Workbench for cutting die machining
By using a worktable design driven by a slide, threaded rod, gear, and servo motor, the problem of fixed fixture position in traditional die-cutting table processing is solved, enabling rapid and flexible adjustment and efficient processing of the die-cutting mold, thus improving processing accuracy and versatility.
Patent Information
- Application Number
- CN202520191893.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-07
- Publication Date
- 2026-01-09
- Estimated Expiration
- 2035-02-07
AI Technical Summary
Traditional die-cutting worktables have fixed or complex fixture positions, resulting in poor flexibility, low processing efficiency, and difficulty in meeting the needs of multiple processing and die-cutting molds of different sizes and shapes.
The worktable is designed with slide rails, threaded rods, gears, and servo motors. The servo motor drives the sprockets and chains to move the processing table and flexibly adjust the clamping components. Combined with the synchronous movement of gears and racks, it can accommodate the fixing of die molds of different lengths.
It enables rapid and flexible movement of the die-cutting fixture, improves processing efficiency and accuracy, enhances the versatility of the worktable, and adapts to various die-cutting processing needs.
Smart Images

Figure CN223777925U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of die-cutting technology, and in particular to a worktable for die-cutting processing. Background Technology
[0002] A die-cutting mold is a mold used for stamping products: When printing a box, it is a flat piece of paper. After printing, to make a box, a flat mold with the same shape as the box is needed to stamp it. This mold is called a printing die-cutting mold, which can also be simply called a die-cutting mold or stamping mold.
[0003] Regarding the aforementioned technologies, the inventors believe that traditional die-cutting worktables typically have fixed fixtures, or while adjustable, they are complex to operate and lack flexibility. When processing die-cutting molds that require multiple processing operations at different positions, fixed fixtures cannot meet the needs of back-and-forth movement. Operators often need to manually reposition the die-cutting mold, which is not only time-consuming and labor-intensive but also prone to affecting processing accuracy due to positioning errors. Furthermore, traditional fixtures are difficult to adapt quickly when processing die-cutting molds of different sizes and shapes, resulting in low processing efficiency. Therefore, a die-cutting worktable is proposed to solve the above problems.
[0004] The information disclosed in this background section is only intended to enhance the understanding of the background technology of this application, and therefore may include prior art that is not known to those skilled in the art. Utility Model Content
[0005] To address the aforementioned problems, this application provides a worktable for die-cutting.
[0006] The technical solution for a die-cutting worktable provided in this application is as follows:
[0007] A die-cutting workbench includes a base, an outer wall of which has a sliding groove, and a processing table is slidably connected to the outer wall of the sliding groove. Both outer walls of the base have inner grooves, and the outer walls of the inner grooves are rotatably connected to first threaded rods, both of which are threadedly connected to the processing table. The inner wall of the processing table is rotatably connected to a gear, and the outer walls of the processing table on both sides of the gear are slidably connected to two racks, which mesh with the gear. The outer walls of both racks are fixedly connected to a fixing platform, and the outer walls of the fixing platforms are provided with clamping assemblies.
[0008] Preferably, the clamping assembly includes a second threaded rod, which is rotatably connected to the outer wall of the fixed platform. A drive frame is threadedly connected to the outer wall of the second threaded rod, and the drive frame is slidably connected to the fixed platform. Two fixing clamps are fixedly connected to the outer walls on both sides of the drive frame.
[0009] Preferably, the two first threaded rods rotate through the machine base and are fixedly connected to two sprockets, and a chain is provided between the two sprockets, the chain meshing with the two sprockets.
[0010] Preferably, a servo motor is fixedly connected to the outer side wall of the base, and the output shaft of the servo motor is fixedly connected to one of the sprockets.
[0011] Preferably, a drive motor is fixedly connected to the bottom outer wall of the processing table, and the output shaft of the drive motor is fixedly connected to a gear.
[0012] In summary, this application includes the following beneficial technical effects:
[0013] By using two threaded rods, the machine tool table is moved and its position adjusted to suit the die-cutting equipment. Simultaneously, a drive gear rotates, causing racks on both sides to move, which in turn move fixed platforms on both sides synchronously. This controls the clamping components on the fixed platforms to adapt to the length of the die-cutting mold and secure it. Compared to existing technologies, this method enables rapid and flexible movement of the die-cutting fixture, meeting the processing needs of different dies in different positions, improving processing efficiency and accuracy. It also accommodates dies of varying lengths, enhancing the versatility of the worktable. Attached Figure Description
[0014] Figure 1 This is an overall schematic diagram of Embodiment 1 of the application;
[0015] Figure 2 This is a cross-sectional view of the processing table structure in Embodiment 1 of the application;
[0016] Figure 3 This is a three-dimensional top view structural diagram of Embodiment 1 of the application;
[0017] Figure 4 This is a three-dimensional bottom view structural diagram of Embodiment 1 of the application;
[0018] Figure 5 for Figure 1 Enlarged schematic diagram of the structure at point A in the middle.
[0019] Explanation of reference numerals in the attached drawings: 1. Machine base; 2. Inner groove; 3. First threaded rod; 4. Sprocket; 5. Chain; 6. Servo motor; 7. Machining table; 8. Slide groove; 9. Fixed table; 10. Drive frame; 11. Second threaded rod; 12. Fixture; 13. Gear; 14. Rack; 15. Drive motor. Detailed Implementation
[0020] The following is in conjunction with the appendix Figure 1 - Figure 5 This application will be described in further detail.
[0021] Example 1:
[0022] A worktable for die-cutting includes a base 1. A groove 8 is formed on the outer wall of the base 1, and a processing table 7 is slidably connected to the outer wall of the groove 8. The processing table 7 can be moved by sliding adjustment, thereby adjusting the fixture that holds the die-cutting mold to accommodate processing at different positions. Both outer walls of the base 1 have inner grooves 2, and the outer walls of the inner grooves 2 are rotatably connected to first threaded rods 3. Both first threaded rods 3 are threadedly connected to the processing table 7. Driving the two first threaded rods 3 to rotate causes the two first threaded rods 3 to move the processing table 7 back and forth, thereby completing the processing. The inner wall of the processing table 7 is rotatably connected to a gear 13. Two racks 14 are slidably connected to the outer walls of the processing table 7 on both sides of the gear 13, and the two racks 14 mesh with the gear 13. The outer walls of the two racks 14 are fixedly connected to a fixed platform 9. By driving the gear 13 to rotate, the gear 13 drives the racks 14 on both sides to move towards each other or in opposite directions, thereby making the racks 14 on both sides move synchronously with the fixed platform 9, so that the fixed platform 9 on both sides can adapt to the length of the die. The outer wall of the fixed platform 9 is provided with a clamping component, which facilitates the fixing of the die.
[0023] The clamping assembly includes a second threaded rod 11, which is rotatably connected to the outer wall of the fixed platform 9. A drive frame 10 is threadedly connected to the outer wall of the second threaded rod 11, and the drive frame 10 is slidably connected to the fixed platform 9. Two fixing clamps 12 are fixedly connected to the outer walls on both sides of the drive frame 10. By rotating the second threaded rod 11, the second threaded rod 11 drives the drive frame 10 to move, thereby causing the drive frame 10 to drive the fixing clamps 12 on both sides to move downward, thus completing the fixing of the die on the processing table 7.
[0024] Two first threaded rods 3 rotate through the base 1 and are fixedly connected to two sprockets 4. A chain 5 is provided between the two sprockets 4. The chain 5 meshes with the two sprockets 4. By driving one of the sprockets 4 to rotate, the sprocket 4 drives the other sprocket 4 to rotate synchronously through the chain 5, thereby completing the drive of the two sprockets 4 and enabling the two sprockets 4 to drive the two first threaded rods 3 synchronously in the same direction.
[0025] A servo motor 6 is fixedly connected to the outer side wall of the base 1, and the output shaft of the servo motor 6 is fixedly connected to one of the sprockets 4. The servo motor 6 is started by an external power switch, so that the output shaft of the servo motor 6 drives the sprocket 4.
[0026] The bottom outer wall of the processing table 7 is fixedly connected to a drive motor 15, and the output shaft of the drive motor 15 is fixedly connected to the gear 13. The drive motor 15 is started by an external power switch, so that the output shaft of the drive motor 15 drives the gear 13.
[0027] The implementation principle of a die-cutting worktable according to an embodiment of this application is as follows: First, the servo motor 6 can be started by an external power switch, causing the output shaft of the servo motor 6 to drive the sprocket 4 to rotate. This causes the sprocket 4 to drive another sprocket 4 to rotate via the chain 5, thus completing the synchronous drive of the two sprockets 4. The two sprockets 4 synchronously drive the two first threaded rods 3 to rotate synchronously, thereby causing the two first threaded rods 3 to drive the processing table 7 to move back and forth, thereby adjusting the position of the processing table 7 to adapt to die-cutting processing. Then, the drive motor 15 is started by an external power switch, causing the output shaft of the drive motor 15 to drive the gear 13. The gear 13 rotates, causing the racks 14 on both sides to move. This causes the racks 14 to move the fixed platforms 9 on both sides to move in opposite directions, ensuring that the clamping components on the two fixed platforms 9 can clamp and fix the die-cutting molds of different lengths. By placing the die-cutting mold on the processing table 7, the two fixed clamps 12 on both sides correspond to the two sides of the die-cutting mold. Then, by rotating the second threaded rod 11, the second threaded rod 11 drives the drive frame 10 to move, causing the drive frame 10 to drive the fixed clamps 12 on both sides to contact the outer wall of the die-cutting mold, thereby fixing the die-cutting mold and facilitating subsequent processing of the die-cutting mold.
[0028] The foregoing description of an exemplary embodiment of a die-cutting workbench provided by this disclosure refers to preferred embodiments. However, those skilled in the art will understand that various modifications and alterations can be made to the above specific embodiments without departing from the spirit of this disclosure, and various combinations can be made to the various technical features and structures proposed in this disclosure without exceeding the protection scope of this disclosure, which is determined by the appended claims.
Claims
1. A worktable for die-cutting, comprising a base (1), characterized in that: The outer wall of the machine base (1) is provided with a sliding groove (8), and the outer wall of the sliding groove (8) is slidably connected to a processing table (7). Both outer walls of the machine base (1) are provided with inner grooves (2). The outer wall of the inner groove (2) is rotatably connected to a first threaded rod (3), and both first threaded rods (3) are threadedly connected to the processing table (7). The inner wall of the processing table (7) is rotatably connected to a gear (13). The outer walls of the processing table (7) on both sides of the gear (13) are slidably connected to two racks (14), and the two racks (14) mesh with the gear (13). The outer walls of the two racks (14) are fixedly connected to a fixed platform (9), and the outer wall of the fixed platform (9) is provided with a clamping assembly.
2. The worktable for die-cutting according to claim 1, characterized in that: The clamping assembly includes a second threaded rod (11), which is rotatably connected to the outer wall of the fixed platform (9). The outer wall of the second threaded rod (11) is threadedly connected to a drive frame (10), and the drive frame (10) is slidably connected to the fixed platform (9). Two fixing clamps (12) are fixedly connected to the outer walls on both sides of the drive frame (10).
3. The worktable for die-cutting processing according to claim 1, characterized in that: Two first threaded rods (3) rotate through the base (1) and are fixedly connected to two sprockets (4), and a chain (5) is provided between the two sprockets (4), the chain (5) meshing with the two sprockets (4).
4. The worktable for die-cutting according to claim 1, characterized in that: A servo motor (6) is fixedly connected to the outer side wall of the base (1), and the output shaft of the servo motor (6) is fixedly connected to one of the sprockets (4).
5. A worktable for die-cutting according to claim 1, characterized in that: The bottom outer wall of the processing table (7) is fixedly connected to a drive motor (15), and the output shaft of the drive motor (15) is fixedly connected to a gear (13).