Stranding and routing device for intelligent processing of chemical fiber rope net
By designing an intelligent stranding trace device in the production of chemical fiber rope mesh, the problems of wire wear and tension instability are solved, and a higher quality and efficiency rope mesh production is achieved.
Patent Information
- Application Number
- CN202510355752.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-25
- Publication Date
- 2025-05-13
AI Technical Summary
During the twisting process of chemical fiber rope mesh, the wire material is worn and unstable due to uneven friction, which affects the production quality.
A stranding trace device for intelligent processing is designed, and the wires are grouped and twisted by setting up multiple stranding mechanisms, and the wire beam mechanism is used to keep the wires in a stable tension range.
It effectively reduces the wear of wire, ensures the stable tension of wire during twisting, and improves the production quality and efficiency of chemical fiber rope mesh.
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Figure CN119980733A_ABST
Abstract
Description
Technical Field
[0001] The invention relates to the technical field of chemical fiber rope net production, and in particular to a twisting and routing device for intelligent processing of chemical fiber rope nets. Background Art
[0002] Chemical fiber rope net is a net or rope product made of chemical synthetic fiber as the main raw material. It is processed through a specific weaving and twisting process. In the twisting process of chemical fiber rope net, the wire guide frame is a key auxiliary device. It accurately guides the moving path of multiple strands of wire from the wire-releasing device to the twisting machine head through the preset guide wheel, pulley or hole position to avoid cross-entanglement or knotting caused by free swinging of the wire during high-speed twisting.
[0003] In the process of twisting multiple wires, the twisting process needs to be completed in steps, so the wiring rack designed to match it is larger in size, and the transmission distances of the wires in different steps on the wiring rack are different. The wires in the later steps have longer transmission distances and need to pass through more holes. However, all wires rely on twisting and winding equipment to twist and pull them. Therefore, the friction between the wires in the later steps and the wiring rack is greater, resulting in aggravated wear of the wires in the later steps, and the different friction between the wires and the wiring rack in different steps will lead to different wire tensions. Excessive tension in the twisting process can easily lead to fiber breakage or internal stress concentration, while too little tension will cause loose twisting and unstable structure, both of which will affect the production quality of the chemical fiber rope net. Summary of the invention
[0004] In view of the problems of wire wear and difficulty in controlling wire tension in the prior art, a twisting and routing device for intelligent processing of chemical fiber rope nets is proposed.
[0005] The purpose is to synchronously twist multiple wires in groups by setting up multiple twisting mechanisms, finally combine them, and stably transport the wires through the wire bundling mechanism to keep all the wires in a stable tension range.
[0006] The technical solution of the present invention is a twisting and routing device for intelligent processing of chemical fiber rope nets, comprising a support frame, a conductor frame is arranged on one side of the support frame facing the twisting and winding device, and a placement frame is arranged on the other side, a twisting drum 1 is rotatably connected at the center of the support frame, and a plurality of twisting drums 2 are rotatably connected in a circular shape with equal spacing on the support frame, a plurality of through holes are opened on the twisting drum 1 and the twisting drum 2, and a wire transmission mechanism is arranged on the side of the twisting drum 1 and the twisting drum 2 facing the conductor frame; The wire transmission mechanism comprises a driving ring fixedly connected to the support frame, a plurality of rollers are arranged in a circular shape at equal intervals on the inner side of the driving ring, the rollers are rotatably connected to the corresponding capstan drum 1 or capstan drum 2, and a transmission member is arranged at one end of the roller, and the transmission member is in transmission cooperation with the driving ring; A driving unit is installed on the support frame, and the driving unit is used to drive the first and second winding drums to rotate. The transmission member contacts the drive ring to drive the roller to rotate, and the roller drives the wire to move. The wires passing through the first and second winding drums are initially twisted, and then they are combined when passing through the conductor rack.
[0007] By adopting the above technical scheme, the wire drum is placed on the placement rack, the wire passes through the corresponding horizontal through hole and is wound on the roller at the corresponding through hole, and then extends to the conductor rack to merge, and the combined end of the wire is connected to the twisting and winding device, and the driving unit drives the twisting drum 1 to rotate, and the twisting drum 1 drives the twisting drum 2 to rotate. The twisting drum 1 and the twisting drum 2 perform preliminary twisting of the wire passing through themselves, and the transmission member contacts the driving ring when following the rotation of the twisting drum 1 or the twisting drum 2, thereby driving the roller to rotate, and the roller drives the wire to move at a uniform speed, so that the wire is kept in a stable tension range, and the multiple groups of wires after preliminary twisting are wound up in the conductor rack as the twisting and winding device rotates to complete the stranding.
[0008] Furthermore, the conductor frame includes a connecting frame fixedly connected to the supporting frame, the connecting frame is fixedly connected to a twisting cylinder 1 and a plurality of twisting cylinders 2, and the twisting cylinders 2 are arranged between the twisting cylinder 1 and the supporting frame.
[0009] By adopting the above technical solution, the wire passing through the stranding drum one extends into the stranding cylinder one, the wire passing through the stranding drum two extends into the stranding cylinder two, and then extends into the stranding cylinder one, so that multiple groups of wires after preliminary stranding are finally stranded in the stranding cylinder one.
[0010] Furthermore, the twisting cylinder 1 is arranged corresponding to the twisting drum 1, the twisting cylinder 2 is arranged corresponding to the twisting drum 2, and the aperture of the twisting cylinder 1 is larger than the aperture of the twisting cylinder 2.
[0011] By adopting the above technical solution, the axis of stranding cylinder one coincides with the axis of stranding drum one, and the axis of stranding cylinder two coincides with the axis of corresponding stranding drum two, so that the wire passing through stranding drum one or stranding drum two can be accurately limited, so that the wire can be precisely stranded.
[0012] Furthermore, the placement rack includes a fixed frame, the fixed frame is rotatably connected to a plurality of turntables, the turntable is fixedly connected to a plurality of bobbin rods, and the turntable is fixedly connected to the corresponding winding drum one or winding drum two through a connecting rod.
[0013] By adopting the above technical solution, the turntable is arranged corresponding to the first or second winding drum, and the bobbin rod on the turntable is arranged corresponding to the through hole. After the bobbin is sleeved on the bobbin rod, the wire can be pulled to pass horizontally through the corresponding through hole. When the first or second winding drum rotates, the corresponding turntable is driven to rotate synchronously through the connecting rod to avoid the wire from being entangled on the side of the support frame facing the placement frame.
[0014] Furthermore, the driving unit includes a gear ring 1 fixedly connected to the capstan drum 1, and a gear ring 2 fixedly connected to the capstan drum 2, and the gear ring 1 is meshingly connected to the gear ring 2. The driving unit also includes a motor fixedly mounted on the support frame, and a gear is fixedly connected to the output end of the motor, and the gear is meshingly connected to the gear ring 1.
[0015] By adopting the above technical solution, when the motor drives the gear to rotate, the gear meshes with the gear ring 1 to drive the capstan drum 1 to rotate, and the gear ring 1 meshes with the gear ring 2 to drive the capstan drum 2 to rotate.
[0016] Furthermore, the driving ring is composed of a plurality of arc-shaped plates, the arc-shaped plates are arranged at an acute angle with the corresponding axis of the first winding drum or the axis of the second winding drum, and the heads and tails of two adjacent arc-shaped plates are staggered, and the transmission member is composed of a plurality of rotating rollers arranged in a ring shape with equal intervals, the rotating rollers are rotatably connected to one end of the drum and are in rolling contact with the driving ring.
[0017] By adopting the above technical scheme, the driving ring is fixed on the inner wall of the circular hole opened on the supporting frame. When the first or second winding drum rotates, the rollers on the first and second winding drums rotate accordingly, so that the rotating rollers contact with multiple arc plates one by one, and the arc plates drive the rotating rollers to deflect. The multiple arc plates and multiple rotating rollers cooperate to drive the rollers to rotate slowly, so that the rollers drive the wound wires to move at a uniform speed, avoiding breakage due to excessive wire tension, and at the same time avoiding stress concentration or looseness inside the rope due to different tensions of each wire.
[0018] Furthermore, the drum is in a truncated cone structure, and a pitch-adjusting assembly is provided on the drum. The pitch-adjusting assembly includes a screw threadedly connected to the drum, one end of the screw is rotatably connected to a U-shaped frame, and both ends of the U-shaped frame are provided with wire harness holes.
[0019] By adopting the above technical solution, the wire passes through a wire bundle hole and is then wound on the drum for multiple turns, and then passes through another wire bundle hole, so that the wire can be stably placed on the drum. A threaded groove matched with the screw is provided at the axis of the drum. The position of the U-shaped frame can be adjusted by rotating the screw, so that the U-shaped frame can adjust the position of the wire on the drum. Since the drum is in a truncated cone shape, the moving speed of the wire at different positions of the drum is different, so it can be adjusted and adapted according to the twisting requirements of different ropes, thereby improving the applicable scenarios.
[0020] Furthermore, a tension monitoring module is provided on the connecting frame and at a position corresponding to the twisting cylinder. The tension monitoring module includes a fixed cylinder fixedly connected to the connecting frame, a sliding rod is slidably connected inside the fixed cylinder, one end of the sliding rod passes through the fixed cylinder and is rotatably connected to a guide wheel, a pressure sensor is fixedly installed on the other end of the sliding rod, and an elastic member is commonly connected between the pressure sensor and the fixed cylinder.
[0021] By adopting the above technical scheme, the wire located between the second twisting cylinder and the first twisting cylinder is in rolling contact with the guide wheel. The elastic member and the slide rod are used to ensure that the guide wheel is always in contact with the wire to prevent the wire from loosening, which can further improve the twisting standard. At the same time, the tension change of the wire can be monitored in real time through the pressure sensor. When the wire tension value is abnormal, the wire twisting can be stopped, which facilitates timely inspection and maintenance of the wire and equipment and reduces production losses.
[0022] Furthermore, the pressure sensor is signal-connected to the drive unit.
[0023] By adopting the above technical solution, the pressure sensor and the motor are connected to the external control module signal. When the pressure sensor detects that the wire tension value is not within the set tension range, the abnormal signal can be transmitted to the control module. The control module controls the motor to stop rotating and stops the twisting of the wire.
[0024] Compared with the prior art, the present invention has the following beneficial effects: 1. The first and second twisting drums are driven to rotate, and the drums convey the wires at a uniform speed. The first and second twisting drums preliminarily twist the wires passing through them, so that multiple groups of wires can be twisted synchronously and in parallel, thereby simplifying the steps of stranding, so that all wires can be kept in a stable tension range, effectively reducing wire wear, thereby improving the production quality and efficiency of chemical fiber rope nets.
[0025] 2. Turning the screw can drive the U-shaped frame to move, thereby adjusting the position of the wire on the drum. The wire tension can be finely adjusted by the different moving speeds of the wire at different positions of the drum. At the same time, it can be adjusted and adapted according to the twisting requirements of different ropes to enrich the application scenarios.
[0026] 3. When the wires after preliminary twisting are moving into the twisting tube, the tension of the wires can be monitored through the tension monitoring module, so that the operation can be stopped in time when the wire tension value is abnormal, which is convenient for quick inspection and maintenance and reduces production losses. BRIEF DESCRIPTION OF THE DRAWINGS
[0027] Figure 1 It is a schematic diagram of the overall three-dimensional structure of the present invention; Figure 2 It is a schematic structural diagram of the support frame, the first capstan drum and the second capstan drum of the present invention; Figure 3 It is a schematic diagram of the lead frame structure of the present invention; Figure 4 It is a schematic diagram of the structure of the placement rack of the present invention; Figure 5 It is a schematic diagram of the disassembly of the support frame and the drive unit structure of the present invention; Figure 6 It is a schematic diagram of the structure of the wire harness mechanism of the present invention; Figure 7 It is a schematic diagram of the structure of the drive ring and the transmission member of the present invention; Figure 8 It is a schematic diagram of the structure of the distance adjustment component of the present invention; Fig. 9 It is a schematic diagram of the structural anatomy of the tension monitoring module of the present invention.
[0028] In the figure: 1. Support frame; 2. Wire drum 1; 3. Wire drum 2; 4. Wire rack; 41. Connecting frame; 42. Wire drum 1; 43. Wire drum 2; 5. Placement frame; 51. Fixed frame; 52. Turntable; 53. Wire drum rod; 6. Wire transmission mechanism; 61. Drive ring; 62. Roller; 63. Transmission member; 7. Drive unit; 71. Gear ring 1; 72. Gear ring 2; 73. Motor; 74. Gear; 8. Pitch adjustment assembly; 81. Screw; 82. U-shaped frame; 83. Wire harness hole; 9. Tension monitoring module; 91. Fixed drum; 92. Slide rod; 93. Guide wheel; 94. Pressure sensor; 95. Elastic member. DETAILED DESCRIPTION
[0029] In order to make the above-mentioned objects, features and advantages of the present invention more obvious and easy to understand, the specific implementation methods of the present invention are described in detail below in conjunction with the accompanying drawings.
[0030] Example 1, reference Figure 1-Figure 4, which is the first embodiment of the present invention, provides a stranding routing device for intelligent processing of chemical fiber rope nets, including a support frame 1, a conductor frame 4 is arranged on one side of the support frame 1 facing the stranding winding device, and a placement frame 5 is arranged on the other side, a stranding drum 2 is rotatably connected at the center of the support frame 1, and a plurality of stranding drums 2 3 are rotatably connected in a circular shape with equal intervals on the support frame 1, and a plurality of through holes are opened on the stranding drum 1 2 and the stranding drum 2 3, and a wire transmission mechanism 6 is arranged on the side of the stranding drum 1 2 and the stranding drum 2 3 facing the conductor frame 4; the wire transmission mechanism 6 includes a driving ring fixedly connected to the support frame 1 61, a plurality of rollers 62 are arranged in a circular shape at equal intervals on the inner side of the driving ring 61, the rollers 62 are rotatably connected with the corresponding winding drum 1 2 or winding drum 2 3, and a transmission member 63 is arranged at one end of the roller 62, and the transmission member 63 cooperates with the driving ring 61 in transmission; a driving unit 7 is installed on the support frame 1, and the driving unit 7 is used to drive the winding drum 1 2 and the winding drum 2 3 to rotate, and the transmission member 63 contacts the driving ring 61 to drive the roller 62 to rotate, and the roller 62 drives the wire to move, and the wire passing through the winding drum 1 2 and the winding drum 2 3 is preliminarily twisted, and then the wire is combined when passing through the conductor frame 4.
[0031] Specifically, the wire drum is placed on the placement frame 5, the wire passes through the corresponding horizontal through hole and is wound on the roller 62 at the corresponding through hole, and then extends to the conductor frame 4 to merge, and the combined end of the wire is connected to the twisting and winding device, and the driving unit 7 drives the twisting drum 1 2 to rotate, and the twisting drum 1 2 drives the twisting drum 2 3 to rotate. The twisting drum 1 2 and the twisting drum 2 3 perform preliminary twisting on the wire passing through themselves, and the transmission member 63 contacts the driving ring 61 when following the rotation of the twisting drum 1 2 or the twisting drum 2 3, thereby driving the roller 62 to rotate, and the roller 62 drives the wire to move at a uniform speed, so that the wire is kept in a stable tension range. After the preliminary twisting, the multiple groups of wires are wound up in the conductor frame 4 as the twisting and winding device rotates to complete the stranding.
[0032] It can be understood that the multiple through holes of the winding drum 1 2 and the winding drum 2 3 are arranged in a circular shape with equal intervals, and one of the through holes is arranged at the center of the winding drum 1 2 or the winding drum 2 3, so that the wires passing through the winding drum 1 2 or the winding drum 2 3 are twisted under rotation.
[0033] Reference Figure 3 The conductor frame 4 includes a connecting frame 41 fixedly connected to the supporting frame 1 , the connecting frame 41 is fixedly connected to a twisting cylinder 1 42 and a plurality of twisting cylinders 2 43 , and the twisting cylinder 2 42 is arranged between the twisting cylinder 1 43 and the supporting frame 1 .
[0034] Specifically, the wires passing through the stranding drum 1 2 extend into the stranding drum 1 42 , the wires passing through the stranding drum 2 3 extend into the stranding drum 2 43 , and then extend into the stranding drum 1 42 , so that multiple groups of wires that have been initially stranded complete final stranding in the stranding drum 1 42 .
[0035] The twisting cylinder 1 42 is arranged corresponding to the twisting drum 1 2 , and the twisting cylinder 2 43 is arranged corresponding to the twisting drum 2 3 . The aperture of the twisting cylinder 1 42 is larger than the aperture of the twisting cylinder 2 43 .
[0036] Specifically, the axis of the twisting cylinder 42 coincides with the axis of the twisting drum 1 2, and the axis of the twisting cylinder 2 43 coincides with the axis of the corresponding twisting drum 2 3, so that the wire passing through the twisting drum 1 2 or the twisting drum 2 3 can be accurately limited, so that the wire can be precisely twisted.
[0037] Reference Figure 1 , Figure 4 The placement frame 5 includes a fixed frame 51, a plurality of turntables 52 are rotatably connected to the fixed frame 51, a plurality of bobbin rods 53 are fixedly connected to the turntable 52, and the turntable 52 is fixedly connected to the corresponding winding drum 1 2 or winding drum 2 3 through a connecting rod.
[0038] Specifically, the turntable 52 is arranged corresponding to the winding drum 1 2 or the winding drum 2 3, and the bobbin rod 53 on the turntable 52 is arranged corresponding to the through hole. After the bobbin is sleeved on the bobbin rod 53, the wire can be pulled to make it pass horizontally through the corresponding through hole. When the winding drum 1 2 or the winding drum 2 3 rotates, the corresponding turntable 52 is driven to rotate synchronously through the connecting rod to avoid the wire on the side of the support frame 1 facing the placement frame 5 from being entangled.
[0039] Reference Figure 3 , Figure 5 The driving unit 7 includes a gear ring 1 71 fixedly connected to the capstan drum 1 2, and a gear ring 2 72 fixedly connected to the capstan drum 2 3, the gear ring 1 71 is meshingly connected with the gear ring 2 72, and the driving unit 7 also includes a motor 73 fixedly mounted on the support frame 1, and a gear 74 is fixedly connected to the output end of the motor 73, and the gear 74 is meshingly connected with the gear ring 1 71.
[0040] Specifically, when the motor 73 drives the gear 74 to rotate, the gear 74 engages with the gear ring 1 71 to drive the winding drum 1 2 to rotate, and the gear ring 1 71 engages with the gear ring 2 72 to drive the winding drum 2 3 to rotate.
[0041] It is understandable that, referring to Figure 5 The support frame 1 is composed of a detachable front cover and a rear cover. The front cover is provided with a cavity adapted to the winding drum 1 2, the winding drum 2 3 and the driving unit 7. The front and rear covers are provided with circular holes smaller than the sizes of the winding drum 1 2 and the winding drum 2 3 at positions corresponding to the winding drum 1 2 and the winding drum 2 3, so as to facilitate the passage of the wire.
[0042] Reference Figure 2 , Figure 6 , Figure 7The driving ring 61 is composed of a plurality of arc-shaped plates, which are arranged at an acute angle with the axis of the corresponding winding drum 1 2 or the axis of the winding drum 2 3, and the heads and tails of two adjacent arc-shaped plates are staggered. The transmission member 63 is composed of a plurality of rotating rollers arranged in a ring shape with equal intervals, and the rotating rollers are rotatably connected to one end of the drum 62 and are in rolling contact with the driving ring 61.
[0043] Specifically, the driving ring 61 is fixed on the inner wall of the circular hole opened on the support frame 1. When the winding drum 2 or the winding drum 2 3 rotates, the roller 62 on the winding drum 2 or the winding drum 3 rotates accordingly, so that the rotating roller contacts the multiple arc plates one by one, and the arc plates drive the rotating roller to deflect. The multiple arc plates and the multiple rotating rollers cooperate to drive the roller 62 to rotate slowly, so that the roller 62 drives the wound wire to move at a uniform speed, avoiding breakage due to excessive wire tension, and at the same time avoiding stress concentration or looseness inside the rope due to different tensions of the wires.
[0044] Example 2, reference Figure 8 , which is the second embodiment of the present invention. This embodiment is different from the first embodiment in that: the roller 62 is in a truncated cone structure, and a pitch adjusting component 8 is provided on the roller 62. The pitch adjusting component 8 includes a screw 81 threadedly connected to the roller 62, and one end of the screw 81 is rotatably connected to a U-shaped frame 82, and both ends of the U-shaped frame 82 are provided with wire bundle holes 83.
[0045] Specifically, the wire passes through a bundle hole 83 and is wound on the drum 62 for multiple turns, and then passes through another bundle hole 83, so that the wire can be stably arranged on the drum 62. A thread groove adapted to the screw 81 is provided at the axis of the drum 62. The position of the U-shaped frame 82 can be adjusted by rotating the screw 81, so that the U-shaped frame 82 can adjust the position of the wire on the drum 62. Since the drum 62 is truncated, the moving speed of the wire at different positions of the drum 62 is different, so that it can be adjusted and adapted according to the twisting requirements of different ropes, thereby improving the applicable scenarios. The rest of the structure is the same as that of Example 1.
[0046] Example 3, reference Figure 3 , Fig. 9 , which is the third embodiment of the present invention. This embodiment is different from the second embodiment in that: a tension monitoring module 9 is arranged on the connecting frame 41 and at a position corresponding to the twisting cylinder 42. The tension monitoring module 9 includes a fixed cylinder 91 fixedly connected to the connecting frame 41, a sliding rod 92 is slidably connected in the fixed cylinder 91, one end of the sliding rod 92 passes through the fixed cylinder 91 and is rotatably connected to a guide wheel 93, and a pressure sensor 94 is fixedly installed on the other end of the sliding rod 92, and an elastic member 95 is commonly connected between the pressure sensor 94 and the fixed cylinder 91.
[0047] Specifically, the wire located between the twisting cylinder 2 43 and the twisting cylinder 1 42 is in rolling contact with the guide wheel 93, and the elastic member 95 cooperates with the slide rod 92 to ensure that the guide wheel 93 is always in contact with the wire to avoid the wire from loosening, which can further improve the twisting standard. At the same time, the pressure sensor 94 can be used to monitor the tension change of the wire in real time. When the wire tension value is abnormal, the wire twisting can be stopped, which facilitates timely inspection and maintenance of the wire and equipment and reduces production losses.
[0048] The pressure sensor 94 is signal-connected to the drive unit 7 .
[0049] Specifically, the pressure sensor 94 and the motor 73 are both connected to the external control module signal. When the pressure sensor 94 detects that the tension value of the wire is not within the set tension range, the abnormal signal can be transmitted to the control module, and the control module controls the motor 73 to stop rotating and stop the twisting of the wire. The rest of the structure is the same as that of Example 2.
[0050] Based on Examples 1-3, the working principle of the present invention is as follows: the wire drum is sleeved on the wire drum rod 53, and the wire is pulled to pass horizontally through the corresponding through hole. After the wire passes through a bundle hole 83, it is wound on the drum 62 for multiple turns, and then passes through another bundle hole 83. The wires passing through the stranding drum 2 are then combined and extended into the stranding drum 42. The wires in the same stranding drum 2 3 pass through the corresponding stranding drum 2 43 and extend into the stranding drum 1 42. After passing through the stranding drum 1 42, the wires are combined and connected to the external stranding and winding equipment. The stranding and winding equipment rotates, twists and pulls the wires. The motor 73 drives the stranding drum 1 2 and the stranding drum 2 3 to rotate. The stranding drum 2 performs preliminary twisting of the wires passing through itself in the stranding drum 1 42, and the stranding drum 2 3 performs preliminary twisting of the wires passing through itself in the stranding drum 2 43. Then, under the pulling of the twisting and winding equipment, all the wires after preliminary twisting are finally twisted in the stranding drum 1 42.
[0051] It should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention rather than to limit it. Although the present invention has been described in detail with reference to the preferred embodiments, those skilled in the art should understand that the technical solutions of the present invention may be modified or replaced by equivalents without departing from the spirit and scope of the technical solutions of the present invention, which should all be included in the scope of the claims of the present invention.
Claims
1. A twisting and routing device for intelligent processing of chemical fiber rope nets, characterized in that: It includes a support frame, a conductor frame is arranged on one side of the support frame facing the twisting and winding device, and a placement frame is arranged on the other side. A stranding drum 1 is rotatably connected at the center of the support frame, and a plurality of stranding drums 2 are rotatably connected to the support frame in a circular shape with equal spacing. A plurality of through holes are provided on each stranding drum 1 and stranding drum 2, and a wire transmission mechanism is arranged on the side of each stranding drum 1 and stranding drum 2 facing the conductor frame; The wire transmission mechanism comprises a driving ring fixedly connected to the support frame, a plurality of rollers are arranged in a circular shape at equal intervals on the inner side of the driving ring, the rollers are rotatably connected to the corresponding capstan drum 1 or capstan drum 2, and a transmission member is arranged at one end of the roller, and the transmission member is in transmission cooperation with the driving ring; A driving unit is installed on the support frame, and the driving unit is used to drive the first and second winding drums to rotate. The transmission member contacts the drive ring to drive the roller to rotate, and the roller drives the wire to move. The wires passing through the first and second winding drums are initially twisted, and then they are combined when passing through the conductor rack.
2. The twisting and routing device for intelligent processing of chemical fiber rope nets according to claim 1 is characterized in that: The conductor frame comprises a connecting frame fixedly connected to the supporting frame, the connecting frame is fixedly connected to a first twisting cylinder and a plurality of second twisting cylinders, and the second twisting cylinders are arranged between the first twisting cylinder and the supporting frame.
3. The twisting and routing device for intelligent processing of chemical fiber rope nets according to claim 2 is characterized in that: The first twisting cylinder is arranged corresponding to the first twisting drum, and the second twisting cylinder is arranged corresponding to the second twisting drum. The aperture of the first twisting cylinder is larger than the aperture of the second twisting cylinder.
4. The twisting and routing device for intelligent processing of chemical fiber rope nets according to claim 3 is characterized by: The placing frame comprises a fixed frame, a plurality of turntables are rotatably connected to the fixed frame, a plurality of bobbin rods are fixedly connected to the turntable, and the turntable is fixedly connected to the corresponding winding drum one or winding drum two through a connecting rod.
5. The twisting and routing device for intelligent processing of chemical fiber rope nets according to claim 1 is characterized in that: The driving unit includes a gear ring 1 fixedly connected to the capstan drum 1, and a gear ring 2 fixedly connected to the capstan drum 2, the gear ring 1 is meshingly connected to the gear ring 2, and the driving unit also includes a motor fixedly mounted on the support frame, the output end of the motor is fixedly connected to a gear, and the gear is meshingly connected to the gear ring 1.
6. The twisting and routing device for intelligent processing of chemical fiber rope nets according to claim 1 is characterized in that: The driving ring is composed of a plurality of arc-shaped plates, which are arranged at an acute angle with the corresponding axis of the first winding drum or the axis of the second winding drum, and the heads and tails of two adjacent arc-shaped plates are staggered. The transmission member is composed of a plurality of rotating rollers arranged in a ring shape with equal intervals, and the rotating rollers are rotatably connected to one end of the drum and are in rolling contact with the driving ring.
7. The twisting and routing device for intelligent processing of chemical fiber rope nets according to claim 1 is characterized in that: The roller is in a truncated cone structure. A pitch-adjusting assembly is arranged on the roller. The pitch-adjusting assembly comprises a screw rod threadedly connected to the roller. One end of the screw rod is rotatably connected to a U-shaped frame. Both ends of the U-shaped frame are provided with wire harness holes.
8. The twisting and routing device for intelligent processing of chemical fiber rope nets according to claim 2 is characterized by: A tension monitoring module is arranged on the connecting frame and at a position corresponding to the twisting cylinder. The tension monitoring module includes a fixed cylinder fixedly connected to the connecting frame, a sliding rod is slidably connected in the fixed cylinder, one end of the sliding rod passes through the fixed cylinder and is rotatably connected to a guide wheel, a pressure sensor is fixedly installed on the other end of the sliding rod, and an elastic member is commonly connected between the pressure sensor and the fixed cylinder.
9. The twisting and routing device for intelligent processing of chemical fiber rope nets according to claim 8, characterized in that: The pressure sensor is signal-connected to the drive unit.
Citation Information
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