Efficient cabling device for cable production
Through the design of the eccentric wheel and the curved plate, combined with the adjustment of the rocker arm and the positioning ring, the problems of scratches and damage caused by friction during the cable twisting process are solved, and an efficient and stable cable twisting process is achieved.
Patent Information
- Application Number
- CN202510765780.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-10
- Publication Date
- 2025-09-19
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
During the twisting process of existing cabling devices, cables are scratched and damaged due to bending and friction, which affects their stability in use.
The wire feeding unit and positioning unit are used, and the cooperation of the eccentric wheel and the arc plate realizes the flexible contact and dynamic balance of the cable, thereby reducing the friction. The design of the rocker arm and positioning ring is used to adjust the cable bending point and tension distribution to ensure the smooth twisting of the cable.
It effectively avoids friction damage to the cables during the twisting process, ensures the integrity and stability of the cables, and improves the adaptability of the device.
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Figure CN120674157A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the field of cabling devices, and in particular to a high-efficiency cabling device for cable production. Background Art
[0002] Cables are conductors for transmitting electrical energy, signals, etc. They are mostly used in bundles, with multiple twisted cables inside a bundle. The cable cabling device is a device used to twist multiple single wires or insulated cores according to a specific structure to form a cable core. Its core function is to give the cable a stable structure and good electrical properties through operations such as twisting, pulling, and wrapping. The device is mainly composed of a pay-out mechanism, a twisting host, a traction system, a tape wrapping device, a take-up mechanism, etc. The pay-out mechanism is responsible for paying out the single wires in an orderly manner. The twisting host twists the cores according to a predetermined pitch through rotation. The traction system ensures that the cable moves at a uniform speed. The tape wrapping device can wrap the insulating tape or shielding layer, and the take-up mechanism neatly reels the cable after cabling.
[0003] In the prior art, a Chinese patent document with the announcement number CN113823461B proposes a cable cabling device, comprising a workbench, a driving rotation mechanism and a winding assembly provided on the workbench, a bearing assembly and a guide assembly provided through the driving rotation mechanism, the winding assembly comprising a first support platform, a winding platform fixedly mounted on the first support platform, a guide platform provided at the upper end of the winding platform, T-shaped slots symmetrically provided on both sides of the guide platform, a winding seat slidably provided through the guide platform and the T-shaped slot, a winding slot provided at the upper end of the winding seat through the first mounting slot, the winding slot being fixed in the winding seat through a fixing plate and a hinge assembly, a guide mechanism fixedly mounted on one end of the winding table close to the guide assembly, the bearing assembly comprising two mounting plates, a plurality of mounting plates evenly arranged circumferentially between the mounting plates, mounting slots and limit blocks symmetrically provided on both sides of the mounting plates, and a bearing seat provided through the mounting slots and limit blocks. The present invention can better perform cable cabling, has high efficiency, simple operation, and low equipment cost, but the solution still has the following deficiencies in actual use: When the cable is released from the pay-off roller to the twisting mechanism, the cable of the device has a long span and needs to go through multiple bends. When the cabling device twists and winds the cable, it will pull the cable to a straight state, causing friction between the cable and the bends of the device. In smooth areas, the side effects of friction are small, but in rough or protruding areas, the cable in a taut state continues to rub against these areas, which can easily cause scratches on the outer surface of the cable, or even cause direct damage, thereby causing holes in the twisted cable, reducing its stability during use. Therefore, the present application provides a high-efficiency cabling device for cable production to meet the needs of adaptive pipe lifting and lowering when arranging pipes on poles. Summary of the Invention
[0004] The object of the present invention is to provide a high-efficiency cabling device for cable production.
[0005] To achieve this object, the present invention adopts the following technical solutions: Provided is a high-efficiency cabling device for cable production, comprising a wire feeding unit and a positioning unit; The wire feeding unit includes a base, a wire pay-off drum, a driving mechanism, a wire adding drum, a wire twisting shaft and a roller frame, and the wire twisting shaft is fixedly connected to the middle part of the wire adding drum; The positioning unit includes a bracket fixedly connected to the outer surface of the stranded wire shaft, a circular ring is fixedly connected to the end of the bracket away from the stranded wire shaft, a T-shaped rod is fixedly connected to the side of the bracket, an arc-shaped plate is movably sleeved on the outer surface of the T-shaped rod, two vertical plates are fixedly connected to the upper surface of the arc-shaped plate, and hollow rollers are movably inserted in the middle of the two vertical plates; The outer surface of the circular ring is provided with a stretching component, the interior of the hollow roller is provided with an adjusting component, and the side of the circular ring is provided with a lifting component.
[0006] Furthermore, the stretching assembly includes a center rod movably inserted into the outer surface of the ring, the end of the center rod away from the center point of the ring is fixedly connected to a bevel gear, the end of the center rod close to the center point of the ring is fixedly connected to an eccentric wheel, the side of the base is fixedly connected to a folding rod, the end of the folding rod away from the base is fixedly connected to a bevel rack, the bevel gear is indirectly meshed with the bevel rack, and the number of tooth blocks of the bevel rack is the same as the number of tooth blocks of the bevel gear.
[0007] Furthermore, a return spring is sleeved on the outer surface of the T-shaped rod, and the end of the return spring abuts against the outer surface of the arc plate.
[0008] Furthermore, the axis of the ring is at the same position as the axis of the stranded wire shaft, the distribution of the arc plate on the outer surface of the ring corresponds one-to-one to the position of the holes in the wire adding disk, and there are two T-shaped rods that are symmetrically arranged on the outer surface of the arc plate near the end.
[0009] Furthermore, the adjustment component includes a bidirectional threaded rod movably inserted into the interior of the hollow roller, the outer surface of the bidirectional threaded rod is threadedly sleeved with a threaded slide, the outer surface of the threaded slide is fixedly connected to a positioning block, and one end of the positioning slider extending out of the hollow roller is fixedly connected to a positioning ring.
[0010] Furthermore, a slide groove is formed through the outer surface of the hollow roller, the positioning block is slidably connected to the inside of the slide groove, and two positioning rings are provided and are symmetrically distributed around the midpoint of the hollow roller.
[0011] Furthermore, both ends of the bidirectional threaded rod pass through the hollow roller and extend outward, and both ends of the bidirectional threaded rod are fixedly connected with knobs.
[0012] Furthermore, the lifting assembly includes a side rod fixedly connected to the side of the bracket, the end of the side rod away from the bracket is fixedly connected to a cross rod, a round rod is provided in the middle of the cross rod, the outer surface of the round rod is movably sleeved with a rocker rod, the top end of the rocker rod is set to an opening shape, and two rollers are rotatably connected to the inside of the opening.
[0013] Furthermore, a torsion spring is sleeved on the outer surface of the round rod, one end of the torsion spring is fixedly connected to the outer surface of the rocker arm, and the other end is fixedly connected to the outer surface of the crossbar.
[0014] Furthermore, the pay-off reel and the adding reel are both arranged on the upper part of the base, the driving mechanism is arranged on the outer surface of the pay-off reel and driven and connected to the middle part of the pay-off reel, and the roller frame annular array is distributed between the pay-off reel and the adding reel.
[0015] Beneficial effects of the present invention: 1. This type of high-efficiency cabling device for cable production drives the bevel gear and the bevel rack to engage during the rotation of the circular ring, thereby driving the eccentric wheel to rotate. The rotation of the eccentric wheel pushes the arc plate to stretch the cable. The pressure on the straightened cable will force the pay-off roller to rotate faster, releasing an additional small section of cable to offset the compressive force. Then, under the action of the reset spring, a dynamic balance of buffering and tension release is formed, which converts the rigid friction between the cable and the bending part of the device into flexible contact, greatly reducing the friction coefficient during the cable cabling process, effectively avoiding scratches, skin breakage and other damages caused by friction, and ensuring the integrity of the cable during the cabling process.
[0016] 2. This type of cable production uses an efficient cabling device that uses the rotation of the eccentric wheel to push the pendulum rod to swing around the round rod. The end of the pendulum rod then pushes the cable upward, causing the bending point of the cable to change. The loose cable released by the arc plate will be redistributed evenly, so that the overall tension fluctuation of the cable is within a smaller range, avoiding the problem of local over-tightness or over-looseness. In addition, the end of the pendulum rod gradually becomes level with the hole area of the stranding shaft, further reducing the friction between the device and the inflection point during the stretching process.
[0017] 3. This type of cable production uses an efficient cabling device that drives the bidirectional threaded rod to rotate by turning the knob. During the rotation of the bidirectional threaded rod, the threaded slides are driven to move closer or farther away from each other. The positioning rings slide along the outer surface of the hollow roller as the threaded slides move, thereby adjusting the spacing between the positioning rings, making it easier to position cable strands of different sizes, improving the adaptability of the device, and ensuring the smooth stretching and lifting of the cable. BRIEF DESCRIPTION OF THE DRAWINGS
[0018] In order to more clearly illustrate the technical solutions of the embodiments of the present invention, the following briefly introduces the drawings in the embodiments of the present invention.
[0019] Figure 1 It is a schematic diagram of the three-dimensional structure of the present invention; Figure 2 This is a schematic structural diagram of the wire adding drum of the present invention; Figure 3 This is a schematic structural diagram of the stretching assembly of the present invention; Figure 4 This is a schematic diagram of the distribution structure of the positioning units on the stranded wire shaft of the present invention; Figure 5 Schematic diagram of the positioning unit structure of the present invention Figure 1 ; Figure 6 It is a schematic diagram of the lifting assembly structure of the present invention; Figure 7 Schematic diagram of the positioning unit structure of the present invention Figure 2 ; Figure 8 It is a schematic diagram of the structure of the regulating component of the present invention.
[0020] In the picture: 11. Base; 12. Pay-off reel; 13. Driving mechanism; 14. Adding reel; 15. Twisting shaft; 16. Roller frame; 21. Bracket; 22. Ring; 23. T-bar; 24. Arc plate; 25. Vertical plate; 26. Hollow roller; 31. Center rod; 32. Bevel gear; 33. Eccentric wheel; 34. Folding rod; 35. Bevel rack; 36. Return spring; 41. Bidirectional threaded rod; 42. Threaded slide; 43. Positioning block; 44. Positioning ring; 45. Slide; 46. Knob; 51. Side rod; 52. Cross rod; 53. Round rod; 54. Rocker; 55. Roller; 56. Torsion spring. DETAILED DESCRIPTION
[0021] The technical solution of the present invention will be further described below with reference to the accompanying drawings and through specific implementation methods.
[0022] Among them, the drawings are only used for illustrative purposes and represent only schematic diagrams rather than actual pictures, and should not be understood as limitations on this patent; in order to better illustrate the embodiments of the present invention, some parts of the drawings may be omitted, enlarged or reduced, and do not represent the size of the actual product.
[0023] The present invention provides a technical solution, referring to Figures 1 to 8 As shown, a high-efficiency cabling device for cable production includes a wire feeding unit and a positioning unit; The wire feeding unit includes a base 11, a wire pay-off reel 12, a drive mechanism 13, a wire adding reel 14, a stranding shaft 15 and a roller frame 16. The stranding shaft 15 is fixedly connected to the middle of the wire adding reel 14. The wire pay-off reel 12 and the wire adding reel 14 are both arranged on the upper part of the base 11. The drive mechanism 13 is arranged on the outer surface of the wire pay-off reel 12 and is driven and connected to the middle of the wire pay-off reel 12. The roller frames 16 are distributed in a ring array between the wire pay-off reel 12 and the wire adding reel 14. The positioning unit includes a bracket 21 fixedly connected to the outer surface of the stranding shaft 15, a ring 22 fixedly connected to the end of the bracket 21 away from the stranding shaft 15, a T-shaped rod 23 fixedly connected to the side of the bracket 21, an arc-shaped plate 24 movably sleeved on the outer surface of the T-shaped rod 23, two vertical plates 25 fixedly connected to the upper surface of the arc-shaped plate 24, a hollow roller 26 movably inserted in the middle of the two vertical plates 25, a stretching component provided on the outer surface of the ring 22, an adjustment component provided inside the hollow roller 26, and a lifting component provided on the side of the ring 22; The wire roller to be twisted is placed on the roller frame 16, and the end of the wire passes through the hole of the wire adding drum 14 and then through the hole of the stranding shaft 15. If other wires need to be added to the twisted cable, the wire to be added is installed on the wire adding drum 14, and the driving mechanism 13 drives the pay-off drum 12 and the wire adding drum 14 to rotate. Under the operation of the twisting mechanism and the wire taking-up structure, the cable will be twisted and wound. The rotating pay-off drum 12 and the wire adding drum 14 can continuously release the cable. The cable entering the stranding shaft 15 from the pay-off drum 12 passes through the positioning unit to form a stable routing path. During operation, the stretching assembly will push the arc plate 24.
[0024] Reference Figures 2 to 5 As shown, the stretching assembly includes a center rod 31 that is movably inserted into the outer surface of the ring 22. The end of the center rod 31 away from the center point of the ring 22 is fixedly connected to a bevel gear 32, and the end of the center rod 31 close to the center point of the ring 22 is fixedly connected to an eccentric wheel 33. The side of the base 11 is fixedly connected to a folding rod 34, and the end of the folding rod 34 away from the base 11 is fixedly connected to a bevel rack 35. The bevel gear 32 is indirectly meshed with the bevel rack 35, and the number of tooth blocks of the bevel rack 35 is the same as that of the bevel gear 32. 2 has the same number of tooth blocks, the outer surface of the T-shaped rod 23 is sleeved with a return spring 36, the end of the return spring 36 abuts the outer surface of the arc plate 24, the axis of the ring 22 is at the same position as the axis of the stranding shaft 15, the distribution of the arc plate 24 on the outer surface of the ring 22 corresponds to the position of the hole of the wire adding disk 14, and two T-shaped rods 23 are provided and symmetrically penetrate the outer surface of the arc plate 24 near the end, and the position of the eccentric wheel 33 is aligned with the position of the arc plate 24; During the overall operation of the cabling device, the ring 22 rotates with the rotation of the stranding shaft 15. When it rotates to a position close to the base 11, the bevel gear 32 will engage with the bevel rack 35, which will drive the bevel gear 32 to rotate and drive the center rod 31 to rotate. During the rotation of the center rod 31, the eccentric wheel 33 will be driven to rotate around the center rod 31. During the rotation, the eccentric wheel 33 will push the arc plate 24, so that the arc plate 24 slides along the outer surface of the T-bar 23 and squeezes the reset spring 36. Since the cable is located at the lower part of the hollow roller 26, the movement of the arc plate 24 will drive the vertical plate 25 and the hollow roller 26 to rotate synchronously. The cable is pulled in a certain manner, and the friction with the bending part of the device is reduced, thereby avoiding damage caused by friction and ensuring the integrity of the cable during twisting.
[0025] Reference Figure 5 、 Figure 7 and Figure 8 As shown, the adjustment assembly includes a bidirectional threaded rod 41 that is movably inserted into the interior of the hollow roller 26. The outer surface of the bidirectional threaded rod 41 is threadedly sleeved with a threaded slide 42. The outer surface of the threaded slide 42 is fixedly connected with a positioning block 43. One end of the positioning slider extending out of the hollow roller 26 is fixedly connected with a positioning ring 44. The opposite side of the positioning ring 44 is designed as an arc surface to avoid scratches during the positioning process. A slide groove 45 is provided on the outer surface of the hollow roller 26. The positioning block 43 is slidably connected to the inside of the slide groove 45. Two positioning rings 44 are provided and are symmetrically distributed about the midpoint of the hollow roller 26. Both ends of the bidirectional threaded rod 41 penetrate the hollow roller 26 and extend outward. Both ends of the bidirectional threaded rod 41 are fixedly connected with knobs 46. Turning the knob 46 drives the bidirectional threaded rod 41 to rotate. During the rotation of the bidirectional threaded rod 41, the forward and reverse threads at both ends drive the two threaded slides 42 to approach or move away from each other axially. The outer surface of the threaded slide 42 is connected to the positioning ring 44 through the positioning block 43, and the positioning block 43 is limited and slides in the slide groove 45 to ensure the smooth conversion between rotational motion and linear motion. The positioning ring 44 slides along the outer surface of the hollow roller 26 as the threaded slide 42 moves, thereby adjusting the spacing of the positioning rings 44, making it convenient to position cable strands of different sizes and improving the adaptability of the device. The positioning ring 44 can be adjusted to avoid indentations on the outside of the cable caused by excessive pressure or positioning deviations caused by excessive looseness.
[0026] Reference Figures 3 to 6As shown, the lifting assembly includes a side rod 51 fixedly connected to the side of the bracket 21, and the end of the side rod 51 away from the bracket 21 is fixedly connected to the cross rod 52. A round rod 53 is provided in the middle of the cross rod 52. The outer surface of the round rod 53 is movably sleeved with a rocker 54. The top of the rocker 54 is set in an open shape, and two rollers 55 are rotatably connected to the inside of the opening. The outer surface of the round rod 53 is sleeved with a torsion spring 56. One end of the torsion spring 56 is fixedly connected to the outer surface of the rocker 54, and the other end is fixedly connected to the outer surface of the cross rod 52. The position of the eccentric wheel 33 is aligned with the lower position of the rocker 54. During the rotation of the eccentric wheel 33, it will also push the lower part of the pendulum rod 54, causing the pendulum rod 54 to rotate around the round rod 53. The pendulum rod 54 will squeeze the torsion spring 56 during the rotation. At the same time, since the cable passes directly through the two rollers 55 at the end of the pendulum rod 54, the upward swing of the pendulum rod 54 will push the cable. When the cable is in a stretched state, it will tilt upward and enter the hole at the end of the stranded shaft. The push of the pendulum rod 54 will cause the bending point of the cable to change, and the bending point will gradually approach the direction of the arc plate 24. The small section of cable released by the previous movement of the arc plate 24 will be stretched upward, achieving the position transfer of the cable in a loose state, and as the pendulum rod 54 swings, the end of the pendulum rod 54 gradually becomes horizontal with the hole area of the stranded shaft 15, so the cable and the hole of the stranded shaft 15 are stretched horizontally, further reducing the friction between the inflection point of the device during the stretching process, thereby protecting the cable.
[0027] The working principle of the present invention is as follows: the cabling device is used to release and twist the cables. The wire roller to be twisted is placed on the roller frame 16, and the end of the wire passes through the hole of the wire adding drum 14 and then through the hole of the stranding shaft 15. If the cable to be twisted needs to add other wires, the wire to be added is installed on the wire adding drum 14, and the driving mechanism 13 drives the pay-off drum 12 and the wire adding drum 14 to rotate. Under the operation of the twisting mechanism and the wire taking-up structure, the cables will be twisted and wound. The rotating pay-off drum 12 and the wire adding drum 14 can continuously release the cables. It should be noted that the specific structure and operation process principle of the cabling device are existing technologies well known to the staff in this field and will not be elaborated on here. A positioning unit is installed in the middle of the outer surface of the stranding shaft 15, and the cable entering the stranding shaft 15 from the pay-off drum 12 passes through the positioning unit. The cable passes through the lower part of the hollow roller 26 and then through the middle of the roller 55 to form a stable routing path. During the overall operation of the cabling device, the ring 22 rotates with the rotation of the stranding shaft 15. When it rotates to a position close to the base 11, the bevel gear 32 will engage with the bevel rack 35, which will drive the bevel gear 32 to rotate and drive the center rod 31 to rotate. During the rotation of the center rod 31, the eccentric wheel 33 will drive the rotation around the center rod 31. During the rotation, the eccentric wheel 33 will push the arc plate 24, so that the arc plate 24 slides along the outer surface of the T-bar 23 and squeezes the reset spring 36. Since the cable is located at the lower part of the hollow roller 26, the movement of the arc plate 24 will drive the vertical plate 25 and The hollow rollers 26 move synchronously, and then the hollow rollers 26 will straighten the cable. When the hollow rollers 26 push the cable, the straightened cable is under pressure, forcing the rollers of the pay-off drum 12 to rotate faster, releasing an additional small section of cable. By actively paying out the cable, the pressure of the curved plate 24 is offset, and the cable is prevented from being deformed due to hard squeezing. After the eccentric wheel 33 is separated from the curved plate 24, the return spring 36 rebounds and pushes the curved plate 24 to reset. At this time, the overall tension of the cable is relieved due to the extra length released, forming a dynamic balance of buffering and tension release. This mechanism constructs an elastic buffer zone during the cable pulling process, which converts the rigid friction between the cable and the bending part of the device into flexible contact, greatly reducing the friction coefficient during the cable cabling process, effectively avoiding scratches, breakage and other damages caused by friction, and ensuring the integrity of the cable during the cabling process. When the eccentric wheel 33 is away from the arc plate 24, it will approach the rocker arm 54. As the bevel gear 32 and the bevel rack 35 are driven, the eccentric wheel 33 will push the lower part of the rocker arm 54, causing the rocker arm 54 to rotate around the round rod 53. During the rotation of the rocker arm 54, the torsion spring 56 will be squeezed to accumulate elastic potential energy. At the same time, since the cable passes directly through the two rollers 55 at the end of the rocker arm 54, the two rollers 55 at its end drive the cable to move synchronously, which will push the cable when the rocker arm 54 swings upward. In the stretched state, the cable will tilt upward and enter the hole at the end of the stranded shaft. The push of the rocker arm 54 will change the bending point of the cable. Gradually approaching the direction of the curved plate 24, the small section of cable released by the previous movement of the curved plate 24 will be stretched upward, achieving the position transfer of the cable loose state, and as the swing rod 54 swings, the end of the swing rod 54 gradually becomes horizontal with the hole area of the stranding shaft 15, so that the cable and the hole of the stranding shaft 15 are stretched horizontally, further reducing the friction between the device and the inflection point during the stretching process, playing a role in protecting the cable. When the swing rod 54 pushes the cable, it will redistribute the loose cable released by the curved plate 24 evenly, so that the overall tension fluctuation of the cable is within a smaller range, avoiding the problem of local over-tightening or over-loosening; When the cable passes through the lower surface of the hollow roller 26, the two positioning rings 44 form a radial limit for the cable through the annular groove structure, effectively preventing the cable from lateral displacement or axial movement during the twisting process. For cables of different sizes, the spacing between the two positioning rings 44 can be adjusted, and the bidirectional threaded rod 41 is driven to rotate by turning the knob 46. During the rotation of the bidirectional threaded rod 41, the forward and reverse threads at both ends drive the two threaded slides 42 to approach or move away from each other axially. The outer surface of the threaded slide 42 is connected to the positioning ring 44 through a positioning block 43, and the positioning block 43 is limited and slides in the slide groove 45 to ensure smooth conversion between rotational motion and linear motion. The positioning ring 44 slides along the outer surface of the hollow roller 26 as the threaded slide 42 moves, thereby adjusting the spacing of the positioning rings 44, making it convenient to position the cable strands of different sizes and improving the adaptability of the device. The positioning ring 44 can be adjusted to avoid indentations on the outside of the cable caused by excessive pressure or positioning deviations caused by excessive looseness, thereby ensuring smooth cable stretching and lifting movements.
Claims
1. An efficient cabling device for cable production, characterized in that: Including wire feeding unit and positioning unit; The wire feeding unit comprises a base (11), a wire unwinding reel (12), a driving mechanism (13), a wire feeding reel (14), a wire twisting shaft (15) and a roller frame (16), wherein the wire twisting shaft (15) is fixedly connected to the middle of the wire feeding reel (14); The positioning unit comprises a bracket (21) fixedly connected to the outer surface of the stranded wire shaft (15), an end of the bracket (21) away from the stranded wire shaft (15) is fixedly connected to a ring (22), a side of the bracket (21) is fixedly connected to a T-shaped rod (23), an outer surface of the T-shaped rod (23) is movably sleeved with an arc plate (24), an upper surface of the arc plate (24) is fixedly connected to two vertical plates (25), and a hollow roller (26) is movably interspersed in the middle of the two vertical plates (25); The outer surface of the circular ring (22) is provided with a stretching component, the interior of the hollow roller (26) is provided with an adjusting component, and the side of the circular ring (22) is provided with a lifting component.
2. The high-efficiency cable-forming device for cable production according to claim 1, characterized in that: The stretching assembly includes a center rod (31) movably inserted into the outer surface of the ring (22), the end of the center rod (31) away from the center point of the ring (22) is fixedly connected to the bevel gear (32), the end of the center rod (31) close to the center point of the ring (22) is fixedly connected to the eccentric wheel (33), the side of the base (11) is fixedly connected to a folding rod (34), the end of the folding rod (34) away from the base (11) is fixedly connected to a bevel rack (35), the bevel gear (32) is indirectly meshed with the bevel rack (35), and the number of tooth blocks of the bevel rack (35) is the same as the number of tooth blocks of the bevel gear (32).
3. The high-efficiency cabling device for cable production according to claim 2, characterized in that: A return spring (36) is sleeved on the outer surface of the T-shaped rod (23), and the end of the return spring (36) abuts against the outer surface of the arc plate (24).
4. The high-efficiency cable-forming device for cable production according to claim 1, characterized in that: The axis of the circular ring (22) is located at the same position as the axis of the stranded wire shaft (15); the distribution of the arc-shaped plate (24) on the outer surface of the circular ring (22) corresponds to the position of the holes of the wire adding disk (14); and two T-shaped rods (23) are provided and symmetrically penetrate the outer surface of the arc-shaped plate (24) near the end.
5. The high-efficiency cabling device for cable production according to claim 4, characterized in that: The adjustment assembly comprises a bidirectional threaded rod (41) movably inserted into the interior of the hollow roller (26); a threaded sleeve is provided on the outer surface of the bidirectional threaded rod (41); a positioning block (43) is fixedly connected to the outer surface of the threaded slide (42); and one end of the positioning slide extending out of the hollow roller (26) is fixedly connected to a positioning ring (44).
6. The high-efficiency cabling device for cable production according to claim 5, characterized in that: A chute (45) is provided through the outer surface of the hollow roller (26), the positioning block (43) is slidably connected inside the chute (45), and the positioning ring (44) is provided with two pieces and is symmetrically distributed around the midpoint of the hollow roller (26).
7. The high-efficiency cabling device for cable production according to claim 6, characterized in that: Both ends of the bidirectional threaded rod (41) pass through the hollow roller (26) and extend outwards, and both ends of the bidirectional threaded rod (41) are fixedly connected to knobs (46).
8. The high-efficiency cabling device for cable production according to claim 7, characterized in that: The lifting assembly includes a side rod (51) fixedly connected to the side of the bracket (21), and one end of the side rod (51) away from the bracket (21) is fixedly connected to a cross rod (52), a round rod (53) is provided in the middle of the cross rod (52), and a rocker rod (54) is movably sleeved on the outer surface of the round rod (53), and the top end of the rocker rod (54) is set to an open shape, and the inside of the opening is rotatably connected to two rollers (55).
9. The high-efficiency cabling device for cable production according to claim 8, characterized in that: The outer surface of the round rod (53) is sleeved with a torsion spring (56), one end of the torsion spring (56) is fixedly connected to the outer surface of the rocker (54), and the other end is fixedly connected to the outer surface of the crossbar (52).
10. The high-efficiency cable-making device for cable production according to claim 1, characterized in that: The pay-off reel (12) and the adding reel (14) are both arranged on the upper part of the base (11); the driving mechanism (13) is arranged on the outer surface of the pay-off reel (12) and is driven and connected to the middle part of the pay-off reel (12); and the roller frames (16) are distributed in an annular array between the pay-off reel (12) and the adding reel (14).
Citation Information
Patent Citations
A cable forming device
CN113823461B
Cited By
Method and device for processing large-section power cable
CN121439393A