Power integration device based on cutting of encrusting forming machine and synchronous lifting of cutter tray
By integrating a cutting component and a synchronous lifting component into the filling machine, the synchronous lifting of the cutting component and the cutting tray is achieved, solving the problem of dispersed power structure and improving production stability and efficiency.
Patent Information
- Application Number
- CN202520815277.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-27
- Publication Date
- 2026-02-24
- Estimated Expiration
- 2035-04-27
AI Technical Summary
The existing filling machines have a distributed power structure, which makes it difficult to coordinate their operation and prone to failure, thus affecting the production process.
The device employs a power integration unit that combines a cutting assembly and a synchronous lifting assembly. Through the combination of a lifting motor, drive shaft, crank-connecting rod mechanism, lifting plate, guide column, cam, and linkage mechanism, the synchronous lifting of the cutting assembly and the cutting tray is achieved. The lifting speed of the cutting assembly is adapted to the feeding speed, and the receiving plate lifts and lowers synchronously with the cutting assembly to provide buffering.
It achieves synchronous lifting of the cutting assembly and the cutting tray, avoiding material accumulation or interruption, ensuring the drop distance and cushioning effect of the material, preventing the material from breaking or deforming, and solving the problem of dispersed power structure.
Smart Images

Figure CN223933786U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to a power integrated device for the synchronous lifting of the cutting and cutting tray of a filling forming machine, belonging to the technical field of filling machines. Background Technology
[0002] In the food processing industry, stuffing machines are widely used, but existing stuffing machines have many problems. The power structure of existing stuffing machines is relatively decentralized, making coordinated operation difficult, prone to malfunctions, and affecting the production process. Utility Model Content
[0003] This invention overcomes the shortcomings of the existing technology and provides a power integration device for the synchronous lifting of the cutting material and the cutting tray of a filling forming machine, thus solving the problem of dispersed power structure.
[0004] To solve the above-mentioned technical problems, the technical solution adopted by this utility model is as follows: a power integrated device for synchronous lifting of the cutting and cutting tray of a filling forming machine, including a cutting component, a synchronous lifting component, and a mounting plate. The synchronous lifting component is mounted on the mounting plate, and the cutting component is mounted on the synchronous lifting component. The synchronous lifting component includes a lifting motor, a drive shaft, a crank-connecting rod mechanism, a lifting plate, a guide column, a cam, a connecting rod mechanism, and a support rod. The power output end of the lifting motor is connected to the drive shaft after power reversal. One end of the drive shaft is provided with a crank-connecting rod mechanism, and the end of the crank-connecting rod mechanism is connected to the lifting plate. The guide column is located at the lower end of the lifting plate, and the cutting component is located at the upper end of the lifting plate. The crank-connecting rod mechanism drives the lifting plate to move up and down, thereby driving the cutting component to lift synchronously. The other end of the drive shaft is provided with a cam, which is connected to the support rod through a connecting rod mechanism. The side of the support rod is slidably disposed in a slide rail, and the top of the support rod is provided with a receiving plate. The receiving plate and the cutting component achieve synchronous lifting under the synchronous drive of the drive shaft.
[0005] Furthermore, the structure of the cutting assembly is as follows: it includes a cutting blade assembly and a cutting blade motor. The body of the cutting blade motor and the outer shell of the cutting blade assembly are both fixedly mounted on the lifting plate. A drive linkage mechanism is provided on the power output end of the cutting blade motor. One end of the drive linkage mechanism is connected to the cutting blade motor, and the other end of the drive linkage mechanism is poweredly connected to the cutter head of the cutting blade assembly. The cutting blade motor drives the drive linkage mechanism to move, thereby driving the cutter head of the cutting blade assembly to move.
[0006] Furthermore, a sensor is provided on the lifting plate. The sensor is used to detect the stroke of the drive linkage mechanism and provide control signals for the forward and reverse rotation of the cutter motor.
[0007] Furthermore, a roller is provided at one end of the linkage mechanism. The roller is matched and disposed in an annular groove on one side of the cam. When the cam rotates, the roller rolls in the annular groove, thereby driving the linkage mechanism to move.
[0008] Furthermore, the upper end of the guide post is fixed to the lifting plate, and the lower end of the guide post is movably inserted into the limiting plate fixed to the mounting plate.
[0009] Compared with the prior art, the advantages of this utility model are as follows: In this utility model, the cutting component and the synchronous lifting component are integrated onto the mounting plate. The cutting action of the cutting component is driven by a separate cutting motor. The lifting of the cutting component is synchronized with the lifting of the receiving plate. The lifting speed of the cutting component is adapted to the feeding speed, avoiding material accumulation or breakage in the cutter head. The synchronous lifting of the receiving plate and the cutting component can ensure the drop distance of the cut material and provide a certain buffering effect to prevent the material from breaking or deforming. At the same time, it solves the problem of the current dispersed power structure. Attached Figure Description
[0010] The present invention will be further described below with reference to the accompanying drawings.
[0011] Figure 1 This is a schematic diagram of the structure of this utility model.
[0012] Figure 2 This is a front view structural diagram of the present invention.
[0013] Figure 3 This is a schematic diagram of the three-dimensional structure of the present invention. Figure 1 .
[0014] Figure 4 This is a schematic diagram of the three-dimensional structure of the present invention. Figure 2 .
[0015] In the diagram: 1. Cutting assembly; 11. Cutting blade assembly; 12. Cutting blade motor; 13. Drive linkage mechanism; 14. Sensor; 2. Synchronous lifting assembly; 21. Lifting motor; 22. Drive shaft; 23. Crank-connecting rod mechanism; 24. Lifting plate; 25. Guide column; 26. Cam; 27. Linkage mechanism; 28. Support rod; 29. Slide rail; 210. Receiving plate; 211. Roller; 212. Annular groove; 213. Limiting plate; 3. Mounting plate. Detailed Implementation
[0016] The present invention will be further described below with reference to specific embodiments.
[0017] like Figures 1-4As shown, this utility model is a power integrated device for synchronous lifting of the cutting and cutting tray of a filling forming machine. It includes a cutting assembly 1, a synchronous lifting assembly 2, and a mounting plate 3. The synchronous lifting assembly 2 is mounted on the mounting plate 3, and the cutting assembly 1 is mounted on the synchronous lifting assembly 2. The synchronous lifting assembly 2 includes a lifting motor 21, a drive shaft 22, a crank-connecting rod mechanism 23, a lifting plate 24, a guide column 25, a cam 26, a connecting rod mechanism 27, and a support rod 28. The power output end of the lifting motor 21 is connected to the drive shaft 22 after power reversal. One end of the drive shaft 22 is provided with the crank-connecting rod mechanism 23, and the end of the crank-connecting rod mechanism 23 is connected to the lifting plate 24. The guide column 25 is located at the lower end of the lifting plate 24, and the upper end of the guide column 25 is fixed to the lifting plate 24. The lower end of the guide post 25 is movably inserted into the limiting plate 213 fixed to the mounting plate 3. The cutting assembly 1 is located at the upper end of the lifting plate 24. The body of the cutting motor 12 and the outer shell of the cutting assembly 11 are both fixedly mounted on the lifting plate 24. A drive linkage mechanism 13 is provided on the power output end of the cutting motor 12. One end of the drive linkage mechanism 13 is connected to the cutting motor 12, and the other end of the drive linkage mechanism 13 is poweredly connected to the cutter disc of the cutting assembly 11. The cutting motor 12 drives the drive linkage mechanism 13 to move, thereby driving the cutter disc of the cutting assembly 11 to move. A sensor 14 is provided on the lifting plate 24. The sensor 14 is used to detect the travel of the drive linkage mechanism 13 and provide control signals for the forward and reverse rotation of the cutting motor 12. The lifting plate 24 is driven up and down by the crank-connecting rod mechanism 23, which in turn drives the cutting assembly 1 to move up and down synchronously. The other end of the drive shaft 22 is provided with a cam 26, which is connected to the support rod 28 through the connecting rod mechanism 27. One end of the connecting rod mechanism 27 is provided with a roller 211, which is matched and set in an annular groove 212 on one side of the cam 26. When the cam 26 rotates, the roller 211 rolls in the annular groove 212, thereby driving the connecting rod mechanism 27 to move. The side of the support rod 28 is slidably set in the slide rail 29, and the top of the support rod 28 is provided with a receiving plate 210. The receiving plate 210 and the cutting assembly 1 move up and down synchronously under the synchronous drive of the drive shaft 22.
[0018] In this invention, the cutting assembly 1 and the synchronous lifting assembly 2 are integrated onto the mounting plate 3. The cutting action of the cutting assembly 1 is driven by a separate cutting motor 12. The lifting of the cutting assembly 11 is synchronized with the lifting of the receiving plate 210. The lifting speed of the cutting assembly 11 is adapted to the feeding speed to avoid material accumulation or breakage in the cutter head. The synchronous lifting of the receiving plate 210 and the cutting assembly 11 can ensure the drop distance of the cut material and provide a certain buffering effect to prevent the material from breaking or deforming. At the same time, it solves the problem of the current dispersed power structure.
[0019] The embodiments of the present invention have been described in detail above with reference to the accompanying drawings. However, the present invention is not limited to the above embodiments. Within the scope of knowledge possessed by those skilled in the art, various changes can be made without departing from the spirit of the present invention.
Claims
1. A power integrated device for synchronous lifting of the cutting material and the cutting tray of a filling forming machine, characterized in that, The assembly includes a cutting component (1), a synchronous lifting component (2), and a mounting plate (3). The synchronous lifting component (2) is mounted on the mounting plate (3), and the cutting component (1) is mounted on the synchronous lifting component (2). The synchronous lifting component (2) includes a lifting motor (21), a drive shaft (22), a crank-connecting rod mechanism (23), a lifting plate (24), a guide column (25), a cam (26), a connecting rod mechanism (27), and a support rod (28). The power output end of the lifting motor (21) is connected to the drive shaft (22) after power reversal. One end of the drive shaft (22) is provided with a crank-connecting rod mechanism (23), and the end of the crank-connecting rod mechanism (23) is connected to a lifting plate. The lowering plate (24) has a guide column (25) at the lower end of the lifting plate (24) and a cutting assembly (1) at the upper end of the lifting plate (24). The lifting plate (24) is driven to move up and down by a crank-connecting rod mechanism (23), which drives the cutting assembly (1) to move up and down synchronously. The other end of the drive shaft (22) is provided with a cam (26). The cam (26) is connected to the support rod (28) through a connecting rod mechanism (27). The side of the support rod (28) is slidably arranged in the slide rail (29). The top of the support rod (28) is provided with a receiving plate (210). The receiving plate (210) and the cutting assembly (1) move up and down synchronously under the synchronous drive of the drive shaft (22).
2. The power integrated device for synchronous lifting of the cutting material and cutting tray of the filling forming machine according to claim 1, characterized in that, The structure of the cutting assembly (1) is as follows: it includes a cutting assembly (11) and a cutting motor (12). The body of the cutting motor (12) and the outer shell of the cutting assembly (11) are both fixedly mounted on the lifting plate (24). A drive linkage mechanism (13) is provided on the power output end of the cutting motor (12). One end of the drive linkage mechanism (13) is connected to the cutting motor (12), and the other end of the drive linkage mechanism (13) is poweredly connected to the cutter head of the cutting assembly (11). The cutting motor (12) drives the drive linkage mechanism (13) to move, thereby driving the cutter head of the cutting assembly (11) to move.
3. The power integrated device for synchronous lifting of the cutting and cutting tray of the filling forming machine according to claim 1 or 2, characterized in that, A sensor (14) is provided on the lifting plate (24). The sensor (14) is used to detect the travel of the drive linkage mechanism (13) and provide control signals for the forward and reverse rotation of the cutter motor (12).
4. The power integrated device for synchronous lifting of the cutting material and cutting tray of the filling forming machine according to claim 3, characterized in that, One end of the linkage mechanism (27) is provided with a roller (211), which is matched and set in an annular groove (212) on one side of the cam (26). When the cam (26) rotates, the roller (211) rolls in the annular groove (212), thereby driving the linkage mechanism (27) to move.
5. The power integrated device for synchronous lifting of the cutting material and cutting tray of the filling forming machine according to claim 4, characterized in that, The upper end of the guide post (25) is fixed on the lifting plate (24), and the lower end of the guide post (25) is movably inserted into the limiting plate (213) fixed on the mounting plate (3).