Magnetic steel feeding mechanism

CN224740283UActive Publication Date: 2026-09-11LIHEXING INTELLIGENT EQUIP (SUZHOU) CO LTD
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Patent Information

Application Number
CN202522377960.6
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-11-10
Publication Date
2026-09-11
Estimated Expiration
2035-11-10

AI Technical Summary

Technical Problem

电机在生产过程中,需要对磁钢进行上料作业,磁钢上料需要借助上料机构,现有的上料结构结构复杂,操作不便,这严重影响磁钢的上料效率,且影响电机的生产效率,为此,需要设计一种磁钢上料机构

Benefits of technology

[0014]其有益效果在于,本技术方案的磁钢上料机构,结构设计巧妙,实用性较强,且工作运行稳定,运用此上料机构,实现了磁钢的稳定上料,有效保证了磁钢的上料效率,同时,也有效提高了电机的生产效率。

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a kind of magnetic steel feeding mechanism, including bottom installation component, bottom installation component is provided with magnetic steel vibration distribution component, magnetic steel vibration distribution component side is provided with auxiliary support component, auxiliary support component is provided with magnetic steel conveying component, the side of auxiliary support component away from magnetic steel vibration distribution component is provided with auxiliary installation component, auxiliary installation component is provided with top installation component, top installation component is provided with pad high board, bearing block is provided on the both sides of pad high board of top installation component, bearing block is provided with shaft, shaft is provided with turnover component, turnover component is provided with magnetic steel temporary storage component, the beneficial effects of the utility model are that, the magnetic steel feeding mechanism of the technical scheme, structure design is ingenious, and practicality is stronger, and work runs stably, using this feeding mechanism, the stable feeding of magnetic steel is realized, effectively ensure the feeding efficiency of magnetic steel, simultaneously, effectively improve the production efficiency of motor.
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Description

Technical Field

[0001] This utility model relates to the field of magnetic steel feeding technology, and in particular to a magnetic steel feeding mechanism. Background Technology

[0002] The motor magnet is a key component of a permanent magnet motor. It generates a magnetic field through a variable frequency power supply provided by a controller, driving the motor's operation. The material has undergone technological iterations, from natural magnetite ore to neodymium iron boron (NdFeB) rare-earth permanent magnets. Fourth-generation NdFeB magnets have become the mainstream choice due to their high remanence and high coercivity. In industrial production, magnet loading machines have solved the efficiency and safety hazards of traditional manual magnet insertion processes through automated processes. This component is widely used in new energy vehicles, aerospace, and other fields, offering the advantage of small size. During the production of motors, magnets need to be fed. The feeding of magnets requires the use of a feeding mechanism. The existing feeding structure is complex and inconvenient to operate, which seriously affects the feeding efficiency of magnets and the production efficiency of motors. Therefore, it is necessary to design a magnet feeding mechanism. Utility Model Content

[0003] The purpose of this invention is to solve the above-mentioned problems by designing a magnetic steel feeding mechanism.

[0004] To achieve the above objectives, the technical solution of this utility model is as follows: a magnetic steel feeding mechanism, comprising a bottom mounting assembly, a magnetic steel vibration distributing assembly mounted on the bottom mounting assembly, an auxiliary support assembly mounted on one side of the magnetic steel vibration distributing assembly, a magnetic steel conveying assembly mounted on the auxiliary support assembly, an auxiliary mounting assembly mounted on the side of the auxiliary support assembly away from the magnetic steel vibration distributing assembly, a top mounting assembly mounted on the auxiliary mounting assembly, a raised plate mounted on the top mounting assembly, bearing seats mounted on both sides of the raised plate on the top mounting assembly, a rotating shaft mounted on the bearing seats, a tilting assembly mounted on the rotating shaft, a magnetic steel temporary storage assembly mounted on the tilting assembly, a discharge control assembly mounted on one side of the magnetic steel temporary storage assembly on the tilting assembly, a bottom support mounted at the bottom of the top mounting assembly, a tilting control assembly mounted on the bottom support, and a feeding control assembly mounted on one side of the bearing seats on the top mounting assembly.

[0005] As a further description of this technical solution, the bottom mounting assembly includes a bottom mounting frame, and the magnetic steel vibration distribution assembly includes a vibration distribution plate disposed on the bottom mounting assembly, wherein the vibration distribution plate is provided with a discharge port.

[0006] As a further description of this technical solution, the auxiliary support assembly includes an auxiliary support frame disposed on one side of the magnetic steel vibration dispensing assembly, and a magnetic steel conveying assembly is disposed on the auxiliary support frame.

[0007] As a further description of this technical solution, the magnetic steel conveying assembly includes a magnetic steel conveying track disposed on an auxiliary support assembly. One end of the magnetic steel conveying track is connected to the discharge port of the vibrating material distribution plate, and the other end is connected to the magnetic steel temporary storage assembly.

[0008] As a further description of this technical solution, the auxiliary installation assembly includes an auxiliary support column disposed on the side of the auxiliary support assembly away from the magnetic steel vibration dispensing assembly, an auxiliary support plate disposed on the auxiliary support column, and a top installation assembly disposed on the auxiliary support plate.

[0009] As a further description of this technical solution, the top mounting assembly includes a top mounting plate frame disposed on the auxiliary mounting assembly.

[0010] As a further description of this technical solution, the flipping assembly includes a connecting block disposed on a rotating shaft, a flipping plate disposed on the connecting block, a magnet temporary storage assembly disposed on the flipping plate, and the flipping control assembly includes a flipping control cylinder disposed on a base support, the output end of the flipping control cylinder being connected to the flipping plate.

[0011] As a further description of this technical solution, the magnet temporary storage assembly includes a magnet temporary storage fixture disposed on the flipping assembly, and the magnet temporary storage fixture is provided with a magnet temporary storage groove.

[0012] As a further description of this technical solution, the discharge control component includes a discharge control cylinder disposed on the flipping component and located on one side of the magnet temporary storage component. The output end of the discharge control cylinder is provided with a discharge control push rod, and the outer end of the discharge control push rod is located in the magnet temporary storage groove.

[0013] As a further description of this technical solution, the feeding control assembly includes a feeding control cylinder disposed on the top mounting assembly on one side of the bearing seat, and the output end of the feeding control cylinder is provided with a feeding push rod.

[0014] Its beneficial effects are that the magnet feeding mechanism of this technical solution has a clever structural design, strong practicality, and stable operation. Using this feeding mechanism, stable magnet feeding is achieved, effectively ensuring the magnet feeding efficiency, and at the same time, effectively improving the production efficiency of the motor. Attached Figure Description

[0015] Figure 1 This is a schematic diagram of the overall structure of this utility model; Figure 2 This is a schematic diagram of the installation structure of the discharge control component of this utility model; Figure 3 This is a schematic diagram of the installation structure of the feed control cylinder of this utility model.

[0016] In the diagram, 1. Bottom mounting assembly; 2. Vibrating magnetic material distribution assembly; 3. Auxiliary support assembly; 4. Magnetic conveying assembly; 5. Auxiliary mounting assembly; 6. Top mounting assembly; 7. Elevation plate; 8. Bearing seat; 9. Rotating shaft; 10. Tilting assembly; 11. Magnetic temporary storage assembly; 12. Discharge control assembly; 13. Bottom support; 14. Tilting control assembly; 15. Feed control assembly; 16. Bottom mounting frame; 17. Vibrating material distribution plate; 18. Discharge port; 19. Auxiliary support frame; 20. Magnetic conveying track; 21. Auxiliary support column; 22. Auxiliary support plate; 23. Top mounting plate frame; 24. Connecting block; 25. Tilting plate; 26. Tilting control cylinder; 27. Magnetic temporary storage fixture; 28. Magnetic temporary storage trough; 29. ​​Discharge control cylinder; 30. Discharge control push rod; 31. Feed control cylinder; 32. Feed push rod. Detailed Implementation

[0017] First, let me explain the design intention of this utility model. In the production process of motor, magnets need to be fed. The feeding of magnets requires the help of a feeding mechanism. The existing feeding structure is complicated and inconvenient to operate, which seriously affects the feeding efficiency of magnets and the production efficiency of motor. Therefore, this utility model designs a magnet feeding mechanism.

[0018] The present invention will now be described in detail with reference to the accompanying drawings, such as... Figures 1-3 As shown, a magnetic steel feeding mechanism includes a bottom mounting component 1. The bottom mounting component 1 will be described in detail below. The bottom mounting component 1 includes a bottom mounting frame 16.

[0019] To facilitate the distribution of magnets, a magnet vibration distribution assembly 2 is provided on the bottom mounting assembly 1. The magnet vibration distribution assembly 2 will be described in detail below. The magnet vibration distribution assembly 2 includes a vibration distribution plate 17 provided on the bottom mounting assembly 1, and the vibration distribution plate 17 is provided with a discharge port 18.

[0020] To facilitate the installation of the magnet conveying assembly 4, an auxiliary support assembly 3 is provided on one side of the magnet vibrating material distribution assembly 2. The auxiliary support assembly 3 will be described in detail below. The auxiliary support assembly 3 includes an auxiliary support frame 19 provided on one side of the magnet vibrating material distribution assembly 2, and the magnet conveying assembly 4 is provided on the auxiliary support frame 19.

[0021] To facilitate the conveying of the magnetic steel sheets, a magnetic steel conveying assembly 4 is provided on the auxiliary support assembly 3. The magnetic steel conveying assembly 4 will be described in detail below. The magnetic steel conveying assembly 4 includes a magnetic steel conveying track 20 provided on the auxiliary support assembly 3. One end of the magnetic steel conveying track 20 is connected to the discharge port 18 of the vibrating distribution plate 17, and the other end is connected to the magnetic steel temporary storage assembly 11.

[0022] To facilitate the installation of the top mounting component 6, an auxiliary mounting component 5 is provided on the side of the auxiliary support component 3 away from the magnetic vibrating material distribution component 2. The auxiliary mounting component 5 will be described in detail below. The auxiliary mounting component 5 includes an auxiliary support column 21 provided on the side of the auxiliary support component 3 away from the magnetic vibrating material distribution component 2. An auxiliary support plate 22 is provided on the auxiliary support column 21, and the top mounting component 6 is provided on the auxiliary support plate 22.

[0023] A top mounting component 6 is provided on the auxiliary mounting component 5. The top mounting component 6 will be described in detail below. The top mounting component 6 includes a top mounting plate frame 23 provided on the auxiliary mounting component 5.

[0024] A shim plate 7 is provided on the top mounting assembly 6. To facilitate the installation of the rotating shaft 9, bearing seats 8 are provided on both sides of the shim plate 7 on the top mounting assembly 6.

[0025] To facilitate the installation of the flipping assembly 10, a rotating shaft 9 is provided on the bearing seat 8, and the flipping assembly 10 is provided on the rotating shaft 9. The flipping assembly 10 will be described in detail below. The flipping assembly 10 includes a connecting block 24 provided on the rotating shaft 9, a flipping plate 25 provided on the connecting block 24, and a magnetic steel temporary storage assembly 11 provided on the flipping plate 25.

[0026] To facilitate the temporary storage of the magnets, a magnet temporary storage assembly 11 is provided on the flipping assembly 10. The magnet temporary storage assembly 11 will be described in detail below. The magnet temporary storage assembly 11 includes a magnet temporary storage fixture 27 provided on the flipping assembly 10, and a magnet temporary storage groove 28 is provided on the magnet temporary storage fixture 27.

[0027] To facilitate the discharge control of the magnet sheets, a discharge control component 12 is provided on the flipping component 10 on one side of the magnet temporary storage component 11. The discharge control component 12 will be described in detail below. The discharge control component 12 includes a discharge control cylinder 29 provided on the flipping component 10 on one side of the magnet temporary storage component 11. The output end of the discharge control cylinder 29 is provided with a discharge control push rod 30, and the outer end of the discharge control push rod 30 is located in the magnet temporary storage groove 28.

[0028] To facilitate the installation of the flip control assembly 14, a bottom bracket 13 is provided at the bottom of the top mounting assembly 6.

[0029] In order to control the flipping of the flipping assembly 10, a flipping control assembly 14 is provided on the base support 13. The flipping control assembly 14 will be described in detail below. The flipping control assembly 14 includes a flipping control cylinder 26 provided on the base support 13. The output end of the flipping control cylinder 26 is connected to the flipping plate 25.

[0030] To facilitate the feeding of the magnetic steel sheets distributed by the magnetic steel vibration dispensing assembly 2 into the magnetic steel temporary storage assembly 11, a feeding control assembly 15 is provided on the top mounting assembly 6 on one side of the bearing seat 8. The feeding control assembly 15 will be described in detail below. The feeding control assembly 15 includes a feeding control cylinder 31 located on the top mounting assembly 6 on one side of the bearing seat 8. The output end of the feeding control cylinder 31 is provided with a feeding push rod 32.

[0031] The specific structure of this utility model has been described in detail above. The working principle of this utility model will be explained below: The flip plate 25 is initially in a horizontal state. In use, the flip control cylinder 26 drives the flip plate 25 to flip 90 degrees. At this time, the magnet temporary storage component 11 on the flip plate 25 flips to the side of the magnet conveying component 4. The magnet is vibrated and distributed by the magnet vibration distribution component 2. It enters the magnet conveying component 4 through the discharge port 18 and is conveyed by the magnet conveying component 4. Then, the feeding control cylinder 31 drives the feeding push rod 32 to push the magnet. Several magnetic steel sheets on the conveying assembly 4 are sequentially pushed into the magnetic steel storage tank 28. After the magnetic steel storage tank 28 is full of magnetic steel, the flipping control cylinder 26 drives the flipping plate 25 to reset. Then, the discharge control cylinder 29 drives the discharge control rod to push the magnetic steel sheets in the magnetic steel storage tank 28, thereby realizing the discharge. The magnetic steel feeding mechanism of this technical solution has a clever structural design, strong practicality, and stable operation. Using this feeding mechanism, stable feeding of magnetic steel is achieved, effectively ensuring the feeding efficiency of magnetic steel, and at the same time, effectively improving the production efficiency of the motor.

[0032] The above technical solution only embodies the preferred technical solution of this utility model. Any changes that may be made by those skilled in the art to certain parts of it embody the principle of this utility model and fall within the protection scope of this utility model.

Claims

1. A magnetic steel feeding mechanism, characterized in that, The system includes a bottom mounting assembly (1), on which a magnetic vibrating material distribution assembly (2) is mounted. An auxiliary support assembly (3) is mounted on one side of the magnetic vibrating material distribution assembly (2), and a magnetic conveying assembly (4) is mounted on the auxiliary support assembly (3). An auxiliary mounting assembly (5) is mounted on the side of the auxiliary support assembly (3) away from the magnetic vibrating material distribution assembly (2). A top mounting assembly (6) is mounted on the auxiliary mounting assembly (5), and a raised plate (7) is mounted on the top mounting assembly (6). Two sections of the raised plate (7) are located on the top mounting assembly (6). A bearing seat (8) is provided on the side, a rotating shaft (9) is provided on the bearing seat (8), a flipping assembly (10) is provided on the rotating shaft (9), a magnet storage assembly (11) is provided on the flipping assembly (10), a discharge control assembly (12) is provided on the flipping assembly (10) on one side of the magnet storage assembly (11), a bottom support (13) is provided at the bottom of the top mounting assembly (6), a flipping control assembly (14) is provided on the bottom support (13), and a feeding control assembly (15) is provided on the top mounting assembly (6) on one side of the bearing seat (8).

2. The magnetic steel feeding mechanism according to claim 1, characterized in that, The bottom mounting assembly (1) includes a bottom mounting frame (16), and the magnetic vibrating material distribution assembly (2) includes a vibrating material distribution plate (17) disposed on the bottom mounting assembly (1), and the vibrating material distribution plate (17) is provided with a discharge port (18).

3. The magnetic steel feeding mechanism according to claim 2, characterized in that, The auxiliary support assembly (3) includes an auxiliary support frame (19) disposed on one side of the magnetic steel vibration distribution assembly (2), and a magnetic steel conveying assembly (4) is disposed on the auxiliary support frame (19).

4. The magnetic steel feeding mechanism according to claim 3, characterized in that, The magnetic steel conveying assembly (4) includes a magnetic steel conveying track (20) set on the auxiliary support assembly (3). One end of the magnetic steel conveying track (20) is connected to the discharge port (18) of the vibrating material distribution plate (17), and the other end is connected to the magnetic steel temporary storage assembly (11).

5. The magnetic steel feeding mechanism according to claim 1, characterized in that, The auxiliary installation assembly (5) includes an auxiliary support column (21) disposed on the side of the auxiliary support assembly (3) away from the magnetic steel vibration distribution assembly (2), an auxiliary support plate (22) is disposed on the auxiliary support column (21), and a top installation assembly (6) is disposed on the auxiliary support plate (22).

6. The magnetic steel feeding mechanism according to claim 1, characterized in that, The top mounting assembly (6) includes a top mounting plate frame (23) disposed on the auxiliary mounting assembly (5).

7. The magnetic steel feeding mechanism according to claim 1, wherein The flipping assembly (10) includes a connecting block (24) disposed on the rotating shaft (9), a flipping plate (25) disposed on the connecting block (24), a magnet storage assembly (11) disposed on the flipping plate (25), and a flipping control assembly (14) including a flipping control cylinder (26) disposed on the base bracket (13), the output end of the flipping control cylinder (26) being connected to the flipping plate (25).

8. The magnetic steel feeding mechanism according to claim 1, characterized in that, The magnet storage assembly (11) includes a magnet storage fixture (27) disposed on the flipping assembly (10), and the magnet storage fixture (27) is provided with a magnet storage slot (28).

9. A magnetic steel feeding mechanism according to claim 1, characterized in that, The discharge control component (12) includes a discharge control cylinder (29) disposed on the flipping component (10) on one side of the magnet storage component (11). The output end of the discharge control cylinder (29) is provided with a discharge control push rod (30), and the outer end of the discharge control push rod (30) is located in the magnet storage groove (28).

10. A magnet feeding mechanism according to claim 1, characterized in that, The feeding control assembly (15) includes a feeding control cylinder (31) located on the top mounting assembly (6) on one side of the bearing seat (8), and the output end of the feeding control cylinder (31) is provided with a feeding push rod (32).