Modified organic silicon optical cement production equipment and use method
Patent Information
- Application Number
- CN202510080656.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-20
- Publication Date
- 2025-05-13
Smart Images

Figure CN119971610A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of optical adhesive production equipment, and in particular to a modified organic silicon optical adhesive production equipment and a use method. Background Art
[0002] In the production process of organic silicone optical adhesive, it is necessary to mix organic silicone monomers and cross-linking agents and other materials in a certain proportion, and then use processing equipment to filter the mixed colloid to effectively remove solid particles and impurities that may be contained in the colloid to improve the purity of the product. However, there are still some problems with the existing organic silicone optical adhesive production equipment:
[0003] For example, a modified organic silicone optical adhesive production device with publication number CN117717821B includes a tank body, a top cover is provided at the top of the tank body, a fixed seat plate is provided at the bottom of the tank body, a motor is fixedly connected to the inner side of the fixed seat plate, a rotating shaft is fixedly connected to the top of the output shaft of the motor, and a solid material port is fixedly connected to the top of the tank body;
[0004] The publication number is CN220736655U, which is a filtering device for optical adhesive, and relates to the field of chemical processing technology. The filtering device for optical adhesive comprises a filtering tank, a pressure pump, a liquid inlet port, a liquid outlet port, a pump inlet port, a pump out port, a delivery pipe, a stepped trough, and a filter screen. The horizontal height of the liquid outlet port is lower than the horizontal height of the filter screen below, and the mesh number of the filter screen located above is smaller than the mesh number of the filter screen located below.
[0005] During the use of the above device, the area for filtering the organic silicon optical adhesive is small, thereby reducing the working efficiency, and the device is difficult to effectively remove impurities trapped during the process.
[0006] In view of the above problems, it is urgent to carry out innovative design based on the original silicone optical adhesive production equipment. Summary of the invention
[0007] The purpose of the present invention is to provide a modified silicone optical adhesive production equipment and a method of use, so as to solve the problem that during the use of the existing silicone optical adhesive production equipment proposed in the above background technology, the area for filtering the silicone optical adhesive is small, thereby reducing the work efficiency, and the device is difficult to effectively remove impurities trapped in the process.
[0008] To achieve the above object, the present invention provides the following technical solution: a modified silicone optical adhesive production device, comprising:
[0009] A processing shell, a feed hopper is fixedly connected to the top port thereof, a main rubber discharge pipe is arranged directly below the feed hopper, and the upper port of the main rubber discharge pipe is fixedly connected to the bottom center of the processing shell, and the upper end of a fixed bracket is fixedly installed on the inner wall of the processing shell;
[0010] Also includes:
[0011] The main filter plate, both ends of which are fixedly connected to the inner wall of the processing shell to form a colloid filtering structure, the processing shell is rotatably embedded with symmetrically distributed rotating disks, and the main filter plate is fitted between the rotating disks, the output shaft of the swing motor is coaxially fixed and installed on the disk surface of the rotating disk, and the swing motor is fixedly connected to the lower end of the fixed bracket, the inner wall of the main filter plate is fitted with both ends of the secondary processing cover, and the outer walls of both sides of the secondary processing cover are fixedly connected between the rotating disks;
[0012] A connecting disk is rotatably embedded in the corresponding rotating disk, one end of the connecting shaft is coaxially fixedly connected to the disk surface of the connecting disk, and the other end of the connecting shaft rotates and penetrates the corresponding rotating disk, and the lower half of the connecting shaft rotates and fits on the top of the discharge frame, the disk surface of the connecting disk and the disk surface of the rotating disk are arranged flush, one end of the discharge frame is fixedly embedded in the rotating disk, and the other end of the discharge frame is fitted on the disk surface of the connecting disk, the side of the discharge frame away from the connecting shaft is fitted on the inner wall of the main filter plate, and the side wall of the connecting shaft A pressure plate is fixedly installed on the upper part, and one end of the pressure plate away from the connecting shaft is fitted on the inner wall of the secondary processing cover, and force-bearing mechanisms are fixedly installed on the outer walls of both ends of the secondary processing cover, and the force-bearing mechanism includes a movable tooth head, and the movable tooth head is fitted and embedded in a slide groove opened at the end of the secondary processing cover, and symmetrically distributed pressure rods are fixedly installed on the end face of the movable tooth head, and one end of the pressure rod away from the movable tooth head is slidably inserted on the inner side of the storage tube, and the end of the storage tube is slidably embedded on the inner wall of the loading box, and the loading box is fixedly covered on the outer side of the slide groove of the secondary processing cover.
[0013] Preferably, the secondary processing hood has an arc-shaped structure, and the center of the secondary processing hood is on the axis of the connecting shaft. The ends of the secondary processing hood that are bonded to the main filter plate are provided with corresponding glue inlets, and the main filter plate has a semi-arc structure, and the center of the main filter plate is on the axis of the rotating disk, so that the rotating disk can drive the secondary processing hood to move along the main filter plate.
[0014] Preferably, the end of the connecting shaft away from the connecting disk is coaxially fixedly connected with a transmission gear, and the transmission gear is fitted on the outer wall of the rotating disk, and a gear ring is provided above the transmission gear, and the two form a meshing transmission relationship, and one side of the gear ring is coaxially fitted on the rotating disk, and the other side of the gear ring is fixedly mounted on the fixed bracket, and the diameter of the gear ring is larger than the diameter of the transmission gear, and the output shaft of the swing motor is rotated and penetrated through the gear ring, so that the transmission gear can drive the connecting shaft to rotate.
[0015] Preferably, symmetrically distributed ports are provided on both sides of the discharge rack, and symmetrically distributed solenoid valve tubes are provided at the ends of the discharge rack, and the tube bodies of the solenoid valve tubes are fixedly inserted through the rotating disk, and the liquid inlet of the solenoid valve tubes is connected to the corresponding ports on the discharge rack to form an impurity discharge structure, and a main rubber discharge hose is provided under the main filter plate, so that the residual material in the discharge rack can be discharged through the solenoid valve tube.
[0016] Preferably, one side of the pressure plate is fixedly mounted on the surface of the connecting disk, and the other side of the pressure plate is fitted on the corresponding rotating disk, the axis of the pressure plate is perpendicularly intersected with the axis of the connecting shaft, and the upper and lower surfaces of the pressure plate are fixedly connected with symmetrically distributed auxiliary filter plates for increasing the filtering area of the optical glue, and corresponding scrapers are fitted on the outer walls of the ends of the two auxiliary filter plates, and the corresponding scrapers are fitted on the inner wall of the main filter plate, so that the pressure plate can drive the auxiliary filter plates to move.
[0017] Preferably, one side of the auxiliary filter plate is fixedly connected to the connecting disk, and the other side of the auxiliary filter plate is fitted on the rotating disk, the auxiliary filter plate is in an arc-shaped structure, and the curvature of the auxiliary filter plate and the main filter plate are equal, a secondary rubber discharge hose is fixedly installed on the connecting disk, and the upper and lower pipes of the secondary rubber discharge hose are respectively fixedly connected with corresponding docking pipes, and the port on the side of the secondary rubber discharge hose away from the docking pipe is fixedly connected with a pressure plate and the auxiliary filter plate to form a glue discharge structure, so that the glue processed by the auxiliary filter plate can be discharged through the auxiliary rubber discharge hose.
[0018] Preferably, one end of the scraper is fitted on the rotating disk, and the convex shaft at the other end of the scraper is slidably installed in the arc groove provided on the connecting disk, two cross-arranged guide grooves are provided inside the connecting disk, and corresponding arc-shaped tooth plates are fitted in the guide grooves to form a sliding guide structure, and the convex shaft of the scraper is fixedly connected to the side wall of one end of the arc-shaped tooth plate, and the output gear of the driving motor is meshed on the teeth on the other side of the arc-shaped tooth plate, the output gear of the driving motor and the main shaft are rotatably embedded in the connecting disk, and the driving motor is fixedly installed on the outer wall of the connecting disk, the side wall of the arc-shaped tooth plate covers the guide groove, and the guide groove, arc-shaped groove and auxiliary filter plate are concentrically arranged, so that the driving motor can drive the scraper to move through the arc-shaped tooth plate.
[0019] Preferably, the movable tooth head fits through the corresponding inner plate, the inner plate is coaxially fit and embedded in the interior of the secondary processing cover, and one end of the inner plate is fit and arranged on the inner wall of the main filter plate, and the other end of the inner plate is arranged away from the main filter plate, the axis of the movable tooth head and the pressure rod intersects perpendicularly with the axis of the inner plate, and the tooth head inclined surface of the movable tooth head is arranged parallel to the inclined surface on the side wall of the scraper to form a force-bearing structure, and the protrusion arranged at the end of the pressure rod is slidably embedded in the inner wall of the storage tube, and a return spring is fixedly connected between the end of the pressure rod away from the movable tooth head and the inner wall of the storage tube, so that the pressure rod can move in the storage tube.
[0020] Preferably, a support plate is provided between the storage tubes, and both ends of the support plate are fixedly connected to the inner wall of the loading box, a limiting plate is fixedly connected to the side of the support plate close to the inner plate, and the limiting plate and the inner plate are coaxially arranged, and a movement margin is left between the limiting plate and the end of the movable tooth head, and the distances between the two side ends of the limiting plate and the inner wall of the secondary processing cover slide groove are both greater than the width of the movable tooth head, so that the limiting plate can limit the movable tooth head.
[0021] The operation method of optical adhesive production equipment is as follows:
[0022] S1: The user pours the optical glue to be filtered into the processing shell, the two solenoid valve tubes are in the closed state, part of the glue enters the secondary processing cover through the glue inlet, and the main filter plate can filter the other glue. During this process, the user controls the swing motor to start through the device system, and the swing motor will drive the two rotating disks to reciprocate within the set angle range. At this time, the rotating disk will drive the secondary processing cover and the discharge rack to move synchronously along the inner wall of the main filter plate. The moving secondary processing cover can improve the fluidity of the glue in the processing shell;
[0023] S2: During the rotation of the rotating disk, the rotating disk drives the transmission gear to move synchronously along the gear ring through the connecting shaft. Since the gear ring is fixed, the transmission gear can drive the connecting shaft and the connecting disk to rotate, and the connecting shaft drives the pressure plate to move synchronously. The auxiliary filter plates on both sides of the pressure plate rotate synchronously. At the same time, the connecting disk drives the scraper to rotate through the arc-shaped tooth plate, so that the scraper oblique surface applies pressure to the end of the moving tooth head. Since there is a moving space between the moving tooth head and the limiting plate, the moving tooth head will drive the inner plate to rotate, so that the glue inlet on one side of the secondary processing cover is opened. At the same time, the moving tooth head will drive the pressure rod to move to further compress the reset spring. When the end of the moving tooth head moves to the inside of the limiting plate, the limiting plate limits the moving tooth head. When the inner plate rotates to close the glue inlet on the other side of the secondary processing cover, when the moving tooth head moves to the other side of the limiting plate, the moving tooth head is no longer limited by the limiting plate, and the moving tooth head is blocked by the port of the secondary processing cover, and the scraper can further squeeze the moving tooth head, so that the moving tooth head can be further retracted into the inner plate, and the reset spring is compressed again, so that the scraper can pass through the corresponding moving tooth head;
[0024] S3: During the rotation of the pressing plate, the pressing plate will drive the auxiliary filter plate to rotate synchronously, thereby squeezing the glue liquid in the secondary processing cover, thereby increasing the filtration pressure of the glue liquid, allowing the glue liquid to pass through the main filter plate more quickly, and the auxiliary filter plate of the pressing plate can further increase the filtration area of the glue liquid. The glue liquid filtered by the auxiliary filter plate will be discharged through the auxiliary rubber discharge pipe and the docking pipe;
[0025] S4: When the secondary treatment hood rotates to the highest point on the other side of the main filter plate, the scraper is between the auxiliary filter plate and the main filter plate that were previously filtered. At this time, the device system controls the corresponding drive motor to start, and the corresponding solenoid valve tube opens synchronously. The output gear of the drive motor will drive the corresponding arc-shaped tooth plate to move, so that the arc-shaped tooth plate moves in the corresponding arc-shaped groove. The arc-shaped tooth plate drives the fixedly connected scraper to move synchronously in the guide groove. The scraper is used to clean the residual glue liquid on the auxiliary filter plate and the main filter plate. The scraper pushes the residual glue liquid into the corresponding port on the discharge rack. The residual glue liquid in the discharge rack is discharged through the opened solenoid valve tube. The residual material discharge effect can be improved by connecting the external pump and the solenoid valve tube. The glue liquid that has been filtered in the treatment shell is discharged through the main rubber discharge pipe.
[0026] Compared with the prior art, the beneficial effects of the present invention are as follows: the modified organic silicon optical adhesive production equipment and use method, during the use of which, a swingable multi-faceted pressurized filtering structure is provided, which can pressurize and filter the colloid while increasing the filtering treatment area of the organic silicon optical adhesive, thereby improving the working efficiency, and the device can remove impurities trapped in the process, the specific contents of which are as follows:
[0027] 1. One side of the pressing plate is fixedly mounted on the surface of the connecting plate, and the other side of the pressing plate is fitted on the corresponding rotating plate. The axis of the pressing plate intersects the axis of the connecting shaft perpendicularly. The upper and lower surfaces of the pressing plate are fixedly connected with symmetrically distributed auxiliary filter plates, and corresponding scrapers are fitted on the outer walls of the ends of the two auxiliary filter plates. One side of the auxiliary filter plate is fixedly connected to the connecting plate, and the other side of the auxiliary filter plate is fitted on the rotating plate. The auxiliary filter plate is in an arc-shaped structure, and the curvature of the auxiliary filter plate and the main filter plate are equal. A secondary rubber discharge hose is fixedly installed through the connecting plate, and the upper and lower pipes of the secondary rubber discharge hose are respectively fixedly connected with corresponding butt joint pipes. The pressure plate and the auxiliary filter plate are fixedly connected at the port on one side of the auxiliary rubber discharge hose away from the butt joint pipe, so that the pressing plate can drive the auxiliary filter plate to rotate toward the main filter plate, thereby exerting pressure on the glue liquid, and can perform multi-faceted filtering at the same time. The filtered glue liquid flows out through the auxiliary filter plate and the main filter plate;
[0028] 2. One end of the scraper is fitted on the rotating disk, and the convex shaft at the other end of the scraper is slidably installed in the arc groove opened on the connecting disk. Two cross-set guide grooves are opened inside the connecting disk. The corresponding arc-shaped toothed plates are fitted in the guide grooves to form a sliding guide structure. The convex shaft of the scraper is fixedly connected to the side wall of one end of the arc-shaped toothed plate, and the output gear of the driving motor is meshed on the teeth on the other side of the arc-shaped toothed plate. The side wall of the arc-shaped toothed plate covers the guide groove, and the guide groove, arc groove and auxiliary filter plate are concentrically arranged. BRIEF DESCRIPTION OF THE DRAWINGS
[0029] Figure 1 It is a schematic diagram of the overall external structure of the present invention;
[0030] Figure 2 This is a schematic diagram of the installation structure of the rotating disk of the present invention;
[0031] Figure 3 This is a schematic diagram of the connection plate installation structure of the present invention;
[0032] Figure 4 This is a schematic diagram of the gear ring installation structure of the present invention;
[0033] Figure 5 This is a schematic diagram of the installation structure of the secondary processing cover of the present invention;
[0034] Figure 6 This is a schematic diagram of the installation structure of the auxiliary filter plate of the present invention;
[0035] Figure 7 This is a schematic diagram of the scraper installation structure of the present invention;
[0036] Figure 8 This is a schematic diagram of the installation structure of the movable tooth head of the present invention;
[0037] Fig. 9 This is a schematic diagram of the pressure rod installation structure of the present invention;
[0038] Fig.10 This is a schematic diagram of the inner layer board installation structure of the present invention;
[0039] Fig.11 It is a schematic diagram of the installation structure of the arc-shaped tooth plate of the present invention.
[0040] In the figure: 1. processing shell; 2. feed hopper; 3. main rubber discharge hose; 4. rotating disk; 5. swing motor; 6. fixed bracket; 7. gear ring; 8. main filter plate; 9. secondary processing cover; 10. transmission gear; 11. connecting shaft; 12. discharge rack; 13. solenoid valve tube; 14. connecting disk; 15. pressure plate; 16. auxiliary filter plate; 17. auxiliary rubber discharge hose; 18. docking tube; 19. scraper; 20. arc tooth plate; 21. slide groove; 22. guide groove; 23. driving motor; 24. inner plate; 25. force mechanism; 2501. moving tooth head; 2502. pressure rod; 2503. storage cylinder; 2504. reset spring; 2505. loading box; 2506. support plate; 2507. limiting plate; 26. rubber inlet. DETAILED DESCRIPTION
[0041] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the present invention.
[0042] See also Figure 1-Figure 11 The present invention provides a technical solution: a modified organic silicon optical adhesive production device, comprising:
[0043] A processing shell 1 is fixedly connected to a feed hopper 2 at its top port, a main rubber discharge pipe 3 is arranged directly below the feed hopper 2, and an upper end of the main rubber discharge pipe 3 is fixedly connected to the bottom center of the processing shell 1, and an upper end of a fixing bracket 6 is fixedly installed on the inner wall of the processing shell 1;
[0044] Also includes:
[0045] The main filter plate 8, both ends of which are fixedly connected to the inner wall of the processing shell 1 to form a colloid filtering structure, the processing shell 1 is rotatably embedded with symmetrically distributed rotating disks 4, and the main filter plate 8 is fitted between the rotating disks 4, the output shaft of the swing motor 5 is coaxially fixed and installed on the disk surface of the rotating disk 4, and the swing motor 5 is fixedly connected to the lower end of the fixed bracket 6, the inner wall of the main filter plate 8 is fitted with both ends of the secondary processing cover 9, and the outer walls of both sides of the secondary processing cover 9 are fixedly connected between the rotating disks 4;
[0046] The connecting disk 14 is rotatably embedded in the corresponding rotating disk 4, one end of the connecting shaft 11 is coaxially fixedly connected to the disk surface of the connecting disk 14, and the other end of the connecting shaft 11 is rotatably penetrated through the corresponding rotating disk 4, and the lower half of the connecting shaft 11 is rotatably fitted on the top of the discharge rack 12, the disk surface of the connecting disk 14 and the disk surface of the rotating disk 4 are arranged flush, one end of the discharge rack 12 is fixedly embedded in the rotating disk 4, and the other end of the discharge rack 12 is fitted on the disk surface of the connecting disk 14, and the side of the discharge rack 12 away from the connecting shaft 11 is fitted on the inner wall of the main filter plate 8, and a pressing plate 15 is fixedly installed on the side wall of the connecting shaft 11, and the pressing plate 15 is fixedly installed on the side wall of the connecting shaft 11. The end away from the connecting shaft 11 is fitted on the inner wall of the secondary processing cover 9, and the outer walls at both ends of the secondary processing cover 9 are fixedly installed with a force-bearing mechanism 25, which includes a movable tooth head 2501, which is fitted and embedded in a slide groove opened at the end of the secondary processing cover 9, and symmetrically distributed pressure rods 2502 are fixedly installed on the end surface of the movable tooth head 2501, and the end of the pressure rod 2502 away from the movable tooth head 2501 is slidably inserted into the inner side of the storage tube 2503, and the end of the storage tube 2503 is slidably embedded in the inner wall of the loading box 2505, and the loading box 2505 is fixedly covered on the outer side of the slide groove of the secondary processing cover 9.
[0047] One end of the scraper 19 is fitted on the rotating disk 4, and the convex shaft at the other end of the scraper 19 is slidably installed in the arc groove 21 opened on the connecting disk 14, and two cross-arranged guide grooves 22 are opened inside the connecting disk 14, and the corresponding arc-shaped toothed plate 20 is fitted in the guide groove 22 to form a sliding guide structure, and the convex shaft of the scraper 19 is fixedly connected to the side wall of one end of the arc-shaped toothed plate 20, and the output gear of the drive motor 23 is meshed on the teeth on the other side of the arc-shaped toothed plate 20, the output gear of the drive motor 23 and the main shaft are rotatably embedded in the connecting disk 14, and the drive motor 23 is fixedly installed on the outer wall of the connecting disk 14, and the side wall of the arc-shaped toothed plate 20 covers the guide groove 22, and the guide groove 22, The arc groove 21 and the auxiliary filter plate 16 are concentrically arranged, and the driving motor 23 drives the arc tooth plate 20 to move through the output gear, and the arc tooth plate 20 will drive the scraper 19 to move synchronously for cleaning operations. Symmetrically distributed ports are opened on both sides of the discharge frame 12, and symmetrically distributed solenoid valve tubes 13 are arranged at the end of the discharge frame 12, and the tube body of the solenoid valve tube 13 is fixedly penetrated through the rotating disk 4. The liquid inlet of the solenoid valve tube 13 is connected to the corresponding port on the discharge frame 12 to form an impurity discharge structure. A main rubber discharge pipe 3 is arranged under the main filter plate 8, and the scraper 19 will send the residual glue liquid into the port of the discharge frame 12, and the glue liquid on the discharge frame 12 will be discharged through the opened solenoid valve tube 13.
[0048] The secondary processing cover 9 is in an arc-shaped structure, and the center of the secondary processing cover 9 is on the axis of the connecting shaft 11. The ends of the secondary processing cover 9 that are in contact with the main filter plate 8 are provided with corresponding glue inlets 26. The main filter plate 8 is in a semi-circular arc structure, and the center of the main filter plate 8 is on the axis of the rotating disk 4. The rotating disk 4 is driven to rotate by the swing motor 5. At this time, the rotating disk 4 will drive the secondary processing cover 9 to move synchronously. The end of the connecting shaft 11 away from the connecting disk 14 is coaxially fixedly connected with a transmission gear 10, and the transmission gear 10 is in contact with the outer wall of the rotating disk 4. The transmission A gear ring 7 is arranged above the gear 10, and the two form a meshing transmission relationship, and one side of the gear ring 7 is coaxially fitted on the rotating disk 4, and the other side of the gear ring 7 is fixedly mounted on the fixed bracket 6, and the diameter of the gear ring 7 is larger than the diameter of the transmission gear 10, and the output shaft of the swing motor 5 rotates through the gear ring 7, and the rotating disk 4 drives the transmission gear 10 to move synchronously through the connecting shaft 11. Under the action of the gear ring 7, the transmission gear 10 drives the connecting shaft 11 to rotate, and one side of the pressure plate 15 is fixedly mounted on the surface of the connecting disk 14, and the other side of the pressure plate 15 is fitted on the fixed bracket 6. The pressing plate 15 is arranged on the corresponding rotating disk 4, the axis of the pressing plate 15 intersects the axis of the connecting shaft 11 perpendicularly, and the upper and lower surfaces of the pressing plate 15 are fixedly connected with symmetrically distributed auxiliary filter plates 16, which are used to increase the filtering area of the optical glue, and the end outer walls of the two auxiliary filter plates 16 are fitted with corresponding scrapers 19, and the inner wall of the main filter plate 8 is fitted with a corresponding scraper 19. At this time, the connecting shaft 11 will drive the auxiliary filter plates 16 to rotate synchronously through the pressing plate 15, and use the auxiliary filter plates 16 to squeeze the glue liquid in the secondary processing cover 9. Since one side of the auxiliary filter plate 16 is fixed The auxiliary filter plate 16 is fixedly connected to the connecting disk 14, and the other side of the auxiliary filter plate 16 is fitted on the rotating disk 4. The auxiliary filter plate 16 is an arc-shaped structure, and the curvature of the auxiliary filter plate 16 is equal to that of the main filter plate 8. A secondary rubber discharge hose 17 is fixedly installed on the connecting disk 14, and the upper and lower pipes of the auxiliary rubber discharge hose 17 are respectively fixedly connected with corresponding docking pipes 18, and the auxiliary rubber discharge hose 17 is fixedly connected to a pressure plate 15 and an auxiliary filter plate 16 at a port on one side away from the docking pipe 18 to form a glue discharge structure, so that the glue filtered out of the auxiliary filter plate 16 can be discharged through the auxiliary rubber discharge hose 17.
[0049] A support plate 2506 is provided between the storage tubes 2503, and both ends of the support plate 2506 are fixedly connected to the inner wall of the loading box 2505, and a limiting plate 2507 is fixedly connected to the side of the support plate 2506 close to the inner plate 24, and the limiting plate 2507 and the inner plate 24 are coaxially arranged, and a movement margin is left between the limiting plate 2507 and the end of the movable tooth head 2501, and the distance between the two side ends of the limiting plate 2507 and the inner wall of the chute of the secondary processing cover 9 is greater than the width of the movable tooth head 2501. The movable tooth head 2501 in motion is limited by the limiting plate 2507, so that the scraper 19 can continuously drive the movable tooth head 2501 and the inner plate 24 to move. Since the movable tooth head 2501 fits through the corresponding inner plate 24, the inner plate 2 4 is coaxially fitted and embedded in the interior of the secondary processing cover 9, and one end of the inner plate 24 is fitted and arranged on the inner wall of the main filter plate 8, and the other end of the inner plate 24 is arranged away from the main filter plate 8, the axis of the movable tooth head 2501 and the pressure rod 2502 is perpendicular to the axis of the inner plate 24, and the tooth head inclined surface of the movable tooth head 2501 is arranged parallel to the inclined surface on the side wall of the scraper 19 to form a force-bearing structure, and the protrusion arranged at the end of the pressure rod 2502 is slidably embedded in the inner wall of the storage tube 2503, and a return spring 2504 is fixedly connected between the end of the pressure rod 2502 away from the movable tooth head 2501 and the inner wall of the storage tube 2503, at this time, the inner plate 24 will move inside the secondary processing cover 9, thereby controlling the opening and closing of the glue inlet 26 on both sides of the secondary processing cover 9.
[0050] The operation method of optical adhesive production equipment is as follows:
[0051] S1: The user pours the optical glue to be filtered into the processing shell 1, the two solenoid valve tubes 13 are in a closed state, part of the glue enters the secondary processing cover 9 through the glue inlet 26, and the main filter plate 8 can filter the other glue. In this process, the user controls the swing motor 5 to start through the device system, and the swing motor 5 will drive the two rotating disks 4 to reciprocate within the set angle range. At this time, the rotating disk 4 will drive the secondary processing cover 9 and the discharge rack 12 to move synchronously along the inner wall of the main filter plate 8. The moving secondary processing cover 9 can improve the fluidity of the glue in the processing shell 1;
[0052] S2: During the rotation of the rotating disk 4, the rotating disk 4 drives the transmission gear 10 to move synchronously along the gear ring 7 through the connecting shaft 11. Since the gear ring 7 is fixedly arranged, the transmission gear 10 can drive the connecting shaft 11 and the connecting disk 14 to rotate. The connecting shaft 11 drives the pressure plate 15 to move synchronously. The auxiliary filter plates 16 on both sides of the pressure plate 15 rotate synchronously. At the same time, the connecting disk 14 drives the scraper 19 to rotate through the arc-shaped tooth plate 20, so that the scraper 19 applies pressure to the end of the moving tooth head 2501 on the inclined surface. Since there is a moving space between the moving tooth head 2501 and the limiting plate 2507, the moving tooth head 2501 will drive the inner plate 24 to rotate, so that the glue inlet 26 on one side of the secondary processing cover 9 is opened. At the same time, the moving tooth head 2501 will drive the pressure plate 25 The movement of the rod 2502 further compresses the return spring 2504. When the end of the moving tooth head 2501 moves to the inner side of the limiting plate 2507, the limiting plate 2507 limits the moving tooth head 2501. When the inner plate 24 rotates to close the glue inlet 26 on the other side of the secondary processing cover 9, the moving tooth head 2501 moves to the other side of the limiting plate 2507. The moving tooth head 2501 is no longer limited by the limiting plate 2507, and the moving tooth head 2501 is blocked by the port of the secondary processing cover 9, and the scraper 19 can further squeeze the moving tooth head 2501, so that the moving tooth head 2501 can be further retracted into the inner plate 24, and the return spring 2504 is compressed again, so that the scraper 19 can pass through the corresponding moving tooth head 2501.
[0053] S3: During the rotation of the pressing plate 15, the pressing plate 15 will drive the auxiliary filter plate 16 to rotate synchronously, thereby squeezing the glue liquid in the secondary processing cover 9, thereby increasing the filtration pressure of the glue liquid, so that the glue liquid can pass through the main filter plate 8 more quickly, and the auxiliary filter plate 16 of the pressing plate 15 can further increase the filtration area of the glue liquid, and the glue liquid filtered by the auxiliary filter plate 16 will be discharged through the auxiliary rubber discharge pipe 17 and the docking pipe 18;
[0054] S4: When the secondary processing cover 9 rotates to the highest point on the other side of the main filter plate 8, the scraper 19 is between the auxiliary filter plate 16 and the main filter plate 8 that were previously filtered. At this time, the device system controls the corresponding drive motor 23 to start, and the corresponding solenoid valve tube 13 opens synchronously. The output gear of the drive motor 23 will drive the corresponding arc-shaped tooth plate 20 to move, so that the arc-shaped tooth plate 20 moves in the corresponding arc-shaped groove 21, and the arc-shaped tooth plate 20 drives the fixedly connected scraper 19 to move synchronously in the guide groove 22. The scraper 19 is used to clean the residual glue liquid on the auxiliary filter plate 16 and the main filter plate 8. The scraper 19 pushes the residual glue liquid into the corresponding port on the discharge frame 12. The residual glue liquid in the discharge frame 12 is discharged through the opened solenoid valve tube 13. The residual material discharge effect can be improved by connecting the external pump and the solenoid valve tube 13. The glue liquid that has been filtered and processed in the processing shell 1 is discharged through the main rubber discharge pipe 3.
[0055] In the description of the present invention, unless otherwise specified, "plurality" means two or more than two; the orientations or positional relationships indicated by the terms "upper", "lower", "left", "right", "inner", "outer", "front end", "rear end", "head", "tail", etc. are based on the orientations or positional relationships shown in the drawings, and are only for the convenience of describing the present invention and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, be constructed and operate in a specific orientation, and therefore cannot be understood as limiting the present invention. In addition, the terms "first", "second", "third", etc. are only used for descriptive purposes and cannot be understood as indicating or implying relative importance.
[0056] In the description of the present invention, it should be noted that, unless otherwise clearly specified and limited, the terms "connected" and "connection" should be understood in a broad sense, for example, it can be a fixed connection, a detachable connection, or an integral connection; it can be a mechanical connection or an electrical connection; it can be a direct connection or an indirect connection through an intermediate medium. For ordinary technicians in this field, the specific meanings of the above terms in the present invention can be understood according to specific circumstances.
[0057] Although the present invention has been described in detail with reference to the aforementioned embodiments, it is still possible for those skilled in the art to modify the technical solutions described in the aforementioned embodiments, or to make equivalent substitutions for some of the technical features therein. Any modifications, equivalent substitutions, improvements, etc. made within the spirit and principles of the present invention should be included in the protection scope of the present invention.
Claims
1. A modified silicone optical adhesive production device, comprising: A processing shell (1) is fixedly connected to a feed hopper (2) at its top port, a main rubber discharge pipe (3) is arranged directly below the feed hopper (2), and the upper end of the main rubber discharge pipe (3) is fixedly connected to the bottom center of the processing shell (1), and the upper end of a fixed bracket (6) is fixedly installed on the inner wall of the processing shell (1); It is characterized by further comprising: A main filter plate (8) whose two ends are fixedly connected to the inner wall of the processing shell (1) to form a colloidal filtering structure; a symmetrically distributed rotating disk (4) is rotatably embedded in the processing shell (1), and the main filter plate (8) is arranged between the rotating disks (4); an output shaft of a swing motor (5) is coaxially fixedly installed on the disk surface of the rotating disk (4), and the swing motor (5) is fixedly connected to the lower end of the fixed bracket (6); two ends of a secondary processing cover (9) are arranged on the inner wall of the main filter plate (8), and the outer walls of both sides of the secondary processing cover (9) are fixedly connected between the rotating disks (4); A connecting disk (14) is rotatably embedded in the corresponding rotating disk (4); one end of a connecting shaft (11) is coaxially fixedly connected to the disk surface of the connecting disk (14); the other end of the connecting shaft (11) is rotatably penetrated through the corresponding rotating disk (4); and the lower half of the connecting shaft (11) is rotatably fitted on the top of the discharge rack (12); the disk surface of the connecting disk (14) and the disk surface of the rotating disk (4) are arranged flush; one end of the discharge rack (12) is fixedly embedded in the rotating disk (4); and the other end of the discharge rack (12) is fitted on the disk surface of the connecting disk (14); a side of the discharge rack (12) away from the connecting shaft (11) is fitted on the inner wall of the main filter plate (8); a pressing plate (15) is fixedly installed on the side wall of the connecting shaft (11); The end of the pressure plate (15) away from the connecting shaft (11) is fitted on the inner wall of the secondary processing cover (9), and a force-bearing mechanism (25) is fixedly installed on the outer walls of both ends of the secondary processing cover (9). The force-bearing mechanism (25) includes a movable tooth head (2501), and the movable tooth head (2501) is fitted and embedded in a slide groove opened at the end of the secondary processing cover (9), and a symmetrically distributed pressure rod (2502) is fixedly installed on the end face of the movable tooth head (2501), and the end of the pressure rod (2502) away from the movable tooth head (2501) is slidably inserted on the inner side of the storage tube (2503), and the end of the storage tube (2503) is slidably embedded on the inner wall of the loading box (2505), and the loading box (2505) is fixedly covered on the outer side of the slide groove of the secondary processing cover (9).
2. The modified silicone optical adhesive production equipment according to claim 1, characterized in that: The secondary processing cover (9) is in an arc-shaped structure, and the center of the secondary processing cover (9) is on the axis of the connecting shaft (11). The ends of the secondary processing cover (9) that are in contact with the main filter plate (8) are provided with corresponding glue inlets (26), and the main filter plate (8) is in a semi-circular arc structure, and the center of the main filter plate (8) is on the axis of the rotating disk (4).
3. The modified silicone optical adhesive production equipment according to claim 1, characterized in that: The end of the connecting shaft (11) away from the connecting disk (14) is coaxially fixedly connected with a transmission gear (10), and the transmission gear (10) is arranged on the outer wall of the rotating disk (4), and a gear ring (7) is arranged above the transmission gear (10), and the two form a meshing transmission relationship, and one side of the gear ring (7) is coaxially arranged on the rotating disk (4), and the other side of the gear ring (7) is fixedly mounted on the fixed bracket (6), and the diameter of the gear ring (7) is larger than the diameter of the transmission gear (10), and the output shaft of the swing motor (5) is rotatably penetrated through the gear ring (7).
4. The modified silicone optical adhesive production equipment according to claim 1, characterized in that: The two sides of the discharge frame (12) are provided with symmetrically distributed ports, and the end of the discharge frame (12) is provided with a symmetrically distributed electromagnetic valve tube (13), and the tube body of the electromagnetic valve tube (13) is fixedly penetrated through the rotating disk (4), and the liquid inlet of the electromagnetic valve tube (13) is connected with the corresponding port on the discharge frame (12) to form an impurity discharge structure, and a main rubber discharge pipe (3) is provided below the main filter plate (8).
5. The modified organic silicone optical adhesive production equipment according to claim 1, characterized in that: One side of the pressing plate (15) is fixedly mounted on the surface of the connecting plate (14), and the other side of the pressing plate (15) is fitted on the corresponding rotating plate (4). The axis of the pressing plate (15) intersects perpendicularly with the axis of the connecting shaft (11), and the upper and lower surfaces of the pressing plate (15) are fixedly connected with symmetrically distributed auxiliary filter plates (16) for increasing the filtering area of the optical glue, and corresponding scrapers (19) are fitted on the outer walls of the ends of the two auxiliary filter plates (16), and corresponding scrapers (19) are fitted on the inner wall of the main filter plate (8).
6. The modified organic silicone optical adhesive production equipment according to claim 5, characterized in that: One side of the auxiliary filter plate (16) is fixedly connected to the connecting disk (14), and the other side of the auxiliary filter plate (16) is arranged on the rotating disk (4); the auxiliary filter plate (16) is in an arc-shaped structure, and the arcs of the auxiliary filter plate (16) and the main filter plate (8) are equal; a secondary rubber discharge pipe (17) is fixedly installed on the connecting disk (14), and the upper and lower pipes of the auxiliary rubber discharge pipe (17) are respectively fixedly connected to corresponding butt pipes (18); and a pressure plate (15) and the auxiliary filter plate (16) are fixedly connected at a port on one side of the auxiliary rubber discharge pipe (17) away from the butt pipe (18) to form a glue liquid discharge structure.
7. The modified organic silicone optical adhesive production equipment according to claim 6, characterized in that: One end of the scraper (19) is fitted on the rotating disk (4), and the convex shaft at the other end of the scraper (19) is slidably mounted in an arc groove (21) provided on the connecting disk (14). Two cross-arranged guide grooves (22) are provided inside the connecting disk (14), and a corresponding arc-shaped toothed plate (20) is fitted in the guide groove (22) to form a sliding guide structure. The convex shaft of the scraper (19) is fixedly connected to the side wall of one end of the arc-shaped toothed plate (20), and the output gear of the driving motor (23) is meshed on the teeth on the other side of the arc-shaped toothed plate (20). The output gear of the driving motor (23) and the main shaft are rotatably embedded in the connecting disk (14), and the driving motor (23) is fixedly mounted on the outer wall of the connecting disk (14). The side wall of the arc-shaped toothed plate (20) covers the guide groove (22), and the guide groove (22), the arc groove (21) and the auxiliary filter plate (16) are concentrically arranged.
8. The modified organic silicone optical adhesive production equipment according to claim 1, characterized in that: The movable tooth head (2501) fits through the corresponding inner plate (24), the inner plate (24) is coaxially fitted and embedded in the interior of the secondary processing cover (9), and one end of the inner plate (24) is fitted and arranged on the inner wall of the main filter plate (8), and the other end of the inner plate (24) is arranged away from the main filter plate (8), the axis of the movable tooth head (2501) and the pressure rod (2502) intersects perpendicularly with the axis of the inner plate (24), and the tooth head inclined surface of the movable tooth head (2501) is arranged parallel to the inclined surface on the side wall of the scraper (19) to form a force-bearing structure, and the protrusion arranged at the end of the pressure rod (2502) is slidably embedded in the inner wall of the storage tube (2503), and a return spring (2504) is fixedly connected between the end of the pressure rod (2502) away from the movable tooth head (2501) and the inner wall of the storage tube (2503).
9. The modified organic silicone optical adhesive production equipment according to claim 8, characterized in that: A support plate (2506) is arranged between the storage tubes (2503), and both ends of the support plate (2506) are fixedly connected to the inner wall of the loading box (2505), and a limiting plate (2507) is fixedly connected to one side of the support plate (2506) close to the inner plate (24), and the limiting plate (2507) and the inner plate (24) are coaxially arranged, and a movement margin is left between the limiting plate (2507) and the end of the movable tooth head (2501), and the distance between the two side ends of the limiting plate (2507) and the inner wall of the slide groove of the secondary processing cover (9) is greater than the width of the movable tooth head (2501).
10. The method for using the modified organic silicone optical adhesive production equipment according to claim 1, characterized in that: The operation method of optical adhesive production equipment is as follows: S1: The user pours the optical glue to be filtered into the processing shell (1), the two solenoid valve tubes (13) are in a closed state, part of the glue enters the secondary processing cover (9) through the glue inlet (26), and the main filter plate (8) can filter the other glue. During this process, the user controls the swing motor (5) to start through the device system, and the swing motor (5) will drive the two rotating disks (4) to reciprocate within a set angle range. At this time, the rotating disk (4) will drive the secondary processing cover (9) and the discharge rack (12) to move synchronously along the inner wall of the main filter plate (8), and the moving secondary processing cover (9) can improve the fluidity of the glue in the processing shell (1); S2: During the rotation of the rotating disk (4), the rotating disk (4) drives the transmission gear (10) to move synchronously along the gear ring (7) through the connecting shaft (11). Since the gear ring (7) is fixedly arranged, the transmission gear (10) can drive the connecting shaft (11) and the connecting disk (14) to rotate. The connecting shaft (11) drives the pressure plate (15) to move synchronously. The auxiliary filter plates (16) on both sides of the pressure plate (15) rotate synchronously. At the same time, the connecting disk (14) drives the scraper (19) to rotate through the arc-shaped tooth plate (20), so that the scraper (19) applies pressure to the end of the moving tooth head (2501) on the inclined surface. Since there is a moving space between the moving tooth head (2501) and the limiting plate (2507), the moving tooth head (2501) will drive the inner plate (24) to rotate, so that the glue inlet (26) on one side of the secondary processing cover (9) is opened. At the same time, the moving tooth head (2501) will The pressure rod (2502) is driven to move to further compress the return spring (2504). When the end of the movable tooth head (2501) moves to the inner side of the limiting plate (2507), the limiting plate (2507) limits the movable tooth head (2501). When the inner plate (24) is rotated to close the glue inlet (26) on the other side of the secondary processing cover (9), the movable tooth head (2501) moves to the other side of the limiting plate (2507). The movable tooth head (2501) is no longer limited by the limiting plate (2507), and the movable tooth head (2501) is blocked by the port of the secondary processing cover (9). The scraper (19) can further squeeze the movable tooth head (2501), so that the movable tooth head (2501) can be further retracted into the inner plate (24). The return spring (2504) is compressed again, so that the scraper (19) can pass through the corresponding movable tooth head (2501). S3: During the rotation of the pressing plate (15), the pressing plate (15) drives the auxiliary filter plate (16) to rotate synchronously, thereby squeezing the glue liquid in the secondary processing cover (9), thereby increasing the filtration pressure of the glue liquid, so that the glue liquid can pass through the main filter plate (8) more quickly, and the auxiliary filter plate (16) of the pressing plate (15) can further increase the filtration area of the glue liquid. The glue liquid filtered by the auxiliary filter plate (16) will be discharged through the auxiliary rubber discharge pipe (17) and the docking pipe (18); S4: When the secondary treatment cover (9) rotates to the highest point on the other side of the main filter plate (8), the scraper (19) is located between the auxiliary filter plate (16) and the main filter plate (8) that were previously filtered. At this time, the device system controls the corresponding drive motor (23) to start, and the corresponding solenoid valve tube (13) is opened synchronously. The output gear of the drive motor (23) will drive the corresponding arc-shaped tooth plate (20) to move, so that the arc-shaped tooth plate (20) moves in the corresponding arc-shaped groove (21), and the arc-shaped tooth plate (20) drives the fixed The connected scraper (19) moves synchronously in the guide groove (22), and the scraper (19) is used to clean the residual glue liquid on the auxiliary filter plate (16) and the main filter plate (8). The scraper (19) pushes the residual glue liquid into the corresponding port on the discharge rack (12), and the residual glue liquid in the discharge rack (12) is discharged through the opened electromagnetic valve pipe (13). The residual material discharge effect can be improved by connecting an external pump and the electromagnetic valve pipe (13). The glue liquid that has been filtered and processed in the processing shell (1) is discharged through the main rubber discharge pipe (3).
Citation Information
Patent Citations
A modified silicone optical adhesive production equipment
CN117717821B
Filtering device for optical cement
CN220736655U