Winding equipment for copper flat wire processing workshop
By introducing components such as pressure rollers and servo motors into the winding equipment, the problem of loose winding tape during the winding and wrapping process of copper flat wire was solved, and the guiding and rolling shaping of copper flat wire was realized, thereby improving the winding and wrapping effect and efficiency.
Patent Information
- Application Number
- CN202511697173.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-11-19
- Publication Date
- 2026-02-06
AI Technical Summary
The existing winding equipment in copper flat wire processing workshops lacks guiding and shaping structures when winding and wrapping the processed and cooled copper flat wire, resulting in loose wrapping tape and reduced winding and wrapping effect.
The winding equipment, which includes mounting components, winding components, and locking components, uses several pressure rollers to roll the copper flat wire on both sides and the top surface. Combined with the adjustment of the servo motor and the threaded rod, the copper flat wire is guided and rolled to shape, ensuring the uniformity of the winding process.
It effectively prevents the wrapping tape from loosening on the copper flat wire, improves the wrapping effect and efficiency, and ensures that the copper flat wire maintains a uniform flat shape during the wrapping process.
Smart Images

Figure CN121483772A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of copper flat wire processing and winding technology, and more specifically, to a winding device for use in copper flat wire processing workshops. Background Technology
[0002] During the processing of copper flat wires in cables, a layer of wrapping tape (common wrapping tape materials include mica tape, cotton yarn tape, polyester tape, and polyethylene tape) needs to be wrapped around the surface of the copper flat wire after it has been processed and cooled using a winding equipment. This provides initial protection for the copper flat wire and prevents the inner protective layer or insulation layer from being damaged by the armor during the armoring process in later processing.
[0003] Currently, the winding equipment in copper flat wire processing workshops on the market often has the following problems when winding and wrapping copper flat wires after they have been processed and cooled: In existing copper flat wire processing workshops, the winding equipment often lacks a certain guiding and shaping structure when winding and wrapping the processed and cooled copper flat wire. This leads to the wrapping tape becoming loose during the subsequent winding and wrapping operation, thus reducing the overall winding and wrapping effect. Summary of the Invention
[0004] To address the shortcomings of existing technologies, the present invention aims to provide a winding device for copper flat wire processing workshops that can guide and roll-shape copper flat wires during the winding and wrapping process, ensuring that the copper flat wires are in a relatively uniform flat shape after processing and cooling, thus guaranteeing the subsequent winding and wrapping effect.
[0005] To achieve the above objectives, the present invention provides the following technical solution: A winding device for a copper flat wire processing workshop includes an installation assembly. A copper flat wire is threaded through the installation assembly. A winding assembly is rotatably mounted on the installation assembly. The installation assembly includes a positioning component and two sliding components that slide relative to each other thereon. The positioning component includes a first tube with two symmetrical sliding grooves extending through its outer periphery. U-shaped side plates are fixed to the inner walls of both sliding grooves. A rectangular hole for sliding with the sliding components is extending through one outer side of each U-shaped side plate. A U-shaped frame is fixed inside the first tube, and a plurality of first sliding components slide through the U-shaped frame relative to its two outer sides. A rod, several first sliding rods, each with an L-shaped side plate fixed at one end, several first pressure rollers rotating around the bottom of the L-shaped side plate, several first push plates fixed at the other end of the first sliding rods, several first springs respectively sleeved on the several first sliding rods fixed between the L-shaped side plate and the first push plate, several second sliding rods sliding through the top of the two L-shaped side plates, a top plate fixed at the top of the several second sliding rods, an L-shaped plate fixed at the bottom of the several second sliding rods, several second pressure rollers rotating on the inner wall of the L-shaped plate, and several second springs sleeved on the second sliding rods fixed between the L-shaped side plate and the top plate.
[0006] The invention is further configured such that: a displacement plate is slidably mounted on the outer periphery of the first through-tube above the two U-shaped side plates, and a lower pressure plate that is in contact with the top plate is fixed at the bottom of the displacement plate inside the first through-tube; the sliding member includes a rectangular slider that slides inside the rectangular hole, and a second push plate that is in contact with the first push plate is fixed on one side of the rectangular slider inside the first through-tube.
[0007] The invention is further configured as follows: a slanted groove is formed through one side of the displacement plate outside the first through-tube; a U-shaped vertical plate is fixed to one outer side of the two U-shaped side plates; a telescopic cylinder is fixed to the top center of the U-shaped vertical plate; a moving plate is fixed to the telescopic end of the telescopic cylinder; a V-shaped plate is fixed to the side of the moving plate; two symmetrical slanted grooves are formed through one side of the V-shaped plate; a fixing plate is fixed to the side of the V-shaped plate; a lever that slides with the slanted groove is fixed to the side of the fixing plate; a mounting bracket is fixed to the outer periphery of the first through-tube below the two U-shaped side plates; a lever is fixed to one adjacent side of the rectangular slider; and the two levers slide with the two slanted grooves respectively.
[0008] The present invention is further configured such that: the winding assembly includes a fixing member rotating on the positioning member, a locking member sliding on the fixing member, and a wrapping member rotating on the fixing member; the end of the first through tube is connected to a second through tube, a servo motor is fixed inside the second through tube, and a main gear is fixed to the output shaft of the servo motor.
[0009] The present invention is further configured such that: the fixing member includes a rotating tube that rotates at the end of the second through tube, a gear ring that meshes with the main gear is fixed at the end of the rotating tube, a Z-shaped support plate is fixed on the outer circumferential side of the rotating tube, a transverse groove is opened on the side of the Z-shaped support plate, a threaded column is fixed on the side of the Z-shaped support plate below the transverse groove, an I-shaped slider is inserted into the transverse groove, and a limiting arc plate is fixed on the top of the I-shaped slider; The end of the main gear is fixed with a limiting circular plate that fits against the end of the gear ring.
[0010] The invention is further configured such that: a vertical rod is fixed at the bottom of the Z-shaped support plate, and two symmetrical vertical grooves are opened on the circumferential side of the vertical rod; the wrapping component includes a rotating sleeve that rotates on the vertical rod, a notched disc is fixed on the outer circumferential side of the rotating sleeve near the bottom, a limiting circular groove that slides with the limiting arc plate is opened on the outer circumferential side of the notched disc, a side baffle connected to the rotating sleeve is fixed on the top of the notched disc, and a threaded insertion post is fixed on the side of the side baffle.
[0011] The invention is further configured such that: the bottom of the rotating sleeve is connected to a rotating ring rotating on the vertical rod, and a plurality of first locking teeth are fixed on the circumferential side of the rotating ring; the locking component includes a conical ring sliding on the vertical rod, two symmetrical limiting vertical rails are fixed on the inner wall of the conical ring, the two limiting vertical rails slide with the two vertical grooves respectively, a locking ring is fixed on the top of the conical ring, a plurality of second locking teeth are fixed on the inner wall of the locking ring, and an elastic spring sleeved on the vertical rod is fixed between the bottom of the conical ring and the inner bottom of the Z-shaped support plate.
[0012] The invention is further configured such that: a first threaded rod is threaded and rotates through one side of the Z-shaped support plate below the threaded column, and a first sliding ball is fixed at the end of the first threaded rod; a limiting groove is provided on the outer wall of the conical ring to slide with the first sliding ball.
[0013] The invention is further configured such that: a second threaded rod is rotatably threaded through the top of the notched disc; a U-shaped positioning plate is fixed at the bottom of the notched disc; a rocker arm is rotatably mounted inside the U-shaped positioning plate; an arc-shaped rod that slides through the rocker arm is fixed on the side of the U-shaped positioning plate; an arc-shaped spring sleeved on the arc-shaped rod is fixed between the rocker arm and the U-shaped positioning plate; L-shaped side plates are fixed on opposite sides of the rocker arm; a first adjusting roller and a second adjusting roller are rotatably mounted between the two L-shaped side plates; and a second sliding ball that slides and fits against the rocker arm is fixed at the bottom of the second threaded rod.
[0014] The advantages of this invention are: 1. This invention guides and rolls the copper flat wire during the winding and wrapping process by the mutual contact and rolling action of several first pressure rollers and several second pressure rollers with the opposite sides and upper surface of the copper flat wire, ensuring that the copper flat wire can be in a relatively uniform flat shape when the winding and wrapping operation is carried out after the processing and cooling is completed, thus ensuring the winding and wrapping effect in the later stage.
[0015] 2. This invention rotates the second threaded rod, causing the second sliding ball fixed at the end of the second threaded rod to slide on the surface of the first adjusting roller. This causes the rocker to slide on the circumferential side of the arc-shaped rod, thereby stretching the arc-shaped spring connected and fixed between the rocker and the U-shaped positioning plate. This causes the rocker to slowly tilt upwards inside the U-shaped positioning plate, keeping the wrapping tape roll passing between the first and second adjusting rollers in a relatively taut state. This prevents the wrapping tape roll wrapped around the copper flat wire from loosening during the subsequent wrapping operation, thereby improving the wrapping effect throughout the process. Attached Figure Description
[0016] Figure 1 This is a schematic diagram of the structure of a winding device for a copper flat wire processing workshop according to the present invention.
[0017] Figure 2 This is a schematic diagram of the installation component of the present invention.
[0018] Figure 3 This is a schematic diagram of the winding assembly of the present invention.
[0019] Figure 4 This is a schematic diagram of the positioning component of the present invention.
[0020] Figure 5 This is a schematic diagram of the cross-sectional structure of the positioning component of the present invention.
[0021] Figure 6 This is a schematic diagram of the positioning component of the present invention from another angle.
[0022] Figure 7 This is a front view of the positioning component of the present invention.
[0023] Figure 8 This is a schematic diagram of the sliding component of the present invention.
[0024] Figure 9 This is a schematic diagram of the structure of the fastener of the present invention.
[0025] Figure 10 This is a side view of the fastener of the present invention.
[0026] Figure 11 This is a schematic diagram of the locking component of the present invention.
[0027] Figure 12 This is a top-view structural diagram of the locking component of the present invention.
[0028] Figure 13 This is a schematic diagram of the structure of the wrapping component of the present invention.
[0029] Figure 14 This is a front view of the wrapping component of the present invention.
[0030] In the diagram: 1. Mounting assembly; 2. Winding assembly; 3. Positioning component; 4. Sliding component; 5. Fixing component; 6. Locking component; 7. Wrapping component; 301. First through-tube; 302. Sliding groove; 303. U-shaped side plate; 304. Rectangular hole; 305. U-shaped frame; 306. First slide rod; 307. L-shaped side plate; 308. First pressure roller; 309. First push plate; 310. First spring; 311. Second slide rod; 312. Top plate; 313. 314. L-shaped plate; 315. Second pressure roller; 316. Second spring; 317. Displacement plate; 318. Lower pressure plate; 319. Inclined groove; 320. U-shaped vertical plate; 321. Telescopic cylinder; 322. Moving plate; 323. V-shaped plate; 324. Inclined groove; 325. Fixed plate; 326. Actuating rod; 327. Mounting bracket; 328. Second through-tube; 329. Servo motor; 330. Main gear; 401. Limiting circular plate; ; 402, Second push plate; 403, Lever; 501, Rotating tube; 502, Gear ring; 503, Z-shaped support plate; 504, Horizontal groove; 505, I-shaped slider; 506, Limiting arc plate; 507, Vertical rod; 508, Vertical groove; 509, First threaded rod; 510, First sliding ball; 511, Threaded column; 601, Conical ring; 602, Limiting vertical rail; 603, Locking ring; 604, Second locking tooth; 605, Elastic spring; 606. Limiting inclined groove; 701. Rotating sleeve; 702. Notched disc; 703. Limiting circular groove; 704. Side baffle; 705. Threaded insertion post; 706. Rotating ring; 707. First locking tooth; 708. Second threaded rod; 709. U-shaped positioning plate; 710. Rocker; 711. Arc rod; 712. Arc spring; 713. L-shaped side plate; 714. First adjusting roller; 715. Second adjusting roller; 716. Second sliding ball. Detailed Implementation
[0031] It should be noted that, unless otherwise specified, the embodiments and features described in this application can be combined with each other. The present invention will now be described in detail with reference to the accompanying drawings and embodiments.
[0032] It should be noted that, unless otherwise specified, all technical and scientific terms used in this application have the same meaning as commonly understood by one of ordinary skill in the art to which this application pertains.
[0033] In this invention, unless otherwise stated, the directional terms such as "up" and "down" generally refer to the directions shown in the accompanying drawings, or to the vertical, perpendicular, or gravitational direction; similarly, for ease of understanding and description, "left" and "right" generally refer to the left and right shown in the accompanying drawings; "inner" and "outer" refer to the inner and outer contours of each component itself, but the above directional terms are not intended to limit this invention.
[0034] Example 1, please refer to Figures 1-14 The present invention provides the following technical solution: a winding device for a copper flat wire processing workshop, specifically including a mounting assembly 1, a copper flat wire being threaded inside the mounting assembly 1, a winding assembly 2 rotating on the mounting assembly 1, the mounting assembly 1 including a positioning component 3 and two sliding components 4 sliding opposite to each other thereon; the positioning component 3 includes a first through tube 301, two symmetrical sliding grooves 302 penetrating through the outer periphery of the first through tube 301, a U-shaped side plate 303 fixed to the inner wall of each of the two sliding grooves 302, a rectangular hole 304 penetrating through one outer side of the U-shaped side plate 303 and sliding with the sliding component 3; a U-shaped frame 305 fixed inside the first through tube 301, a plurality of first sliding rods 306 sliding through each of the two opposite outer sides of the U-shaped frame 305, and a plurality of... One end of the first slide rod 306 is fixed with an L-shaped side plate 307. Several first pressure rollers 308 rotate around the bottom of the L-shaped side plate 307. The other end of the first slide rod 306 is fixed with a first push plate 309. Several first springs 310, which are respectively sleeved on the first slide rods 306, are fixed between the L-shaped side plate 307 and the first push plate 309. Several second slide rods 311 slide through the top of the two L-shaped side plates 307. A top plate 312 is fixed to the top of the several second slide rods 311. An L-shaped plate 313 is fixed to the bottom of the several second slide rods 311. Several second pressure rollers 314 rotate around the inner wall of the L-shaped plate 313. Several second springs 315, which are sleeved on the second slide rods 311, are fixed between the L-shaped side plate 307 and the top plate 312. Furthermore, a displacement plate 316 slides through the outer periphery of the first through-tube 301 above the two U-shaped side plates 303. A lower pressure plate 317, which is in contact with the top plate 312, is fixed to the bottom of the displacement plate 316 inside the first through-tube 301. The sliding member 4 includes a rectangular slider 401 that slides inside the rectangular hole 304. A second push plate 402, which is in contact with the first push plate 309, is fixed to one side of the rectangular slider 401 inside the first through-tube 301. A sloping groove 318 is formed through one side of the displacement plate 316 outside the first through-tube 301, and a U-shaped vertical plate 319 is fixed to one outer side of the two U-shaped side plates 303. A telescopic cylinder 320 is fixed at the top center of the U-shaped vertical plate 319. A movable plate 321 is fixed at the telescopic end of the telescopic cylinder 320. A V-shaped plate 322 is fixed on the side of the movable plate 321. Two symmetrical oblique grooves 323 are opened through one side of the V-shaped plate 322. A fixed plate 324 is fixed on the side of the V-shaped plate 322. A lever 325 that slides with the oblique groove 318 is fixed on the side of the fixed plate 324. An installation bracket 326 is fixed on the outer periphery of the first through tube 301 below the two U-shaped side plates 303. A lever 403 is fixed on one adjacent side of the rectangular slider 401. The two levers 403 slide with the two oblique grooves 323 respectively.
[0035] The specific application of this embodiment is as follows: When the copper flat wire, after processing and cooling, passes through the first through-tube 301 and the second through-tube 327, and before the subsequent winding and wrapping operation, the telescopic cylinder 320 is activated, causing the movable plate 321 fixed at the telescopic end of the telescopic cylinder 320 to move downward. This causes the V-shaped plate 322 fixed on the side of the movable plate 321 and the fixing plate 324 on the side of the V-shaped plate 322 to move downward synchronously, so that the two oblique grooves 323 through-cut on one side of the V-shaped plate 322 and the fixing plate 324 are fixed downward. The actuating rod 325 fixed to the side of plate 324 slides synchronously on the two actuating rods 403 and the actuating rod 325, respectively, causing the two sliding parts 4 to move closer to each other inside the two rectangular holes 304, and at the same time causing the lower pressure plate 317 fixed to the bottom of the displacement plate 316 to move downward, so that the two L-shaped side plates 307 move closer to each other synchronously inside the U-shaped frame 305, thereby compressing the several first springs 310 fixedly connected between the L-shaped side plates 307 and the first push plate 309, until the two L-shaped side plates 307... The first pressure rollers 308 fixed to the bottom of the 7th layer are in contact with the opposite sides of the copper flat wire. As the two L-shaped side plates 307 move closer to each other inside the U-shaped frame 305, they exert a downward force on the two top plates 312 in sync with the downward movement of the lower pressure plate 317. This causes the second springs 315 connected and fixed between the top plates 312 to compress synchronously, so that the second pressure rollers 314 fixed to the inner walls of the two L-shaped plates 313 are simultaneously compressed. The cylinder moves downwards step by step until the second pressure rollers 314 are in contact with the upper surface of the copper flat wire. Then, the telescopic cylinder 320 is closed. In this way, the copper flat wire is guided and rolled and shaped during the winding and wrapping process by the mutual contact and rolling action of the first pressure rollers 308 and the second pressure rollers 314 with the opposite sides and upper surface of the copper flat wire. This ensures that the copper flat wire is in a relatively uniform flat shape when it is wound and wrapped after the processing and cooling is completed, thus ensuring the winding and wrapping effect in the later stage.
[0036] Example 2, please refer to Figures 1-14This second embodiment is an improvement on the first embodiment as follows: Specifically, the winding assembly 2 includes a fixing member 5 rotating on the positioning member 3, a locking member 6 sliding on the fixing member 5, and a wrapping member 7 rotating on the fixing member 5; a second through-tube 327 is connected to the end of the first through-tube 301, a servo motor 328 is fixed inside the second through-tube 327, and a main gear 329 is fixed to the output shaft of the servo motor 328; the fixing member 5 includes a rotating tube 501 rotating at the end of the second through-tube 327, a gear ring 502 meshing with the main gear 329 is fixed at the end of the rotating tube 501, and a Z-shaped support plate 503 is fixed to the outer circumferential side of the rotating tube 501. A transverse groove 504 is provided on the surface of the Z-shaped support plate 503. A threaded post 511 is fixed on the side of the Z-shaped support plate 503 below the transverse groove 504. An I-shaped slider 505 is inserted into the threaded post 511 inside the transverse groove 504. A limiting arc plate 506 is fixed on the top of the I-shaped slider 505. A limiting circular plate 330 that fits against the end of the gear ring 502 is fixed to the end of the main gear 329. A vertical rod 507 is fixed to the bottom of the Z-shaped support plate 503. Two symmetrical vertical grooves 508 are provided on the circumferential side of the vertical rod 507. The wrapping component 7 includes a rotating sleeve 701 that rotates on the vertical rod 507. A notched disc 702 is fixed on the outer circumferential side of the rotating sleeve 701 near the bottom. A limiting circular groove 703 is provided for sliding with the limiting arc plate 506 (after the limiting arc plate 506 and the limiting circular groove 703 are adapted to each other, the limiting arc plate 506 is limited and fixed by the threaded rotation connection between the external nut and the threaded post 511, and the wrapping part 7 assembled on the vertical rod 507 is limited and locked in height). The top of the notched disc 702 is fixed with a side baffle 704 connected to the rotating sleeve 701, and the side of the side baffle 704 is fixed with a threaded insertion post 705; the bottom of the rotating sleeve 701 is connected to a rotating ring 706 rotating on the vertical rod 507, and a number of first retaining teeth 707 are fixed on the circumferential side of the rotating ring 706; the locking part 6 includes a sliding part on the vertical rod. The tapered ring 601 on 507 has two symmetrical limiting vertical rails 602 fixed on its inner wall. The two limiting vertical rails 602 slide with the two vertical grooves 508 respectively. A locking ring 603 is fixed at the top of the tapered ring 601. Several second locking teeth 604 are fixed on the inner wall of the locking ring 603. An elastic spring 605 sleeved on the vertical rod 507 is fixed between the bottom of the tapered ring 601 and the bottom of the Z-shaped support plate 503. A first threaded rod 509 is threaded and rotates through the threaded column 511 on one side of the Z-shaped support plate 503. A first sliding ball 510 is fixed at the end of the first threaded rod 509. A limiting groove 606 that slides with the first sliding ball 510 is opened on the outer wall of the tapered ring 601.A second threaded rod 708 is threaded through the top of the notched disc 702 and rotates. A U-shaped positioning plate 709 is fixed to the bottom of the notched disc 702. A rocker arm 710 rotates inside the U-shaped positioning plate 709. An arc-shaped rod 711 that slides through the rocker arm 710 is fixed to the side of the U-shaped positioning plate 709. An arc-shaped spring 712, sleeved on the arc-shaped rod 711, is fixed between the rocker arm 710 and the U-shaped positioning plate 709. L-shaped side plates 713 are fixed to opposite sides of the rocker arm 710. A first adjusting roller 714 and a second adjusting roller 715 rotate between the two L-shaped side plates 713. A second sliding ball 716 that slides and fits against the rocker arm 710 is fixed to the bottom of the second threaded rod 708.
[0037] The specific application of this embodiment two is as follows: Before the winding and wrapping operation of the processed and cooled copper flat wire, the entire equipment is installed and positioned between the processing and cooling equipment and the winding equipment (both the processing and cooling equipment and the winding equipment are existing technologies and are not shown in the figure, so they will not be elaborated on here. During the installation and fixing of the entire equipment, the winding end of the equipment and the winding end of the winding equipment are set opposite to each other, while the wire inlet end of the equipment and the wire outlet end of the processing and cooling equipment are set opposite to each other). Before the winding and wrapping operation of the processed and cooled copper flat wire, the wrapping tape roll to be wrapped is first sleeved on the threaded plug 705 (the wrapping tape roll is on the threaded plug 705). The invention is disclosed in a Chinese invention patent with publication number CN118711914B (which is prior art and will not be elaborated on here). It is positioned and fixed by means of the threaded rotation connection between the external nut and the threaded plug post 705. After the fixation is completed, one end of the processed and cooled copper flat wire is passed through the first tube 301 and the second tube 327. Then, one end of the copper flat wire is wound around the winding end of the winding equipment to facilitate the subsequent winding, wrapping and rewinding operations. During the subsequent winding and wrapping operations, it will be positioned, guided and rolled in sequence as it passes through the first tube 301 and the second tube 327. Before winding and wrapping the processed and cooled copper flat wire, the deflection angle of the entire wrapping component 7 is adjusted according to the specifications of the copper flat wire. During the deflection angle adjustment, by rotating the first threaded rod 509, the first sliding ball 510 fixed at the end of the first threaded rod 509 is driven to move closer to one side of the Z-shaped support plate 503, and simultaneously slides inside the limiting inclined groove 606. (During the locking part 6 locks the entire wrapping component 7, its connection and fixation between the conical ring 601 and the Z-shaped support plate 503 is spring-loaded.) With the elastic spring 605 in a compressed state, the entire locking component 6 moves downward synchronously on the vertical rod 507 through the elastic force of the compressed elastic spring 605. This causes the several first locking teeth 707 and several second locking teeth 604 that are mutually adapted and engaged to separate from each other, driving the locking ring 603 to slide downward, thereby locking and unlocking the locked wrapping component 7. After locking and unlocking are completed, the starting end of the wrapping tape roll that is sleeved and fixed on the wrapping component 7 is taken out, and then the wrapping component is moved according to the specifications of the copper flat wire. 7. This causes the rotating sleeve 701 in the wrapping component 7 to deflect at a certain angle on the circumferential side of the vertical rod 507. After the angle deflection is completed, the first threaded rod 509 is rotated in the opposite direction, causing the first sliding ball 510 fixed at the end of the first threaded rod 509 to move away from one side of the Z-shaped support plate 503 and slide synchronously inside the limiting groove 606. This causes the entire locking component 6 to move upward synchronously on the vertical rod 507, so that the several first locking teeth 707 and several second locking teeth 604 that are mutually adapted and engaged are engaged. Interlocking is used to lock the wrapped part 7 after the deflection angle adjustment is completed. After locking, the starting end of the wrapped tape roll is passed through the first adjusting roller 714 and the second adjusting roller 715 and finally adheres to the surface of the copper flat wire so that the copper flat wire can be wound and wrapped later. At the same time, it also avoids the overlap gap between the wrapped tape rolls during the later winding and wrapping operation. This allows for the adjustment of the overlap rate of the wrapped tape roll under the condition of fixed copper flat wire movement speed, thereby improving the winding and wrapping efficiency of copper flat wire. After the above adjustments are completed, to prevent the transition section between the wrapping tape roll and the copper flat wire from becoming loose, the second threaded rod 708 is rotated, causing the second sliding ball 716 fixed at the end of the second threaded rod 708 to slide on the surface of the first adjusting roller 714. This causes the rocker plate 710 to slide on the circumferential side of the arc-shaped rod 711, thereby stretching the arc-shaped spring 712 connected and fixed between the rocker plate 710 and the U-shaped positioning plate 709. This causes the rocker plate 710 to slowly rock up inside the U-shaped positioning plate 709, keeping the wrapping tape roll passing between the first adjusting roller 714 and the second adjusting roller 715 in a relatively taut state. This prevents the wrapping tape roll wrapped around the copper flat wire from becoming loose during the subsequent wrapping operation, thereby improving the wrapping effect throughout the process.
[0038] Obviously, the embodiments described above are merely some, not all, embodiments of the present invention. All other embodiments obtained by those skilled in the art based on the embodiments of the present invention without inventive effort should fall within the scope of protection of the present invention.
[0039] It should be noted that the terminology used herein is for the purpose of describing particular embodiments only and is not intended to limit the exemplary embodiments according to this application. As used herein, the singular form is intended to include the plural form as well, unless the context clearly indicates otherwise. Furthermore, it should be understood that when the terms "comprising" and / or "including" are used in this specification, they indicate the presence of features, steps, operations, devices, components, and / or combinations thereof.
[0040] It should be noted that the terms "first," "second," etc., used in the specification, claims, and accompanying drawings of this application 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 application described herein can be implemented in sequences other than those illustrated or described herein.
[0041] The above description is merely a preferred embodiment of the present invention and is not intended to limit the invention. Various modifications and variations can be made to the present invention by those skilled in the art. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present invention should be included within the scope of protection of the present invention.
[0042] The above description is merely a preferred embodiment of the present invention. The scope of protection of the present invention is not limited to the above embodiments. All technical solutions falling within the scope of the present invention's concept are within the scope of protection of the present invention. It should be noted that for those skilled in the art, any improvements and modifications made without departing from the principles of the present invention should also be considered within the scope of protection of the present invention.
Claims
1. A winding device for a copper flat wire processing workshop, comprising a mounting assembly (1), wherein a copper flat wire is threaded through the mounting assembly (1), characterized in that: The mounting assembly (1) has a rotating winding assembly (2), and the mounting assembly (1) includes a positioning member (3) and two sliding members (4) that slide opposite to each other thereon. The positioning component (3) includes a first through tube (301), and two symmetrical sliding grooves (302) are provided through the outer periphery of the first through tube (301). A U-shaped side plate (303) is fixed to the inner wall of each of the two sliding grooves (302). A rectangular hole (304) that slides with the sliding component (3) is provided through one outer side of the U-shaped side plate (303). A U-shaped frame (305) is fixed inside the first through-tube (301). A plurality of first sliding rods (306) slide through the U-shaped frame (305) on both of its outer sides. An L-shaped side plate (307) is fixed to one end of each of the first sliding rods (306). A plurality of first pressure rollers (308) rotate around the bottom of the L-shaped side plate (307). A first push plate (309) is fixed to the other end of each of the first sliding rods (306). A plurality of first pressure rollers (308) are fixed between the L-shaped side plate (307) and the first push plate (309) and are respectively sleeved on the plurality of first sliding rods. A first spring (310) on a sliding rod (306), a plurality of second sliding rods (311) sliding through the top of the two L-shaped side plates (307), a top plate (312) fixed to the top of the plurality of second sliding rods (311), an L-shaped plate (313) fixed to the bottom of the plurality of second sliding rods (311), a plurality of second pressure rollers (314) rotating on the inner wall of the L-shaped plate (313), and a plurality of second springs (315) sleeved on the second sliding rods (311) fixed between the L-shaped side plates (307) and the top plate (312).
2. The winding equipment for a copper flat wire processing workshop according to claim 1, characterized in that: A displacement plate (316) is slidably passed through the outer periphery of the first through tube (301) above the two U-shaped side plates (303). The bottom of the displacement plate (316) is fixed inside the first through tube (301) with a lower pressure plate (317) that is in contact with the top plate (312). The slider (4) includes a rectangular slider (401) that slides inside the rectangular hole (304). One side of the rectangular slider (401) is located inside the first through tube (301) and a second push plate (402) that is in contact with the first push plate (309) is fixed thereon.
3. The winding equipment for a copper flat wire processing workshop according to claim 2, characterized in that: The displacement plate (316) has a slanted groove (318) through the outside of the first through tube (301) on one side. A U-shaped vertical plate (319) is fixed on one outer side of the two U-shaped side plates (303). A telescopic cylinder (320) is fixed at the top center of the U-shaped vertical plate (319). A moving plate (321) is fixed at the telescopic end of the telescopic cylinder (320). A V-shaped plate (322) is fixed on the side of the moving plate (321). Two symmetrical slanted grooves (323) are through the V-shaped plate (322) on one side. A fixing plate (324) is fixed on the side of the V-shaped plate (322). A toggle rod (325) that slides with the slanted groove (318) is fixed on the side of the fixing plate (324). A mounting bracket (326) is fixed on the outer periphery of the first through tube (301) below the two U-shaped side plates (303). The rectangular slider (401) has a lever (403) fixed on one side adjacent to it, and the two levers (403) slide with the two inclined grooves (323) respectively.
4. A winding device for a copper flat wire processing workshop according to claim 3, characterized in that: The winding assembly (2) includes a fixing member (5) that rotates on the positioning member (3), a locking member (6) that slides on the fixing member (5), and a wrapping member (7) that rotates on the fixing member (5). The first through tube (301) is connected to a second through tube (327) at its end. A servo motor (328) is fixed inside the second through tube (327), and a main gear (329) is fixed to the output shaft of the servo motor (328).
5. A winding device for a copper flat wire processing workshop according to claim 4, characterized in that: The fixing member (5) includes a rotating tube (501) that rotates at the end of the second through tube (327). A gear ring (502) that meshes with the main gear (329) is fixed at the end of the rotating tube (501). A Z-shaped support plate (503) is fixed on the outer periphery of the rotating tube (501). A transverse groove (504) is opened on the side of the Z-shaped support plate (503). A threaded column (511) is fixed on the side of the Z-shaped support plate (503) below the transverse groove (504). An I-shaped slider (505) that is inserted into the threaded column (511) is inside the transverse groove (504). A limiting arc plate (506) is fixed on the top of the I-shaped slider (505). The end of the main gear (329) is fixed with a limiting circular plate (330) that fits against the end of the gear ring (502).
6. A winding device for a copper flat wire processing workshop according to claim 5, characterized in that: A vertical rod (507) is fixed at the bottom of the Z-shaped support plate (503), and two symmetrical vertical grooves (508) are opened on the periphery of the vertical rod (507). The wrapping component (7) includes a rotating sleeve (701) that rotates on a vertical rod (507). A notched disc (702) is fixed on the outer periphery of the rotating sleeve (701) near the bottom. A limiting circular groove (703) that slides with a limiting arc plate (506) is opened on the outer periphery of the notched disc (702). A side baffle (704) that is connected to the rotating sleeve (701) is fixed on the top of the notched disc (702). A threaded plug post (705) is fixed on the side of the side baffle (704).
7. A winding device for a copper flat wire processing workshop according to claim 6, characterized in that: The bottom of the rotating sleeve (701) is connected to a rotating ring (706) that rotates on the vertical rod (507), and a number of first retaining teeth (707) are fixed on the circumferential side of the rotating ring (706). The locking component (6) includes a conical ring (601) that slides on the vertical rod (507). Two symmetrical limiting vertical rails (602) are fixed on the inner wall of the conical ring (601). The two limiting vertical rails (602) slide with the two vertical grooves (508) respectively. A locking ring (603) is fixed on the top of the conical ring (601). Several second locking teeth (604) are fixed on the inner wall of the locking ring (603). An elastic spring (605) sleeved on the vertical rod (507) is fixed between the bottom of the conical ring (601) and the bottom of the Z-shaped support plate (503).
8. A winding device for a copper flat wire processing workshop according to claim 7, characterized in that: The Z-shaped support plate (503) has a first threaded rod (509) that rotates through the threaded column (511) on one side, and a first sliding ball (510) is fixed at the end of the first threaded rod (509). The outer wall of the conical ring (601) is provided with a limiting groove (606) that slides with the first slider (510).
9. A winding device for a copper flat wire processing workshop according to claim 8, characterized in that: The notched disc (702) has a second threaded rod (708) that rotates through the thread at the top. A U-shaped positioning plate (709) is fixed at the bottom of the notched disc (702). A rocker plate (710) rotates inside the U-shaped positioning plate (709). An arc-shaped rod (711) that slides through the rocker plate (710) is fixed on the side of the U-shaped positioning plate (709). An arc-shaped spring (712) that is sleeved on the arc-shaped rod (711) is fixed between the rocker plate (710) and the U-shaped positioning plate (709). The rocker (710) has L-shaped side plates (713) fixed on its two opposite sides. A first adjusting roller (714) and a second adjusting roller (715) rotate between the two L-shaped side plates (713). A second sliding ball (716) that slides and fits against the rocker (710) is fixed at the bottom of the second threaded rod (708).
Citation Information
Patent Citations
Cable winding equipment for cable processing workshop
CN118711914B