Multi-wire doubling anti-winding rolling system for copper wire production
By designing a multi-wire and wire anti-winding winding system for copper wire production, the problems of winding and scratching during the multi-wire and wire winding in traditional copper wire production are solved, and automatic winding is achieved, and production efficiency and quality are improved.
Patent Information
- Application Number
- CN202510525331.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-25
- Publication Date
- 2025-06-13
AI Technical Summary
In traditional copper wire production, interweaving and winding are prone to occur during the winding process of multi-wire concurrent wire, resulting in scratching and deformation of the surface of the copper wire, affecting quality and production efficiency, and manual operation is difficult to ensure the stability and efficiency of the winding.
A multi-wire and wire anti-winding winding system for copper wire production is designed, including a base plate, a support plate, a mounting plate, a fixed wire mechanism, a laying mechanism and a winding mechanism. The winding mechanism consists of a motor, a transmission shaft, a line segment and a line crimping member. The motor drives the transmission shaft to drive the line segment and a line crimping member to work together to realize the automatic winding of multi-wire and wire.
Through automatic winding, the system improves the efficiency and quality of winding of copper wires, prevents winding and scratching of copper wires, ensures the continuity and stability of production, and reduces manual operation costs.
Smart Images

Figure CN120135872A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of copper wire production, and specifically relates to a multi-wire parallel wire anti-winding winding system for copper wire production. Background Art
[0002] In the production of copper wire, multi-wire parallel wire winding is a crucial process, and its quality and efficiency have a significant impact on the performance of the final product and production benefits. During the multi-wire parallel wire winding process, traditional winding equipment lacks effective wire separation measures, and multiple copper wires are prone to intertwining and winding with each other during winding, resulting in scratches and deformation on the surface of the copper wire, seriously affecting the quality and subsequent use performance of the copper wire. The damage to the copper wire may lead to unstable conductivity of the product and increase the rejection rate. If winding occurs, it often requires manual shutdown for treatment, which not only consumes a large amount of time, reduces production efficiency, increases labor costs, but also affects the continuity and stability of production, disrupting the entire production plan. Traditional winding systems rely on manual wire feeding, fixing the wire ends, and manual monitoring of the winding process. Manual wire feeding is difficult to ensure the consistency of the wire feeding speeds of each copper wire, easily causing uneven stress on some copper wires and affecting the winding quality. The operation accuracy of manually fixing the wire ends is difficult to guarantee. If the wire ends are not fixed firmly, the copper wire will be loose at the initial stage of winding, affecting the overall winding effect. The production speed is difficult to increase, and it cannot meet the growing market demand. Summary of the Invention
[0003] To achieve the above objectives, the present invention is realized through the following technical solutions: A multi-wire parallel wire anti-winding winding system for copper wire production, comprising: A bottom plate, and support plates fixedly installed on both sides of the top of the bottom plate. An installation plate one and an installation plate two are fixedly installed between the support plates. A wire fixing mechanism is installed on the top of the installation plate two. The wire fixing mechanism is used to fix the end of the copper wire to prevent it from moving at the initial stage of winding. A wire feeding mechanism is rotatably installed between the support plates. The wire feeding mechanism is used to place the copper wires to be parallel wire wound. The installation plate one is arranged between the wire feeding mechanism and the wire fixing mechanism. A winding mechanism, the winding mechanism is installed in the middle of the support plates, and the winding mechanism is installed on the top of the installation plate one. The winding mechanism is used to parallel wire and wind multiple copper wires. Among them, the winding mechanism includes a motor and a transmission shaft. The motor is fixedly installed on the surface of the support plate through a bracket. The transmission shaft is rotatably installed between the support plates. The transmission shaft penetrates through the support plate and extends to its outside. The end of the transmission shaft is fixedly connected to the output end of the motor. A wire dividing member and a wire pressing member are installed on the outer surface of the transmission shaft. The wire dividing member is arranged inside the wire pressing member. An installation frame is fixedly installed at the bottom of the wire pressing member. The installation frame is fixedly installed on the top of the first installation plate. The motor provides power to drive the transmission shaft to rotate. The transmission shaft drives the wire dividing member to rotate. The installation frame is used to fix the wire pressing member so that the wire dividing member rotates inside the wire pressing member.
[0004] Preferably, the wire dividing member includes a winding cylinder. The winding cylinder is fixedly installed on the outer surface of the transmission shaft. A receiving groove is formed on the surface of the winding cylinder. A wire dividing sleeve is fixedly installed on the surface of the winding cylinder. The receiving groove is arranged inside the wire dividing sleeve. A support spring is fixedly installed inside the receiving groove. The other end of the support spring is fixedly connected to the inner side surface of the wire dividing sleeve. The wire dividing sleeve expands and contracts under the action of the support spring to separate different copper wires and prevent the copper wires from being wound around each other.
[0005] Preferably, both the number of the receiving grooves and the wire dividing sleeves is six. The wire dividing sleeve is made of rubber material. After the copper wires are wound, the wire dividing sleeve is pressed into the receiving groove to merge multiple copper wires. At the same time, the rubber wire dividing sleeve can also prevent scratching the copper wires.
[0006] Preferably, the wire pressing member includes a first wire pressing cover and a second wire pressing cover. Inlet pipes and outlet pipes are respectively fixedly installed on both sides of the first wire pressing cover. The inlet pipes and the outlet pipes are used for the copper wires to enter and exit. A first flanging is provided at the edge of the bottom of the first wire pressing cover. A second flanging is provided at the edge of the top of the second wire pressing cover. A clamping groove is formed on the surface of the first flanging. A clamping bar is fixedly installed on the top of the second flanging. The clamping bar is engaged and adapted with the clamping groove. The first wire pressing cover and the second wire pressing cover are clamped through the clamping bar and the clamping groove to form a closed space.
[0007] Preferably, rotating grooves are respectively formed inside the first wire pressing cover and the second wire pressing cover. An arc-shaped rotating block is slidably installed inside the rotating groove. A fixing sleeve is fixedly installed on the outer surface of the arc-shaped rotating block. A slider is slidably installed inside the fixing sleeve. One end of the slider away from the fixing sleeve is rotatably installed with a pressing cylinder through a rotating shaft. A pressing spring is fixedly connected between the fixing sleeve and the slider. The pressing spring is arranged inside the fixing sleeve. The pressing spring provides pressure to keep the pressing cylinder always moderately pressing the copper wires, ensuring that the copper wires will not loosen or come out of the wire dividing sleeve during the winding process, so as to realize the neat winding of multiple wires in parallel, ensure the stability and tightness of the winding, enable the wire dividing member to smoothly wind the copper wires and prevent the copper wires from shaking during the winding process.
[0008] Preferably, the number of the rotating grooves is seven, the rotating grooves and the accommodating grooves are arranged alternately, the pressing cylinder is slidably arranged between the wire dividing sleeves, and the pressing cylinder and the wire dividing sleeves successfully separate multiple copper wires to prevent the copper wires from being wound around each other.
[0009] Preferably, the wire paying-off mechanism includes a rotating rod rotatably installed on the surface of the support plate. The number of the rotating rods is two, and rotating frame plates are fixedly installed on the opposite surfaces of the two rotating rods. A winding rod is fixedly connected between the rotating frame plates. The winding rod is used for placing the copper wire to be wound. By rotating the rotating rod, the winding rod can smoothly pay off the copper wire.
[0010] Preferably, the wire fixing mechanism includes a fixing cover fixedly installed on the top of the second mounting plate. A cylinder is fixedly installed on the top of the fixing cover. The telescopic end of the cylinder is fixedly connected with a telescopic rod. The telescopic rod penetrates through the fixing cover and extends into its interior. A fixing block is fixedly installed at the bottom of the inner cavity of the fixing cover. A pressing block is fixedly installed at the bottom of the telescopic rod. The cylinder pushes the telescopic rod to drive the pressing block to move downward.
[0011] Preferably, sliding rails are fixedly installed on both sides of the inner wall of the fixing cover. The pressing block is slidably installed on the outer surface of the sliding rails. Buffer springs are fixedly installed on both sides of the top of the pressing block. The other ends of the buffer springs are fixedly connected to the top of the inner cavity of the fixing cover.
[0012] Preferably, a first rack is fixedly installed at the bottom of the pressing block, and a second rack is fixedly installed at the top of the fixing block. The first rack and the second rack are in extrusion fit with each other. The first rack and the second rack are extruded to fix the end of the copper wire to prevent it from moving at the start of winding.
[0013] The present invention provides a multi-wire parallel wire anti-winding winding system for copper wire production, which has the following beneficial effects: First, in the multi-wire parallel wire anti-winding winding system for copper wire production, through the setting of the winding mechanism, the motor drives the transmission shaft to rotate, and then drives the wire dividing member and the wire pressing member to work together. The motor provides power, the wire dividing member separates the copper wires, and the wire pressing member presses the copper wires to complete winding, realizing the automatic winding of multi-wire parallel wires, improving the winding efficiency and quality. The cooperation of each component ensures that the copper wires are wound on the winding cylinder in an orderly manner, meeting the winding requirements of copper wire production.
[0014] Second, in the multi-wire parallel wire anti-winding winding system for copper wire production, through the setting of the wire dividing member, the winding cylinder rotates with the transmission shaft. The wire dividing sleeves on the surface of the winding cylinder can separate and position copper wires at different positions under the action of the support springs, preventing the copper wires from being wound around each other. The copper wires enter between the wire dividing sleeves, and the wire dividing sleeves separate different copper wires to avoid mutual winding, ensuring the neat winding of multi-wire parallel wires. The wire dividing sleeves made of rubber can also avoid scratching the copper wires.
[0015] III. For the multi-wire parallel wire anti-winding winding system for copper wire production, through the setting of the wire pressing component, the copper wire enters from the inlet pipe, passes through the internal structure and exits from the outlet pipe. The wire pressing cover I and wire pressing cover II of the wire pressing component are fixedly connected through the clamping strips and clamping grooves. The arc-shaped rotating block inside slides in the rotating groove, enabling the pressing cylinder to be tightly fixed according to the position of the copper wire. At this time, the slider slides inside the fixed sleeve, and the pressing spring provides pressure, so that the pressing cylinder always maintains an appropriate pressing force on the copper wire, ensuring that the copper wire will not loosen or come out of the wire dividing sleeve during the winding process, thereby realizing the neat winding of multi-wire parallel wires and ensuring the stability and tightness of the winding.
[0016] IV. For the multi-wire parallel wire anti-winding winding system for copper wire production, through the setting of the wire releasing mechanism, the rotating rod rotates to drive the rotating frame plate and the winding rod to rotate, so that the copper wire on the winding rod is released, providing a continuous and stable supply of copper wire for the winding process. The rotating structure enables the copper wire to be smoothly released, adapting to the winding requirements of different speeds.
[0017] V. For the multi-wire parallel wire anti-winding winding system for copper wire production, through the setting of the wire fixing mechanism, the air cylinder pushes the telescopic rod, driving the pressing block to slide down along the slide rail, so that the rack I and the rack II are squeezed to fix the copper wire head, preventing the wire head from shaking and shifting during the initial stage of winding, ensuring the smooth start of winding. The buffer spring plays a buffering role, avoiding excessive extrusion damage to the copper wire during the fixing process. BRIEF DESCRIPTION OF THE DRAWINGS
[0018] Figure 1 is a schematic diagram of the overall structure of the present invention; Figure 2 is a schematic diagram of the appearance of the present invention; Figure 3 is a schematic diagram of the structure of the wire releasing mechanism of the present invention; Figure 4 is a schematic diagram of the structure of the winding mechanism of the present invention; Figure 5 is a schematic diagram of the structure of the wire dividing component of the present invention; Figure 6 is a partial sectional view of the wire dividing component of the present invention; Figure 7 is a schematic diagram of the structure of the wire pressing component of the present invention; Figure 8 is an enlarged schematic diagram of part A of the present invention; Figure 9 is a partial sectional view of the wire pressing component of the present invention; Figure 10 is an enlarged schematic diagram of part B of the present invention; Figure 11 is a schematic diagram of the structure of the wire fixing mechanism of the present invention.
[0019] In the figure: 1, bottom plate; 2, support plate; 3, first mounting plate; 4, second mounting plate; 5, wire releasing mechanism; 51, rotating rod; 52, rotating frame plate; 53, winding rod; 6, winding mechanism; 61, motor; 62, transmission shaft; 63, wire dividing member; 631, winding cylinder; 632, receiving groove; 633, wire dividing sleeve; 634, support spring; 64, wire pressing member; 6401, first wire pressing cover; 6402, second wire pressing cover; 6403, inlet pipe; 6404, outlet pipe; 6405, first flanging; 6406, second flanging; 6407, clamping groove; 6408, clamping bar; 6409, rotating groove; 6410, arc-shaped rotating block; 6411, fixed sleeve; 6412, slider; 6413, pressing spring; 6414, pressing cylinder; 65, mounting frame; 7, wire fixing mechanism; 71, fixing cover; 72, cylinder; 73, telescopic rod; 74, slide rail; 75, pressing block; 76, fixed block; 77, first rack; 78, second rack; 79, buffer spring. Specific embodiments
[0020] The following will clearly and completely describe the technical solutions in the embodiments of the present invention with reference to the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without making creative efforts shall fall within the protection scope of the present invention.
[0021] The first embodiment is as Figures 1 to 5 shown. The present invention provides a technical solution: a multi-wire parallel and anti-tangle winding system for copper wire production, including: A bottom plate 1, and support plates 2 fixedly installed on both sides of the top of the bottom plate 1. A first mounting plate 3 and a second mounting plate 4 are fixedly installed between the support plates 2. A wire fixing mechanism 7 is installed on the top of the second mounting plate 4. The wire fixing mechanism 7 is used to fix the end of the copper wire to prevent it from moving at the start of winding. A wire releasing mechanism 5 is rotatably installed between the support plates 2. The wire releasing mechanism 5 is used to place the copper wire to be parallel and wound. The first mounting plate 3 is arranged between the wire releasing mechanism 5 and the wire fixing mechanism 7; The wire releasing mechanism 5 includes a rotating rod 51. The rotating rod 51 is rotatably installed on the surface of the support plate 2. The number of the rotating rods 51 is two, and rotating frame plates 52 are fixedly installed on the opposite surfaces of the two rotating rods 51. A winding rod 53 is fixedly connected between the rotating frame plates 52. The winding rod 53 is used to place the copper wire to be wound. By rotating the rotating rod 51, the winding rod 53 can smoothly release the copper wire, providing a continuous and stable supply of copper wire for the winding process; A winding mechanism 6. The winding mechanism 6 is installed in the middle of the support plate 2. The winding mechanism 6 is installed on the top of the first mounting plate 3. The winding mechanism 6 is used to parallel and wind multiple copper wires, realizing the automatic winding of multi-wire parallel, improving the winding efficiency and quality; The rewinding mechanism 6 includes a motor 61 and a transmission shaft 62. The motor 61 is fixedly installed on the surface of the support plate 2 through a bracket. The transmission shaft 62 is rotatably installed between the support plates 2. The transmission shaft 62 penetrates through the support plate 2 and extends to its outside. The end of the transmission shaft 62 is fixedly connected to the output end of the motor 61. A wire dividing member 63 and a wire pressing member 64 are installed on the outer surface of the transmission shaft 62. The wire dividing member 63 is arranged inside the wire pressing member 64. An installation frame 65 is fixedly installed at the bottom of the wire pressing member 64. The installation frame 65 is fixedly installed on the top of the first installation plate 3. The motor 61 provides power to drive the transmission shaft 62 to rotate. The transmission shaft 62 drives the wire dividing member 63 to rotate. The installation frame 65 is used to fix the wire pressing member 64, enabling the wire dividing member 63 to rotate inside the wire pressing member 64.
[0022] Second Embodiment, based on the first embodiment, please refer to Figure 11 As shown, the wire fixing mechanism 7 includes a fixing cover 71. The fixing cover 71 is fixedly installed on the top of the second installation plate 4. A cylinder 72 is fixedly installed on the top of the fixing cover 71. The telescopic end of the cylinder 72 is fixedly connected to a telescopic rod 73. The telescopic rod 73 penetrates through the fixing cover 71 and extends to its inside. A fixing block 76 is fixedly installed at the bottom of the inner cavity of the fixing cover 71. A pressing block 75 is fixedly installed at the bottom of the telescopic rod 73. The cylinder 72 pushes the telescopic rod 73 to drive the pressing block 75 to move downward; Two sliding rails 74 are fixedly installed on both sides of the inner wall of the fixing cover 71. The pressing block 75 is slidably installed on the outer surface of the sliding rails 74. Two buffer springs 79 are fixedly installed on both sides of the top of the pressing block 75. The other ends of the buffer springs 79 are fixedly connected to the top of the inner cavity of the fixing cover 71; A first rack 77 is fixedly installed at the bottom of the pressing block 75. A second rack 78 is fixedly installed at the top of the fixing block 76. The first rack 77 is in extrusion fit with the second rack 78. The first rack 77 and the second rack 78 are extruded to fix the end of the copper wire and prevent it from moving at the beginning of rewinding, thereby realizing the neat rewinding of multiple wires and ensuring the stability and tightness of rewinding.
[0023] Third Embodiment, based on the first and second embodiments, please refer to Figures 6 to 10 As shown, the wire dividing member 63 includes a winding cylinder 631. The winding cylinder 631 is fixedly installed on the outer surface of the transmission shaft 62. A receiving groove 632 is formed on the surface of the winding cylinder 631. A wire dividing sleeve 633 is fixedly installed on the surface of the winding cylinder 631. The receiving groove 632 is arranged inside the wire dividing sleeve 633. A support spring 634 is fixedly installed inside the receiving groove 632. The other end of the support spring 634 is fixedly connected to the inner side surface of the wire dividing sleeve 633. The wire dividing sleeve 633 expands and contracts under the action of the support spring 634 to separate different copper wires and prevent them from winding; The number of receiving grooves 632 and wire dividing sleeves 633 is six each. The wire dividing sleeves 633 are made of rubber. After the copper wires are wound, the wire dividing sleeves 633 are pressed into the receiving grooves 632 to merge multiple copper wires into one strand; The wire pressing member 64 includes a first wire pressing cover 6401 and a second wire pressing cover 6402. The two sides of the first wire pressing cover 6401 are respectively fixedly installed with an inlet wire pipe 6403 and an outlet wire pipe 6404 for the copper wires to enter and exit. At the edge of the bottom of the first wire pressing cover 6401, there is a first flanging 6405. At the edge of the top of the second wire pressing cover 6402, there is a second flanging 6406. A clamping groove 6407 is formed on the surface of the first flanging 6405. A clamping bar 6408 is fixedly installed at the top of the second flanging 6406. The clamping bar 6408 is engaged and adapted with the clamping groove 6407. The first wire pressing cover 6401 and the second wire pressing cover 6402 are clamped through the clamping bar 6408 and the clamping groove 6407 to form a closed space; Rotating grooves 6409 are formed inside both the first wire pressing cover 6401 and the second wire pressing cover 6402. Arc-shaped rotating blocks 6410 are slidably installed inside the rotating grooves 6409. A fixing sleeve 6411 is fixedly installed on the outer surface of the arc-shaped rotating block 6410. A slider 6412 is slidably installed inside the fixing sleeve 6411. One end of the slider 6412 away from the fixing sleeve 6411 is rotatably installed with a pressing cylinder 6414 through a rotating shaft. A compression spring 6413 is fixedly connected between the fixing sleeve 6411 and the slider 6412. The compression spring 6413 is arranged inside the fixing sleeve 6411. The slider 6412 drives the pressing cylinder 6414 to press the copper wires under the action of the compression spring 6413, enabling the wire dividing member 63 to smoothly wind the copper wires and preventing the copper wires from shaking during the winding process; The number of rotating grooves 6409 is seven. The rotating grooves 6409 and the receiving grooves 632 are arranged alternately. The pressing cylinder 6414 is slidably arranged between the wire dividing sleeves 633. The pressing cylinder 6414 and the wire dividing sleeves 633 smoothly separate multiple copper wires to prevent the copper wires from being wound around each other.
[0024] During use, the staff places the multiple copper wires to be wound on the winding rod 53 of the wire paying-off mechanism 5. The wire ends of the multiple copper wires respectively pass through the fixing cover 71 of the wire fixing mechanism 7, then enter the inside of the wire pressing member 64 through the inlet wire pipe 6403 of the wire pressing member 64, and then pass through the outlet wire pipe 6404. At this time, the copper wires are located between the wire dividing sleeves 633 of the wire dividing member 63; Start the cylinder 72. The telescopic end of the cylinder 72 drives the telescopic rod 73 to move downward. The telescopic rod 73 pushes the pressing block 75 to slide downward on the sliding rail 74. The first rack 77 at the bottom of the pressing block 75 and the second rack 78 at the top of the fixed block 76 are mutually pressed, thereby fixing the wire ends of the multiple copper wires passing through the fixing cover 71 to prevent them from shaking or shifting during the winding process. At the same time, the buffer spring 79 at the top of the pressing block 75 plays a role in buffering and shock absorption, avoiding excessive squeezing damage to the wire ends by the pressing block 75; Start the motor 61, the motor 61 drives the transmission shaft 62 to rotate, and the winding drum 631 on the transmission shaft 62 rotates accordingly. Under the action of the supporting spring 634, the wire dividing sleeve 633 on the surface of the winding drum 631 can separate and position the copper wires at different positions, preventing the copper wires from winding around each other. The wire pressing cover one 6401 and the wire pressing cover two 6402 of the wire pressing member 64 are fixedly connected to the card slot 6407 through the card strip 6408. The arc-shaped rotating block 6410 inside it slides in the rotating slot 6409, so that the pressing cylinder 6414 can be pressed and fixed according to the position of the copper wire. At this time, the slider 6412 slides in the fixed sleeve 6411, and the pressing spring 6413 provides pressure to keep the pressing cylinder 6414 always moderately pressing the copper wire, ensuring that the copper wire will not loosen or come out of the wire dividing sleeve 633 during the winding process, so as to realize the neat winding of multiple wires in parallel. During the winding process, under the combined action of the wire dividing member 63 and the wire pressing member 64, the copper wire is evenly wound on the surface of the winding drum 631; At the same time, the rotating rod 51 rotates on the surface of the support plate 2, driving the rotating frame plate 52 and the winding rod 53 to rotate, so that the copper wire on the winding rod 53 can be smoothly released. As the winding process progresses, the copper wire continuously discharges from the wire releasing mechanism 5 and is conveyed to the winding mechanism 6; After the winding is completed, pinch the card strip 6408 and take out the wire pressing cover one 6401 upward, squeeze the wire dividing sleeve 633 to make it enter the receiving groove 632, and merge multiple strands of copper wires to complete all operations.
[0025] It should be noted that in this article, relational terms such as first and second are only used to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations. Moreover, the term "comprising", "including" or any other variant thereof is intended to cover non-exclusive inclusion, so that a process, method, article or device including a series of elements not only includes those elements, but also includes other elements not expressly listed, or also includes elements inherent to such process, method, article or device. Without further limitation, an element defined by the statement "including a..." does not exclude the existence of additional identical elements in the process, method, article or device including the said element.
[0026] Although the embodiments of the present invention have been shown and described, those of ordinary skill in the art can understand that various changes, modifications, substitutions and variations can be made to these embodiments without departing from the principle and spirit of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.
Claims
1. A multi-wire parallel anti-winding winding system for copper wire production, characterized in that: include: A bottom plate (1), and support plates (2) fixedly mounted on both sides of the top of the bottom plate (1), a mounting plate 1 (3) and a mounting plate 2 (4) fixedly mounted between the support plates (2), a wire fixing mechanism (7) mounted on the top of the mounting plate 2 (4), a wire releasing mechanism (5) rotatably mounted between the support plates (2), and the mounting plate 1 (3) disposed between the wire releasing mechanism (5) and the wire fixing mechanism (7); A reeling mechanism (6), the reeling mechanism (6) being mounted in the middle of the support plate (2), and the reeling mechanism (6) being mounted on the top of the first mounting plate (3); The winding mechanism (6) comprises a motor (61) and a transmission shaft (62); the motor (61) is fixedly mounted on the surface of the support plate (2) via a bracket; the transmission shaft (62) is rotatably mounted between the support plates (2); the transmission shaft (62) penetrates the support plate (2) and extends to the outside thereof; the end of the transmission shaft (62) is fixedly connected to the output end of the motor (61); a wire splitting member (63) and a wire pressing member (64) are mounted on the outer surface of the transmission shaft (62); the wire splitting member (63) is arranged inside the wire pressing member (64); a mounting frame (65) is fixedly mounted on the bottom of the wire pressing member (64); and the mounting frame (65) is fixedly mounted on the top of the mounting plate (3).
2. A multi-wire paralleling anti-winding winding system for copper wire production according to claim 1, characterized in that: The wire splitting member (63) comprises a wire reel (631), the wire reel (631) being fixedly mounted on the outer surface of the transmission shaft (62), a receiving groove (632) being provided on the surface of the wire reel (631), a wire splitting sleeve (633) being fixedly mounted on the surface of the wire reel (631), the receiving groove (632) being arranged inside the wire splitting sleeve (633), a supporting spring (634) being fixedly mounted inside the receiving groove (632), and the other end of the supporting spring (634) being fixedly connected to the inner side surface of the wire splitting sleeve (633).
3. A multi-wire parallel anti-winding winding system for copper wire production according to claim 2, characterized in that: The number of the accommodating grooves (632) and the number of the line dividing sleeves (633) are both six, and the line dividing sleeves (633) are specifically made of rubber material.
4. A multi-wire parallel anti-winding winding system for copper wire production according to claim 3, characterized in that: The wire pressing member (64) comprises a wire pressing cover 1 (6401) and a wire pressing cover 2 (6402); an inlet pipe (6403) and an outlet pipe (6404) are fixedly installed on both sides of the wire pressing cover 1 (6401), a flange 1 (6405) is provided at the edge of the bottom of the wire pressing cover 1 (6401), and a flange 2 (6406) is provided at the edge of the top of the wire pressing cover 2 (6402); a slot (6407) is provided on the surface of the flange 1 (6405), and a clamping strip (6408) is fixedly installed on the top of the flange 2 (6406); the clamping strip (6408) is clamped and adapted to the slot (6407).
5. A multi-wire paralleling anti-winding winding system for copper wire production according to claim 4, characterized in that: The first and second wire pressing covers (6401 and 6402) are both provided with a rotating groove (6409), an arc-shaped rotating block (6410) is slidably installed inside the rotating groove (6409), a fixed sleeve (6411) is fixedly installed on the outer surface of the arc-shaped rotating block (6410), a slider (6412) is slidably installed inside the fixed sleeve (6411), a pressing cylinder (6414) is rotatably installed at one end of the slider (6412) away from the fixed sleeve (6411) via a rotating shaft, a compression spring (6413) is fixedly connected between the fixed sleeve (6411) and the slider (6412), and the compression spring (6413) is arranged inside the fixed sleeve (6411).
6. A multi-wire paralleling anti-winding winding system for copper wire production according to claim 5, characterized in that: The number of the rotating grooves (6409) is seven. The rotating grooves (6409) and the accommodating grooves (632) are arranged in an alternating manner. The pressing cylinder (6414) is slidably arranged between the line dividing sleeves (633).
7. The multi-wire parallel anti-winding winding system for copper wire production according to claim 1, characterized in that: The wire-releasing mechanism (5) comprises a rotating rod (51) which is rotatably mounted on the surface of the support plate (2). There are two rotating rods (51), and rotating frame plates (52) are fixedly mounted on opposite surfaces of the two rotating rods (51). A winding rod (53) is fixedly connected between the rotating frame plates (52).
8. The multi-wire parallel anti-winding winding system for copper wire production according to claim 1, characterized in that: The line fixing mechanism (7) comprises a fixed cover (71), the fixed cover (71) being fixedly mounted on the top of the second mounting plate (4), a cylinder (72) being fixedly mounted on the top of the fixed cover (71), a telescopic end of the cylinder (72) being fixedly connected to a telescopic rod (73), the telescopic rod (73) passing through the fixed cover (71) and extending into the interior thereof, a fixed block (76) being fixedly mounted on the bottom of the inner cavity of the fixed cover (71), and a pressing block (75) being fixedly mounted on the bottom of the telescopic rod (73).
9. A multi-wire paralleling anti-winding winding system for copper wire production according to claim 8, characterized in that: Slide rails (74) are fixedly mounted on both sides of the inner wall of the fixed cover (71), the pressing block (75) is slidably mounted on the outer surface of the slide rails (74), and buffer springs (79) are fixedly mounted on both sides of the top of the pressing block (75), and the other end of the buffer spring (79) is fixedly connected to the top of the inner cavity of the fixed cover (71).
10. A multi-wire paralleling anti-winding winding system for copper wire production according to claim 9, characterized in that: A rack 1 (77) is fixedly mounted on the bottom of the pressing block (75), and a rack 2 (78) is fixedly mounted on the top of the fixing block (76), wherein the rack 1 (77) and the rack 2 (78) are pressed and matched with each other.