Detection device for optical lens production
By designing a rotatable probing mechanism and a multi-station placement mechanism, the problem of small space of the optical lens detection device is solved, and efficient and accurate lens detection is achieved.
Patent Information
- Application Number
- CN202510676310.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-24
- Publication Date
- 2025-08-12
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
The placement position of the existing optical lens detection device is fixed and the space is small, which may cause damage to the lens during the placement process and affect the detection efficiency.
A detection device including a protrusion mechanism and a placement mechanism is designed. The protrusion mechanism can drive the placement mechanism to rotate outside the detection box and provide a larger operating space. The placement mechanism includes a fixed chassis, a lower rotating cylinder, a placement concave disk, an upper rotating cylinder and a wipe block to realize multi-station detection and lens cleaning.
It improves the detection efficiency and accuracy of the lens, reduces manual intervention, ensures positioning accuracy and stability, and improves operational convenience and comfort.
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Figure CN120467656A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the field of optical detection technology, and in particular to a detection device for optical lens production. Background Art
[0002] An optical lens is an optical element made of transparent material (such as glass, crystal, optical plastic, etc.). It contains at least one curved surface (spherical or aspherical). It changes the propagation path of light through the refraction of light. According to its shape, it can be divided into two categories: convex lens (converging light) and concave lens (diverging light).
[0003] Optical lenses usually need to be tested during production to ensure that their quality and performance meet the design and usage requirements, such as external dimensions, curvature radius, defocus and optical axis deviation, etc. Optical instruments are usually used to test them.
[0004] Some existing optical lens detection devices are placed in a fixed position at the bottom of the device, and the space is relatively small, which is not conducive to the placement of the optical lens. The optical lens may be damaged during the placement process, and the optical lens needs to be replaced frequently, which may affect the detection efficiency of the optical lens. Summary of the Invention
[0005] The object of the present invention is to provide a detection device for optical lens production to solve the problems raised in the above background technology.
[0006] In order to achieve the above-mentioned purpose, the present invention adopts the following technical solutions: a detection device for optical lens production, comprising a detection box, a group of drive motors connected to the top of the detection box, the bottom end of the drive shaft of the drive motor extends through the detection box and is connected to a group of screws, a group of guide rails are provided on the left and right positions of the rear of the detection box, a group of movable platforms are provided above the detection box, a group of optical probes are connected to the bottom end of the movable platform, and a detection mechanism is also provided at the bottom end of the detection box, the detection mechanism includes a protruding mechanism and a placing mechanism, a group of protruding mechanisms are provided near the bottom end of the detection box, and a group of placing mechanisms are connected to the bottom end of the protruding mechanism.
[0007] By adopting the above technical solution, the driving motor drives the mobile platform to move precisely along the guide rail through the screw, driving the optical probe to detect the lens, which can realize automatic positioning detection, reduce manual intervention, ensure positioning accuracy and stability, and improve detection efficiency. The detection mechanism is divided into a probe mechanism and a placement mechanism. The probe mechanism can move outward to the placement mechanism, which is convenient for taking, placing or adjusting the lens and improves the convenience of operation.
[0008] Preferably, the protruding mechanism includes an inner plate, connecting arm 1, connecting arm 2 and an installation platform. A group of inner plates are provided on the left and right sides of the detection box near the bottom end. The two groups of inner plates are provided with a group of connecting arm 1 at the front end near the inner side of the detection box, and a group of connecting arm 2 at the rear end. The bottom ends of the connecting arm 1 and the connecting arm 2 at the left and right ends are respectively connected to the left and right ends of the installation platform.
[0009] By adopting the above technical solution, the inner plate is connected to the left and right sides of the detection box, serving as the mounting base of the probe mechanism to ensure the stability of the structure. The connecting arm 1 and the connecting arm 2 can be rotated to move the mounting platform to enter or leave the detection box. The lens can be quickly disassembled and replaced to improve work efficiency.
[0010] Preferably, a set of fixing flanges is provided on the right side of the connecting arm at the left end near the bottom end.
[0011] Preferably, a group of lower side panels are provided on the left and right positions of the bottom surface of the mounting platform, and a group of fixed clamping plates are provided at the rear end of the left side of the lower side panel on the left end. The top end of the fixed clamping plate extends through to the right side of the lower side panel on the left end and is connected to a group of toggle rods.
[0012] By adopting the above technical solution, the fixed clamping plate can cooperate with the fixed flange after the connecting arm 1 and the connecting arm 2 are rotated, so as to realize the rapid locking and releasing function of the probe mechanism, which is convenient for operation on the installation platform and ensures stability. The rear end of the toggle rod is linked with the fixed clamping plate and can be locked or unlocked by manual toggle without the help of additional tools, thereby improving the convenience of operation.
[0013] Preferably, the placement mechanism includes a fixed chassis, a lower rotating cylinder, a placement recessed disk, an upper rotating cylinder, a wiping block, a fixed top disk and two drive motors. A group of fixed chassis is provided at the top middle end of the mounting platform, a group of lower rotating cylinder is provided near the outer end of the top of the fixed chassis, and no less than two groups of placement recessed disks are provided at equal intervals on the outside of the lower rotating cylinder. A group of upper rotating cylinder is connected to the top end of the lower rotating cylinder, and no less than two groups of wiping blocks are connected to the outside of the upper rotating cylinder at equal intervals. A group of fixed top disks is connected to the top end of the upper rotating cylinder, and a group of two drive motors are provided at the middle end of the bottom surface of the mounting platform. The top end of the drive shaft of the two drive motors passes through the mounting platform and extends into the fixed chassis.
[0014] By adopting the above technical solution, concave disks are placed at equal intervals on the outside of the lower rotating cylinder to form a circular array workstation, on which multiple optical lenses can be placed at the same time, realizing efficient multi-station and continuous batch detection, reducing manual loading and unloading time, and greatly improving detection efficiency. Before the optical lens enters the detection position, the wiping block can remove dust or fingerprints on its surface to avoid affecting the detection results.
[0015] Preferably, a group of rotating disks 1 is provided on the top surface of the fixed chassis near the inner end, an upper gear ring is provided on the top surface of the rotating disk 1, and a group of fixed sleeves are provided inside the upper gear ring, and a group of transmission boxes are provided on the inner left and right ends of the fixed sleeves, and the opposite ends of the two groups of transmission boxes are connected to a group of transmission gears 1, and the ends away from each other are provided with a group of transmission gears 2.
[0016] By adopting the above technical solution, the rotating disk can rotate on the top of the fixed chassis, so that the optical lens placed in the concave disk outside it can be rotated and positioned at multiple angles, which is convenient for the optical probe to detect the lens from different directions. The upper gear ring can provide a stable gear meshing surface to ensure stability and accuracy during rotation and avoid slipping or deviation.
[0017] Preferably, a group of rotating disks 2 are provided on the bottom surface of the fixed top disk near the inner end, and a group of lower gear rings are provided on the bottom surface of the rotating disk 2.
[0018] By adopting the above technical solution, when the transmission gear 2 rotates, it can drive the lower gear ring and the rotating disk 2 to rotate in the opposite direction, so that the concave disk and the wiping block can rotate alternately, avoiding the wiping block blocking the optical lens in the concave disk.
[0019] Preferably, a group of synchronization rods are connected to the top end of the driving shaft of the second driving motor, and the top end of the synchronization rods extends into the first rotating disk and is connected to a group of synchronization gears.
[0020] By adopting the above technical solution, the driving motor 2 can drive the synchronous gear to rotate through the synchronous rod. The synchronous gear is engaged with the transmission gear 1, which can drive the transmission gear 2 to rotate, and then link the lower rotating cylinder and the upper rotating cylinder to rotate.
[0021] Preferably, the rotating disk 1 and the rotating disk 2 are both cylindrical, and the upper and lower ends of the fixed sleeve are connected to the opposite surfaces of the fixed bottom plate and the fixed top plate through the rotating disk 1 and the rotating disk 2 respectively.
[0022] By adopting the above technical solution, the fixed sleeve can remain in a fixed state, and the transmission gear 1 and the transmission gear 2 realize force transmission, thereby driving the lower rotating cylinder and the upper rotating cylinder to rotate in opposite directions.
[0023] Preferably, the bottom end of the wiping block can contact the top surface of the concave tray.
[0024] By adopting the above technical solution, it is convenient to clean the optical lens placed in the concave disk.
[0025] Compared with the prior art, the present invention has the following beneficial effects: 1. The present invention utilizes a detection mechanism disposed at the bottom of the detection box. The detection mechanism includes a protrusion mechanism and a placement mechanism. The protrusion mechanism can drive the placement mechanism to rotate, moving it to the outside of the detection box to obtain a larger operating space, which is not restricted by the limited space in traditional detection boxes. This makes it more convenient to place or remove optical lenses, improving the convenience and comfort of user operation. 2. The present invention utilizes a protrusion mechanism located at the bottom of the detection box. The protrusion mechanism comprises an inner side plate, connecting arms 1 and 2, and a mounting platform. Connecting arms 1 and 2 can drive the mounting platform to rotate, ensuring that the mounting platform remains horizontal during rotation. When the mounting platform is fully rotated to the outer end, the fixing flange on the right side of connecting arm 1 at the left end engages with the fixing plate to lock the mounting platform. 3. The present invention has a placement mechanism arranged on the top of the installation platform. The placement mechanism includes components such as a fixed chassis, a lower rotating cylinder, a placement concave disk, an upper rotating cylinder and a wiping block. Multiple groups of optical lenses can be placed on the placement concave disk to improve the detection efficiency of the optical lenses, and the wiping block can wipe and clean the optical lenses to improve the detection accuracy of the optical lenses. BRIEF DESCRIPTION OF THE DRAWINGS
[0026] Figure 1 It is a front view structural schematic diagram of the present invention; Figure 2 It is a left-side structural schematic diagram of the present invention; Figure 3 It is a structural schematic diagram of the detection mechanism of the present invention; Figure 4 This is a schematic diagram of the left side structure of the mounting platform of the present invention; Figure 5 This is a schematic diagram of the bottom structure of the mounting platform of the present invention; Figure 6 This is a schematic diagram of the local connection structure of the fixed card of the present invention; Figure 7 It is a schematic diagram of the placement mechanism structure of the present invention; Figure 8 This is a front view structural diagram of the placement mechanism of the present invention; Figure 9 Schematic diagram of the internal structure of the placement mechanism of the present invention; Figure 10 This is a schematic diagram of the connection structure of the transmission gear 2 of the present invention; Figure 11 It is a schematic diagram of the connection structure of the rotating disk of the present invention.
[0027] Figure: Detection box 1, drive motor 1 2, screw 3, guide rail 4, mobile platform 5, optical probe 6, detection mechanism 7, probe mechanism 71, placement mechanism 72, inner plate 711, connecting arm 1 712, connecting arm 2 713, mounting platform 714, fixing flange 7121, lower side plate 7141, fixing plate 7142, toggle lever 7143, fixing chassis 721, lower rotating Cylinder-722, placement concave plate-723, upper rotating cylinder-724, wiping block-725, fixed top plate-726, drive motor 2-727, rotating disk 1-7211, upper gear ring-7212, fixed sleeve-7213, transmission box-7214, transmission gear 1-7215, transmission gear 2-7216, rotating disk 2-7261, lower gear ring-7262, synchronization rod-7271, synchronization gear-7272. DETAILED DESCRIPTION
[0028] In order to further explain the technical solution of the present invention, specific embodiments are described in detail below.
[0029] See also Figure 1-Figure 2 The present invention provides an inspection device for optical lens production, including an inspection box 1, a group of drive motors 2 are installed on the top of the inspection box 1, the bottom end of the drive shaft of the drive motor 2 extends through the inspection box 1 and is fixedly connected to a group of screws 3, which can drive the screws 3 to rotate, and a group of guide rails 4 are installed at the left and right positions at the rear of the inspection box 1. A group of movable platforms 5 are provided at the top of the inspection box 1, the middle end of the movable platform 5 is threadedly connected to the screws 3, and the rear end is slidably connected to the two groups of guide rails 4, and a group of optical probes 6 are connected to the bottom end of the movable platform 5, which also includes a detection mechanism 7 arranged at the bottom end of the inspection box 1, the detection mechanism 7 includes a protruding mechanism 71 and a placing mechanism 72, a group of protruding mechanisms 71 is provided near the bottom end of the inspection box 1, and a group of placing mechanisms 72 is connected to the bottom end of the protruding mechanism 71.
[0030] Specifically, the driving motor 2 drives the mobile platform 5 to move precisely along the guide rail 4 through the screw 3, driving the optical probe 6 to detect the lens, which can realize automatic positioning detection, reduce manual intervention, ensure positioning accuracy and stability, and improve detection efficiency. The detection mechanism 7 is divided into a probe mechanism 71 and a placement mechanism 72. The probe mechanism 71 can rotate outward to move the placement mechanism 72, which is convenient for taking, placing or adjusting the lens and improving the convenience of operation.
[0031] See also Figure 3-Figure 5The protruding mechanism 71 includes an inner plate 711, a connecting arm 1 712, a connecting arm 2 713 and a mounting platform 714. A group of inner plates 711 are installed on the left and right sides near the bottom of the detection box 1. The front ends of the two groups of inner plates 711 close to the inner side of the detection box 1 are hinged with a group of connecting arms 1 712, and the rear ends are hinged with a group of connecting arms 2 713. The hinge positions of the connecting arms 1 712 and the connecting arms 2 713 are staggered up and down to avoid collision and obstruction during rotation. The bottom ends of the left and right connecting arms 1 712 and the connecting arm 2 713 are hinged to the left and right ends of the mounting platform 714 respectively, among which a group of fixing flanges 7121 are fixedly connected to the right side of the left connecting arm 1 712 near the bottom.
[0032] Specifically, the inner plate 711 is connected to the left and right sides of the detection box 1 and serves as the mounting base of the probe mechanism 71 to ensure the stability of the structure. The connecting arm 1 712 and the connecting arm 2 713 can be rotated to move the mounting platform 714 to enter or leave the detection box 1 to obtain a larger operating space. The lens can be quickly disassembled and replaced to improve work efficiency.
[0033] See also Figure 4-Figure 6 The left and right positions of the bottom surface of the mounting platform 714 are fixedly connected with a group of lower side plates 7141. The rear end of the left side of the left lower side plate 7141 is hinged with a group of fixed card plates 7142, and a torsion spring is provided at the connection, which can drive the fixed card plates 7142 to automatically reset. The top of the fixed card plate 7142 extends to the right to the right side of the left lower side plate 7141 and is connected to a group of toggle rods 7143. The toggle rods 7143 are in an inverted "U" shape, and the rear end thereof is connected to the top right end of the fixed card plate 7142. The top right end of the fixed card plate 7142 is sleeved on the outside of the rear end of the toggle rod 7143, and the front end extends to the right front end of the left lower side plate 7141.
[0034] Specifically, the rear top of the fixed clamping plate 7142 is set as an inclined surface, and a slot is provided near the rear top. After the connecting arm 1 712 and the connecting arm 2 713 rotate, the fixed flange 7121 can contact the rear top of the fixed clamping plate 7142 and drive it to rotate forward. The fixed clamping plate 7142 is then reset by the torsion spring, and the fixed flange 7121 is stuck in the slot, thereby locking the mounting platform 714 to keep it in the extended state. The front end of the toggle rod 7143 can be pulled, and the rear end of the toggle rod 7143 can drive the fixed clamping plate 7142 to rotate, separate the fixed flange 7121, and release the lock on the mounting platform 714, thereby realizing the quick locking and releasing function of the extension mechanism 71, facilitating operations on the mounting platform 714, ensuring stability, and improving operational convenience.
[0035] See also Figure 3 、 Figure 7 and Figure 8The placement mechanism 72 includes a fixed chassis 721, a lower rotating cylinder 722, a placement concave plate 723, an upper rotating cylinder 724, a wiping block 725, a fixed top plate 726 and a driving motor 2 727. The top middle end of the mounting platform 714 is fixedly connected to a set of fixed chassis 721. The top of the fixed chassis 721 is rotatably connected to a set of lower rotating cylinders 722 near the outer end. The outer side of the lower rotating cylinder 722 is fixedly connected to at least two sets of placement concave plates 723 at equal intervals. The top of the lower rotating cylinder 722 is rotatably connected to a set of The upper rotating cylinder 724 has at least two groups of wiping blocks 725 fixedly connected at equal intervals on the outside of the upper rotating cylinder 724, wherein the bottom ends of the wiping blocks 725 can contact the top surface of the concave tray 723, so as to facilitate the cleaning of the optical lens in the concave tray 723. The top end of the upper rotating cylinder 724 is rotatably connected to a group of fixed top plates 726, and a group of driving motors 2 727 is installed at the middle end of the bottom surface of the mounting platform 714. The top end of the driving shaft of the driving motor 2 727 passes through the mounting platform 714 and extends to the fixed chassis 721.
[0036] Specifically, the concave disks 723 are placed at equal intervals on the outside of the lower rotating cylinder 722 to form a circular array workstation, which can place multiple optical lenses at the same time, realizing multi-station and continuous batch efficient detection, reducing manual loading and unloading time, and greatly improving detection efficiency. Before the optical lens enters the detection position, the wiping block 725 can remove dust or fingerprints on its surface to avoid affecting the detection results.
[0037] See also Figures 9-11 , a group of rotating disks 7211 are rotatably connected to the top surface of the fixed chassis 721 near the inner end. The rotating disk 1 7211 is fixedly connected to the lower rotating cylinder 722, which can drive the lower rotating cylinder 722 to rotate. The top surface of the rotating disk 1 7211 is fixedly connected to the upper gear ring 7212, and a group of fixed sleeves 7213 are provided in the upper gear ring 7212. Among them, the rotating disk 1 7211 and the rotating disk 2 7261 are both cylindrical. The upper and lower ends of the fixed sleeve 7213 are fixedly connected to the opposite surfaces of the fixed chassis 721 and the fixed top disk 726 through the rotating disk 1 7211 and the rotating disk 2 7261 respectively, which can ensure It maintains a fixed state and realizes force transmission through transmission gear 1 7215 and transmission gear 2 7216, driving the lower rotating cylinder 722 and the upper rotating cylinder 724 to rotate in opposite directions. The left and right ends of the inner side of the fixed sleeve 7213 are fixedly connected to a set of transmission boxes 7214. The opposite ends of the two sets of transmission boxes 7214 are both rotatably connected to a set of transmission gear 1 7215, and the ends away from each other are both rotatably connected to a set of transmission gear 2 7216. The bottom end of the transmission gear 2 7216 can contact the upper gear ring 7212 and mesh with it. The transmission gear 1 7215 and the transmission gear 2 7216 can rotate synchronously.
[0038] Specifically, the rotating disk 7211 can rotate on the top of the fixed chassis 721, so that the optical lens placed in the concave disk 723 on its outside can be rotated and positioned at multiple angles, which is convenient for the optical probe 6 to detect the lens from different directions, and the upper gear ring 7212 can provide a stable gear meshing surface to ensure stability and accuracy during rotation and avoid slipping or deviation.
[0039] See also Figures 9-11 A set of rotating disk 2 7261 is rotatably connected to the bottom surface of the fixed top disk 726 near the inner end. The outer side of the rotating disk 2 7261 is fixedly connected to the inner side of the upper rotating cylinder 724, which can drive the upper rotating cylinder 724 to rotate. A set of lower gear ring 7262 is fixedly connected to the bottom surface of the rotating disk 2 7261, wherein the top end of the transmission gear 2 7216 can contact the lower gear ring 7262 and engage with it.
[0040] Specifically, when the transmission gear 2 7216 rotates, it can drive the lower gear ring 7262 and the rotating disk 2 7261 to rotate in the opposite direction relative to the rotating disk 1 7211 and the upper gear ring 7212, so that the concave disk 723 and the wiping block 725 can rotate alternately, preventing the wiping block 725 from blocking the optical lens in the concave disk 723.
[0041] See also Figure 8 and Figure 11 A set of synchronization rods 7271 are fixedly connected to the top of the driving shaft of the second driving motor 727. The top of the synchronization rod 7271 extends into the rotating disk 1 7211 and is fixedly connected to a set of synchronization gears 7272. The synchronization gears 7272 can contact the bottom ends of the two sets of transmission gears 1 7215 and engage with them to drive them to rotate.
[0042] Specifically, the driving motor 2 727 can drive the synchronous gear 7272 to rotate through the synchronous rod 7271. The synchronous gear 7272 is engaged with the transmission gear 1 7215, which can drive the transmission gear 2 7216 to rotate, thereby linking the lower rotating cylinder 722 and the upper rotating cylinder 724 to rotate.
[0043] The present invention provides a detection device for optical lens production, which is provided with a detection mechanism 7 at the bottom end of the detection box 1. The detection mechanism 7 includes a protruding mechanism 71 and a placing mechanism 72. The protruding mechanism 71 can drive the placing mechanism 72 to rotate and move it to the outer end of the detection box 1 to obtain a larger operating space, which is not necessarily constrained by the limited space in the traditional detection box 1. It is more conducive to placing or taking out the optical lens, and improves the convenience and comfort of the user's operation; the protruding mechanism 71 is provided at the bottom end of the detection box 1. The protruding mechanism 71 includes an inner side plate 711, a connecting arm 1 712, a connecting arm 2 713 and an installation platform 714. The connecting arm 1 712 and the connecting arm 2 713 can drive the installation platform 714 to move forward. The mounting platform 714 is rotated and ensured to be in a horizontal state at all times during the rotation process. When the mounting platform 714 is fully rotated to the outer end, the fixed flange 7121 on the right side of the left end connecting arm 712 can cooperate with the fixed clamping plate 7142 to lock the mounting platform 714. The placement mechanism 72 is arranged on the top of the mounting platform 714. The placement mechanism 72 includes components such as a fixed chassis 721, a lower rotating cylinder 722, a placement recessed plate 723, an upper rotating cylinder 724 and a wiping block 725. Multiple groups of optical lenses can be placed through the placement recessed plate 723 to improve the detection efficiency of the optical lenses, and the wiping block 725 can wipe and clean the optical lenses to improve the detection accuracy of the optical lenses.
[0044] The above description is merely a preferred embodiment of the present invention and is not intended to limit the present invention. Although the present invention has been described in detail with reference to the aforementioned embodiments, it is still possible for those skilled in the art to modify the technical solutions described in the aforementioned embodiments or to substitute equivalents for some of the technical features. Any modifications, equivalent substitutions, improvements, etc. made within the spirit and principles of the present invention shall be included within the scope of protection of the present invention.
Claims
1. A detection device for optical lens production, comprising a detection box (1), wherein the top of the detection box (1) is connected to a set of drive motors (2), the bottom end of the drive shaft of the drive motor (2) extends through the detection box (1) and is connected to a set of screws (3), a set of guide rails (4) are provided at the left and right positions of the rear of the detection box (1), a set of movable platforms (5) are provided at the top of the detection box (1), and a set of optical probes (6) are connected to the bottom end of the movable platforms (5); Its characteristics are: The invention also includes a detection mechanism (7) provided at the bottom end of the detection box (1), wherein the detection mechanism (7) includes a protrusion mechanism (71) and a placement mechanism (72). A group of protrusion mechanisms (71) is provided near the bottom end of the detection box (1), and a group of placement mechanisms (72) is connected to the bottom end of the protrusion mechanism (71).
2. The optical lens production detection device according to claim 1, characterized in that: The protruding mechanism (71) comprises an inner plate (711), a connecting arm 1 (712), a connecting arm 2 (713) and a mounting platform (714). A set of inner plates (711) is provided at positions near the bottom ends of the left and right sides of the detection box (1). The front ends of the two sets of inner plates (711) near the inner side of the detection box (1) are both provided with a set of connecting arms 1 (712), and the rear ends are both provided with a set of connecting arms 2 (713). The bottom ends of the connecting arms 1 (712) and the connecting arms 2 (713) at the left and right ends are respectively connected to the left and right ends of the mounting platform (714).
3. The optical lens production detection device according to claim 2, characterized in that: A set of fixing flanges (7121) are provided on the right side of the connecting arm 1 (712) at the left end, near the bottom end.
4. The optical lens production detection device according to claim 2, characterized in that: A set of lower side plates (7141) are provided on both the left and right sides of the bottom surface of the mounting platform (714), and a set of fixed card plates (7142) are provided at the rear end of the left side of the lower side plate (7141) on the left end. The top end of the fixed card plate (7142) extends through and extends to the right side of the lower side plate (7141) on the left end and is connected to a set of toggle rods (7143).
5. The optical lens production detection device according to claim 4, characterized in that: The placement mechanism (72) includes a fixed chassis (721), a lower rotating cylinder (722), a placement recessed plate (723), an upper rotating cylinder (724), a wiping block (725), a fixed top plate (726) and a second driving motor (727). A group of fixed chassis (721) is provided at the top middle end of the mounting platform (714). A group of lower rotating cylinders (722) is provided at the top near the outer end of the fixed chassis (721). At least two groups of placement recessed plates are provided at equal intervals on the outer side of the lower rotating cylinder (722). The top of the lower rotating cylinder (722) is connected to a group of upper rotating cylinders (724), and at least two groups of wiping blocks (725) are connected to the outside of the upper rotating cylinder (724) at equal intervals. The top of the upper rotating cylinder (724) is connected to a group of fixed top plates (726), and a group of driving motors (727) are provided at the middle end of the bottom surface of the mounting platform (714). The top end of the driving shaft of the driving motor (727) passes through the mounting platform (714) and extends to the fixed chassis (721).
6. The optical lens production detection device according to claim 5, characterized in that: A group of rotating disks (7211) is provided on the top surface of the fixed chassis (721) near the inner end. An upper gear ring (7212) is provided on the top surface of the rotating disk (7211). A group of fixed sleeves (7213) is provided inside the upper gear ring (7212). A group of transmission boxes (7214) are provided at the inner left and right ends of the fixed sleeves (7213). The opposite ends of the two groups of transmission boxes (7214) are both connected to a group of transmission gears (7215), and the ends away from each other are both provided with a group of transmission gears (7216).
7. The optical lens production detection device according to claim 5, characterized in that: A second rotating disk (7261) is provided on the bottom surface of the fixed top disk (726) near the inner end, and a lower gear ring (7262) is provided on the bottom surface of the second rotating disk (7261).
8. The optical lens production detection device according to claim 5, characterized in that: The top end of the driving shaft of the second driving motor (727) is connected to a group of synchronization rods (7271), and the top end of the synchronization rods (7271) extends into the first rotating disk (7211) and is connected to a group of synchronization gears (7272).
9. The optical lens production detection device according to claim 7, characterized in that: The rotating disk 1 (7211) and the rotating disk 2 (7261) are both cylindrical, and the upper and lower ends of the fixed sleeve (7213) are connected to the opposite surfaces of the fixed bottom plate (721) and the fixed top plate (726) through the rotating disk 1 (7211) and the rotating disk 2 (7261), respectively.
10. The optical lens production detection device according to claim 5, characterized in that: The bottom end of the wiping block (725) can contact the top surface of the concave tray (723).
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