Winding mechanism and submersible pump motor stator winding processing equipment
By designing a winding mechanism including stabilizer, adjuster and wire member, the problem of shaking of the stator of the submersible pump motor during winding is solved, and the winding accuracy and product quality are improved.
Patent Information
- Application Number
- CN202510630215.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-16
- Publication Date
- 2025-06-13
- Estimated Expiration
- 2045-05-16
AI Technical Summary
The existing submersible pump motor stator winding processing equipment vibrates when rotating at high speed, causing the stator to shake during winding, affecting the winding accuracy and product quality.
A winding mechanism is designed, including a equipment box, a winding box, a support part, a winding part and a docking part. By providing stabilizers, adjusters and wire members, ensure that the stator remains stable during winding and avoids shaking.
It effectively avoids shaking of the stator during winding, improves winding accuracy and product quality, and ensures that the copper wire is evenly wound on the stator.
Smart Images

Figure CN120150451A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of submersible pump motor stator winding processing equipment, and particularly to a winding mechanism and a submersible pump motor stator winding processing equipment. Background Art
[0002] The stator is an important component in the motor. The rotation of the rotor is achieved through the electromagnetic induction transmission between the stator and the rotor. Copper wires for electromagnetic induction need to be wound on the stator. Therefore, whether the copper wires are wound on the stator in compliance with the requirements directly affects the stability of the motor.
[0003] The existing submersible pump motor stator winding processing equipment can basically meet people's usage requirements. However, the winding drum in the existing technology vibrates while rotating at high speed, causing the stator to shake during the winding process. Since the winding accuracy requirements of the stator are extremely strict, even a slight shake will cause the winding to be disordered, reducing the product quality of the stator winding. Summary of the Invention
[0004] The purpose of the present invention is to provide a winding mechanism and a submersible pump motor stator winding processing equipment to solve the problems raised in the above background art.
[0005] To solve the above technical problems, the present invention is realized through the following technical solutions: The present invention is a winding mechanism and a submersible pump motor stator winding processing equipment, including an equipment box. A plurality of pulleys are fixedly connected to the bottom of the equipment box. A winding box is fixedly connected to the directly above of the equipment box. A fixed rod is fixedly connected to the end of the winding box away from the equipment box. A wire fixing pliers is fixedly connected to the end of the fixed rod away from the winding box.
[0006] A submersible pump motor stator winding processing equipment with a winding mechanism includes a support part. The support part is installed inside the equipment box. The support part is used for the installation and fixation of the stator to be wound, and the support part is also used for adjusting the angle of the stator to be wound. It further includes: A winding part, which is installed inside the winding box and is used for the installation of copper wires; and A docking part, which is installed at the end of the winding part away from the inside of the winding box. The docking part cooperates with the support part, so that the stator to be wound on the docking part and the support part is stably installed. Then, by the cooperation of the rotation of the winding part, the copper wire is evenly wound on the stator; Among them, the winding part is also used to keep the docking part stationary, so as to ensure the stable winding of the stator between the docking part and the support part.
[0007] Further, the support part includes: An adjusting part, which is installed inside the equipment box and is used to provide power for the stator on the support part to move towards the docking part; The fixing member is installed on the top of the adjusting member and is used to support and fix the stator. The wire member is installed directly above the equipment box. By cooperating with the winding action of the winding part, the copper wire on the winding part is evenly wound inside the stator.
[0008] Furthermore, the adjusting member includes several fixing plates fixedly connected to the inner wall of the equipment box. On one side of the fixing plate far from the side wall of the equipment box, a first motor is fixedly connected. The output end of the first motor is fixedly connected to a lead screw. The middle part of the lead screw is rotatably connected to a moving block. The bottom of the moving block is fixedly connected to a connecting plate, and the bottom of the connecting plate is fixedly connected to a second motor.
[0009] Furthermore, the fixing member includes several rotating shafts rotatably connected to the moving block. The bottom of the rotating shaft is drivingly connected to a first transmission belt. One end of the first transmission belt far from the rotating shaft is drivingly connected to the output end of the second motor. The end of the rotating shaft far from the first transmission belt is provided with a stator body. The middle part of the rotating shaft is rotatably connected to a moving rod. One end of the moving rod is fixedly connected to a push rod, and the end of the push rod far from the connecting rod is fixedly connected to a fixed base. Among them, the wire member includes several fixing columns fixedly connected to the top of the moving rod. One end of the fixing column is fixedly connected to a side guide plate. Both ends of the side guide plate are inclined, and the inclined parts at both ends of the side guide plate are used to guide the copper wire.
[0010] Furthermore, the winding part includes: The winding member is installed inside the winding box and is used to provide the rotational force for the winding of the copper wire. The stabilizing member is installed at one end of the winding member far from the inside of the winding box and is used to ensure the fixed installation of the stator while the winding member rotates at high speed.
[0011] Furthermore, the winding member includes a third motor fixedly connected to the inner wall of the winding box. The output end of the third motor is drivingly connected to a winding belt. Several winding shafts rotatably penetrate through the side wall of the winding box. A wire outlet hole is opened at the axis of the winding shaft for passing through the copper wire. A second transmission belt is drivingly connected between several winding shafts, and the second transmission belt realizes the synchronous rotation of several winding shafts. The end of the winding shaft far from the second transmission belt is fixedly connected to a winding rod. The inside of the end of the winding shaft far from the winding rod is rotatably connected to a wire guide wheel. One end of the winding rod is fixedly connected to a wire outlet frame.
[0012] Further, the stabilizing member includes a fixed head rotatably connected to one end of the winding shaft away from the second transmission belt. One end of the winding rod away from the wire outlet frame rotatably penetrates through a synchronous rotating shaft. A plurality of fixed gears are fixedly connected to the side wall of the winding box. One end of the synchronous rotating shaft meshes with a first synchronous toothed belt. One end of the first synchronous toothed belt away from the synchronous rotating shaft meshes with the fixed gear. One side wall of the fixed head close to the winding shaft is fixedly connected with a synchronous gear. A second synchronous toothed belt meshes with the synchronous gear. One end of the second synchronous toothed belt away from the synchronous gear meshes with one end of the synchronous rotating shaft.
[0013] Further, the docking part includes: An auxiliary member, which is installed at one end of the fixed head away from the winding shaft and is used for guiding the copper wire; A docking member, which is installed inside the fixed head and is used for cooperating with the fixing member to fix the stator body.
[0014] Further, the auxiliary member includes an auxiliary base fixedly connected to one end of the fixed head away from the winding shaft, and wire clamps are fixedly connected to both ends of the auxiliary base; Among them, the docking member includes a sliding rod slidably connected inside the fixed head. One end of the sliding rod away from the fixed head is fixedly connected with a pressing plate, and a compression spring is arranged inside the fixed head.
[0015] The present invention has the following beneficial effects: (1) In the present invention, by setting the stabilizing member, since the fixed head is rotatably connected to one end of the winding shaft, without the stable synchronization effect of the stabilizing member, the friction between the rotation of the winding shaft and the fixed head will drive the fixed head to rotate. In order to ensure the relative stability between the fixed head and the stator body, a synchronous rotating shaft is arranged on the winding rod. When the winding shaft rotates and drives the synchronous rotating shaft on the winding rod to rotate around the winding shaft, the first synchronous toothed belt on the synchronous rotating shaft meshes with the fixed gear, and the first synchronous toothed belt drives the synchronous rotating shaft to generate self-rotation. The self-rotation of the synchronous rotating shaft drives the second synchronous toothed belt to rotate. Therefore, the synchronous gear at one end of the second synchronous toothed belt remains relatively stationary with the fixed gear, so as to ensure that the fixed head is not affected by the rotation of the winding shaft. Such a setting is beneficial to ensure the stability of the stator body at one end of the fixed head.
[0016] (2) In the present invention, the first motor drives the lead screw to rotate, and the rotation of the lead screw drives the moving block to move. When the winding member works, under the movement adjustment of the cooperation with the adjusting member, the winding member evenly winds the copper wire on the stator body. When the adjusting member drives the stator body to move towards the end away from the first motor, the moving block drives the stator body on the rotating shaft to move away from the docking part. At this time, since one end of the pressing plate is pressed against the compression spring, when the stator body moves away from the pressing plate, the compression spring pushes the pressing plate at one end of the sliding rod to always closely adhere to the side wall of the stator body, so as to ensure that the copper wire continuously winds the copper wire inside the stator body under the guiding action of the wire clamp, and ensure the continuous and stable winding of the equipment.
[0017] (3) In the present invention, during winding, the first motor drives the moving block on the lead screw to move towards one end of the first motor. At this time, the moving block drives the stator body on the rotating shaft to move towards one end close to the docking part. One end of the stator body close to the docking part generates extrusion with the pressing plate, and the pressing plate is extruded along the rotating shaft to press the compression spring inward. At this time, the side wall of the stator body is closely attached to the side wall of the pressing plate. Such a setting is beneficial to ensuring that the stator body is stably clamped between the pressing plate and the fixed base, and ensuring that the stator body does not shake during winding, resulting in the phenomenon of winding disorder.
[0018] (4) In the present invention, by setting the winding part, the copper wire is passed through the wire outlet hole inside the winding shaft and then passed out through the wire guiding wheel. At this time, the copper wire is further passed through the wire outlet frame and fixedly clamped by the wire fixing pliers. The output end of the third motor rotates to drive the winding shaft at one end of the winding belt to rotate. The rotation of the winding shaft drives the second transmission belt to rotate. The rotation of the second transmission belt drives several winding shafts to rotate synchronously. The rotation of the winding shaft drives the wire outlet frame at one end of the winding rod to rotate. The rotation of the wire outlet frame drives the copper wire to wind around the stator body.
[0019] Of course, it is not necessary for any product implementing the present invention to achieve all the above-mentioned advantages simultaneously. BRIEF DESCRIPTION OF THE DRAWINGS
[0020] In order to more clearly illustrate the technical solutions of the embodiments of the present invention, the drawings required for describing the embodiments will be briefly introduced below. Obviously, the drawings in the following description are only some embodiments of the present invention. For those of ordinary skill in the art, other drawings can be obtained based on these drawings without creative efforts.
[0021] Figure 1 It is a schematic diagram of the overall structure of the present invention; Figure 2 It is a schematic diagram of the support part structure of the present invention; Figure 3 It is a schematic diagram of the internal structure of the equipment box of the present invention; Figure 4 It is a schematic diagram of the stabilizing part structure of the present invention; Figure 5 It is for the present invention Figure 4 Enlarged view of A in; Figure 6 It is a schematic diagram of the docking part structure of the present invention; Figure 7 It is a schematic diagram of the fixing part structure of the present invention; Figure 8 It is a schematic diagram of the stabilizing part structure of the present invention; Figure 9 It is for the present invention Figure 8 Enlarged view of B in.
[0022] In the accompanying drawings, the list of components represented by each reference numeral is as follows: In the figure: 1. Equipment box; 11. Pulley; 2. Winding box; 21. Fixed rod; 22. Wire fixing pliers; 3. Support part; 31. Adjusting part; 311. Fixed plate; 312. Motor 1; 313. Lead screw; 314. Moving block; 315. Connecting plate; 316. Motor 2; 32. Fixing part; 321. Rotating shaft; 322. Transmission belt 1; 323. Stator body; 324. Moving rod; 325. Connecting rod; 326. Push rod; 327. Fixed base; 33. Wire guiding part; 331. Fixed column; 332. Side guide plate; 4. Winding part; 41. Winding piece; 411. Motor 3; 412. Winding belt; 413. Winding shaft; 414. Wire outlet hole; 415. Transmission belt 2; 416. Winding rod; 417. Wire guiding wheel; 418. Wire outlet frame; 42. Stabilizing part; 421. Fixed head; 422. Synchronous rotating shaft; 423. Fixed gear; 424. Synchronous toothed belt 1; 425. Synchronous gear; 426. Synchronous toothed belt 2; 5. Docking part; 51. Auxiliary part; 511. Auxiliary base; 512. Wire clamping pliers; 52. Docking piece; 521. Sliding rod; 522. Bracing plate; 523. Compression spring. Detailed implementation mode
[0023] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a 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 those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.
[0024] Embodiment 1, please refer to Figures 1 - 7 As shown, the present invention is a winding mechanism and a submersible pump motor stator winding processing device, including an equipment box 1. A plurality of pulleys 11 are fixedly connected to the bottom of the equipment box 1. A winding box 2 is fixedly connected directly above the equipment box 1. A fixed rod 21 is fixedly connected to one end of the winding box 2 away from the equipment box 1. A wire fixing pliers 22 is fixedly connected to one end of the fixed rod 21 away from the winding box 2.
[0025] A submersible pump motor stator winding processing device with a winding mechanism includes a support part 3. The support part 3 is installed inside the equipment box 1. The support part 3 is used for supporting and fixing the installation of the stator to be wound. The support part 3 is also used for adjusting the angle of the stator to be wound. It also includes: A winding part 4, which is installed inside the winding box 2 and is used for the installation of copper wires; and The docking part 5 is installed at one end of the wire winding part 4 away from the inside of the winding box 2. The docking part 5 cooperates with the support part 3, so that the stator to be wound on the docking part 5 and the support part 3 is stably installed. Then, by driving the rotation of the wire winding part 4, the copper wire is evenly wound on the stator; Among them, the wire winding part 4 is also used to keep the docking part 5 stationary, so as to ensure the stable wire winding of the stator between the docking part 5 and the support part 3.
[0026] The support part 3 includes: The adjusting part 31 is installed inside the equipment box 1. The adjusting part 31 is used to provide power for the stator on the support part 3 to move towards the docking part 5; The fixing part 32 is installed on the top of the adjusting part 31. The fixing part 32 is used to support and fix the stator; The wire guiding part 33 is installed directly above the equipment box 1. By cooperating with the wire winding action of the wire winding part 4, the copper wire on the wire winding part 4 is evenly wound inside the stator.
[0027] The adjusting part 31 includes several fixing plates 311 fixedly connected to the inner wall of the equipment box 1. On one side of the fixing plate 311 far from the side wall of the equipment box 1, a motor 312 is fixedly connected. The output end of the motor 312 is fixedly connected with a lead screw 313. The middle part of the lead screw 313 is rotatably connected with a moving block 314. The bottom of the moving block 314 is fixedly connected with a connecting plate 315. The bottom of the connecting plate 315 is fixedly connected with a motor 316.
[0028] The fixing part 32 includes several rotating shafts 321 rotatably connected to the moving block 314. The bottom of the rotating shaft 321 is drivingly connected with a first transmission belt 322. One end of the first transmission belt 322 far from the rotating shaft 321 is drivingly connected with the output end of the motor 316. The end of the rotating shaft 321 far from the first transmission belt 322 is provided with a stator body 323. The middle part of the rotating shaft 321 is rotatably connected with a moving rod 324. One end of the moving rod 324 is fixedly connected with a push rod 326. The end of the push rod 326 far from the connecting rod 325 is fixedly connected with a fixed base 327. The function of this component is that when using this submersible pump motor stator winding processing equipment, first install the stator body 323 directly above the rotating shaft 321. At this time, the output end of the motor 316 rotates to drive the rotating shaft 321 at one end of the first transmission belt 322 to rotate and adjust the angle of the stator body 323, so that the wire winding part of the stator body 323 is aligned with the docking part 5. Then the push rod 326 pushes the fixed base 327 to move towards the side wall of the stator body 323. Such a setting is beneficial to ensure the stability of the stator body 323 during the wire winding process, thereby improving the wire winding quality of the stator body 323; Among them, the wire member 33 includes a plurality of fixing columns 331 fixedly connected to the top of the moving rod 324. One end of the fixing column 331 is fixedly connected with a side guide plate 332. Both ends of the side guide plate 332 are inclined, and the inclined parts at both ends of the side guide plate 332 are used for guiding the copper wire.
[0029] Embodiment 2 is different from Embodiment 1 in that; as Figures 1 - 9 shown, the winding part 4 includes: A winding member 41 is installed inside the winding box 2 and is used to provide a rotational force for winding the copper wire; A stabilizing member 42 is installed at one end of the winding member 41 away from the inside of the winding box 2, and the stabilizing member 42 is used to ensure the fixed installation of the stator while ensuring the high-speed rotation of the winding member 41.
[0030] The winding member 41 includes a motor three 411 fixedly connected to the inner wall of the winding box 2. The output end of the motor three 411 is drivingly connected with a winding belt 412. A plurality of winding shafts 413 rotatably penetrate through the side wall of the winding box 2. A wire outlet hole 414 is opened at the axis of the winding shaft 413 for passing through the copper wire. A second transmission belt 415 is drivingly connected between the plurality of winding shafts 413, and the second transmission belt 415 realizes the synchronous rotation of the plurality of winding shafts 413. One end of the winding shaft 413 away from the second transmission belt 415 is fixedly connected with a winding rod 416. A wire guide wheel 417 is rotatably connected to the inside of one end of the winding shaft 413 away from the winding rod 416. One end of the winding rod 416 is fixedly connected with a wire outlet frame 418. The function of this component is to set the winding part 4, pass the copper wire through the wire outlet hole 414 inside the winding shaft 413, and then pass it out through the wire guide wheel 417. At this time, the copper wire is passed through the wire outlet frame 418 and fixedly clamped by the wire fixing pliers 22. The rotation of the output end of the motor three 411 drives the rotation of the winding shaft 413 at one end of the winding belt 412. The rotation of the winding shaft 413 drives the rotation of the second transmission belt 415. The rotation of the second transmission belt 415 drives the synchronous rotation of the plurality of winding shafts 413. The rotation of the winding shaft 413 drives the rotation of the wire outlet frame 418 at one end of the winding rod 416. The rotation of the wire outlet frame 418 drives the copper wire to wind around the stator body 323.
[0031] The stabilizing member 42 includes a fixed head 421 rotatably connected to one end of the winding shaft 413 away from the second transmission belt 415. One end of the winding rod 416 away from the wire outlet frame 418 rotatably penetrates through a synchronous rotating shaft 422. A plurality of fixed gears 423 are fixedly connected to the side wall of the winding box 2. One end of the synchronous rotating shaft 422 meshes with a first synchronous toothed belt 424. One end of the first synchronous toothed belt 424 away from the synchronous rotating shaft 422 meshes with the fixed gear 423. One side wall of the fixed head 421 close to the winding shaft 413 is fixedly connected with a synchronous gear 425. A second synchronous toothed belt 426 meshes with the synchronous gear 425. One end of the second synchronous toothed belt 426 away from the synchronous gear 425 meshes with one end of the synchronous rotating shaft 422. The function of this component is to set the stabilizing member 42. Since the fixed head 421 is rotatably connected to one end of the winding shaft 413, without the stable synchronization effect of the stabilizing member 42, the friction between the rotation of the winding shaft 413 and the fixed head 421 will drive the fixed head 421 to rotate. In order to ensure the relative stability between the fixed head 421 and the stator body 323, by setting the synchronous rotating shaft 422 on the winding rod 416, when the winding shaft 413 rotates to drive the synchronous rotating shaft 422 on the winding rod 416 to rotate around the winding shaft 413, the first synchronous toothed belt 424 on the synchronous rotating shaft 422 meshes with the fixed gear 423, and the first synchronous toothed belt 424 drives the synchronous rotating shaft 422 to generate self-rotation. The self-rotation of the synchronous rotating shaft 422 drives the second synchronous toothed belt 426 to rotate. Therefore, the synchronous gear 425 at one end of the second synchronous toothed belt 426 remains relatively stationary with the fixed gear 423, thereby ensuring that the fixed head 421 is not affected by the rotation of the winding shaft 413. Such a setting is beneficial to ensuring the stability of the stator body 323 at one end of the fixed head 421.
[0032] The docking part 5 includes: An auxiliary member 51, the auxiliary member 51 is installed at one end of the fixed head 421 away from the winding shaft 413, and the auxiliary member 51 is used for guiding the copper wire; A docking member 52, the docking member 52 is installed inside the fixed head 421, and the docking member 52 is used to cooperate with the fixing member 32 to fix the stator body 323.
[0033] The auxiliary member 51 includes an auxiliary base 511 fixedly connected to one end of the fixed head 421 away from the winding shaft 413. Wire clamping pliers 512 are fixedly connected to both ends of the auxiliary base 511; Among them, the docking part 52 includes a sliding rod 521 slidably connected inside the fixed head 421. One end of the sliding rod 521 away from the fixed head 421 is fixedly connected with a pressing plate 522. An extrusion spring 523 is arranged inside the fixed head 421. The function of this component is that the first motor 312 drives the lead screw 313 to rotate, and the rotation of the lead screw 313 drives the moving block 314 to move. When the winding part 41 works, under the movement adjustment of the cooperation of the adjustment part 31, the winding part 41 evenly winds the copper wire around the stator body 323. When the adjustment part 31 drives the stator body 323 to move away from one end of the first motor 312, the moving block 314 drives the stator body 323 on the rotating shaft 321 away from the docking part 5. At this time, since one end of the pressing plate 522 is pressed against the extrusion spring 523, when the stator body 323 moves away from the pressing plate 522, the extrusion spring 523 pushes the pressing plate 522 at one end of the sliding rod 521 to always closely adhere to the side wall of the stator body 323, so as to ensure that the copper wire continuously winds around the inside of the stator body 323 under the guiding action of the wire clamping pliers 512, ensuring the continuous and stable wire winding of the device.
[0034] A specific application of this embodiment is as follows: When using this submersible pump motor stator winding processing equipment, first install the stator body 323 directly above the rotating shaft 321. At this time, the output end of the motor 316 rotates to drive the rotating shaft 321 at one end of the first transmission belt 322 to rotate and adjust the angle of the stator body 323, so that the winding part of the stator body 323 is aligned with the docking part 5. Then, the push rod 326 pushes the fixed base 327 to move towards the side wall of the stator body 323. This setting is beneficial to ensuring the stability of the stator body 323 during the winding process, thereby improving the winding quality of the stator body 323. By setting the winding part 4, pass the copper wire through the wire outlet hole 414 inside the winding shaft 413 and then pass it out through the wire guide wheel 417. At this time, pass the copper wire through the wire outlet frame 418 and fix and clamp it with the wire fixing pliers 22. The output end of the motor 411 rotates to drive the winding shaft 413 at one end of the winding belt 412 to rotate. The rotation of the winding shaft 413 drives the second transmission belt 415 to rotate. The rotation of the second transmission belt 415 drives several winding shafts 413 to rotate synchronously. The rotation of the winding shaft 413 drives the wire outlet frame 418 at one end of the winding rod 416 to rotate. The rotation of the wire outlet frame 418 drives the copper wire to wind around the stator body 323. When winding, the motor 312 drives the moving block 314 on the lead screw 313 to move towards one end of the starting motor 312. At this time, the moving block 314 drives the stator body 323 on the rotating shaft 321 to move towards one end close to the docking part 5. One end of the stator body 323 close to the docking part 5 generates extrusion with the abutment plate 522. The abutment plate 522 is extruded and squeezes the compression spring 523 along the rotating shaft 321 inward. At this time, the side wall of the stator body 323 is closely attached to the side wall of the abutment plate 522. This setting is beneficial to ensuring that the stator body 323 is stably clamped between the abutment plate 522 and the fixed base 327, and ensuring that the stator body 323 does not shake during winding, resulting in the phenomenon of winding disorder. The first motor 312 drives the lead screw 313 to rotate. The rotation of the lead screw 313 drives the moving block 314 to move. When the winding member 41 works, under the combined action of the movement adjustment of the adjusting member 31, the winding member 41 evenly winds the copper wire around the stator body 323. When the adjusting member 31 drives the stator body 323 to move towards the end away from the first motor 312, the moving block 314 drives the stator body 323 on the rotating shaft 321 to move away from the docking part 5. At this time, since one end of the abutting plate 522 is pressed against the compression spring 523, when the stator body 323 moves away from the abutting plate 522, the compression spring 523 pushes the abutting plate 522 at one end of the sliding rod 521 to always closely adhere to the side wall of the stator body 323, so as to ensure that the copper wire continuously winds around the inside of the stator body 323 under the guiding action of the wire guiding caliper 512, ensuring the continuous and stable winding of the equipment; by setting the stabilizing member 42, since the fixed head 421 is rotatably connected to one end of the winding shaft 413, without the stable synchronization effect of the stabilizing member 42, the friction between the rotation of the winding shaft 413 and the fixed head 421 will drive the fixed head 421 to rotate. In order to ensure the relative stability between the fixed head 421 and the stator body 323, a synchronous rotating shaft 422 is arranged on the winding rod 416. When the winding shaft 413 rotates to drive the synchronous rotating shaft 422 on the winding rod 416 to rotate around the winding shaft 413, the first synchronous toothed belt 424 on the synchronous rotating shaft 422 meshes with the fixed gear 423. The first synchronous toothed belt 424 drives the synchronous rotating shaft 422 to generate self-rotation. The self-rotation of the synchronous rotating shaft 422 drives the second synchronous toothed belt 426 to rotate. Therefore, the synchronous gear 425 at one end of the second synchronous toothed belt 426 remains relatively stationary with respect to the fixed gear 423, so as to ensure that the fixed head 421 is not affected by the rotation of the winding shaft 413. Such a setting is beneficial to ensuring the stability of the stator body 323 at one end of the fixed head 421.
[0035] The preferred embodiments of the present invention disclosed above are only used to help illustrate the present invention. The preferred embodiments do not describe all the details in detail, nor do they limit the invention to the specific embodiments described. Obviously, many modifications and changes can be made according to the content of this specification. These embodiments are selected and specifically described in this specification to better explain the principle and practical application of the present invention, so that those skilled in the art in the relevant technical field can well understand and utilize the present invention. The present invention is only limited by the claims and their full scope and equivalents.
Claims
1. A winding mechanism, comprising an equipment box, a plurality of pulleys are fixedly connected to the bottom of the equipment box, a winding box is fixedly connected just above the equipment box, a fixing rod is fixedly connected to one end of the winding box away from the equipment box, and a wire clamp is fixedly connected to one end of the fixing rod away from the winding box.
2. A submersible pump motor stator winding processing equipment, using a winding mechanism as claimed in claim 1, comprising a support part, the support part is installed inside the equipment box, the support part is used to support the installation and fixation of the stator to be wound, and the support part is also used to adjust the angle of the stator to be wound, characterized in that: Also includes: A winding part, which is installed inside the winding box and is used for installing the copper wire; as well as The docking part is installed at one end of the winding part away from the inside of the winding box, and the docking part cooperates with the supporting part, so that the stator to be wound on the docking part and the supporting part is stably installed, and then the copper wire is evenly wound on the stator by cooperating with the rotation of the winding part; The winding portion is also used to keep the docking portion stationary, thereby ensuring stable winding of the stator between the docking portion and the supporting portion.
3. The submersible pump motor stator winding processing equipment according to claim 2, characterized in that: The support portion comprises: An adjusting member, the adjusting member is installed inside the equipment box, and the adjusting member is used to provide power for the stator on the supporting part to move toward the docking part; A fixing member, the fixing member is installed on the top of the adjusting member, and the fixing member is used to support and fix the stator; The conductor is installed just above the equipment box. The conductor cooperates with the winding action of the winding part so that the copper wire on the winding part is evenly wound inside the stator.
4. The submersible pump motor stator winding processing equipment according to claim 3 is characterized in that: The adjusting member includes a plurality of fixed plates fixedly connected to the inner wall of the equipment box, a side of the fixed plate away from the side wall of the equipment box is fixedly connected to motor 1, an output end of the motor 1 is fixedly connected to a screw rod, a middle part of the screw rod is rotatably connected to a moving block, a bottom of the moving block is fixedly connected to a connecting plate, and a bottom of the connecting plate is fixedly connected to motor 2.
5. The submersible pump motor stator winding processing equipment according to claim 4, characterized in that: The fixing member includes a plurality of rotating shafts rotatably connected to the moving block, the bottom of the rotating shaft is connected to a transmission belt 1, the end of the transmission belt 1 away from the rotating shaft is connected to the output end of the motor 2, the end of the rotating shaft away from the transmission belt 1 is installed with a stator body, the middle part of the rotating shaft is connected to a moving rod rotatably, one end of the moving rod is fixedly connected to a push rod, and the end of the push rod away from the connecting rod is fixedly connected to a fixed base; The conductor includes a plurality of fixed columns fixedly connected to the top of the moving rod, one end of the fixed column is fixedly connected to a side guide plate, both ends of the side guide plate are arranged to be inclined, and the inclined parts of the two ends of the side guide plate are used to guide the copper wire.
6. The submersible pump motor stator winding processing equipment according to claim 5, characterized in that: The winding portion comprises: A winding member, which is installed inside the winding box and is used to provide a rotational force for winding the copper wire; A stabilizing member is installed at one end of the winding member away from the interior of the winding box, and is used to ensure that the winding member rotates at a high speed while ensuring that the stator is fixedly installed.
7. The submersible pump motor stator winding processing equipment according to claim 6, characterized in that: The winding component includes a motor three fixedly connected to the inner wall of the winding box, the output end of the motor three is transmission-connected to a winding belt, a plurality of winding shafts are rotationally penetrated through the side wall of the winding box, a wire outlet hole is provided at the axis of the winding shaft, and the wire outlet hole is used to pass the copper wire, a transmission belt two is transmission-connected between the plurality of winding shafts, and the transmission belt two realizes synchronous rotation of the plurality of winding shafts, one end of the winding shaft away from the transmission belt two is fixedly connected to a winding rod, the inner part of the end of the winding shaft away from the winding rod is rotationally connected to a wire wheel, and one end of the winding rod is fixedly connected to a wire outlet frame.
8. The submersible pump motor stator winding processing equipment according to claim 7, characterized in that: The stabilizing member includes a fixed head rotatably connected to the end of the winding shaft away from the transmission belt 2, the end of the winding rod away from the wire outlet frame is rotatably penetrated by a synchronous rotating shaft, the side wall of the winding box is fixedly connected to a plurality of fixed gears, one end of the synchronous rotating shaft is meshed with a synchronous toothed belt, the end of the synchronous toothed belt away from the synchronous rotating shaft is meshed with the fixed gear, the side wall of the end of the fixed head close to the winding shaft is fixedly connected to a synchronous gear, the synchronous gear is meshed with a synchronous toothed belt 2, and the end of the synchronous toothed belt 2 away from the synchronous gear is meshed with one end of the synchronous rotating shaft.
9. The submersible pump motor stator winding processing equipment according to claim 8, characterized in that: The docking portion comprises: An auxiliary part, the auxiliary part is installed at one end of the fixed head away from the winding shaft, and the auxiliary part is used to guide the copper wire; The butt joint piece is installed inside the fixing head and is used to cooperate with the fixing piece to fix the stator body.
10. The submersible pump motor stator winding processing equipment according to claim 9, characterized in that: The auxiliary component comprises an auxiliary base fixedly connected to one end of the fixed head away from the winding shaft, and both ends of the auxiliary base are fixedly connected to the wire clamps; The docking member comprises a sliding rod slidably connected inside the fixed head, one end of the sliding rod away from the fixed head is fixedly connected to a stop plate, and a compression spring is arranged inside the fixed head.
Citation Information
Patent Citations
Winding machine of internal stator
CN102412674A
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CN117856554A
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CN119210059A
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CN218633647U
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KR1020060093863A