Special-shaped copper wire stranding die for copper strand processing
By designing a special-shaped copper wire stranding mold for copper stranding processing, and combining a stranding connection structure and a transmission and cutting structure, the problem of the existing mold's inability to perform integrated stranding was solved, realizing automated stranding and cutting of copper wire and improving production efficiency.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- JIANGXI YITO ELECTRIC CO LTD
- Filing Date
- 2022-09-27
- Publication Date
- 2026-07-21
AI Technical Summary
Existing copper stranding dies for processing irregularly shaped copper wires cannot achieve integrated stranding production, which affects dynamic processing efficiency.
A special-shaped copper wire stranding mold for processing copper stranded wire has been designed, which includes a stranding connection structure and a transmission and cutting structure. The automatic stranding and cutting of copper wire is realized by the combination of extrusion cylinder, motor, connecting shaft and cutting component.
It enables automated stranding and cutting of copper wire, improves production efficiency, supports integrated production, and enhances dynamic processing capabilities.
Smart Images

Figure CN115547577B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of copper wire stranding mold equipment technology, specifically to a special-shaped copper wire stranding mold for processing copper stranded wire. Background Technology
[0002] The special-shaped copper wire stranding mold for copper stranded wire processing can carry out copper stranded wire processing production. Through the combination and installation of the mold, it helps to carry out efficient work, realize the goal of assembly line production, and improve the overall production capacity.
[0003] According to Chinese Patent Publication No. CN211125185U, this utility model belongs to the technical field of copper stranded wire production equipment. It discloses a special-shaped copper wire stranding mold for copper stranded wire production. The stranding mold includes a mold group and a mold support. The mold group includes multiple molds. Each mold includes a positioning plate, a stranding transition cavity, and a trimming cavity arranged coaxially in sequence. The multiple molds are coaxially fixed on the mold support. Each mold has a wire hole on its positioning plate. The wire hole includes a central hole and at least one layer of shrinkage holes concentrically surrounding the central hole. The central hole matches the copper wire core or stranded wire core. The shrinkage holes match the unstretched trapezoidal copper wire. The stranding transition cavity is a frustum-shaped cylinder. The diameter of the feed end of the frustum-shaped cylinder matches the outer contour diameter of the innermost shrinkage hole on the positioning plate. The diameter of the discharge end of the frustum-shaped cylinder matches the diameter of the corresponding stranded wire core. The trimming cavity is a cylindrical cylinder with the same diameter as the discharge end diameter of the frustum-shaped cylinder. This mold can produce copper stranded wires with regular shapes, improving the performance of the copper stranded wires. However, the existing copper stranding molds for processing irregularly shaped copper wires cannot achieve integrated stranding production during use, which is not conducive to dynamic processing. Therefore, there is an urgent need for a device to solve the above problems. Summary of the Invention
[0004] The purpose of this invention is to provide a special-shaped copper wire stranding mold for processing copper stranded wire, so as to solve the problems mentioned in the background art.
[0005] To achieve the above objectives, the present invention provides the following technical solution: a non-standard copper wire stranding mold for processing copper stranded wire, comprising a stranding connection structure and a transmission and cutting structure, wherein the transmission and cutting structure is fixedly connected to the lower end of the stranding connection structure, the stranding connection structure comprising a first stranding component, a copper wire, and a second stranding component, the second stranding component being disposed on one side of the inner end of the stranding connection structure, the side end of the second stranding component being connected to the first stranding component, and a copper wire being movably connected to the center of both the first stranding component and the second stranding component.
[0006] Preferably, the first stranding component includes a compression cylinder, a protective plate, a side guard stand, a transmission channel, a pressing end frame, copper stranded wire, a positioning mounting plate, a motor, and a platform support plate. The side guard stand is located at the inner center of the first stranding component, the transmission channel is located at the lower end of the side guard stand, the protective plate is fixedly connected to the center of the side guard stand, the positioning mounting plate is fixedly connected to the bottom of the side guard stand, the motor is installed at the center of the positioning mounting plate, the platform support plate is fixedly connected to the top of the positioning mounting plate, the compression cylinder is installed at the upper end of the platform support plate, the lower end of the compression cylinder passes through the platform support plate and is telescopically connected to the pressing end frame, and the lower end of the pressing end frame is pressed and connected to the copper stranded wire.
[0007] Preferably, the first twisting component further includes a connecting shaft and a feeding frame. The connecting shaft is fixedly connected to the side end of the motor, and the feeding frame is fixedly connected to the upper end of the connecting shaft. The feeding frame is connected to the connecting shaft.
[0008] Preferably, the transmission cutting structure includes a processing connection component, a positioning support plate, a connecting guide, and a cutting component. The processing connection component is located at the top of the inner end of the transmission cutting structure. The positioning support plate is fixedly connected to the lower end of the processing connection component. The connecting guide is fixedly connected to the side end of the positioning support plate. The cutting component is fixedly connected to the side end of the connecting guide.
[0009] Preferably, the processing connection component includes a housing plate, a rotating shaft, a conductive link, and a mating wheel. The housing plate is located at the center of the inner end of the processing connection component. The rotating shaft is inserted into the center of the housing plate. The side end of the rotating shaft is fixedly connected to the mating wheel. The upper end of the mating wheel is rotatably connected to the conductive link.
[0010] Preferably, the cutting component includes a toothed ring, a drive motor, a toothed frame, a sleeve limiting plate, a displacement knife holder, and a connecting knife holder. The drive motor is installed at the front end of the cutting component, and a toothed ring is fixedly connected to the rear end of the drive motor. A toothed frame is meshed with the side end of the toothed ring, and a connecting knife holder is fixedly connected to the rear end of the toothed frame. A displacement knife holder is fixedly connected to the lower end of the connecting knife holder, and the displacement knife holder is telescopically connected to the sleeve limiting plate.
[0011] Preferably, the drive motor has a fixed frame on its side, and the fixed frame is fixedly connected to the drive motor. The sleeve limiting plate, the displacement tool holder, and the connecting tool holder are symmetrically arranged, and the connecting tool holder has a conical structure design.
[0012] Preferably, the lower end of the connecting shaft is provided with a groove that communicates with the material conveyor, and the groove connects the copper stranded wire to the material conveyor, while the copper stranded wire is connected to the outside.
[0013] Preferably, a protective plate is fixedly connected at a symmetrical position on the side end of the transmission cutting structure.
[0014] A method for using a special-shaped copper wire stranding die for processing copper stranded wire includes the following steps:
[0015] S1. Combine the stranding connection structure and the transmission cutting structure, and connect the copper wire through the first stranding component and the second stranding component. The squeezing cylinders at the inner ends of the first stranding component and the second stranding component are activated, which drives the pressing end frame to extend and retract, so that the pressing end frame drives the copper stranded wire to squeeze the copper wire, thereby fixing the copper wire and the copper stranded wire to each other.
[0016] S2. Then drive the motor, which can drive the connecting shaft and the conveyor to rotate, so that the copper stranded wire is wound and twisted on the copper wire to achieve combination. It is then transmitted again through the transmission channel to the position of the first twisting component to achieve secondary twisting production. After that, the copper wire and copper stranded wire reach the position of the rotating shaft. Through the rotation of the rotating shaft, the transmission link and the rotating wheel, the copper wire and copper stranded wire are transmitted.
[0017] S3. Then start the drive motor. The drive motor drives the gear ring to rotate, which changes the position of the gear frame. This changes the position of the gear frame and acts on the displacement tool holder and the connecting tool holder, enabling the connecting tool holder to perform the extrusion and cutting of copper wire and copper stranded wire, thus improving the cutting production process.
[0018] Compared with the prior art, the beneficial effects of the present invention are as follows:
[0019] I. This invention, through the installation of a stranding connection structure, facilitates stranding production, enabling the forming and connection of copper wires. Furthermore, the stranding connection structure enables double-strand combination production, achieving automated winding and better copper wire combination production. The combination of the stranding connection structure and the transmission and cutting structure enables integrated stranding production, which is beneficial for dynamic processing.
[0020] II. This invention utilizes a transmission and cutting structure, which comprises a processing and connecting component, a positioning support plate, a connecting guide, and a cutting component. The processing and connecting component facilitates the transmission and connection of copper wires. The positioning support plate and the connecting guide are used for positioning the cutting component. The cutting component, through the structure, facilitates the cutting operation, thereby achieving automated production and improving the performance of automated production.
[0021] Third, by installing a protective plate, which is fixed at the side end of the transmission and cutting structure, the present invention can protect the side end, realize the central protection of the twisted connection structure and the transmission and cutting structure, achieve internal and external isolation, and prevent accidental operation. Attached Figure Description
[0022] To more clearly illustrate the technical solutions of the embodiments of the present invention, the accompanying drawings used in the description of the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0023] Figure 1 This is a schematic diagram of the main structure of the present invention;
[0024] Figure 2 This is a side view of the main body of the invention;
[0025] Figure 3 This is a perspective view of the main body of the invention;
[0026] Figure 4 This is a schematic diagram of the twisted connection structure of the present invention;
[0027] Figure 5 This is a schematic diagram of the structure of the first stranding component of the present invention;
[0028] Figure 6 This is a side view of the first stranding component of the present invention;
[0029] Figure 7 This is a schematic diagram of the transmission cutoff structure of the present invention;
[0030] Figure 8 This is a schematic diagram of the structure of the connected component processed by the present invention;
[0031] Figure 9 This is a schematic diagram of the cutting component of the present invention;
[0032] Figure 10 This is a schematic diagram of the structure of the second embodiment of the main body of the present invention.
[0033] In the diagram: 1-Twisted connection structure, 2-Transmission and cutting structure, 3-First twisted component, 4-Copper wire, 5-Second twisted component, 6-Extrusion cylinder, 7-Protective plate, 8-Side guard frame, 9-Transmission channel, 10-Pressing end frame, 11-Copper stranded wire, 12-Positioning mounting plate, 13-Motor, 14-Platform support plate, 15-Connecting shaft, 16-Feeder rack, 17-Processing connection component, 18-Positioning support plate, 19-Matching guide frame, 20-Cutting component, 21-Shell plate, 22-Rotating shaft, 23-Transmission link, 24-Matching wheel, 25-Gear ring, 26-Drive motor, 27-Gear frame, 28-Sleeve limiting plate, 29-Displacement knife holder, 30-Connecting knife holder, 31-Protective plate. Detailed Implementation
[0034] To enable those skilled in the art to better understand the present application, the technical solutions in the embodiments of the present application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present application, and not all embodiments. Based on the embodiments in the present application, all other embodiments obtained by those of ordinary skill in the art without creative effort should fall within the scope of protection of the present application.
[0035] It should be noted that the terms "first," "second," etc., 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 for the embodiments of this application described herein. Furthermore, the terms "comprising" and "having," and any variations thereof, are intended to cover non-exclusive inclusion; for example, a process, method, system, product, or apparatus that comprises a series of steps or units is not necessarily limited to those steps or units explicitly listed, but may include other steps or units not explicitly listed or inherent to such processes, methods, products, or apparatus.
[0036] The invention will be further described below with reference to the accompanying drawings.
[0037] Example 1
[0038] Please see Figure 1 , Figure 2 , Figure 3 , Figure 4 The present invention provides an embodiment of a special-shaped copper wire stranding mold for processing copper stranded wire, comprising a stranding connection structure 1 and a transmission and cutting structure 2. The transmission and cutting structure 2 is fixedly connected to the lower end of the stranding connection structure 1. The stranding connection structure 1 includes a first stranding component 3, a copper wire 4, and a second stranding component 5. The second stranding component 5 is disposed on one side of the inner end of the stranding connection structure 1, and the side end of the second stranding component 5 is connected to the first stranding component 3. The copper wire 4 is movably connected to the center of both the first stranding component 3 and the second stranding component 5. The combination and connection of the first stranding component 3, the copper wire 4, and the second stranding component 5 realizes the processing and stranding purpose of the copper wire 4.
[0039] Please see Figure 5The first twisting component 3 includes a compression cylinder 6, a protective plate 7, a side guard frame 8, a transmission channel 9, a pressing end frame 10, copper stranded wire 11, a positioning mounting plate 12, a motor 13, and a platform support plate 14. The side guard frame 8 is located at the inner center of the first twisting component 3, and the transmission channel 9 is located at the lower end of the side guard frame 8. The protective plate 7 is fixedly connected to the center of the side guard frame 8, and the positioning mounting plate 12 is fixedly connected to the bottom of the side guard frame 8. The motor 13 is installed at the center of the positioning mounting plate 12. A platform support plate 14 is fixedly connected to the top of the device. A pressing cylinder 6 is installed on the upper end of the platform support plate 14. The lower end of the pressing cylinder 6 passes through the platform support plate 14 and is telescopically connected to the pressing end frame 10. The lower end of the pressing end frame 10 is pressed and connected to the copper stranded wire 11. The combination of the pressing cylinder 6, protective plate 7, side guard frame 8, transmission channel 9, pressing end frame 10, copper stranded wire 11, positioning mounting plate 12, motor 13 and platform support plate 14 facilitates coordinated pressing work and realizes the connection and combination of copper wire 4 and copper stranded wire 11.
[0040] Please see Figure 6 The first twisting component 3 also includes a connecting shaft 15 and a feeding frame 16. The connecting shaft 15 is fixedly connected to the side end of the motor 13, and the feeding frame 16 is fixedly connected to the upper end of the connecting shaft 15. The feeding frame 16 is connected to the connecting shaft 15. The connection shaft 15 and the feeding frame 16 are arranged to facilitate the feeding purpose.
[0041] Please see Figure 7 The transmission cutting structure 2 includes a processing connection component 17, a positioning support plate 18, a connecting guide 19, and a cutting component 20. The processing connection component 17 is located at the top of the inner end of the transmission cutting structure 2. The positioning support plate 18 is fixedly connected to the lower end of the processing connection component 17. The connecting guide 19 is fixedly connected to the side end of the positioning support plate 18. The cutting component 20 is fixedly connected to the side end of the connecting guide 19. The arrangement of the processing connection component 17, the positioning support plate 18, the connecting guide 19, and the cutting component 20 facilitates the transmission cutting task.
[0042] Please see Figure 8 The processing and connecting component 17 includes a housing plate 21, a rotating shaft 22, a conductive link 23, and a mating wheel 24. The housing plate 21 is located at the center of the inner end of the processing and connecting component 17. The rotating shaft 22 is inserted into the center of the housing plate 21. The side end of the rotating shaft 22 is fixedly connected to the mating wheel 24. The upper end of the mating wheel 24 is rotatably connected to the conductive link 23. The combination of the housing plate 21, the rotating shaft 22, the conductive link 23, and the mating wheel 24 enables transmission and connection work.
[0043] Please see Figure 9The cutting component 20 includes a toothed ring 25, a drive motor 26, a toothed frame 27, a sleeve limiting plate 28, a displacement knife holder 29, and a connecting knife holder 30. The drive motor 26 is installed at the front end of the cutting component 20. The toothed ring 25 is fixedly connected to the rear end of the drive motor 26. The toothed frame 27 is meshed with the side end of the toothed ring 25. The connecting knife holder 30 is fixedly connected to the rear end of the toothed frame 27. The displacement knife holder 29 is fixedly connected to the lower end of the connecting knife holder 30. The displacement knife holder 29 is telescopically connected to the sleeve limiting plate 28. The arrangement of the toothed ring 25, drive motor 26, toothed frame 27, sleeve limiting plate 28, displacement knife holder 29, and connecting knife holder 30 enables symmetrical cutting production.
[0044] The drive motor 26 has a fixed bracket on its side, and the fixed bracket is fixedly connected to the drive motor 26. The sleeve limit plate 28, the displacement tool holder 29, and the connecting tool holder 30 are symmetrically arranged, and the connecting tool holder 30 has a conical structure design. The lower end of the connecting shaft 15 has a groove that communicates with the material conveyor 16, and the groove connects the copper stranded wire 11 to the material conveyor 16. The copper stranded wire 11 is connected to the outside.
[0045] A method for using a special-shaped copper wire stranding die for processing copper stranded wire includes the following steps:
[0046] S1. Combine the stranded connection structure 1 and the transmission cutting structure 2, and connect the copper wire 4 through the first stranded component 3 and the second stranded component 5. The squeezing cylinder 6 at the inner end of the first stranded component 3 and the second stranded component 5 is activated, which drives the pressing end frame 10 to extend and retract, so that the pressing end frame 10 drives the copper stranded wire 11 to squeeze the copper wire 4, thereby fixing the copper wire 4 and the copper stranded wire 11 to each other.
[0047] S2. Then drive motor 13, which can drive the connecting shaft 15 and the conveyor frame 16 to rotate, so that the copper stranded wire 11 is wound and twisted on the copper wire 4 to achieve combination. It is then transmitted again through the transmission channel 9 to the position of the first twisting component 3 to achieve secondary twisting production. After that, the copper wire 4 and the copper stranded wire 11 reach the position of the rotating shaft 22. Through the rotation of the rotating shaft 22, the transmission link 23 and the mating wheel 24, the transmission of the copper wire 4 and the copper stranded wire 11 is realized.
[0048] S3. Then start the drive motor 26. The drive motor 26 drives the gear ring 25 to rotate, which causes the gear frame 27 to change position. This changes position and acts on the displacement tool holder 29 and the connecting tool holder 30, so that the connecting tool holder 30 can perform the extrusion and cutting of copper wire 4 and copper stranded wire 11, thus improving the cutting production work.
[0049] In this embodiment, the copper wire 4 is connected to the first stranding component 3 and the second stranding component 5, allowing for transmission on the first stranding component 3 and the second stranding component 5. The arrangement of the first stranding component 3 and the second stranding component 5 facilitates the stranding process of the copper wire 4. The transmission channel 9 is used for the transmission of the copper wire 4. The protective plate 7 and the side support frame 8 provide support and protection. The extrusion cylinder 6 is connected to the upper end of the platform support plate 14 and can control the extension and retraction of the pressing end frame 10, acting on the copper stranded wire 11. The copper stranded wire 11 and copper wire 4 can be pressed together to achieve a close connection. The positioning mounting plate 12 facilitates the installation of the motor 13. The motor 13 can rotate to achieve the winding and twisting of the copper stranded wire 11. The motor 13 can also drive the connecting shaft 15 to rotate. The feeding rack 16 is located on the side of the connecting shaft 15 and can rotate with the connecting shaft 15 to achieve the winding and twisting operation. The feeding rack 16 is connected to the outside world through the connecting shaft 15, facilitating the winding and twisting of the copper stranded wire 11. The feeding connection of component 1 is handled by two symmetrically arranged connecting parts 17 to facilitate the transmission of copper wire 4. The positioning support plate 18 and the connecting guide frame 19 support the cutting component 20, which can perform cutting operations. Driven by an external motor, the connecting wheel 24 can rotate, acting on the transmission belt 23, which can drive multiple connecting wheels 24 to connect. The connecting wheel 24 can also drive the rotating shaft 22 to rotate. The sleeve plate 21 supports the rotating shaft 22. The lower end of the connecting belt 23 is provided with a toothed groove, which can cooperate with the mating wheel 24 to drive the connection. The drive motor 26 can drive the toothed ring 25 to rotate. The rotation of the toothed ring 25 can drive the meshing toothed frame 27 to move, which acts on the displacement knife holder 29 and the connecting knife holder 30, thereby changing the position of the displacement knife holder 29 and the connecting knife holder 30. The setting of the limiting plate 28 can realize the limiting connection purpose of the displacement knife holder 29 and the connecting knife holder 30, which facilitates the cutting production of copper wire 4.
[0050] Example 2
[0051] Based on Example 1, such as Figure 10 As shown, a protective plate 31 is fixedly connected at a symmetrical position on the side end of the transmission cut-off structure 2.
[0052] In implementing this embodiment, the protective plate 31 is fixed to the side end of the transmission cutting structure 2 to achieve side protection, which facilitates the surrounding protection of the transmission cutting structure 2 and realizes the side protection of the twisted connection structure 1 and the transmission cutting structure 2.
[0053] Working Principle: First, the stranding connection structure 1 and the transmission and cutting structure 2 are combined. The stranding connection structure 1 is composed of a first stranding component 3, copper wire 4, and a second stranding component 5. The copper wire 4 is connected to the first stranding component 3 and the second stranding component 5, allowing transmission on the first stranding component 3 and the second stranding component 5. The arrangement of the first stranding component 3 and the second stranding component 5 facilitates the stranding process of the copper wire 4. The first stranding component 3 is composed of an extrusion cylinder 6, a protective plate 7, a side guard frame 8, a transmission channel 9, a pressing end frame 10, copper stranded wire 11, a positioning mounting plate 12, a motor 13, and a platform support plate 14. The transmission channel 9 is used for the transmission of the copper wire 4. The protective plate 7 and the side guard frame 8 provide support and protection. The air cylinder 6 is connected to the upper end of the platform support plate 14 and can control the extension and retraction of the pressing end frame 10. Acting on the copper stranded wire 11, it can squeeze the copper stranded wire 11 and the copper wire 4 to achieve a close connection. The positioning mounting plate 12 facilitates the installation of the motor 13, which can rotate to achieve the winding and twisting of the copper stranded wire 11. The first twisting component 3 is also combined with a connecting shaft 15 and a feeding rack 16. The motor 13 can drive the connecting shaft 15 to rotate. The feeding rack 16 is located on the side of the connecting shaft 15 and can rotate with it to achieve the winding and twisting operation. The feeding rack 16 is connected to the outside via the connecting shaft 15, facilitating the feeding and connection of the copper stranded wire 11. The cutting structure 2 is composed of a processing and connecting component 17, a positioning support plate 18, a connecting guide frame 19, and a cutting component 20. Two processing and connecting components 17 are provided, symmetrically arranged, to facilitate the conduction of copper wire 4. The positioning support plate 18 and the connecting guide frame 19 support the cutting component 20, allowing it to perform cutting operations. The processing and connecting component 17 is composed of a housing plate 21, a rotating shaft 22, a conductive link 23, and a mating wheel 24. Driven by an external motor, the mating wheel 24 rotates, acting on the conductive link 23 to connect multiple mating wheels 24. The mating wheels 24 also drive the rotating shaft 22 to rotate. The housing plate 21 supports and connects the rotating shaft 22. Furthermore, the lower end of the transmission link 23 is provided with a toothed groove, which can cooperate with the mating wheel 24 for driving connection. The cutting component 20 is connected by a toothed ring 25, a drive motor 26, a toothed frame 27, a sleeve limiting plate 28, a displacement knife holder 29, and a connecting knife holder 30. The drive motor 26 can drive the toothed ring 25 to rotate. The rotation of the toothed ring 25 can drive the meshing toothed frame 27 to move, which acts on the displacement knife holder 29 and the connecting knife holder 30, thereby changing the position of the displacement knife holder 29 and the connecting knife holder 30. The setting of the sleeve limiting plate 28 can achieve the purpose of limiting the connection of the displacement knife holder 29 and the connecting knife holder 30, which facilitates the cutting production of copper wire 4. When the user needs to use it, the stranding connection structure 1 and the transmission cutting structure 2 are combined.The copper wire 4 is connected to the first stranding component 3 and the second stranding component 5. The extrusion cylinder 6 at the inner end of the first stranding component 3 and the second stranding component 5 is activated, which drives the pressing end frame 10 to extend and retract, so that the pressing end frame 10 drives the copper stranded wire 11 to compress the copper wire 4, thereby fixing the copper wire 4 and the copper stranded wire 11 to each other. Then, the motor 13 is driven, which can drive the connecting shaft 15 and the conveying frame 16 to rotate, so that the copper stranded wire 11 is wound and twisted on the copper wire 4 to achieve combination. It is then transferred again through the transmission channel 9 to the first stranding part. At position 3, the secondary stranding process is completed. Afterwards, copper wire 4 and copper stranded wire 11 reach position 22 of the rotating shaft. Through the rotation of the rotating shaft 22, the transmission link 23, and the mating wheel 24, the copper wire 4 and copper stranded wire 11 are transmitted. Then, the drive motor 26 is activated, driving the gear ring 25 to rotate, causing the gear holder 27 to change position. This changes position on the displacement tool holder 29 and the connecting tool holder 30, enabling the connecting tool holder 30 to perform the extrusion and cutting of the copper wire 4 and copper stranded wire 11, thus better performing the cutting process and completing the work.
[0054] Although embodiments of the invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the invention, the scope of which is defined by the appended claims and their equivalents.
Claims
1. A special-shaped copper wire stranding mold for processing copper stranded wire, comprising a stranding connection structure (1) and a transmission and cutting structure (2), wherein the transmission and cutting structure (2) is fixedly connected to the lower end of the stranding connection structure (1), characterized in that: The twisted connection structure (1) includes a first twisted component (3), a copper wire (4), and a second twisted component (5). The second twisted component (5) is located on one side of the inner end of the twisted connection structure (1). The side end of the second twisted component (5) is connected to the first twisted component (3). The center of both the first twisted component (3) and the second twisted component (5) is movably connected with a copper wire (4). The first twisting component (3) includes a compression cylinder (6), a protective plate (7), a side guard stand (8), a transmission channel (9), a pressing end frame (10), copper stranded wire (11), a positioning mounting plate (12), a motor (13), and a platform support plate (14). The side guard stand (8) is located at the inner center of the first twisting component (3), and the transmission channel (9) is located at the lower end of the side guard stand (8). The protective plate (7) is fixedly connected to the center of the side guard stand (8). A positioning mounting plate (12) is fixedly connected to the bottom of the upright frame (8). A motor (13) is installed at the center of the positioning mounting plate (12). A platform support plate (14) is fixedly connected to the top of the positioning mounting plate (12). A compression cylinder (6) is installed at the upper end of the platform support plate (14). The lower end of the compression cylinder (6) passes through the platform support plate (14) and is telescopically connected to the pressing end frame (10). The lower end of the pressing end frame (10) is pressed and connected to the copper stranded wire (11). The first twisting component (3) further includes a connecting shaft (15) and a feeding rack (16). The connecting shaft (15) is fixedly connected to the side end of the motor (13), and the feeding rack (16) is fixedly connected to the upper end of the connecting shaft (15). The feeding rack (16) is connected to the connecting shaft (15). The transmission cutting structure (2) includes a processing connection component (17), a positioning support plate (18), a connecting guide (19), and a cutting component (20). The processing connection component (17) is located at the top of the inner end of the transmission cutting structure (2). The positioning support plate (18) is fixedly connected to the lower end of the processing connection component (17). The connecting guide (19) is fixedly connected to the side end of the positioning support plate (18). The cutting component (20) is fixedly connected to the side end of the connecting guide (19). The processing connection component (17) includes a housing plate (21), a rotating shaft (22), a conductive link (23), and a mating wheel (24). The housing plate (21) is located at the center of the inner end of the processing connection component (17). The rotating shaft (22) is inserted into the center of the housing plate (21). The side end of the rotating shaft (22) is fixedly connected to the mating wheel (24). The upper end of the mating wheel (24) is rotatably connected to the conductive link (23). The cutting component (20) includes a toothed ring (25), a drive motor (26), a toothed frame (27), a sleeve limiting plate (28), a displacement knife holder (29), and a connecting knife holder (30). The drive motor (26) is installed at the front end of the cutting component (20). The toothed ring (25) is fixedly connected to the rear end of the drive motor (26). The toothed frame (27) is meshed with the side end of the toothed ring (25). The connecting knife holder (30) is fixedly connected to the rear end of the toothed frame (27). The displacement knife holder (29) is fixedly connected to the lower end of the connecting knife holder (30). The displacement knife holder (29) is telescopically connected to the sleeve limiting plate (28).
2. The irregular copper wire stranding mold for processing copper stranded wire according to claim 1, characterized in that: The drive motor (26) is provided with a fixed frame on its side, and the fixed frame is fixedly connected to the drive motor (26). The sleeve limiting plate (28), displacement tool holder (29), and connecting tool holder (30) are symmetrically arranged, and the connecting tool holder (30) is designed with a conical structure.
3. The irregular copper wire stranding mold for processing copper stranded wire according to claim 2, characterized in that: The lower end of the connecting shaft (15) is provided with a groove that communicates with the material conveyor (16), and the groove connects the copper stranded wire (11) to the material conveyor (16), and the copper stranded wire (11) is connected to the outside.
4. The irregular copper wire stranding mold for processing copper stranded wire according to claim 3, characterized in that: A protective plate (31) is fixedly connected at a symmetrical position on the side end of the transmission cut-off structure (2).
5. The method of using a special-shaped copper wire stranding mold for processing copper stranded wire according to claim 4, characterized in that, Includes the following steps: S1. Combine the stranded connection structure (1) and the transmission cut-off structure (2) to connect the copper wire (4) through the first stranded component (3) and the second stranded component (5). The squeezing cylinder (6) at the inner end of the first stranded component (3) and the second stranded component (5) is activated, which drives the pressing end frame (10) to extend and retract, so that the pressing end frame (10) drives the copper stranded wire (11) to squeeze the copper wire (4) and realize the mutual fixation of the copper wire (4) and the copper stranded wire (11). S2. Then drive the motor (13). The motor (13) can drive the connecting shaft (15) and the material conveyor (16) to rotate, so that the copper strand (11) is wound and twisted on the copper wire (4) to achieve combination. It is then transmitted through the transmission channel (9) to the position of the first twisting component (3) to achieve secondary twisting production. Then the copper wire (4) and the copper strand (11) reach the position of the rotating shaft (22). Through the rotation of the rotating shaft (22), the transmission link (23) and the mating wheel (24), the transmission of the copper wire (4) and the copper strand (11) is realized. S3. Then start the drive motor (26). The drive motor (26) drives the gear ring (25) to rotate, causing the gear frame (27) to change position and act on the displacement tool holder (29) and the connecting tool holder (30), so that the connecting tool holder (30) can perform the extrusion and cutting of copper wire (4) and copper stranded wire (11) and better carry out the cutting production work.