A conveniently adjustable high borosilicate glass tube circumferential cutting device
Patent Information
- Application Number
- CN202521673937.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-08-07
- Publication Date
- 2026-09-01
- Estimated Expiration
- 2035-08-07
AI Technical Summary
[0004]针对现有技术存在的不足,本实用新型的目的在于提供一种方便调节的高硼硅玻璃管环切设备,旨在解决方便调节的高硼硅玻璃管环切设备不能对激光切割器的高度进行调节的技术问题
[0046] By setting up a clamping mechanism, the glass tube is clamped and fixed, preventing it from shifting and shaking during movement and rotation, which would affect the cutting accuracy. By setting up a lifting mechanism, lifting groove, lifting block, and lifting plate, the height of the laser cutter can be raised and lowered, making the cutting of the glass tube more precise and flat. By setting up a support groove, support block, and fixing plate, the glass tube can be moved, facilitating the cutting of glass tubes to different lengths.
Smart Images

Figure CN224701345U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of circumferential cutting equipment, and in particular to a circumferential cutting equipment for high borosilicate glass tubes that is easy to adjust. Background Technology
[0002] High borosilicate glass tubes are special glass tubes with silicon dioxide and boron oxide as the main components, belonging to the borosilicate glass family. Their boron content is typically between 10% and 25%, and they possess high fire resistance, high mechanical strength, and non-toxic properties, making them widely used in chemical, solar energy, and pharmaceutical industries. During production, high borosilicate glass tubes are cut to appropriate lengths according to usage requirements. A circumferential cutting device is used to ensure stable cutting of the glass tubes.
[0003] The existing method for cutting glass tubes requires first fixing the glass tube, then determining the cutting length, rotating the glass tube, and finally using a laser cutter to perform a circumferential cut on the glass tube to achieve the cutting of high borosilicate glass tubes. However, in use, the laser cutter is fixedly mounted on the circumferential cutting equipment, which makes it easy to miss the cut when cutting some glass tubes with smaller diameters, thus affecting the cutting process. Therefore, this method needs to be improved. Summary of the Invention
[0004] In view of the shortcomings of the existing technology, the purpose of this utility model is to provide a conveniently adjustable borosilicate glass tube circumferential cutting device, which aims to solve the technical problem that the height of the laser cutter cannot be adjusted by the conveniently adjustable borosilicate glass tube circumferential cutting device.
[0005] To achieve the above objectives, the present invention adopts the following technical solution:
[0006] A conveniently adjustable borosilicate glass tube circumferential cutting device includes a support plate, a support frame, and a laser cutter, wherein the support frame is fixedly connected to the support plate; it also includes:
[0007] A support groove is formed on the support plate;
[0008] A support block is disposed within the support groove and is slidably connected to the support groove;
[0009] A fixing plate is disposed on the support block and fixedly connected to the support block;
[0010] A rotating component, mounted on the fixed plate, is used to rotate the glass tube;
[0011] A clamping mechanism, disposed on the rotating component, is used to clamp and fix the glass tube;
[0012] A lifting mechanism, mounted on the support frame, is used to adjust the height of the laser cutter, facilitating precise cutting of the glass tube.
[0013] A lifting groove is provided on the support frame;
[0014] The lifting block is slidably connected to the lifting groove;
[0015] A lifting plate is mounted on the lifting block, fixedly connected to the lifting block, and fixedly connected to the laser cutter.
[0016] A collection frame, set on the support plate, is used to collect the cut glass tubes.
[0017] Preferably, the rotating component includes:
[0018] A rotating frame is mounted on the fixed plate and fixedly connected to the fixed plate;
[0019] A rotary motor is fixedly connected to the rotary frame;
[0020] The rotating shaft is fixedly connected to the output end of the rotary motor and rotatably connected to the fixed plate.
[0021] Preferably, the clamping mechanism includes:
[0022] A clamping block is disposed on the rotating shaft and fixedly connected to the rotating shaft;
[0023] A clamping frame is fixedly connected to the clamping block;
[0024] A clamping motor is fixedly connected to the clamping frame;
[0025] The clamping shaft is fixedly connected to the output end of the clamping motor and rotatably connected to the clamping block;
[0026] A sliding component is disposed on the clamping block.
[0027] Preferably, the sliding component includes:
[0028] A sliding groove is formed on the clamping block;
[0029] Two sliding blocks are symmetrically arranged in the sliding groove, slidably connected to the sliding groove, and threadedly connected to the clamping shaft.
[0030] An anti-slip plate is mounted on the sliding block and is fixedly connected to the sliding block.
[0031] Preferably, the lifting mechanism includes:
[0032] The lifting frame is mounted on the support frame and fixedly connected to the support frame;
[0033] A lifting motor is fixedly connected to the lifting frame;
[0034] The lifting shaft is fixedly connected to the output end of the lifting motor and rotatably connected to the support frame.
[0035] The movable component is mounted on the support frame.
[0036] Preferably, the moving component includes:
[0037] A movable slot is provided on the support frame;
[0038] The moving block has two parts, and the two moving blocks are symmetrically arranged in the moving groove, slidably connected to the moving groove, and threadedly connected to the lifting shaft;
[0039] A rotating component is mounted on the movable block.
[0040] Preferably, the rotating component includes:
[0041] A first rotating shaft is disposed on the movable block and fixedly connected to the movable block;
[0042] A rotating plate is rotatably connected to the first rotating shaft;
[0043] The second rotating shaft is rotatably connected to the rotating plate;
[0044] A rotating frame is mounted on the second rotating shaft, fixedly connected to the second rotating shaft, and fixedly connected to the lifting plate.
[0045] In summary, due to the adoption of the above technical solution, the beneficial effects of this utility model are:
[0046] By setting up a clamping mechanism, the glass tube is clamped and fixed, preventing it from shifting and shaking during movement and rotation, which would affect the cutting accuracy. By setting up a lifting mechanism, lifting groove, lifting block, and lifting plate, the height of the laser cutter can be raised and lowered, making the cutting of the glass tube more precise and flat. By setting up a support groove, support block, and fixing plate, the glass tube can be moved, facilitating the cutting of glass tubes to different lengths. Attached Figure Description
[0047] Figure 1 This is a three-dimensional structural diagram of a conveniently adjustable borosilicate glass tube circumferential cutting device.
[0048] Figure 2 This is a three-dimensional cross-sectional schematic diagram of a conveniently adjustable borosilicate glass tube circumferential cutting device.
[0049] Figure 3An exploded three-dimensional view of a conveniently adjustable borosilicate glass tube circumferential cutting device.
[0050] Figure 4 An exploded view of the lifting mechanism of a conveniently adjustable borosilicate glass tube circumferential cutting device.
[0051] Figure 5 An exploded view of the clamping mechanism of a conveniently adjustable borosilicate glass tube circumferential cutting device.
[0052] Legend:
[0053] 1. Support plate; 2. Support frame; 3. Laser cutter; 4. Support groove; 5. Support block; 6. Fixing plate; 7. Lifting groove; 8. Lifting block; 9. Lifting plate; 10. Collection frame; 11. Rotating frame; 12. Rotary motor; 13. Rotating shaft; 14. Clamping block; 15. Clamping frame; 16. Clamping motor; 17. Clamping shaft; 18. Sliding groove; 19. Sliding block; 20. Anti-slip plate; 21. Lifting frame; 22. Lifting motor; 23. Lifting shaft; 24. Moving groove; 25. Moving block; 26. First rotating shaft; 27. Rotating plate; 28. Second rotating shaft; 29. Rotating frame. Detailed Implementation
[0054] Reference Figures 1 to 5 The present invention provides a further description of an embodiment of a conveniently adjustable borosilicate glass tube circumferential cutting device.
[0055] A conveniently adjustable borosilicate glass tube circumferential cutting device includes a support plate 1, a support frame 2, and a laser cutter 3, with the support frame 2 fixedly connected to the support plate 1. It also includes: a support groove 4 formed on the support plate 1; a support block 5 disposed within the support groove 4 and slidably connected to it; a fixed plate 6 disposed on the support block 5 and fixedly connected to it; a rotating component disposed on the fixed plate 6 for rotating the glass tube; a clamping mechanism disposed on the rotating component for clamping and fixing the glass tube; a lifting mechanism disposed on the support frame 2 for adjusting the height of the laser cutter 3 to facilitate precise cutting of the glass tube; a lifting groove 7 formed on the support frame 2; a lifting block 8 slidably connected to the lifting groove 7; a lifting plate 9 disposed on the lifting block 8 and fixedly connected to it, and also fixedly connected to the laser cutter 3; and a collection frame 10 disposed on the support plate 1 for collecting the cut glass tube.
[0056] Reference Figure 2 In a preferred embodiment, the rotating component includes: a rotating frame 11, which is disposed on the fixed plate 6 and fixedly connected to the fixed plate 6; a rotating motor 12, which is fixedly connected to the rotating frame 11; and a rotating shaft 13, which is fixedly connected to the output end of the rotating motor 12 and rotatably connected to the fixed plate 6.
[0057] When in operation, the rotary motor 12 is started, which drives the rotary shaft 13, which is fixedly connected to the output end of the rotary motor 12, to rotate on the fixed plate 6, causing the clamping block 14, which is fixedly connected to the rotary shaft 13, to rotate, thereby driving the glass tube to rotate.
[0058] Reference Figure 5 In a preferred embodiment, the clamping mechanism includes: a clamping block 14, which is disposed on the rotating shaft 13 and fixedly connected to the rotating shaft 13; a clamping frame 15, which is fixedly connected to the clamping block 14; a clamping motor 16, which is fixedly connected to the clamping frame 15; a clamping shaft 17, which is fixedly connected to the output end of the clamping motor 16 and rotatably connected to the clamping block 14; and a sliding component disposed on the clamping block 14.
[0059] During operation, the clamping motor 16 is started, which drives the clamping shaft 17, which is fixedly connected to the output end of the clamping motor 16, to rotate on the clamping block 14.
[0060] Reference Figure 5 In a preferred embodiment, the sliding component includes: a sliding groove 18 formed on the clamping block 14; two sliding blocks 19, which are symmetrically arranged in the sliding groove 18, slidably connected to the sliding groove 18, and threadedly connected to the clamping shaft 17; and an anti-slip plate 20, which is disposed on the sliding block 19 and fixedly connected to the sliding block 19.
[0061] During operation, the sliding block 19, which is threadedly connected to the clamping shaft 17, rotates, causing the sliding block 19 to slide within the sliding groove 18, so that the anti-slip plate 20, which is fixedly connected to the sliding block 19, moves closer to each other until the anti-slip plate 20 contacts both ends of the glass tube.
[0062] Reference Figure 4 In a preferred embodiment, the lifting mechanism includes: a lifting frame 21, which is mounted on the support frame 2 and fixedly connected to the support frame 2; a lifting motor 22, which is fixedly connected to the lifting frame 21; a lifting shaft 23, which is fixedly connected to the output end of the lifting motor 22 and rotatably connected to the support frame 2; and a moving component, which is mounted on the support frame 2.
[0063] When in operation, the lifting motor 22 is started, which drives the lifting shaft 23, which is fixedly connected to the output end of the lifting motor 22, to rotate on the support frame 2.
[0064] Reference Figure 3 and Figure 4 In a preferred embodiment, the moving component includes: a moving groove 24, which is formed on the support frame 2; two moving blocks 25, which are symmetrically arranged in the moving groove 24, slidably connected to the moving groove 24, and threadedly connected to the lifting shaft 23; and a rotating component, which is disposed on the moving blocks 25.
[0065] During operation, the moving block 25, which is threadedly connected to the lifting shaft 23, rotates, causing the moving block 25 to slide within the moving groove 24, thus bringing the moving blocks 25 closer to each other.
[0066] Reference Figure 4 In a preferred embodiment, the rotating component includes: a first rotating shaft 26, which is disposed on the moving block 25 and fixedly connected to the moving block 25; a rotating plate 27, which is rotatably connected to the first rotating shaft 26; a second rotating shaft 28, which is rotatably connected to the rotating plate 27; and a rotating frame 29, which is disposed on the second rotating shaft 28, fixedly connected to the second rotating shaft 28, and fixedly connected to the lifting plate 9.
[0067] During operation, the rotating plate 27, which is rotatably connected to the first rotating shaft 26, rotates, causing the rotating frame 29, which is fixedly connected to the second rotating shaft 28, to move away from the support frame 2. This causes the lifting plate 9, which is fixedly connected to the rotating frame 29, to move, causing the lifting block 8, which is fixedly connected to the lifting plate 9, to slide in the lifting groove 7. This causes the laser cutter 3, which is fixedly connected to the lifting plate 9, to move closer to the surface of the glass tube.
[0068] Working principle: In use, first place the glass tube in the middle of the two anti-slip plates 20, then start the clamping motor 16, which drives the clamping shaft 17 fixedly connected to the output end of the clamping motor 16 to rotate on the clamping block 14, causing the sliding block 19 threadedly connected to the clamping shaft 17 to rotate, causing the sliding block 19 to slide in the sliding groove 18, so that the anti-slip plates 20 fixedly connected to the sliding block 19 move closer to each other until the anti-slip plates 20 contact the two ends of the glass tube, thereby clamping and fixing the glass tube; then push the fixing plate 6, which drives the sliding block 19 fixedly connected to the fixing plate 6 to slide in the sliding groove 18, so that the glass tube moves downwards from the laser cutter 3 until it reaches the length to be cut;
[0069] Next, the lifting motor 22 is started, driving the lifting shaft 23, which is fixedly connected to the output end of the lifting motor 22, to rotate on the support frame 2. This causes the moving block 25, which is threadedly connected to the lifting shaft 23, to rotate, driving the moving block 25 to slide within the moving groove 24. This causes the moving blocks 25 to move closer together, thereby driving the rotating plate 27, which is rotatably connected to the first rotating shaft 26, to rotate. This causes the rotating frame 29, which is fixedly connected to the second rotating shaft 28, to move away from the support frame 2, driving the lifting plate 9, which is fixedly connected to the rotating frame 29, to move. This causes the lifting plate 9, which is fixedly connected to the lifting plate 9, to move. Block 8 slides within the lifting groove 7, causing the laser cutter 3, which is fixedly connected to the lifting plate 9, to move closer to the surface of the glass tube until the laser cutter 3 moves to a suitable position, thereby adjusting the height of the laser cutter 3 to facilitate more precise cutting of the glass tube; then the rotary motor 12 is started, causing the rotary shaft 13, which is fixedly connected to the output end of the rotary motor 12, to rotate on the fixed plate 6, causing the clamping block 14, which is fixedly connected to the rotary shaft 13, to rotate, thereby causing the glass tube to rotate, and then the laser cutter 3 is started again to achieve circumferential cutting of the glass tube.
[0070] The above description of the embodiments enables those skilled in the art to make or use the present invention. 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 the present invention. Therefore, the present invention 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 conveniently adjustable borosilicate glass tube circumferential cutting device, comprising a support plate (1), a support frame (2), and a laser cutter (3), wherein the support frame (2) is fixedly connected to the support plate (1); characterized in that, Also includes: A support groove (4) is formed on the support plate (1); A support block (5) is disposed in the support groove (4) and is slidably connected to the support groove (4); A fixing plate (6) is disposed on the support block (5) and fixedly connected to the support block (5); A rotating component is disposed on the fixed plate (6) for rotating the glass tube; A clamping mechanism, disposed on the rotating component, is used to clamp and fix the glass tube; The lifting mechanism is set on the support frame (2) and is used to adjust the height of the laser cutter (3) to facilitate precise cutting of the glass tube; A lifting groove (7) is provided on the support frame (2); The lifting block (8) is slidably connected to the lifting groove (7); The lifting plate (9) is set on the lifting block (8), fixedly connected to the lifting block (8), and fixedly connected to the laser cutter (3); A collection frame (10) is set on the support plate (1) for collecting the cut glass tubes.
2. The easily adjustable borosilicate glass tube circumferential cutting device according to claim 1, characterized in that, The rotating component includes: A rotating frame (11) is disposed on the fixed plate (6) and fixedly connected to the fixed plate (6); A rotary motor (12) is fixedly connected to the rotating frame (11); The rotating shaft (13) is fixedly connected to the output end of the rotating motor (12) and rotatably connected to the fixed plate (6).
3. The easily adjustable borosilicate glass tube circumferential cutting device according to claim 2, characterized in that, The clamping mechanism includes: A clamping block (14) is disposed on the rotating shaft (13) and fixedly connected to the rotating shaft (13); The clamping frame (15) is fixedly connected to the clamping block (14); The clamping motor (16) is fixedly connected to the clamping frame (15); The clamping shaft (17) is fixedly connected to the output end of the clamping motor (16) and rotatably connected to the clamping block (14); A sliding component is disposed on the clamping block (14).
4. The easily adjustable borosilicate glass tube circumferential cutting device according to claim 3, characterized in that, The sliding component includes: A sliding groove (18) is formed on the clamping block (14); There are two sliding blocks (19), and the two sliding blocks (19) are symmetrically arranged in the sliding groove (18), are slidably connected to the sliding groove (18), and are threadedly connected to the clamping shaft (17); Anti-slip plate (20) is disposed on the sliding block (19) and fixedly connected to the sliding block (19).
5. The easily adjustable borosilicate glass tube circumferential cutting device according to claim 4, characterized in that, The lifting mechanism includes: The lifting frame (21) is set on the support frame (2) and fixedly connected to the support frame (2); The lifting motor (22) is fixedly connected to the lifting frame (21); The lifting shaft (23) is fixedly connected to the output end of the lifting motor (22) and rotatably connected to the support frame (2); The movable component is mounted on the support frame (2).
6. The easily adjustable borosilicate glass tube circumferential cutting device according to claim 5, characterized in that, The movable component includes: A movable slot (24) is provided on the support frame (2); There are two movable blocks (25), and the two movable blocks (25) are symmetrically arranged in the movable groove (24), are slidably connected to the movable groove (24), and are threadedly connected to the lifting shaft (23); A rotating component is disposed on the movable block (25).
7. The easily adjustable high borosilicate glass tube circumferential cutting device according to claim 6, characterized in that, The rotating component includes: The first rotating shaft (26) is disposed on the moving block (25) and is fixedly connected to the moving block (25); Rotating plate (27) is rotatably connected to the first rotating shaft (26); The second rotating shaft (28) is rotatably connected to the rotating plate (27); The rotating frame (29) is mounted on the second rotating shaft (28), fixedly connected to the second rotating shaft (28), and fixedly connected to the lifting plate (9).