Winding equipment for stator and rotor production

By adjusting the distance of the guide plate and using curved plates and rotating mechanisms, the problem of small application scope of existing equipment is solved, flexible adaptation of rotor winding and uniform winding of copper wires are achieved, preventing breakage, and improving the applicability and protection effect of the equipment.

CN120454418AActive Publication Date: 2025-08-08HANGZHOU SANXIANG TECH
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Patent Information

Application Number
CN202510622346.3
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-05-15
Publication Date
2025-08-08
Estimated Expiration
2045-05-15

AI Technical Summary

Technical Problem

Existing rotor winding equipment can only be adapted to one rotor size, and the scope of application is small, making it difficult to meet the needs of rotor winding of different sizes.

Method used

By moving the slider, the distance between the guide plates is adjusted to adapt to the rotor height. Combined with the arc plate and the rotating mechanism, flexible adjustment of the guide plate and precise guidance of the copper wire is achieved, preventing the copper wire from being stuck and broken.

Benefits of technology

The scope of application of the equipment has been expanded to ensure that the copper wire is wound evenly on the rotor, preventing uneven winding and breaking of the copper wire, and improving the convenience of winding and the protection effect of the equipment.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses winding equipment for stator and rotor production, and belongs to the field of winding machines, the winding equipment comprises a rack, a hydraulic cylinder is fixedly connected to the top of one side of the rack, a rotating mechanism is fixedly connected to the other side of the rack, a protection mechanism is arranged at the top end of the rotating mechanism, and a sliding block is moved to drive a guide plate to move up and down, so that the guide plate is fixed to the rack; the positions of the guide plates are convenient to control, the distance between the two guide plates is adjusted according to the height of the rotor, so that the distance between the two guide plates is the same as the height of the rotor, adjustment can be conducted according to the size of the rotor, the application range is wider, the rotor is moved to the guide plates, and the slotting position of the rotor is located between the two guide plates; when the protection mechanism drives the copper wire to rotate, the copper wire is in contact with the cambered surface position of the guide plate, the copper wire is guided through the cambered surface of the guide plate, the copper wire slides to the position of the rotor, and rotor winding is more convenient.
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Description

Technical Field

[0001] The present invention relates to the field of winding machines, and more particularly to a winding device for stator and rotor production. Background Art

[0002] When making a rotor, copper wire needs to be wound around the rotor surface. This operation is usually completed using a rotor winding machine. The rotor winding machine is a key equipment for winding wound rotors or stator coils in motor manufacturing. Its function is to wind the enameled copper wire into the slots of the rotor core according to a specific pattern and ensure the insulation, symmetry and precision of the winding.

[0003] The Chinese patent with authorization announcement number CN105811689A discloses a rotor winding machine. The tension adjustment frame is also provided with a knob adjustment wheel, which can perform second-level adjustment to improve the adjustment accuracy. In addition, the tension adjustment frame of the present invention also has a height adjustment function, which is suitable for operation by workers of different heights and can also achieve a certain degree of tension adjustment effect. In short, the device can effectively prevent the copper wire from breaking during the winding process.

[0004] Although the above patent effectively prevents the copper wire from breaking during the winding process, during the winding process, the copper wire is pressed down onto an arc-shaped guide plate, and the copper wire slides on the guide plate to the winding position on the rotor surface to achieve the winding effect. However, these guide plates can only be adapted to rotors of one specification, and the scope of application is relatively small. Summary of the Invention

[0005] In response to the problems existing in the prior art, the purpose of the present invention is to provide a winding equipment for stator and rotor production. By moving the slider, the slider moves up and down with the guide plate, which facilitates the control of the position of the guide plate. According to the height of the rotor, the distance between the two guide plates is adjusted so that the distance between the two guide plates is the same as the height of the rotor. It can be adjusted according to the size of the rotor, and the scope of application is wider. The rotor is moved to the guide plate so that the position of the rotor slot is between the two guide plates. When the protective mechanism rotates with the copper wire, the copper wire contacts the arc surface of the guide plate, and the copper wire is guided by the arc surface of the guide plate so that the copper wire slides to the position of the rotor, which is more convenient for rotor winding.

[0006] To solve the above problems, the present invention adopts the following technical solutions.

[0007] A winding device for stator and rotor production, comprising a frame, a hydraulic cylinder fixedly connected to the top of one side of the frame, a rotating mechanism fixedly connected to the other side of the frame, a protective mechanism provided at the top of the rotating mechanism, and a wire guide mechanism provided on one side of the frame;

[0008] The wire mechanism comprises a cylinder movably connected to the frame, a mounting block is fixedly connected to the right side of the cylinder, and a slider is slidably connected to the interior of the mounting block.

[0009] Furthermore, the top of the slider is slidably connected to a guide plate, and the position of the slider close to the mounting block extends toward the mounting block to form a first extension block. The interior of the mounting block is provided with a second sliding groove corresponding to the position of the first extension block to accommodate the movement of the first extension block. The interior of the second sliding groove is provided with a second spring welded to the first extension block.

[0010] Furthermore, an extrusion rod is slidably connected to the interior of the mounting block, and the top and bottom of the extrusion rod are fixedly connected to the extrusion block. An extrusion groove is provided inside the slider, and the cross-sectional shape of the extrusion groove is a right-angled trapezoid.

[0011] Furthermore, a third limiting block is fixedly connected to the interior of the mounting block, and a fourth spring welded to the third limiting block is provided inside the extrusion rod.

[0012] Furthermore, an arc-shaped plate is fixedly connected to the bottom right side of the guide plate, the contact surface between the arc-shaped plate and the rotor is an arc surface, and the width of the arc-shaped plate is smaller than that of the guide plate.

[0013] Furthermore, the side of the guide plate close to the slider extends toward the slider to form a second extension block, and a third spring welded to the second extension block is provided inside the slider. The outer surface of the left side of the cylinder extends to form an outer ring, and a plurality of mounting holes distributed in a circular array are provided inside the outer ring.

[0014] Furthermore, the protection mechanism includes a connecting rod fixed to the rotating mechanism, the right side of the connecting rod is rotatably connected to the rotating rod, and an elastic bead is fixedly connected to one end of the rotating rod close to the connecting rod.

[0015] Furthermore, a receiving hole is provided on a side of the rotating rod away from the connecting rod, and the elastic bead is a solid iron ball wrapped with rubber.

[0016] Furthermore, a second limiting block is fixedly connected to the rear side of the accommodating hole, a first limiting block is slidably connected to the left side of the second limiting block, and a first sliding groove for accommodating the movement of the first limiting block is opened inside the rotating rod.

[0017] Furthermore, an adjustment block is fixedly connected to the interior of the first slide groove, a first spring is welded between the adjustment block and the first limiting block, a plurality of first fixing holes are provided at the bottom of the first slide groove, and a second fixing hole is provided inside the adjustment block.

[0018] Compared with the prior art, the present invention has the following beneficial effects:

[0019] 1. This solution moves the slider so that the slider moves up and down with the guide plate, which makes it easy to control the position of the guide plate. According to the height of the rotor, the distance between the two guide plates is adjusted so that the distance between the two guide plates is the same as the height of the rotor. It can be adjusted according to the size of the rotor and has a wider range of applications. The rotor is moved to the guide plate so that the position of the rotor slot is between the two guide plates. When the protective mechanism rotates with the copper wire, the copper wire contacts the arc surface of the guide plate and is guided by the arc surface of the guide plate, so that the copper wire slides to the position of the rotor, which is more convenient for rotor winding.

[0020] 2. In this solution, when the extrusion block moves in the extrusion groove, the top of the extrusion block squeezes the inclined surface of the extrusion groove, and the slider moves due to the squeezing, making the movement of the slider more convenient. During the movement of the extrusion rod, the extrusion rod and the third limiting block squeeze the fourth spring, so that the fourth spring changes from its original naturally stretched state to a tight state. When the extrusion block passes through the slider, the slider is not blocked by the extrusion block, and the slider, under the action of the second spring, carries the guide plate to press against the top and bottom of the rotor. When the rotor leaves, the extrusion rod returns to its original position under the action of the fourth spring. The side of the extrusion block away from the mounting block is an arc surface. The extrusion rod carries the extrusion block to squeeze the slider, so that the slider moves again after being squeezed, which facilitates the extrusion block and the extrusion rod to return to their original positions.

[0021] 3. This solution squeezes the rotor through the arc surface of the arc plate to facilitate the movement of the arc plate. The arc plate contacts the bottom of the rotor slot, and the movement of the arc plate can move the guide plate, making it convenient for the right side port of the guide plate to be in the same vertical plane as the bottom of the rotor slot, making it convenient for the copper wire to be at the bottom of the rotor slot when it slides off the surface of the guide plate. It is suitable for rotors with different slot depths and effectively prevents uneven winding of the rotor. The width of the arc plate is smaller than that of the guide plate, making it convenient for the arc plate to enter the rotor, and the guide plate is restricted by the rotor and conflicts with the rotor, making winding more convenient. By rotating the cylinder, the cylinder rotates with the mounting block and the guide plate, and the rotation angle of the slider is adjusted. Then, the frame and the cylinder are fixed again with bolts. At this time, the two guide plates are in an inclined state, which is convenient for winding on the oblique slots of the rotor, making the device more applicable.

[0022] 4. This solution can rotate the rotating rod to adjust the angle between the copper wire and the rotor, change the shear force between the copper wire and the rotor, and reduce the pulling force on the copper wire. When the copper wire is stuck on the device, the connecting rod continues to rotate. At this time, the pulling force on the copper wire becomes greater, and the pulling force of the copper wire on the second limiting block becomes greater. The elastic bead is deformed by the excessive tension, and the elastic bead detaches from the inside of the connecting rod. When the rotating mechanism rotates with the connecting rod, the rotating rod will not rotate, effectively preventing the copper wire from getting stuck and the device from continuing to run and breaking, causing damage to the device.

[0023] 5. In this solution, when the copper wire is stuck and the device continues to run, the copper wire is pulled, making it difficult for the rotating rod to rotate with the copper wire. The copper wire squeezes the first limiting block, causing the first limiting block to move inside the accommodating hole, thereby facilitating the formation of a gap between the first limiting block and the second limiting block, facilitating the copper wire to leave from the gap. At this time, the connecting rod rotates with the rotating rod without rotating with the copper wire, effectively preventing the copper wire from getting stuck and breaking, and providing better protection for the device. The position of the adjusting block can be adjusted according to the thickness of the copper wire, and the adjusting block can be fixed by passing a bolt through the second fixing hole and then through the first fixing hole, so that the state of the first spring between the adjusting block and the first limiting block is changed, so that the first limiting block is subjected to different degrees of squeezing force, thereby triggering the movement of the first limiting block, and having a wider range of applications. BRIEF DESCRIPTION OF THE DRAWINGS

[0024] Figure 1 It is a structural schematic diagram of the winding equipment of the present invention;

[0025] Figure 2 It is a structural diagram of the protection mechanism of the present invention;

[0026] Figure 3 Schematic diagram of the structure of the rotating rod of the present invention;

[0027] Figure 4 Schematic diagram of the structure of the first limiting block of the present invention;

[0028] Figure 5 It is a structural schematic diagram of the wire guide mechanism of the present invention;

[0029] Figure 6 Schematic diagram of the internal structure of the wire guide mechanism of the present invention;

[0030] Figure 7 It is a side view of the wire guide mechanism of the present invention;

[0031] Figure 8 It is a structural schematic diagram of the cylinder of the present invention.

[0032] Description of the numbers in the figure:

[0033] 1. Frame; 11. Rotating mechanism; 2. Hydraulic cylinder; 3. Protective mechanism; 31. Connecting rod; 32. Rotating rod; 321. First fixing hole; 322. First slide groove; 323. Accommodating hole; 324. Elastic bead; 33. First limiting block; 34. Second limiting block; 35. First spring; 36. Adjusting block; 361. Second fixing hole; 4. Wire guide mechanism; 41. Mounting block; 411. Second slide groove; 412. Second spring; 413. Third limiting block; 42. Cylinder; 421. Outer ring; 422. Mounting hole; 43. Slider; 431. Guide plate; 432. Arc plate; 433. First extension block; 434. Extrusion groove; 435. Second extension block; 436. Third spring; 44. Extrusion rod; 441. Extrusion block; 45. Fourth spring. DETAILED DESCRIPTION

[0034] The technical solutions in the embodiments of the present invention will be clearly and completely described below in conjunction with the drawings in the embodiments of the present invention; it is obvious that the described embodiments are only part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative work are within the scope of protection of the present invention.

[0035] See also Figures 1 to 8A winding device for stator and rotor production includes a frame 1. A hydraulic cylinder 2 is fixedly connected to the top of one side of the frame 1. The rotor is fixed to the output shaft end of the hydraulic cylinder 2. By controlling the hydraulic cylinder 2, the output end of the hydraulic cylinder 2 moves with the rotor. A rotating mechanism 11 is fixedly connected to the other side of the frame 1 (the rotating mechanism 11 is a prior art and will not be described here). A protective mechanism 3 is provided on the top of the rotating mechanism 11. The copper wire passes through the protective mechanism 3. When the rotating mechanism 11 drives the protective mechanism 3 to rotate, the protective mechanism 3 can rotate with the copper wire, making it convenient to wind the copper wire into the rotor. A wire guide mechanism 4 is provided on one side of the frame 1. The wire guide mechanism 4 The machine frame 1 includes a cylinder 42 movably connected to the cylinder 42, a mounting block 41 is fixedly connected to the right side of the cylinder 42, a slider 43 is slidably connected to the inside of the mounting block 41, the slider 43 is moved, and the top of the slider 43 is slidably connected to the guide plate 431. By moving the slider 43, the slider 43 moves up and down with the guide plate 431, which facilitates the control of the position of the guide plate 431. According to the height of the rotor, the distance between the two guide plates 431 is adjusted so that the distance between the two guide plates 431 is the same as the height of the rotor. It can be adjusted according to the size of the rotor, and has a wider range of applications. The rotor is moved to the guide plate 431 so that the position of the rotor slot is between the two guide plates. When the protective mechanism 3 rotates with the copper wire, the copper wire contacts the arc surface of the guide plate 431, and the arc surface of the guide plate 431 guides the copper wire, so that the copper wire slides to the position of the rotor, which is more convenient for winding the rotor. The position of the slider 43 close to the mounting block 41 extends toward the mounting block 41 to form a first extension block 433. During the movement of the slider 43, the slider 43 moves with the first extension block 433. The interior of the mounting block 41 is provided with a second slide groove 411 corresponding to the position of the first extension block 433 to accommodate the movement of the first extension block 433. The first extension block 433 moves inside the second slide groove 411, so that the first extension block 433 moves inside the second slide groove 411. The movement of the extension block 433 is more convenient, and the moving direction of the first extension block 433 is limited to prevent the shaking of the first extension block 433 from causing the guide plate 431 to shake, thereby causing the winding to deviate. The interior of the second slide groove 411 is provided with a second spring 412 welded to the first extension block 433. When the slider 43 moves with the first extension block 433, the first extension block 433 moves to squeeze the second spring 412. After being squeezed, the second spring 412 changes from its original naturally stretched state to a tight state, making it convenient for the slider 43 to return to its original position under the action of the second spring 412, so that the movement of the guide plate 431 can be repeated, and the scope of application is wider.

[0036] like Figures 1 to 8As shown, the interior of the mounting block 41 is slidably connected with an extrusion rod 44. When the hydraulic cylinder 2 moves the rotor with the moving wire mechanism 4, the rotor squeezes the extrusion rod 44, causing the extrusion rod 44 to move toward the interior of the mounting block 41. The top and bottom of the extrusion rod 44 are fixedly connected with extrusion blocks 441, which facilitates the movement of the extrusion rod 44. The extrusion rod 44 brings the extrusion block 441 to move toward the interior of the mounting block 41. An extrusion groove 434 is provided inside the slider 43. During the movement of the extrusion rod 44, the extrusion block 441 moves inside the extrusion groove 434. The cross-sectional shape of the extrusion groove 434 is a right-angled trapezoid, and the inclined surface of the extrusion groove 434 is at the top of the extrusion block 441. When the extrusion block 441 moves in the extrusion groove 434, the top of the extrusion block 441 squeezes the inclined surface of the extrusion groove 434, and the slider 43 is squeezed and moves, making the movement of the slider 43 more convenient. The interior of the mounting block 41 is fixedly connected to a third limiting block 413, and the interior of the extrusion rod 44 is provided with a fourth spring 45 welded to the third limiting block 413. During the movement of the extrusion rod 44, the extrusion rod 44 and the third limiting block 413 squeeze the fourth spring 45, causing the fourth spring 45 to change from its original naturally stretched state to a tight state. When the extrusion block 441 passes through the slider 43, the slider 43 is not blocked by the extrusion block 441. Under the action of the second spring 412, the slider 43 carries the guide plate 431 to press against the top and bottom of the rotor. When the rotor leaves, the extrusion rod 44 returns to its original position under the action of the fourth spring 45. The side of the extrusion block 441 away from the mounting block 41 is an arc surface. The extrusion rod 44 carries the extrusion block 441 to squeeze the slider 43, so that the slider 43 moves again after being squeezed, which facilitates the extrusion block 441 and the extrusion rod 44 to return to their original positions.

[0037] like Figures 1 to 8As shown, the right bottom of the guide plate 431 is fixedly connected with an arc plate 432. When the guide plate 431 moves downward, the guide plate 431 moves with the arc plate 432, and the bottom of the guide plate 431 contacts the end of the rotor, and the arc plate 432 enters the slot opened by the rotor. The contact surface between the arc plate 432 and the rotor is an arc surface. The arc surface of the arc plate 432 presses the rotor to facilitate the movement of the arc plate 432. The arc plate 432 contacts the bottom of the rotor slot, and the movement of the arc plate 432 can move the guide plate 431, so that the right side port of the guide plate 431 and the bottom of the rotor slot are in the same vertical plane. , convenient for the copper wire to slide down from the surface of the guide plate 431 and be at the bottom of the rotor slot, which is suitable for rotors with different slot depths and effectively prevents uneven winding of the rotor. The width of the arc plate 432 is smaller than that of the guide plate 431, which facilitates the arc plate 432 to enter the rotor, while the guide plate 431 is restricted by the rotor and conflicts with the rotor, making winding more convenient. The side of the guide plate 431 extends toward the direction of the slider 43 to form a second extension block 435. During the movement of the guide plate 431, the guide plate 431 moves with the second extension block 435. The interior of the slider 43 is provided with a second extension block 435. The welded third spring 436 is moved and squeezed by the second extension block 435, so that the guide plate 431 returns to its original position under the action of the third spring 436. The device is more convenient to use. The arc portion of the guide plate 431 is rotatably connected to the rectangular portion. The arc portion of the guide plate 431 can be rotated with the arc plate 432 by rotating the arc portion of the guide plate 431. When encountering a rotor with a small slot width, it is only necessary to rotate the arc portion of the guide plate 431 to guide the copper wire through the arc surface of the arc plate 432, effectively preventing the winding from winding into other slots. The scope of application is wider, and the outer surface of the left side of the cylinder 42 is extended The outer ring 421 is provided with a plurality of mounting holes 422 distributed in a circular array inside. When the slot of the rotor is oblique, the bolts in the mounting holes 422 are removed to change the state between the cylinder 42 and the frame 1 from a fixed state to a rotatable state. By rotating the cylinder 42, the cylinder 42 rotates with the mounting block 41 and the guide plate 431, and the rotation angle of the slider 43 is adjusted. Then, the frame 1 and the cylinder 42 are fixed again with bolts. At this time, the two guide plates 431 are in an inclined state, which is convenient for winding the rotor slot into an oblique groove, making the device more widely applicable.

[0038] like Figures 1 to 8As shown, the protection mechanism 3 includes a connecting rod 31 fixed to the rotating mechanism 11, and the right side of the connecting rod 31 is rotatably connected to the rotating rod 32, and the end of the rotating rod 32 close to the connecting rod 31 is fixedly connected to an elastic bead 324, which extends into the interior of the connecting rod 31 through the elastic bead 324, so that the rotating rod 32 can rotate on one side of the connecting rod 31, and a receiving hole 323 is provided on the side of the rotating rod 32 away from the connecting rod 31, and the copper wire passes through the receiving hole 323. The rotation of the connecting rod 31 drives the rotating rod 32 to rotate, and then drives the copper wire passing through the receiving hole 323 to rotate, which is more convenient for winding the rotor, and during the winding process, the rotating rod 32 can The connecting rod 31 rotates, thereby adjusting the angle between the copper wire and the rotor, changing the shear force between the copper wire and the rotor, and reducing the pulling force on the copper wire. When the copper wire is stuck on the device, the connecting rod 31 continues to rotate. At this time, the pulling force on the copper wire becomes larger, and the pulling force of the copper wire on the second limiting block 34 becomes larger. The elastic bead 324 is a solid iron ball wrapped with rubber. The elastic bead 324 is deformed by excessive tension, and the elastic bead 324 detaches from the inside of the connecting rod 31, so that when the rotating mechanism 11 rotates with the connecting rod 31, the rotating rod 32 will not rotate, effectively preventing the copper wire from getting stuck and the device from continuing to run and breaking, causing damage to the device.

[0039] like Figures 1 to 8The first limiting block 33 is fixedly connected to the rear side of the accommodating hole 323, and the first limiting block 33 is slidably connected to the left side of the second limiting block 34. Since the opposing surfaces of the second limiting block 34 and the first limiting block 33 are inclined surfaces, the copper wire is always between the opposing surfaces of the second limiting block 34 and the first limiting block 33. The interior of the rotating rod 32 is provided with a first sliding groove 322 to accommodate the movement of the first limiting block 33. The interior of the first sliding groove 322 is fixedly connected to the adjusting block 36. When the copper wire is stuck and the device continues to operate, the copper wire is pulled, making it difficult for the rotating rod 32 to rotate with the copper wire. The copper wire squeezes the first limiting block 33, causing the first limiting block 33 to move inside the accommodating hole 323, thereby facilitating a gap between the first limiting block 33 and the second limiting block 34, making it convenient for the copper wire to leave the gap. At this time, the connecting rod 31 rotates with the rotating rod 32 without rotating with the copper wire. The first limiting block 33 is moved to a position where it can be rotated, and the first spring 35 is welded between the adjusting block 36 and the first limiting block 33. The first limiting block 33 moves to squeeze the first spring 35, causing the first spring 35 to deform, so that the first limiting block 33 can return to its original position, making the device reusable. The bottom of the first slide groove 322 is provided with a plurality of first fixing holes 321, and the interior of the adjusting block 36 is provided with a second fixing hole 361. The position of the adjusting block 36 can be adjusted according to the thickness of the copper wire. The adjusting block 36 is fixed by passing a bolt through the second fixing hole 361 and then through the first fixing hole 321 again. The state of the first spring 35 between the adjusting block 36 and the first limiting block 33 is changed, so that the first limiting block 33 is subjected to different degrees of squeezing force, which triggers the first limiting block 33 to move, and the scope of application is wider.

[0040] The above are only preferred embodiments of the present invention; however, the scope of protection of the present invention is not limited thereto. Any person skilled in the art who, within the technical scope disclosed by the present invention, makes equivalent substitutions or modifications based on the technical solutions and improved concepts of the present invention shall be covered by the scope of protection of the present invention.

Claims

1. A winding device for stator and rotor production, comprising a frame (1), a hydraulic cylinder (2) fixedly connected to the top of one side of the frame (1), and a rotating mechanism (11) fixedly connected to the other side of the frame (1), characterized in that: A protection mechanism (3) is provided at the top of the rotating mechanism (11), and a guide wire mechanism (4) is provided on one side of the frame (1); The wire guide mechanism (4) comprises a cylinder (42) movably connected to the frame (1); a mounting block (41) is fixedly connected to the right side of the cylinder (42); and a slider (43) is slidably connected inside the mounting block (41).

2. The stator and rotor production winding equipment according to claim 1, characterized in that: The top of the slider (43) is slidably connected to a guide plate (431); the slider (43) is close to the mounting block (41) and extends in the direction of the mounting block (41) to form a first extension block (433); a second sliding groove (411) for accommodating the movement of the first extension block (433) is provided inside the mounting block (41) at a position corresponding to the first extension block (433); a second spring (412) welded to the first extension block (433) is provided inside the second sliding groove (411).

3. The stator and rotor production winding equipment according to claim 1, characterized in that: The interior of the mounting block (41) is slidably connected to an extrusion rod (44), the top and bottom of the extrusion rod (44) are fixedly connected to an extrusion block (441), and an extrusion groove (434) is provided inside the slider (43), and the cross-sectional shape of the extrusion groove (434) is a right-angled trapezoid.

4. The stator and rotor production winding equipment according to claim 3, characterized in that: A third limiting block (413) is fixedly connected inside the mounting block (41), and a fourth spring (45) welded to the third limiting block (413) is provided inside the extrusion rod (44).

5. The stator and rotor production winding equipment according to claim 2, characterized in that: The right bottom of the guide plate (431) is fixedly connected with an arc-shaped plate (432), the contact surface between the arc-shaped plate (432) and the rotor is an arc surface, and the width of the arc-shaped plate (432) is smaller than that of the guide plate (431).

6. The stator and rotor production winding equipment according to claim 2, characterized in that: The guide plate (431) extends toward the slider (43) on one side thereof, forming a second extension block (435). A third spring (436) welded to the second extension block (435) is provided inside the slider (43). The left outer surface of the cylinder (42) extends to form an outer ring (421). A plurality of mounting holes (422) distributed in a circular array are provided inside the outer ring (421).

7. The stator and rotor production winding equipment according to claim 1, characterized in that: The protection mechanism (3) comprises a connecting rod (31) fixed to the rotating mechanism (11); the right side of the connecting rod (31) is rotatably connected to a rotating rod (32); and an elastic bead (324) is fixedly connected to one end of the rotating rod (32) close to the connecting rod (31).

8. The stator and rotor production winding equipment according to claim 7, characterized in that: A receiving hole (323) is provided on a side of the rotating rod (32) away from the connecting rod (31), and the elastic bead (324) is a solid iron ball wrapped with rubber.

9. The stator and rotor production winding equipment according to claim 8, characterized in that: The rear side of the accommodating hole (323) is fixedly connected to a second limiting block (34), the left side of the second limiting block (34) is slidably connected to the first limiting block (33), and a first sliding groove (322) for accommodating the movement of the first limiting block (33) is provided inside the rotating rod (32).

10. The stator and rotor production winding equipment according to claim 9, characterized in that: An adjusting block (36) is fixedly connected inside the first sliding groove (322), a first spring (35) is welded between the adjusting block (36) and the first limiting block (33), a plurality of first fixing holes (321) are provided at the bottom of the first sliding groove (322), and a second fixing hole (361) is provided inside the adjusting block (36).

Citation Information

Patent Citations

  • Rotor winding machine

    CN105811689A

  • Motor winding device

    CN114499084A

  • Semi-automatic winding die for motor stator coil

    CN210327324U

  • Rotor winding coil winding device

    CN216155205U

  • Winding device

    CN217545831U