A bundling device for processing a rope
By using the transmission and heat dissipation components of the guide block and winding roller, the problem of heat generated by friction during the winding process of the rope is solved, thus achieving orderly winding and performance protection of the rope.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- TAIAN GUANGHE PLASTIC CO LTD
- Filing Date
- 2025-08-28
- Publication Date
- 2026-06-26
AI Technical Summary
In existing rope processing equipment, paper rope generates heat due to friction during the winding process, which can cause damage to the rope surface or a decline in performance.
A transmission assembly that combines a guide block and a winding roller is used. The reciprocating motion of the guide block and the heat dissipation assembly reduce heat energy. Combined with the drive mechanism, the orderly winding of the rope is achieved, and the heat dissipation assembly reduces the damage caused by heat energy.
It effectively reduces the probability of rope damage caused by overheating, ensures rope performance, and improves winding efficiency and equipment stability.
Smart Images

Figure CN224411061U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of rope and cable processing technology, and in particular to a bundling device for rope and cable processing. Background Technology
[0002] Bundling devices for rope processing are key supporting equipment in the industrial production process of ropes and cables. They are mainly used for automated or semi-automated sorting, positioning, winding and bundling of the formed ropes and cables, ultimately forming neat and tight bundled products for subsequent storage, transportation, sales and use.
[0003] A paper rope winding mechanism is disclosed in Chinese utility model patent with announcement number CN222273733U, including a worktable. A first motor is fixedly connected to the lower surface of the worktable, and a rotating shaft is fixedly connected to the output end of the first motor. The bottom end of the rotating shaft is rotatably connected to the upper surface of the worktable. A transmission gear is fixedly connected to the outer wall of the rotating shaft, and a first toothed plate is meshed with the outer wall of the transmission gear. A slide rail is slidably connected inside the first toothed plate. The lower surface of the slide rail is fixedly connected to the upper surface of the worktable, and a second toothed plate is slidably connected to the outer wall of the slide rail.
[0004] Regarding the aforementioned technologies, the inventors believe that the following defects exist: In the aforementioned equipment, the paper rope is wound around the winding roller, and the guide coil guides the paper rope through reciprocating motion. However, during the process of the paper rope passing through and winding around the winding roller, there is a large frictional force between the paper rope and the guide coil, and the friction generates a lot of heat energy, which may cause certain damage or destruction to the outer surface of the paper rope and may have a certain impact on the performance of the paper rope. Utility Model Content
[0005] To address the aforementioned problems, this utility model provides a bundling device for rope and cable processing.
[0006] The above-mentioned technical objective of this utility model is achieved through the following technical solution: a bundling device for rope and cable processing, comprising a base plate, a mounting frame, a support plate and a U-shaped plate fixed on the top of the base plate, a winding roller rotatably mounted between the support plate and the mounting frame, a driving mechanism for driving the winding roller to rotate on the mounting frame, a guide block between the U-shaped plate and the mounting frame, a transmission component for driving the guide block to reciprocate in a direction parallel to the winding roller on both the U-shaped plate and the mounting frame, a guide hole for rope and cable to pass through the guide block, and a heat dissipation component for dissipating heat from the guide hole on the guide block.
[0007] By adopting the above technical solution, when workers wind the rope, they need to pass the rope through the guide hole and fix it to the winding roller. Then, the drive mechanism drives the winding roller to rotate, thereby winding the rope. At the same time, the transmission component drives the guide block to reciprocate in a direction parallel to the winding roller, and the heat dissipation component dissipates heat from the guide hole. This ensures that the winding roller winds the rope in an orderly manner and reduces the heat generated when the rope passes through the guide hole. This application changes the traditional technology that relies solely on natural cooling to dissipate heat from the conductor coil, reducing the probability of damage or destruction to the rope due to overheating and ensuring the performance of the rope.
[0008] Furthermore, the heat dissipation assembly includes a metal tube fixed in the guide hole, and the top of the guide block is provided with multiple through holes communicating with the guide hole. Each through hole is provided with a heat-conducting pipe, and the outer wall of the metal tube abuts against the ends of the multiple heat-conducting pipes. The heat dissipation assembly also includes fins provided on the top of the guide block and an exhaust fan provided on one side wall of the fins. Multiple fins are provided, and each of the multiple fins is provided with mounting holes for installing heat-conducting pipes.
[0009] By adopting the above technical solution, the heat pipe absorbs the heat energy generated by the friction between the rope and the inner wall of the metal pipe. Multiple fins work together to absorb and disperse the heat energy on the heat pipe. Then, the heat energy on the fins is dissipated by the action of the exhaust fan, which reduces the probability of the rope being damaged due to overheating of the metal pipe.
[0010] Furthermore, the transmission assembly includes a reciprocating screw rotatably mounted between the U-shaped plate and the mounting frame, a sliding block slidably sleeved on the reciprocating screw and threadedly connected to the reciprocating screw, a limiting rod fixed between the U-shaped plate and the mounting frame and parallel to the reciprocating screw, and a transmission motor disposed on the side of the U-shaped plate away from the mounting frame. The end of the reciprocating screw near the transmission motor passes through one side of the U-shaped plate and is fixed to the output end of the transmission motor. The limiting rod passes through the sliding block and slides with the sliding block.
[0011] By adopting the above technical solution, the staff starts the drive motor, which drives the reciprocating screw to rotate. Since the sliding block is restricted by the limit rod and threadedly connected to the reciprocating screw, the sliding block drives the rope to move back and forth, thereby making the rope orderly wound on the winding roller.
[0012] Furthermore, a first corrugated pipe is fixed between the sliding block and the U-shaped plate, covering the outside of the reciprocating lead screw. The two ends of the first corrugated pipe are fixed to the sliding block and the U-shaped plate, respectively. A second corrugated pipe is fixed between the sliding block and the mounting frame, covering the outside of the reciprocating lead screw. The two ends of the second corrugated pipe are fixed to the sliding block and the mounting frame, respectively.
[0013] By adopting the above technical solution, the setting of the first and second bellows reduces the probability of dust and other debris falling onto the reciprocating screw, ensuring the transmission effect between the reciprocating screw and the sliding block. At the same time, the first and second bellows contract and extend with the reciprocating movement of the sliding block, so that the first and second bellows always enclose the reciprocating screw.
[0014] Furthermore, the drive mechanism includes a first rotating rod rotatably mounted between the frame bodies on both sides of the mounting frame, a first synchronous pulley fixedly sleeved on the first rotating rod, a second rotating rod rotatably mounted between the frame bodies on both sides of the mounting frame, a second synchronous pulley fixedly sleeved on the second rotating rod, a synchronous belt meshing with both the first and second synchronous pulleys, a third rotating rod rotatably mounted between the frame bodies on both sides of the mounting frame, a clamping wheel fixedly sleeved on the third rotating rod, and a drive motor fixed to one side wall of the mounting frame and driving the first rotating rod to rotate. The first rotating rod passes through the mounting frame near the drive motor and is fixed to the output end of the drive motor. The bottom surface of the clamping wheel abuts against the top of the synchronous belt. The bottom of the clamping wheel is lower than the top of the first and second synchronous pulleys. The side of the second rotating rod away from the drive motor passes through the mounting frame and is rotatably connected. The second rotating rod is coaxial with and connected to the winding roller.
[0015] By adopting the above technical solution, when the worker needs to wind the rope using the winding roller, the worker starts the drive motor. The drive motor operates and drives the first rotating rod fixed to it, the first synchronous pulley fixed to the first rotating rod, the synchronous belt meshing with the first synchronous pulley, the second synchronous pulley meshing with the synchronous belt, and the second rotating rod fixed to the second synchronous pulley to all rotate, thereby causing the winding roller to wind the rope. Because the clamping wheel is pressed against the top of the synchronous belt, and the bottom of the clamping wheel is lower than the top of the first and second synchronous pulleys, the contact area between the synchronous belt and the first and second synchronous pulleys is increased, thereby increasing the friction and meshing stability, and improving the transmission efficiency of the drive motor to the winding roller.
[0016] Furthermore, a plug is fixed to the end of the second rotating rod away from the drive motor, and a slot for the plug to be inserted is provided at the end of the winding roller near the second rotating rod. The cross-section of the plug is polygonal.
[0017] Furthermore, the top of the support plate is provided with an arc-shaped groove that mates with the winding roller, and an L-shaped limiting plate is hinged to the side of the support plate away from the winding roller. The side of the L-shaped limiting plate near the second synchronous pulley abuts against the winding roller, and a bolt is provided on the L-shaped limiting plate that is clearance-fitted with it. The bolt is threadedly connected to the support plate.
[0018] By adopting the above technical solution, when workers need to install a winding roller to wind the rope, they place the end of the winding roller away from the slot into the arc-shaped groove, then align and insert the insertion rod into the slot. At this point, workers need to rotate the L-shaped limiting plate to make it fit against the end of the winding roller away from the second rotating rod. The L-shaped limiting plate is then fixed to the support plate with bolts, thus completing the installation of the winding roller. When workers need to disassemble the winding roller, they simply reverse the operation to complete the disassembly.
[0019] Furthermore, a mounting shell is provided between the frame bodies on both sides of the mounting frame, and the first rotating rod, the first synchronous pulley, the second rotating rod, the second synchronous pulley, the third rotating rod, the clamping pulley, and the synchronous belt are all located inside the mounting shell.
[0020] By adopting the above technical solution and the installation shell, the aging rate of each component is slowed down.
[0021] In summary, this utility model has the following beneficial effects: When workers wind the rope, the rope needs to be passed through the guide hole and fixed to the winding roller. Then, the winding roller is driven to rotate by the drive mechanism, so that the winding roller winds the rope. At the same time, the guide block is driven to reciprocate in a direction parallel to the winding roller by the transmission component, and the guide hole is cooled by the heat dissipation component. This allows the winding roller to wind the rope in an orderly manner and reduces the heat generated when the rope passes through the guide hole. Attached Figure Description
[0022] Figure 1 This is a schematic diagram of the overall structure of an embodiment of the present utility model;
[0023] Figure 2 yes Figure 1 Enlarged view of point A in the middle;
[0024] Figure 3 yes Figure 1 A structural diagram from another perspective after the installation shell has been removed;
[0025] Figure 4 yes Figure 3 Enlarged view of point B in the middle;
[0026] Figure 5 This is a schematic diagram illustrating the structure of the heat dissipation component in an embodiment of this utility model;
[0027] Figure 6 This is a schematic diagram illustrating the connection structure of the insertion rod and the slot in an embodiment of this utility model.
[0028] In the diagram: 1. Base plate; 11. Mounting bracket; 12. Support plate; 121. Arc-shaped groove; 13. U-shaped plate; 14. Mounting shell; 2. Winding roller; 21. Slot; 3. Drive mechanism; 31. First rotating rod; 32. First synchronous pulley; 33. Second rotating rod; 331. Insert rod; 34. Second synchronous pulley; 35. Synchronous belt; 36. Third rotating rod; 37. Pressing wheel; 38. Drive motor; 4. Guide block; 41. Guide hole; 42. Through hole; 43. Battery; 5. Transmission assembly; 51. Reciprocating screw; 52. Sliding block; 53. Limiting rod; 54. Transmission motor; 6. Heat dissipation assembly; 61. Metal pipe; 62. Heat conduction pipe; 63. Fin; 631. Mounting hole; 64. Exhaust fan; 7. First corrugated pipe; 8. Second corrugated pipe; 9. L-shaped limiting plate; 91. Bolt. Detailed Implementation
[0029] The technical solutions in the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this application, and not all embodiments. All other embodiments obtained by those skilled in the art based on the embodiments of this application without creative effort are within the scope of protection of this application.
[0030] like Figure 1-6 As shown in the illustration, this application discloses a rope and cable bundling device, including a base plate 1, a winding roller 2, a guide block 4, a drive mechanism 3, a transmission assembly 5, and a heat dissipation assembly 6. A mounting frame 11, a support plate 12, and a U-shaped plate 13 are fixed to the top of the base plate 1. The U-shaped plate 13 has a U-shaped cross-section. The winding roller 2 is rotatably mounted between the support plate 12 and the mounting frame 11, and is used to wind the rope and cable. The guide block 4 is disposed between the U-shaped plate 13 and the mounting frame 11, and a guide hole 41 is provided through the guide block 4 for the rope and cable to pass through.
[0031] The drive mechanism 3 is mounted on the mounting frame 11 and is used to drive the winding roller 2 to rotate. The drive mechanism 3 includes a first rotating rod 31, a first synchronous pulley 32, a second rotating rod 33, a second synchronous pulley 34, a synchronous belt 35, a third rotating rod 36, a clamping wheel 37, and a drive motor 38. The first rotating rod 31 is rotatably mounted between the frame bodies on both sides of the mounting frame 11. The first synchronous pulley 32 is fixedly sleeved on the first rotating rod 31, and the axis of the first synchronous pulley 32 coincides with the axis of the first rotating rod 31. The second rotating rod 33 is rotatably mounted between the frame bodies on both sides of the mounting frame 11. The second synchronous pulley 34 is fixedly sleeved on the second rotating rod 33, and the axis of the second synchronous pulley 34 coincides with the axis of the second rotating rod 33. The synchronous belt 35 meshes with both the first synchronous pulley 32 and the second synchronous pulley 34. A third rotating rod 36 is rotatably mounted between the two sides of the mounting frame 11. A clamping wheel 37 is fixedly sleeved on the third rotating rod 36, with the bottom surface of the clamping wheel 37 abutting against the top of the synchronous belt 35, and the bottom of the clamping wheel 37 being lower than the tops of the first synchronous pulley 32 and the second synchronous pulley 34. A drive motor 38 is fixed to one side wall of the mounting frame 11, driving the first rotating rod 31 to rotate. In this embodiment, the first rotating rod 31 passes through the mounting frame 11 near the drive motor 38 and is fixed to the output end of the drive motor 38. A second rotating rod 33 passes through the mounting frame 11 away from the drive motor 38 and is rotatably connected. The second rotating rod 33 is coaxial with and connected to the winding roller 2.
[0032] A transmission assembly 5 is disposed on the U-shaped plate 13 and the mounting frame 11. The transmission assembly 5 drives the guide block 4 to reciprocate in a direction parallel to the winding roller 2. The transmission assembly 5 includes a reciprocating screw 51, a sliding block 52, a limiting rod 53, and a transmission motor 54. The reciprocating screw 51 is rotatably mounted between the U-shaped plate 13 and the mounting frame 11. The sliding block 52 is slidably sleeved on the reciprocating screw 51 and threadedly connected to the reciprocating screw 51, and the sliding block 52 is fixedly connected to the guide block 4. The limiting rod 53 is fixed between the U-shaped plate 13 and the mounting frame 11 and is parallel to the reciprocating screw 51. The limiting rod 53 passes through the sliding block 52 and slides in cooperation with the sliding block 52. The transmission motor 54 is disposed on the side of the U-shaped plate 13 away from the mounting frame 11, and the axis of the output shaft of the transmission motor 54 is parallel to the axis of the limiting rod 53. In this embodiment, the end of the reciprocating screw 51 near the transmission motor 54 passes through one side of the U-shaped plate 13 and is fixed to the output end of the transmission motor 54.
[0033] A heat dissipation assembly 6 is disposed on the guide block 4 and has a function for dissipating heat from the guide hole 41. The heat dissipation assembly 6 includes a metal tube 61, a heat conduction pipe 62, fins 63, and an exhaust fan 64. The metal tube 61 is fixed inside the guide hole 41. In this embodiment, the top of the guide block 4 is provided with a through hole 42, and multiple through holes 42 are provided and communicate with the guide hole 41. The multiple through holes 42 are arranged in a straight line along the axial direction of the guide hole 41. The heat conduction pipe 62 is disposed in each through hole 42, and the end of the heat conduction pipe 62 abuts against the outer wall of the metal tube 61. Fins 63 are disposed on the top of the guide block 4, and multiple fins 63 are provided. The exhaust fan 64 is disposed on the side wall of one side of the fins 63 and is used to dissipate the heat energy of the fins 63. Each of the multiple fins 63 is provided with a mounting hole 631 for installing the heat conduction pipe 62. In this embodiment, a battery 43 is disposed on the side wall of the guide block and is used to power the exhaust fan 64.
[0034] In this embodiment, a plug rod 331 is fixed to the end of the second rotating rod 33 away from the drive motor 38. The cross-section of the plug rod 331 is polygonal, such as rectangular. A slot 21 is provided at the end of the winding roller 2 near the second rotating rod 33, and the slot 21 is for the plug rod 331 to be inserted and engaged.
[0035] In this embodiment, the top of the support plate 12 is provided with an arc-shaped groove 121, which cooperates with the winding roller 2. An L-shaped limiting plate 9 is hinged to the side of the support plate 12 away from the winding roller 2, and the side of the L-shaped limiting plate 9 near the second synchronous pulley 34 abuts against the winding roller 2. A bolt 91 is provided on the L-shaped limiting plate 9 with clearance fit, and the bolt 91 is threadedly connected to the support plate 12. After the operator removes the bolt 91 with a tool, the L-shaped limiting plate 9 can be rotated, and then the winding roller 2, which is fully wound with rope, can be disassembled by the insertion of the insertion rod 331 into the slot 21.
[0036] When the worker winds the rope, the worker places the end of the winding roller 2 away from the slot 21 into the arc-shaped groove 121, and then aligns and inserts the insertion rod 331 into the slot 21. At this time, the worker needs to rotate the L-shaped limiting plate 9 so that the L-shaped limiting plate 9 fits against the end of the winding roller 2 away from the second rotating rod 33. The L-shaped limiting plate 9 is then fixed to the support plate 12 by bolts 91, thus completing the installation of the winding roller 2. The worker then passes the rope through the guide hole 41 and secures it to the winding roller 2. The worker starts the drive motor 38, which drives the first rotating rod 31, the first synchronous pulley 32, the synchronous belt 35 meshing with the first synchronous pulley 32, the second synchronous pulley 34 meshing with the synchronous belt 35, and the second rotating rod 33, all fixed to the second synchronous pulley 34, to rotate. The bottom of the abutting wheel is lower than the top of the first synchronous pulley 32 and the top of the second synchronous pulley 34, increasing the contact area between the synchronous belt 35 and the first and second synchronous pulleys 32 and 34, thereby increasing the friction and meshing stability, allowing the winding roller 2 to wind the rope. Simultaneously, the worker starts the transmission motor 54 and the exhaust fan 64 through the device's control center. The transmission motor 54 drives the reciprocating screw 51 to rotate. Because the sliding block 52 is limited by the limit rod 53 and threadedly connected to the reciprocating screw 51, the sliding block 52 drives the rope to move back and forth, thus orderly winding the rope onto the winding roller 2. When the rope passes through the metal tube 61 and generates heat, the heat pipe 62 absorbs the heat generated by the friction between the rope and the inner wall of the metal tube 61. Multiple fins 63 work together to absorb and disperse the heat on the heat pipe 62. Then, the heat on the fins 63 is dissipated by the exhaust fan 64, reducing the probability of the rope being damaged due to overheating of the metal tube 61.
[0037] In this embodiment, a first bellows 7 is fixed between the sliding block 52 and the U-shaped plate 13, covering the outside of the reciprocating screw 51. A second bellows 8 is fixed between the sliding block 52 and the mounting bracket 11, covering the outside of the reciprocating screw 51. The arrangement of the first bellows 7 and the second bellows 8 reduces the probability of dust and other debris falling onto the reciprocating screw 51, ensuring the transmission effect between the reciprocating screw 51 and the sliding block 52. At the same time, the first bellows 7 and the second bellows 8 contract and extend with the reciprocating movement of the sliding block 52, so that the first bellows 7 and the second bellows 8 always enclose the reciprocating screw 51.
[0038] In this embodiment, a mounting shell 14 is provided between the frame bodies on both sides of the mounting bracket. The first rotating rod 31, the first synchronous pulley 32, the second rotating rod 33, the second synchronous pulley 34, the third rotating rod 36, the clamping pulley 37, and the synchronous belt 35 are all located inside the mounting shell 14. The mounting shell 14 slows down the aging rate of the components.
[0039] The above description is merely a preferred embodiment of this utility model. The protection scope of this utility model is not limited to the above embodiments. All technical solutions falling within the scope of this utility model's concept are protected. It should be noted that for those skilled in the art, any improvements and modifications made without departing from the principle of this utility model should also be considered within the protection scope of this utility model.
Claims
1. A bundling device for rope and cable processing, comprising a base plate (1), characterized in that: The top of the base plate (1) is fixed with a mounting frame (11), a support plate (12) and a U-shaped plate (13). A winding roller (2) is rotatably mounted between the support plate (12) and the mounting frame (11). A drive mechanism (3) for driving the winding roller (2) to rotate is provided on the mounting frame (11). A guide block (4) is provided between the U-shaped plate (13) and the mounting frame (11). A transmission component (5) for driving the guide block (4) to reciprocate in a direction parallel to the winding roller (2) is provided on both the U-shaped plate (13) and the mounting frame (11). A guide hole (41) for the rope to pass through is provided through the guide block (4). A heat dissipation component (6) for dissipating heat from the guide hole (41) is provided on the guide block (4).
2. The bundling device for rope and cable processing according to claim 1, characterized in that: The heat dissipation assembly (6) includes a metal tube (61) fixed in the guide hole (41). The top of the guide block (4) is provided with a plurality of through holes (42) communicating with the guide hole (41). Each through hole (42) is provided with a heat-conducting pipe (62). The outer wall of the metal tube (61) abuts against the ends of the plurality of heat-conducting pipes (62). The heat dissipation assembly (6) also includes fins (63) provided on the top of the guide block (4) and an exhaust fan (64) provided on one side wall of the fins (63). There are a plurality of fins (63), and each of the plurality of fins (63) is provided with mounting holes (631) for installing the heat-conducting pipes (62).
3. The bundling device for rope and cable processing according to claim 1, characterized in that: The transmission assembly (5) includes a reciprocating screw (51) rotatably mounted between the U-shaped plate (13) and the mounting frame (11), a sliding block (52) slidably sleeved on the reciprocating screw (51) and threadedly connected to the reciprocating screw (51), a limiting rod (53) fixed between the U-shaped plate (13) and the mounting frame (11) and parallel to the reciprocating screw (51), and a transmission motor (54) disposed on the side of the U-shaped plate (13) away from the mounting frame (11). The end of the reciprocating screw (51) near the transmission motor (54) passes through one side of the U-shaped plate (13) and is fixed to the output end of the transmission motor (54). The limiting rod (53) passes through the sliding block (52) and slides with the sliding block (52).
4. The bundling device for rope and cable processing according to claim 3, characterized in that: A first corrugated pipe (7) covering the outside of the reciprocating screw (51) is fixed between the sliding block (52) and the U-shaped plate (13), and a second corrugated pipe (8) covering the outside of the reciprocating screw (51) is fixed between the sliding block (52) and the mounting bracket (11).
5. The bundling device for rope and cable processing according to claim 1, characterized in that: The drive mechanism (3) includes a first rotating rod (31) rotatably mounted between the frame bodies on both sides of the mounting frame (11), a first synchronous pulley (32) fixedly sleeved on the first rotating rod (31), a second rotating rod (33) rotatably mounted between the frame bodies on both sides of the mounting frame (11), a second synchronous pulley (34) fixedly sleeved on the second rotating rod (33), a synchronous belt (35) meshing with both the first synchronous pulley (32) and the second synchronous pulley (34), a third rotating rod (36) rotatably mounted between the frame bodies on both sides of the mounting frame (11), a clamping wheel (37) fixedly sleeved on the third rotating rod (36), and a belt fixed to the mounting frame (11). A drive motor (38) is mounted on one side wall of the frame (11) and drives the first rotating rod (31) to rotate. The first rotating rod (31) passes through the mounting frame (11) on the side close to the drive motor (38) and is fixed to the output end of the drive motor (38). The bottom surface of the abutting wheel (37) abuts against the top of the synchronous belt (35). The bottom of the abutting wheel (37) is lower than the top of the first synchronous wheel (32) and the top of the second synchronous wheel (34). The side of the second rotating rod (33) away from the drive motor (38) passes through the mounting frame (11) and is rotatably connected. The second rotating rod (33) is coaxial with and connected to the winding roller (2).
6. A bundling device for rope and cable processing according to claim 5, characterized in that: The second rotating rod (33) has a plug rod (331) fixed at one end away from the drive motor (38). The winding roller (2) has a slot (21) for the plug rod (331) to be inserted and fitted at one end near the second rotating rod (33). The cross-section of the plug rod (331) is polygonal.
7. A bundling device for rope and cable processing according to claim 1, characterized in that: The top of the support plate (12) is provided with an arc-shaped groove (121) that cooperates with the winding roller (2). An L-shaped limiting plate (9) is hinged to the side of the support plate (12) away from the winding roller (2). The side of the L-shaped limiting plate (9) close to the second synchronous wheel (34) abuts against the winding roller (2). A bolt (91) with clearance fit is provided on the L-shaped limiting plate (9). The bolt (91) is threadedly connected to the support plate (12).
8. A bundling device for rope and cable processing according to claim 5, characterized in that: A mounting shell (14) is provided between the frames on both sides of the mounting frame (11). The first rotating rod (31), the first synchronous wheel (32), the second rotating rod (33), the second synchronous wheel (34), the third rotating rod (36), the clamping wheel (37), and the synchronous belt (35) are all located inside the mounting shell (14).
Citation Information
Patent Citations
Paper rope winding mechanism
CN222273733U