Laminated glass splitting device
By designing a laminated glass splitting device, which combines horizontal conveying and heating with the reciprocating motion of a sliding frame and a thin rope, the automatic splitting of laminated glass is achieved, solving the problem of cumbersome operation in existing technologies and improving work efficiency.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- BIJIE MEIGU SAFETY GLASS DOORS & WINDOW CO LTD
- Filing Date
- 2025-04-17
- Publication Date
- 2026-04-28
AI Technical Summary
In existing technologies, the process of splitting laminated glass is cumbersome and reduces work efficiency.
A laminated glass splitting device was designed, including a box, a fixing frame, a conveying component, a heating component, a sliding frame, and a driving component. The device automatically splits the laminated glass by horizontally conveying the laminated glass and heating it during the conveying process, and by utilizing the reciprocating motion of the sliding frame and the thin rope.
It improves the ease of operation and efficiency of splitting laminated glass and simplifies the operation process.
Smart Images

Figure CN224170648U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of laminated glass processing technology, and more specifically to a laminated glass splitting device. Background Technology
[0002] Laminated glass is a composite glass product consisting of two or more pieces of glass with one or more layers of organic polymer interlayer sandwiched between them. After special high-temperature pre-pressing (or vacuuming) and high-temperature and high-pressure processes, the glass and interlayer are permanently bonded together. During the processing of laminated glass, it needs to be separated into two or more pieces of glass. In the existing technology, workers usually use a handheld spray gun to heat the surface of the laminated glass to reduce the adhesion of the interlayer, and then separate the laminated glass with a thin plate. The operation is relatively cumbersome and reduces work efficiency. Therefore, a laminated glass separation device is proposed. Utility Model Content
[0003] The purpose of this application is to provide a laminated glass splitting device to solve the technical problem that the process of manually heating the surface of laminated glass with a spray gun to reduce the adhesion of the interlayer film and then splitting the laminated glass with a thin plate is cumbersome and reduces work efficiency.
[0004] To achieve the above objectives, this application specifically adopts the following technical solution:
[0005] A laminated glass splitting device includes a housing with relatively distributed inlets and outlets. Two fixed frames are installed inside the housing, and a conveying component for horizontally conveying the laminated glass is positioned between the two fixed frames. Heating components for heating the laminated glass are installed at the top and bottom of the housing. A frame is mounted on the housing, with two guide wheels rotatably mounted on the frame. Two sliding frames are slidably mounted on the frame. The device also includes a thin rope and a driving component. The thin rope passes around the two guide wheels and its ends are connected to the two sliding frames respectively. The driving component drives the two sliding frames to slide synchronously in opposite directions.
[0006] Furthermore, both the inlet and outlet are equipped with bristles.
[0007] Furthermore, the conveying component includes two upper rods and two lower rods, each rotatably disposed between two fixed frames. Two upper pulley assemblies are provided on the two upper rods, and two lower pulley assemblies are provided on the two lower rods. One of the upper rods and the lower rod are connected by a gear pair. The housing is provided with a conveying motor whose output shaft is connected to one of the upper rods.
[0008] Furthermore, the fixing frame is rotatably equipped with multiple rollers that roll and overlap with the side of the laminated glass.
[0009] Furthermore, the heating element includes a heat insulation cover disposed inside the housing, and a plurality of heating tubes are disposed inside the heat insulation cover.
[0010] Furthermore, two clamping plates are slidably arranged on the sliding frame, and positive and negative lead screws are rotatably arranged on the sliding frame. The two clamping plates are respectively threaded into the positive and negative threaded sections of the positive and negative lead screws, and the free end of the thin rope passes between the opposite sides of the two clamping plates.
[0011] Furthermore, the opposite sides of both clamps are constructed in a toothed shape.
[0012] Furthermore, the driving component includes a driving disk and a driving rod that are rotatably mounted on the frame. The driving rod is provided with a driving gear and a fixed gear. Both sliding frames are provided with driving racks that mesh with the driving gears. The driving disk is provided with half gears and half gear rings that mesh with the fixed gears. The frame is provided with a driving motor whose output shaft is connected to the driving disk.
[0013] The beneficial effects of this application are as follows: When processing laminated glass, the laminated glass is horizontally passed through the inlet and positioned between two fixed frames. The laminated glass is horizontally conveyed by a conveying component. During the conveying process, the top and bottom of the laminated glass are heated by two heating components to reduce the adhesion of the interlayer film. The heated laminated glass is discharged from the box through the outlet. The driving component drives the two sliding frames to slide synchronously in opposite directions, driving the thin rope to move back and forth. The reciprocating thin rope separates the laminated glass. This method is convenient to operate and improves work efficiency, thus making it more practical. Attached Figure Description
[0014] Figure 1 This is a three-dimensional structural view of this application;
[0015] Figure 2 This is a three-dimensional sectional view of this application;
[0016] Figure 3 This is a three-dimensional view of part of the structure of this application;
[0017] Figure 4 This is another structural perspective view of this application;
[0018] Figure 5 This application Figure 4 Enlarged view of point A in the middle;
[0019] Figure 6 This application Figure 4 A three-dimensional sectional view.
[0020] Reference numerals: 1. Box body; 2. Inlet; 3. Outlet; 4. Fixed frame; 5. Frame; 6. Guide wheel; 7. Sliding frame; 8. Thin rope; 9. Brush bristles; 10. Upper rod; 11. Lower rod; 12. Upper pulley assembly; 13. Lower pulley assembly; 14. Gear pair; 15. Conveyor motor; 16. Roller; 17. Heat insulation cover; 18. Heating tube; 19. Clamping plate; 20. Positive and negative lead screws; 21. Drive disc; 22. Drive rod; 23. Drive gear; 24. Fixed gear; 25. Drive rack; 26. Half gear; 27. Half gear ring; 28. Drive motor. Detailed Implementation
[0021] To make the objectives, technical solutions, and advantages of the embodiments of this application clearer, the technical solutions of the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings.
[0022] like Figures 1-5 As shown, an embodiment of this application proposes a laminated glass splitting device, including a box body 1, with an inlet 2 and an outlet 3 arranged oppositely on the box body 1. Two fixed frames 4 are arranged inside the box body 1, and the two fixed frames 4 are fixedly arranged inside the box body 1 and spaced apart. A conveying component for horizontally conveying the laminated glass is arranged between the two fixed frames 4. Heating components for heating the laminated glass are arranged at the inner top and inner bottom of the box body 1. A frame 5 is arranged on the box body 1 and fixed on the box body 1. Two guide wheels 6 are rotatably arranged on the frame 5, and the two guide wheels 6 are spaced apart and their axes are both in the horizontal direction. Two sliding frames 7 are slidably arranged on the frame 5 and slide in the vertical direction. The device also includes a thin rope 8 and a driving component. The height of the thin rope 8 is the same as the height of the interlayer film. The thin rope 8 passes around the two guide wheels 6 and its two ends are respectively connected to the two sliding frames 7. The driving component drives the two sliding frames 7 to slide synchronously in opposite directions.
[0023] In the initial state, one sliding frame 7 is at the highest point and the other sliding frame 7 is at the lowest point. During the processing of laminated glass, the laminated glass is horizontally passed through the inlet 2 and located between the two fixed frames 4. The laminated glass is horizontally transported by the conveying component. During the transport process, the top and bottom of the laminated glass are heated by two heating components to reduce the adhesion of the interlayer film. The heated laminated glass is discharged from the box 1 through the outlet 3. At the same time, the two sliding frames 7 are driven by the driving component to slide back and forth synchronously in opposite directions. The sliding frame 7 that was previously at the highest point slides down to the lowest point, and the sliding frame 7 that was at the lowest point slides to the highest point. Then the two sliding frames 7 slide back to the initial position synchronously. This process is repeated, which drives the thin rope 8 to reciprocate. The thin rope 8 is guided and limited by two guide wheels 6. The laminated glass is separated by the reciprocating thin rope 8.
[0024] In summary, this application, when processing laminated glass, allows the laminated glass to pass horizontally through inlet 2 and be positioned between two fixed frames 4. The laminated glass is then horizontally conveyed by a conveying component. During the conveying process, the top and bottom of the laminated glass are heated by two heating components to reduce the adhesion of the interlayer film. The heated laminated glass is then discharged from the housing 1 through outlet 3. A driving component drives two sliding frames 7 to slide synchronously in opposite directions, causing the thin rope 8 to reciprocate. The reciprocating thin rope 8 separates the laminated glass. This method is convenient to operate and improves work efficiency, thus making it more practical.
[0025] like Figure 1 As shown, in some embodiments, brush bristles 9 are provided in both the inlet 2 and the outlet 3, and the brush bristles 9 are vertical and fixed in the inlet 2 or the outlet 3.
[0026] Referring to the above, when the laminated glass passes horizontally through inlet 2, the brush 9 inside inlet 2 can clean the top and bottom of the laminated glass. When the laminated glass is heated by the heating element, the brush 9 forms a simple seal between inlet 2 and outlet 3, thereby forming a relatively sealed structure in the box 1, reducing heat loss and improving the heating effect.
[0027] like Figure 3 As shown, in some embodiments, the conveying component includes two upper rods 10 and two lower rods 11, each rotatably disposed between two fixed frames 4. The upper rods 10 and lower rods 11 are horizontally oriented and spaced vertically. The two upper rods 10 are spaced apart, and the two lower rods 11 are spaced apart. Two upper pulley assemblies 12 are disposed on the two upper rods 10. Each upper pulley assembly 12 includes two pulleys and a connecting belt. The two pulleys are respectively fixed to the two upper rods 10, and the connecting belt is wound around the two pulleys. The two upper pulley assemblies 12 are spaced apart. The two lower rods 11... The upper part is provided with two lower pulley assemblies 13, each of which includes two pulleys and a connecting belt. The two pulleys are respectively fixed on the two lower rods 11, and the connecting belt is wound around the two pulleys. The two lower pulley assemblies 13 are spaced apart. One of the upper rods 10 and the lower rod 11 are connected by a gear pair 14. The gear pair 14 includes two meshing gears, which are respectively fixed on the upper rod 10 and the lower rod 11. The housing 1 is provided with a conveyor motor 15 whose output shaft is connected to one of the upper rods 10. The conveyor motor 15 is fixed on the housing 1.
[0028] Referring to the above, when the laminated glass passes horizontally through the inlet 2 and is located between the two fixed frames 4, the top of the laminated glass abuts against the two upper pulley assemblies 12, and the bottom of the laminated glass abuts against the two lower pulley assemblies 13, causing the conveyor motor 15 to work, the output shaft to rotate forward, driving one of the upper rods 10 to rotate, the two upper pulley assemblies 12 to rotate together and drive the other upper rod 10 to rotate, and through the gear pair 14 to drive one of the lower rods 11 to rotate synchronously in the opposite direction, the two lower pulley assemblies 13 to rotate together and drive the other lower rod 11 to rotate, and through the synchronously rotating upper pulley assemblies 12 and lower pulley assemblies 13, the laminated glass is horizontally conveyed.
[0029] like Figure 3 As shown, in some embodiments, the fixing frame 4 is rotatably provided with a plurality of rollers 16 that roll and overlap with the side of the laminated glass, and the plurality of rollers 16 are arranged in a vertical direction and distributed in an array along the horizontal direction.
[0030] Referring to the above, when the laminated glass is horizontally transported by the conveyor, the opposite sides of the laminated glass roll and overlap with multiple rollers 16. The multiple rollers 16 not only make the transport of the laminated glass smoother, but also prevent the laminated glass from being scratched by friction with the fixing frame 4.
[0031] like Figure 2 As shown, in some embodiments, the heating element includes a heat insulation cover 17 disposed inside the housing 1. The heat insulation cover 17 is fixed inside the housing 1, and a plurality of heating tubes 18 are disposed inside the heat insulation cover 17. The plurality of heating tubes 18 are all horizontal and are arranged in an array along the horizontal direction.
[0032] Referring to the above, during use, multiple heating tubes 18 are activated, generating heat energy. Through the physical barrier of the heat insulation cover 17, the heat energy generated by the heating tubes 18 is concentrated on the surface of the laminated glass, making the surface of the laminated glass more uniformly heated and improving the heat utilization efficiency, so as to achieve heating of the laminated glass.
[0033] like Figure 4 As shown, in some embodiments, two clamping plates 19 are slidably arranged on the sliding frame 7. The clamping plates 19 slide in the horizontal direction. A positive and negative screw 20 is rotatably arranged on the sliding frame 7. The positive and negative screw 20 is in the horizontal direction. The two clamping plates 19 are respectively threaded into the positive and negative thread sections of the positive and negative screw 20. The free end of the thin rope 8 passes between the opposite sides of the two clamping plates 19.
[0034] Referring to the above, in the initial state, the two clamping plates 19 are close to each other, and the free end of the thin rope 8 passes between the opposite sides of the two clamping plates 19. The thin rope 8 is fixed by the two clamping plates 19 together. In use, by driving the positive and negative screws 20 to reverse, the two clamping plates 19 will slide synchronously in opposite directions to move away from each other due to the positive and negative threads, thus releasing the fixation of the thin rope 8 and allowing it to be disassembled. Then, by passing the free end of the thin rope 8 between the opposite sides of the two clamping plates 19 and driving the positive and negative screws 20 to rotate forward, the two clamping plates 19 will slide synchronously in opposite directions to move closer to each other due to the positive and negative threads, thus re-fixing the thin rope 8 for easy replacement.
[0035] like Figure 4 As shown, in some embodiments, the opposite sides of the two clamps 19 are constructed in a toothed shape;
[0036] Referring to the above, when the two clamps 19 fix the thin rope 8 together, the toothed design can increase the contact area between the clamps 19 and the thin rope 8, preventing the thin rope 8 from detaching from the clamps 19 and improving the stability of use.
[0037] like Figures 5-6 As shown, in some embodiments, the driving component includes a driving disk 21 and a driving rod 22 rotatably mounted on the frame 5. The axes of the driving disk 21 and the driving rod 22 are both horizontal. The driving rod 22 is provided with a driving gear 23 and a fixed gear 24. The driving gear 23 and the fixed gear 24 are both vertical and fixed on the driving rod 22. The two sliding frames 7 are each provided with a driving rack 25 that meshes with the driving gear 23. The driving rack 25 is fixed on the sliding frame 7. The two driving racks 25 are symmetrical and staggered. The driving disk 21 is provided with a half gear 26 and a half gear ring 27 that mesh with the fixed gear 24. The half gear 26 and the half gear ring 27 are both vertical and fixed on the driving disk 21. The driving disk 21, the half gear 26, and the half gear ring 27 are coaxially distributed. The frame 5 is provided with a driving motor 28 whose output shaft is connected to the driving disk 21. The driving motor 28 is fixed on the frame 5.
[0038] Referring to the above, during use, the drive motor 28 is activated, and the output shaft rotates forward, driving the drive disc 21, half gear 26, and half gear ring 27 to rotate together. The fixed gear 24 will mesh with the half gear 26 and the half gear ring 27 successively. When the fixed gear 24 meshes with the half gear 26, it will rotate forward due to the meshing action. When the fixed gear 24 meshes with the half gear ring 27, it will rotate backward due to the meshing action. This process repeats, driving the fixed gear 24 to rotate back and forth. Through the fixed gear 24, the drive rod 22 and the drive gear 23 will rotate back and forth together. When the drive gear 23 rotates back and forth, the two drive racks 25 will move synchronously in opposite directions due to the meshing action. The two drive racks 25 will drive the two sliding frames 7 to slide, thereby driving the two sliding frames 7 to slide synchronously in opposite directions.
[0039] The above description of the disclosed embodiments enables those skilled in the art to make or use this application. Various modifications to these embodiments will be readily apparent to those skilled in the art, and the general principles defined herein may be implemented in other embodiments without departing from the spirit or scope of this application. Therefore, this application is not to be limited to the embodiments shown herein, but is to be accorded the widest scope consistent with the principles and novel features disclosed herein.
Claims
1. A laminated glass splitting device, characterized in that, The device includes a housing (1) with an inlet (2) and an outlet (3) arranged in opposite directions. Two fixed frames (4) are provided inside the housing (1). A conveying component for horizontally conveying laminated glass is provided between the two fixed frames (4). Heating components for heating laminated glass are provided at the top and bottom of the housing (1). A frame (5) is provided on the housing (1). Two guide wheels (6) are rotatably provided on the frame (5). Two sliding frames (7) are slidably provided on the frame (5). The device also includes a thin rope (8) and a driving component. The thin rope (8) passes around the two guide wheels (6) and its two ends are connected to the two sliding frames (7) respectively. The driving component drives the two sliding frames (7) to slide back and forth synchronously in opposite directions.
2. The laminated glass splitting device according to claim 1, characterized in that, Both the inlet (2) and outlet (3) are equipped with bristles (9).
3. The laminated glass splitting device according to claim 1, characterized in that, The conveying component includes two upper rods (10) and two lower rods (11) that are rotatably disposed between two fixed frames (4). Two upper pulley assemblies (12) are provided on the two upper rods (10), and two lower pulley assemblies (13) are provided on the two lower rods (11). One of the upper rods (10) and the lower rod (11) are connected by a gear pair (14). The housing (1) is provided with a conveying motor (15) whose output shaft is connected to one of the upper rods (10).
4. The laminated glass splitting device according to claim 1, characterized in that, The fixing frame (4) is rotatably equipped with multiple rollers (16) that roll and overlap with the side of the laminated glass.
5. The laminated glass splitting device according to claim 1, characterized in that, The heating element includes a heat insulation cover (17) disposed inside the housing (1), and a plurality of heating tubes (18) are disposed inside the heat insulation cover (17).
6. The laminated glass splitting device according to claim 1, characterized in that, Two clamps (19) are slidably arranged on the sliding frame (7), and a positive and negative screw (20) is rotatably arranged on the sliding frame (7). The two clamps (19) are respectively threaded with the positive and negative thread sections of the positive and negative screw (20), and the free end of the thin rope (8) passes between the opposite sides of the two clamps (19).
7. The laminated glass splitting device according to claim 6, characterized in that, The two clamps (19) are both constructed with toothed edges on opposite sides.
8. The laminated glass splitting device according to claim 1, characterized in that, The driving components include a driving disk (21) and a driving rod (22) rotatably mounted on the frame (5). The driving rod (22) is provided with a driving gear (23) and a fixed gear (24). Both sliding frames (7) are provided with driving racks (25) that mesh with the driving gears (23). The driving disk (21) is provided with half gears (26) and half gear rings (27) that mesh with the fixed gears (24). The frame (5) is provided with a driving motor (28) whose output shaft is connected to the driving disk (21).