Silica gel optical detection device and system
By designing a silicone optical detection device including a reflector and a multi-angle adjustment unit, the problem of the inability to fully detect internal through-holes or grooved silicone products in the prior art is solved, and all-round optical detection is achieved, avoiding blind spots.
Patent Information
- Application Number
- CN202510254979.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-05
- Publication Date
- 2025-06-20
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
In the prior art, through multi-angle adjustment shooting, the outside of the silicone product is photographed in all directions, but it is impossible to conduct comprehensive inspection of silicone products with through holes or grooves inside, and there are blind spots in shooting, which affects the comprehensiveness of optical detection.
A silicone optical detection device is designed, including a bracket, two high-precision optical cameras, a mount and a detection assembly. By setting up a mirror and a multi-angle adjustment unit, using the refractive principle of the mirror, it is possible to photograph the external area of the silicone product in all directions, and the internal structure of the silicone product can be photographed through the adjustment of the rotating frame and the rotating rod.
All-round optical inspection of silicone products is achieved, blind spots are avoided, and the comprehensiveness and accuracy of the inspection are improved.
Smart Images

Figure CN120177359A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of optical detection, and particularly to a silica gel optical detection device and system. Background Art
[0002] Due to their excellent physical and chemical properties, silica gel products are widely used in multiple industries, such as electronics, automotive, medical, etc. With the progress of technology and the development of the industry, the quality requirements for silica gel products are getting higher and higher. Currently, in the production and processing of silica gel, in order to ensure the quality of silica gel, it is necessary to use a high-precision optical camera to perform optical detection on the silica gel, take pictures of it, and then perform image analysis to determine whether there are defects.
[0003] However, in the aforementioned prior art, through multi-angle adjustable shooting, the exterior of the silica gel product is comprehensively photographed. For silica gel products with through holes or grooves inside, such as tires, silica gel sleeves or silica gel vases, only relying on traditional shooting methods cannot comprehensively detect the internal area, there are shooting dead angles, which affects the comprehensiveness of optical detection. Summary of the Invention
[0004] The purpose of the present invention is to provide a silica gel optical detection device and system to solve the problem that in the prior art, through multi-angle adjustable shooting, the exterior of the silica gel product is comprehensively photographed, while for silica gel products with through holes or grooves inside, such as tires, silica gel sleeves or silica gel vases, only relying on traditional shooting methods cannot comprehensively detect the internal area, there are shooting dead angles, which affects the comprehensiveness of optical detection.
[0005] To achieve the above purpose, the present invention provides a silica gel optical detection device, including a bracket, two high-precision optical cameras, a placement seat and a detection component. The placement seat is arranged inside the bracket, and the two high-precision optical cameras are symmetrically arranged above the placement seat. A silica gel product is placed on the placement seat;
[0006] The detection component includes a rotating frame, a rotating rod and two reflectors. The rotating frame is arranged above the placement seat. The rotating rod is rotatably connected to the rotating frame and is located below the rotating frame. One end of each of the two reflectors is rotatably connected to the rotating rod and is symmetrically distributed on both sides of the rotating rod.
[0007] Wherein, the detection component further includes a multi-angle adjustment unit, and the multi-angle adjustment unit is arranged on the inner top wall of the bracket;
[0008] The multi-angle adjustment unit includes a top transverse movement component, a U-shaped frame, a rotating frame driving component, a rotating rod driving component, two mirror pushing components, and a lighting mechanism. The top transverse movement component is arranged on the inner top wall of the bracket. The U-shaped frame is arranged at the output end of the top transverse movement component. The rotating frame driving component is arranged inside the U-shaped frame, and the output end of the rotating frame driving component is fixedly connected to the rotating frame. The rotating rod driving component is arranged inside the rotating frame, and the output end of the rotating rod driving component penetrates the rotating frame and is fixedly connected to the rotating rod. The two mirror pushing components are both rotatably connected to the rotating rod and symmetrically distributed on both sides of the rotating rod. The output ends of the two mirror pushing components are respectively rotatably connected to the corresponding mirrors and are located above the mirrors. The lighting mechanism is arranged on the rotating rod and the mirrors.
[0009] Among them, the lighting mechanism includes a plurality of adjustable LED lights, a mounting block, and an infrared camera. The mounting block is arranged below the rotating rod. The plurality of adjustable LED lights are sequentially arranged at one end of the mirror and on the mounting block. The infrared camera is arranged below the mounting block.
[0010] Among them, the detection component further includes two shooting adjustment units, and the two shooting adjustment units are symmetrically arranged on the U-shaped frame.
[0011] The shooting adjustment unit includes a camera rotation component, a rotating member, and a camera rotation component. The camera rotation component is arranged above the U-shaped frame, and the output end of the camera rotation component penetrates the U-shaped frame and is fixedly connected to the rotating member. The camera rotation component is arranged on the rotating member, and the output end of the camera rotation component is fixedly connected to the high-precision optical camera.
[0012] Among them, the detection component further includes a placement seat adjustment unit, and the placement seat adjustment unit is arranged inside the bracket.
[0013] The placement seat adjustment unit includes two placement seat transverse movement components, a plurality of placement seat lifting components, a turntable, a turntable driving component, and two abutting mechanisms. The two placement seat transverse movement components are sequentially arranged on the inner bottom wall of the bracket. The plurality of placement seat lifting components are all arranged at the output ends of the two placement seat transverse movement components. The output ends of the plurality of placement seat lifting components are all fixedly connected to the placement seat. The turntable driving component is arranged below the placement seat, and the output end of the turntable driving component penetrates the placement seat and is fixedly connected to the turntable. The turntable is rotatably connected to the placement seat. The silicone product is placed above the turntable. The two abutting mechanisms are symmetrically arranged below the placement seat.
[0014] Among them, the abutting mechanism includes a plurality of first abutting components and an abutting plate. The plurality of first abutting components are sequentially arranged below the placement seat. The output ends of the plurality of first abutting components are fixedly connected to one end of the abutting plate, and the other end of the abutting plate abuts against the silica gel product.
[0015] Among them, the detection component further includes a limiting unit, and the limiting unit is arranged on the U-shaped frame;
[0016] The limiting unit includes a telescopic rod, a spring, a limiting block, a first magnet and a second magnet. The two ends of the telescopic rod are respectively fixedly connected to the inner side walls of the U-shaped frame and the limiting block. The two ends of the spring are respectively movably connected to the inner side walls of the U-shaped frame and the limiting block. The spring is sleeved outside the telescopic rod. The first magnet is arranged above the limiting block. The U-shaped frame has a limiting groove. The second magnet is arranged on the inner side wall of the limiting groove. The limiting block is adapted to the limiting groove.
[0017] Among them, the detection component further includes a flipping unit, and the flipping unit is arranged inside the bracket;
[0018] The flipping unit includes a flipping frame, two flipping components, two second abutting components and two abutting blocks. The flipping frame is arranged inside the bracket. The two flipping components are symmetrically arranged on both sides of the flipping frame. The output ends of the two flipping components penetrate through the flipping frame and are respectively fixedly connected to the corresponding second abutting components. The output ends of the two second abutting components are respectively fixedly connected to the corresponding abutting blocks.
[0019] The present invention also provides a silica gel optical detection system, which is applied to the silica gel optical detection device as described above.
[0020] For the silica gel optical detection device and system of the present invention, first place the silica gel product above the placement seat, then raise the height of the placement seat so that the reflector enters the inside of the silica gel product. At this time, aim the high-precision optical camera at the reflector; then adjust the refraction angle of the reflector, and at the same time, through the rotation of the rotating frame and the rotating rod, the high-precision optical camera also rotates and adjusts to take pictures of the inside of the silica gel product. Then the reflector moves out of the silica gel product, and then a full-range optical detection is performed on the external area of the silica gel product; through the above structural settings, by continuously adjusting the angles of the reflector and the high-precision optical camera, the external area of the silica gel product can be photographed in all directions. At the same time, the high-precision optical camera uses the refraction principle of the reflector to photograph the internal structure of the silica gel product, complete the internal optical detection, and then perform a full-range optical detection on the silica gel product to avoid dead angles. Brief Description of the Drawings
[0021] In order to more clearly illustrate the technical solutions in the embodiments of the present application or the prior art, the following will briefly introduce the drawings required for the description of the embodiments or the prior art.
[0022] Figure 1 It is a schematic structural diagram of the whole of the present invention.
[0023] Figure 2 It is a cross-sectional view of the whole of the present invention.
[0024] Figure 3 It is of the present invention Figure 2 Enlarged partial structural view of part A.
[0025] Figure 4 It is of the present invention Figure 2 Enlarged partial structural view of part B.
[0026] Figure 5 It is of the present invention Figure 2 Enlarged partial structural view of part C.
[0027] Figure 6 It is a schematic structural diagram of the U-shaped frame of the present invention.
[0028] Figure 7 It is of the present invention Figure 6 Enlarged partial structural view of part D.
[0029] 1 - Bracket, 2 - High-precision optical camera, 3 - Mounting seat, 4 - Silicone product, 5 - Rotating frame, 6 - Rotating rod, 7 - Reflecting mirror, 8 - Top transverse moving component, 9 - U-shaped frame, 10 - Rotating frame driving component, 11 - Rotating rod driving component, 12 - Reflecting mirror pushing component, 13 - Adjustable LED lamp, 14 - Mounting block, 15 - Infrared camera, 16 - Camera rotating component, 17 - Rotating part, 18 - Camera rotating component, 19 - Mounting seat transverse moving component, 20 - Mounting seat lifting component, 21 - Turntable, 22 - Turntable driving component, 23 - First abutting component, 24 - Abutting plate, 25 - Telescopic rod, 26 - Spring, 27 - Limiting block, 28 - First magnet, 29 - Second magnet, 30 - Limiting groove, 31 - Flipping frame, 32 - Flipping component, 33 - Second abutting component, 34 - Abutting block. Detailed Description of the Invention
[0030] The following will describe in detail the embodiments of the present invention. The examples of the embodiments are shown in the drawings. The embodiments described below with reference to the drawings are exemplary and are intended to explain the present invention and should not be construed as a limitation to the present invention.
[0031] Please refer to Figures 1 to 7, the present invention provides a silicone optical detection device, which includes a bracket 1, two high-precision optical cameras 2, a placement seat 3 and a detection component. The detection component includes a rotating frame 5, a rotating rod 6 and two reflectors 7. The detection component further includes a multi-angle adjustment unit. The multi-angle adjustment unit includes a top transverse movement component 8, a U-shaped frame 9, a rotating frame driving component 10, a rotating rod driving component 11, two reflector pushing components 12 and an illumination mechanism. The illumination mechanism includes a plurality of adjustable LED lights 13, a mounting block 14 and an infrared camera 15. The detection component further includes two shooting adjustment units. The shooting adjustment unit includes a camera rotation component 16, a rotating member 17 and a camera rotation component 18. The detection component further includes a placement seat 3 adjustment unit. The placement seat 3 adjustment unit includes two placement seat transverse movement components 19, a plurality of placement seat lifting components 20, a turntable 21, a turntable driving component 22 and two holding mechanisms. The holding mechanism includes a plurality of first holding components 23 and a holding plate 24. The detection component further includes a limiting unit. The limiting unit includes a telescopic rod 25, a spring 26, a limiting block 27, a first magnet 28 and a second magnet 29. The detection component further includes a flipping unit. The flipping unit includes a flipping frame 31, two flipping components 32, two second holding components 33 and two holding blocks 34.
[0032] Wherein, the placement seat 3 is arranged inside the bracket 1, the two high-precision optical cameras 2 are symmetrically arranged above the placement seat 3, a silicone product 4 is placed on the placement seat 3, the rotating frame 5 is arranged above the placement seat 3, the rotating rod 6 is rotatably connected to the rotating frame 5 and is located below the rotating frame 5, and one ends of the two reflectors 7 are rotatably connected to the rotating rod 6 and are symmetrically distributed on both sides of the rotating rod 6. First, place the silicone product 4 above the placement seat 3, then raise the height of the placement seat 3 so that the reflector 7 enters the inside of the silicone product 4. At this time, align the high-precision optical camera 2 with the reflector 7; then adjust the refraction angle of the reflector 7, and at the same time, through the rotation adjustment of the rotating frame 5 and the rotating rod 6, the high-precision optical camera 2 also performs rotation adjustment to photograph the inside of the silicone product 4. Then, the reflector 7 is removed from the silicone product 4, and then a full-range optical detection is performed on the external area of the silicone product 4.
[0033] Secondly, the multi-angle adjustment unit is arranged on the inner top wall of the bracket 1; the top transverse movement component 8 is arranged on the inner top wall of the bracket 1, the U-shaped frame 9 is arranged at the output end of the top transverse movement component 8, the rotating frame driving component 10 is arranged inside the U-shaped frame 9, the output end of the rotating frame driving component 10 is fixedly connected to the rotating frame 5, the rotating rod driving component 11 is arranged inside the rotating frame 5, the output end of the rotating rod driving component 11 penetrates through the rotating frame 5 and is fixedly connected to the rotating rod 6, both of the two mirror pushing components 12 are rotatably connected to the rotating rod 6 and are symmetrically distributed on both sides of the rotating rod 6, the output ends of the two mirror pushing components 12 are respectively rotatably connected to the corresponding mirrors 7 and are located above the mirrors 7, and the lighting mechanism is arranged on the rotating rod 6 and the mirrors 7. The top transverse movement component 8 is an electric slide rail, the rotating frame driving component 10 is a self-locking motor, and the rotating rod driving component 11 is a self-locking motor; by starting the top transverse movement component 8, the U-shaped frame 9 is driven to move horizontally inside the bracket 1, thereby adjusting the position of the optical detection, so that the high-precision optical camera 2 is aligned with the silicone product 4. After the mirror 7 is located inside the silicone product 4, the rotating frame driving component 10 is started, and the rotating frame 5 can be rotated, so that the mirror 7 and the rotating rod 6 are inclined. Then, the rotating rod driving component 11 is started, so that the mirror 7 rotates and moves inside the silicone product 4. At the same time, the mirror pushing component 12 is a self-locking electric push rod, and after being started, it can drive the mirror 7 to rotate, thereby adjusting the refraction angle in all directions, and finally all the internal structures of the silicone product 4 are refracted to the high-precision optical camera 2.
[0034] Meanwhile, the mounting block 14 is arranged below the rotating rod 6, and a plurality of adjustable LED lights 13 are sequentially arranged on one end of the mirror 7 and the mounting block 14, and the infrared camera 15 is arranged below the mounting block 14. The adjustable LED lights 13 are electrically connected to the controller on the bracket 1, and thus the light brightness can be freely adjusted to adapt to the internal structures of different silicone products 4. The mounting block 14 supports the plurality of adjustable LED lights 13 and the infrared camera 15. When adjusting the position of the mirror 7, the infrared camera 15 takes pictures of the silicone product 4 below. After the internal area of the silicone product 4 is photographed, the movement can be stopped, and then the placement seat 3 moves upward, so that the mirror 7 enters the silicone product 4.
[0035] In addition, the two shooting adjustment units are symmetrically arranged on the U-shaped frame 9; the camera rotation component 16 is arranged above the U-shaped frame 9, the output end of the camera rotation component 16 penetrates through the U-shaped frame 9 and is fixedly connected to the rotating part 17, the camera rotation component 18 is arranged on the rotating part 17, and the output end of the camera rotation component 18 is fixedly connected to the high-precision optical camera 2. The camera rotation component 16 is a self-locking motor, and the camera rotation component 18 is a self-locking motor; when the camera rotation component 16 is started, it drives the rotating part 17 to rotate, and at the same time, the camera rotation component 18 is started to drive the high-precision optical camera 2 to rotate and adjust the shooting angle so that it is aligned with the reflector 7 or perform optical detection on the outside of the silicone product 4.
[0036] Then, the placement seat 3 adjustment unit is arranged inside the support 1; the two placement seat transverse movement components 19 are sequentially arranged on the inner bottom wall of the support 1, and a plurality of placement seat lifting components 20 are all arranged at the output ends of the two placement seat transverse movement components 19, and the output ends of the plurality of placement seat lifting components 20 are all fixedly connected to the placement seat 3. The turntable driving component 22 is arranged below the placement seat 3, the output end of the turntable driving component 22 penetrates through the placement seat 3 and is fixedly connected to the turntable 21, the turntable 21 is rotatably connected to the placement seat 3, the silicone product 4 is placed above the turntable 21, and the two holding mechanisms are symmetrically arranged below the placement seat 3. The placement seat transverse movement component 19 is an electric slide rail, the placement seat lifting component 20 is a self-locking cylinder, and the turntable driving component 22 is a self-locking motor; when the placement seat transverse movement component 19 is started, it drives the placement seat 3 to move inside the support 1 to adjust the position of the placement seat 3 so that it can move below the flipping unit to flip the silicone product 4; when the placement seat lifting component 20 is started, it drives the placement seat 3 to move upward; when the turntable driving component 22 is started, it drives the turntable 21 to rotate, so that the silicone product 4 rotates, facilitating comprehensive optical detection of the external area.
[0037] Again, a plurality of the first holding components 23 are sequentially arranged below the placement seat 3, the output ends of the plurality of first holding components 23 are all fixedly connected to one end of the holding plate 24, and the other end of the holding plate 24 abuts against the silicone product 4. The first holding component 23 is a self-locking cylinder, and when the first holding component 23 is started, it drives the holding plate 24 to move, and then holds the silicone product 4 to complete the fixation.
[0038] Moreover, the limiting unit is arranged on the U-shaped frame 9; both ends of the telescopic rod 25 are fixedly connected to the inner side wall of the U-shaped frame 9 and the limiting block 27 respectively, both ends of the spring 26 are movably connected to the inner side wall of the U-shaped frame 9 and the limiting block 27 respectively, the spring 26 is sleeved outside the telescopic rod 25, the first magnet 28 is arranged above the limiting block 27, the U-shaped frame 9 has a limiting groove 30, the second magnet 29 is arranged on the inner side wall of the limiting groove 30, and the limiting block 27 is adapted to the limiting groove 30. When the rearview mirror 7 is not needed, it needs to be moved away at this time, so as to provide the shooting space for the optical detection of the external area to the greatest extent; at this time, the rotating frame driving component 10 is started to drive the rotating frame 5 to rotate 90 degrees, the rotating frame 5 pushes the limiting block 27 to contract, when the rotation of the rotating frame 5 is completed, the limiting groove 30 is parallel to the limiting block 27, at this time the spring 26 rebounds, the limiting block 27 enters the limiting groove 30, and the telescopic rod 25 follows the expansion and contraction to maintain stability; when limiting is not needed, the first magnet 28 and the second magnet 29 are electrified, and then the same-sex repulsion makes the limiting block 27 pop out of the limiting groove 30 to cancel the limit, and then the rotating frame 5 can rotate downward for subsequent use.
[0039] Finally, the flipping unit is arranged inside the bracket 1; the flipping frame 31 is arranged inside the bracket 1, two flipping components 32 are symmetrically arranged on both sides of the flipping frame 31, the output ends of the two flipping components 32 both penetrate the flipping frame 31 and are respectively fixedly connected to the corresponding second abutting components 33, and the output ends of the two second abutting components 33 are respectively fixedly connected to the corresponding abutting blocks 34. The flipping frame 31 supports the entire flipping unit, the flipping component 32 is a self-locking motor, and the second abutting component 33 is a self-locking electric push rod. First, the placing seat 3 moves to below the flipping frame 31, and then the placing seat 3 moves upward so that the silicone product 4 enters the inside of the flipping frame 31. At this time, the second abutting component 33 is started to make the abutting block 34 contact the silicone product 4, then the placing seat 3 moves downward, and then the flipping component 32 is started to drive the second abutting component 33 and the abutting block 34 to rotate, so that the silicone product 4 is flipped, and finally the clamping is released and it is re-placed on the placing seat 3, thereby the silicone product 4 can be flipped to optically detect the area in contact with the turntable 21 at the bottom, further improving the comprehensiveness of the optical detection.
[0040] When using a silicone optical detection device according to this embodiment, first, the top transverse movement component 8 is started to drive the U-shaped frame 9 to move horizontally inside the bracket 1, so as to adjust the position of the optical detection, so that the high-precision optical camera 2 is aligned with the silicone product 4.
[0041] Place the silica gel product 4 above the placement seat 3, then raise the height of the placement seat 3 so that the reflector 7 enters the interior of the silica gel product 4. Start the rotating frame driving component 10, which can rotate the rotating frame 5, causing the reflector 7 and the rotating rod 6 to tilt. Then start the rotating rod driving component 11, causing the reflector 7 to rotate and move inside the silica gel product 4. At the same time, the reflector pushing component 12 is a self-locking electric push rod, which can drive the reflector 7 to rotate after starting, thereby adjusting the refraction angle in all directions. Finally, all the internal structures of the silica gel product 4 are refracted to the internal optical detection of the high-precision optical camera 2. After the internal optical detection is completed; the reflector 7 is moved out of the silica gel product 4, and the rotating frame 5 is moved away, thus providing the maximum shooting space for the optical detection of the external area. The specific operation is as follows: The rotating frame driving component 10 is started to drive the rotating frame 5 to rotate 90 degrees. The rotating frame 5 pushes the limit block 27 to contract. When the rotation of the rotating frame 5 is completed, the limit groove 30 is parallel to the limit block 27. At this time, the spring 26 rebounds, and the limit block 27 enters the limit groove 30, and the telescopic rod 25 follows the expansion and contraction to maintain stability; when no limit is required, the first magnet 28 and the second magnet 29 are energized, and then the same-sex repulsion causes the limit block 27 to pop out of the limit groove 30, canceling the limit. Then the rotating frame 5 can rotate downward for subsequent use; thus, the outer surface of the silica gel product 4 can be optically detected in all directions. Then the placement seat 3 moves under the flipping frame 31, and then the placement seat 3 moves upward so that the silica gel product 4 enters the interior of the flipping frame 31. At this time, the second abutting component 33 is started, causing the abutting block 34 to contact the silica gel product 4. Then the placement seat 3 moves downward, and then the flipping component 32 is started to drive the second abutting component 33 and the abutting block 34 to rotate, causing the silica gel product 4 to flip. Finally, the clamping is released and the silica gel product is re-placed on the placement seat 3. Thus, the silica gel product 4 can be flipped to optically detect the area in contact with the turntable 21 at the bottom, further improving the comprehensiveness of the optical detection;
[0042] Through the above structural settings, by continuously adjusting the angles of the reflector 7 and the high-precision optical camera 2, the external area of the silica gel product 4 can be photographed in all directions. At the same time, the high-precision optical camera 2 uses the refraction principle of the reflector 7 to photograph the internal structure of the silica gel product 4, completing the internal optical detection. Then, the silica gel product 4 is optically detected in all aspects, avoiding dead angles.
[0043] The present invention also provides a silica gel optical detection system, which is applied to the silica gel optical detection device as described above.
[0044] Among them, the silicone optical detection system has the functions of loading and unloading the silicone product 4. By loading the silicone product 4, then performing optical detection through the silicone optical detection device, and then unloading, such cyclic operations are carried out.
[0045] The above-disclosed are only one or more preferred embodiments of the present application, and the scope of rights of the present application cannot be limited thereby. Those of ordinary skill in the art can understand all or part of the processes of implementing the above embodiments, and the equivalent changes made according to the claims of the present application still fall within the scope covered by the present application.
Claims
1. A silicone optical detection device, comprising a bracket, two high-precision optical cameras and a placement seat, wherein the placement seat is arranged inside the bracket, the two high-precision optical cameras are symmetrically arranged above the placement seat, and a silicone product is placed on the placement seat, characterized in that: Also included are detection components; The detection assembly includes a rotating frame, a rotating rod and two reflectors. The rotating frame is arranged above the placement seat. The rotating rod is rotatably connected to the rotating frame and is located below the rotating frame. One end of the two reflectors is rotatably connected to the rotating rod and is symmetrically distributed on both sides of the rotating rod.
2. The silicone optical detection device according to claim 1, characterized in that: The detection assembly further comprises a multi-angle adjustment unit, and the multi-angle adjustment unit is arranged on the inner top wall of the bracket; The multi-angle adjustment unit includes a top transverse movement component, a U-shaped frame, a rotating frame driving component, a rotating rod driving component, two mirror pushing components and an illumination mechanism, wherein the top transverse movement component is arranged on the inner top wall of the bracket, the U-shaped frame is arranged at the output end of the top transverse movement component, the rotating frame driving component is arranged inside the U-shaped frame, the output end of the rotating frame driving component is fixedly connected to the rotating frame, the rotating rod driving component is arranged inside the rotating frame, the output end of the rotating rod driving component passes through the rotating frame and is fixedly connected to the rotating rod, the two mirror pushing components are both rotatably connected to the rotating rod and are symmetrically distributed on both sides of the rotating rod, the output ends of the two mirror pushing components are respectively rotatably connected to the corresponding reflectors and are located above the reflectors, and the illumination mechanism is arranged on the rotating rod and the reflector.
3. The silicone optical detection device according to claim 2, characterized in that: The lighting mechanism includes a plurality of adjustable LED lamps, a mounting block and an infrared camera. The mounting block is arranged below the rotating rod. The plurality of adjustable LED lamps are arranged on one end of the reflector and on the mounting block in sequence. The infrared camera is arranged below the mounting block.
4. The silicone optical detection device according to claim 3, characterized in that: The detection assembly further includes two shooting adjustment units, and the two shooting adjustment units are symmetrically arranged on the U-shaped frame; The shooting adjustment unit includes a camera rotating component, a rotating part and a camera rotating component. The camera rotating component is arranged above the U-shaped frame, and the output end of the camera rotating component passes through the U-shaped frame and is fixedly connected to the rotating part. The camera rotating component is arranged on the rotating part, and the output end of the camera rotating component is fixedly connected to the high-precision optical camera.
5. The silicone optical detection device according to claim 4, characterized in that: The detection assembly further includes a placement seat adjustment unit, and the placement seat adjustment unit is arranged inside the bracket; The placement seat adjustment unit includes two placement seat transverse movement components, multiple placement seat lifting components, a turntable, a turntable driving component and two supporting mechanisms. The two placement seat transverse movement components are sequentially arranged on the inner bottom wall of the bracket, and the multiple placement seat lifting components are all arranged at the output ends of the two placement seat transverse movement components. The output ends of the multiple placement seat lifting components are all fixedly connected to the placement seat. The turntable driving component is arranged below the placement seat. The output end of the turntable driving component passes through the placement seat and is fixedly connected to the turntable. The turntable is rotatably connected to the placement seat. The silicone product is placed above the turntable, and the two supporting mechanisms are symmetrically arranged below the placement seat.
6. The silicone optical detection device according to claim 5, characterized in that: The abutment mechanism includes a plurality of first abutment components and a abutment plate. The plurality of first abutment components are sequentially arranged below the placement seat. The output ends of the plurality of first abutment components are fixedly connected to one end of the abutment plate. The other end of the abutment plate abuts against the silicone product.
7. The silicone optical detection device according to claim 6, characterized in that: The detection assembly further includes a limiting unit, and the limiting unit is arranged on the U-shaped frame; The limiting unit includes a telescopic rod, a spring, a limiting block, a first magnet and a second magnet, the two ends of the telescopic rod are respectively fixedly connected to the inner side wall of the U-shaped frame and the limiting block, the two ends of the spring are respectively movably connected to the inner side wall of the U-shaped frame and the limiting block, the spring is sleeved on the outside of the telescopic rod, the first magnet is arranged above the limiting block, the U-shaped frame has a limiting groove, the second magnet is arranged on the inner side wall of the limiting groove, and the limiting block and the limiting groove are adapted to each other.
8. The silicone optical detection device according to claim 7, characterized in that: The detection assembly further includes a flip unit, and the flip unit is arranged inside the bracket; The flip unit includes a flip frame, two flip components, two second abutting components and two abutting blocks. The flip frame is arranged inside the bracket, and the two flip components are symmetrically arranged on both sides of the flip frame. The output ends of the two flip components both pass through the flip frame and are fixedly connected to the corresponding second abutting components respectively. The output ends of the two second abutting components are fixedly connected to the corresponding abutting blocks respectively.
9. A silica gel optical detection system, characterized in that: Use the silicone optical detection device as described in claim 8.