Cage stranding machine clamping structure of steel wire coil
Through the combined structure of positioning insert blocks and connecting columns, the magnet attraction and rotating screws are used to solve the problem of unstable fixation of the steel wire disk on the cage twister, and stable winding and convenient disassembly are achieved.
Patent Information
- Application Number
- CN202510592040.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-09
- Publication Date
- 2025-08-15
AI Technical Summary
In the prior art, the wire disk is unstable on the cage wire twister, which is prone to shaking and causes drop.
The combined structure of positioning insert block and connecting column is adopted, and the steel wire disk is stabilized and rotated and coiled through the combination of magnet attraction and rotating screw.
It effectively avoids the shaking and falling of the steel wire disk during the winding process, and facilitates the disassembly and installation of the steel wire disk.
Smart Images

Figure CN120482823A_ABST
Abstract
Description
Technical Field
[0001] The invention belongs to the technical field of steel wire discs, in particular to a cage stranding machine clamping structure of a steel wire disc. Background Art
[0002] Cage type stranding machine is a special equipment for stranding control cables, rubber cables, steel stranded wire, steel core aluminum stranded wire, copper stranded wire, aluminum stranded wire and flexible stranded wire produced by power line and cable factories.
[0003] After the cage stranding machine produces steel wire, it rotates and reels it through a wire reel. The traditional wire reel is installed and fixed to the frame of the cage stranding machine, so that the wire reel is connected to the motor, and the motor drives the wire reel to rotate and reel the steel wire.
[0004] In the current existing technology, the wire reel is installed on the H-frame of the cage stranding machine, and the position of the wire reel is limited by the H-shaped frame, or a positioning plate and screws are added to reinforce it. However, this fixing method is too simple, and the wire reel is easy to shake during the winding process, causing the wire reel to fall from the frame. A cage stranding machine clamping structure for the wire reel. Summary of the Invention
[0005] Therefore, the technical problem to be solved by the present invention is to overcome the existing technology.
[0006] In order to solve the above technical problems, the present invention provides a cage stranding machine clamping structure for a wire disc, comprising a frame; a motor is provided at the side end of the frame; the output end of the motor is fixedly connected to a rotating rod; the side end of the rotating rod is fixedly connected to a rotating disc; the side end of the rotating disc is fixedly connected to a No. 1 connecting column; the side end of the rotating disc is installed with a disc body; the side end of the disc body is fixedly connected to a wire disc column, and two groups of disc bodies are fixedly connected to the two ends of the wire disc column; a No. 1 connecting column is inserted into the interior of the wire disc column; a plurality of groups of positioning plugs are fixedly connected to the side end of the rotating disc, and positioning plugs are inserted into the interior of the disc body; the interior of the wire disc column is slidably connected to a No. 2 connecting column; the side end of the No. 2 connecting column is rotatably connected to a positioning column.
[0007] In one embodiment of the present invention, a cylinder is installed on one side of the frame; a supporting arc plate is installed on the top of the cylinder; a supporting block is installed on one side of the cylinder; the supporting block and the top of the cylinder are hingedly connected with a supporting arc plate; and a disk body is rotatably connected inside the supporting arc plate.
[0008] In one embodiment of the present invention, a retaining plate is fixedly connected to the side end of the frame; a rotating screw is rotatably connected inside the retaining plate, and the rotating screw is threadedly connected to the retaining plate; a positioning column is fixedly connected to the side end of the rotating screw.
[0009] In one embodiment of the present invention, a buffer platform is installed on one side of the frame, and a buffer platform is provided on one side of the tray; and a top end of the buffer platform is fixedly connected to a limit plate.
[0010] In one embodiment of the present invention, the support arc plate is internally rotatably connected to multiple groups of No. 1 balls; the support arc plate is internally rotatably connected to multiple groups of No. 2 balls.
[0011] In one embodiment of the present invention, a movable slide is fixedly connected to the bottom end of the cylinder; one end of the movable slide is connected to a spring; and the other end of the spring is fixedly connected to a fixed plate.
[0012] In one embodiment of the present invention, an electric push rod is provided on one side of the frame; and the electric push rod is fixedly connected to one end of the motor away from the frame.
[0013] In one embodiment of the present invention, a buffer port is provided inside the buffer platform, and the inside of the buffer port is filled with sand; and a disk is rotatably connected to the buffer platform.
[0014] In one embodiment of the present invention, a support sleeve is fixedly connected to the interior of the frame; and a positioning column is slidably connected to the inner side wall of the support sleeve.
[0015] In one embodiment of the present invention, a magnet piece is fixedly connected to the side end of the positioning plug; the magnet piece corresponds to the disk body.
[0016] The above technical solution of the present invention has the following advantages over the prior art:
[0017] The present invention provides a cage stranding machine clamping structure for a wire coil, wherein the coil body is aligned with the positioning plug block, and the positioning plug block is inserted into the interior of the coil body, and the position of the coil body is limited by the positioning plug block, and the No. 1 connecting post is inserted into the interior of the wire coil column. After one end of the wire coil column is fixed, the No. 2 connecting post is installed to the other end of the wire coil column, so that the No. 2 connecting post is moved into the interior of the wire coil column, and the other end of the wire coil column is fixed by the cooperation of the positioning post and the No. 2 connecting post. After the positions of both ends of the wire coil column are limited, the staff starts the motor, and the output of the motor causes the rotating rod to rotate, and the rotation of the rotating rod causes the rotating disk to rotate. The rotation of the rotating disk causes the coil body to rotate, and the rotation of the coil body causes the wire coil column to rotate for winding, thereby avoiding the wire coil column from shaking or falling during the winding process, and also facilitating the subsequent disassembly of the wire coil column. BRIEF DESCRIPTION OF THE DRAWINGS
[0018] In order to make the contents of the present invention more clearly understood, the present invention is further described in detail below based on specific embodiments of the present invention in conjunction with the accompanying drawings.
[0019] Figure 1 A perspective view of the present invention;
[0020] Figure 2 This is a three-dimensional diagram of the wire coil column structure of the present invention;
[0021] Figure 3 is a cross-sectional view of the present invention;
[0022] Figure 4 It is a three-dimensional diagram of the cylinder structure of the present invention;
[0023] Figure 5 A three-dimensional diagram of the supporting arc plate structure of the present invention;
[0024] Legend:
[0025] 1. Frame; 12. Motor; 13. Wire coil column; 14. Disc; 15. Rotating rod; 16. Rotating disc; 17. Connecting column No. 1; 18. Positioning plug; 19. Connecting column No. 2; 20. Positioning column; 21. Support sleeve; 22. Rotating screw; 23. Retaining plate; 24. Support arc plate; 25. Support block; 26. Cylinder; 27. Fixed plate; 28. Spring; 29. Moving slide; 30. Ball bearing No. 1; 31. Ball bearing No. 2; 32. Buffer table; 33. Buffer port; 34. Limit plate; 35. Electric push rod. DETAILED DESCRIPTION
[0026] The present invention will be further described below with reference to the accompanying drawings and specific embodiments so that those skilled in the art can better understand the present invention and implement it. However, the embodiments are not intended to limit the present invention.
[0027] See also Figure 1-Figure 3 The present invention provides a cage stranding machine clamping structure for a wire disc, comprising a frame 1; a motor 12 is provided at the side end of the frame 1; a rotating rod 15 is fixedly connected to the output end of the motor 12; a rotating disk 16 is fixedly connected to the side end of the rotating rod 15; a connecting column 17 is fixedly connected to the side end of the rotating disk 16; a disc body 14 is installed on the side end of the rotating disc 16; a wire disc column 13 is fixedly connected to the side end of the disc body 14, and two groups of disc bodies 14 are fixedly connected to the two ends of the wire disc column 13; a connecting column 17 is inserted into the interior of the wire disc column 13; a plurality of positioning plug-ins 18 are fixedly connected to the side end of the rotating disc 16, and a positioning plug-in block 18 is inserted into the interior of the disc body 14; a connecting column 2 is slidably connected to the interior of the wire disc column 13; and a positioning column 20 is rotatably connected to the side end of the connecting column 19.
[0028] During operation, the wire reel is installed on the H-frame of the cage stranding machine, and the position of the wire reel is limited by the H-shaped frame, or a positioning plate and screws are added for reinforcement. However, this fixing method is too simple, and the wire reel is easy to shake during the winding process, causing the wire reel to fall from the frame. Before work, align one end of the wire reel column 13 with the No. 1 connecting column 17, so that the No. 1 connecting column 17 is inserted into the interior of the wire reel column 13. At this time, align the positioning plug 18 with the disc body 14. The positioning plug 18 is square in shape, so that the positioning plug 18 is inserted into the interior of the disc body 14. The position of the disc body 14 is limited by the positioning plug 18. When the positioning plug 18 is inserted into the interior of the disc body 14, the magnet piece of the positioning plug 18 adsorbs the disc body 14 through magnetic attraction. The magnet piece at the side end of the positioning plug 18 can improve the connection between the disc body 14 and the positioning plug 18. The second connecting post 19 is moved to the inside of the wire coil 13, and the other end of the wire coil 13 is fixed by the cooperation of the positioning post 20 and the second connecting post 19. After the positions of the two ends of the wire coil 13 are limited, the staff starts the motor 12.The output of the motor 12 causes the rotating rod 15 to rotate, and the rotation of the rotating rod 15 causes the rotating disk 16 to rotate. The rotation of the rotating disk 16 causes the disk body 14 to rotate, and the rotation of the disk body 14 causes the wire coil column 13 to rotate for winding. The rotation of the rotating screw rod 22 causes the positioning column 20 to fix one end of the wire coil column 13, and the positioning plug block 18 can be used to clamp and fix the position of the wire coil column 13, so that the wire coil column 13 can be rotated and wound. After the wire coil column 13 is wound, the motor 12 is turned off and the electric push rod 35 is started to slide the motor 12. The sliding of the motor 12 will cause the positioning plug block 18 on the rotating disk 16 to move away from the disk body 14, and the electric push rod 35 can be used to facilitate the rotating disk 1 6 slides to facilitate the installation and removal of the wire coil column 13. The staff controls the position of the wire coil column 13 and rotates the rotating screw 22 to slide the positioning column 20 and the second connecting column 19 away from the wire coil column 13. The wire coil column 13 is slid to separate the first connecting column 17 from the inside of the wire coil column 13, completing the removal operation of the wire coil column 13. The wire coil column 13 gradually increases in weight during the rotation and winding process. The rotation of the rotating screw 22 can cause the positioning column 20 to rotate inside the support sleeve 21. The support sleeve 21 can limit the position of the positioning column 20. The support sleeve 21 can increase the support force of the second connecting column 19 on the wire coil column 13, reducing the influence of the weight of the wire on the wire coil column 13.
[0029] Further, such as Figure 4 and Figure 5 As shown, a cylinder 26 is installed on one side of the frame 1; a support arc plate 24 is installed on the top of the cylinder 26; a support block 25 is installed on one side of the cylinder 26; the support block 25 and the top of the cylinder 26 are hingedly connected to the support arc plate 24; the internal rotation of the support arc plate 24 is connected to the disk body 14.
[0030] During operation, after the wire coil column 13 is installed on the frame 1, the bottom end of the disc 14 will be inside the supporting arc plate 24. The wire coil column 13 will cause the disc 14 to rotate during the rotation and winding process. The rotation of the disc 14 will contact the No. 2 ball 31. The rotation friction of the disc 14 will cause the No. 2 ball 31 to rotate. The rotation of the No. 2 ball 31 can ensure the normal rotation of the disc 14. The cooperation of the cylinder 26 and the No. 2 ball 31 can share the gravity of the disc 14, reduce the pressure of the steel wire on the wire coil column 13 on the rotation of the rotating disc 16, and the side surface of the disc 14 will contact the No. 1 ball 30 When the wire on the wire coil column 13 is in contact, the rotation of the disc 14 will cause the No. 1 ball 30 to rotate. When the wire on the wire coil column 13 is wound, the staff will disassemble the position of the wire coil column 13. After the No. 1 connecting column 17 and the No. 2 connecting column 19 are separated from the inside of the wire coil column 13, the staff will control the position of the wire coil column 13 and start the cylinder 26. The operation of the cylinder 26 pushes one end of the support arc plate 24 upward. The bottom end of the support arc plate 24 is hinged to the cylinder 26 and the support block 25. After the cylinder 26 pushes the support arc plate 24 to tilt up, the disc 14 on the support arc plate 24 can be separated from the support block 25. The disc 14 can be moved to the buffer platform 32 in the arc plate 24. The limit plate 34 can limit the position of the disc 14 to prevent the disc 14 from leaving the buffer platform 32. The slope of the buffer platform 32 can assist the disc 14 in moving and disassembling. The inside of the buffer port 33 is filled with sand. The steel wire on the wire coil column 13 has a large gravity after being wound. The slope of the buffer platform 32 makes it easy for the steel wire coil column 13 to rotate. When the disc 14 moves to the buffer port 33, the sand inside the buffer port 33 can easily buffer and slow down the disc 14, making it convenient for the staff to control the disc 14 and then slowly move it from the buffer platform 3 2, the movable disc 14 is moved upward. After the wire coil column 13 is wound, it needs to slide left and right for adjustment and disassembly. The sliding of the wire coil column 13 will cause the disc 14 to slide left and right together. The sliding of the disc 14 will cause the supporting arc plate 24 to slide. The sliding of the supporting arc plate 24 will cause the cylinder 26 and the support block 25 to slide together. The sliding of the cylinder 26 will cause the movable slide plate 29 to slide and compress the spring 28. The fixed plate 27 can limit the position of the other end of the spring 28. The expansion and contraction of the spring 28 can facilitate the sliding of the supporting arc plate 24, thereby cooperating with the left and right sliding installation and disassembly operations of the wire coil column 13.
[0031] Further, such as Figure 3 As shown, the side end of the frame 1 is fixed with a retaining plate 23; the interior of the retaining plate 23 is rotatably connected to a rotating screw 22, which is threadedly connected to the retaining plate 23; the side end of the rotating screw 22 is fixed with a positioning column 20.
[0032] During operation, align one end of the wire coil column 13 with the No. 1 connecting column 17, so that the No. 1 connecting column 17 is inserted into the interior of the wire coil column 13. At this time, align the positioning plug 18 with the disk body 14. The positioning plug 18 is square in shape, so that the positioning plug 18 is inserted into the interior of the disk body 14. The position of the disk body 14 is limited by the positioning plug 18. When the positioning plug 18 is inserted into the interior of the disk body 14, the magnet piece of the positioning plug 18 adsorbs the disk body 14 through magnetic attraction. The magnet piece at the side end of the positioning plug 18 can improve the connection stability between the disk body 14 and the positioning plug 18. The No. 1 connecting column 17 is inserted into the interior of the wire coil column 13. After one end of the wire coil column 13 is fixed, the No. 2 connecting column 19 is installed to the other end of the wire coil column 13. The staff rotates the rotating screw 22, and the rotating screw 22 is threadedly connected to the retaining plate 23 Then, the rotation of the rotating screw rod 22 will cause the positioning column 20 to rotate and the No. 2 connecting column 19 to move into the inside of the wire coil column 13. The positioning column 20 and the No. 2 connecting column 19 are rotationally connected. The rotation of the positioning column 20 will not cause the No. 2 connecting column 19 to rotate together. The rotation of the rotating screw rod 22 causes the positioning column 20 to rotate to one end of the wire coil column 13, thereby moving the No. 2 connecting column 19 into the inside of the wire coil column 13. The other end of the wire coil column 13 is fixed by the cooperation of the positioning column 20 and the No. 2 connecting column 19. After the two end positions of the wire coil column 13 are defined, the staff starts the motor 12. The output of the motor 12 causes the rotating rod 15 to rotate. The rotation of the rotating rod 15 then causes the rotating disk 16 to rotate. The rotation of the rotating disk 16 causes the disk body 14 to rotate. The rotation of the disk body 14 causes the wire coil column 13 to rotate for winding.
[0033] Further, such as Figure 1 As shown, a buffer platform 32 is installed on one side of the frame 1 , and a buffer platform 32 is provided on one side of the disk body 14 ; the top end of the buffer platform 32 is fixedly connected to a limit plate 34 .
[0034] The rotation of the disc 14 causes the second ball 31 to rotate, and the rotation of the second ball 31 can ensure the normal rotation of the disc 14. The cooperation between the cylinder 26 and the second ball 31 can share the gravity of the disc 14, reduce the pressure of the wire on the wire disc 13 on the rotation of the rotating disc 16, and the side surface of the disc 14 will contact the first ball 30. The rotation of the disc 14 will cause the first ball 30 to rotate. When the wire on the wire disc 13 is wound, the staff disassembles the position of the wire disc 13, and the No. 1 connecting post 17 and the No. 2 connecting post 19 are separated from the inside of the wire disc 13. After the staff controls the position of the wire disc 13 When the disc 14 moves to the buffer port 33, the sand inside the buffer port 33 can easily buffer and slow down the disc 14, making it convenient for the staff to control the disc 14, and then slowly move the disc 14 from the buffer platform 32.
[0035] Further, such as Figure 5 As shown, the support arc plate 24 is internally connected to multiple sets of No. 1 balls 30 for rotation; the support arc plate 24 is internally connected to multiple sets of No. 2 balls 31 for rotation.
[0036] During operation, after the wire coil column 13 is installed on the frame 1, the bottom end of the disc 14 will be inside the supporting arc plate 24. The wire coil column 13 will cause the disc 14 to rotate during the rotation and winding process. The rotation of the disc 14 will contact the No. 2 ball 31. The rotation friction of the disc 14 will cause the No. 2 ball 31 to rotate. The rotation of the No. 2 ball 31 can ensure the normal rotation of the disc 14. The cooperation between the cylinder 26 and the No. 2 ball 31 can share the gravity of the disc 14, reduce the pressure of the steel wire on the wire coil column 13 on the rotation of the rotating disc 16, and the side end surface of the disc 14 will contact the No. 1 ball 30. The rotation of the disc 14 will cause the No. 1 ball 30 to rotate.
[0037] Further, such as Figure 4As shown, a movable slide 29 is fixedly connected to the bottom end of the cylinder 26 ; one end of the movable slide 29 is connected to a spring 28 ; and the other end of the spring 28 is fixedly connected to a fixed plate 27 .
[0038] During operation, when the wire on the wire coil column 13 is wound up, the staff disassembles the position of the wire coil column 13, and the No. 1 connecting column 17 and the No. 2 connecting column 19 are separated from the inside of the wire coil column 13. The staff controls the position of the wire coil column 13 and starts the cylinder 26. The operation of the cylinder 26 pushes one end of the support arc plate 24 upward. The bottom end of the support arc plate 24 is hinged with the cylinder 26 and the support block 25. After the cylinder 26 pushes the support arc plate 24 to tilt up, the disc 14 on the support arc plate 24 can be separated from the support arc plate 24 in the direction of the support block 25, and the steel After the wire reel 13 is wound up, it needs to slide left and right to adjust and disassemble. The sliding of the wire reel 13 will cause the reel body 14 to slide left and right together. The sliding of the reel body 14 will cause the supporting arc plate 24 to slide. The sliding of the supporting arc plate 24 will cause the cylinder 26 and the support block 25 to slide together. The sliding of the cylinder 26 will cause the movable slide plate 29 to slide and compress the spring 28. The fixed plate 27 can limit the position of the other end of the spring 28. The extension and contraction of the spring 28 can facilitate the sliding of the position of the supporting arc plate 24, thereby cooperating with the left and right sliding installation and disassembly operations of the wire reel 13.
[0039] Further, such as Figure 1 As shown, an electric push rod 35 is provided on one side of the frame 1 ; and the electric push rod 35 is fixedly connected to one end of the motor 12 away from the frame 1 .
[0040] The second connecting post 19 is fixed to the other end of the wire coil column 13 by the cooperation of the positioning post 20 and the second connecting post 19. After the two end positions of the wire coil column 13 are defined, the staff starts the motor 12, and the output of the motor 12 causes the rotating rod 15 to rotate, and the rotation of the rotating rod 15 causes the rotating disk 16 to rotate, and the rotating disk 16 rotates. The rotation of the wire coil column 13 can make the positioning plug 18 on the wire coil column 13 be clamped and fixed in the position of the wire coil column 13, which is convenient for the wire coil column 13 to rotate and rewind. After the wire coil column 13 is rewound, the motor 12 is turned off and the electric push rod 35 is started to slide the motor 12. The sliding of the motor 12 can make the positioning plug 18 on the rotating disk 16 move away from the disk body 14. The electric push rod 35 can facilitate the sliding of the rotating disk 16, which is convenient for the installation and removal operation of the wire coil column 13. The staff controls the position of the wire coil column 13 and rotates the rotating screw rod 22 to make the positioning plug 18 and the second connecting post 19 slide away from the wire coil column 13, sliding the wire coil column 13 to make the first connecting post 17 detach from the inside of the wire coil column 13, completing the disassembly operation of the wire coil column 13.
[0041] Further, such as Figure 1 As shown, a buffer opening 33 is provided inside the buffer platform 32 , and the inside of the buffer opening 33 is filled with sand; and a disk 14 is rotatably connected to the buffer platform 32 .
[0042] During operation, when the wire on the wire coil column 13 is wound up, the staff disassembles the position of the wire coil column 13, and the No. 1 connecting column 17 and the No. 2 connecting column 19 are separated from the inside of the wire coil column 13. The staff controls the position of the wire coil column 13 and starts the cylinder 26. The operation of the cylinder 26 pushes one end of the support arc plate 24 upward. The bottom end of the support arc plate 24 is hinged with the cylinder 26 and the support block 25. After the cylinder 26 pushes the support arc plate 24 to tilt up, the disc 14 on the support arc plate 24 can be separated from the support arc plate 24 in the direction of the support block 25, and the disc 14 can be When the disc 14 is moved to the buffer platform 32, the limit plate 34 can limit the position of the disc 14 to prevent the disc 14 from leaving the buffer platform 32. The slope of the buffer platform 32 can assist in moving and disassembling the disc 14. The inside of the buffer port 33 is filled with sand. The steel wire on the wire coil column 13 has a large gravity after being wound. The slope of the buffer platform 32 makes it easy for the wire coil column 13 to rotate. When the disc 14 moves to the buffer port 33, the sand inside the buffer port 33 can easily buffer and slow down the disc 14, making it convenient for the staff to control the disc 14 and then slowly move the disc 14 from the buffer platform 32.
[0043] Further, such as Figure 3 As shown, a support sleeve 21 is fixedly connected to the interior of the frame 1 ; a positioning column 20 is slidably connected to the inner side wall of the support sleeve 21 .
[0044] During operation, after one end of the wire coil column 13 is fixed, the No. 2 connecting column 19 is installed to the other end of the wire coil column 13. The staff rotates the rotating screw rod 22, and the rotating screw rod 22 is threadedly connected to the fixing plate 23. The rotation of the rotating screw rod 22 will cause the positioning column 20 to rotate so that the No. 2 connecting column 19 moves toward the inside of the wire coil column 13. The positioning column 20 and the No. 2 connecting column 19 are rotationally connected. The rotation of the positioning column 20 will not cause the No. 2 connecting column 19 to rotate together. The rotation of the rotating screw rod 22 causes the positioning column 20 to rotate to one end of the wire coil column 13, thereby moving the No. 2 connecting column 19 to the inside of the wire coil column 13. The other end of the wire coil column 13 is aligned with the cooperation of the positioning column 20 and the No. 2 connecting column 19. The ends are fixed. After the positions of the two ends of the wire coil column 13 are limited, the staff starts the motor 12. The output of the motor 12 causes the rotating rod 15 to rotate. The rotation of the rotating rod 15 then causes the rotating disk 16 to rotate. The rotation of the rotating disk 16 causes the disk body 14 to rotate. The rotation of the disk body 14 causes the wire coil column 13 to rotate for winding. The weight of the wire coil column 13 will gradually increase during the rotation and winding process. The rotation of the rotating screw 22 can cause the positioning column 20 to rotate inside the support sleeve 21. The support sleeve 21 can limit the position of the positioning column 20. The support sleeve 21 can increase the supporting force of the No. 2 connecting column 19 on the wire coil column 13, thereby reducing the influence of the gravity of the wire on the wire coil column 13.
[0045] Further, such as Figure 3As shown, a magnet piece is fixed to the side end of the positioning plug 18; the magnet piece corresponds to the disk body 14.
[0046] During operation, one end of the wire coil column 13 is aligned with the No. 1 connecting column 17, so that the No. 1 connecting column 17 is inserted into the interior of the wire coil column 13. At this time, the positioning plug 18 is aligned with the disk body 14. The positioning plug 18 is square in shape, so that the positioning plug 18 is inserted into the interior of the disk body 14. The position of the disk body 14 is limited by the positioning plug 18. When the positioning plug 18 is inserted into the interior of the disk body 14, the magnet piece of the positioning plug 18 adsorbs the disk body 14 through the magnetic attraction. The magnet piece at the side end of the positioning plug 18 can improve the connection stability between the disk body 14 and the positioning plug 18. The No. 1 connecting column 17 is inserted into the interior of the wire coil column 13, and one end of the wire coil column 13 is fixed After fixing, the No. 2 connecting column 19 is installed to the other end of the wire coil column 13. The staff rotates the rotating screw rod 22, and the rotating screw rod 22 is threadedly connected to the retaining plate 23. The rotation of the rotating screw rod 22 will cause the positioning column 20 to rotate and the No. 2 connecting column 19 to move toward the inside of the wire coil column 13. The positioning column 20 and the No. 2 connecting column 19 are rotationally connected. The rotation of the positioning column 20 will not cause the No. 2 connecting column 19 to rotate together. The rotation of the rotating screw rod 22 causes the positioning column 20 to rotate to one end of the wire coil column 13, thereby moving the No. 2 connecting column 19 to the inside of the wire coil column 13, and the other end of the wire coil column 13 is fixed by the cooperation of the positioning column 20 and the No. 2 connecting column 19.
[0047] Working principle: The wire reel is installed on the H-frame of the cage stranding machine, and the position of the wire reel is limited by the H-shaped frame, or a positioning plate and screws are added for reinforcement. However, this fixing method is too simple, and the wire reel is easy to shake during the winding process, causing the wire reel to fall from the frame. Before work, align one end of the wire reel column 13 with the No. 1 connecting column 17, so that the No. 1 connecting column 17 is inserted into the inside of the wire reel column 13. At this time, align the positioning plug 18 with the disc body 14. The positioning plug 18 is square in shape, so that the positioning plug 18 is inserted into the inside of the disc body 14. The position of the disc body 14 is limited by the positioning plug 18. When the positioning plug 18 is inserted into the inside of the disc body 14, the magnet piece of the positioning plug 18 adsorbs the disc body 14 through magnetic attraction. The magnet piece at the side end of the positioning plug 18 can improve the connection between the disc body 14 and the positioning plug 18. The second connecting post 19 is moved to the inside of the wire coil 13, and the other end of the wire coil 13 is fixed by the cooperation of the positioning post 20 and the second connecting post 19. After the two end positions of the wire coil 13 are limited, the staff starts the motor 12.The output of the motor 12 causes the rotating rod 15 to rotate, and the rotation of the rotating rod 15 causes the rotating disk 16 to rotate. The rotation of the rotating disk 16 causes the disk body 14 to rotate, and the rotation of the disk body 14 causes the wire coil column 13 to rotate for winding. The rotation of the rotating screw rod 22 causes the positioning column 20 to fix one end of the wire coil column 13, and the positioning plug block 18 can be used to clamp and fix the position of the wire coil column 13, so that the wire coil column 13 can be rotated and wound. After the wire coil column 13 is wound, the motor 12 is turned off and the electric push rod 35 is started to slide the motor 12. The sliding of the motor 12 will cause the positioning plug block 18 on the rotating disk 16 to move away from the disk body 14, and the electric push rod 35 can be used to facilitate the rotating disk 1 6 slides to facilitate the installation and removal of the wire coil column 13. The staff controls the position of the wire coil column 13 and rotates the rotating screw 22 to slide the positioning column 20 and the second connecting column 19 away from the wire coil column 13. The wire coil column 13 is slid to separate the first connecting column 17 from the inside of the wire coil column 13, completing the removal operation of the wire coil column 13. The wire coil column 13 gradually increases in weight during the rotation and winding process. The rotation of the rotating screw 22 can cause the positioning column 20 to rotate inside the support sleeve 21. The support sleeve 21 can limit the position of the positioning column 20. The support sleeve 21 can increase the support force of the second connecting column 19 on the wire coil column 13, reducing the influence of the weight of the wire on the wire coil column 13.
[0048] Obviously, the above embodiments are merely examples for clarity of explanation and are not intended to limit the implementation methods. Those skilled in the art will appreciate that other variations or modifications can be made based on the above description. It is not necessary and impossible to enumerate all implementation methods here. Obvious variations or modifications arising therefrom remain within the scope of protection of the present invention.
Claims
1. A wire drum cage stranding machine clamping structure, characterized by: The invention comprises a frame (1); a motor (12) is provided at the side end of the frame (1); a rotating rod (15) is fixedly connected to the output end of the motor (12); a rotating disk (16) is fixedly connected to the side end of the rotating rod (15); a No. 1 connecting column (17) is fixedly connected to the side end of the rotating disk (16); a disk body (14) is installed at the side end of the rotating disk (16); a steel wire coil column (13) is fixedly connected to the side end of the disk body (14), and the steel wire coil column Two groups of disk bodies (14) are fixedly connected at both ends of the (13); a No. 1 connecting column (17) is inserted into the interior of the wire coil column (13); a plurality of groups of positioning plugs (18) are fixedly connected to the side ends of the rotating disk (16), and a positioning plug (18) is inserted into the interior of the disk body (14); a No. 2 connecting column (19) is slidably connected to the interior of the wire coil column (13); and a positioning column (20) is rotatably connected to the side end of the No. 2 connecting column (19).
2. The wire drum cage stranding machine clamping structure according to claim 1, characterized in that: A cylinder (26) is installed on one side of the frame (1); a supporting arc plate (24) is installed on the top of the cylinder (26); a supporting block (25) is installed on one side of the cylinder (26); the supporting block (25) and the top of the cylinder (26) are hingedly connected to the supporting arc plate (24); the inside of the supporting arc plate (24) is rotatably connected to the disk body (14).
3. The wire drum cage stranding machine clamping structure according to claim 2, characterized in that: A retaining plate (23) is fixedly connected to the side end of the frame (1); a rotating screw (22) is rotatably connected inside the retaining plate (23), and the rotating screw (22) is threadedly connected to the retaining plate (23); a positioning column (20) is fixedly connected to the side end of the rotating screw (22).
4. The wire drum cage stranding machine clamping structure according to claim 3, characterized in that: A buffer platform (32) is installed on one side of the frame (1), and a buffer platform (32) is provided on one side of the disk body (14); the top end of the buffer platform (32) is fixedly connected to a limiting plate (34).
5. The wire drum cage stranding machine clamping structure according to claim 4, characterized in that: The support arc plate (24) is internally rotatably connected to a plurality of groups of No. 1 balls (30); the support arc plate (24) is internally rotatably connected to a plurality of groups of No. 2 balls (31).
6. The wire drum cage stranding machine clamping structure according to claim 5, characterized in that: The bottom end of the cylinder (26) is fixedly connected to a movable slide plate (29); one end of the movable slide plate (29) is connected to a spring (28); the other end of the spring (28) is fixedly connected to a fixed plate (27).
7. The wire drum cage stranding machine clamping structure according to claim 6, characterized in that: An electric push rod (35) is provided on one side of the frame (1); and the electric push rod (35) is fixedly connected to one end of the motor (12) away from the frame (1).
8. The wire drum cage stranding machine clamping structure according to claim 7, characterized in that: A buffer opening (33) is provided inside the buffer platform (32), and the interior of the buffer opening (33) is filled with sand; and a disk (14) is rotatably connected to the buffer platform (32).
9. The wire drum cage stranding machine clamping structure according to claim 8, characterized in that: A support sleeve (21) is fixedly connected to the interior of the frame (1); and a positioning column (20) is slidably connected to the inner side wall of the support sleeve (21).
10. The wire drum cage stranding machine clamping structure according to claim 9, characterized in that: A magnet piece is fixedly connected to the side end of the positioning plug (18); the magnet piece corresponds to the disk body (14).