component rotates the fan-shaped disk, which in turn drives the slot to rotate. Because the slot is curved, and the sleeve passes through the slot, the sliding groove limits the slot, allowing the sleeve to move only vertically. That is, when the fan-shaped disk rotates, it presses against the slider, causing the slider to move up and down. The slider drives the carrier to move via the rotating rod, allowing for height adjustment. This device can adjust the height of the optical element, making it easy to flip the optical element and improving work efficiency. Attached Figure Description
[0015] Figure 1 This is a schematic diagram of a structure for an automatic positioning and lifting device for an optical inspection system carrier.
[0016] Figure 2 This is a schematic diagram of the transmission mechanism in an automatic positioning and lifting device for an optical inspection system.
[0017] Figure 3 This is a schematic diagram of a sector-shaped disk in an automatic positioning and lifting device for an optical inspection system carrier.
[0018] Figure 4 This is a schematic diagram of the structure of a rotating rod used in an automatic positioning and lifting device for an optical inspection system carrier.
[0019] 1-Workbench, 2-Guide groove, 3-Slide groove, 4-Rotating rod, 5-Carrier, 6-Limiting slide groove, 7-Drive motor, 8-Drive rack, 9-Slot, 10-Transmission component, 11-Pushing component, 12-Connecting rod, 13-Moving block, 14-Slider, 15-Sleeve, 16-Sector disk, 17-Rotating component, 18-Slide plate, 19-Inner groove, 20-Rack, 21-Guide groove. Detailed Implementation
[0020] The embodiments of this utility model are described in detail below. Examples of these embodiments are shown in the accompanying drawings, wherein the same or similar reference numerals denote the same or similar elements or elements having the same or similar functions throughout. The embodiments described below with reference to the accompanying drawings are exemplary and intended to explain this utility model, and should not be construed as limiting this utility model.
[0021] The following disclosure provides numerous different embodiments or examples for implementing various structures of the present invention. To simplify the disclosure, specific examples of components and arrangements are described below. These are merely examples and are not intended to limit the scope of the invention. Furthermore, reference numerals and / or letters may be repeated in different examples. Such repetition is for simplification and clarity and does not in itself indicate a relationship between the various embodiments and / or arrangements discussed.
[0022] Example 1
[0023] Please see Figure 1-4 In this embodiment of the present invention, an automatic positioning and lifting device for an optical inspection system carrier includes a worktable 1. One end of the worktable 1 is fixedly connected to a drive mechanism, which extends into the worktable 1. A transmission mechanism is slidably connected inside the worktable 1.
[0024] The worktable 1 is rotatably connected to an adjustment mechanism on one side. The worktable 1 is equipped with a flipping device inside. The flipping device cooperates with the adjustment mechanism and is slidably connected to the transmission mechanism. This device can adjust the height of the optical element and facilitate the flipping of the optical element, thereby improving work efficiency.
[0025] Example 2
[0026] Please see Figure 1-4 Based on Embodiment 1, the driving mechanism further includes a driving motor 7, which is fixedly connected to the worktable 1. A driving rack 8 is fixedly connected to the contact surface between the driving motor 7 and the worktable 1. The driving rack 8 extends into the worktable 1 and is engaged with the transmission mechanism. When the driving motor 7 starts, it controls the driving rack 8 to rotate. Since the driving rack 8 is engaged with the rack 20, the driving rack 8 drives the rack 20 to move horizontally.
[0027] Furthermore, the transmission mechanism includes a transmission component 10, which slides in contact with the worktable 1. A limiting groove 6 is formed on the inner surface of the worktable 1, and the transmission component 10 is located in the limiting groove 6. An inner groove 19 is formed on the contact surface between the transmission component 10 and the worktable 1, and a slide plate 18 is provided in the inner groove 19. The slide plate 18 slides in contact with the transmission component 10. A guide groove 21 is formed at one end of the slide plate 18, and a rack 20 is provided in the guide groove 21. The rack 20 is fixedly connected to the slide plate 18 and meshes with the drive rack 8. A pusher 11 is fixedly connected to the other end of the transmission component 10. A flipping device is slidably connected to the pusher 11. When the rack 20 moves to the leftmost or rightmost position, in order to satisfy the meshing of the drive rack 8 and the rack 20, the slide plate 18 slides along the inner groove 19 to change the meshing direction. Then the rack 20 changes its moving direction to achieve reciprocating motion of moving left and right. The rack 20 drives the transmission component 10 to move left and right through the slide plate 18, and the transmission component 10 drives the pusher 11 to move.
[0028] Furthermore, the flipping device includes a carrier 5, with rotating rods 4 fixedly connected to both ends of the carrier 5. The rotating rods 4 slide in contact with the inner surface of the workbench 1. A groove 3 is provided on the inner surface of the workbench 1, and the rotating rods 4 are located in the groove 3. A sleeve 15 is rotatably connected to one end of the rotating rods 4. The sleeve 15 cooperates with the adjustment mechanism. A guide groove 2 is provided on the cylindrical surface of the rotating rods 4. The pushing member 11 drives the moving block 13 to move through the connecting rod 12. The moving block 13 drives the slider 14 to move. Since the slider 14 is located in the guide groove 2 and slides in contact with the rotating rods 4, and the guide groove 2 is spiral, when the slider 14 moves, the slider 14 squeezes the rotating rods 4, causing the rotating rods 4 to rotate. The rotating rods 4 drive the carrier 5 to rotate and flip the surface.
[0029] Furthermore, a movable block 13 is slidably connected to the cylindrical surface of the rotating rod 4. The movable block 13 is sleeved on the rotating rod 4. A slider 14 is fixedly connected to the inner surface of the movable block 13. The slider 14 is located in the guide groove 2 and slides in contact with the rotating rod 4. A connecting rod 12 is fixedly connected to one end of the movable block 13. The other end of the connecting rod 12 extends into the pusher 11 and slides in contact with the pusher 11.
[0030] Furthermore, the adjustment device includes a rotating component 17, which is rotatably connected to the worktable 1. One end of the rotating component 17 is fixedly connected to the sector disk 16. The sector disk 16 has a slot 9 inside. The sleeve 15 passes through the slot 9 and slides in contact with the sector disk 16. The worktable 1 has a guide groove 2 fixedly connected inside. Rotating the rotating component 17 causes the sector disk 16 to rotate, which in turn causes the slot 9 to rotate. Since the slot 9 is curved, and the sleeve 15 passes through the slot 9, the sliding groove 3 limits the slot 9 so that the sleeve 15 can only move vertically. That is, when the sector disk 16 rotates, it squeezes the slider 14, causing the slider 14 to move up and down. The slider 14 drives the carrier 5 to move through the rotating rod 4, which allows for height adjustment.
[0031] The working principle of this utility model is as follows: When the device is in use, the drive motor 7 starts and controls the drive rack 8 to rotate. Since the drive rack 8 meshes with the rack 20, the drive rack 8 drives the rack 20 to move horizontally. When the rack 20 moves to the leftmost or rightmost position, in order to satisfy the meshing of the drive rack 8 and the rack 20, the slide plate 18 slides along the inner groove 19 to change the meshing direction. Then the rack 20 changes its direction of movement to achieve reciprocating left and right movement. The rack 20 drives the transmission component 10 to move left and right through the slide plate 18. The transmission component 10 drives the pusher component 11 to move. The pusher component 11 drives the moving block 13 to move through the connecting rod 12. The moving block 13 drives the slider 14 to move. Since the slider 14 is located in the guide groove... The guide groove 2 is spiral-shaped, meaning that when the slider 14 moves, it presses against the rotating rod 4, causing the rotating rod 4 to rotate. The rotating rod 4 drives the carrier 5 to rotate and flip the device. At the same time, the rotating component 17 rotates, which in turn drives the sector disk 16 to rotate. The sector disk 16 drives the slot 9 to rotate. Since the slot 9 is curved, and the sleeve 15 passes through the slot 9, the slide groove 3 limits the slot 9 so that the sleeve 15 can only move vertically. That is, when the sector disk 16 rotates, it presses against the slider 14, causing the slider 14 to move up and down. The slider 14 drives the carrier 5 to move through the rotating rod 4, which can adjust the height. This device can adjust the height of the optical element, making it easy to flip the optical element and improving work efficiency.
[0032] In the description of this specification, the references to terms such as "one embodiment," "some embodiments," "example," "specific example," or "some examples," etc., indicate that a specific feature, structure, material, or characteristic described in connection with that embodiment or example is included in at least one embodiment or example of the present invention. In this specification, the illustrative expressions of the above terms do not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in one or more embodiments or examples. Moreover, without contradiction, those skilled in the art can combine and integrate the different embodiments or examples described in this specification, as well as the features of different embodiments or examples.
[0033] Although embodiments of the present invention have been shown and described, those skilled in the art will understand that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the claims and their equivalents.
Claims
1. An automatic positioning and lifting device for an optical inspection system carrier, comprising a worktable, characterized in that, A drive mechanism is fixedly connected to one end of the worktable, the drive mechanism extends into the worktable, and a transmission mechanism is slidably connected inside the worktable. An adjustment mechanism is rotatably connected to one side of the workbench, and a flipping device is installed inside the workbench. The flipping device cooperates with the adjustment mechanism and is slidably connected to the transmission mechanism.
2. The automatic positioning and lifting device for an optical inspection system carrier according to claim 1, characterized in that, The driving mechanism includes a drive motor, which is fixedly connected to the worktable. A drive rack is fixedly connected to the contact surface between the drive motor and the worktable. The drive rack extends into the worktable and is engaged with the drive rack transmission mechanism.
3. The automatic positioning and lifting device for an optical inspection system carrier according to claim 2, characterized in that, The transmission mechanism includes a transmission component that slides in contact with the worktable. A limiting groove is formed on the inner surface of the worktable, and the transmission component is located in the limiting groove. An inner groove is formed on the contact surface between the transmission component and the worktable, and a sliding plate is set in the inner groove. The sliding plate slides in contact with the transmission component. A guide groove is formed at one end of the sliding plate, and a rack is set in the guide groove. The rack is fixedly connected to the sliding plate and meshes with a drive rack. A pusher is fixedly connected to the other end of the transmission component, and a flipping device is slidably connected to the pusher.
4. The automatic positioning and lifting device for an optical inspection system carrier according to claim 3, characterized in that, The flipping device includes a carrier with rotating rods fixedly connected to both ends. The rotating rods slide in contact with the inner surface of the workbench. A groove is provided on the inner surface of the workbench, and the rotating rods are located in the groove. A sleeve is rotatably connected to one end of the rotating rods. The sleeve cooperates with the adjustment mechanism. A guide groove is provided on the cylindrical surface of the rotating rods.
5. The automatic positioning and lifting device for an optical inspection system carrier according to claim 4, characterized in that, The rotating rod has a movable block slidably connected to its cylindrical surface. The movable block is sleeved on the rotating rod. A slider is fixedly connected to the inner surface of the movable block. The slider is located in the guide groove and slides in contact with the rotating rod. A connecting rod is fixedly connected to one end of the movable block. The other end of the connecting rod extends into the pushing member and slides in contact with the pushing member.
6. The automatic positioning and lifting device for an optical inspection system carrier according to claim 4, characterized in that, The adjustment device includes a rotating component that is rotatably connected to the worktable. One end of the rotating component is fixedly connected to a sector-shaped disk. A slot is provided inside the sector-shaped disk, and a sleeve passes through the slot and slides in contact with the sector-shaped disk. A guide groove is fixedly connected inside the worktable.