An automatic shaping and straightening system for industrial cable reels

By designing an automatic plastic shaping and straightening system of industrial cable trays, including automatic plastic shaping introduction structure and automatic disconnection structure, the existing devices lack synchronous guidance and convenient disconnection during the plastic shaping process, the stable plastic shaping and convenient disconnection of cables are achieved, and the automation and convenience of the plastic shaping process is improved.

CN112110285BActive Publication Date: 2025-07-01XINGNING FENGJIN ELECTRONICS CO LTD
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Patent Information

Application Number
CN202011133076.3
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2020-10-21
Publication Date
2025-07-01
Estimated Expiration
2040-10-21

AI Technical Summary

Technical Problem

The existing cable shaping devices lack the synchronous organization guide structure during the shaping process, resulting in complex overall shaping and lack of convenient broken wire structures, which affects the convenience of wire extraction.

Method used

An automatic shaping and straightening system for industrial cable discs is designed, including a support mount, automatic shaping and introduction structure of the guide and an automatic disconnection structure. The automatic guided shaping guide structure realizes stable guidance and limiting of the cable through the multi-axis speed-regulating guide power structure, active guide roller, hydraulic piston cylinder and other components; the automatic wire-breaking structure realizes convenient reciprocating and cutting processing through the third motor, torque lead rod, eccentric drive wheel and other components.

Benefits of technology

Through the design of the automatic shaping and introduction structure of the guide, the stable guidance and shaping of the cable is achieved, and the completeness of the appearance during the winding process is improved; through the design of the automatic disconnection structure, convenient disconnection processing is achieved, and the automation convenience of the device is improved.

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Abstract

The present invention discloses an automatic shaping and straightening system for industrial cable reels, which relates to the technical field of cable reel shaping devices. The invention patent of this invention includes a support platform frame. At both ends of one side of the top of the support platform frame, stable support frames are welded. A cable winding reel is rotatably connected inside the two stable support frames. On the other side of the top of the support platform frame, a guiding and automatic shaping and guiding structure and an automatic wire breaking structure are fixed by screws. Through the design of the guiding and automatic shaping and guiding structure, the device is convenient to complete the coordinated adjustment and export of the cable through the conduction of multiple different speeds, and forms stable guiding and limiting for cables of different diameters in cooperation with the design of the remaining structures, improving the integrity of the appearance during the final winding process. And through the design of the automatic wire breaking structure, the device is convenient to complete the convenient reciprocating cutting process of the collected cable, greatly improving the automation and convenience of the device use.
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Description

Technical Field

[0001] The present invention relates to the technical field of cable reel shaping devices, and specifically to an automatic shaping and straightening system for industrial cable reels. Background Art

[0002] At present, there are many types of cable reels on the market, and their grades vary. A mobile cable reel refers to a movable power cord reel wound with electric wires and cables. The cable reel is equipped with a national standard socket or an industrial socket, a leakage protector and a power indicator light, and is used as an outdoor power source. In order to facilitate movement and carrying, small cable reels should have a reel bracket and a handle, and larger cable reels are equipped with casters. When the mobile cable reel is used in industry, due to the long length of the cable, the cable is likely to be collected in a mess during the recycling process, and the cable often needs to be shaped. However, in the shaping process of the existing devices, they mostly sort by pushing from both sides, lacking a synchronous sorting and guiding structure during the wire feeding process, resulting in a more complex overall shaping, and lacking a convenient wire breaking structure, which is rather cumbersome when taking the wire.

[0003] Content of the Invention Patent

[0004] The purpose of this invention patent is to provide an automatic shaping and straightening system for industrial cable reels to solve the existing problems: in the shaping process of the existing devices, they mostly sort by pushing from both sides, lacking a synchronous sorting and guiding structure during the wire feeding process, resulting in a more complex overall shaping.

[0005] To achieve the above object, the present invention provides the following technical solution: An automatic shaping and straightening system for industrial cable reels, comprising a support platform frame. At both ends of one side of the top of the support platform frame, stable support frames are welded. Inside the two stable support frames, a cable winding reel is rotatably connected. On the other side of the top of the support platform frame, a guiding and automatic shaping and guiding structure and an automatic wire breaking structure are fixed by screws. The automatic wire breaking structure is located on one side of the guiding and automatic shaping and guiding structure. The guiding and automatic shaping and guiding structure includes a multi-axis speed-regulating guiding power structure, a first mounting plate, a second mounting plate, a driving guide roller, a lifting and adjusting guide plate, an L-shaped mounting plate, a hydraulic piston cylinder, a following sliding block, and an auxiliary guide roller. The top of the multi-axis speed-regulating guiding power structure is welded to the first mounting plate. One end of the multi-axis speed-regulating guiding power structure is fixedly connected to the driving guide roller. The other end of the driving guide roller is rotatably connected to the second mounting plate. The tops of the second mounting plate and the first mounting plate are both welded to the lifting and adjusting guide plate. One side of one of the lifting and adjusting guide plates is welded to the L-shaped mounting plate. The top of the L-shaped mounting plate is fixed to the hydraulic piston cylinder by screws. The output end of the hydraulic piston cylinder is welded to the following sliding block. The following sliding block is located inside the lifting and adjusting guide plate. The following sliding block is slidably connected to the lifting and adjusting guide plate. An auxiliary guide roller is rotatably connected between the two following sliding blocks.

[0006] Preferably, the multi-axis speed-regulating guiding power structure includes a power box body, a first motor, a control module, a driving bevel gear, a driven bevel gear, a driving transmission shaft, a first driving gear, a second driving gear, a third driving gear, a speed-changing and adjusting derivation structure, a linkage gear, a driving gear shaft, a driving gear shaft, and a torque export block. One end of the power box body is fixedly connected to the driving gear shaft by screws. One end of the power box body is also fixedly connected to the control module. The output end of the first motor is fixedly connected to the driving bevel gear. One side of the driving bevel gear is meshed with the driven bevel gear. The inner side of the driven bevel gear is clamped to the outer side of the driving transmission shaft by a flat key. The outer side of the driving transmission shaft is sequentially clamped with a first driving gear, a second driving gear, and a third driving gear from one end to the other end. The speed-changing and adjusting derivation structure is located inside the power box body. The driving transmission shaft is connected to the linkage gear through the speed-changing and adjusting derivation structure. One side of the linkage gear is meshed with the driving gear shaft. One side of the driving gear shaft is meshed with the driving gear shaft. One end of the driving gear shaft is welded to the torque export block.

[0007] Preferably, the speed change adjustment derivation structure includes a second motor, a threaded guide rod, a smooth rod, a toggle adjustment fork, an adjustment spindle, a first driven gear, a second driven gear, a third driven gear and an adjustment stroke gear shaft, the output end of the second motor is fixedly connected to the threaded guide rod, the smooth rod is welded to the inner side of the power box body, the outer sides of the threaded guide rod and the outer sides of the smooth rod are movably connected to the toggle adjustment fork, the bottom end of the toggle adjustment fork is welded to the adjustment spindle, the outer side of one end of the adjustment spindle is sequentially clamped with the first driven gear, the second driven gear and the third driven gear from one end to the other end, an adjustment guide groove is provided on the inner side of the adjustment spindle, a stroke conduction pin is welded at one end of the adjustment stroke gear shaft, a semicircular flat key is welded at the top of the stroke conduction pin, and the adjustment spindle is connected to the adjustment stroke gear shaft by a semicircular flat key.

[0008] Preferably, the diameter of the third driving gear is ten centimeters, the diameter of the second driving gear is twenty centimeters, the diameter of the first driving gear is fifteen centimeters, the diameter of the second driven gear is the same as the third driving gear, the diameter of the first driven gear is the same as the second driving gear, and the diameter of the third driven gear is the same as the first driving gear.

[0009] Preferably, a linkage through hole and a travel guide through hole are provided inside the toggle adjustment fork, the travel guide through hole is located on one side of the linkage through hole, the travel guide through hole and the smooth rod are clearance-fitted, and the linkage through hole is connected to the threaded guide rod by threads.

[0010] Preferably, guide displacement slide grooves are provided on both sides of the interior of the lifting adjustment guide plate, and follow-up adjustment sliders are welded on both sides of the follow-up sliding block, and the follow-up adjustment sliders are clearance-fitted with the guide displacement slide grooves.

[0011] Preferably, the automatic wire-breaking structure comprises an internal carrying frame, an internal supporting plate, a guide stroke track, a third motor, a torque derivation rod, an eccentric driving wheel, a reciprocating derivation rod, a lifting linkage block and a cutting knife, both sides of the internal part of the internal carrying frame are welded to the internal supporting plate, one side of the internal supporting plate is welded to the guide stroke track, the outer side of the internal carrying frame is fixedly connected to the third motor by screws, the output end of the third motor is fixedly connected to the torque derivation rod, one end of the torque derivation rod is welded to the eccentric driving wheel, both sides of the reciprocating derivation rod are welded to the eccentric driving wheel, and the eccentric driving wheel on the other side is also rotatably connected to the internal carrying frame through the torque derivation rod, the bottom end of the reciprocating derivation rod is fixedly connected to the lifting linkage block, the bottom end of the lifting linkage block is welded to the cutting knife, and the lifting linkage block is slidably connected to the guide stroke track.

[0012] Preferably, mating drive pins are welded to both sides of the bottom of the reciprocating derivation rod, and a linkage mating tightening piece is welded to the top of the lifting linkage block. The reciprocating derivation rod and the lifting linkage block are connected by clamping through the mating drive pins and the linkage mating tightening piece.

[0013] Preferably, a triangular sliding guide groove is formed inside the guiding stroke track, and triangular displacement sliders are welded to both sides of the lifting linkage block. The triangular sliding guide groove and the triangular displacement sliders are in clearance fit.

[0014] Compared with the prior art, the beneficial effects of the present invention are as follows:

[0015] 1. Through the design of the matching and guiding automatic shaping and guiding structure, the device is convenient to complete the matching adjustment and derivation of the cable through the conduction of multiple different speeds, and forms stable guiding and limiting for cables of different diameters in combination with the design of other structures, improving the overall shape integrity during the final winding process;

[0016] 2. Through the design of the automatic wire breaking structure, the device is convenient to complete the convenient reciprocating cutting process for the collected cables, greatly improving the automation and convenience of the device in use. BRIEF DESCRIPTION OF THE DRAWINGS

[0017] In order to more clearly illustrate the technical solutions of the embodiments of the present invention, the following will briefly introduce the drawings required for the description of the embodiments. Obviously, the drawings in the following description are only some embodiments of the present invention, and those of ordinary skill in the art can also obtain other drawings based on these drawings without creative efforts.

[0018] Figure 1 It is a schematic structural diagram of the whole of the present invention;

[0019] Figure 2 It is a side view of the whole of the present invention;

[0020] Figure 3 It is a partial structural diagram of the matching and guiding automatic shaping and guiding structure of the present invention;

[0021] Figure 4 It is a partial structural diagram of the multi-axis speed regulation guiding power structure of the present invention;

[0022] Figure 5 It is a partial structural diagram of the variable speed adjustment derivation structure of the present invention;

[0023] Figure 6 It is a partial structural diagram of the automatic wire breaking structure of the present invention.

[0024] In the figure: 1. Support stand; 2. Stable support frame; 3. Cable winding reel; 4. Automatic shaping and guiding structure for cable distribution; 5. Automatic wire cutting structure; 6. Multi-axis speed regulation and guiding power structure; 7. First mounting plate; 8. Second mounting plate; 9. Active material guiding roller; 10. Lifting and adjusting guide plate; 11. L-shaped mounting plate; 12. Hydraulic piston cylinder; 13. Following sliding block; 14. Auxiliary material guiding roller; 15. Power box main body; 16. First motor; 17. Control module; 18. Active bevel gear; 19. Driven bevel gear; 20. Active transmission shaft; 21. First active gear; 22. Second active gear; 23. Third active gear; 24. Variable speed adjustment and derivation structure; 25. Linkage gear; 26. Driving gear shaft; 27. Driving gear shaft; 28. Torque export block; 29. Second motor; 30. Threaded guide rod; 31. Smooth rod; 32. Dialing adjustment fork; 33. Adjustment main shaft; 34. First driven gear; 35. Second driven gear; 36. Third driven gear; 37. Adjustment stroke gear shaft; 38. Inner mounting and carrying frame; 39. Inner distribution support plate; 40. Guiding stroke track; 41. Third motor; 42. Torque export rod; 43. Eccentric driving wheel; 44. Reciprocating derivation rod; 45. Lifting linkage block; 46. Cutting knife. Detailed implementation mode

[0025] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments.

[0026] Please refer to Figure 1-6, An automatic shaping and straightening system for industrial cable reels, comprising a support bench 1. At both ends on one side of the top of the support bench 1, stable support frames 2 are welded. Inside the two stable support frames 2, a cable winding reel 3 is rotatably connected. On the other side of the top of the support bench 1, a guiding and automatic shaping and guiding structure 4 and an automatic wire breaking structure 5 are fixed by screws. The automatic wire breaking structure 5 is located on one side of the guiding and automatic shaping and guiding structure 4. The guiding and automatic shaping and guiding structure 4 includes a multi-axis speed-regulating guiding power structure 6, a first mounting plate 7, a second mounting plate 8, a driving guide roller 9, a lifting and adjusting guide plate 10, an L-shaped mounting plate 11, a hydraulic piston cylinder 12, a following sliding block 13, and an auxiliary guide roller 14. The top of the multi-axis speed-regulating guiding power structure 6 is welded to the first mounting plate 7. One end of the multi-axis speed-regulating guiding power structure 6 is fixedly connected to the driving guide roller 9. The other end of the driving guide roller 9 is rotatably connected to the second mounting plate 8. The tops of the second mounting plate 8 and the first mounting plate 7 are both welded to the lifting and adjusting guide plate 10. One side of one of the lifting and adjusting guide plates 10 is welded to the L-shaped mounting plate 11. The top of the L-shaped mounting plate 11 is fixedly connected to the hydraulic piston cylinder 12 by screws. The output end of the hydraulic piston cylinder 12 is welded to the following sliding block 13. The following sliding block 13 is located inside the lifting and adjusting guide plate 10 and is slidably connected to the lifting and adjusting guide plate 10. Between the two following sliding blocks 13, the auxiliary guide roller 14 is rotatably connected. On both sides inside the lifting and adjusting guide plate 10, guiding displacement sliding grooves are provided. On both sides of the following sliding block 13, following adjusting sliders are welded. The following adjusting sliders and the guiding displacement sliding grooves are in clearance fit, facilitating the driving of the hydraulic piston cylinder 12 to push the auxiliary guide roller 14 to complete the lifting adjustment through the sliding fit of the following sliding block 13 and the lifting and adjusting guide plate 10, thereby performing the height adjustment between the auxiliary guide roller 14 and the driving guide roller 9 to adapt to cables of different diameters and complete the height adaptation and stable gathering;

[0027] The multi-axis speed-regulating and guiding power structure 6 includes a power box main body 15, a first motor 16, a control module 17, a driving bevel gear 18, a driven bevel gear 19, a driving transmission shaft 20, a first driving gear 21, a second driving gear 22, a third driving gear 23, a speed-variable adjustment derivation structure 24, a linkage gear 25, a power-distributing gear shaft 26, a driving gear shaft 27, and a torque derivation block 28. One end of the power box main body 15 is fixedly connected to the power-distributing gear shaft 26 by screws. One end of the power box main body 15 is also fixedly connected to the control module 17. The output end of the first motor 16 is fixedly connected to the driving bevel gear 18. One side of the driving bevel gear 18 is meshed and connected with the driven bevel gear 19. The inner side of the driven bevel gear 19 is clamped to the outer side of the driving transmission shaft 20 by a flat key. The outer side of the driving transmission shaft 20 is sequentially clamped with the first driving gear 21, the second driving gear 22, and the third driving gear 23 from one end to the other end. The speed-variable adjustment derivation structure 24 is located inside the power box main body 15. The driving transmission shaft 20 is connected to the linkage gear 25 through the speed-variable adjustment derivation structure 24. One side of the linkage gear 25 is meshed and connected with the power-distributing gear shaft 26. One side of the power-distributing gear shaft 26 is meshed and connected with the driving gear shaft 27. One end of the driving gear shaft 27 is welded to the torque derivation block 28;

[0028] The speed adjustment derivation structure 24 includes a second motor 29, a threaded guide rod 30, a light rod 31, a toggle adjustment fork 32, an adjustment spindle 33, a first driven gear 34, a second driven gear 35, a third driven gear 36 and an adjustment stroke gear shaft 37. The output end of the second motor 29 is fixedly connected to the threaded guide rod 30, the light rod 31 is welded to the inner side of the power box body 15, the outer side of the threaded guide rod 30 and the outer side of the light rod 31 are both movably connected to the toggle adjustment fork 32, and the bottom end of the toggle adjustment fork 32 is connected to the adjustment spindle. The first driven gear 34, the second driven gear 35 and the third driven gear 36 are sequentially connected to the outer side of one end of the adjusting main shaft 33 from one end to the other end. The inner side of the adjusting main shaft 33 is provided with an adjusting guide slot. A travel transmission pin is welded to one end of the adjusting stroke gear shaft 37. A semicircular flat key is welded to the top of the travel transmission pin. The adjusting main shaft 33 is connected to the adjusting stroke gear shaft 37 through a semicircular flat key. A linkage through hole and a travel guide through hole are provided inside the toggle adjustment fork 32. The hole is located on one side of the linkage through hole, the travel guide through hole and the light rod 31 are clearance matched, and the linkage through hole and the threaded guide rod 30 are connected by threads, so that the torque limit output by the second motor 29 is formed into a derivation power through the connection between the threaded guide rod 30 and the light rod 31 and the toggle adjustment fork 32, thereby pushing the adjustment spindle 33 to slide and adjust under the travel provided by the adjustment travel gear shaft 37, thereby forming meshing between different gears and obtaining different rotation speeds. The diameter of the third driving gear 23 is ten centimeters, the diameter of the second driving gear 22 is twenty centimeters, and the diameter of the first driving gear 21 is fifteen centimeters. The diameter of the second driven gear 35 is the same as that of the third driving gear 23, the diameter of the first driven gear 34 is the same as that of the second driving gear 22, and the diameter of the third driven gear 36 is the same as that of the first driving gear 21, which is convenient for forming a conductive connection, and using the cooperation of gears of different diameters to obtain different transmission ratios, thereby forming an automatic mechanical stable winding speed adjustment, thereby ensuring the winding stability of cables of different diameters, thereby ensuring the flatness of the guide;

[0029] The automatic wire breaking structure 5 includes an internal mounting carrier 38, an internal supporting plate 39, a guiding travel track 40, a third motor 41, a torque output rod 42, an eccentric driving wheel 43, a reciprocating push rod 44, a lifting linkage block 45 and a cutting knife 46. Both sides inside the internal mounting carrier 38 are welded to the internal supporting plate 39. One side of the internal supporting plate 39 is welded to the guiding travel track 40. The outside of the internal mounting carrier 38 is fixedly connected to the third motor 41 by screws. The output end of the third motor 41 is fixedly connected to the torque output rod 42. One end of the torque output rod 42 is welded to the eccentric driving wheel 43. Both sides of the reciprocating push rod 44 are welded to the eccentric driving wheel 43. The eccentric driving wheel 43 on the other side is also rotationally connected to the internal mounting carrier 38 through the torque output rod 42. The bottom end of the reciprocating push rod 44 is fixedly connected to the lifting linkage block 45. Connecting pins are welded to both sides at the bottom of the reciprocating push rod 44. A linkage mating piece is welded to the top end of the lifting linkage block 45. The reciprocating push rod 44 and the lifting linkage block 45 are connected by the connecting pins and the linkage mating piece in a clamping manner, facilitating the conduction of reciprocating lifting. The bottom end of the lifting linkage block 45 is welded to the cutting knife 46. The lifting linkage block 45 is slidably connected to the guiding travel track 40. A triangular sliding guide groove is formed inside the guiding travel track 40. Triangular displacement sliders are welded to both sides of the lifting linkage block 45. The triangular sliding guide groove and the triangular displacement sliders are in clearance fit. By the third motor 41 outputting torque, the torque is transmitted to the eccentric driving wheel 43 under the conduction of the torque output rod 42. Using the principle that the eccentric driving wheel 43 forms the highest point and the lowest point during rotation, the eccentric driving wheel 43 drives the reciprocating push rod 44 to complete lifting during rotation. By using the connection between the reciprocating push rod 44 and the lifting linkage block 45, and the guiding travel provided by the guiding travel track 40 for the lifting linkage block 45, a stable and rapid lifting cutting power is provided, thereby driving the cutting knife 46 to complete the convenient and rapid cutting of the redundant cables received, avoiding affecting the overall forming effect.

[0030] For those skilled in the art, it is obvious that the present invention is not limited to the details of the above-described exemplary embodiments, and without departing from the spirit or basic characteristics of the present invention, the present invention can be implemented in other specific forms. Therefore, from any point of view, the embodiments should be regarded as exemplary and non-limiting. The scope of the present invention is defined by the appended claims rather than the above description. Therefore, it is intended to embrace all changes within the meaning and scope of the equivalent elements of the claims in the present invention. Any reference signs in the claims should not be regarded as limiting the claims involved.

Claims

1. An automatic shaping and straightening system for industrial cable reels, comprising a support bench (1), characterized in that: At both ends of one side of the top of the support bench (1), stabilizing support frames (2) are welded. A cable winding and unwinding reel (3) is rotatably connected inside the two stabilizing support frames (2). On the other side of the top of the support bench (1), a wire guiding, automatic shaping and guiding structure (4) and an automatic wire breaking structure (5) are fixed by screws. The automatic wire breaking structure (5) is located on one side of the wire guiding, automatic shaping and guiding structure (4). The wire guiding, automatic shaping and guiding structure (4) includes a multi-axis speed regulation and guiding power structure (6), a first mounting plate (7), a second mounting plate (8), a driving material guiding roller (9), a lifting and adjusting guide plate (10), an L-shaped mounting plate (11), a hydraulic piston cylinder (12), a following sliding block (13) and an auxiliary material guiding roller (14). The top of the multi-axis speed regulation and guiding power structure (6) is welded and connected to the first mounting plate (7). One end of the multi-axis speed regulation and guiding power structure (6) is fixedly connected to the driving material guiding roller (9). The other end of the driving material guiding roller (9) is rotatably connected to the second mounting plate (8). The tops of the second mounting plate (8) and the first mounting plate (7) are both welded and connected to the lifting and adjusting guide plate (10). One side of one of the lifting and adjusting guide plates (10) is welded and connected to the L-shaped mounting plate (11). The top of the L-shaped mounting plate (11) is fixedly connected to the hydraulic piston cylinder (12) by screws. The output end of the hydraulic piston cylinder (12) is welded and connected to the following sliding block (13). The following sliding block (13) is located inside the lifting and adjusting guide plate (10). The following sliding block (13) is slidably connected to the lifting and adjusting guide plate (10). An auxiliary material guiding roller (14) is rotatably connected between the two following sliding blocks (13); The multi-axis speed regulating guide power structure (6) comprises a power box body (15), a first motor (16), a control module (17), a driving bevel gear (18), a driven bevel gear (19), a driving transmission shaft (20), a first driving gear (21), a second driving gear (22), a third driving gear (23), a speed change regulation derivation structure (24), a linkage gear (25), a matching gear shaft (26), a driving gear shaft (27) and a torque derivation block (28), one end of the power box body (15) is fixedly connected to the matching gear shaft (26) by means of screws, one end of the power box body (15) is also fixedly connected to the control module (17), the output end of the first motor (16) is fixedly connected to the driving bevel gear (18), and the driving bevel gear (18) One side of the driven bevel gear (19) is meshed with the driven bevel gear (19), the inner side of the driven bevel gear (19) is clamped to the outer side of the driving transmission shaft (20) through a flat key, the outer side of the driving transmission shaft (20) is sequentially clamped with a first driving gear (21), a second driving gear (22) and a third driving gear (23) from one end to the other, the speed change adjustment derivation structure (24) is located on the inner side of the power box body (15), the driving transmission shaft (20) is connected to the linkage gear (25) through the speed change adjustment derivation structure (24), one side of the linkage gear (25) is meshed with the matching gear shaft (26), one side of the matching gear shaft (26) is meshed with the driving gear shaft (27), and one end of the driving gear shaft (27) is welded to the torque derivation block (28); The speed adjustment derivation structure (24) comprises a second motor (29), a threaded guide rod (30), a polished rod (31), a toggle adjustment fork (32), an adjustment spindle (33), a first driven gear (34), a second driven gear (35), a third driven gear (36) and an adjustment stroke gear shaft (37), wherein the output end of the second motor (29) is fixedly connected to the threaded guide rod (30), the polished rod (31) is welded to the inner side of the power box body (15), and the outer side of the threaded guide rod (30) and the outer side of the polished rod (31) are both connected to the toggle adjustment fork (32). The adjusting fork (32) is movably connected, the bottom end of the adjusting fork (32) is welded to the adjusting main shaft (33), the outer side of one end of the adjusting main shaft (33) is sequentially clamped with a first driven gear (34), a second driven gear (35) and a third driven gear (36) from one end to the other end, the inner side of the adjusting main shaft (33) is provided with an adjusting guide slot, one end of the adjusting stroke gear shaft (37) is welded with a stroke conduction pin, the top end of the stroke conduction pin is welded with a semicircular flat key, and the adjusting main shaft (33) and the adjusting stroke gear shaft (37) are connected via the semicircular flat key; A linkage through hole and a travel guide through hole are provided inside the toggle adjustment fork (32), the travel guide through hole is located on one side of the linkage through hole, the travel guide through hole and the smooth rod (31) are clearance-matched, and the linkage through hole is connected to the threaded guide rod (30) via threads; The automatic wire-breaking structure (5) includes an internal mounting carrier (38), an internal supporting plate (39), a guiding travel track (40), a third motor (41), a torque output rod (42), an eccentric driving wheel (43), a reciprocating push rod (44), a lifting linkage block (45), and a cutting tool (46). Both sides inside the internal mounting carrier (38) are welded to the internal supporting plate (39). One side of the internal supporting plate (39) is welded to the guiding travel track (40). The outside of the internal mounting carrier (38) is fixedly connected to the third motor (41) by screws. The output end of the third motor (41) is fixedly connected to the torque output rod (42). One end of the torque output rod (42) is welded to the eccentric driving wheel (43). Both sides of the reciprocating push rod (44) are welded to the eccentric driving wheel (43). The other eccentric driving wheel (43) is also rotatably connected to the internal mounting carrier (38) through the torque output rod (42). The bottom end of the reciprocating push rod (44) is fixedly connected to the lifting linkage block (45). The bottom end of the lifting linkage block (45) is welded to the cutting tool (46). The lifting linkage block (45) is slidably connected to the guiding travel track (40).

2. The automatic shaping and straightening system for industrial cable reels according to claim 1, wherein: The diameter of the third driving gear (23) is ten centimeters, the diameter of the second driving gear (22) is twenty centimeters, the diameter of the first driving gear (21) is fifteen centimeters, the diameter of the second driven gear (35) is the same as that of the third driving gear (23), the diameter of the first driven gear (34) is the same as that of the second driving gear (22), and the diameter of the third driven gear (36) is the same as that of the first driving gear (21).

3. The automatic shaping and straightening system for industrial cable reels according to claim 1, wherein: Both sides inside the lifting adjustment guide plate (10) are provided with guiding displacement sliding grooves. Follow-up adjustment sliders are welded to both sides of the follow-up sliding block (13). The follow-up adjustment sliders and the guiding displacement sliding grooves are in clearance fit.

4. An automatic shaping and straightening system for industrial cable reels according to claim 1, characterized in that: Both sides at the bottom of the reciprocating push rod (44) are welded with mating transmission pins. A linkage mating tightening piece is welded to the top end of the lifting linkage block (45). The reciprocating push rod (44) and the lifting linkage block (45) are connected by clamping through the mating transmission pins and the linkage mating tightening piece.

5. An automatic shaping and straightening system for industrial cable reels according to claim 1, characterized in that: A triangular sliding guide groove is formed inside the guiding travel track (40). Triangular displacement sliders are welded to both sides of the lifting linkage block (45). The triangular sliding guide groove and the triangular displacement sliders are in clearance fit.

Citation Information

Patent Citations

  • Automatic shaping and straightening system for industrial cable reel

    CN213976457U