Automatic wire winding device
By combining the control mechanism and the protection mechanism, the problems of angle adjustment and environmental adaptability of the automatic wire winding device are solved, achieving uniform winding of the wire and protection of the winding drum, thus improving work efficiency and safety.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-21
- Publication Date
- 2026-04-07
AI Technical Summary
Existing automatic wire winding devices require manual angle adjustment during operation to prevent tangling and breakage, and are difficult to protect the winding drum in different environments, affecting work efficiency and safety.
A wire control mechanism ensures that the wire is evenly wound on the surface of the take-up drum, and a protection mechanism protects the upper part of the take-up drum when the motor starts, thereby improving safety and resource utilization.
It achieves uniform winding of the wire on the surface of the winding drum, avoids winding and breakage, improves work efficiency, and enhances the safety and ease of use of the winding drum through a protective mechanism.
Smart Images

Figure CN224091345U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to wire winding technical field, concretely relates to a wire automatic winding device. BACKGROUND
[0002] The wire winding technology is a kind of technology for arranging and fixing electric wire or cable, its purpose is to ensure that electric wire is arranged neatly, reduces manual operation, improves production efficiency and product quality, and the application field of wire winding technology is very wide, covers cable production, electric power transmission and distribution, new energy automobile charging pile, industrial automation, test equipment and multiple other industries;
[0003] The existing wire automatic winding device often needs staff to adjust the angle of wire winding when working to avoid winding and breakage of electric wire outside winding drum, which affects work efficiency, and the environment faced by winding drum is different due to different use sites, and the existing winding device is difficult to provide protection for winding drum, thereby causing the damage of winding drum by external force, and affecting work progress. UTILITY MODEL CONTENTS
[0004] The utility model discloses a wire automatic winding device, which can uniformly wind electric wire in the wire outlet machine on the surface of the winding drum, improve the subsequent use effect, and drive the protection mechanism to protect the upper half of the winding drum after the control wire mechanism is started, improve the resource utilization rate, and increase the safety of the winding drum during work.
[0005] The utility model realizes the above-mentioned purposes through the following technical schemes:
[0006] A wire automatic winding device, comprising a bottom plate, a wire outlet machine is fixedly arranged on the top side of the bottom plate, a supporting mechanism is fixedly arranged on the middle of the top side of the bottom plate, supporting plates are fixedly arranged on the front and back of the side of the top side of the bottom plate away from the wire outlet machine, and a supporting plate is fixedly arranged between the supporting mechanism and the two supporting plates on the top side of the bottom plate.
[0007] A winding drum is rotatably arranged between the two supporting plates, a control wire mechanism is fixedly arranged on the top side of the supporting mechanism, the control wire mechanism comprises a motor, a wiring ring and a sliding rod, a transmission rod is fixedly arranged on the output end of the motor, a second connecting ring is fixedly arranged on one side of the transmission rod, a rotating rod is rotatably arranged in the inner side of the second connecting ring, a limiting disc is fixedly arranged on the lower part of the rotating rod, and the height of the wiring ring is flush with the wire outlet of the wire outlet machine.
[0008] Furthermore, the support mechanism includes two clamping plates, a first slotted plate is fixedly disposed between the two clamping plates at the lower part, a horizontal plate is fixedly disposed between the two clamping plates at the middle part, a placement groove is formed in the middle of the top side of the first slotted plate, and a sliding groove is formed in the middle of the top side of the first slotted plate longitudinally.
[0009] Furthermore, a second slotted plate is slidably provided on the outer side of the rotating rod, a transverse sliding plate is fixedly provided on one side of the second slotted plate, a first fixing sleeve is fixedly provided on the lower part of the transverse sliding plate, and an inclined push plate is fixedly provided on one side of the first fixing sleeve.
[0010] Furthermore, a second fixing sleeve is fixedly provided on the top side of the transverse plate, and the second fixing sleeve is slidably disposed on the outside of the slide rod body, and the wiring ring is fixedly disposed on the top side of the second fixing sleeve.
[0011] Furthermore, the side of the inclined push plate away from the first fixed sleeve is an inclined plate.
[0012] Furthermore, a protective mechanism is rotatably provided between the two support plates. The protective mechanism includes an L-shaped sliding plate, a clamping ring, and a first connecting ring. A protective cover is fixedly provided between the clamping ring and the first connecting ring. The clamping ring and the first connecting ring are rotatably provided on the inner sides of the two support plates, respectively.
[0013] Furthermore, a transverse rack is fixedly provided on the top side of the L-shaped slide plate near the first connecting ring, and a half gear is fixedly provided on the body of the first connecting ring, with the transverse rack and the half gear meshing together.
[0014] Furthermore, the L-shaped sliding plate has a through slot running through its center, an extension plate is fixedly installed inside the slot, and a return spring is fixedly installed on one side of the extension plate.
[0015] Furthermore, a damping rod is fixedly installed on the side of the inner wall of the slot away from the extension plate, and the damping rod penetrates through the extension plate. The extension plate extends to the rear side and is fixedly installed on the front side of the receiving plate. An angled groove is opened on one side of the L-shaped slide plate.
[0016] Furthermore, an opening plate is fixedly provided on one of the rear sides of the two support plates and on both front sides of the receiving plate, and the L-shaped sliding plate is snapped and slidably disposed on the inner side of the opening plate.
[0017] In summary, the beneficial effects of this utility model are as follows: the wire control mechanism allows the wire to be wound around the outer surface of the take-up drum at different angles, so that the wire is evenly wound on the surface of the take-up drum, avoiding the wire from breaking due to tangling, improving work efficiency, and facilitating subsequent use.
[0018] At the same time, the control mechanism drives the protection mechanism, which improves energy utilization. The protective cover in the protection mechanism protects the upper part of the winding drum after the motor starts, thus improving the safety of the winding drum during operation. Attached Figure Description
[0019] 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.
[0020] Figure 1 This is a front view of the present invention;
[0021] Figure 2 This is an axonometric view of the present invention;
[0022] Figure 3 This is an axonometric view of the protective mechanism of this utility model after it has been separated;
[0023] Figure 4 This is a side view of the control wire mechanism of this utility model after separation;
[0024] Figure 5 This is an isometric view of the protection mechanism of this utility model;
[0025] Figure 6 This is an isometric view of the control mechanism of this utility model.
[0026] The annotations in the attached figures are explained as follows:
[0027] 1. Base plate; 2. Cable exiting mechanism; 3. Support mechanism; 301. Clamping plate; 302. Horizontal plate; 303. First slotted plate; 304. Placement slot; 305. Slide groove; 4. Receiving plate; 5. Support plate; 6. Protection mechanism; 601. L-shaped sliding plate; 602. Extension plate; 603. Damping rod; 604. Return spring; 605. Empty slot; 606. Transverse rack; 607. First connecting ring; 608. Half gear; 609. Clamping ring; 610. Protective cover; 611. Angled groove; 7. Cable control mechanism; 701. Motor; 702. Transmission rod; 703. Limiting plate; 704. Rotating rod; 705. Second connecting ring; 706. Second slotted plate; 707. Transverse plate; 708. First fixing sleeve; 709. Second fixing sleeve; 710. Wiring ring; 711. Angled push plate; 712. Slide rod; 8. Rewind drum; 9. Opening plate. Detailed Implementation
[0028] To make the objectives, technical solutions, and advantages of this utility model clearer, the technical solutions of this utility model will be described in detail below. Obviously, the described embodiments are only a part of the embodiments of this utility model, and not all of them. Based on the embodiments of this utility model, all other implementation methods obtained by those skilled in the art without creative effort are within the scope of protection of this utility model.
[0029] See Figures 1-4 As shown, this utility model provides an automatic wire winding device, including: a base plate 1, a wire feeder 2 fixedly mounted on the top side of the base plate 1, a support mechanism 3 fixedly mounted in the middle of the top side of the base plate 1, support plates 5 fixedly mounted at both the front and rear of the top side of the base plate 1 away from the wire feeder 2, a receiving plate 4 fixedly mounted at the rear between the support mechanism 3 and the two support plates 5 on the top side of the base plate 1, a winding drum 8 rotatably mounted between the two support plates 5, a wire control mechanism 7 fixedly mounted on the top side of the support mechanism 3, an opening plate 9 fixedly mounted on one of the rear sides of the two support plates 5 and on both front sides of the receiving plate 4, and a protection mechanism 6 rotatably mounted between the two support plates 5;
[0030] The above technical solution uses a base plate 1 to support the wire feeder 2, support mechanism 3, receiving plate 4, and two support plates 5, providing a working platform for wire winding. The wire feeder 2 controls the traction speed of the wire, changing the winding rate. The support mechanism 3 provides certain restrictions and support to the wire control mechanism 7. The wire control mechanism 7 changes the angle at which the wire is stored in the winding drum 8, improving the subsequent use effect and avoiding inconvenience caused by the wire being stored at the same angle. The protection mechanism 6 is driven by the wire control mechanism 7 to partially wrap the upper part of the operating winding drum 8, preventing foreign objects from getting mixed between the wires during the wire storage process, and protecting the winding drum 8 from damage. Multiple open plates 9 support the protection mechanism 6.
[0031] See Figure 6As shown, the control mechanism 7 includes a motor 701, a connecting ring 710, and a slide rod 712. A transmission rod 702 is fixedly mounted on the output end of the motor 701. A second connecting ring 705 is fixedly mounted on one side of the transmission rod 702. A rotating rod 704 is rotatably mounted inside the second connecting ring 705. A limit plate 703 is fixedly mounted on the lower part of the rotating rod 704. The connecting ring 710 is flush with the outlet of the cable exiting machine 2. A second slotted plate 706 is slidably mounted on the outer side of the rotating rod 704. A transverse sliding plate 707 is fixedly installed on one side of the slotted plate 706. A first fixing sleeve 708 is fixedly installed on the lower part of the transverse sliding plate 707. An inclined push plate 711 is fixedly installed on one side of the first fixing sleeve 708. A second fixing sleeve 709 is fixedly installed on the top side of the transverse sliding plate 707. The second fixing sleeve 709 is slidably installed on the outside of the slide rod 712. The connecting ring 710 is fixedly installed on the top side of the second fixing sleeve 709. The side of the inclined push plate 711 away from the first fixing sleeve 708 is an inclined plate.
[0032] In use, the motor 701 and the transmission rod 702 at the output end enable the motor 701 to directly drive the second connecting ring 705 and the rotating rod 704 inside the second connecting ring 705 after starting, thereby changing the angle of the rotating rod 704 and causing it to rotate inside the second slotted plate 706. This thrust drives the second slotted plate 706 to move laterally. The position of the rotating rod 704 is limited by the limiting plate 703. The rotating rod 704 and the second connecting ring 705 are rotatably connected, allowing the rotating rod 704 to rotate freely inside the second slotted plate 706, making the second slotted plate 706 easier to push. The second slotted plate 706 and the transverse sliding plate 707 are fixedly connected. When the second slotted plate 706 moves laterally, it also moves the transverse sliding plate 707, while the rotating rod 704 rotates in a ring along with the second connecting ring 705. The second slotted plate 706 reciprocates laterally, simultaneously moving the transverse plate 707 back and forth. Through the first fixed sleeve 708 in the transverse plate 707 and the inclined push plate 711 on one side of the first fixed sleeve 708, it contacts the protection mechanism 6, pushing the protection mechanism 6 towards the support plate 5. This protects and covers the upper part of the take-up drum 8. Through the second fixed sleeve 709 fixed on the top side of the transverse plate 707 and the wiring ring 710 on the top side of the second fixed sleeve 709, the wire in the wire feeder 2 passes directly through the wiring ring 710. When the transverse plate 707 moves, it moves the wiring ring 710 and the inner wire, changing the angle when the wire is taken in by the take-up drum 8, improving the uniformity of wire taking in, and facilitating subsequent use. The sliding rod 712 on the inner side of the second fixed sleeve 709 limits the sliding direction of the second fixed sleeve 709.
[0033] See Figure 4As shown, the support mechanism 3 includes two clamping plates 301. A first slotted plate 303 is fixedly disposed between the two clamping plates 301 at a lower position. A horizontal plate 302 is fixedly disposed between the two clamping plates 301 at a middle position. A placement groove 304 is opened in the middle of the top side of the first slotted plate 303. A sliding groove 305 is opened longitudinally in the middle of the top side of the first slotted plate 303.
[0034] In use, the first slotted plate 303 and the horizontal plate 302 are clamped and fixed by two clamping plates 301. The horizontal plate 302 is set above the first slotted plate 303. The placement groove 304 opened in the middle of the top side of the first slotted plate 303 and the sliding groove 305 opened in the middle of the top side of the horizontal plate 302 are used to place the motor 701 of the control line mechanism 7 and the horizontal moving plate 707.
[0035] See Figure 5 As shown, the protective mechanism 6 includes an L-shaped sliding plate 601, a clamping ring 609, and a first connecting ring 607. A protective cover 610 is fixedly disposed between the clamping ring 609 and the first connecting ring 607. The clamping ring 609 and the first connecting ring 607 are respectively rotatably disposed inside the two support plates 5. A transverse rack 606 is fixedly disposed on the top side of the L-shaped sliding plate 601 near the first connecting ring 607. A half gear 608 is fixedly disposed on the ring body of the first connecting ring 607. The transverse rack 606 and the half gear 608 are meshed together. The L-shaped slide plate 601 has a through slot 605 extending from front to back in the middle. An extension plate 602 is fixedly installed inside the slot 605. A return spring 604 is fixedly installed on one side of the extension plate 602. A damping rod 603 is fixedly installed on the inner wall of the slot 605 away from the extension plate 602, and the damping rod 603 passes through the extension plate 602. The extension plate 602 extends to the rear side and is fixedly installed on the front side of the receiving plate 4. An angled groove 611 is opened on one side of the L-shaped slide plate 601. The L-shaped slide plate 601 is snapped and slidably installed inside the opening plate 9.
[0036] In the above embodiment, the L-shaped slide plate 601 supports the subsequent structure and transmits power. The protective cover 610 between the clamping ring 609 and the first connecting ring 607 protects the upper part of the winding drum 8, preventing other debris from getting mixed in with the wires during the wire winding process and affecting the uniformity of the winding. The thrust received by the L-shaped slide plate 601 is transmitted to the first connecting ring 607 by the half gear 608 through the transverse gear, causing the first connecting ring 607 to rotate, thereby changing the angle of the protective cover 610. Thanks to the protection of the winding drum 8, and through the cooperation between the extension plate 602 and the return spring 604, the angled groove in the L-shaped slide plate 601... After being pushed by the inclined push plate 711, the L-shaped slide plate 601 is pushed back to its original position by the thrust of the return spring 604, so that the protective cover 610 is reset. At this time, the damping rod 603 passes through the extension plate 602. The resistance of the damping rod 603 slows down the speed at which the return spring 604 pushes the L-shaped slide plate 601 back, so as to slow down the reset speed of the protective cover 610. While the protective cover 610 is not reset, the inclined push plate 711 pushes the L-shaped slide plate 601 again through the angled groove 611, so that the protective cover 610 covers the take-up drum 8 again. This process is repeated so that the protective cover 610 rotates back and forth around the take-up drum 8, which makes it easier for the protective cover 610 to throw off the debris on the outside and keep the protective cover 610 clean.
[0037] Using the above structure, when the cable feeder 2 delivers the wire, the operator passes the wire through the connecting ring 710 and fixes it to the surface of the take-up drum 8. Then, the take-up drum 8 and motor 701 are started. During the winding process of the take-up drum 8, the transmission rod 702 at the output end of the motor 701 drives the second connecting ring 705 to rotate. As the second connecting ring 705 rotates, its diameter is larger than the length of the second slotted plate 706, thus supporting the second slotted plate 706. Simultaneously, the limiting disc 703 prevents the rotating rod 704 from falling off. When the second connecting ring 705 is driven to rotate by the transmission rod 702, the rotating rod 704 pushes the second slotted plate 706. The second slotted plate 706 slides inside, allowing it to move laterally. The second slotted plate 706 and the transverse sliding plate 707 are fixedly connected, and the transverse sliding plate 707 slides laterally inside the slide groove 305, while the slide groove 305 also restricts its sliding direction. During the transverse movement of the transverse sliding plate 707, the second fixed sleeve 709 drives the wiring ring 710 to move laterally, and the wiring ring 710 moves along with the wire. The rotating rod 704 continuously rotates inside the second slotted plate 706, causing the second slotted plate 706 to reciprocate, so that the wire wound in the winding drum 8 is wound at different angles, preventing the wire from being tangled in one place, which would lead to irregular winding and affect subsequent use.
[0038] During the lateral displacement of the transverse plate 707, the first fixing sleeve 708 located at the bottom of the plate and the inclined push plate 711 on one side of the first fixing sleeve 708, when the transverse plate 707 approaches the L-shaped slide plate 601, the inclined push plate 711 and the angled groove 611 on the rear side of the L-shaped slide plate 601 come into contact with each other. Through the push of the inclined surface, the entire L-shaped slide plate 601 is pushed towards the take-up drum 8. During the pushing of the L-shaped slide plate 601, the transverse rack 606 on the top side of the L-shaped slide plate 601 meshes with the half gear 608, causing the first connecting ring 607 to rotate, and the protective cover 610 is fastened to the top side of the take-up drum 8 to cover and protect the top side of the take-up drum 8. When the rotating rod 704 in the second slotted plate 706 rotates back to the middle of the inner wall, the second slotted plate 706 will move back until it is moved to the initial position. At this time, the transverse plate 707, with the inclined push plate 708, moves back towards the take-up drum 8. As the push plate 711 gradually moves away from the angled groove 611, the return spring 604 in the slot 605 pushes the extension plate 602 back. Because the damping rod 603 passes through the extension plate 602, the speed at which the return spring 604 pushes the extension plate 602 slows down. During the process of the return spring 604 pushing the extension plate 602 back to its original position, the transverse plate 707, through the angled push plate 711 and the angled groove 611, pushes the L-shaped slide plate 601 to one side. During this process, after the protective cover 610 covers the upper half of the winding drum 8, the L-shaped slide plate 601 is reset a certain distance, causing the protective cover 610 to reset a certain angle. As the L-shaped slide plate 601 is pushed back and covers again, the protective cover 610 reciprocates between full coverage and returning to a small angle, facilitating the removal of dust and dirt adhering to the outer surface, thus giving the protective cover 610 a certain self-cleaning function.
[0039] The above description is merely a specific embodiment of this utility model, but the protection scope of this utility model is not limited thereto. Any variations or substitutions that can be easily conceived by those skilled in the art within the technical scope disclosed in this utility model should be included within the protection scope of this utility model. Therefore, the protection scope of this utility model should be determined by the protection scope of the claims.
Claims
1. An automatic wire winding device, characterized in that, include: A base plate (1) is provided with a cable outlet machine (2) fixedly installed on the top side of the base plate (1). A support mechanism (3) is fixedly installed in the middle of the top side of the base plate (1). Support plates (5) are fixedly installed at both the front and back on the side of the top side of the base plate (1) away from the cable outlet machine (2). A receiving plate (4) is fixedly installed at the rear between the support mechanism (3) on the top side of the base plate (1) and the two support plates (5). A winding drum (8) is rotatably arranged between the two support plates (5). A wire control mechanism (7) is fixedly arranged on the top side of the support mechanism (3). The wire control mechanism (7) includes a motor (701), a connecting ring (710), and a slide rod (712). A transmission rod (702) is fixedly arranged at the output end of the motor (701). A second connecting ring (705) is fixedly arranged on one side of the transmission rod (702). A rotating rod (704) is rotatably arranged inside the second connecting ring (705). A limit plate (703) is fixedly arranged on the lower part of the rotating rod (704). The connecting ring (710) and the wire outlet of the wire output machine (2) are at the same height.
2. The automatic wire winding device according to claim 1, characterized in that: The support mechanism (3) includes two clamping plates (301), a first slotted plate (303) is fixedly disposed between the two clamping plates (301) at a lower position, a horizontal plate (302) is fixedly disposed between the two clamping plates (301) at a middle position, a placement groove (304) is provided in the middle of the top side of the first slotted plate (303), and a sliding groove (305) is provided longitudinally in the middle of the top side of the first slotted plate (303).
3. The automatic wire winding device according to claim 1, characterized in that: A second slotted plate (706) is slidably provided on the outer side of the rotating rod (704). A transverse sliding plate (707) is fixedly provided on one side of the second slotted plate (706). A first fixing sleeve (708) is fixedly provided on the lower part of the transverse sliding plate (707). An inclined push plate (711) is fixedly provided on one side of the first fixing sleeve (708).
4. The automatic wire winding device according to claim 3, characterized in that: A second fixing sleeve (709) is fixedly provided on the top side of the transverse plate (707). The second fixing sleeve (709) is slidably provided on the outside of the rod body of the slide rod (712). The wiring ring (710) is fixedly provided on the top side of the second fixing sleeve (709).
5. The automatic wire winding device according to claim 3, characterized in that: The side of the inclined push plate (711) away from the first fixed sleeve (708) is an inclined plate.
6. The automatic wire winding device according to claim 1, characterized in that: A protective mechanism (6) is rotatably arranged between the two support plates (5). The protective mechanism (6) includes an L-shaped sliding plate (601), a clamping ring (609), and a first connecting ring (607). A protective cover (610) is fixedly arranged between the clamping ring (609) and the first connecting ring (607). The clamping ring (609) and the first connecting ring (607) are respectively rotatably arranged inside the two support plates (5).
7. The automatic wire winding device according to claim 6, characterized in that: A transverse rack (606) is fixedly provided on the top side of the L-shaped slide plate (601) near the first connecting ring (607), and a half gear (608) is fixedly provided on the ring body of the first connecting ring (607). The transverse rack (606) and the half gear (608) are meshed together.
8. The automatic wire winding device according to claim 6, characterized in that: The L-shaped sliding plate (601) has a through slot (605) running through the middle. An extension plate (602) is fixedly installed inside the slot (605), and a return spring (604) is fixedly installed on one side of the extension plate (602).
9. The automatic wire winding device according to claim 8, characterized in that: A damping rod (603) is fixedly installed on the side of the inner wall of the slot (605) away from the extension plate (602), and the damping rod (603) penetrates the extension plate (602). The extension plate (602) extends to the rear side and is fixedly installed on the front side of the receiving plate (4). An angled groove (611) is opened on one side of the L-shaped sliding plate (601).
10. The automatic wire winding device according to claim 6, characterized in that: An opening plate (9) is fixedly provided on one of the rear sides of the two support plates (5) and on both front sides of the receiving plate (4). The L-shaped sliding plate (601) is snapped and slidably disposed on the inner side of the opening plate (9).