Metal wire stranding forming device
By designing a metal wire stranding and forming device, efficient production of metal wires with small outer diameter and large quantity of strands was achieved, solving the problem of high maintenance costs in existing technologies and ensuring the stability of the wires inside the fuel dispenser pipe and static electricity discharge.
Patent Information
- Application Number
- CN202423322456.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-31
- Publication Date
- 2025-12-09
- Estimated Expiration
- 2034-12-31
AI Technical Summary
Existing wire stranding machines are unable to efficiently produce a large number of wire strands with small outer diameters, resulting in high maintenance costs and failing to meet the production needs of fuel dispenser pipes.
A metal wire stranding and forming device was designed, including a stranding device and a forming device. The device achieves efficient stranding and forming of multiple metal wires by simultaneously feeding wire through a wire feeding component, stranding and winding through a wire winding component, twisting the wires into a metal rope through a stranding component, extruding and forming through a forming component, and winding through a winding component.
It enables the efficient production of metal wires with small outer diameter and large quantity, reduces maintenance costs, and ensures that the wire has axial elastic force in the fuel dispenser pipe by extruding a preset shape on the metal rope, preventing fatigue fracture and ensuring that static electricity can be discharged in time.
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Figure CN223646843U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the technical field of fuel dispenser pipe production equipment, specifically to a metal wire strand forming device. Background Technology
[0002] To promptly discharge static electricity and prevent accidental deflagration, fiber-braided refueling hoses typically require the embedding of a flexible metal wire inside the product. This metal wire is characterized by a small outer diameter of the strands and a large number of strands.
[0003] Existing steel wire stranding machines with skeleton layers require special spindle frames (generally less than 20 spindles can be installed) because the stranded steel wires are relatively thick and each wire spindle is relatively heavy. They also require tension control devices and special adjustments to produce metal wires for fuel dispenser pipes, resulting in very high maintenance costs.
[0004] Therefore, a metal wire stranding device is needed to strand metal wires with small outer diameters and a large number of strands to meet the production needs of fuel dispenser pipes. Utility Model Content
[0005] In order to overcome the shortcomings of the existing technology, the purpose of this utility model is to provide a metal wire stranding and forming device, which can be used to strand metal wires with small outer diameter and large quantity, to meet the production needs of fuel dispenser pipes.
[0006] The objective of this utility model is achieved through the following technical solution:
[0007] A metal wire stranding and forming apparatus, characterized in that it includes a stranding device and a forming device;
[0008] The stranding device includes a wire feeding assembly and a wire winding assembly; the wire feeding assembly is used to simultaneously feed multiple single-strand metal wires, and the wire winding assembly is used to strand and wind the simultaneously fed multiple single-strand metal wires into a multi-strand metal wire.
[0009] The forming device is connected to the stranding device and is used to twist and coil multiple sets of multi-strand metal wires output by the stranding device; the forming device includes a stranding assembly, a forming assembly, and a winding assembly; the stranding assembly is used to twist multiple sets of multi-strand metal wires into a metal rope, the forming assembly is used to extrude and form the metal rope, and the winding assembly is used to coil the formed metal rope.
[0010] In one optional embodiment, the wire feeding assembly includes a wire feeding frame, a conductor frame, and a first stranding frame; the wire feeding frame is provided with a plurality of wire spools, and wire spools are sleeved on the wire spools, the wire spools being used to fix single-strand metal wire rolls; the conductor frame is disposed on the top of the wire feeding frame, and a conductor roller is rotatably connected to the conductor frame; the first stranding frame is disposed on one side of the conductor frame, and a first stranding steel wheel is fixed on the first stranding frame, the first stranding steel wheel having a first gathering channel that allows multiple single-strand metal wires to pass through.
[0011] In one optional embodiment, the wire feeding frame includes a base, columns, and crossbeams;
[0012] The column is vertically fixed to the base, and a plurality of the crossbeams are linearly arranged on the column along the height direction; the crossbeams have outwardly extending inclined portions on both sides, the inclined portions being used to rotatably connect with the spool shaft, thereby causing the ends of the spool shaft to be inclined upward on both sides of the crossbeam;
[0013] Several of the aforementioned spools are arranged in a rectangular array on the crossbeam on the wire feeding frame. Each column of spools is topped with a guide roller, and the horizontal distance between the spools and the guide rollers in each column gradually decreases from top to bottom.
[0014] In one optional embodiment, the cable winding assembly includes a cable winding frame, a cable winding structure, a winding structure, and a drive structure mounted on the cable winding frame;
[0015] The wire laying structure is connected to the wire feeding assembly. The wire laying structure includes an optical axis and a guide wheel that are rotatably connected to the wire winding frame. The optical axis wire laying device and the guide wheel form a wire laying gap that allows multiple strands of metal wire to pass through.
[0016] The winding structure includes a large I-beam shaft, on which a large I-beam wheel for winding multiple strands of metal wire is provided;
[0017] The drive structure has an output shaft, which is connected to the large I-beam wheel shaft for transmission, and the output shaft is connected to the optical shaft for transmission via a chain and sprocket.
[0018] In one optional embodiment, the forming device has a forming frame and a winding frame. The forming frame is used to fix the strand assembly and the forming assembly. The strand assembly and the forming assembly are respectively disposed at opposite ends of the forming frame. The winding frame is used to fix the winding assembly.
[0019] In one optional embodiment, the strand assembly includes a strand drive, a rotating frame, and a second stranding steel wheel; the second stranding steel wheel is fixed to the forming frame by a second stranding frame, and a second gathering channel for metal rope to pass through is formed inside the second stranding steel wheel;
[0020] The strand drive has an output shaft; the rotating frame is fixed to the output shaft of the strand drive, and a mounting shaft is fixed on the rotating frame. The mounting shaft is arranged along the radial direction of the output shaft, and several sets of large I-beams wound with multiple strands of metal wire are sleeved on the mounting shaft.
[0021] In one optional embodiment, the forming assembly includes a forming drive, a first pressure roller, and a second pressure roller;
[0022] Both the first pressure roller and the second pressure roller are rotatably connected to the forming frame. A forming bottom mold is provided on the surface of the first pressure roller, and a forming top mold is formed on the surface of the second pressure roller. When the forming bottom mold and the forming top mold are engaged, a forming cavity is formed between the forming bottom mold and the forming top mold.
[0023] The forming drive is fixed to the forming frame by a motor frame. The forming drive has an output shaft, and the output shaft is connected to the first pressure roller and the second pressure roller respectively through a transmission assembly.
[0024] In one optional embodiment, the molding cavity is an S-shaped cavity.
[0025] In one optional embodiment, the molding cavity is a zigzag-shaped cavity.
[0026] In one optional embodiment, the winding assembly includes a winding drive, a winding guide wheel, and a winding wheel; the winding guide wheel is rotatably connected to the winding frame and is connected to the forming assembly; the winding wheel is rotatably connected to the winding frame, the winding drive has an output shaft, and the output shaft of the winding drive is rotatably connected to the winding wheel; the winding drive provides power to wind the formed metal rope output from the forming assembly onto the winding wheel.
[0027] Compared with the prior art, the beneficial effects of this utility model are as follows:
[0028] This invention relates to a metal wire stranding and forming device. A wire feeding assembly simultaneously feeds multiple single-strand metal wires, while a wire winding assembly strands and winds them into a multi-strand metal wire. The multi-strand metal wires output from the stranding device are then fed to a forming device, where a twisting assembly twists them into a metal rope. A forming assembly then extrudes and shapes the metal rope, and finally, a winding assembly winds it up. This process is repeated to produce metal wire for fuel dispenser pipes. This invention utilizes a wire feeding frame with multiple reels that simultaneously feed and twist multiple single-strand metal wires, making it suitable for stainless steel wires with small outer diameters and a large number of strands. The forming assembly extrudes a pre-defined shape into the metal rope, giving it axial elasticity. When used as a conductor in fuel dispenser pipes, this ensures timely discharge of static electricity. When the fuel dispenser pipe is bent, the conductor straightens and contracts like a spring, significantly reducing tensile load and minimizing fatigue fracture. Attached Figure Description
[0029] Figure 1 This is a schematic diagram of the metal wire stranding forming device of Example 1;
[0030] Figure 2 This is a schematic diagram of the wire feeding assembly of the wire stranding forming device in Example 1;
[0031] Figure 3 This is a left view of the wire feeding assembly of the wire stranding forming apparatus of Example 1;
[0032] Figure 4 This is a schematic diagram of the wire winding assembly of the metal wire stranding forming device in Example 1;
[0033] Figure 5 This is a top view of the wire winding assembly of the metal wire stranding forming apparatus of Example 1;
[0034] Figure 6 This is a schematic diagram of the stranding assembly and the forming assembly of the metal wire stranding forming device in Example 1;
[0035] Figure 7 This is a top view of the forming assembly of the metal wire stranding forming apparatus of Example 1;
[0036] Figure 8 This is a schematic diagram of the winding assembly of the metal wire stranding forming device in Example 1.
[0037] In the diagram: 10. Pay-off assembly; 11. Pay-off frame; 111. Wire reel shaft; 1111. Wire reel; 112. Base; 113. Column; 114. Crossbeam; 12. Conductor frame; 121. Conductor roller; 13. First stranding frame; 131. First stranding steel wheel; 20. Wire winding assembly; 21. Wire winding frame; 22. Wire winding structure; 221. Optical shaft; 222. Wire reel; 23. Winding structure; 231. Large I-beam reel; 232. 24. Large I-beam roller shaft; 30. Drive structure; 31. Twisted strand assembly; 32. Forming frame; 33. Twisted strand drive component; 34. Rotating frame; 35. Mounting shaft; 36. Second stranded steel wheel; 47. Forming assembly; 48. Forming drive component; 49. First pressure roller; 40. Forming bottom mold; 41. Second pressure roller; 42. Forming top mold; 53. Winding assembly; 54. Winding drive component; 55. Winding frame; 56. Winding guide roller; 57. Winding roller. Detailed Implementation
[0038] The present invention will now be further described in conjunction with the accompanying drawings and specific embodiments. It should be noted that, without conflict, the various embodiments or technical features described below can be arbitrarily combined to form new embodiments. Unless otherwise specified, the materials and equipment used in this embodiment are all commercially available. Examples of the embodiments are shown in the accompanying drawings, wherein the same or similar reference numerals denote the same or similar elements or elements having the same or similar functions throughout. The embodiments described below with reference to the accompanying drawings are exemplary and are only used to explain this application, and should not be construed as limiting this application.
[0039] In the description of this application, it should be understood that the terms "upper," "lower," "front," "rear," "vertical," "horizontal," "top," "bottom," "inner," and "outer," etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings, and are only for the convenience of describing this application and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation on this application. In the description of this application, "a plurality of" means two or more, unless otherwise precisely specified.
[0040] In the description of this application, it should be noted that, unless otherwise expressly specified and limited, the terms "connected," "linked," and "connected" should be interpreted broadly. For example, they can refer to a fixed connection, a connection through an intermediary, or a connection within two elements or an interaction between two elements. Those skilled in the art can understand the specific meaning of the above terms in this application according to the specific circumstances.
[0041] 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. 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 process, method, product, or apparatus.
[0042] Example 1:
[0043] Please refer to Figure 1-8 This embodiment provides a metal wire stranding and forming device. The metal wire in this embodiment is generally stainless steel wire, mainly used for producing stainless steel wire conductors for fuel dispenser pipes. This stainless steel wire conductor effectively discharges static electricity to prevent accidental deflagration. The metal wire stranding and forming device of this embodiment includes a stranding device and a forming device.
[0044] The stranding device includes a wire feeding assembly 10 and a wire winding assembly 20 arranged in sequence; the wire feeding assembly 10 is used to simultaneously feed multiple single-strand metal wires, and the wire winding assembly 20 is used to strand and wind the simultaneously fed multiple single-strand metal wires into a multi-strand metal wire.
[0045] The forming device is connected to the stranding device and is used to twist and coil multiple sets of multi-strand metal wires output by the stranding device; the forming device includes a stranding assembly 30, a forming assembly 40 and a winding assembly 50; the stranding assembly 30 is used to twist multiple sets of multi-strand metal wires into a metal rope, the forming assembly 40 is used to extrude and form the metal rope, and the winding assembly 50 is used to wind up the formed metal rope.
[0046] Specifically, the wire feeding assembly 10 includes a wire feeding frame 11, a conductor frame 12, and a first stranding frame 13; the wire feeding frame 11 is provided with a plurality of wire spool shafts 111, and wire spools 1111 are sleeved on the wire spool shafts 111, the wire spools 1111 being used to fix single-strand metal wire rolls; the conductor frame 12 is disposed on the top of the wire feeding frame 11, and a conductor roller 121 is rotatably connected to the conductor frame 12; the first stranding frame 13 is disposed on one side of the conductor frame 12, and a first stranding steel wheel 131 is fixed on the first stranding frame 13, the first stranding steel wheel 131 having a first gathering channel that allows multiple single-strand metal wires to pass through.
[0047] During the production process, multiple single-strand metal wires are simultaneously released from the reels 1111 on several reel shafts 111. The multiple single-strand metal wires are guided by the guide roller 121 into the first gathering channel of the first stranding steel wheel 131 and gathered to form a group of multi-strand metal wires.
[0048] The wire feeding frame 11 in this embodiment includes a base 112, uprights 113, and crossbeams 114. The base 112 is fixed to the ground by support feet, and two uprights 113 are vertically fixed to both ends of the base 112. A plurality of crossbeams 114 are linearly arranged on the uprights 113 along the height direction. The crossbeams 114 have outwardly extending inclined portions on both sides, which are used to rotatably connect with the spool shaft 111, so that the end of the spool shaft 111 is inclined upward on both sides of the crossbeam 114 to prevent the spool 1111 from coming off the spool shaft 111.
[0049] A plurality of the aforementioned spools 111 are arranged in a rectangular array on the crossbeam 114 on the wire feeding frame 11. Each column of spools 111 is provided with a wire roller 121 at its top. The horizontal distance between the spools 111 and the wire roller 121 in each column gradually decreases from top to bottom, so as to make room for the passage of the metal wire and prevent the metal wires from interfering with each other.
[0050] In this embodiment, wire feed rack 11 is provided on both sides with wire reel shafts 111. The wire reel shafts 111 are arranged in a 3x5 matrix array on the wire feed rack 11, that is, there are 5 crossbeams 114. Three wire reel shafts 111 are fixed on the inclined part on one side of each layer of crossbeams 114, so that one wire feed rack 11 can accommodate 30 wire reel shafts 111, which can strand 30 metal wires into a coil, meeting the production requirements of stainless steel wire conductors for fuel dispenser pipes.
[0051] The cable winding assembly 20 of this embodiment includes a cable winding frame 21, on which a cable winding structure 22, a winding structure 23 and a driving structure 24 are mounted.
[0052] The wire laying structure 22 is connected to the wire feeding assembly 10. The wire laying structure 22 includes an optical shaft 221 and a guide wheel 222 that are rotatably connected to the wire winding frame 21. The optical shaft 221 wire laying device and the guide wheel 222 form a wire laying gap that allows multiple strands of metal wire to pass through.
[0053] The winding structure 23 includes a large I-beam shaft 232, on which a large I-beam wheel 231 for winding multiple strands of metal wire is provided;
[0054] The drive structure 24 has an output shaft, which is connected to the large I-beam wheel shaft 232 in a transmission connection. The output shaft is also connected to the optical shaft 221 in a transmission connection via a chain and sprocket.
[0055] The drive structure 24 provides power to drive the optical axis 221 and the large I-beam wheel shaft 232 to rotate, so that the multi-strand metal wires are wound onto the large I-beam wheel 231 after passing through the wire laying gap; the stranding device outputs multiple sets of large I-beam wheels 231 with multi-strand metal wires wound onto the forming device.
[0056] The forming device has a forming frame 31 and a winding frame 52. The forming frame 31 is used to fix the strand assembly 30 and the forming assembly 40. The strand assembly 30 and the forming assembly 40 are respectively arranged at opposite ends of the forming frame 31. The winding frame 52 is used to fix the winding assembly 50.
[0057] The strand assembly 30 includes a strand drive 32, a rotating frame 33 and a second stranding steel wheel 34; the second stranding steel wheel 34 is fixed to the forming frame 31 by a second stranding frame, and a second gathering channel for metal rope to pass through is formed in the second stranding steel wheel 34.
[0058] The strand drive 32 has an output shaft; the rotating frame 33 is fixed to the output shaft of the strand drive 32, and a mounting shaft 331 is fixed on the rotating frame 33. The mounting shaft 331 is arranged along the radial direction of the output shaft, and several sets of large I-beam wheels 231 wound with multiple strands of metal wire are sleeved on the mounting shaft 331.
[0059] The twisted strand drive 32 provides power to drive the rotating frame 33 to rotate, which in turn drives several large I-beam wheels 231 on the mounting shaft 331 to rotate. The multiple strands of metal wires wound around the surface of the large I-beam wheels 231 are twisted into a metal rope. The metal rope passes through the second gathering channel and is then gathered and sent to the forming assembly 40.
[0060] The forming assembly 40 includes a forming drive 41, a first pressure roller 42, and a second pressure roller 43;
[0061] The first pressure roller 42 and the second pressure roller 43 are both rotatably connected to the forming frame 31. The surface of the first pressure roller 42 is provided with a forming bottom mold 421, and the surface of the second pressure roller 43 is formed with a forming top mold 431. When the forming bottom mold 421 and the forming top mold 431 are engaged, a forming cavity is formed between the forming bottom mold 421 and the forming top mold 431.
[0062] The forming drive component 41 is fixed to the forming frame 31 by a motor frame. The forming drive component 41 has an output shaft. The output shaft of the forming drive component 41 is connected to the first pressure roller 42 and the second pressure roller 43 respectively through a transmission assembly. The forming drive component 41 drives the first pressure roller 42 and the second pressure roller 43 to rotate, so that the forming bottom mold 421 on the surface of the first pressure roller 42 and the forming top mold 431 on the surface of the second pressure roller 43 engage, and the metal rope in the forming cavity is extruded and formed.
[0063] The forming cavity can be an S-shaped cavity or a zigzag cavity, so that the metal rope passing through the forming cavity forms a continuous S-shaped or zigzag pattern with connected ends. This makes the finished metal wire produced by the metal wire stranding forming device in this embodiment have a certain axial elastic force, so that the wire can be straightened and contracted like a spring when the fuel dispenser pipe is bent, which greatly reduces the tensile load, makes it less prone to fatigue fracture, and ensures that static electricity can be discharged in time.
[0064] The winding assembly 50 of this embodiment includes a winding drive 51, a winding guide wheel 53, and a winding wheel 54; the winding guide wheel 53 is rotatably connected to the winding frame 52 and is docked with the forming assembly 40; the winding wheel 54 is rotatably connected to the winding frame 52, the winding drive 51 has an output shaft, and the output shaft of the winding drive 51 is rotatably connected to the winding wheel 54; the winding drive 51 provides power to wind the formed metal rope output from the forming assembly 40 onto the winding wheel 54.
[0065] In this embodiment, the metal wire stranding and forming device simultaneously releases multiple single-strand metal wires through the wire release assembly 10, and then uses the wire winding assembly 20 to strand and wind the simultaneously released single-strand metal wires into multi-strand metal wires. The multi-strand metal wires output from the stranding device are sent to the forming device, where the stranding assembly 30 twists the multi-strand metal wires into a metal rope. The forming assembly 40 extrudes and forms the metal rope, and finally the winding assembly 50 winds up the formed metal rope. This process is repeated to produce metal wires for fuel dispenser pipes. In this embodiment, a wire release frame 11 is provided, which can accommodate 30 spools of wire 1111 to simultaneously release multiple single-strand metal wires and twist the multi-strand metal wires. This is used for stranding stainless steel wires with small outer diameters and a large number of strands. The molding assembly 40 can extrude a preset shape onto the metal rope, enabling the metal rope to have axial elastic force. When used as a conductor inside the fuel dispenser pipe, it ensures that static electricity can be discharged in time. When the fuel dispenser pipe is bent, the conductor straightens and contracts like a spring, greatly reducing the tensile load and making it less prone to fatigue fracture.
[0066] Although certain components and embodiments of this application have been illustrated and described, many modifications and alterations (e.g., variations in the size, dimensions, structure, shape and proportion of the various elements, installation arrangement, material use, color, orientation, etc.) will be conceived by those skilled in the art without actually departing from the scope and spirit of the claims.
[0067] Finally, it should be noted that the above embodiments are only preferred embodiments of this utility model and should not be used to limit the scope of protection of this utility model. Any non-substantial changes and substitutions made by those skilled in the art based on this utility model shall fall within the scope of protection claimed by this utility model.
Claims
1. A metal wire stranding and forming device, characterized in that, Includes a stranding device and a forming device; The stranding device includes a wire feeding assembly and a wire winding assembly; the wire feeding assembly is used to simultaneously feed multiple single-strand metal wires, and the wire winding assembly is used to strand and wind the simultaneously fed multiple single-strand metal wires into a multi-strand metal wire. The forming device is connected to the stranding device and is used to twist and coil multiple sets of multi-strand metal wires output by the stranding device; the forming device includes a stranding assembly, a forming assembly, and a winding assembly; the stranding assembly is used to twist multiple sets of multi-strand metal wires into a metal rope, the forming assembly is used to extrude and form the metal rope, and the winding assembly is used to coil the formed metal rope.
2. The metal wire stranding and forming device according to claim 1, characterized in that, The wire feeding assembly includes a wire feeding frame, a conductor frame, and a first stranding frame; the wire feeding frame is provided with a plurality of wire spools, and wire spools are sleeved on the wire spools, the wire spools being used to fix single-strand metal wire rolls; the conductor frame is provided on the top of the wire feeding frame, and a conductor roller is rotatably connected to the conductor frame; the first stranding frame is provided on one side of the conductor frame, and a first stranding steel wheel is fixed on the first stranding frame, the first stranding steel wheel having a first gathering channel that allows multiple single-strand metal wires to pass through.
3. The metal wire stranding and forming device according to claim 2, characterized in that, The cable-laying frame includes a base, uprights, and crossbeams; The column is vertically fixed to the base, and a plurality of the crossbeams are linearly arranged on the column along the height direction; the crossbeams have outwardly extending inclined portions on both sides, the inclined portions being used to rotatably connect with the spool shaft, thereby causing the ends of the spool shaft to be inclined upward on both sides of the crossbeam; Several of the aforementioned spools are arranged in a rectangular array on the crossbeam on the wire feeding frame. Each column of spools is topped with a guide roller, and the horizontal distance between the spools and the guide rollers in each column gradually decreases from top to bottom.
4. The metal wire stranding and forming device according to claim 2, characterized in that, The wire winding assembly includes a wire winding frame, on which a wire winding structure, a winding structure, and a drive structure are mounted. The wire winding structure is connected to the wire unwinding assembly. The wire winding structure includes an optical shaft and a guide wheel that are rotatably connected to the wire winding frame. The optical shaft wire winding device and the guide wheel form a wire winding gap that allows multiple strands of metal wire to pass through. The winding structure includes a large I-beam shaft, on which a large I-beam wheel for winding multiple strands of metal wire is provided. The drive structure has an output shaft, which is drively connected to the large I-beam shaft. The output shaft is drively connected to the optical shaft via a chain and sprocket.
5. The metal wire stranding and forming device according to claim 2, characterized in that, The forming device has a forming frame and a winding frame. The forming frame is used to fix the strand assembly and the forming assembly. The strand assembly and the forming assembly are respectively arranged at opposite ends of the forming frame. The winding frame is used to fix the winding assembly.
6. The metal wire stranding and forming device according to claim 5, characterized in that, The strand assembly includes a strand drive, a rotating frame, and a second stranding steel wheel; the second stranding steel wheel is fixed to the forming frame by a second stranding frame, and a second gathering channel for metal rope to pass through is formed in the second stranding steel wheel. The strand drive has an output shaft; the rotating frame is fixed to the output shaft of the strand drive, and a mounting shaft is fixed on the rotating frame. The mounting shaft is arranged along the radial direction of the output shaft, and several sets of large I-beams wound with multiple strands of metal wire are sleeved on the mounting shaft.
7. The metal wire stranding and forming device according to claim 5, characterized in that, The forming assembly includes a forming drive, a first pressure roller, and a second pressure roller. Both the first and second pressure rollers are rotatably connected to the forming frame. A forming bottom mold is formed on the surface of the first pressure roller, and a forming top mold is formed on the surface of the second pressure roller. When the forming bottom mold and the forming top mold engage, a forming cavity is formed between them. The forming drive is fixed to the forming frame via a motor frame. The forming drive has an output shaft, which is connected to the first and second pressure rollers via a transmission assembly.
8. The metal wire stranding and forming device according to claim 7, characterized in that, The molding cavity is an S-shaped cavity.
9. The metal wire stranding and forming device according to claim 7, characterized in that, The molding cavity is a zigzag-shaped cavity.
10. A metal wire stranding and forming device according to claim 5, characterized in that, The winding assembly includes a winding drive, a winding guide wheel, and a winding wheel; the winding guide wheel is rotatably connected to the winding frame and is connected to the forming assembly; the winding wheel is rotatably connected to the winding frame, the winding drive has an output shaft, and the output shaft of the winding drive is rotatably connected to the winding wheel; the winding drive provides power to wind the formed metal rope output from the forming assembly onto the winding wheel.