Cutting assembly of new energy stator proofing platform
By designing a cutting assembly of a new energy stator proofing platform including a cutting machine body, a driving seat, a cutting head and a cutting positioning table, the problem of difficulty in taking out the stator piece after cutting is solved, and the automatic removal of the finished stator product is realized and the working efficiency is improved.
Patent Information
- Application Number
- CN202421584986.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-05
- Publication Date
- 2025-06-24
- Estimated Expiration
- 2034-07-05
AI Technical Summary
During the processing of the new energy stator, the cut sheet is difficult to remove on the workbench of the laser cutting machine, resulting in a decrease in working efficiency.
A cutting assembly of a new energy stator proofing platform is designed, including the cutting machine body, drive seat, cutting head and cutting positioning table. The surface of the cutting positioning table is covered with metal embryos, and the metal embryos are cut and molded through the cutting head. After the cutting is completed, the finished stator product can automatically fall on the upper receiving plate for easy removal by staff.
Through this cutting assembly, the finished stator product can automatically fall on the upper receiving plate for easy removal and improve the working efficiency of the cutting machine.
Smart Images

Figure CN223012161U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the field of new energy stator processing, in particular to a cutting component of a proofing platform for new energy stators. Background Technique
[0002] The new energy stator is a key component in new energy motors; in motors used in new energy fields such as new energy vehicles, wind power generation, and solar power generation, the stator is the stationary part; it is usually composed of an iron core and windings; the iron core is generally laminated by silicon steel sheets, and its function is to provide a magnetic path to enhance the conduction and concentration of the magnetic field; the windings are wound by enameled wires and generate a magnetic field when passing through an electric current; the design and manufacturing quality of the new energy stator have a crucial impact on the performance of the motor; for example, the number of slots in the stator, the number of turns and arrangement of the windings, etc., will affect the output power, efficiency, torque characteristics, and speed regulation performance of the motor; taking new energy vehicles as an example, a high-efficiency and high-performance stator can improve the efficiency of the drive motor, increase the cruising range and power performance of the vehicle; in wind power generation, a high-quality stator can improve the power generation efficiency of the wind turbine and adapt to different wind speed conditions;
[0003] When processing new energy stators, cutting is required, and usually laser cutting is used: using a high-energy laser beam to cut the stator; this method has the advantages of high precision, high speed, and non-contact processing, and can meet the requirements of the stator for precision and surface quality;
[0004] After the laser head on the laser cutting machine finishes cutting the blank, the cut stator sheet is not easy to be taken out on the workbench of the laser cutting machine due to its thin thickness, which reduces the working efficiency of the laser cutting machine. Content of the Utility Model
[0005] The purpose of the utility model is to provide a cutting component of a proofing platform for new energy stators to solve the defects mentioned in the above background technique.
[0006] To achieve the above purpose, a cutting component of a proofing platform for new energy stators is provided, including a cutting machine body. A driving seat is fixedly installed on the cutting machine body, and a cutting head is installed on the driving seat. At the same time, a cutting positioning table is arranged at the bottom of the cutting machine body, and a metal blank is covered on the surface of the cutting positioning table; the cutting positioning table includes a machine table, and support feet are fixedly installed on both sides of the bottom of the machine table. At the same time, a positioning groove is opened at the top of the machine table, and an upper receiving plate is installed on the upper side inside the machine table, and a lower receiving plate is installed on the lower side inside the machine table. The front parts of the upper receiving plate and the lower receiving plate are fixedly installed on the stress block, and receiving grooves are opened on the surfaces of the upper receiving plate and the lower receiving plate.
[0007] Preferably, the positioning groove is adapted to the size of the metal blank, and the metal blank is clamped inside the positioning groove. At the same time, the surface of the metal blank is cut and formed by a cutting head.
[0008] Preferably, openings are provided on the surfaces of both side walls of the machine table, and the openings are strip-shaped.
[0009] Preferably, force-receiving grooves are provided on both sides of the positioning groove, and the force-receiving grooves are rectangular. At the same time, the depth of the force-receiving groove is greater than the depth of the positioning groove.
[0010] Preferably, two groups of positioning tracks are provided on the surfaces of both side walls of the machine table, and positioning strips are fixedly installed at both ends of the upper receiving plate and the lower receiving plate. At the same time, the upper receiving plate and the lower receiving plate are arranged in parallel.
[0011] Preferably, the positioning tracks and the positioning strips are adapted in size, and the positioning strips are inserted inside the positioning tracks. At the same time, the upper receiving plate and the lower receiving plate are inserted inside the machine table through the positioning tracks, and the upper receiving plate and the lower receiving plate are arranged opposite to the metal blank.
[0012] Compared with the prior art, the beneficial effects of the present utility model are as follows: After the metal blank is cut and formed, the stator finished product can automatically fall on the surface of the upper receiving plate under the knocking of the staff. By holding the force-receiving block, the upper receiving plate can be pulled out from the inside of the machine table, and a large number of stator finished products on the upper receiving plate can be taken out; after the upper receiving plate is taken out, the lower receiving plate can continue to receive the stators formed by cutting with the cutting head, greatly improving the working efficiency of the cutting machine body. BRIEF DESCRIPTION OF THE DRAWINGS
[0013] Figure 1 is a front view of the structure of the present utility model;
[0014] Figure 2 is a schematic diagram of the cutting positioning table of the structure of the present utility model;
[0015] Figure 3 is the structure of the present utility model Figure 2 bottom view;
[0016] Figure 4 is the structure of the present utility model Figure 2 top view;
[0017] Figure 5 is a schematic diagram of the stator after being cut and formed by the cutting machine body.
[0018] Reference numerals in the figure: 1, cutting machine body; 2, driving seat; 3, cutting head; 4, metal blank; 5, cutting positioning table; 51, machine table; 52, positioning groove; 53, stress groove; 54, opening; 55, support feet; 56, positioning track; 57, upper receiving plate; 58, lower receiving plate; 59, positioning bar; 60, stress block; 61, receiving groove. Detailed implementation mode
[0019] Please refer to Figures 1-5 , the present utility model provides a cutting assembly for a new energy stator proofing platform, including a cutting machine body 1, a driving seat 2 is fixedly installed on the cutting machine body 1, and a cutting head 3 is installed on the driving seat 2. At the same time, a cutting positioning table 5 is arranged at the bottom of the cutting machine body 1, and the surface of the cutting positioning table 5 covers a metal blank 4; the cutting positioning table 5 includes a machine table 51, and support feet 55 are fixedly installed on both sides of the bottom of the machine table 51. At the same time, a positioning groove 52 is opened at the top of the machine table 51, and an upper receiving plate 57 is installed on the upper side of the inside of the machine table 51, and a lower receiving plate 58 is installed on the lower side of the inside of the machine table 51. The front parts of the upper receiving plate 57 and the lower receiving plate 58 are fixedly installed on the stress block 60, and receiving grooves 61 are opened on the surfaces of the upper receiving plate 57 and the lower receiving plate 58.
[0020] Working principle: Place the metal blank 4 inside the positioning groove 52, and use the cutting head 3 on the cutting machine body 1 to perform cutting and forming work on the metal blank 4. After the metal blank 4 is cut and formed, the stator finished product can automatically fall on the surface of the upper receiving plate 57 under the knocking of the staff. Hold the stress block 60, and the upper receiving plate 57 can be pulled out from the inside of the machine table 51, and a large number of stator finished products on the upper receiving plate 57 can be taken out; after the upper receiving plate 57 is taken out, the lower receiving plate 58 can continue to receive the stator formed by the cutting head 3, greatly improving the working efficiency of the cutting machine body 1.
[0021] As a preferred implementation mode, the size of the positioning groove 52 is adapted to the size of the metal blank 4, and the metal blank 4 is clamped inside the positioning groove 52. At the same time, the surface of the metal blank 4 is cut and formed by the cutting head 3.
[0022] Openings 54 are opened on the surfaces of both side walls of the machine table 51, and the openings 54 are arranged in a strip shape.
[0023] As Figures 1-5 shown: The upper receiving plate 57 and the lower receiving plate 58 are installed and disassembled inside the machine table 51 by pulling, which is convenient for subsequent processing or storage of the stator products formed on the surfaces of the upper receiving plate 57 and the lower receiving plate 58.
[0024] As a preferred embodiment, force-receiving grooves 53 are formed on both sides of the positioning groove 52. The force-receiving grooves 53 are rectangular, and the depth of the force-receiving grooves 53 is greater than that of the positioning groove 52.
[0025] As a preferred embodiment, two groups of positioning tracks 56 are formed on the surfaces of both side walls of the machine table 51. Positioning strips 59 are fixedly installed at both ends of the upper receiving plate 57 and the lower receiving plate 58. The upper receiving plate 57 and the lower receiving plate 58 are arranged in parallel.
[0026] The positioning tracks 56 and the positioning strips 59 are adapted in size. The positioning strips 59 are inserted into the positioning tracks 56. The upper receiving plate 57 and the lower receiving plate 58 are inserted into the machine table 51 through the positioning tracks 56. The upper receiving plate 57 and the lower receiving plate 58 are arranged opposite to the metal blank 4.
[0027] Force-receiving grooves 53 are formed on both sides of the positioning groove 52. Through the force-receiving grooves 53, it is convenient to apply force to both sides of the cut metal blank 4, so that the metal blank 4 can be separated from the inside of the positioning groove 52.
[0028] The metal blank 4 is clamped inside the force-receiving groove 53, so that the surface of the metal blank 4 will not shake during force cutting.
Claims
1. A cutting assembly for a new energy stator proofing platform, comprising a cutting machine body (1), characterized in that: A driving seat (2) is fixedly mounted on the cutting machine body (1), and a cutting head (3) is mounted on the driving seat (2); a cutting positioning platform (5) is arranged at the bottom of the cutting machine body (1), and the surface of the cutting positioning platform (5) is covered with a metal blank (4); the cutting positioning platform (5) comprises a machine table (51), and supporting feet (55) are fixedly mounted on both sides of the bottom of the machine table (51); a positioning groove (52) is provided on the top of the machine table (51), and an upper receiving plate (57) is installed on the upper side of the machine table (51), and a lower receiving plate (58) is installed on the lower side of the machine table (51); the front parts of the upper receiving plate (57) and the lower receiving plate (58) are fixedly mounted on a force bearing block (60), and receiving grooves (61) are provided on the surfaces of the upper receiving plate (57) and the lower receiving plate (58).
2. The cutting assembly of a new energy stator proofing platform according to claim 1, characterized in that: The positioning groove (52) is adapted to the size of the metal blank (4), and the metal blank (4) is clamped inside the positioning groove (52), while the surface of the metal blank (4) is cut and shaped by the cutting head (3).
3. The cutting assembly of a new energy stator proofing platform according to claim 1, characterized in that: Openings (54) are provided on both side wall surfaces of the machine platform (51), and the openings (54) are arranged in a strip shape.
4. The cutting assembly of a new energy stator proofing platform according to claim 2, characterized in that: Both sides of the positioning groove (52) are provided with force-bearing grooves (53), and the force-bearing grooves (53) are rectangular in shape. Meanwhile, the depth of the force-bearing grooves (53) is greater than the depth of the positioning groove (52).
5. The cutting assembly of a new energy stator proofing platform according to claim 1, characterized in that: Two sets of positioning rails (56) are provided on the two side wall surfaces of the machine platform (51), and positioning bars (59) are fixedly installed at both ends of the upper receiving plate (57) and the lower receiving plate (58), and the upper receiving plate (57) and the lower receiving plate (58) are arranged in parallel.
6. The cutting assembly of the new energy stator proofing platform according to claim 5, characterized in that: The sizes of the positioning rail (56) and the positioning bar (59) are matched, and the positioning bar (59) is plugged into the interior of the positioning rail (56). At the same time, the upper receiving plate (57) and the lower receiving plate (58) are plugged into the interior of the machine platform (51) through the positioning rail (56), and the upper receiving plate (57) and the lower receiving plate (58) are arranged opposite to the metal blank (4).