Automatic feeding device for generator claw pole production

By designing an automatic feeding device, the cylindrical material is automatically pushed into the heating furnace using an inclined chute and a drive mechanism. This solves the problems of high labor intensity and low efficiency caused by manual pushing in the production of generator claw poles, and realizes efficient and automated heating of cylindrical material.

CN224278608UActive Publication Date: 2026-05-26JIANGSU RUNKAI METAL TECHNOLOGY CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
JIANGSU RUNKAI METAL TECHNOLOGY CO LTD
Filing Date
2025-06-17
Publication Date
2026-05-26

AI Technical Summary

Technical Problem

In the existing technology, the heating operation of round bars in the generator claw pole production process relies on manual pushing, resulting in high labor intensity and low efficiency.

Method used

An automatic feeding device was designed, comprising a feeding box, an inclined feeder, a chain conveyor assembly, and a drive mechanism. The device automatically pushes cylindrical materials into the induction heating furnace through an inclined chute and a drive mechanism, reducing manual intervention.

Benefits of technology

It eliminates the need for manual operation, reduces labor intensity, improves work efficiency, and enhances the automation level of the heating process for cylindrical materials.

✦ Generated by Eureka AI based on patent content.

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    Figure CN224278608U_ABST
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Abstract

The utility model relates to the technical field of automobile generators, in particular to an automatic feeding device for generator claw pole production, which comprises a feeding box and a storage box, the storage box is obliquely arranged and communicated with the feeding box, an inclined feeder is connected in the feeding box, one side of the feeding box is connected with a chain type transmission assembly, and the other side of the feeding box is connected with a motor. The chain type conveying assembly comprises a U-shaped mounting shell, and the inclined feeder is suitable for obliquely pushing the round bar materials in the feeding box to an inner cavity of the U-shaped mounting shell. The side face of the end, away from the feeding box, of the U-shaped mounting shell is connected with a U-shaped guide shell. The U-shaped guide shell communicates with the U-shaped mounting shell. The transverse driving mechanism is used for driving the round bar materials on the chain type conveying assembly to enter the U-shaped guide shell; and the longitudinal driving mechanism is used for driving the materials in the U-shaped guide shell to linearly move. The device is reasonable in structure, the labor intensity is reduced, and the working efficiency is improved.
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Description

Technical Field

[0001] This utility model relates to the field of automotive generator technology, and in particular to an automatic feeding device for generator claw pole production. Background Technology

[0002] The claw pole is a key component in an automotive alternator, primarily used to convert the axial magnetic field generated by the excitation coil in the rotor into a radial magnetic field, thereby creating an alternating magnetic field distributed three-dimensionally in space when the rotor rotates. This alternating magnetic field generates alternating current relative to the stator's motion; therefore, the claw pole of an automotive alternator is also called the automotive alternator magnetic pole. The manufacturing process of the motor claw pole includes blank preparation, turning, milling, drilling and reaming, heat treatment, grinding, surface treatment, magnetic performance testing, assembly, and dynamic balancing testing. During blank preparation, processes such as blanking, heating, die forging, and trimming are required. After the round bar is cut, it is fed into an induction heating furnace for heating, facilitating subsequent die forging.

[0003] Regarding the aforementioned technologies, the inventors discovered that when a large number of round bars are fed into an induction heating furnace for heating, workers typically manually push the round bars into the furnace one by one. While the round bars to be heated are being pushed in, the already heated round bars are pushed out into the die forging process. This method of operation increases labor intensity and reduces work efficiency. Utility Model Content

[0004] The main technical problem solved by this utility model is to provide an automatic feeding device for the production of generator claw poles, which reduces labor intensity and improves work efficiency.

[0005] To solve the above-mentioned technical problems, the present invention provides an automatic feeding device for generator claw pole production, comprising: a feeding box and a storage box that is inclined and communicates with the feeding box; an inclined feeder is connected inside the feeding box; a chain-type transmission assembly is connected to one side of the feeding box; the chain-type transmission assembly includes a U-shaped mounting housing; and the inclined feeder is adapted to tilt and push the cylindrical material in the feeding box into the inner cavity of the U-shaped mounting housing.

[0006] A U-shaped guide housing is connected to the side of the U-shaped mounting housing away from the feeding box, and the U-shaped guide housing is connected to the U-shaped mounting housing;

[0007] It also includes a transverse drive mechanism for driving the cylindrical material on the chain-type conveyor assembly into the U-shaped guide housing and a longitudinal drive mechanism for driving the linear movement of the material inside the U-shaped guide housing.

[0008] By adopting the above technical solution, a certain number of cylindrical materials are placed in the storage bin during use. Since the storage bin is inclined, the cylindrical materials in the storage bin slide upwards into the bin. The inclined feeder pushes the cylindrical materials in the bin upwards onto the chain conveyor assembly. The chain conveyor assembly moves the cylindrical materials a certain distance towards the U-shaped guide shell. The transverse drive mechanism moves the cylindrical materials on the chain conveyor assembly into the inner cavity of the U-shaped guide shell. Next, the longitudinal drive mechanism moves the cylindrical materials in the U-shaped guide shell linearly into the induction heating furnace for heating. This eliminates the need for manual operation by workers to drive the cylindrical materials into the induction heating furnace, reducing labor intensity and improving work efficiency.

[0009] In a preferred embodiment, the present invention can be further configured as follows: the inclined feeder includes an inclined guide plate and a plurality of inclined limiting plates connected in the feeding box, an inclined groove is provided between adjacent inclined limiting plates, an inclined groove is provided between the inclined limiting plate at the upper angle and the inclined guide plate, a pusher plate is slidably connected in the inclined groove, and an inclined drive component is also included to drive the pusher plate to move linearly, the inclined drive component includes a mounting plate and a hydraulic cylinder connected to the mounting plate, the mounting plate is connected to the lower side of the inclined guide plate, the extended end of the hydraulic cylinder is connected to the pusher plate at the upper angle, and two L-shaped rods are respectively connected at intervals between the lower angles of adjacent pusher plates.

[0010] By adopting the above technical solution, some of the cylindrical materials entering the feeding box slide to the top of the bottom pusher plate. The extension and retraction rod of the operating cylinder extends and retracts, thereby driving the pusher plate in the inclined chute to reciprocate linearly, pushing the cylindrical materials in the feeding box alternately upwards and diagonally, and finally moving the cylindrical materials to the top of the inclined guide plate. The cylindrical materials then roll onto the chain-type transmission assembly.

[0011] In a preferred embodiment, the present invention can be further configured as follows: the chain-type transmission assembly further includes an active double-row sprocket and a driven double-row sprocket respectively passing through both ends of the U-shaped mounting housing, a double-row chain connecting the active double-row sprocket and the driven double-row sprocket, a servo motor connected to one end of the active double-row sprocket, an inclined baffle plate connected to the side of the U-shaped mounting housing away from the feeding box, and the chain-type transmission assembly further includes a screener adapted to guide the vertically placed cylindrical material transmitted on the double-row chain into the inner cavity of the feeding box.

[0012] By adopting the above technical solution, the servo motor drives the double-row chain to move, and the double-row chain drives the cylindrical material to move.

[0013] In a preferred embodiment, the present invention can be further configured as follows: the screener includes a triangular pouring plate and an inclined conveying housing; the U-shaped mounting housing has an opening slot one on the side near the feeding box; the feeding box has an opening slot two on the side; the inclined conveying housing is connected between the opening slot two and the opening slot one; and the triangular pouring plate located above the opening slot one is connected to the U-shaped mounting housing.

[0014] By adopting the above technical solution, when there are vertically placed cylindrical materials on the double-row chain, the upper end of the vertically placed cylindrical materials is higher than the triangular pouring plate. That is, the vertically placed cylindrical materials are in contact with the inclined side of the triangular pouring plate. The triangular pouring plate drives the cylindrical materials to tilt and fall into the inner cavity of the inclined conveying shell. The inclined conveying shell guides the cylindrical materials to slide into the inner cavity of the feeding box and is pushed again by the inclined feeder. That is, the cylindrical materials on the double-row chain are always conveyed in a tilting manner, which facilitates the cylindrical materials to enter the induction heating furnace.

[0015] In a preferred embodiment, this utility model can be further configured as follows: the U-shaped mounting housing has opening slots three and four on both sides of the end away from the feeding box, and the U-shaped guide housing has an opening slot five on one side, which is connected to the opening slot four. The transverse drive mechanism includes a connecting plate and a transverse electric push rod fixed on the connecting plate. The connecting plate is fixed on the U-shaped mounting housing. The extended end of the transverse electric push rod is connected to an L-shaped push plate, which is located in the opening slot three. Guide rods passing through the connecting plate are provided on both sides of the transverse electric push rod. One end of the guide rod is connected to the L-shaped push plate, and the guide rod and the connecting plate are slidably connected.

[0016] By adopting the above technical solution, one side of the L-shaped push plate limits the cylindrical material on the chain-type transmission assembly, and the operation of the transverse electric push rod drives the cylindrical material through the opening slot four and opening slot five into the inner cavity of the U-shaped mounting housing via the other side of the L-shaped push plate.

[0017] In a preferred embodiment, the present invention can be further configured as follows: the longitudinal drive mechanism includes a fixed plate and a longitudinal electric push rod, the fixed plate is connected to one end of the U-shaped guide housing, the longitudinal electric push rod is mounted on the fixed plate, and the extended end of the longitudinal electric push rod is connected to a rectangular push plate, the rectangular push plate is located inside the U-shaped guide housing and the two are slidably connected.

[0018] By adopting the above technical solution, the telescopic rod of the longitudinal electric push rod extends, thereby driving the cylindrical material in the U-shaped guide shell into the induction heating furnace.

[0019] In a preferred embodiment, the present invention can be further configured as follows: a transition hole one is provided on one side of the feeding box, a transition hole two is provided at the lower oblique end of the storage box, the transition hole two is connected to the transition hole one, a guide plate is connected between the upper end of the inclined limiting plate at the lower oblique end and the lower side of the inner cavity of the transition hole one, and a support leg frame is connected to the bottom of the storage box, the support leg frame is connected to the side of the feeding box.

[0020] By adopting the above technical solution, the inner cavity of the storage box and the inner cavity of the feeding box are connected through the setting of transition hole one and transition hole two, which facilitates the sliding of the cylindrical material in the storage box into the inner cavity of the feeding box. The use of the guide plate prevents the cylindrical material from falling to the bottom of the inner cavity of the feeding box.

[0021] In a preferred embodiment, the present invention can be further configured such that: a PLC controller is connected to the feeding box, and the PLC controller is electrically connected to the horizontal electric push rod and the vertical electric push rod respectively.

[0022] By adopting the above technical solution, the PLC controller is configured to send signals to the horizontal and vertical electric actuators respectively, so that the horizontal and vertical electric actuators work alternately.

[0023] In summary, this utility model has at least one of the following beneficial technical effects:

[0024] 1. The cylindrical material entering the feeding box slides to the top of the bottom pusher plate. The extension and retraction rod of the hydraulic cylinder extends and retracts, thereby driving the pusher plate in the inclined chute to move back and forth linearly. The cylindrical material in the feeding box is pushed diagonally upward alternately, and finally the cylindrical material moves to the top of the inclined guide plate. The cylindrical material then rolls onto the double-row chain of the chain-type transmission component.

[0025] 2. The servo motor drives the double-row chain to move, which in turn moves the cylindrical material. One side of the L-shaped pusher plate limits the cylindrical material on the chain-type transmission assembly. The horizontal electric pusher rod drives the cylindrical material through the opening slots four and five into the inner cavity of the U-shaped mounting housing via the other side of the L-shaped pusher plate. The telescopic rod of the vertical electric pusher rod extends, thereby driving the cylindrical material in the U-shaped guide housing into the induction heating furnace. This eliminates the need for manual operation to push the cylindrical material into the induction heating furnace, reducing the labor intensity of workers and improving work efficiency. Attached Figure Description

[0026] To more clearly illustrate the technical solutions in the embodiments of this utility model, the drawings used in the description of the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort, wherein:

[0027] Figure 1 This is a schematic diagram of a preferred embodiment of an automatic feeding device for generator claw pole production according to the present invention.

[0028] Figure 2 yes Figure 1 Sectional view along line AA.

[0029] Figure 3 yes Figure 2 A schematic diagram of the inclined feeder.

[0030] Figure 4 yes Figure 1 A schematic diagram of the connection between the chain-type transmission component and the longitudinal drive mechanism.

[0031] Figure 5 yes Figure 1 A schematic diagram of the inclined transmission housing.

[0032] In the diagram: 1. Feeding bin; 2. Storage bin; 30. Inclined feeder; 40. Chain conveyor assembly;

[0033] 5. U-shaped guide housing; 60. Lateral drive mechanism; 70. Longitudinal drive mechanism; 8. Three opening slots;

[0034] 9. Opening slot four; 11. Opening slot five; 12. Transition hole one; 13. Transition hole two; 14. Guide plate;

[0035] 15. Support legs; 16. PLC controller;

[0036] 31. Inclined guide plate; 32. Inclined limiting plate; 33. Inclined chute; 34. Push plate; 35. Inclined drive component; 351. Mounting plate; 352. Hydraulic cylinder; 353. L-shaped rod;

[0037] 41. U-shaped mounting housing; 42. Driven double-row sprocket; 43. Driven double-row sprocket; 44. Double-row chain;

[0038] 45. Servo motor; 46. Inclined baffle; 47. Screener;

[0039] 471. Triangular pouring plate; 472. Inclined conveyor housing; 473. Opening slot one; 474. Opening slot two;

[0040] 61. Connecting plate; 62. Double-rod cylinder; 63. L-shaped push plate;

[0041] 71. Fixed plate; 72. Longitudinal cylinder; 73. Rectangular push plate. Detailed Implementation

[0042] The preferred embodiments of the present invention will be described below with reference to the accompanying drawings. It should be understood that the preferred embodiments described herein are for illustration and explanation only and are not intended to limit the present invention.

[0043] It should be noted that these figures are simplified schematic diagrams, which only illustrate the basic structure of the present invention in a schematic manner, and therefore only show the components related to the present invention.

[0044] Reference Figures 1-5 This utility model discloses an automatic feeding device for generator claw pole production, comprising: a feeding box 1 and a storage box 2 inclined and connected to the feeding box 1. An inclined feeder 30 is connected inside the feeding box 1. A chain-type transmission assembly 40 is connected to one side of the feeding box 1. The chain-type transmission assembly 40 includes a U-shaped mounting housing 41 and an inclined feeder 30, which is suitable for inclinedly pushing the cylindrical material in the feeding box 1 into the inner cavity of the U-shaped mounting housing 41.

[0045] The inclined feeder 30 includes an inclined guide plate 31 and several inclined limiting plates 32 connected within the feed box 1. An inclined groove 33 is provided between adjacent inclined limiting plates 32. An inclined groove 33 is also provided between the inclined limiting plate 32 at an upper angle and the inclined guide plate 31. Pushing plates 34 are slidably connected within the inclined grooves 33. The feeder also includes an inclined drive component 35 for linearly moving the pushing plates 34. The inclined drive component 35 includes a mounting plate 351 and a hydraulic cylinder 352 connected to the mounting plate 351. The mounting plate 351 is connected to the lower side of the inclined guide plate 31. The extended end of cylinder 352 is connected to the upper pusher plate 34. Two L-shaped rods 353 are connected at intervals between the lower ends of adjacent pusher plates 34. The cylindrical material entering the feeding box 1 slides to the top of the lower pusher plate 34. The telescopic rod of the hydraulic cylinder 352 is extended and retracted, thereby driving the pusher plate 34 in the inclined chute 33 to move reciprocally linearly, pushing the cylindrical material in the feeding box 1 alternately upwards. Finally, the cylindrical material moves to the top of the inclined guide plate 31, and then rolls onto the chain-type transmission assembly 40.

[0046] A U-shaped guide housing 5 is connected to the side of the U-shaped mounting housing 41 away from the feeding box 1. The U-shaped guide housing 5 is connected to the U-shaped mounting housing 41.

[0047] The chain-type transmission assembly 40 also includes an active double-row sprocket 42 and a driven double-row sprocket 43 respectively passing through both ends of the U-shaped mounting housing 41. A double-row chain 44 is connected between the active double-row sprocket 42 and the driven double-row sprocket 43. A servo motor 45 is connected to one end of the active double-row sprocket 42. An inclined baffle plate 46 is connected to the side of the U-shaped mounting housing 41 away from the feeding box 1. The chain-type transmission assembly 40 also includes a screen 47, which is suitable for guiding the cylindrical material conveyed on the double-row chain 44 and placed vertically into the inner cavity of the feeding box 1. The servo motor 45 drives the double-row chain 44 to move, and the double-row chain 44 drives the cylindrical material to move.

[0048] The screener 47 includes a triangular pouring plate 471 and an inclined conveying housing 472. The U-shaped mounting housing 41 has an opening slot 473 on its side near the feeding box 1, and an opening slot 474 on the side of the feeding box 1. The inclined conveying housing 472 connects the opening slot 474 and the opening slot 473. The triangular pouring plate 471, located above the opening slot 473, is connected to the U-shaped mounting housing 41. When there are vertically placed cylindrical materials on the double-row chain 44, the vertically placed... Because the upper end of the cylindrical material is higher than the triangular pouring plate 471, the vertically placed cylindrical material contacts the inclined side of the triangular pouring plate 471. The triangular pouring plate 471 drives the cylindrical material to tilt and fall into the inner cavity of the inclined conveying housing 472. The inclined conveying housing 472 guides the cylindrical material to slide into the inner cavity of the feeding box 1 and is pushed again by the inclined feeder 30. That is, the cylindrical material on the double-row chain 44 is always conveyed in a tilting manner, which facilitates the cylindrical material to enter the induction heating furnace.

[0049] It also includes a transverse drive mechanism 60 that drives the cylindrical material on the chain-type conveyor assembly 40 into the U-shaped guide housing 5, and a longitudinal drive mechanism 70 that drives the material in the U-shaped guide housing 5 to move linearly.

[0050] The U-shaped mounting housing 41 has opening slots 3 and 4 on both sides of the end away from the feeding box 1. The U-shaped guide housing 5 has an opening slot 5 11 on one side, which is connected to the opening slot 4 9. The transverse drive mechanism 60 includes a connecting plate 61 and a transverse electric push rod 62 fixed on the connecting plate 61. The connecting plate 61 is fixed on the U-shaped mounting housing 41. The extended end of the transverse electric push rod 62 is connected to an L-shaped push plate 63, which is located in the opening slot 3 8. The two sides of the transverse electric push rod 62 are respectively provided with guide rods 64 that pass through the connecting plate 61. One end of the guide rod 64 is connected to the L-shaped push plate 63, and the guide rod 64 and the connecting plate 61 are slidably connected. One side of the L-shaped push plate 63 limits the cylindrical material on the chain-type transmission assembly 40. The operation of the transverse electric push rod 62 drives the cylindrical material through the opening slots 4 9 and 5 11 into the inner cavity of the U-shaped mounting housing 41.

[0051] The longitudinal drive mechanism 70 includes a fixed plate 71 and a longitudinal electric push rod 72. The fixed plate 71 is connected to one end of the U-shaped guide housing 5. The longitudinal electric push rod 72 is mounted on the fixed plate 71. The extended end of the longitudinal electric push rod 72 is connected to a rectangular push plate 73. The rectangular push plate 73 is located inside the U-shaped guide housing 5 and the two are slidably connected. The telescopic rod of the longitudinal electric push rod 72 extends, thereby driving the cylindrical material inside the U-shaped guide housing 5 into the induction heating furnace.

[0052] The feeding box 1 has a transition hole 12 on one side, and the storage box 2 has a transition hole 13 at its lower end. The transition hole 13 is connected to the transition hole 12. A guide plate 14 is connected between the upper end of the inclined limiting plate 32 at the lower end and the lower side of the inner cavity of the transition hole 12. A support leg 15 is connected to the bottom of the storage box 2 and is connected to the side of the feeding box 1. The transition holes 12 and 13 are connected to the inner cavity of the storage box 2 and the inner cavity of the feeding box 1, which facilitates the sliding of the cylindrical material in the storage box 2 into the inner cavity of the feeding box 1. The guide plate 14 is used to prevent the cylindrical material from falling to the bottom of the inner cavity of the feeding box 1.

[0053] A PLC controller 16 is connected to the feeding box 1. The PLC controller 16 is electrically connected to the horizontal electric push rod 62 and the vertical electric push rod 72 respectively. The PLC controller 16 is configured to send signals to the horizontal electric push rod 62 and the vertical electric push rod 72 respectively, so that the horizontal electric push rod 62 and the vertical electric push rod 72 work alternately.

[0054] The implementation principle of this embodiment is as follows: During use, a certain number of cylindrical materials are placed in the storage bin 2. Since the storage bin 2 is inclined, the cylindrical materials in the storage bin 2 slide into the upper feed bin 1. The inclined feeder 30 is operated to push the cylindrical materials in the feed bin 1 obliquely upward to the chain conveyor assembly 40. The chain conveyor assembly 40 drives the cylindrical materials to move a certain distance towards the U-shaped guide housing 5. The transverse drive mechanism 60 drives the cylindrical materials on the chain conveyor assembly 40 to move into the inner cavity of the U-shaped guide housing 5. Next, the longitudinal drive mechanism 70 drives the cylindrical materials in the U-shaped guide housing 5 to move linearly into the induction heating furnace for heating. There is no need for workers to manually operate to drive the cylindrical materials into the induction heating furnace, which reduces the labor intensity and improves the work efficiency.

[0055] The above description is merely an embodiment of this utility model and does not limit the patent scope of this utility model. Any equivalent structural or procedural transformations made based on the content of this utility model specification, or direct or indirect applications in other related technical fields, are similarly included within the patent protection scope of this utility model.

Claims

1. An automatic feeding device for generator claw pole production, characterized in that, include: A feeding box (1) and a storage box (2) that is inclined and communicates with the feeding box (1). An inclined feeder (30) is connected inside the feeding box (1). A chain-type transmission assembly (40) is connected to one side of the feeding box (1). The chain-type transmission assembly (40) includes a U-shaped mounting housing (41). The inclined feeder (30) is adapted to tilt and push the round bar material in the feeding box (1) into the inner cavity of the U-shaped mounting housing (41). The side of the U-shaped mounting housing (41) away from the feeding box (1) is connected to a U-shaped guide housing (5), and the U-shaped guide housing (5) is connected to the U-shaped mounting housing (41); It also includes a transverse drive mechanism (60) that drives the cylindrical material on the chain-type conveyor assembly (40) into the U-shaped guide housing (5) and a longitudinal drive mechanism (70) that drives the material in the U-shaped guide housing (5) to move linearly.

2. The automatic feeding device for generator claw pole production according to claim 1, characterized in that, The inclined feeder (30) includes an inclined guide plate (31) and several inclined limiting plates (32) connected in the feeding box (1). An inclined groove (33) is provided between adjacent inclined limiting plates (32). An inclined groove (33) is provided between the inclined limiting plate (32) at the upper angle and the inclined guide plate (31). A pusher plate (34) is slidably connected in the inclined groove (33). The feeder also includes an inclined drive component (35) for driving the pusher plate (34) to move linearly. The inclined drive component (35) includes a mounting plate (351) and a hydraulic cylinder (352) connected to the mounting plate (351). The mounting plate (351) is connected to the lower side of the inclined guide plate (31). The extended end of the hydraulic cylinder (352) is connected to the pusher plate (34) at the upper angle. Two L-shaped rods (353) are connected at intervals between the lower angles of adjacent pusher plates (34).

3. The automatic feeding device for generator claw pole production according to claim 1, characterized in that, The chain-type transmission assembly (40) also includes an active double-row sprocket (42) and a driven double-row sprocket (43) respectively passing through both ends of the U-shaped mounting housing (41). A double-row chain (44) is connected between the active double-row sprocket (42) and the driven double-row sprocket (43). A servo motor (45) is connected to one end of the active double-row sprocket (42). An inclined baffle plate (46) is connected to the side of the U-shaped mounting housing (41) away from the feeding box (1). The chain-type transmission assembly (40) also includes a screen (47) suitable for guiding the cylindrical material conveyed on the double-row chain (44) and placed vertically into the inner cavity of the feeding box (1).

4. The automatic feeding device for generator claw pole production according to claim 3, characterized in that, The screener (47) includes a triangular pouring plate (471) and an inclined conveying housing (472). The U-shaped mounting housing (41) has an opening slot one (473) on the side near the feeding box (1), and the feeding box (1) has an opening slot two (474) on the side. The inclined conveying housing (472) is connected between the opening slot two (474) and the opening slot one (473). The triangular pouring plate (471) located above the opening slot one (473) is connected to the U-shaped mounting housing (41).

5. The automatic feeding device for generator claw pole production according to claim 1, characterized in that, The U-shaped mounting housing (41) has two opening slots, three (8) and four (9), on one side away from the feeding box (1). The U-shaped guide housing (5) has an opening slot five (11) on one side. The opening slot five (11) is connected to the opening slot four (9). The transverse drive mechanism (60) includes a connecting plate (61) and a transverse electric push rod (62) fixed on the connecting plate (61). The connecting plate (61) is fixed on the U-shaped mounting housing (41). The extended end of the transverse electric push rod (62) is connected to an L-shaped push plate (63). The L-shaped push plate (63) is located in the opening slot three (8). The two sides of the transverse electric push rod (62) are respectively provided with guide rods (64) that pass through the connecting plate (61). One end of the guide rod (64) is connected to the L-shaped push plate (63). The guide rod (64) and the connecting plate (61) are slidably connected.

6. The automatic feeding device for generator claw pole production according to claim 5, characterized in that, The longitudinal drive mechanism (70) includes a fixed plate (71) and a longitudinal electric push rod (72). The fixed plate (71) is connected to one end of the U-shaped guide housing (5). The longitudinal electric push rod (72) is mounted on the fixed plate (71). The extended end of the longitudinal electric push rod (72) is connected to a rectangular push plate (73). The rectangular push plate (73) is located inside the U-shaped guide housing (5) and the two are slidably connected.

7. The automatic feeding device for generator claw pole production according to claim 1, characterized in that, The feeding box (1) has a transition hole 1 (12) on one side, and the storage box (2) has a transition hole 2 (13) at its lower end. The transition hole 2 (13) is connected to the transition hole 1 (12). A guide plate (14) is connected between the upper end of the inclined limiting plate (32) at the lower end and the lower side of the cavity of the transition hole 1 (12). The bottom of the storage box (2) is connected to a support leg frame (15), and the support leg frame (15) is connected to the side of the feeding box (1).

8. The automatic feeding device for generator claw pole production according to claim 6, characterized in that, The feeding box (1) is connected to a PLC controller (16), which is electrically connected to the horizontal electric push rod (62) and the vertical electric push rod (72).