CN223744548U - Winding device for motor manufacturing - Google Patents

Winding device for motor manufacturing

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Publication number
CN223744548U
CN223744548U CN202520284911.5U CN202520284911U CN223744548U CN 223744548 U CN223744548 U CN 223744548U CN 202520284911 U CN202520284911 U CN 202520284911U CN 223744548 U CN223744548 U CN 223744548U
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CN
China
Prior art keywords
gear
fixed
pair
sliding
block
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Active
Application number
CN202520284911.5U
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Chinese (zh)
Inventor
朱海兵
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Jiajing Electric Motor Xuzhou Co ltd
Original Assignee
Jiajing Electric Motor Xuzhou Co ltd
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Priority to CN202520284911.5U priority Critical patent/CN223744548U/en
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Publication of CN223744548U publication Critical patent/CN223744548U/en
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Abstract

The utility model discloses a winding device for manufacturing a motor, which comprises a workbench and a winding mechanism, wherein a pair of first sliding rods are fixed on the workbench, a moving block is arranged on the pair of first sliding rods in a sliding manner, a cross arm is fixed on one side of the moving block, a rotating rod is inserted into one end of the cross arm far away from the moving block, a clamping table is arranged on the workbench, the winding mechanism is arranged on the rotating rod, the winding mechanism comprises a shell, a first supporting rod and a second supporting rod are fixed in the shell, a second transmission shaft is inserted into the first supporting rod and the second supporting rod, one end of the second transmission shaft is provided with a one-way gear, a gear ring is rotatably arranged on the shell, a pair of third gears are arranged between the gear ring and the one-way gear, a pair of second sliding rails are fixed in the shell, a second sliding block is arranged on the pair of second sliding rails in a sliding manner, and a telescopic rod is fixed on the second sliding rails. The utility model can effectively improve the winding efficiency and reduce the labor expenditure of workers through the related structural design.

Description

Winding device for motor manufacturing
Technical Field
The utility model belongs to the technical field of motor manufacturing, and particularly relates to a winding device for motor manufacturing.
Background
The motor is a device for converting electric energy into mechanical energy, and mainly comprises a stator, a rotor and windings, wherein copper wires are required to be wound on the stator in the production process of the motor to form a plurality of coils, and the coils wound with the copper wires can form a part of the motor.
The traditional stator winding is that after a worker manually winds out the coil, the wound coil is sequentially plugged into a winding table on the stator, so that the winding mode is low in efficiency, labor is consumed, and the production efficiency of the motor is greatly reduced.
Accordingly, in view of the above-mentioned problems, it is necessary to provide a winding device for manufacturing a motor.
The information disclosed in this background section is only for enhancement of understanding of the general background of the utility model and should not be taken as an acknowledgement or any form of suggestion that this information forms the prior art already known to a person of ordinary skill in the art.
Disclosure of utility model
The utility model aims to provide a winding device for motor manufacturing, which can solve the problems of lower manual winding efficiency and labor consumption of workers.
In order to achieve the above object, a specific embodiment of the present utility model provides a winding device for manufacturing a motor, including a workbench and a winding mechanism;
a pair of first sliding rods are fixed on the workbench, a moving block is arranged on the pair of first sliding rods in a sliding manner, a cross arm is fixed on one side of the moving block, a lifting rod is fixed below the moving block, a rotating rod is inserted into one end of the cross arm far away from the moving block, a clamping table is mounted on the workbench, a plurality of first sliding rails are cut on the clamping table, a first sliding block is arranged on the plurality of first sliding rails in a sliding manner, and a first screw rod is connected to the first sliding block in a threaded manner;
The winding mechanism is installed on the bull stick, the winding mechanism includes the shell, shell internal fixation has first bracing piece, second bracing piece, it is equipped with the second transmission shaft to insert on first bracing piece and the second bracing piece, one-way gear is installed to the one end of second transmission shaft, it is provided with the gear ring to rotate on the shell, be provided with a pair of third gear between gear ring and the one-way gear, the shell internal fixation has a pair of second slide rail, a pair of all slide is provided with the second slider on the second slide rail, be fixed with the telescopic link on the second slider, the winding roller is installed outward to the shell.
In one or more embodiments of the present utility model, a fixed block is fixed on the first slider, the first slider drives the fixed block to move on the first sliding rail, a pair of second sliding rods are inserted on the fixed block and used for connecting with the clamping blocks, and one ends of the pair of second sliding rods are both fixed with the clamping blocks and used for clamping the stator.
In one or more embodiments of the present utility model, a first spring is installed between the clamping block and the fixing block, which plays a role of buffering and prevents the stator from being deformed due to too large clamping force, and a placing block is fixed on the clamping block and is used for placing the stator, and one ends of a pair of second sliding rods far away from the clamping block are connected.
In one or more embodiments of the present utility model, a fixed shaft is fixed in the workbench, a first bevel gear is rotatably arranged on the fixed shaft, second bevel gears with the same number as the first screw are meshed on the first bevel gear, the first screw is fixedly connected with the second bevel gear, the second bevel gear is driven to rotate by rotating the first bevel gear, and the second bevel gear drives the first screw to rotate.
In one or more embodiments of the present utility model, a second gear is fixed at the bottom of the first bevel gear, a first gear is meshed with one side of the second gear, a first transmission shaft is fixed on the first gear, the first transmission shaft is used for externally transmitting rotation to drive the first gear to rotate, the first transmission shaft drives the first gear to rotate, and the first gear drives the second gear to rotate.
In one or more embodiments of the present utility model, a pair of third gears are respectively meshed with the gear ring and the unidirectional gears, the third gears are rotatably disposed on the first support rod, the unidirectional gears are fixed with winding heads, the second transmission shaft drives the unidirectional gears to rotate, and the unidirectional gears drive the gear ring to rotate through the third gears.
In one or more embodiments of the present utility model, a guide plate is fixed at one end of the telescopic rod, which is disposed outside the housing, for guiding the copper wire to wind onto the stator core, and a second screw is fixed at one end of the telescopic rod, which is far away from the guide plate, and drives the guide plate to move back and forth through the telescopic rod.
In one or more embodiments of the present utility model, a threaded sleeve gear is connected to the second screw in a threaded manner, the threaded sleeve gear is rotatably disposed on the second support rod, the second screw is driven to move back and forth by rotating the threaded sleeve gear, the second screw drives the telescopic rod to move back and forth, a fourth gear is fixed on the second transmission shaft, the fourth gear and the pair of threaded sleeve gears are engaged with each other, the second transmission shaft drives the fourth gear to rotate, and the fourth gear drives the threaded sleeve gear to rotate.
In one or more embodiments of the present utility model, a fixed head is fixed at one end of the second transmission shaft disposed in the unidirectional gear, the second transmission shaft drives the fixed head to rotate, a fixture block groove is cut on the fixed head for installing a fixture block, and the fixture block groove is rotationally provided with a fixture block for clamping the unidirectional gear.
In one or more embodiments of the present utility model, a clamping groove is cut on the unidirectional gear, the clamping block is clamped in the clamping groove, when the clamping block is clamped in the clamping groove to rotate, the second transmission shaft drives the unidirectional gear to rotate, when the second transmission shaft rotates reversely, the unidirectional gear pushes the clamping block into the clamping groove, the second transmission shaft does not drive the unidirectional gear to rotate, a second spring is fixed between the clamping block and the inner wall of the clamping groove, and the elastic force provided by the second spring pushes the clamping block into the clamping groove.
Compared with the prior art, the winding device has the advantages that through the related structural design, the winding efficiency can be effectively improved, and the labor expenditure of workers is reduced.
Drawings
In order to more clearly illustrate the embodiments of the present utility model or the technical solutions in the prior art, the drawings used in the description of the embodiments or the prior art will be briefly described below. It is obvious that the drawings in the following description are only some embodiments of the present utility model, and that other drawings may be obtained from these drawings without inventive effort for a person of ordinary skill in the art.
FIG. 1 is a perspective view of a winding device for motor manufacturing according to an embodiment of the present utility model;
FIG. 2 is a schematic view of the structure shown at A in FIG. 1;
FIG. 3 is a schematic view of a clamping table according to an embodiment of the utility model;
FIG. 4 is a perspective cross-sectional view of a chuck table according to an embodiment of the utility model;
FIG. 5 is a schematic diagram of a winding mechanism according to an embodiment of the present utility model;
FIG. 6 is a schematic diagram of a winding mechanism according to another embodiment of the present utility model;
FIG. 7 is a schematic view of the structure shown at B in FIG. 6;
FIG. 8 is a schematic diagram illustrating a structure of a winding mechanism according to another embodiment of the present utility model;
FIG. 9 is a schematic view of the structure shown at C in FIG. 8;
FIG. 10 is a schematic view of a gear with a threaded sleeve according to an embodiment of the present utility model;
FIG. 11 is a perspective cross-sectional view of a unidirectional gear in an embodiment of the utility model;
fig. 12 is a schematic view of the structure shown at D in fig. 11.
The main reference numerals illustrate:
The device comprises a workbench, a 101-first sliding rod, a 102-moving block, a 103-cross arm, a 104-rotating rod, a 105-clamping table, a 106-first sliding rail, a 107-first sliding block, a 108-fixed block, a 109-second sliding rod, a 110-clamping block, a 111-placing block, a 112-first spring, a 113-first screw, a 114-first bevel gear, a 115-fixed shaft, a 116-first gear, a 117-second gear, a 118-first transmission shaft, a 119-second bevel gear, a 120-lifting rod, a 2-winding mechanism, a 201-housing, a 202-winding roller, a 203-gear ring, a 204-winding head, a 205-telescopic rod, a 206-guiding plate, a 207-unidirectional gear, a 208-third gear, a 209-second transmission shaft, a 210-first supporting rod, a 211-second supporting rod, a 212-threaded sleeve gear, a 213-fourth gear, a 214-second screw, a 215-second sliding rail, a 216-second sliding block, a 217-clamping groove, a 218-clamping groove, a 219-second spring, a 220-clamping groove and a 221-clamping head.
Detailed Description
In order to enable those skilled in the art to better understand the technical solution of the present utility model, the technical solution of the present utility model will be clearly and completely described below with reference to the accompanying drawings in the embodiments of the present utility model. It will be apparent that the described embodiments are only some, but not all, embodiments of the utility model. All other embodiments, which can be made by those skilled in the art based on the embodiments of the present utility model without making any inventive effort, shall fall within the scope of the present utility model.
As shown in fig. 1-12, a winding device for manufacturing a motor according to an embodiment of the present utility model includes a workbench 1 and a winding mechanism 2.
As shown in fig. 1 to 4, a pair of first slide bars 101 for moving up and down a moving block 102 are fixed to the table 1. A movable block 102 is slidably arranged on the pair of first sliding rods 101, a cross arm 103 is fixed on one side of the movable block 102, and the movable block 102 drives the cross arm 103 to move up and down. A lifting rod 120 is fixed below the moving block 102, the lifting rod 120 is used for externally connecting lifting equipment to drive the lifting equipment to move up and down, and the lifting rod 120 drives the moving block 102 to move up and down. One end of the cross arm 103 far away from the moving block 102 is inserted with a rotating rod 104, a winding mechanism 2 is arranged below the rotating rod 104, a rotating handle or a stepping motor can be externally arranged at the upper end of the rotating rod 104 to drive the rotating rod 104 to rotate, the rotating rod 104 drives the winding mechanism 2 to rotate, and then the winding mechanism 2 winds copper wires on stator teeth at different positions.
As shown in fig. 1-4, a clamping table 105 is installed on the workbench 1, a plurality of first sliding rails 106 are cut on the clamping table 105, a first sliding block 107 is slidably arranged on each of the plurality of first sliding rails 106, and the first sliding block 107 drives a fixed block 108 above to move back and forth along the gauge of the first sliding rail 106, so that clamping and loosening of a stator can be realized. The first sliding block 107 is connected with a first screw 113 in a threaded mode, the first sliding block 107 moves back and forth on the first sliding rail 106 through rotation of the first screw 113, the first sliding block 107 is fixedly provided with a fixed block 108, and the first sliding block 107 drives the fixed block 108 to move on the first sliding rail 106. The fixed block 108 is inserted with a pair of second slide bars 109 for connecting the clamping blocks 110, and one ends of the second slide bars 109 are respectively fixed with the clamping blocks 110 for clamping the stator.
As shown in fig. 1-4, a first spring 112 is installed between the clamping block 110 and the fixed block 108, and has a buffering function, so that the stator is prevented from being deformed due to too large clamping force. The clamping block 110 is fixed with a placing block 111 for placing the stator, and one ends of a pair of second slide bars 109 far away from the clamping block 110 are connected.
As shown in fig. 1-4, a fixed shaft 115 is fixed in the workbench 1, a first bevel gear 114 is rotatably arranged on the fixed shaft 115, second bevel gears 119 with the same number as the first screw rods 113 are meshed on the first bevel gear 114, the first screw rods 113 are fixedly connected with the second bevel gears 119, the second bevel gears 119 are driven to rotate by rotating the first bevel gears 114, and the second bevel gears 119 drive the first screw rods 113 to rotate. The bottom of the first bevel gear 114 is fixed with a second gear 117, one side of the second gear 117 is meshed with a first gear 116, a first transmission shaft 118 is fixed on the first gear 116, the first transmission shaft 118 is used for externally connecting a transmission device to drive the first transmission shaft to rotate, the first transmission shaft 118 drives the first gear 116 to rotate, and the first gear 116 drives the second gear 117 to enable the first bevel gear 114 to rotate.
As shown in fig. 5-10, the winding mechanism 2 is mounted on the rotating rod 104, the winding mechanism 2 includes a housing 201, and a first support rod 210 and a second support rod 211 are fixed in the housing 201, so as to play a role of fixing and supporting. The first support rod 210 and the second support rod 211 are inserted with a second transmission shaft 209, and one end of the second transmission shaft 209 away from the unidirectional gear 207 is used for externally connecting a driving device to drive the second transmission shaft 209 to rotate. One end of the second transmission shaft 209 is provided with a one-way gear 207, and when the second transmission shaft 209 rotates clockwise, the one-way gear 207 is driven to rotate, and when the second transmission shaft 209 rotates anticlockwise, the one-way gear 207 is not driven to rotate. A gear ring 203 is rotatably provided on the housing 201, and a pair of third gears 208 is provided between the gear ring 203 and the one-way gear 207.
As shown in fig. 5-10, a pair of second slide rails 215 are fixed in the housing 201, a second slide block 216 is slidably disposed on each of the pair of second slide rails 215, a telescopic rod 205 is fixed on the second slide block 216, and the telescopic rod 205 is clamped in the second slide rails 215 through the second slide block 216, so that on one hand, the telescopic rod 205 is prevented from rotating, and on the other hand, the telescopic rod 205 is enabled to move back and forth along the gauge of the second slide rail 215. A wire winding roller 202 is installed outside the housing 201 for placing copper wires.
As shown in fig. 5 to 10, a pair of third gears 208 are respectively engaged with the gear ring 203 and the unidirectional gear 207, and the third gears 208 are rotatably disposed on the first support bar 210, preventing the third gears 208 from being displaced, so that the third gears 208 are rotated only. The unidirectional gear 207 is fixed with a winding head 204, the second transmission shaft 209 drives the unidirectional gear 207 to rotate, and the unidirectional gear 207 drives the gear ring 203 to rotate through the third gear 208. One end of the telescopic rod 205, which is arranged outside the shell 201, is fixed with a guide plate 206 for guiding the copper wire to be wound on the stator core, one end of the telescopic rod 205, which is far away from the guide plate 206, is fixed with a second screw 214, and the second screw 214 drives the guide plate 206 to move back and forth through the telescopic rod 205.
As shown in fig. 5 to 10, the second screw 214 is connected with a threaded sleeve gear 212 in a threaded manner, the threaded sleeve gear 212 is rotatably disposed on the second support rod 211, so that the threaded sleeve gear 212 is prevented from being shifted, the threaded sleeve gear 212 can only rotate, the telescopic rod 205 is prevented from rotating due to the fact that the telescopic rod 205 is clamped in the second slide rail 215 through the second sliding block 216, the second screw 214 is prevented from rotating, when the threaded sleeve gear 212 rotates, the threaded sleeve gear 212 is limited on the second support rod 211, the second screw 214 is driven to move back and forth when the threaded sleeve gear 212 rotates, the second screw 214 drives the telescopic rod 205 to move back and forth, a fourth gear 213 is fixed on the second transmission shaft 209, the fourth gear 213 is meshed with the pair of threaded sleeve gears 212, and the second transmission shaft 209 drives the fourth gear 213 to rotate, and the fourth gear 213 drives the threaded sleeve gear 212 to rotate.
As shown in fig. 10-12, a fixed head 221 is fixed at one end of the second transmission shaft 209 disposed in the unidirectional gear 207, and the second transmission shaft 209 drives the fixed head 221 to rotate. The fixing head 221 is provided with a clamping block groove 220 for installing the clamping block 218, the clamping block 218 is rotationally arranged in the clamping block groove 220, and the clamping block 218 is used for clamping the unidirectional gear 207. The unidirectional gear 207 is provided with a clamping groove 217, a clamping block 218 is clamped in the clamping groove 217, when the second transmission shaft 209 rotates clockwise, the clamping block 218 is clamped in the clamping groove 217, the second transmission shaft 209 drives the unidirectional gear 207 to rotate through the fixing head 221, when the second transmission shaft 209 rotates anticlockwise, the unidirectional gear 207 pushes the clamping block 218 into the clamping block groove 220, the second transmission shaft 209 does not drive the unidirectional gear 207 to rotate, a second spring 219 is fixed between the clamping block 218 and the inner wall of the clamping block groove 220, and the clamping block 218 is pushed into the clamping groove 217 by the elastic force provided by the second spring 219.
The working principle is that before the device is used, the first transmission shaft 118 and the second transmission shaft 209 are externally connected with a driving device for driving the driving device to rotate, the lifting rod 120 is externally connected with a lifting device for driving the lifting device to lift up and down, and the rotating rod 104 is externally connected with a rotating handle or a stepping motor; firstly, a stator to be wound is placed on a placement block 111, then a driving device at a first transmission shaft 118 is started to drive the first transmission shaft 118 to rotate, the first transmission shaft 118 drives a first gear 116 to rotate, the first gear 116 drives a second gear 117 to enable a first bevel gear 114 to rotate, the first bevel gear 114 drives a second bevel gear 119 to rotate, the second bevel gear 119 provides a driving mechanism for driving a first screw 113 to rotate so as to enable a first sliding block 107 to move back and forth on a first sliding rail 106, the first sliding block 107 drives a clamping block 110 to move towards the stator through a fixed block 108 to clamp the stator, and then the driving device at the first transmission shaft 118 is closed;
Then, starting a lifting device at the lifting rod 120 to drive the moving block 102 to move downwards, driving a winding mechanism 2 below the rotating rod 104 to move downwards through the cross arm 103 by the moving block 102, closing the lifting device after the winding mechanism 2 descends to a proper winding position, then starting a driving device connected with a second transmission shaft 209 to drive the second transmission shaft 209 to rotate anticlockwise, driving a fourth gear 213 to rotate anticlockwise by the second transmission shaft 209, driving a threaded sleeve gear 212 to rotate by the fourth gear 213, driving the threaded sleeve gear 212 to drive a second screw 214 to move forwards, driving a telescopic rod 205 to move forwards by the second screw 214, driving a guide plate 206 to move towards a stator by the telescopic rod 205, closing the driving device after the telescopic rod is moved to the inner side position of a stator tooth pole, and driving a unidirectional gear 207 not to rotate by the anticlockwise rotation of the second transmission shaft 209, so that the guide plate 206 is only sent to the inner side position of the stator tooth pole and copper wire winding is not carried out;
Then, a driving device connected with the second transmission shaft 209 is started, the second transmission shaft 209 is driven to rotate clockwise, the second transmission shaft 209 drives the unidirectional gear 207 to rotate when rotating clockwise, the unidirectional gear 207 drives the third gear 208 to rotate, the gear ring 203 rotates, the gear ring 203 drives the winding head 204 to wind the stator teeth, meanwhile, the second transmission shaft 209 also drives the fourth gear 213 to rotate, the fourth gear 213 drives the thread bush gear 212 to rotate, the thread bush gear 212 drives the second screw 214 to move backwards, the second screw 214 drives the telescopic rod 205 to move backwards, and the telescopic rod 205 drives the guide plate 206 to slowly move backwards, so that the winding head 204 uniformly winds the copper wires from inside to outside when winding the stator teeth.
Finally, the rotating rod 104 is rotated, so that the rotating rod 104 drives the winding mechanism 2 to rotate, and copper wires are wound on the stator teeth at other positions of the stator.
It will be evident to those skilled in the art that the utility model is not limited to the details of the foregoing illustrative embodiments, and that the present utility model may be embodied in other specific forms without departing from the spirit or essential characteristics thereof. The present embodiments are, therefore, to be considered in all respects as illustrative and not restrictive, the scope of the utility model being indicated by the appended claims rather than by the foregoing description, and all changes which come within the meaning and range of equivalency of the claims are therefore intended to be embraced therein. Any reference sign in a claim should not be construed as limiting the claim concerned.
Furthermore, it should be understood that although the present disclosure describes embodiments, not every embodiment is provided with a separate embodiment, and that this description is provided for clarity only, and that the disclosure is not limited to the embodiments described in detail below, and that the embodiments described in the examples may be combined as appropriate to form other embodiments that will be apparent to those skilled in the art.

Claims (10)

1. A winding apparatus for manufacturing an electric motor, comprising:
The workbench is fixedly provided with a pair of first sliding rods, a pair of moving blocks are arranged on the first sliding rods in a sliding manner, a cross arm is fixed on one side of the moving blocks, lifting rods are fixed below the moving blocks, a rotating rod is inserted into one end, far away from the moving blocks, of the cross arm, a clamping table is arranged on the workbench, a plurality of first sliding rails are cut on the clamping table, a plurality of first sliding blocks are arranged on the first sliding rails in a sliding manner, and first screw rods are connected to the first sliding blocks in a threaded manner;
The winding mechanism is installed on the bull stick, the winding mechanism includes the shell, shell internal fixation has first bracing piece, second bracing piece, it is equipped with the second transmission shaft to insert on first bracing piece and the second bracing piece, one-way gear is installed to the one end of second transmission shaft, it is provided with the gear ring to rotate on the shell, be provided with a pair of third gear between gear ring and the one-way gear, the shell internal fixation has a pair of second slide rail, a pair of all slide is provided with the second slider on the second slide rail, be fixed with the telescopic link on the second slider, the winding roller is installed outward to the shell.
2. The winding device for motor manufacturing according to claim 1, wherein a fixing block is fixed on the first sliding block, a pair of second sliding rods are inserted on the fixing block, and clamping blocks are fixed at one ends of the pair of second sliding rods.
3. The winding device for motor manufacturing according to claim 2, wherein a first spring is installed between the clamping block and the fixing block, the placing block is fixed on the clamping block, and one end of the pair of second sliding rods far away from the clamping block is connected.
4. The winding device manufactured by the motor according to claim 1, wherein a fixed shaft is fixed in the workbench, a first bevel gear is rotatably arranged on the fixed shaft, second bevel gears with the same number as the first screw rods are meshed on the first bevel gear, and the first screw rods are fixedly connected with the second bevel gears.
5. The motor winding apparatus according to claim 4, wherein a second gear is fixed to a bottom of the first bevel gear, a first gear is engaged to one side of the second gear, and a first transmission shaft is fixed to the first gear.
6. The winding device for motor manufacturing according to claim 1, wherein a pair of the third gears are respectively engaged with the gear ring and the unidirectional gears, the third gears are rotatably disposed on the first support rod, and the unidirectional gears are fixed with winding heads.
7. The winding device for motor manufacturing according to claim 1, wherein the telescopic rod is fixed with a guide plate at one end outside the housing, and a second screw is fixed at one end of the telescopic rod away from the guide plate.
8. The motor winding device according to claim 7, wherein the second screw is threaded with a threaded sleeve gear, the threaded sleeve gear is rotatably disposed on the second support rod, a fourth gear is fixed on the second transmission shaft, and the fourth gear and the pair of threaded sleeve gears are engaged with each other.
9. The winding device for motor manufacturing according to claim 1, wherein a fixing head is fixed at one end of the second transmission shaft arranged in the unidirectional gear, a fixture block groove is cut on the fixing head, and a fixture block is rotationally arranged in the fixture block groove.
10. The winding device for motor manufacturing according to claim 9, wherein the unidirectional gear is provided with a clamping groove, the clamping block is clamped in the clamping groove, and a second spring is fixed between the clamping block and the inner wall of the clamping block groove.
CN202520284911.5U 2025-02-21 2025-02-21 Winding device for motor manufacturing Active CN223744548U (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
CN202520284911.5U CN223744548U (en) 2025-02-21 2025-02-21 Winding device for motor manufacturing

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
CN202520284911.5U CN223744548U (en) 2025-02-21 2025-02-21 Winding device for motor manufacturing

Publications (1)

Publication Number Publication Date
CN223744548U true CN223744548U (en) 2025-12-30

Family

ID=98168088

Family Applications (1)

Application Number Title Priority Date Filing Date
CN202520284911.5U Active CN223744548U (en) 2025-02-21 2025-02-21 Winding device for motor manufacturing

Country Status (1)

Country Link
CN (1) CN223744548U (en)

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