Detection device and detection method for definition of AG (anti-glare) glass
By designing a detection device for automatic conveying, dimensional adjustment and angle flip, the problem of insufficient detection accuracy of AG anti-glare glass in the prior art is solved, and efficient and accurate glass clarity detection is achieved.
Patent Information
- Application Number
- CN202510506009.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-22
- Publication Date
- 2025-07-11
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
The existing glass clarity detection devices and methods have insufficient accuracy in the detection of AG anti-glare glass, which is difficult to simulate the lighting conditions of actual use scenarios and relies on manual subjective judgment, resulting in a large deviation from the actual application, which cannot meet the needs of fast and accurate detection on large-scale production lines.
A detection device including a conveying mechanism, a dimension adjustment mechanism, an operating component and an angle adjustment mechanism is designed. Through automatic conveying, dimension adjustment and angle flip, clamping and fixing of AG anti-glare glass and multi-angle detection are realized, and clarity detection is carried out in combination with a light source.
It realizes efficient and accurate detection of AG anti-glare glass, ensures the accuracy and efficiency of the detection results, and is suitable for glass samples of different sizes and angles.
Smart Images

Figure CN120293974A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of glass detection, and particularly to a detection device and a detection method for the clarity of AG anti-glare glass. Background Art
[0002] AG anti-glare glass is a glass product that can effectively reduce the reflected light on the glass surface, reduce the influence of glare, and improve visual comfort through special process treatment. In many fields, such as electronic display devices, optical instruments, etc., the demand for AG anti-glare glass is increasing day by day. As a key index affecting its use performance, accurately detecting the clarity of AG anti-glare glass is crucial;
[0003] Existing glass clarity detection methods and devices have certain limitations for the detection of AG anti-glare glass. On the one hand, traditional detection devices are difficult to accurately simulate the lighting conditions in actual use scenarios, resulting in a large deviation between the detection results and the actual application situation; on the other hand, the detection methods often rely too much on manual subjective judgment, with low detection accuracy and poor efficiency, and cannot meet the requirements for rapid and accurate detection of AG anti-glare glass on large-scale production lines. Therefore, it is of great practical significance to develop an efficient and accurate detection device and detection method specifically for the clarity of AG anti-glare glass. Summary of the Invention
[0004] A detection device and a detection method for the clarity of AG anti-glare glass proposed by the present invention solve the above deficiencies in the prior art.
[0005] In order to achieve the above object, the present invention adopts the following technical solutions:
[0006] A detection device for the clarity of AG anti-glare glass includes a machine body, and further includes:
[0007] A conveying mechanism, inside the machine body, for conveying the AG anti-glare glass to be detected;
[0008] A size adjusting mechanism, inside the machine body, and connected to the conveying mechanism on one side, for adjusting the size according to the AG anti-glare glass to be detected and performing clamping and limiting;
[0009] An operation component, on one side of the size adjusting mechanism, for outputting power to the size adjusting mechanism;
[0010] An angle adjusting mechanism, on one side of the conveying mechanism, for driving the size adjusting mechanism to perform inclination adjustment.
[0011] Further, the conveying mechanism includes a first fixed plate fixedly connected to one side inside the machine body, a first threaded rod rotatably connected between the first fixed plate and the inside of the machine body, a moving frame threadedly connected to the first threaded rod, a second fixed plate fixedly connected to the other side inside the machine body, a guide rod fixedly connected between the second fixed plate and the inside of the machine body, a threaded hole and a guide hole respectively formed in the moving frame, the first threaded rod being threadedly sleeved inside the threaded hole, and the guide rod being movably sleeved inside the guide hole.
[0012] Further, a first motor is fixedly connected to one side of the first fixed plate, a first pulley is fixedly connected to the output end of the first motor, a second pulley is fixedly connected to one end of the first threaded rod, and the second pulley and the first pulley are externally connected by the same belt for transmission.
[0013] Further, the size adjustment mechanism includes a first support frame, a second threaded rod rotatably connected to the bottom of the first support frame, a first linkage frame threadedly connected to the second threaded rod, a first extension plate fixedly connected to the first linkage frame, a second support frame fixedly connected to one end of the first extension plate, a third threaded rod rotatably connected to the bottom of the second support frame, a second linkage frame threadedly connected to the third threaded rod, a second extension plate fixedly connected to the second linkage frame, and a third support frame fixedly connected to one end of the second extension plate.
[0014] Further, a third extension plate is fixedly connected to the other end of the third support frame, a third linkage frame is fixedly connected to the bottom of the third extension plate, a first sliding rod is fixedly connected to the bottom of the first support frame, a first sliding frame is slidably connected to the first sliding rod, a fourth extension plate is fixedly connected to the first sliding frame, a fourth support frame is fixedly connected to one end of the fourth extension plate, a second sliding rod is fixedly connected to the bottom of the fourth support frame, and the second sliding rod is movably sleeved inside the third linkage frame.
[0015] Further, the operation component includes a first gear fixedly connected to one end of the third threaded rod, a control handle and a connecting rod rotatably connected to the bottom of the second support frame, a second gear fixedly connected to one side of the control handle, the second gear being meshed and driven with the first gear on one side, a third gear fixedly connected to one end of the connecting rod corresponding to the second gear, and the third gear being meshed and driven with the other side of the second gear.
[0016] Further, the other end of the connecting rod is fixedly connected with a first bevel gear. One side of the bottom of the second support frame is rotatably connected with a linkage rod. One end of the linkage rod corresponding to the first bevel gear is fixedly connected with a second bevel gear. One side of the second bevel gear is meshed and driven with the first bevel gear. A receiving groove is formed inside the second threaded rod. Two limiting blocks are fixedly connected inside the receiving groove. Linkage grooves are formed in the linkage rod corresponding to the limiting blocks. The linkage rod is movably sleeved inside the receiving groove, and the limiting blocks are movably sleeved inside the limiting grooves.
[0017] Further, the angle adjustment mechanism includes a motor bracket fixedly connected to one side of the moving frame. A second motor is fixedly connected to the motor bracket. The output shaft of the second motor is fixedly connected with a third bevel gear. One side of the moving frame is rotatably connected with a worm. One end of the worm is fixedly connected with a fourth bevel gear. One side of the fourth bevel gear is meshed and driven with the third bevel gear. A short shaft is rotatably connected above the moving frame. One end of the short shaft corresponding to the worm is fixedly connected with a worm gear. One side of the worm gear is meshed and driven with the worm. A swing frame is fixedly connected to the short shaft. One side of the swing frame is fixedly connected to one side of the first support frame.
[0018] Further, first through holes are respectively formed on both sides of the first support frame. First moving grooves and second moving grooves are respectively formed at the bottom of the first support frame. The first moving groove and the second moving groove respectively penetrate through the corresponding first through holes. The first extension plate movably penetrates through one of the first through holes, and the first linkage frame movably penetrates through the first moving groove. The fourth extension plate is movably sleeved inside the other first through hole, and the first sliding frame penetrates through the second moving groove;
[0019] A second through hole is formed on one side of the fourth support frame corresponding to the third extension plate. A third moving groove is formed at the bottom of the fourth support plate. The third extension plate is movably sleeved inside the second through hole, and the third linkage frame penetrates through the third moving groove. A light source is fixedly connected above the interior of the machine body, and an observation port is formed on the exterior of the machine body.
[0020] A method for detecting the clarity of AG anti-glare glass, which is applicable to the detection device for the clarity of AG anti-glare glass described in any one of the above, comprises the following steps:
[0021] Step 1: Place the AG anti-glare glass inside the size adjustment mechanism so that one corner of the AG anti-glare glass coincides with the first support frame;
[0022] Step 2: After placement, rotate the control handle to drive the rotation of the second gear. The rotation of the second gear drives the synchronous rotation of the first gear and the third gear respectively. The rotation of the third gear drives the rotation of the connecting rod. The rotation of the connecting rod drives the rotation of the first bevel gear. The rotation of the first bevel gear meshes and transmits with the second bevel gear, and at the same time drives the rotation of the linkage rod. The rotation of the linkage rod drives the rotation of the second threaded rod through the linkage groove. The rotation of the second threaded rod drives the first linkage frame to move along the first moving groove. The movement of the first linkage frame drives the movement of the first extension plate. The movement of the first extension plate drives the movement of the second support frame. The movement of the second support frame adjusts the horizontal dimension of the dimension adjustment mechanism;
[0023] At the same time, the rotation of the first gear drives the rotation of the third threaded rod. The rotation of the third threaded rod drives the movement of the second linkage frame and at the same time drives the movement of the second extension plate. The movement of the second extension plate drives the movement of the third support frame. The movement of the third support frame synchronously drives the movement of the fourth support frame. The movement of the third support frame adjusts the vertical dimension of the dimension adjustment mechanism. Through the movement of the second support frame, the third support frame and the fourth support frame, it is adjusted according to the size of the AG anti-glare glass, so as to clamp and fix the AG anti-glare glass;
[0024] Step 3: After fixation, the first motor starts to drive the rotation of the first pulley. The rotation of the first pulley drives the rotation of the second pulley through the belt. The rotation of the second pulley drives the rotation of the first threaded rod. The rotation of the first threaded rod drives the moving frame to move along the guide rod. The movement of the moving frame drives the movement of the swing frame. The movement of the swing frame drives the movement of the first support frame. The movement of the first support frame drives the AG anti-glare glass to move. When the moving frame moves to the threaded end of the first threaded rod, the first motor stops running;
[0025] At this time, the AG anti-glare glass is under the light source, so as to perform clarity detection processing on the AG anti-glare glass. At the same time, the operator observes through the observation port;
[0026] Step 4: When multi-angle detection of the AG anti-glare glass is required, the second motor starts and drives the rotation of the third bevel gear at the same time. The rotation of the third bevel gear drives the synchronous rotation of the fourth bevel gear. The rotation of the fourth bevel gear drives the rotation of the worm. The rotation of the worm meshes with the worm wheel. The rotation of the worm wheel drives the rotation of the short shaft. The rotation of the short shaft drives the swing of the swing frame. The swing of the swing frame drives the first support frame to swing synchronously, so as to drive the AG anti-glare glass to perform angle flipping processing. Through the adjustment of the angle of the AG anti-glare glass, multi-angle clarity detection processing is performed on the AG anti-glare glass.
[0027] Compared with the existing technology, the beneficial effects of the present invention are as follows:
[0028] 1. By installing a size adjustment mechanism and an angle adjustment mechanism, the present invention performs size adjustment processing on AG anti-glare glass of different sizes. The size adjustment mechanism adjusts according to the size of the AG anti-glare glass by moving the second support frame, the third support frame, and the fourth support frame, so as to clamp and fix the AG anti-glare glass.
[0029] 2. By installing an operation component and a conveying mechanism, the present invention outputs power to the size adjustment mechanism and automatically conveys the AG anti-glare glass at the same time. The operation component drives the rotation of the second gear through the control handle, and at the same time drives the synchronous rotation of the first gear and the fifth gear. The rotation of the third gear drives the rotation of the connecting rod, thereby driving the synchronous rotation processing of the linkage rod.
[0030] In summary, the device can not only automatically convey the AG anti-glare glass, but also perform size adjustment processing according to the AG anti-glare glass of different sizes, and perform clamping and fixing processing synchronously. At the same time, it can also perform angle flipping adjustment processing on the AG anti-glare glass, thus ensuring the detection effect and efficiency of the clarity of the AG anti-glare glass. BRIEF DESCRIPTION OF THE DRAWINGS
[0031] Figure 1 FIG. is an overall top-down three-dimensional structural schematic diagram of a detection device for the clarity of AG anti-glare glass proposed by the present invention;
[0032] Figure 2 FIG. is an overall bottom-up three-dimensional structural schematic diagram of a detection device for the clarity of AG anti-glare glass proposed by the present invention;
[0033] Figure 3 FIG. is a partial cross-sectional top-down three-dimensional structural schematic diagram of the body of a detection device for the clarity of AG anti-glare glass proposed by the present invention;
[0034] Figure 4 FIG. is a partial cross-sectional bottom-up three-dimensional structural schematic diagram of the body of a detection device for the clarity of AG anti-glare glass proposed by the present invention;
[0035] Figure 5 FIG. is a top-down three-dimensional structural schematic diagram of the conveying mechanism and the size adjustment mechanism of a detection device for the clarity of AG anti-glare glass proposed by the present invention;
[0036] Figure 6 FIG. is a top-down three-dimensional structural schematic diagram of the first support frame, the fourth support frame, the third support frame, and the second support frame of a detection device for the clarity of AG anti-glare glass proposed by the present invention;
[0037] Figure 7Top-down perspective three-dimensional structure schematic diagram of the size adjustment mechanism and angle adjustment mechanism of a detection device for the clarity of AG anti-glare glass proposed by the present invention;
[0038] Figure 8 Top-down perspective three-dimensional structure schematic diagram of the conveying mechanism of a detection device for the clarity of AG anti-glare glass proposed by the present invention;
[0039] Figure 9 Bottom-up perspective three-dimensional structure schematic diagram of the size adjustment mechanism of a detection device for the clarity of AG anti-glare glass proposed by the present invention;
[0040] Figure 10 Bottom-up perspective three-dimensional structure schematic diagram of the operation component and the second support frame of a detection device for the clarity of AG anti-glare glass proposed by the present invention;
[0041] Figure 11 Bottom-up perspective three-dimensional structure schematic diagram of the third support frame, the second extension plate and the third extension plate of a detection device for the clarity of AG anti-glare glass proposed by the present invention;
[0042] Figure 12 Bottom-up perspective three-dimensional structure schematic diagram of the first support frame, the second threaded rod and the first sliding rod of a detection device for the clarity of AG anti-glare glass proposed by the present invention;
[0043] Figure 13 Bottom-up perspective three-dimensional structure schematic diagram of the moving frame and the angle adjustment mechanism of a detection device for the clarity of AG anti-glare glass proposed by the present invention;
[0044] Figure 14 Bottom-up perspective three-dimensional structure schematic diagram of the fourth support frame of a detection device for the clarity of AG anti-glare glass proposed by the present invention;
[0045] Figure 15 Top-down perspective three-dimensional structure schematic diagram of the operation component of a detection device for the clarity of AG anti-glare glass proposed by the present invention.
[0046] In the figure: 1, the body; 2, the conveying mechanism; 201, the first threaded rod; 202, the moving frame; 203, the guide rod; 204, the first motor; 205, the first pulley; 206, the second pulley; 207, the belt; 3, the size adjusting mechanism; 301, the first support frame; 302, the second threaded rod; 303, the first linkage frame; 304, the first extension plate; 305, the second support frame; 306, the third threaded rod; 307, the second linkage frame; 308, the second extension plate; 309, the third support frame; 310, the third extension plate; 311, the third linkage frame; 312, the fourth extension plate; 313, the fourth support frame; 314, the second sliding rod; 315, the first sliding frame; 316, the first sliding rod; 4, the operation component; 401, the first gear; 402, the control handle; 403, the second gear; 404, the connecting rod; 405, the third gear; 406, the first bevel gear; 407, the linkage rod; 408, the linkage groove; 409, the second bevel gear; 5, the second through hole; 6, the third moving groove; 7, the first through hole; 8, the first moving groove; 9, the second moving groove; 10, the angle adjusting mechanism; 1001, the second motor; 1002, the third bevel gear; 1003, the worm; 1004, the fourth bevel gear; 1005, the swing frame; 1006, the short shaft; 1007, the worm wheel; 11, the light source; 12, the observation port. Specific embodiments
[0047] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments.
[0048] In the description of the present invention, it should be understood that the orientation or positional relationship indicated by the terms "upper", "lower", "front", "rear", "left", "right", "top", "bottom", "inner", "outer", etc. is based on the orientation or positional relationship shown in the accompanying drawings, and is only for the convenience of describing the present invention and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore should not be construed as a limitation to the present invention.
[0049] Embodiment 1
[0050] Refer to Figures 1-15 : A detection device for the clarity of AG anti-glare glass, including the body 1, and further including: a conveying mechanism 2, a size adjusting mechanism 3, an operation component 4, and an angle adjusting mechanism 10;
[0051] The conveying mechanism 2 includes a first fixing plate fixedly connected to one side inside the machine body 1, a first threaded rod 201 rotatably connected between the first fixing plate and the inside of the machine body 1. A moving frame 202 is threadedly connected to the first threaded rod 201. On the other side inside the machine body 1, a second fixing plate is fixedly connected. A guide rod 203 is fixedly connected between the second fixing plate and the inside of the machine body 1. Threaded holes and guide holes are respectively formed in the moving frame 202. The first threaded rod 201 is threadedly sleeved inside the threaded hole, and the guide rod 203 is movably sleeved inside the guide hole;
[0052] The size adjustment mechanism 3 includes a first support frame 301. A second threaded rod 302 is rotatably connected to the bottom of the first support frame 301. A first linkage frame 303 is threadedly connected to the second threaded rod 302. A first extension plate 304 is fixedly connected to the first linkage frame 303. One end of the first extension plate 304 is fixedly connected to a second support frame 305. A third threaded rod 306 is rotatably connected to the bottom of the second support frame 305. A second linkage frame 307 is threadedly connected to the third threaded rod 306. A second extension plate 308 is fixedly connected to the second linkage frame 307. One end of the second extension plate 308 is fixedly connected to a third support frame 309;
[0053] The operation component 4 includes a first gear 401 fixedly connected to one end of the third threaded rod 306. A control handle 402 and a connecting rod 404 are rotatably connected to the bottom of the second support frame 305. A second gear 403 is fixedly connected to one side of the control handle 402. One side of the second gear 403 is meshed and driven with the first gear 401. A third gear 405 is fixedly connected to one end of the connecting rod 404 corresponding to the second gear 403. One side of the third gear 405 is meshed and driven with the other side of the second gear 403;
[0054] The angle adjustment mechanism 10 includes a motor bracket fixedly connected to one side of the moving frame 202. A second motor 1001 is fixedly connected to the motor bracket. An output shaft of the second motor 1001 is fixedly connected to a third bevel gear 1002. A worm 1003 is rotatably connected to one side of the moving frame 202. A fourth bevel gear 1004 is fixedly connected to one end of the worm 1003. One side of the fourth bevel gear 1004 is meshed and driven with the third bevel gear 1002. A short shaft 1006 is rotatably connected above the moving frame 202. A worm gear 1007 is fixedly connected to one end of the short shaft 1006 corresponding to the worm 1003. One side of the worm gear 1007 is meshed and driven with the worm 1003. A swing frame 1005 is fixedly connected to the short shaft 1006. One side of the swing frame 1005 is fixedly connected to one side of the first support frame 301.
[0055] In the present invention, a first motor 204 is fixedly connected to one side of the first fixing plate. The output end of the first motor 204 is fixedly connected to a first pulley 205. One end of the first threaded rod 201 is fixedly connected to a second pulley 206. A same belt 207 is externally connected to the second pulley 206 and the first pulley 205 for transmission. The start of the first motor 204 drives the rotation of the first pulley 205, and at the same time drives the rotation of the second pulley 206 through the belt 207.
[0056] In the present invention, the other end of the third support frame 309 is fixedly connected to a third extension plate 310. The bottom of the third extension plate 310 is fixedly connected to a third linkage frame 311. The bottom of the first support frame 301 is fixedly connected to a first sliding rod 316. A first sliding frame 315 is slidably connected to the first sliding rod 316. A fourth extension plate 312 is fixedly connected to the first sliding frame 315. One end of the fourth extension plate 312 is fixedly connected to a fourth support frame 313. The bottom of the fourth support frame 313 is fixedly connected to a second sliding rod 314. The second sliding rod 314 is movably sleeved inside the third linkage frame 311. The movement of the first support frame 313 drives the third extension plate 310 to move smoothly along the second sliding rod 314.
[0057] In the present invention, the other end of the connecting rod 404 is fixedly connected to a first bevel gear 406. One side of the bottom of the second support frame 305 is rotatably connected to a linkage rod 407. One end of the linkage rod 407 is fixedly connected to a second bevel gear 409 corresponding to the first bevel gear 406. The side of the second bevel gear 409 is meshed and transmitted with the first bevel gear 406. A receiving groove is formed inside the second threaded rod 302. Two limiting blocks are fixedly connected to the inside of the receiving groove. A linkage groove 408 is formed in the linkage rod 407 corresponding to the limiting blocks. The linkage rod 407 is movably sleeved inside the receiving groove, and the limiting blocks are movably sleeved inside the limiting grooves. The rotation of the linkage rod 407 synchronously drives the rotation of the second threaded rod 302 through the linkage groove 408.
[0058] In the present invention, first through holes 7 are respectively formed on both sides of the first support frame 301, first moving grooves 8 and second moving grooves 9 are respectively formed at the bottom of the first support frame 301, the first moving grooves 8 and the second moving grooves 9 respectively penetrate through the corresponding first through holes 7, the first extension plate 304 movably penetrates through the inside of one of the first through holes 7, and the first linkage frame 303 movably penetrates through the first moving groove 8. The fourth extension plate 312 is movably sleeved inside the other first through hole 7, and the first sliding frame 315 penetrates through the second moving groove 9. A second through hole 5 is formed at one side of the fourth support frame 313 corresponding to the third extension plate 310, and a third moving groove 6 is formed at the bottom of the fourth support plate 313. The third extension plate 310 is movably sleeved inside the second through hole 5, and the third linkage frame 311 penetrates through the third moving groove 6. A light source 11 is fixedly connected above the inside of the machine body 1, and an observation port 12 is formed on the outside of the machine body 1. The AG anti-glare glass is subjected to detection irradiation treatment through the light source 11, and detection observation is carried out through the observation port 12 at the same time.
[0059] Embodiment 2
[0060] A method for detecting the clarity of an AG anti-glare glass, which is applicable to the above-mentioned detection device for the clarity of an AG anti-glare glass, and the steps are as follows:
[0061] Step 1: Place the AG anti-glare glass inside the size adjustment mechanism 3 so that one corner of the AG anti-glare glass coincides with the first support frame 301;
[0062] Step 2: After placement, drive the rotation of the second gear 403 by rotating the control handle 402. Drive the synchronous rotation of the first gear 401 and the third gear 405 respectively through the rotation of the second gear 403. Drive the rotation of the connecting rod 404 through the rotation of the third gear 405. Drive the rotation of the first bevel gear 406 through the rotation of the connecting rod 404. The rotation of the first bevel gear 406 is meshed and driven with the second bevel gear 409, and at the same time drive the rotation of the linkage rod 407. Drive the rotation of the second threaded rod 302 through the linkage groove 408 by the rotation of the linkage rod 407. Drive the first linkage frame 303 to move along the first moving groove 8 through the movement of the second threaded rod 302. Drive the movement of the first extension plate 304 through the movement of the first linkage frame 303. Drive the movement of the second support frame 305 through the movement of the first extension plate 304. Adjust the lateral dimension of the size adjustment mechanism 3 through the movement of the second support frame 305;
[0063] Meanwhile, the rotation of the first gear 401 drives the rotation of the third threaded rod 306. The rotation of the third threaded rod 306 drives the movement of the second linkage 307, and simultaneously drives the movement of the second extension plate 308. The movement of the second extension plate 308 drives the movement of the third support frame 309. The movement of the third support frame 309 synchronously drives the movement of the fourth support frame 313. The vertical dimension of the dimension adjustment mechanism 3 is adjusted through the movement of the third support frame 309. Through the movement of the second support frame 305, the third support frame 309, and the fourth support frame 313, it is adjusted according to the size of the AG anti-glare glass, so as to clamp and fix the AG anti-glare glass;
[0064] Step 3: After fixation, the first motor 204 starts to drive the rotation of the first pulley 205. The rotation of the first pulley 205 drives the rotation of the second pulley 206 through the belt 207. The rotation of the second pulley 206 drives the rotation of the first threaded rod 201. The rotation of the first threaded rod 201 drives the movement of the moving frame 202 along the guide rod 203. The movement of the moving frame 202 drives the movement of the swing frame 1005. The movement of the swing frame 1005 drives the movement of the first support frame 301. The movement of the first support frame 301 drives the movement of the AG anti-glare glass. When the moving frame 202 moves to the threaded end of the first threaded rod 201, the first motor 204 stops running;
[0065] At this time, the AG anti-glare glass is under the light source 11, so as to perform clarity detection processing on the AG anti-glare glass. At the same time, the operator observes and detects through the observation port 12;
[0066] Step 4: When it is necessary to perform multi-angle detection on the AG anti-glare glass, the second motor 1001 starts and simultaneously drives the rotation of the third bevel gear 1002. The rotation of the third bevel gear 1002 drives the synchronous rotation of the fourth bevel gear 1004. The rotation of the fourth bevel gear 1004 drives the rotation of the worm 1003. The rotation of the worm 1003 meshes with the worm wheel 1007. The rotation of the worm wheel 1007 drives the rotation of the short shaft 1006. The rotation of the short shaft 1006 drives the swing of the swing frame 1005. The swing of the swing frame 1005 drives the synchronous swing of the first support frame 301, so as to drive the AG anti-glare glass to perform angle flipping processing. Through the adjustment of the angle of the AG anti-glare glass, multi-angle clarity detection processing is performed on the AG anti-glare glass.
[0067] The above is only a preferred specific embodiment of the present invention, but the protection scope of the present invention is not limited thereto. Any person skilled in the art within the technical scope disclosed by the present invention, according to the technical solution and inventive concept of the present invention, makes equivalent replacements or changes, and should be covered by the protection scope of the present invention.
Claims
1. A detection device for the clarity of AG anti-glare glass, comprising a body (1), characterized in that, Further comprising: A conveying mechanism (2) inside the machine body (1) for conveying the AG anti-glare glass to be detected; A size adjusting mechanism (3) inside the machine body (1) and connected to one side of the conveying mechanism (2) for adjusting the size according to the AG anti-glare glass to be detected and clamping and limiting it; An operating component (4) on one side of the size adjusting mechanism (3) for outputting power to the size adjusting mechanism (3); An angle adjusting mechanism (10) on one side of the conveying mechanism (2) for driving the size adjusting mechanism (3) to adjust the inclination angle.
2. The detection device for the clarity of AG anti-glare glass according to claim 1, wherein, The conveying mechanism (2) includes a first fixing plate fixedly connected to one side inside the machine body (1), a first threaded rod (201) rotatably connected between the first fixing plate and the inside of the machine body (1), a moving frame (202) threadedly connected to the first threaded rod (201), a second fixing plate fixedly connected to the other side inside the machine body (1), a guide rod (203) fixedly connected between the second fixing plate and the inside of the machine body (1), threaded holes and guide holes respectively formed on the moving frame (202), the first threaded rod (201) being threadedly sleeved inside the threaded hole, and the guide rod (203) being movably sleeved inside the guide hole.
3. The detection device for the clarity of an AG anti-glare glass according to claim 2, characterized in that, One side of the first fixing plate is fixedly connected with a first motor (204), the output end of the first motor (204) is fixedly connected with a first pulley (205), one end of the first threaded rod (201) is fixedly connected with a second pulley (206), and the second pulley (206) and the first pulley (205) are externally connected with the same belt (207) in a transmission manner.
4. The detecting device for the clarity of an AG anti-glare glass according to claim 2, wherein, The size adjusting mechanism (3) includes a first support frame (301), a second threaded rod (302) rotatably connected to the bottom of the first support frame (301), a first linkage frame (303) threadedly connected to the second threaded rod (302), a first extension plate (304) fixedly connected to the first linkage frame (303), a second support frame (305) fixedly connected to one end of the first extension plate (304), a third threaded rod (306) rotatably connected to the bottom of the second support frame (305), a second linkage frame (307) threadedly connected to the third threaded rod (306), a second extension plate (308) fixedly connected to the second linkage frame (307), and a third support frame (309) fixedly connected to one end of the second extension plate (308).
5. The detection device for the clarity of an AG anti-glare glass according to claim 4, characterized in that, The other end of the third support frame (309) is fixedly connected to a third extension plate (310), the bottom of the third extension plate (310) is fixedly connected to a third linkage frame (311), the bottom of the first support frame (301) is fixedly connected to a first sliding rod (316), the first sliding rod (316) is slidably connected to a first sliding frame (315), the first sliding frame (315) is fixedly connected to a fourth extension plate (312), one end of the fourth extension plate (312) is fixedly connected to a fourth support frame (313), the bottom of the fourth support frame (313) is fixedly connected to a second sliding rod (314), and the second sliding rod (314) is movably sleeved inside the third linkage frame (311).
6. The detection device for the clarity of an AG anti-glare glass according to claim 4, characterized in that, The operating assembly (4) comprises a first gear (401) fixedly connected to one end of a third threaded rod (306); the bottom of the second support frame (305) is rotatably connected to a control handle (402) and a connecting rod (404); one side of the control handle (402) is fixedly connected to a second gear (403); one side of the second gear (403) is meshed with the first gear (401) for transmission; one end of the connecting rod (404) is fixedly connected to a third gear (405) corresponding to the second gear (403); one side of the third gear (405) is meshed with the other side of the second gear (403) for transmission.
7. The detecting device for the clarity of an AG anti-glare glass according to claim 6, characterized in that, The other end of the connecting rod (404) is fixedly connected to the first bevel gear (406), and one side of the bottom of the second support frame (305) is rotatably connected to a linkage rod (407), one end of the linkage rod (407) is fixedly connected to the second bevel gear (409) corresponding to the first bevel gear (406), and one side of the second bevel gear (409) is meshed with the first bevel gear (406) for transmission, and a storage groove is provided inside the second threaded rod (302), and two limit blocks are fixedly connected inside the storage groove, and a linkage groove (408) is provided on the linkage rod (407) corresponding to the limit block, and the linkage rod (407) is movably sleeved inside the storage groove, and the limit block is movably sleeved inside the limit groove.
8. The detection device for the clarity of an AG anti-glare glass according to claim 4, characterized in that, The angle adjustment mechanism (10) includes a motor bracket fixedly connected to one side of the moving frame (202). A second motor (1001) is fixedly connected to the motor bracket. The output shaft of the second motor (1001) is fixedly connected to a third bevel gear (1002). One side of the moving frame (202) is rotatably connected to a worm (1003). One end of the worm (1003) is fixedly connected to a fourth bevel gear (1004). One side of the fourth bevel gear (1004) is meshed and driven with the third bevel gear (1002). Above the moving frame (202) is rotatably connected a short shaft (1006). One end of the short shaft (1006) corresponding to the worm (1003) is fixedly connected to a worm gear (1007). One side of the worm gear (1007) is meshed and driven with the worm (1003). A swing frame (1005) is fixedly connected to the short shaft (1006). One side of the swing frame (1005) is fixedly connected to one side of the first support frame (301).
9. The detection device for the clarity of an AG anti-glare glass according to claim 5, characterized in that, On both sides of the first support frame (301), first through holes (7) are respectively opened. At the bottom of the first support frame (301), a first moving groove (8) and a second moving groove (9) are respectively opened. The first moving groove (8) and the second moving groove (9) respectively penetrate through the corresponding first through holes (7). The first extension plate (304) movably penetrates inside one of the first through holes (7), and the first linkage frame (303) movably penetrates through the first moving groove (8). The fourth extension plate (312) is movably sleeved inside the other first through hole (7), and the first sliding frame (315) penetrates through the second moving groove (9); On one side of the fourth support frame (313) corresponding to the third extension plate (310), a second through hole (5) is opened. At the bottom of the fourth support frame (313), a third moving groove (6) is opened. The third extension plate (310) is movably sleeved inside the second through hole (5), and the third linkage frame (311) penetrates through the third moving groove (6). Above the inside of the machine body (1), a light source (11) is fixedly connected. An observation port (12) is opened on the outside of the machine body (1).
10. A method for detecting the clarity of AG anti-glare glass, which is applicable to the detecting device for the clarity of AG anti-glare glass described in any one of the above claims 1-9, characterized in that, The steps are as follows: Step 1: Place the AG anti-glare glass inside the size adjustment mechanism (3) so that one corner of the AG anti-glare glass coincides with the first support frame (301); Step 2: After placement, rotate the control handle (402) to drive the rotation of the second gear (403). The rotation of the second gear (403) drives the synchronous rotation of the first gear (401) and the third gear (405) respectively. The rotation of the third gear (405) drives the rotation of the connecting rod (404). The rotation of the connecting rod (404) drives the rotation of the first bevel gear (406). The rotation of the first bevel gear (406) meshes and drives with the second bevel gear (409), and at the same time drives the rotation of the linkage rod (407). The rotation of the linkage rod (407) drives the rotation of the second threaded rod (302) through the linkage groove (408). The rotation of the second threaded rod (302) drives the first linkage frame (303) to move along the first moving groove (8). The movement of the first linkage frame (303) drives the movement of the first extension plate (304). The movement of the first extension plate (304) drives the movement of the second support frame (305). The movement of the second support frame (305) adjusts the lateral dimension of the size adjustment mechanism (3); At the same time, the rotation of the first gear (401) drives the rotation of the third threaded rod (306). The rotation of the third threaded rod (306) drives the movement of the second linkage frame (307), and at the same time drives the movement of the second extension plate (308). The movement of the second extension plate (308) drives the movement of the third support frame (309). The movement of the third support frame (309) synchronously drives the movement of the fourth support frame (313). The movement of the third support frame (309) adjusts the vertical dimension of the size adjustment mechanism (3). Through the movement of the second support frame (305), the third support frame (309) and the fourth support frame (313), it is adjusted according to the size of the AG anti-glare glass, so as to clamp and fix the AG anti-glare glass; Step 3: After fixation, the first motor (204) starts to drive the rotation of the first pulley (205). The rotation of the first pulley (205) drives the rotation of the second pulley (206) through the belt (207). The rotation of the second pulley (206) drives the rotation of the first threaded rod (201). The rotation of the first threaded rod (201) drives the moving frame (202) to move along the guide rod (203). The movement of the moving frame (202) drives the movement of the swing frame (1005). The movement of the swing frame (1005) drives the movement of the first support frame (301). The movement of the first support frame (301) drives the movement of the AG anti-glare glass. When the moving frame (202) moves to the threaded end of the first threaded rod (201), the first motor (204) stops running; At this time, the AG anti-glare glass is located below the light source (11), so as to perform clarity detection processing on the AG anti-glare glass. At the same time, the operator observes through the observation port (12); Step 4: When multi-angle detection of the AG anti-glare glass is required, the second motor (1001) starts, driving the rotation of the third bevel gear (1002) at the same time. The rotation of the third bevel gear (1002) drives the synchronous rotation of the fourth bevel gear (1004). The rotation of the fourth bevel gear (1004) drives the rotation of the worm (1003). The rotation of the worm (1003) meshes with the worm gear (1007). The rotation of the worm gear (1007) drives the rotation of the short shaft (1006). The rotation of the short shaft (1006) drives the swing of the swing frame (1005). The swing of the swing frame (1005) drives the first support frame (301) to swing synchronously, thereby driving the AG anti-glare glass to perform an angle flipping process. Through the adjustment of the angle of the AG anti-glare glass, multi-angle clarity detection processing of the AG anti-glare glass is carried out.