Quality detection device for optical lens processing

By designing an adaptive detection channel and an adaptive deformation structure, the problems of large sample base and high equipment cost for multi-item detection of optical lenses are solved, and efficient and accurate multi-item detection is achieved.

CN120609545AInactive Publication Date: 2025-09-09江西鸿锦光电有限公司
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Patent Information

Application Number
CN202510917601.7
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-07-03
Publication Date
2025-09-09
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

In the prior art, when performing multi-item testing on optical lenses, different samples need to be used, which results in a large sample base, high costs, numerous testing equipment, and cumbersome operations.

Method used

A quality inspection device for optical lens processing is designed. Multiple inspection channels are formed by a bottom plate, side partitions, and a rubber top plate. The same inspection lens can be partitioned for different test items. The adaptive deformation of the side partitions and rubber top plate is utilized to adapt to lenses of different shapes. The adaptability and sealing of the inspection channels are achieved by combining an adaptive component and an electric push rod.

Benefits of technology

It reduces the number of lenses to be tested, reduces the types of test equipment required, reduces costs, and at the same time improves the detection accuracy and scope of application, ensures that salt spray and sand-laden water flow are in full contact with the lens surface, and adapts to the detection of lenses of different shapes.

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Abstract

The invention relates to the field of lens detection, in particular to a quality detection device for optical lens processing, which comprises a bracket, a driving assembly and the like, the bracket is connected with a mounting frame; the mounting frame consists of a back plate and a bottom plate; the bottom plate is connected with a driving assembly. The multiple detection channels are formed through the bottom plate, the side partition plates and the rubber top plate, the same detection lens is subjected to different item tests in a partitioned mode, the number of to-be-detected lenses is reduced, the requirement for the type of test equipment is lowered, and the test cost is reduced; meanwhile, the side partition plates and the rubber top plates can deform in a self-adaptive mode, so that the detection channel can adapt to detection lenses of different shapes, the sectional dimensions of all positions of the detection channel are consistent, it is guaranteed that the flow speeds of salt mist and sand-containing water flow flowing through the detection channel are uniform, it is guaranteed that the salt mist and sand-containing water flow make full contact with all positions of the surfaces of the detection lenses, and the detection accuracy is improved.
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Description

Technical Field

[0001] The present invention relates to the field of lens detection, and in particular to a quality detection device for optical lens processing. Background Art

[0002] In ocean exploration research, visual detection instruments such as underwater cameras, laser rangefinders, and optical sensors are needed. The core of such equipment lies in the optical lenses they are equipped with. In seawater, optical lenses not only have to withstand the corrosion of seawater, but also have to resist the wear risk caused by sand and stone friction. Therefore, it is necessary to test the performance of optical lenses such as seawater corrosion and sand and stone friction. In the existing technology, only a single item test is performed on the same optical lens. When testing different items, not only other lens samples are required, the sample base is large and the cost is high, but also other testing equipment and means are required. The testing work is cumbersome and the equipment cost is high. Summary of the Invention

[0003] In order to overcome the problems in the prior art of requiring the use of different samples, a large sample base, and high costs when performing multi-item testing on lenses, and at the same time solve the shortcomings of numerous testing equipment and cumbersome operations, the present invention provides a quality inspection device for optical lens processing.

[0004] Technical solution: A quality inspection device for optical lens processing, comprising a bracket; a mounting frame connected to the bracket; the mounting frame consists of a back plate and a bottom plate; further comprising a drive assembly, an adaptation assembly, a connecting strip 1, a connecting column, a rubber strip, an elastic member, a side partition, a middle partition, a rubber top plate, an electric push rod 1, a connecting plate, a rubber pad and a collection box; the bottom plate is connected to the drive assembly; the moving part of the drive assembly is connected to three connecting strips 1; each connecting strip 1 is slidably connected to a number of connecting columns; each connecting strip 1 on both sides is connected to a rubber strip; the middle connecting strip 1 is connected to the middle partition; the rubber strip and the middle partition are fixedly connected to all the connecting columns of the corresponding connecting strip 1; each rubber strip and the middle partition are fixedly connected to the corresponding connecting strip 1 There are several elastic parts connected between them; each elastic part is correspondingly sleeved with a connecting column; each rubber strip is connected to a side partition; two rubber top plates are fixedly connected to the upper side of the middle partition; each rubber top plate is inserted between the rubber strip and the side partition on the same side; the moving part of the drive assembly is connected to two electric push rods, and the telescopic end of each electric push rod is fixedly connected to a connecting plate; each connecting plate is connected to two pipe joints; a rubber pad is fixedly connected to the opposite surfaces of the two connecting plates; a connecting port corresponding to the pipe joint is opened on the rubber pad; two adaptation components are connected to the middle connecting strip; the adaptation component is used to make the rubber top plate adaptively deform to match the shape of the detection lens; a collection box is installed on the bracket.

[0005] More preferably, a single adaptation component includes: a mounting bar, an electric push rod 2, a splint, a cylindrical tube and a push rod; two mounting bars are connected to the middle connecting bar 1; several electric push rods 2 are installed on each mounting bar; the telescopic ends of all electric push rods 2 of the same mounting bar are commonly fixed with a splint; two cylindrical tubes are fixed on each rubber top plate; all cylindrical tubes on the two rubber top plates are commonly passed through the two splints; a push rod is slidably connected in each cylindrical tube; a fixed block is fixed to the top of each cylindrical tube; a card block is rotatably connected to the fixed block; and each push rod is provided with a card slot that matches the card block.

[0006] More preferably, a connecting rope is further included; the tops of all the top rods of a single adaptation component are commonly connected to the connecting rope.

[0007] More preferably, both the upper edge and the lower edge of the side where the card block is inserted into the card slot are chamfered.

[0008] More preferably, it also includes an adjusting bolt; an adjusting bolt is installed on each side of each rubber strip; threaded holes are opened on both sides of each side partition; the adjusting bolts of the rubber strip are connected to the threaded holes of the corresponding side partition; the connecting strips on both sides are slidably connected to the moving part of the drive assembly.

[0009] More preferably, the adjusting bolt is connected with an anti-slip handle.

[0010] More preferably, it further includes a motor and a rotating shaft; the motor is installed on the bracket; the motor output shaft is connected to the rotating shaft; and the rotating shaft is fixedly connected to the back plate.

[0011] More preferably, the edge of the communication opening is arranged in an oblique angle.

[0012] More preferably, the surface of the bottom plate is provided with anti-slip stripes; and the bottom plate is provided with an engaging groove adapted to the middle partition plate.

[0013] More preferably, it further includes an electric push rod three; a connecting strip one in the middle is connected to a plurality of electric push rods three; and the telescopic ends of all the electric push rods three are fixedly connected to all the mounting strips of one of the adaptation components.

[0014] Compared with the prior art, the present invention has the following advantages: the present invention forms multiple detection channels through the bottom plate, side partitions and rubber top plate, and the same detection lens is divided into different test areas for different test items, thereby reducing the number of lenses to be tested, reducing the demand for different types of testing equipment, and reducing testing costs; at the same time, the side partitions and rubber top plate can be adaptively deformed, so that the detection channel can adapt to detection lenses of different shapes, making the cross-sectional dimensions of the detection channel consistent at all locations, ensuring that the flow rate of salt fog and sand-laden water flowing through the detection channel is uniform, and ensuring that the salt fog and sand-laden water flow fully contact all locations on the surface of the detection lens, thereby improving detection accuracy; By adjusting the position of the rubber strips and side partitions on both sides, the detection lenses can be completely surrounded and adapted to the sizes of different detection lenses. At the same time, the side partitions and rubber top plates are deformed to enable the detection channel to adapt to detection lenses of different shapes, so that the detection channel can be adapted to size and shape, thereby expanding the scope of application of the present invention. BRIEF DESCRIPTION OF THE DRAWINGS

[0015] Figure 1 Schematic diagram of the three-dimensional structure of the quality inspection device for optical lens processing according to the present invention from a first viewing angle; Figure 2 This is a schematic diagram of the three-dimensional structure of the quality inspection device for optical lens processing according to the present invention from a second viewing angle; Figure 3 It is a schematic diagram of the three-dimensional structure of the side partition plate in contact with the bottom plate of the present invention; Figure 4 Schematic diagram of the three-dimensional structure inside the detection channel of the present invention; Figure 5 It is a schematic diagram of the three-dimensional structure of the middle partition plate, rubber top plate and adaptation assembly of the present invention; Figure 6 This is a schematic diagram of the three-dimensional structure of the combination of the connecting strip 1, the connecting column, the rubber strip, the elastic member and the side partition plate of the present invention; Figure 7 It is a front view of the detection channel of the present invention; Figure 8 is a schematic diagram of the three-dimensional structure of a single adaptive component of the present invention; Figure 9 This is a diagram showing a state in which the cylindrical tubes and the ejector pins of a single adaptive assembly of the present invention are arranged in an arc shape; Figure 10 It is a schematic diagram of the three-dimensional structure of the card block of the present invention in a state of being separated from the card slot; Figure 11 This is a schematic diagram of the three-dimensional structure of the mounting bracket of the present invention rotated 90 degrees counterclockwise.

[0016] Figure numbers: 1- bracket, 101- motor, 102- rotating shaft, 2- mounting frame, 201- back plate, 202- bottom plate, 203- fitting groove, 3- connecting strip 1, 4- connecting column, 5- rubber strip, 501- adjusting bolt, 6- elastic member, 7- side partition, 8- middle partition, 801- rubber top plate, 9- electric push rod 1, 10- connecting plate, 1001- pipe joint, 11- rubber pad, 1101- communicating port, 12- collecting box, 13- electric push rod 3, 21- guide rail, 22- electric slider, 23- mounting block, 31- mounting strip, 32- electric push rod 2, 33- splint, 34- cylindrical tube, 3401- fixing block, 3402- card block, 35- push rod, 3501- card slot, 36- connecting rope, 1111- detection lens. DETAILED DESCRIPTION

[0017] The present invention will be further described below with reference to specific embodiments. The illustrative embodiments and descriptions of the present invention are used to explain the present invention but are not intended to limit the present invention.

[0018] Example 1: Figures 1-11 As shown, a quality inspection device for optical lens processing includes a bracket 1; a mounting frame 2 is connected to the bracket 1; the mounting frame 2 is composed of a back plate 201 and a bottom plate 202; It also includes a driving assembly, an adapting assembly, a connecting strip 3, a connecting column 4, a rubber strip 5, an elastic member 6, a side partition 7, a middle partition 8, a rubber top plate 801, an electric push rod 9, a connecting plate 10, a rubber pad 11 and a collecting box 12; the bottom plate 202 is connected to the driving assembly; the moving part of the driving assembly is connected to three connecting strips 3; each connecting strip 3 is slidably connected to five connecting columns 4; each connecting strip 3 on both sides is connected to a rubber strip 5; the middle connecting strip 3 is connected to the middle partition 8; the rubber strip 5 and the middle partition 8 are fixedly connected to all the connecting columns 4 of the corresponding connecting strip 3; each rubber strip 5 and the middle partition 8 are connected to five elastic members 6 between the corresponding connecting strip 3; the elastic member 6 is a spring; each elastic member 6 corresponds to a connecting column 4 Socketed; each rubber strip 5 is connected to a side partition 7 on the lower side; two rubber top plates 801 are fixed to the upper side of the middle partition 8; each rubber top plate 801 is inserted between the rubber strip 5 and the side partition 7 on the same side; the moving part of the drive assembly is connected to two electric push rods 9, and each electric push rod 9 is fixed to a connecting plate 10 at the telescopic end; each connecting plate 10 is connected to two pipe joints 1001; a rubber pad 11 is fixed to each of the opposite surfaces of the two connecting plates 10; a connecting port 1101 corresponding to the pipe joint 1001 is provided on the rubber pad 11; two adaptation components are connected to the middle connecting strip 3; the adaptation component is used to make the rubber top plate 801 adaptively deform to match the shape of the detection lens 1111; a collection box 12 is installed on the bracket 1.

[0019] The drive assembly includes: a guide rail 21, an electric slider 22 and a mounting block 23; four guide rails 21 are installed on the base plate 202 in a front-to-back symmetrical manner; each guide rail 21 is slidably connected to an electric slider 22; a mounting block 23 is fixedly connected between each of the two front-to-back symmetrical electric sliders 22; the connecting strips 3 on both sides are slidably connected to all the mounting blocks 23; each electric push rod 9 is fixedly connected to a mounting block 23.

[0020] A single adaptation component includes: a mounting bar 31, an electric push rod 2 32, a splint 33, a cylindrical tube 34 and a push rod 35; two mounting bars 31 are connected to the middle connecting bar 1 3; two electric push rods 2 32 are installed on each mounting bar 31; the telescopic ends of all electric push rods 2 32 of the same mounting bar 31 are commonly fixed with a splint 33; two cylindrical tubes 34 are fixed to each rubber top plate 801; all cylindrical tubes 34 on the two rubber top plates 801 are commonly passed through the two splints 33; a push rod 35 is slidably connected in each cylindrical tube 34; a fixed block 3401 is fixed to the top of each cylindrical tube 34; a clamping block 3402 is rotatably connected to the fixed block 3401; each push rod 35 is provided with a card slot 3501 that matches the clamping block 3402.

[0021] A connecting rope 36 is also included; the tops of all the top rods 35 of a single adaptation assembly are commonly connected to the connecting rope 36.

[0022] The upper edge and the lower edge of the side where the card block 3402 is inserted into the card slot 3501 are both chamfered, so as to facilitate the engagement of the card block 3402 with the card slot 3501 .

[0023] It also includes an adjusting bolt 501; an adjusting bolt 501 is installed on each side of each rubber strip 5; threaded holes are opened on both sides of each side partition 7; the adjusting bolt 501 of the rubber strip 5 is connected to the threaded hole of the corresponding side partition 7; the connecting strips 3 on both sides are slidably connected to the two mounting blocks 23.

[0024] The adjusting bolt 501 is connected to a non-slip handle; the user holds the non-slip handle to facilitate the rotation of the adjusting bolt 501.

[0025] It also includes a motor 101 and a rotating shaft 102 ; the motor 101 is mounted on the bracket 1 ; the output shaft of the motor 101 is connected to the rotating shaft 102 ; the rotating shaft 102 is fixedly connected to the back plate 201 .

[0026] The edge of the communication port 1101 is arranged at an angle, so as to facilitate the outflow of the clean water remaining in the detection channel.

[0027] The surface of the bottom plate 202 is provided with anti-slip stripes to prevent the detection lens 1111 from sliding and deflecting on the bottom plate 202; a fitting groove 203 adapted to the middle partition 8 is opened on the bottom plate 202; the middle partition 8 is moved down and embedded in the fitting groove 203 to ensure sealing.

[0028] The steps for using the optical lens processing quality inspection device of the present invention are as follows: Before use, the electric element of the present invention is connected to the power supply, and the pipe joint 1001 on the left is connected to the collection box 12 through a hose. The initial state of the present invention is as follows: Figure 1As shown, the user places the detection lens 1111 in the middle of the bottom plate 202, and the middle of the detection lens 1111 is aligned with the middle partition plate 8. Then, the electric slider 22 is controlled to drive the mounting block 23 to move down along the guide rail 21. The mounting block 23 pushes the connecting strip 1 3, the connecting column 4, the rubber strip 5, the elastic member 6, the side partition plate 7, the middle partition plate 8, the rubber top plate 801 and the adaptation component to move down, so that the bottom of the side partition plate 7 contacts the upper surface of the bottom plate 202, and the bottom of the middle partition plate 8 is embedded in the fitting groove 203, thereby forming a gap between the bottom plate 202, the side partition plate 7, the middle partition plate 8 and the rubber top plate 801. There are two detection channels, among which the middle partition 8 that moves downward and contacts the detection lens 1111 will be deformed upward by the reverse force, thereby pushing the local area of ​​the rubber top plate 801 to deform upward, and the middle partition 8 will push the corresponding connecting column 4 upward to pass through the middle connecting strip 1 3. At the same time, the distance between the middle connecting strip 1 3 and the middle partition 8 is reduced, and the corresponding elastic member 6 is compressed. When the adaptation component moves downward, the block 3402 is stuck in the card groove 3501, so that the cylindrical tube 34 and the ejector rod 35 are locked. When the bottom of each ejector rod 35 contacts the surface of the detection lens 1111, it will be resisted. The resisted push rod 35 and the corresponding cylindrical tube 34 cannot move further downward, and the resisting force is applied in the opposite direction to the rubber top plate 801, causing it to deform. The multiple push rods 35 contact different positions on the surface of the detection lens 1111, and the heights of the cylindrical tubes 34 and push rods 35 are different, so that the deformation degree of the rubber top plate 801 matches the curvature of the detection lens 1111. As a result, the detection channel formed by the bottom plate 202, the side partition 7, the middle partition 8 and the rubber top plate 801 adapts to the shape of the detection lens 1111. Then, the electric push rod 2 32 is controlled to extend to push the clamping plate 33 Clamp the corresponding cylindrical tube 34, fix the height position of the cylindrical tube 34, maintain the shape of the rubber top plate 801, and then the user rotates the block 3402 to disengage it from the slot 3501, and then pulls the push rod 35 out of the cylindrical tube 34 through the connecting rope 36, so that the bottom of the cylindrical tube 34 no longer blocks the detection channel; then control the electric push rod 9 to contract, so that the connecting plate 10 pushes the rubber pad 11 to press on both sides of the rubber strip 5, the side partition 7, the middle partition 8 and the rubber top plate 801, closing both sides of the detection channel, and each pipe joint 1001 is connected to the corresponding detection channel respectively.

[0029] Afterwards, taking the detection of salt spray corrosion resistance and resistance to impact of sand and stones in water as an example, one of the pipe joints 1001 on the right is connected to the salt spray generator through a hose, and the other pipe joint 1001 on the right is connected to the pump through a hose. The pump pumps clean water containing sand and stones, thereby pumping corrosive salt spray and sand-containing water flow into the two detection channels respectively, impacting the corresponding parts of the detection lens 1111 in the channel, and the salt spray and sand-containing water flow entering the detection channel from the right pipe joint 1001 will be discharged from the left pipe joint 1001 and enter the collection box 12 through the connecting hose.

[0030] After the test is carried out for 1 hour, the test is stopped, the connecting hose of the right pipe joint 1001 is removed, and then a fan is connected to the right pipe joint 1001 to blow air into the test channel to dry the residual moisture in the test channel and on the test lens 1111, and then the electric push rod 9 is controlled to extend so that the rubber pad 11 is separated from the rubber strip 5, the side partition 7, the middle partition 8 and the rubber top plate 801 on both sides, and then the electric slider 22 is controlled to move upward, and the mounting block 23 drives the connecting strip 3, the connecting column 4, the rubber strip 5, the elastic part 6, the side partition 7, the middle partition 8, the rubber top plate 801 and the adaptation component to move upward. After the side partition 7 is out of contact with the test lens 1111, the elastic part 6 stretches to push the deformed middle partition 8 and the rubber top plate 801 to reset. Then the user removes the test lens 1111 and observes the degree of damage on the surface of the test lens 1111 with the naked eye and a microscope to obtain the test result.

[0031] Furthermore, during the next inspection, the size of the inspection lens 1111 is different from that of the previous inspection lens 1111. First, the electric slider 22 is controlled to move downward so that the bottom of the middle partition plate 8 is close to the top of the inspection lens 1111. The middle partition plate 8 is aligned with the middle of the inspection lens 1111 and remains stationary. Then, the adjusting bolt 501 corresponding to the rubber strip 5 is unscrewed to increase the gap between the rubber strip 5 and the side partition plate 7. The rubber strip 5 and the side partition plate 7 can slide along the surface of the rubber top plate 801. The user moves the rubber strips 5 and the side partition plates 7 on both sides to the edge of the inspection lens 1111. The rubber strip 5 drives the connecting strip 1111 to move. 3. The connecting column 4 and the elastic member 6 move, and the connecting strip 3 slides along the mounting block 23. Finally, the side partitions 7 on both sides surround the detection lens 1111 and adapt to the size of the detection lens 1111. Then, the adjusting bolt 501 is re-screwed so that the rubber strip 5 and the side partition 7 clamp the rubber top plate 801 and lock it in the current position. Then, the electric slider 22 is controlled to move downward so that the bottom of the side partition 7 contacts the upper surface of the bottom plate 202. A detection channel is formed between the bottom plate 202, the side partition 7, the middle partition 8 and the rubber top plate 801. Then, salt spray and sand-containing water are pumped into the detection channel to start the detection work.

[0032] After the detection is completed, the detection channel is cleaned, and the motor 101 is controlled to drive the rotating shaft 102 to rotate 90 degrees counterclockwise, and the rotating shaft 102 drives the mounting frame 2 to rotate 90 degrees. Figure 11As shown, the pipe joint 1001 on the right is rotated to the upper side, and the pipe joint 1001 on the left is rotated to the lower side. The detection channel formed by the bottom plate 202, the side partition 7, the middle partition 8 and the rubber top plate 801 is vertical. Then, a water pipe is connected to the pipe joint 1001 on the upper side, and clean water is pumped into the detection channel for cleaning. The residual salt mist and sand are flushed out of the detection channel and flushed into the collection box 12 through the connecting hose of the lower pipe joint 1001. Then, the water supply to the detection channel is stopped. The clean water remaining in the detection channel flows down along the vertical detection channel and is discharged from the lower pipe joint 1001. Then, a fan is connected to the pipe joint 1001 on the upper side to dry the detection channel thoroughly.

[0033] According to the above steps, we know that the present invention has the following effects: In the prior art, only a single item test is performed on the same detection lens 1111. When testing different items, not only other detection lenses 1111 are needed, the sample base is large and the cost is high, but also other testing equipment is needed, the testing work is cumbersome, and the equipment cost is high; then the present invention forms multiple detection channels through the bottom plate 202, the side partition 7, the middle partition 8 and the rubber top plate 801, and the same detection lens 1111 is divided into partitions for different item tests, which reduces the base number of detection lenses 1111, reduces the demand for the type of testing equipment, and reduces the testing cost; at the same time, the side partition 7, the middle partition 8 and the rubber top plate 801 can be adaptively deformed, so that the detection channel adapts to the shape of the detection lens 1111, so that the cross-sectional dimensions of each part of the detection channel are consistent, ensuring that the salt spray and sand-containing water flow flowing through the detection channel have a uniform flow rate and are in full contact with the surface of the detection lens 1111 at all places, thereby improving the detection accuracy.

[0034] The detection lens 1111 has different sizes and specifications. By adjusting the positions of the rubber strips 5 and the side partitions 7 on both sides, the detection lens 1111 can be completely surrounded and adapted to the diameter of the detection lens 1111. At the same time, the side partitions 7, the middle partition 8 and the rubber top plate 801 are deformed to make the detection channel adapt to the shape of the detection lens 1111, so that the detection channel can be adapted in size and shape, thereby expanding the scope of application of the present invention.

[0035] By rotating the mounting frame 2, the detection channel formed by the bottom plate 202, the side partition plate 7 and the rubber top plate 801 becomes vertical, and then water is supplied to the detection channel to clean the residual salt mist and sand. The remaining clean water in the detection channel can flow down naturally along the vertical detection channel to avoid remaining in the channel.

[0036] The additional technical effects of the present invention are as follows: like Figure 4As shown, the edge of the communication port 1101 is set at an angle. When the detection channel is rotated to a vertical shape, the clean water remaining in the channel can flow down along the vertical detection channel by itself, making it convenient for the clean water to flow into the pipe joint 1001 through the communication port 1101 and be discharged from the detection channel.

[0037] like Figure 1 As shown, the surface of the bottom plate 202 is provided with anti-slip stripes; in the detection process, the detection lens 1111 is prevented from sliding and deviating on the bottom plate 202, which affects the detection work; at the same time, an interlocking groove 203 is provided on the bottom plate 202, and the middle partition plate 8 is embedded in the interlocking groove 203 when it moves downward, ensuring its sealing after it adapts to the shape of the detection lens 1111 and deforms.

[0038] Example 2: Based on Example 1, Figure 4 、 Figure 7-Figure 9 As shown, it also includes an electric push rod three 13; the middle connecting strip 1 3 is connected to four electric push rods three 13; the telescopic ends of all the electric push rods three 13 are fixedly connected to all the mounting strips 31 of one of the adaptation components.

[0039] The operating steps of this embodiment are as follows: like Figure 4 As shown, the side partitions 7, the middle partition 8 and the rubber top plate 801 are controlled to move downward to form a detection channel with the bottom plate 202, and after the shape of the rubber top plate 801 is fixed by the adaptation component, all the push rods 35 are removed, and the detection channel adapts to the shape of the detection lens 1111; then all the electric push rods 13 are controlled to extend to push the corresponding adaptation components to move downward, and the cylindrical tube 34 of the adaptation component will squeeze the rubber top plate 801 downward to make it concave into the inside of the detection channel, leaving a 1 mm gap between the rubber top plate 801 and the surface of the detection lens 1111, and then salt mist and sand-containing water flow are transported into the detection channel. The salt mist and sand-containing water flow in the detection channel are blocked by the concave part of the rubber top plate 801, and instead of flowing along the surface of the detection lens 1111, they directly rush towards the surface of the detection lens 1111, and then flow to the left through the gap between the rubber top plate 801 and the detection lens 1111.

[0040] According to the above steps, we know that the present invention also has the following effects: In actual use environment, the detection lens 1111 may encounter the situation where seawater, sand and stones directly impact its surface. Then, the present invention pushes one of the adaptation components downward through the electric push rod 3 13, squeezing the rubber top plate 801 to make it concave toward the inside of the detection channel. The concave part of the rubber top plate 801 blocks the flow of salt mist and sand-containing water, and guides the flow from the original surface of the detection lens 1111 to rush downward toward the surface of the detection lens 1111, thereby changing the direction of the impact and adapting to the actual scenario where seawater, sand and stones directly impact the surface of the detection lens 1111, thereby improving the detection accuracy.

[0041] The above embodiments are provided to persons familiar with the art for implementing or using the present invention. Personnel familiar with the art may make various modifications or changes to the above embodiments without departing from the inventive concept of the present invention. Therefore, the scope of protection of the present invention is not limited to the above embodiments, but should be the maximum scope of the innovative features mentioned in the claims.

Claims

1. A quality inspection device for optical lens processing, comprising a bracket (1); a mounting frame (2) connected to the bracket (1); the mounting frame (2) consisting of a back plate (201) and a bottom plate (202); wherein: A driving assembly is connected to the bottom plate (202); the moving part of the driving assembly is connected to three connecting strips (3); each connecting strip (3) is slidably connected to a plurality of connecting columns (4); each connecting strip (3) on both sides is connected to a rubber strip (5); the middle connecting strip (3) is connected to a middle partition (8); each rubber strip (5) and the middle partition (8) are fixedly connected to all the connecting columns (4) on the corresponding connecting strip (3); a plurality of elastic members (6) are connected between each rubber strip (5) and the middle partition (8) and the corresponding connecting strip (3); each elastic member (6) is sleeved with a corresponding connecting column (4); each rubber strip (5) is connected to a side partition (7); the upper part of the middle partition (8) is fixedly connected to two rubber top plates ( 801); each rubber top plate (801) is inserted between the rubber strip (5) and the side partition (7) on the same side; the moving part of the driving component is connected to two electric push rods (9), and the telescopic end of each electric push rod (9) is fixedly connected to a connecting plate (10); each connecting plate (10) is connected to two pipe joints (1001); a rubber pad (11) is fixedly connected to the opposite side of the two connecting plates (10); a connecting port (1101) connected to the pipe joint (1001) is opened on the rubber pad (11); two adaptive components are connected to the middle connecting strip (3); the adaptive components are used to make the rubber top plate (801) adaptively deform to match the shape of the detection lens (1111); a collecting box (12) is installed on the bracket (1).

2. The optical lens processing quality inspection device according to claim 1, characterized in that: A single adaptive component includes: a mounting bar (31), a second electric push rod (32), a clamping plate (33), a cylindrical tube (34) and a top rod (35); two mounting bars (31) are connected to the middle connecting bar (3); a plurality of second electric push rods (32) are installed on each mounting bar (31); the telescopic ends of all second electric push rods (32) on the same mounting bar (31) are fixedly connected to a clamping plate (33); two Cylindrical tube (34); all cylindrical tubes (34) on the two rubber top plates (801) are inserted between the two clamping plates (33); a push rod (35) is slidably connected in each cylindrical tube (34); a fixed block (3401) is fixed to the top of each cylindrical tube (34); a clamping block (3402) is rotatably connected to the fixed block (3401); and a clamping slot (3501) adapted to the clamping block (3402) is provided on each push rod (35).

3. The optical lens processing quality inspection device according to claim 2, characterized in that: A connecting rope (36) is also included; the tops of all top rods (35) of the same adaptable assembly are commonly connected to the connecting rope (36).

4. The optical lens processing quality inspection device according to claim 2, characterized in that: The upper edge and the lower edge of the side where the clamping block (3402) is clamped into the clamping slot (3501) are both provided with chamfers.

5. The optical lens processing quality inspection device according to claim 4, characterized in that: It also includes an adjusting bolt (501); an adjusting bolt (501) is installed on both sides of each rubber strip (5); threaded holes are opened on both sides of each side partition (7); the adjusting bolt (501) of the rubber strip (5) is connected to the threaded hole of the corresponding side partition (7); and the connecting strips (3) on both sides are slidably connected to the moving part of the drive assembly.

6. The optical lens processing quality inspection device according to claim 5, characterized in that: Each adjusting bolt (501) is connected with an anti-slip handle.

7. The optical lens processing quality inspection device according to any one of claims 1 to 6, characterized in that: It also includes a motor (101) and a rotating shaft (102); the motor (101) is mounted on the bracket (1); the output shaft of the motor (101) is connected to the rotating shaft (102); and the rotating shaft (102) is fixedly connected to the back plate (201).

8. The optical lens processing quality inspection device according to claim 7, characterized in that: The edge of the communication opening (1101) is arranged in an oblique angle.

9. The optical lens processing quality inspection device according to claim 8, characterized in that: The surface of the bottom plate (202) is provided with anti-slip stripes; and the bottom plate (202) is provided with an engaging groove (203) adapted to the middle partition plate (8).

10. The optical lens processing quality inspection device according to claim 2, characterized in that: It also includes an electric push rod three (13); a plurality of electric push rods three (13) are connected to the middle connecting strip one (3); the telescopic ends of all the electric push rods three (13) are fixedly connected to all the mounting strips (31) of one of the adaptable components.