Cage stranding type metal wire armoring equipment for cable
By designing a combined structure of the separation disc and the rotating disc in the cage winch, the distance between the armored wire is increased, and the problems of inconvenient operation of the armored wire and large internal stress of the metal wire in the prior art are solved, and the working efficiency and product quality are improved.
Patent Information
- Application Number
- CN202421438509.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-06-21
- Publication Date
- 2025-05-02
- Estimated Expiration
- 2034-06-21
AI Technical Summary
When existing cage winchs are twisted into armored lines, the gap between the armored lines is small, resulting in large internal stress of the wire, inconvenient operation of the staff and low efficiency.
A cage-stranded metal wire armoring equipment for cables is designed, and a combined structure of a separation disc and a rotating disc is adopted. The armored line is separated by the first through hole and the second through hole on the separation disc, increasing the distance between adjacent armored lines, and facilitating operation and adjustment.
By increasing the distance between the armored lines, the internal stress of the metal wire is reduced, the operation convenience and working efficiency of the staff are improved, and the poor problems such as cable core supply are reduced.
Smart Images

Figure CN222826144U_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the field of cage stranding machines, and in particular to a cage stranding type metal wire armoring device for cables. Background Art
[0002] Cage stranding machine is a kind of cabling equipment mainly used for stranding long-length and large-section soft bare copper wire, aluminum alloy wire, steel-core aluminum stranded wire, multi-core control cable and equipment wire core.
[0003] At present, a Chinese utility model patent with publication number CN215770688U has disclosed a large horizontal frame stranding machine, including a base plate and a first rotating shaft, the first rotating shaft is rotatably connected to the base plate, the first rotating shaft is provided with a cable hole through it, a turntable is welded on the first rotating shaft, a plurality of wire holes are provided on the turntable, a wire drum for winding wires is arranged along the axis line on the first rotating shaft, and a cable hole is provided through it in the middle of the front side wall of the first rotating shaft; first toothed discs are symmetrically welded on the outer wall of the first rotating shaft; plates are welded and installed on the inner walls of the two first toothed discs at intervals; a hydraulic cylinder is installed on the upper surface of the upper plate; a hydraulic telescopic rod is installed on the lower end of the hydraulic cylinder; a positioning hole is provided through it on the upper surface of the lower plate; a brake pad groove is provided on the outer wall of the first toothed disc; a cylinder is horizontally installed on the left side wall of the right support; the utility model has the characteristics of simple operation and strong power.
[0004] The cables need to have many armored wires twisted, and the armored wires on the turntable are arranged densely, resulting in small gaps between the armored wires, the metal wires are not untwisted, and the internal stress of the metal wires is large. When the armored wires at the turntable have quality problems and need to be adjusted, it is inconvenient for the staff to operate the armored wires on the turntable, resulting in low work efficiency. Utility Model Content
[0005] In order to facilitate the staff to operate the armored wire at the turntable, reduce the internal stress of the armored metal wire, and reduce the problems of cable core supply and other undesirable problems. The present application provides a cage-stranded metal wire armoring device for cables.
[0006] The present application provides a cage-stranded metal wire armoring device for cables, which adopts the following technical solution:
[0007] A cage-stranded metal wire armoring device for cables, comprising a frame, a reeling assembly for reeling off cables, a stranding assembly, a rotating tube for cables to pass through, a separation disk and a rotating disk, wherein the reeling assembly is arranged on the frame, the rotating tube is connected to the frame in a horizontal direction, the stranding assembly is arranged on the rotating tube, the stranding assembly is used to place a plurality of armor wire reels, the separation disk is arranged on the rotating tube, a plurality of first through holes and a plurality of second through holes are provided on the separation disk, the first through holes are distributed circumferentially along the axis of the separation disk, the distance from the second through holes to the axis of the separation disk is greater than the distance from the first through holes to the axis of the separation disk, the second through holes are distributed circumferentially along the axis of the separation disk, and a plurality of guide wheels are provided on the rotating disk, and the plurality of guide wheels are used to guide the armor wires passing through the first through holes and the second through holes to twist the cables.
[0008] By adopting the above technical solution, the armored wire reel on the stranded wire assembly passes through the separation disk and the rotating disk in sequence, and then is wound onto the cable. The first through hole and the second through hole on the separation disk separate the armored wire sent out of the armored wire reel. The diameters of the first through hole and the second through hole are different, so that when the same number of armored wires are distributed, the distance between adjacent armored wires is increased, which is convenient for the staff to observe the status of the armored wires and adjust the armored wires in time. In addition, since the distance between adjacent armored wires is increased, the staff has more operating space, and the work efficiency of the armored wire adjustment at the turntable is improved.
[0009] Optionally, the stranding assembly includes two mounting parts and a driving part, the two mounting parts are distributed along the axial direction of the rotating tube, the mounting parts include two mounting disks, a mounting frame group and a plurality of winding reels, the mounting disk is arranged on the rotating tube, the mounting frame group is located between the two mounting disks, the mounting part group includes a plurality of mounting frames, the mounting frames are arranged on the mounting disks, a plurality of winding reels correspond to a plurality of mounting frames one by one, the winding reels are arranged on the mounting frames, the driving part is used to drive the mounting disks to rotate, and a plurality of through holes are opened on the mounting disks for the armor wires to pass through.
[0010] By adopting the above technical solution, the winding drum is used to wind the armor wire. When the frame stranding machine is working, the winding drum unwinds the armor wire, and the cable directly passes through the rotating tube. The winding drum rotates under the drive of the mounting disk, and the armor wire twists the cable. The through hole facilitates the armor wire to rotate with the rotation of the mounting disk, thereby reducing the entanglement between the armor wires during the rotation of the mounting disk, and the structure of the stranding assembly is reasonable.
[0011] Optionally, the driving member includes a driving motor, a driving ring gear and a driving gear, the driving ring gear corresponds to one of the mounting disks, the driving ring gear is arranged on the corresponding mounting disk, the driving motor is arranged on the frame, the driving gear is arranged on the driving motor, and the driving gear is meshed with the driving ring gear.
[0012] By adopting the above technical solution, when the installation disk needs to rotate, the staff starts the drive motor, the drive motor drives the drive gear to rotate, the drive gear drives the drive ring gear to rotate, the drive ring gear drives the installation disk to rotate, the installation disk drives the winding drum to rotate around the axis direction of the installation disk, and the armored wire reel on the winding drum is unwound to twist the cable.
[0013] Optionally, the mounting frame is rotatably connected to the mounting disk in a direction parallel to the axis of the rotating tube, and the stranding assembly also includes a stabilizing member for maintaining the winding drum in a horizontal state, the stabilizing member including a fixed gear, a plurality of idler gears and a plurality of rotating gears, the fixed gear being coaxially arranged with the mounting disk, the fixed gear being arranged on the frame, a plurality of rotating gears corresponding one to one with a plurality of mounting frames, the rotating gear having the same number of teeth as the fixed gear, a plurality of idler gears being circumferentially distributed along the axis of the mounting disk, the idler gear being rotatably connected to the mounting disk, the idler gear being meshed with the fixed gear and the rotating gear.
[0014] By adopting the above technical scheme, the mounting plate rotates under the drive of the driving member, the mounting plate rotates relative to the fixed gear, the fixed gear drives the idler wheel on the mounting plate to rotate, the idler wheel meshes with the rotating gear, and since the rotating gear and the fixed gear have the same number of teeth, the idler wheel only plays a role of changing direction, and the rotation of the mounting plate and the rotating gear act together on the mounting frame, and the mounting frame is always in a horizontal state when the mounting plate rotates; since the armored wire is often made of aluminum, steel, copper wire, etc., the mass of the winding drum is relatively large, and an electric hoist is often used for lifting. It is most convenient to lift the winding drum horizontally with the electric hoist. The winding drum is in a horizontal state on the mounting plate, which is convenient for the staff to replace the winding drum, and the above operation can greatly reduce the internal stress of the armored metal wire and reduce the problems such as cable core lifting.
[0015] Optionally, a clamping groove is provided on the upper end surface of the mounting frame, the clamping groove is arranged obliquely, and the clamping groove gradually extends along the transportation direction of the cable.
[0016] By adopting the above technical solution, since the mounting frame is always in a horizontal state, the winding drum can also maintain a horizontal state. The winding drum can move toward the bottom of the clamping groove under the action of gravity, and the armored wire on the winding drum will be unwound along the transportation direction of the cable, so that the winding drum can better abut against the bottom of the clamping groove, thereby reducing the winding drum from detaching from the mounting frame during operation.
[0017] Optionally, the rotating tube includes a first mating tube, a second mating tube, an extension tube, a connecting tube and a sealing ring. The mounting disk close to the unwinding assembly is arranged on the first mating tube, and the mounting disk away from the unwinding assembly is arranged on the second mating tube. The inner diameter of the second mating tube is larger than the outer diameter of the connecting tube. The sealing ring is arranged on the side of the second mating tube facing the first mating tube. The sealing ring is provided with a plurality of mating holes for the armored wire to pass through. One end of the connecting tube is located in the first mating tube, and the other end of the connecting tube is located in the sealing ring. The extension tube is located on the side of the second mating tube away from the sealing ring. The separation disk is arranged on the extension tube, and the first through hole is connected to the second mating tube.
[0018] By adopting the above technical solution, since there are two mounting parts in the frame stranding machine, in order to reduce the influence of the armor wire corresponding to the first matching tube on the armor wire corresponding to the second matching tube, the armor wire corresponding to the first matching tube is passed into the second matching tube, and the armor wire corresponding to the first matching tube passes through the second matching tube through the matching hole on the sealing ring, passes out from the first through hole, and then bypasses the guide wheel on the rotating disk. The armor wires of the two mounting parts have different transmission routes in the second matching tube, which is more convenient for the staff to identify and manage.
[0019] Optionally, a guide plate is further provided on the extension tube, and a plurality of guide holes are opened on the guide plate, and the extension direction of the guide holes guides the armor wire to gradually approach the axis of the cable.
[0020] By adopting the above technical solution, the guide holes on the guide disk facilitate moving the armored wires that have passed the guide wheel toward the cable direction, facilitate even distribution of the armored wires, and improve the quality of wire twisting.
[0021] Optionally, a guide plate is further provided on the extension tube, and a plurality of guide grooves are formed on the guide plate, and the plurality of guide grooves penetrate through the side wall of the guide plate.
[0022] By adopting the above technical solution, the guide holes on the guide disk facilitate moving the armored wires that have passed the guide wheel toward the cable direction, facilitate evenly distributing the armored wires, improve the quality of the wire twisting, and the guide holes facilitate the staff to thread the armored wires onto the guide disk.
[0023] Optionally, a guide plate is further provided on the extension tube, and a plurality of arc grooves are formed on the guide plate. The arc grooves are circumferentially distributed along the axis of the guide plate, and a plurality of guide tubes are slidably connected in the arc grooves along the length direction of the arc grooves.
[0024] By adopting the above technical solution, the number of armored wires required for some cables is small. The staff can remove the guide tube from the arc groove, and then make the number of guide tubes consistent with the number of armored wires. The guide tube can slide in the arc groove, which is convenient for the staff to evenly distribute the guide tubes according to the number of armored wires, thereby improving the twisting quality of the armored wires.
[0025] In summary, the present application includes at least one of the following beneficial technical effects:
[0026] 1. The first through hole and the second through hole on the separation plate can increase the distance between adjacent armored wires, making it easier for workers to operate the armored wires on the installation plate;
[0027] 2. It can combine the conductor twisting function with the metal wire armoring function of the existing equipment. Compared with the previous coil-twisted armoring machine, the efficiency is greatly improved, and the effect of a new metal wire armoring machine can be achieved without too much cost;
[0028] 3. The stabilizer can keep the winding drum in a horizontal state, which is convenient for replacing the winding drum;
[0029] 4. The guide holes on the guide disc facilitate guiding the armored wires onto the cable for twisting. BRIEF DESCRIPTION OF THE DRAWINGS
[0030] Figure 1 It is a structural diagram of Example 1 of the present application.
[0031] Figure 2 yes Figure 1 Schematic diagram of the structure of the rotating tube.
[0032] Figure 3 yes Figure 1 Schematic diagram of the structure of the middle drive component.
[0033] Figure 4 1 is a schematic diagram of the structure of the rotating disk and the guide disk.
[0034] Figure 5 It is a structural diagram of Example 2 of the present application.
[0035] Figure 6 It is a structural diagram of Example 3 of the present application.
[0036] 1. Frame; 2. Unwinding assembly; 21. Unwinding disk; 22. Unwinding motor; 3. Wire twisting assembly; 31. Mounting member; 311. Mounting disk; 312. Mounting frame; 313. Winding reel; 314. Clamping groove; 315. Through hole; 32. Driving member; 321. Driving motor; 322. Driving gear; 323. Driving gear ring; 33. Stabilizing member; 331. Fixed gear; 332. Idle gear; 333. Rotating gear; 4. Rotating tube; 41. First matching tube; 42. Second matching tube; 43. Extension tube; 44. Connecting tube; 45. Sealing ring; 451. Matching hole; 5. Separation disk; 51. First through hole; 52. Second through hole; 6. Rotating disk; 61. Guide wheel; 7. Guide disk; 71. Guide hole; 72. Guide groove; 8. Arc groove; 81. Guide tube; 82. Abutment ring. DETAILED DESCRIPTION
[0037] The following is combined with Figure 1-6 This application is described in further detail.
[0038] The embodiment of the present application discloses a cage-stranded metal wire armoring device for cables.
[0039] Example 1
[0040] Reference Figure 1 and Figure 2 A cage-stranded metal wire armoring device for cables includes a frame 1, an unwinding assembly 2 for unwinding cables, a stranded wire assembly 3 with an armored wire coil installed, a rotating tube 4, a separation disk 5 and a rotating disk 6. The unwinding assembly 2 includes an unwinding disk 21 and an unwinding motor 22. The unwinding disk 21 is horizontally arranged, and the unwinding disk 21 is rotatably connected to the frame 1. The cable is wound on the unwinding disk 21. The unwinding motor 22 is fixedly arranged on the frame 1, and the output shaft of the unwinding motor 22 is fixedly connected to one end of the unwinding disk 21.
[0041] Reference Figure 1 and Figure 2The rotating tube 4 includes a first matching tube 41, a second matching tube 42, an extension tube 43, a connecting tube 44 and a blocking ring 45. The length direction of the first matching tube 41 is parallel to the movement direction of the cable. The first matching tube 41 is rotatably connected to the frame 1. The connecting tube 44 is coaxially arranged with the first matching tube 41. One end of the connecting tube 44 penetrates into the end of the first matching tube 41 away from the unwinding drum 21. The second matching tube 42 is coaxially arranged with the connecting tube 44. The second matching tube 42 is rotatably connected to the frame 1. The inner diameter of the second matching tube 42 is larger than the outer diameter of the connecting tube 44. The other end of the connecting tube 44 is located in the second matching tube 42. The blocking ring 45 is coaxially arranged with the connecting tube 44. The blocking ring 45 is fixedly arranged on the second matching tube 42 On one end toward the first matching tube 41, the inner wall of the sealing ring 45 abuts against the outer wall of the connecting tube 44, and a plurality of matching holes 451 are provided on the end face of the sealing ring 45, and the plurality of matching holes 451 are evenly distributed circumferentially along the axis of the sealing ring 45; the separation disk 5 is fixedly arranged on the end of the second matching tube 42 away from the first matching tube 41; a plurality of first through holes 51 are provided on the separation disk 5, and the plurality of first through holes 51 are evenly distributed circumferentially along the axis of the separation disk 5; the first through hole 51 is connected with the second matching tube 42; the extension tube 43 is coaxially arranged with the second matching tube 42; one end of the extension tube 43 is fixedly arranged on the end of the separation disk 5 away from the second matching tube 42, and the extension tube 43 is connected with the second matching tube 42.
[0042] Reference Figure 1 and Figure 3 The stranding assembly 3 includes two mounting members 31, two driving members 32 and two stabilizing members 33. The two mounting members 31 correspond to the first matching tube 41 and the second matching tube 42 respectively. The mounting member 31 includes two mounting discs 311, a mounting frame group and a plurality of winding drums 313. The two mounting discs 311 are distributed along the length direction of the first matching tube 41. The mounting discs 311 are coaxially arranged with the first matching tube 41. The mounting discs 311 are fixedly arranged on the outer side wall of the corresponding matching tube. A plurality of through holes 315 are opened on the mounting disc 311 away from the unwinding assembly 2. The plurality of through holes 315 are evenly distributed along the circumferential direction of the axis of the mounting disc 311. The mounting frame group is located at Between the two mounting plates 311, the mounting frame group includes a plurality of mounting frames 312, and the plurality of mounting frames 312 are evenly distributed along the axis of the mounting plate 311. The mounting frames 312 are rotatably connected to the mounting plate 311 in a direction parallel to the axis of the rotating tube 4. A snap-in groove 314 is provided on the mounting frame 312, and the snap-in groove 314 is inclinedly arranged. The snap-in groove 314 gradually extends downward along the movement direction of the cable. A plurality of winding drums 313 correspond to the plurality of mounting frames 312 one by one. The winding drums 313 are horizontally arranged, and the length direction of the winding drums 313 is perpendicular to the rotation axis direction of the mounting frame 312, and the winding drums are rotatably connected to the snap-in groove 314.
[0043] Reference Figure 1 and Figure 3 The two driving members 32 correspond to the two mounting members 31 one by one. The driving members 32 include a driving motor 321, a driving gear 322 and a driving ring gear 323. The driving ring gear 323 is coaxially arranged with the mounting disk 311. The driving ring gear 323 is arranged on the outer wall of one of the mounting disks 311. The driving motor 321 is fixedly arranged on the frame 1. The driving gear 322 is fixedly arranged on the output shaft of the driving motor 321. The driving gear 322 is meshed with the driving ring gear 323.
[0044] Reference Figure 2 and Figure 3 The two stabilizing members 33 correspond to the two mounting members 31 one by one. The stabilizing members 33 include a fixed gear 331, a plurality of idler gears 332 and a plurality of rotating gears 333. The fixed gear 331 is coaxially arranged with the mounting plate 311. The fixed gear 331 is fixedly arranged on the frame 1. The plurality of rotating gears 333 correspond to the plurality of mounting frames 312 one by one. The rotating gear 333 is coaxially arranged with the rotation axis of the mounting frame 312. The rotating gear 333 is fixedly arranged on the rotation axis of the mounting frame 312. The number of teeth of the rotating gear 333 is the same as the number of teeth of the fixed gear 331. The plurality of idler gears 332 are evenly distributed circumferentially along the axis of the mounting plate 311. The idler gear 332 is rotatably connected to the mounting plate 311. The idler gear 332 is used to mesh with two adjacent rotating gears 333.
[0045] Reference Figure 1 and Figure 4 The separation disk 5 is also provided with a plurality of second through holes 52, the distance between the second through holes 52 and the axis of the rotating disk 6 is greater than the distance between the first through holes 51 and the axis of the rotating disk 6, the plurality of second through holes 52 are evenly distributed along the circumferential direction of the axis of the separation disk 5, the rotating disk 6 is located on the side of the separation disk 5 away from the mounting disk 311, the rotating disk 6 is fixedly arranged on the outer side wall of the extension tube 43, the rotating disk 6 is provided with a plurality of guide wheels 61, the plurality of guide wheels 61 are evenly distributed along the circumference of the rotating disk 6, and the rotation axis of the guide wheels 61 is parallel to the rotating disk 6, the guide wheel 61 is rotatably connected to the rotating disk 6, and a guide disk 7 is further provided on the extension tube 43. The guide disk 7 is coaxially arranged with the extension tube 43, and the guide disk 7 is located on the side of the rotating disk 6 away from the separation disk 5. The guide disk 7 is fixedly arranged on the outer side wall of the extension tube 43, and a plurality of guide holes 71 are opened on the end surface of the guide disk 7. The plurality of guide holes 71 are evenly distributed circumferentially along the axis of the guide disk 7, and the guide holes 71 penetrate the guide disk 7. The extension direction of the guide holes 71 gradually approaches the axial direction of the cable along the transportation direction of the cable.
[0046] The principle of Example 1 is as follows: the staff installs the winding drum 313 with the armored wire roll installed on the mounting frame 312, and then passes the cable to be glued through the rotating tube 4, and then passes the armored wire on the first matching tube 41 through the through hole 315, matching hole 451, second matching tube 42, first through hole 51, guide wheel 61 and guide hole 71 of the corresponding mounting disk 311 in turn, and the armored wire on the second matching tube 42 passes through the through hole 315, second through hole 52, guide wheel 61 and guide hole 71 of the corresponding mounting disk 311 in turn, and the armored wire pair cables are twisted. Due to the position distribution of the first through hole 51 and the second through hole 52 on the separation disk 5, it is convenient for the staff to observe the transportation of the armored wire on the rotating disk 6. The angles between adjacent armored wires are different, which increases the distance between the armored wires, making it convenient for the staff to operate in time.
[0047] During operation, the driving motor 321 drives the driving ring gear 323 to rotate, the driving ring gear 323 drives the driving gear 322 to rotate, the driving gear 322 drives the mounting plate 311 to rotate, and the mounting plate 311 drives the armor wire to twist the cable. During this process, the stabilizing member 33 is used to ensure that the winding reel 313 on the mounting frame 312 can maintain a horizontal state, so that the subsequent winding reel 313 can be replaced in time.
[0048] The guide plate 7 guides the armor wires on the rotating plate 6 onto the cable. The guide holes 71 on the guide plate 7 have a guiding and gathering function, so that the armor wires are more evenly distributed on the cable.
[0049] Example 2
[0050] The difference between this embodiment and embodiment 1 is that: Figure 5 A guide plate 7 is also provided on the extension tube 43. The guide plate 7 is coaxially arranged with the extension tube 43. The guide plate 7 is located on the side of the rotating plate 6 away from the separation plate 5. The guide plate 7 is fixedly arranged on the outer wall of the extension tube 43. A plurality of guide grooves 72 are opened on the end surface of the guide plate 7. The plurality of guide grooves 72 are evenly distributed circumferentially along the axis of the guide plate 7. The guide grooves 72 penetrate the guide plate 7 and penetrate the side wall of the guide plate 7.
[0051] The principle of the second embodiment is that the guide groove 72 on the guide plate 7 can limit the armor from being separated from the guide plate 7, and it is also convenient for the staff to replace the damaged armor wire in time without threading, which can greatly improve the work efficiency.
[0052] Example 3
[0053] The difference between this embodiment and embodiment 1 is that: Figure 6A guide plate 7 is also provided on the extension tube 43, and five arc grooves 8 are opened on the guide plate 7. The arc groove 8 is coaxially arranged with the guide plate 7, and the five arc grooves 8 are evenly distributed along the circumference of the guide plate 7. A plurality of guide tubes 81 are arranged in the arc groove 8, and the length direction of the guide tube 81 is parallel to the axial direction of the guide plate 7. A contact ring is provided on the guide tube 81, and the contact ring is fixedly arranged on the outer wall of the guide tube 81, and the end face of the contact ring 82 is in contact with the end face of the guide plate 7 facing the rotating plate 6.
[0054] The principle of Example 3 is: the staff can install the guide tube 81 in the arc groove 8 according to different numbers of armored wires, and the position of the guide tube 81 can be adjusted according to the number of armored wires. The armored wires will abut against the guide tube 81 during the process of twisting the cables. The abutment ring 82 can limit the movement of the guide tube 81 and keep the position of the guide tube 81 relative to the arc groove 8 unchanged.
[0055] The above are all preferred embodiments of the present application, and the protection scope of the present application is not limited thereto. Therefore, any equivalent changes made according to the structure, shape, and principle of the present application should be included in the protection scope of the present application.
Claims
1. A cage-stranded metal wire armoring device for cables, characterized in that: The invention comprises a frame (1), an unwinding assembly (2) for unwinding a cable, a twisting assembly (3), a rotating tube (4) for passing the cable, a separation disk (5) and a rotating disk (6), wherein the unwinding assembly (2) is arranged on the frame (1), the rotating tube (4) is connected to the frame (1) in a horizontal rotation direction, the twisting assembly (3) is arranged on the rotating tube (4), the twisting assembly (3) is used to place a plurality of armored wire reels, the separation disk (5) is arranged on the rotating tube (4), and the separation disk (5) is provided with a plurality of first through holes (51) and a plurality of first through holes (52) and a plurality of first through holes (53) and a plurality of first through holes (54) and a plurality of first through holes (55) and a plurality of first through holes (56) are provided on the separation disk (5). The first through holes (51) are circumferentially distributed along the axis of the separation disk (5), the distance between the second through holes (52) and the axis of the separation disk (5) is greater than the distance between the first through holes (51) and the axis of the separation disk (5), the second through holes (52) are circumferentially distributed along the axis of the separation disk (5), and the rotating disk (6) is provided with a plurality of guide wheels (61), and the plurality of guide wheels (61) are used to guide the armored wires passing through the first through holes (51) and the second through holes (52) to twist the cables.
2. The cage-stranded metal wire armoring device for cables according to claim 1, characterized in that: The stranding assembly (3) comprises two mounting members (31) and a driving member (32), the two mounting members (31) being distributed along the axial direction of the rotating tube (4), the mounting member (31) comprising two mounting disks (311), a mounting frame (312) group and a plurality of winding drums (313), the mounting disks (311) being arranged on the rotating tube (4), the mounting frame (312) group being located between the two mounting disks (311), the mounting member (31) group comprising a plurality of mounting frames (312), the mounting frames (312) being arranged on the mounting disks (311), a plurality of winding drums (313) corresponding to a plurality of mounting frames (312) in a one-to-one manner, the winding drums (313) being arranged on the mounting frames (312), the driving member (32) being used for driving the mounting disks (311) to rotate, and a plurality of through holes (315) for passing armor wires are provided on the mounting disks (311).
3. The cage-stranded metal wire armoring device for cables according to claim 2, characterized in that: The driving member (32) comprises a driving motor (321), a driving gear ring (323) and a driving gear (322); the driving gear ring (323) corresponds to one of the mounting plates (311); the driving gear ring (323) is arranged on the corresponding mounting plate (311); the driving motor (321) is arranged on the frame (1); the driving gear (322) is arranged on the driving motor (321); and the driving gear (322) meshes with the driving gear ring (323).
4. The cage-stranded metal wire armoring device for cables according to claim 2, characterized in that: The mounting frame (312) is rotatably connected to the mounting plate (311) in a direction parallel to the axis of the rotating tube (4). The stranding assembly (3) further comprises a stabilizing member (33) for maintaining the winding drum (313) in a horizontal state. The stabilizing member (33) comprises a fixed gear (331), a plurality of idler gears (332) and a plurality of rotating gears (333). The fixed gear (331) is coaxially arranged with the mounting plate (311). The fixed gear (332) is coaxially arranged with the mounting plate (311). 1) is arranged on the frame (1), a plurality of rotating gears (333) correspond to a plurality of mounting frames (312) one by one, the number of teeth of the rotating gear (333) is the same as that of the fixed gear (331), a plurality of idler gears (332) are distributed circumferentially along the axis of the mounting plate (311), the idler gears (332) are rotatably connected to the mounting plate (311), and the idler gears (332) are meshed with the fixed gear (331) and the rotating gear (333).
5. The cage-stranded metal wire armoring device for cables according to claim 4, characterized in that: The upper end surface of the mounting frame (312) is provided with a clamping groove (314), the clamping groove (314) is arranged obliquely, and the clamping groove (314) gradually extends along the transportation direction of the cable.
6. The cage-stranded metal wire armoring device for cables according to claim 1, characterized in that: The rotating tube (4) comprises a first matching tube (41), a second matching tube (42), an extension tube (43), a connecting tube (44) and a blocking ring (45); a mounting plate (311) close to the unwinding assembly (2) is arranged on the first matching tube (41); a mounting plate (311) far from the unwinding assembly (2) is arranged on the second matching tube (42); the inner diameter of the second matching tube (42) is larger than the outer diameter of the connecting tube (44); and the blocking ring (45) is arranged on the second matching tube (42) toward the outer diameter of the connecting tube (44). A plurality of matching holes (451) for the armor wire to pass through are provided on the sealing ring (45) on the side facing the first matching tube (41), one end of the connecting tube (44) is located in the first matching tube (41), and the other end of the connecting tube (44) is located in the sealing ring (45), the extension tube (43) is located on the side of the second matching tube (42) away from the sealing ring (45), the separation disk (5) is arranged on the extension tube (43), and the first through hole (51) is connected to the second matching tube (42).
7. The cage-stranded metal wire armoring device for cables according to claim 6, characterized in that: The extension tube (43) is also provided with a guide disk (7), and the guide disk (7) is provided with a plurality of guide holes (71). The extension direction of the guide holes (71) guides the armor wire to gradually approach the axis of the cable.
8. The cage-stranded metal wire armoring device for cables according to claim 6, characterized in that: The extension tube (43) is also provided with a guide plate (7), and the guide plate (7) is provided with a plurality of guide grooves (72), and the plurality of guide grooves (72) penetrate the side wall of the guide plate (7).
9. The cage-stranded metal wire armoring device for cables according to claim 6, characterized in that: The extension tube (43) is further provided with a guide plate (7), the guide plate (7) being provided with a plurality of arcuate grooves (8), the plurality of arcuate grooves (8) being distributed circumferentially along the axis of the guide plate (7), and a plurality of guide tubes (81) being slidably connected in the arcuate grooves (8) along the length direction of the arcuate grooves (8).
Citation Information
Patent Citations
Large horizontal frame-type strander
CN215770688U
Cited By
Cable production line and cable
CN120545025A