Clamping tool for hollow glass processing
By designing a clamping tool consisting of a rectangular plate, a fixed plate, a sliding rod, a hydraulic cylinder and a motor drive, the problems of scratches on insulating glass, unstable clamping and high maintenance costs caused by existing clamping tooling are solved, and stable clamping and efficient transportation are achieved.
Patent Information
- Application Number
- CN202423145090.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-19
- Publication Date
- 2025-10-28
- Estimated Expiration
- 2034-12-19
AI Technical Summary
The clamping tooling used in existing insulating glass processing easily leaves scratches on the glass surface, the clamping force is difficult to control, the suction cup device has high requirements for the cleanliness of the glass surface and the sealing performance is easily degraded, resulting in unstable transportation and high maintenance costs.
A clamping fixture consisting of a rectangular plate, a fixed plate, a sliding rod, a hydraulic cylinder, and a motor drive is used. The hydraulic cylinder drives the rubber pressure plate to clamp the glass, and the motor drives the threaded rod and pulley combination to achieve stable transportation of the glass.
It achieves stable clamping and transportation of insulating glass of different sizes, prevents displacement, improves processing efficiency, and reduces the risk of damage to the glass and maintenance costs.
Smart Images

Figure CN223480243U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of insulated glass processing, and in particular to clamping fixtures used in insulated glass processing. Background Technology
[0002] In the existing technology, the common clamping fixtures used in the processing of insulating glass are mechanical clamps or suction cup devices to clamp and transport the glass. Although these fixtures can meet the production needs to a certain extent, they have several significant drawbacks.
[0003] Mechanical clamping solutions use metal jaws to directly grip the edges of the glass for transport. However, this method can easily leave scratches on the glass surface, affecting the quality of the finished product. Furthermore, the clamping force is difficult to control, which may lead to glass breakage. Suction cup solutions use vacuum suction cups to adhere to the glass surface for movement. Although this method avoids damage caused by direct contact, the suction cups have high requirements for the cleanliness of the glass surface. If there is dust or moisture on the surface, it will affect the suction effect and lead to unstable transport. At the same time, the sealing performance of the suction cups is prone to decline after long-term operation, resulting in high maintenance costs. Utility Model Content
[0004] To address the issue that common clamping fixtures often employ mechanical clamps or suction cups to clamp and transport glass, which, while meeting production needs to some extent, have several significant drawbacks, this application provides a clamping fixture for insulated glass processing.
[0005] The clamping fixture for processing insulating glass provided in this application adopts the following technical solution:
[0006] A clamping fixture for processing insulated glass includes two rectangular plates arranged in parallel to each other. A first fixing plate and a second fixing plate are respectively provided at both ends of the top surface of the two rectangular plates. A third fixing plate is provided between the first fixing plate and the second fixing plate. A flat plate is provided on the top surface of the first fixing plate and the third fixing plate. A rectangular frame is provided at both ends of the top surface of the flat plate. Equally spaced shafts are provided inside the rectangular frames. Rollers are provided on the outer wall of the shafts.
[0007] Preferably, two sliding rods are provided between the second fixed plate and the third fixed plate, and a movable plate is sleeved on the outer wall of the two sliding rods. A threaded rod is passed through the movable plate, and one end of the threaded rod passes through the third fixed plate and extends outward to connect to the output end of the second motor.
[0008] Preferably, the top surface of the movable plate is provided with upright plates at both ends, the top surface of the two upright plates is provided with a top plate, the top surface of the top plate is provided with two hydraulic cylinders, the output end of the hydraulic cylinders passes through the top plate and extends downward to be connected to a rubber pressure plate.
[0009] Preferably, the top surfaces of both rectangular plates are provided with sliding openings, and the sliding openings are provided with sliders, which are connected to the movable plates.
[0010] Preferably, the top surface of the plate has through openings at both ends, and each of the two through openings has a bidirectional threaded rod. Each of the two bidirectional threaded rods has a movable block fitted at both ends. The two movable blocks are respectively connected to two rectangular frames. One end of each of the two bidirectional threaded rods passes through the plate and extends outward to be fitted with a pulley. The two pulleys are connected by a belt drive. The other end of one of the bidirectional threaded rods passes through the plate and extends outward to be connected to the output end of the first motor.
[0011] In summary, this application has the following beneficial technical effects:
[0012] 1. The output end of the first motor drives the bidirectional threaded rod on it to rotate. The rotation of the bidirectional threaded rod drives the pulley on it to rotate. The rotation of the pulley drives another pulley and the bidirectional threaded rod on it to rotate through the belt. The rotation of the two bidirectional threaded rods drives the movable block on them to move relative to each other in the horizontal direction of the bidirectional threaded rod. The relative movement of the movable block drives the two rectangular frames and the rollers on them to rotate. This can play an auxiliary role in conveying insulated glass of different sizes and prevent the insulated glass from shifting during the processing and feeding process, thereby affecting the processing efficiency of insulated glass.
[0013] 2. The output ends of two hydraulic cylinders drive the rubber pressure plate to move vertically downwards and back and forth. The downward movement of the rubber pressure plate can clamp the insulating glass. At the same time, the output end of the second motor drives the threaded rod to rotate. The rotation of the threaded rod drives the moving plate to move along the horizontal direction of the slide rod, so that the insulating glass moves forward. Then the hydraulic cylinders release and return, and the above actions are repeated to continuously transport the insulating glass forward. Attached Figure Description
[0014] Figure 1 This is a structural front view of an embodiment of the application;
[0015] Figure 2 This is a top view of the structure of the embodiment of the application;
[0016] Figure 3 This is a bottom view of the structure of the embodiment of the application.
[0017] Explanation of reference numerals in the attached drawings: 1. Rectangular plate; 2. First fixed plate; 3. Two-way threaded rod; 4. Pulley; 5. Moving plate; 6. Second fixed plate; 7. Vertical plate; 8. Top plate; 9. Hydraulic cylinder; 10. Rubber pressure plate; 11. Third fixed plate; 12. Flat plate; 13. First motor; 14. Through opening; 15. Rectangular frame; 16. Roller; 17. Threaded rod; 18. Slide rod; 19. Slide opening; 20. Movable block; 21. Second motor. Detailed Implementation
[0018] The following is combined with Figure 1-3 This application is described in further detail.
[0019] This application discloses a clamping fixture for processing insulating glass, referring to... Figure 1-Figure 3 The system comprises two rectangular plates 1 arranged parallel to each other. A first fixing plate 2 and a second fixing plate 6 are fixed to the top ends of the two rectangular plates 1, respectively. A third fixing plate 11 is located between the first fixing plate 2 and the second fixing plate 6, and is fixedly connected to the two rectangular plates 1. A flat plate 12 is fixed to the top surface of the first fixing plate 2 and the third fixing plate 11. Rectangular frames 15 are movably mounted at both ends of the top surface of the flat plate 12. Equally spaced shafts are fixed inside the rectangular frames 15, and rollers 16 are movably mounted on the outer walls of the shafts. Through-holes 14 are provided at both ends of the top surface of the flat plate 12. Two bidirectional threaded rods 3 are rotatably mounted inside the two through-holes 14. Movable blocks 20 are threaded onto both ends of the bidirectional threaded rods 3, and the two movable blocks 20 are fixedly connected to the two rectangular frames 15. One end of each bidirectional threaded rod 3 penetrates the flat plate 12 and extends outwards for fixation. A pulley 4 is fitted on the device, and the two pulleys 4 are connected by a belt drive. One end of a bidirectional threaded rod 3 passes through the flat plate 12 and extends outward to connect to the output end of a first motor 13. The output end of the first motor 13 drives the bidirectional threaded rod 3 to rotate. The rotation of the bidirectional threaded rod 3 drives the pulley 4 on it to rotate. The rotation of the pulley 4 drives the other pulley 4 and the bidirectional threaded rod 3 on it to rotate through the belt. The rotation of the two bidirectional threaded rods 3 drives the movable block 20 on them to move relative to each other in the horizontal direction of the bidirectional threaded rods 3. The relative movement of the movable block 20 drives the two rectangular frames 15 and the rollers 16 on them to rotate. This can play an auxiliary role in conveying insulated glass of different sizes and prevent the insulated glass from shifting during the processing and feeding process, thereby affecting the processing efficiency of insulated glass.
[0020] Reference Figure 2 and Figure 3Two sliding rods 18 are fixed between the second fixed plate 6 and the third fixed plate 11. A movable plate 5 is slidably sleeved on the outer wall of the two sliding rods 18. A threaded rod 17 is threaded through the movable plate 5. One end of the threaded rod 17 passes through the third fixed plate 11 and extends outward to connect to the output end of the second motor 21. Vertical plates 7 are fixed at both ends of the top surface of the movable plate 5. A top plate 8 is fixed on the top surface of the two vertical plates 7. Two hydraulic cylinders 9 are provided on the top surface of the top plate 8. The output end of the hydraulic cylinder 9 passes through the top plate 8 and extends downward to connect to a rubber pressure plate 10. The top surfaces of the two rectangular plates 1 are... Each has a sliding opening 19, and a slider is slidably installed inside the sliding opening 19. The slider is fixedly connected to the moving plate 5. The output ends of the two hydraulic cylinders 9 drive the rubber pressure plate 10 to move vertically downwards and back and forth. The downward movement of the rubber pressure plate 10 can clamp the insulating glass. At the same time, the output end of the second motor 21 drives the threaded rod 17 to rotate. The rotation of the threaded rod 17 drives the moving plate 5 to move along the horizontal direction of the sliding rod 18, so that the insulating glass moves forward. Then the hydraulic cylinders 9 release and return, and the above actions are repeated to continuously transport the insulating glass forward.
[0021] The implementation principle of the clamping fixture for insulated glass processing in this embodiment is as follows: During use, the output ends of two hydraulic cylinders 9 drive the rubber pressure plate 10 to move vertically downwards and back and forth. The downward movement of the rubber pressure plate 10 can clamp the insulated glass. At the same time, the output end of the second motor 21 drives the threaded rod 17 to rotate. The rotation of the threaded rod 17 drives the moving plate 5 to move along the horizontal direction of the slide rod 18, so that the insulated glass moves forward. Then the hydraulic cylinders 9 are released and return, and the output end of the first motor 13 drives the bidirectional threaded rod 3 on it to rotate. The rotation of the bidirectional threaded rod 3 drives the pulley 4 on it to rotate. The rotation of the pulley 4 drives another pulley 4 and the bidirectional threaded rod 3 on it to rotate through the belt. The rotation of the two bidirectional threaded rods 3 drives the movable block 20 on it to move relative to each other along the horizontal direction of the bidirectional threaded rod 3. The relative movement of the movable block 20 drives the two rectangular frames 15 and the rollers 16 on them to rotate, so as to play an auxiliary role in conveying the insulated glass and prevent the insulated glass from shifting during the processing and loading process.
[0022] Finally, a few points should be explained: First, in the description of this application, it should be noted that, unless otherwise specified or limited, the terms "mounted," "connected," and "connected" should be understood in a broad sense, and may refer to mechanical or electrical connections, internal communication between two components, or direct connection. "Up," "down," "left," and "right" are only used to indicate relative positional relationships. When the absolute positions of the objects being described change, the relative positional relationships may also change.
[0023] Secondly: The accompanying drawings of the embodiments disclosed in this utility model only involve the structures involved in the embodiments disclosed in this utility model. Other structures can refer to the general design. In the absence of conflict, the same embodiment and different embodiments of this utility model can be combined with each other.
[0024] Finally: The above description is only a preferred embodiment of the present utility model and is not intended to limit the present utility model. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present utility model should be included within the protection scope of the present utility model.
[0025] The above are all preferred embodiments of the present application, and are not intended to limit the scope of protection of the present application. Therefore, any equivalent changes made based on the structure, shape, and principle of the present application should be included in the scope of protection of the present application.
Claims
1. A clamping fixture for processing insulating glass, comprising two rectangular plates (1) arranged parallel to each other, characterized in that: The top surfaces of the two rectangular plates (1) are respectively provided with a first fixing plate (2) and a second fixing plate (6), and a third fixing plate (11) is provided between the first fixing plate (2) and the second fixing plate (6). The top surfaces of the first fixing plate (2) and the third fixing plate (11) are provided with a flat plate (12). The top surfaces of the flat plate (12) are provided with rectangular frames (15) at both ends. The interior of the rectangular frames (15) is provided with equally spaced shafts, and the outer walls of the shafts are provided with rollers (16).
2. The clamping fixture for processing insulating glass according to claim 1, characterized in that: Two sliding rods (18) are provided between the second fixed plate (6) and the third fixed plate (11). A movable plate (5) is sleeved on the outer wall of the two sliding rods (18). A threaded rod (17) is passed through the movable plate (5). One end of the threaded rod (17) passes through the third fixed plate (11) and extends outward to connect to the output end of the second motor (21).
3. The clamping fixture for processing insulating glass according to claim 2, characterized in that: The top surface of the movable plate (5) is provided with upright plates (7) at both ends. The top surface of the two upright plates (7) is provided with a top plate (8). The top surface of the top plate (8) is provided with two hydraulic cylinders (9). The output end of the hydraulic cylinder (9) passes through the top plate (8) and extends downward to be connected to a rubber pressure plate (10).
4. The clamping fixture for processing insulating glass according to claim 1, characterized in that: Both rectangular plates (1) have a sliding opening (19) on their top surfaces. The sliding opening (19) has a slider inside, and the slider is connected to the moving plate (5).
5. The clamping fixture for processing insulating glass according to claim 1, characterized in that: The top surface of the plate (12) has through openings (14) at both ends. The two through openings (14) are provided with bidirectional threaded rods (3). The two ends of the bidirectional threaded rods (3) are fitted with movable blocks (20). The two movable blocks (20) are respectively connected to two rectangular frames (15). One end of each of the two bidirectional threaded rods (3) passes through the plate (12) and extends outward to be fitted with pulleys (4). The two pulleys (4) are connected by belt drive. The other end of one of the bidirectional threaded rods (3) passes through the plate (12) and extends outward to be connected to the output end of the first motor (13).