Compatibility scribe platform
By utilizing the dual-layer air groove structure and solenoid valve control of the compatible scribing platform, the problem of high energy consumption in cutting different glass sizes has been solved, achieving an energy-saving and efficient glass cutting process.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- SICHUAN SHUWANG CHENSHENG NEW MATERIALS CO LTD
- Filing Date
- 2025-07-02
- Publication Date
- 2026-05-26
Smart Images

Figure CN224280084U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of glass substrate processing, and more specifically, to a compatible scribing platform. Background Technology
[0002] Currently, when processing semi-finished glass, it is cut to fixed dimensions. This typically involves air blowing for positioning, followed by vacuum suction to adhere the glass to a scribing platform, and then the scribing cutter cuts the glass. However, to reduce glass production costs, both increased cycle time and compatibility with different glass sizes are required. While adjusting the cutter position and increasing the vacuum or air blowing volume (to compensate for leakage) can accommodate the adsorption and flotation of different sized glass, it increases energy consumption and the adsorption and blowing time, failing to significantly improve cycle time. Therefore, it is not feasible from both a functional and economic perspective. A method that reduces energy consumption without compromising cycle time is urgently needed. Summary of the Invention
[0003] The purpose of this invention is to provide a compatible scribing platform that can perform air intake and air blowing according to different glass sizes. The outer air groove does not contain gas when processing small-sized glass, thereby reducing gas consumption.
[0004] This utility model is achieved through the following technical solution:
[0005] A compatible marking platform includes a frame, on which a conveying component and a cutting component are respectively mounted. The cutting component is located above the conveying component. The conveying component includes an upper marking table, a lower marking table, and a conveyor belt. The upper marking table has several upper air channels, and the lower marking table has several lower air channels. The upper surface of the upper marking table has symmetrically arranged outer air grooves on both sides. The upper surface of the upper marking table within the outer air grooves has several inner air grooves. Several air holes are opened on both the outer and inner air grooves. The upper air channels are connected to the air holes of the inner air grooves through several air guide pipes, and the lower air channels are connected to the air holes in the outer air grooves through several air guide pipes. Several corresponding air intakes are opened on the conveyor belt at the outer and inner air grooves.
[0006] Furthermore, the underlined platform has several lower air inlets and outlets on both sides, which are connected to the lower air passage; the upper lined platform has several upper air inlets and outlets on both sides, which are connected to the upper air passage.
[0007] Furthermore, a buffer sealing gasket is provided between the upper and lower marking platforms, and several air guide pipes connected to the lower air passage pass through the buffer sealing gasket, which increases the stability of the transmission component during operation.
[0008] Furthermore, a bolt mounting groove is provided between the upper and lower marking platforms, and the upper and lower marking platforms are fastened together in the bolt mounting groove by bolts and nuts.
[0009] Furthermore, the cutting assembly includes a beam frame mounted on a machine frame. Motors are symmetrically arranged on both sides of the beam frame, and the output ends of the motors are connected to lead screws. Slide rails are provided on both sides of the beam frame, and a cutting blade mounting bracket is slidably mounted on the slide rails. The cutting blade mounting bracket is connected to the lead screw via a lead screw nut, and a cutting blade is mounted on the cutting blade mounting bracket.
[0010] Furthermore, electric conveyor rollers are symmetrically arranged on both sides of the upper and lower marking platforms, and conveyor belts are provided on the electric conveyor rollers.
[0011] Compared with the prior art, the beneficial effects of this utility model are:
[0012] 1. The conveying assembly can perform air intake and air blowing at the air inlet according to different glass sizes. The outer air groove has no gas when processing small-sized glass to reduce gas consumption.
[0013] 2. The double-layer platform design, with its outer and inner air slots corresponding to the air inlets of the conveyor belt, has a smaller air volume compared to a hollow platform, making it easier to respond during air intake and exhaust, thus improving conveying efficiency and speed. Attached Figure Description
[0014] Figure 1 This is a schematic diagram of the structure of this utility model;
[0015] Figure 2 This is a schematic diagram of the structure of the upper and lower line-drawing platforms of this utility model;
[0016] Figure 3 This is a schematic diagram of the upper and lower airways of this utility model;
[0017] Figure 4 This is an enlarged view of point A in this utility model;
[0018] Figure 5 This is a schematic diagram illustrating the processing of two different sizes of glass according to this utility model.
[0019] In the diagram: 1. Frame; 2. Cutting assembly; 21. Beam frame; 22. Motor; 23. Lead screw; 24. Cutting blade mounting bracket; 25. Cutting blade; 26. Slide rail; 3. Conveying assembly; 31. Conveyor belt; 32. Upper air inlet / outlet; 33. Lower air inlet / outlet; 34. Upper marking table; 341. Upper air duct; 35. Air hole; 36. Lower marking table; 361. Lower air duct; 37. Electric conveyor roller; 38. Outer air groove; 39. Inner air groove; 4. Buffer sealing gasket. Detailed Implementation
[0020] The present invention will be further described below with reference to the accompanying drawings.
[0021] like Figure 1 – Figure 5 As shown in Embodiment 1, a compatible marking platform includes a frame 1, on which a conveying assembly 3 and a cutting assembly 2 are respectively provided. The cutting assembly 2 is located above the conveying assembly 3. The conveying assembly 3 includes an upper marking table 34, a lower marking table 36, and a conveyor belt 31. The upper marking table 34 is provided with a plurality of upper air channels 341, and the lower marking table 36 is provided with a plurality of lower air channels 361. The upper end face of the upper marking table 34 is symmetrically provided with outer air grooves 38 on both sides. The upper end face of the upper marking table 34 within the outer air grooves 38 is provided with a plurality of inner air grooves 39. Both the outer air grooves 38 and the inner air grooves 39 are provided with a plurality of air holes 35. The upper air channels 341 are connected to the air holes 35 of the inner air grooves 39 through a plurality of air guide pipes. The lower air channels 361 are connected to the air holes 35 in the outer air grooves 38 through a plurality of air guide pipes. The conveyor belt 31 at the outer air grooves 38 and the inner air grooves 39 is provided with a plurality of corresponding air intakes.
[0022] Example 2: A compatible marking platform, wherein the lower marking platform 36 has several lower air inlets / outlets 33 on both sides, and the lower air inlets / outlets 33 are connected to the lower air passage 361; the upper marking platform 34 has several upper air inlets / outlets 32 on both sides, and the upper air inlets / outlets 32 are connected to the upper air passage 341; a buffer sealing gasket 4 is provided between the upper marking platform 34 and the lower marking platform 36, and several air guide pipes communicating with the lower air passage 361 pass through the buffer sealing gasket 4, increasing the stability of the transmission component 3 during operation; a bolt mounting groove is provided between the upper marking platform 34 and the lower marking platform 36, and bolts are installed in the bolt mounting groove. The upper marking table 34 and the lower marking table 36 are fastened with bolt nuts; the cutting assembly 2 includes a beam frame 21, which is mounted on the machine frame 1. Motors 22 are symmetrically arranged on both sides of the beam frame 21. The output end of the motor 22 is connected to the lead screw 23. Slide rails 26 are provided on both sides of the beam frame 21. A cutting blade mounting bracket 24 is slidably mounted on the slide rails 26. The cutting blade mounting bracket 24 is connected to the lead screw 23 through a lead screw nut. A cutting blade 25 is provided on the cutting blade mounting bracket 24; electric conveyor rollers 37 are symmetrically arranged on both sides of the upper marking table 34 and the lower marking table 36. A conveyor belt 31 is provided on the electric conveyor rollers 37. The rest is the same as in embodiment 1.
[0023] Both the upper air inlet / outlet 32 and the lower air inlet / outlet 33 are equipped with solenoid valves, which are connected to corresponding air sources to control air intake and exhaust. During use, the solenoid valve at the lower air inlet / outlet 33 is selected for operation based on the size of the glass substrate to be processed. For example, for a large-sized glass substrate (e.g., the solenoid valve at the lower air inlet / outlet 33 is open, resulting in air flow through the lower air passage 361, the outer air groove 38, and the outer air intake of the conveyor belt 31); for a small-sized glass substrate (e.g., the solenoid valve at the lower air inlet / outlet 33 is not open, resulting in no air flow through the lower air passage 361, the outer air groove 38, and the outer air intake of the conveyor belt 31), thus saving gas consumption. The solenoid valve at the upper air inlet / outlet 32 remains open (e.g., air flow through the upper air passage 341, the inner air groove 39, and the inner air intake of the conveyor belt 31). The design employs upper and lower platform layers, with both layers connected to corresponding gas slots via air channels, which greatly saves the amount of gas used and improves the adsorption effect.
[0024] Depending on the size of the glass being processed, the motor 22 drives the cutter 25 to move to the corresponding station for cutting via the lead screw 23.
Claims
1. A compatible marking platform, comprising a frame (1), wherein a conveying component (3) and a cutting component (2) are respectively provided on the frame (1), characterized in that: The conveying assembly (3) includes an upper marking platform (34), a lower marking platform (36), and a conveyor belt (31). The upper marking platform (34) is provided with several upper air channels (341), and the lower marking platform (36) is provided with several lower air channels (361). The upper end face of the upper marking platform (34) is symmetrically provided with outer air grooves (38). The upper end face of the upper marking platform (34) in the outer air groove (38) is provided with several inner air grooves (39). Several air holes (35) are opened on both the outer air groove (38) and the inner air groove (39). The upper air channel (341) is connected to the air holes (35) of the inner air groove (39) through several air guide pipes. The lower air channel (361) is connected to the air holes (35) in the outer air groove (38) through several air guide pipes. Several corresponding air intakes are opened on the conveyor belt (31) at the outer air groove (38) and the inner air groove (39).
2. The compatibility marking platform according to claim 1, characterized in that: The underlined platform (36) has several lower air inlets and outlets (33) on both sides, and the lower air inlets and outlets (33) are connected to the lower air passage (361); the upper underlined platform (34) has several upper air inlets and outlets (32) on both sides, and the upper air inlets and outlets (32) are connected to the upper air passage (341).
3. The compatibility marking platform according to claim 1, characterized in that: A buffer sealing gasket (4) is provided between the upper marking platform (34) and the lower marking platform (36), and several air guide tubes connected to the lower air passage (361) pass through the buffer sealing gasket (4).
4. The compatibility marking platform according to claim 1, characterized in that: A bolt mounting groove is provided between the upper marking platform (34) and the lower marking platform (36), and the upper marking platform (34) and the lower marking platform (36) are fastened in the bolt mounting groove by bolts and nuts.
5. The compatibility marking platform according to claim 1, characterized in that: The cutting assembly (2) includes a beam frame (21), which is mounted on the frame (1). Motors (22) are symmetrically arranged on both sides of the beam frame (21). The output end of the motor (22) is connected to the lead screw (23). Slide rails (26) are provided on both sides of the beam frame (21). A cutting blade mounting bracket (24) is slidably mounted on the slide rail (26). The cutting blade mounting bracket (24) is connected to the lead screw (23) through a lead screw nut. A cutting blade (25) is provided on the cutting blade mounting bracket (24).
6. The compatibility marking platform according to claim 1, characterized in that: The upper marking platform (34) and the lower marking platform (36) are symmetrically provided with electric conveyor rollers (37) on both sides, and a conveyor belt (31) is provided on the electric conveyor rollers (37).