An integrated core-spinning mechanism that incorporates a peeling mechanism inside the core-spinning mechanism

CN224702111UActive Publication Date: 2026-09-01DONGGUAN XINYONGTENG AUTOMATION EQUIP CO LTD
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Patent Information

Application Number
CN202521859789.6
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-08-29
Publication Date
2026-09-01
Estimated Expiration
2035-08-29

AI Technical Summary

Technical Problem

目前市面上的存在如下问题:目前的线材成型机剥皮机构,其剥皮机构一般设置于机身的尾部末端,由此导致送线机构到转芯的距离非常远,则线材在加工过程中经过了较长的输送距离,从而降低了线材的加工精度;

Benefits of technology

[0010] Compared with existing technologies, the advantages of this utility model are as follows: This utility model integrates the stripping mechanism inside the rotating core into a single rotating core mechanism. By setting up a rotating core body, an auxiliary wire exit module, a stripping module, and a stripping drive mechanism, it achieves efficient stripping of wire materials. The auxiliary wire exit module, located inside the rotating core body, stabilizes and guides the wire to exit smoothly, improving the accuracy of wire exit. The stripping module is directly fitted onto the auxiliary wire exit module to effectively strip the wire. The externally located stripping drive mechanism drives the stripping module to rotate, thereby enhancing the stripping effect and adaptability. The overall structure is compact, and the modular design facilitates maintenance and replacement. By placing the stripping mechanism inside the rotating core, the wire feeding mechanism only needs to deliver the wire to the stripping mechanism inside the rotating core to complete the stripping process, thus greatly shortening the travel distance and reducing the impact on the wire processing accuracy.

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Abstract

This utility model relates to the field of wire forming machine technology, and discloses an integrated core-stripping mechanism with a stripping mechanism set inside the core. The core includes a core body, inside which is a stripping module for stripping wire. The core body also has an external stripping drive mechanism for rotating the stripping module. By configuring the core body, stripping module, and stripping drive mechanism, efficient stripping of wire materials is achieved. The stripping module is directly mounted on an auxiliary wire output module for effective stripping of the wire. The external stripping drive mechanism drives the stripping module to rotate, thereby enhancing the stripping effect and adaptability. The wire material includes steel wire, copper wire, aluminum wire, iron wire, etc. The wire forming machine includes components of a spring machine, for example, a spring machine is used to process the wire.
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Description

Technical Field

[0001] This utility model relates to the field of wire forming machine technology, and specifically to an integrated core rotating mechanism in which the peeling mechanism is set inside the core rotating mechanism. Background Technology

[0002] The stripping mechanism of the wire forming machine is mainly used to remove the outer coating material of the wire for subsequent processing or inspection. The following problems exist in the current market: The current wire forming machine's stripping mechanism is generally located at the tail end of the machine body, which results in a very long distance between the wire feeding mechanism and the rotating core. As a result, the wire travels a long conveying distance during the processing, thereby reducing the processing accuracy of the wire. The technical problem to be solved by this utility model is to provide an integrated core-rotating mechanism in which the peeling mechanism is set inside the core. Utility Model Content

[0003] The technical problem this invention addresses is: providing a wire forming machine stripping mechanism that integrates an auxiliary wire feeding module and a stripping module; by configuring a rotating core body, an auxiliary wire feeding module, a stripping module, and a stripping drive mechanism, efficient stripping of wire materials is achieved. The auxiliary wire feeding module is located inside the rotating core body to stabilize and guide the wire feeding smoothly, improving feeding accuracy; the stripping module is directly fitted onto the auxiliary wire feeding module to effectively strip the wire; the externally located stripping drive mechanism drives the stripping module to rotate, thereby enhancing the stripping effect and adaptability. The overall structure is compact, and the modular design facilitates maintenance and replacement; by placing the stripping mechanism inside the rotating core, the wire feeding mechanism only needs to deliver the wire to the stripping mechanism inside the rotating core to complete the stripping process, thus greatly shortening the travel distance and reducing the impact on wire processing accuracy.

[0004] An integrated core-stripping mechanism with a stripping mechanism located inside the core includes a core-stripping body, characterized in that the core-stripping body has a stripping module for stripping the wire inside; and the core-stripping body also has a stripping drive mechanism for driving the stripping module to rotate outside.

[0005] Preferably, the peeling module includes a drive shaft; one end of the drive shaft is provided with a connector; the outer wall of the connector is formed with a plurality of grooves; each groove is provided with a peeling knife; and the outside of the connector is provided with a locking nut for fastening the peeling knife.

[0006] Preferably, the stripping drive mechanism includes a first drive motor; and the shaft of the first drive motor is connected to a first drive wheel; and the other end of the drive shaft is provided with a first driven wheel; and a first transmission belt is wound between the first drive wheel and the first driven wheel; the first drive motor drives the drive shaft to rotate, thereby driving the stripping knife to strip the wire.

[0007] Preferably, a drive shaft sleeve is fitted around the outside of the drive shaft; the drive shaft sleeve extends beyond the position of the peeling knife; a waste discharge hole is formed through the bottom of the drive shaft sleeve; a material receiving device is provided below the waste discharge hole; and a filter pipe is provided that communicates with the material receiving device.

[0008] Preferably, the rotating core body includes an auxiliary wire output module internally configured to assist in wire output; and a stripping module is sleeved on the auxiliary wire output module; the auxiliary wire output module has: a first drive shaft core rotatably disposed inside the drive shaft; and a second drive shaft core disposed at the end of the drive shaft sleeve near the stripping knife; and a gap exists between the first drive shaft core and the second drive shaft core; and the stripping knife is located within the gap; the wire is conveyed from the first drive shaft core to the stripping knife for stripping, and then output from the second drive shaft core.

[0009] Preferably, the second transmission shaft core is provided with a first gear fixedly connected to it on its exterior; and is provided with at least one second gear that drives the first gear to rotate; and is provided with a second drive motor that drives the second gear to rotate; the second transmission shaft core is rotated by the rotation of the second drive motor.

[0010] Compared with existing technologies, the advantages of this utility model are as follows: This utility model integrates the stripping mechanism inside the rotating core into a single rotating core mechanism. By setting up a rotating core body, an auxiliary wire exit module, a stripping module, and a stripping drive mechanism, it achieves efficient stripping of wire materials. The auxiliary wire exit module, located inside the rotating core body, stabilizes and guides the wire to exit smoothly, improving the accuracy of wire exit. The stripping module is directly fitted onto the auxiliary wire exit module to effectively strip the wire. The externally located stripping drive mechanism drives the stripping module to rotate, thereby enhancing the stripping effect and adaptability. The overall structure is compact, and the modular design facilitates maintenance and replacement. By placing the stripping mechanism inside the rotating core, the wire feeding mechanism only needs to deliver the wire to the stripping mechanism inside the rotating core to complete the stripping process, thus greatly shortening the travel distance and reducing the impact on the wire processing accuracy.

[0011] Additional aspects and advantages of this invention will be set forth in part in the description which follows, and in part will be obvious from the description, or may be learned by practice of the invention. Attached Figure Description

[0012] To more clearly illustrate the technical solutions in the embodiments of this utility model or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0013] Figure 1 This is a schematic diagram of the overall structure of this utility model.

[0014] Figure 2 This is a utility model Figure 1 Another structural diagram from another angle.

[0015] Figure 3 This is a utility model Figure 1 A schematic diagram of the internal structure.

[0016] Figure 4 This is a utility model Figure 3 A magnified structural diagram at point A.

[0017] Figure 5 This is a utility model Figure 3 A schematic diagram of the cross-sectional structure.

[0018] Figure 6 This is a utility model Figure 3 Another structural diagram from another angle.

[0019] In the diagram: 1. Rotating core body; 2. Auxiliary wire output module; 4. Stripping drive mechanism; 5. Drive shaft; 6. Connector; 7. Slot; 8. Stripping knife; 9. Locking nut; 10. First drive motor; 11. First driving wheel; 12. First driven wheel; 13. First drive belt; 14. Drive shaft sleeve; 15. Waste discharge hole; 16. Receiver; 17. Filter tube; 18. First drive shaft core; 19. Second drive shaft core; 20. First gear; 21. Second gear; 22. Second drive motor. Detailed Implementation

[0020] The technical solutions in the embodiments of this utility model will be clearly and completely described below. Obviously, the described embodiments are only some embodiments of this utility model, and not all embodiments. Based on the embodiments of this utility model, all other embodiments obtained by those skilled in the art without creative effort are within the protection scope of this utility model.

[0021] It should be noted that the terms "first," "second," etc., used in this utility model are used to distinguish similar objects and are not necessarily used to describe a specific order or sequence. It should be understood that such data can be interchanged where appropriate so that the embodiments of this disclosure described herein can be implemented in orders other than those illustrated or described herein. The implementation methods described in the following exemplary embodiments do not represent all implementation methods consistent with this disclosure.

[0022] Please see Figures 1-6 In this embodiment of the utility model, a rotating core integrated mechanism with a stripping mechanism disposed inside the rotating core includes a rotating core body 1. The rotating core body 1 is characterized in that a stripping module for stripping wires is disposed inside the rotating core body 1; and a stripping drive mechanism 4 for driving the stripping module to rotate is disposed outside the rotating core body 1.

[0023] Specifically, by setting up a rotating core body 1, a stripping module, and a stripping drive mechanism 4, efficient stripping of wire materials is achieved. The stripping module is directly mounted on the auxiliary wire output module 2 to effectively strip the wire; the externally set stripping drive mechanism 4 is used to drive the stripping module to achieve rotational movement, thereby enhancing the stripping effect and adaptability. The overall structure is compact, and the modular design facilitates maintenance and replacement; by setting the stripping mechanism inside the rotating core, the wire feeding mechanism only needs to send the wire to the stripping mechanism inside the rotating core to complete the stripping process, thereby greatly shortening the travel distance and reducing the impact on the wire processing accuracy. The wire materials include steel wire, copper wire, aluminum wire, iron wire, etc.; the wire forming machine includes components of a spring machine, for example, using a spring machine to process the wire.

[0024] Furthermore, the peeling module includes a drive shaft 5; and a connector 6 is provided at one end of the drive shaft 5; and a plurality of grooves 7 are formed inward on the outer wall of the connector 6; and peeling blades 8 are provided in each groove 7; and a locking nut 9 is provided on the outside of the connector 6 to fasten the peeling blades 8.

[0025] Specifically, the stripping action is achieved by rotating the connector 6 via the drive shaft 5. The connector 6 serves as the mounting body for the stripping blade 8, and its outer wall has multiple inwardly formed grooves 7 for precisely positioning the stripping blade 8, thus ensuring the stability and consistency of the stripping operation. Each groove 7 contains a stripping blade 8 for cutting the wire sheath. A locking nut 9 on the outside of the connector 6 secures the stripping blade 8, preventing it from loosening or shifting during high-speed rotation. The overall structural design is reasonable, facilitating the replacement and maintenance of the stripping blade 8, while also enhancing the safety and reliability of the stripping process.

[0026] Furthermore, the stripping drive mechanism 4 includes a first drive motor 10; and the shaft of the first drive motor 10 is connected to a first drive wheel 11; and the other end of the transmission shaft 5 is provided with a first driven wheel 12; and a first transmission belt 13 is wound between the first drive wheel 11 and the first driven wheel 12; the first drive motor 10 drives the transmission shaft 5 to rotate, thereby driving the stripping knife 8 to strip the wire.

[0027] Specifically, the stripping drive mechanism 4 adopts a belt drive structure, with the first drive motor 10 as the power source. Its shaft is connected to the first drive pulley 11, and power is transmitted through the first drive belt 13 to the first driven pulley 12 at one end of the drive shaft 5, thereby driving the drive shaft 5 to rotate. The rotation of the drive shaft 5 further drives the stripping blade 8 mounted on the connector 6 to perform a rotary stripping operation on the wire. This structure features smooth transmission, low noise, and simple maintenance, and can effectively improve stripping efficiency and processing consistency. It is suitable for automated wire forming machine processing equipment that performs continuous, high-speed stripping of wire.

[0028] Furthermore, a drive shaft sleeve 14 is sleeved on the outside of the drive shaft 5; and the drive shaft sleeve 14 extends beyond the position of the peeling knife 8; and a waste discharge hole 15 is formed through the bottom of the drive shaft sleeve 14; and a material receiving device 16 is provided below the waste discharge hole 15; and a filter pipe 17 is provided that communicates with the material receiving device 16.

[0029] Specifically, by attaching a drive shaft sleeve 14 to the outside of the drive shaft 5, the structural stability and safety during the peeling process are effectively improved. Simultaneously, the drive shaft sleeve 14 extends and covers the area of ​​the peeling blade 8, helping to protect against flying debris generated during peeling. The waste discharge hole 15 at its bottom allows for timely discharge of peeled insulation, preventing accumulation and improving work efficiency. Below the waste discharge hole 15 is a material receiver 16 for centralized collection of waste materials, facilitating subsequent processing or cleaning. Furthermore, the material receiver 16 is connected to a filter pipe 17, which filters out fine debris or impurities generated during peeling, thereby maintaining a clean environment around the equipment.

[0030] Furthermore, the rotating core body 1 includes an auxiliary output module 2 internally configured to assist in the output of the wire; and a stripping module is sleeved on the auxiliary output module 2; the auxiliary output module 2 has: a first drive shaft core 18 rotatably disposed inside the drive shaft 5; and a second drive shaft core 19 disposed at the end of the drive shaft sleeve 14 near the stripping knife 8; and a gap exists between the first drive shaft core 18 and the second drive shaft core 19; and the stripping knife 8 is located within the gap; the wire is conveyed from the first drive shaft core 18 to the stripping knife 8 for stripping, and then output from the second drive shaft core 19.

[0031] Specifically, the auxiliary wire output module 2 is installed inside the rotating core body 1 to stabilize and guide the wire out smoothly, improving the accuracy of wire output. This auxiliary wire output module 2 achieves stable wire feeding and precise guidance before and after stripping by setting a first drive shaft core 18 inside the drive shaft 5 and a second drive shaft core 19 at the end of the drive shaft sleeve 14. The first drive shaft core 18 guides the wire into the stripping area, while the second drive shaft core 19 continues to output the stripped wire. A gap is reserved between the two to provide operating space for the installation of the stripping blade 8 and the stripping action, allowing the wire to undergo stripping within the gap. This structure not only ensures the accuracy of the wire's position before and after stripping but also reduces uneven stripping or damage caused by offset or vibration, thus improving the overall stability and accuracy of the stripping operation. Preferably, a separate wire feeding device is also required to provide the power for wire feeding.

[0032] Furthermore, the second transmission shaft core 19 is provided with a first gear 20 fixedly connected to it; and at least one second gear 21 is provided to drive the first gear 20 to rotate; and a second drive motor 22 is provided to drive the second gear 21 to rotate; the second transmission shaft core 19 is rotated by the rotation of the second drive motor 22.

[0033] Specifically, the second drive motor 22 drives the second gear 21 to rotate, which in turn drives the first gear 20, which is fixedly connected to the second transmission shaft 19, to rotate. This causes the second transmission shaft 19 to rotate accordingly, thus realizing the output rotation function of the wire. This transmission structure adopts multi-stage gear transmission, which has the advantages of high torque transmission efficiency, fast response, and high control precision.

[0034] It will be apparent to those skilled in the art that this invention is not limited to the details of the exemplary embodiments described above, and that it can be implemented in other specific forms without departing from the spirit or essential characteristics of this invention. Therefore, the embodiments should be considered exemplary and non-limiting in all respects, and the scope of this invention is defined by the appended claims rather than the foregoing description. Thus, it is intended that all variations falling within the meaning and scope of equivalents of the claims be included within this invention.

Claims

1. A core-rotating integrated mechanism with a peeling mechanism disposed inside the core, comprising a core-rotating body (1), characterized in that, The inside of the rotating core body (1) is provided with a stripping module for stripping the wire; and the outside of the rotating core body (1) is also provided with a stripping drive mechanism (4) for driving the stripping module to rotate.

2. The integrated core-rotating mechanism according to claim 1, wherein the peeling mechanism is disposed inside the core-rotating mechanism, is characterized in that, The peeling module includes a drive shaft (5); and a connector (6) is provided at one end of the drive shaft (5); and the outer wall of the connector (6) is formed with a number of slots (7); and peeling blades (8) are provided in each slot (7); and a locking nut (9) is provided on the outside of the connector (6) to fasten the peeling blades (8).

3. The integrated core-rotating mechanism according to claim 2, wherein the peeling mechanism is disposed inside the core-rotating mechanism, is characterized in that, The stripping drive mechanism (4) includes a first drive motor (10); the shaft of the first drive motor (10) is connected to a first drive wheel (11); the other end of the transmission shaft (5) is provided with a first driven wheel (12); and a first transmission belt (13) is wound between the first drive wheel (11) and the first driven wheel (12); the first drive motor (10) drives the transmission shaft (5) to rotate, thereby driving the stripping knife (8) to strip the wire.

4. The integrated core-rotating mechanism according to claim 2, wherein the peeling mechanism is disposed inside the core-rotating mechanism, is characterized in that, A drive shaft sleeve (14) is sleeved on the outside of the drive shaft (5); and the drive shaft sleeve (14) extends beyond the position of the peeling knife (8); and a waste discharge hole (15) is formed through the bottom of the drive shaft sleeve (14); and a material receiving device (16) is provided below the waste discharge hole (15); and a filter pipe (17) is provided that communicates with the material receiving device (16).

5. A core-rotating integrated mechanism according to claim 2, wherein the peeling mechanism is disposed inside the core, characterized in that, The rotating core body (1) includes an auxiliary wire output module (2) internally provided for assisting wire output; and a stripping module is sleeved on the auxiliary wire output module (2); the auxiliary wire output module (2) has: a first transmission shaft core (18) rotatably provided inside the transmission shaft (5); and a second transmission shaft core (19) provided at the end of the transmission shaft sleeve (14) near the stripping knife (8); and there is a gap between the first transmission shaft core (18) and the second transmission shaft core (19); and the stripping knife (8) is located in the gap; the wire is conveyed from the first transmission shaft core (18) to the stripping knife (8) for stripping, and then output from the second transmission shaft core (19).

6. A core-rotating integrated mechanism according to claim 2, wherein the peeling mechanism is disposed inside the core, is characterized in that, The second transmission shaft core (19) is provided with a first gear (20) fixedly connected to it; and at least one second gear (21) is provided to drive the first gear (20) to rotate; and a second drive motor (22) is provided to drive the second gear (21) to rotate; the second transmission shaft core (19) is rotated by the rotation of the second drive motor (22).