Self-adaptive dynamic adjustment efficient mica paper winding device
By designing an adaptive dynamically adjusted mica paper rolling device including a winding mechanism, a tension adjustment mechanism and a cutting mechanism, the problems of easy tearing and low production efficiency in the prior art are solved, and efficient and stable mica paper rolling and cooling effects are achieved.
Patent Information
- Application Number
- CN202510396613.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-01
- Publication Date
- 2025-05-30
AI Technical Summary
The existing mica paper rolling device has a simple structure, which makes the edges of mica paper easy to tear and low production efficiency, affecting practicality.
A mica paper rolling device with adaptive dynamic adjustment is designed. Through the combination of a winding mechanism, a tension adjustment mechanism and a cutting mechanism, the continuous winding and tension adjustment of mica paper are realized, and cooling is reduced through exhaust during the winding process.
It improves the stability and efficiency of mica paper rolling, reduces edge tearing, and ensures the quality of mica paper.
Smart Images

Figure CN120057636A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of mica paper winding, and particularly to an adaptive dynamic adjustment high-efficiency mica paper winding device. Background Art
[0002] Mica paper is a special paper made from high-quality muscovite, phlogopite or synthetic mica as raw materials, which is shredded into pulp by thermochemical or hydraulic stripping and then made into paper by papermaking. During the processing of mica paper, winding is required. Generally, a winding device for mica paper production disclosed in a patent with publication number CN112357640B and a mica paper winding and drying device disclosed in a patent with publication number CN204356583U are used to wind mica paper.
[0003] However, it is found during use that the existing winding devices have relatively simple structures. When winding, the paper web tension shows a gradient distribution with high edges and low middle. The edges bear higher tensile stress due to the increase in the paper roll diameter, making the edges of mica paper prone to tearing during the winding process. And in some production lines, direct-through winding is adopted (that is, directly from the drying section to the winding section, relying on environmental heat dissipation during the conveying process), which causes the temperature of mica paper itself during winding, and due to the relatively fast winding speed, heat is generated by friction of mica paper, resulting in the temperature rise during the mica paper winding process, which is likely to cause the brittleness of mica paper to increase, further increasing the situation of mica paper edge tearing. Moreover, when the existing winding devices wind, they all need to stop the machine, which is time-consuming and laborious, affecting production efficiency and resulting in poor practicability. Therefore, there is an urgent need for an adaptive dynamic adjustment high-efficiency mica paper winding device to improve the above problems. Summary of the Invention
[0004] To solve the above technical problems, the present invention provides an adaptive dynamic adjustment high-efficiency mica paper winding device, which bypasses one end of mica paper around a tension adjustment mechanism and fixes it on a winding mechanism. Through the operation of the winding mechanism, the mica paper is wound, and at the same time, the tension of the mica paper is adjusted by the tension adjustment mechanism. After the winding thickness meets the requirements, the mica paper is cut off by a cutting mechanism, thereby improving the practicability of the device.
[0005] An adaptive dynamic adjustment high-efficiency mica paper winding device of the present invention includes a cutting mechanism; it also includes a winding mechanism, a tension adjustment mechanism and a winding frame. The cutting mechanism is installed on the winding mechanism, and the winding frame is installed on the winding mechanism;
[0006] The winding mechanism winds the mica paper, the tension adjustment mechanism adjusts the tension of the mica paper, and the cutting mechanism shears the mica paper;
[0007] One end of the mica paper is wound around the tension adjusting mechanism and fixed to the winding mechanism. The mica paper is wound by the operation of the winding mechanism. At the same time, the tension of the mica paper is adjusted by the tension adjusting mechanism. After the winding thickness meets the requirements, the mica paper is cut off by the cutting mechanism, thereby improving the practicability of the equipment.
[0008] Preferably, the winding mechanism includes a moving mechanism, two sets of winding mechanisms, a first frame, a reducer, a first driving motor, and a support frame. The first frame is installed on the moving mechanism, the reducer is installed on the first frame, the support frame is rotatably installed on the first frame, and one end of the support frame is connected to the output end of the reducer. The first driving motor is fixedly installed on the reducer, and the output shaft of the first driving motor is connected to the input end of the reducer. The two sets of winding mechanisms are both installed on the support frame. One end of the mica paper is fixed to one set of winding mechanisms. The mica paper is wound by the operation of the winding mechanism. After the winding thickness meets the requirements, the mica paper is cut off by the cutting mechanism. The first driving motor operates, and through the transmission of the reducer, the support frame rotates to change the positions of the two sets of winding mechanisms. At the same time, the moving mechanism moves horizontally, so that the empty winding mechanism approaches the disconnected mica paper, and one end of the disconnected mica paper is fixed to the empty winding mechanism, and the mica paper is continuously wound. At the same time, the staff removes the wound mica paper, thereby improving the practicability of the equipment.
[0009] Preferably, the moving mechanism includes a first slide rail, a workbench, and a first electric slider. The workbench is slidably installed on the first slide rail through the first electric slider. The position of the workbench is adjusted by the first electric slider sliding on the first slide rail, so that the empty winding mechanism approaches the disconnected mica paper, thereby improving the practicability of the equipment.
[0010] Preferably, the coiling mechanism includes a coiling shaft, a toothed ring, a second driving motor, a gear, a first airbag, a second airbag, a third airbag, a first air delivery pipe, a plurality of electric control valves, a rotary connecting pipe, a second air delivery pipe, and a rotary connecting elbow. The coiling shaft is rotatably installed on the support frame, and a chamber is provided inside the coiling shaft. A plurality of exhaust holes and a plurality of reserved holes are provided on the surface of the coiling shaft. The toothed ring is sleeved on one end of the coiling shaft. The second driving motor is fixedly installed on the support frame. The gear is installed on the output shaft of the second driving motor, and the gear is meshed with the toothed ring. The first airbag, the second airbag, and the third airbag are all installed inside the coiling shaft, and the first airbag is located between the second airbag and the third airbag. A plurality of rubber strips are provided on the surfaces of the first airbag, the second airbag, and the third airbag, and the plurality of rubber strips respectively correspond to the plurality of reserved holes on the coiling shaft. The first air delivery pipe is installed in the first airbag, the second airbag, and the third airbag. The plurality of electric control valves are all installed on the first air delivery pipe, and the plurality of electric control valves are respectively located in the first airbag, the second airbag, and the third airbag. One end of the first air delivery pipe passes through one end of the coiling shaft and is rotatably connected to the second air delivery pipe through the rotary connecting pipe. The rotary connecting elbow is rotatably installed on one end of the coiling shaft, and the rotary connecting elbow communicates with the inside of the coiling shaft. Connect the second air delivery pipe to the first exhaust pump, connect the rotary connecting elbow to the second exhaust pump, put the winding frame on the coiling shaft. By operating the first exhaust pump, air sequentially passes through the second air delivery pipe, the rotary connecting pipe, the first air delivery pipe, and the plurality of electric control valves and enters the first airbag, the second airbag, and the third airbag, causing the first airbag, the second airbag, and the third airbag to expand, so that one ends of the plurality of rubber strips respectively pass through the plurality of reserved holes on the coiling shaft, and the winding frame is supported and fixed by the plurality of rubber strips. Then, by sliding the first electric slider on the first slide rail, the position of the workbench is adjusted to make one end of the coiling shaft close to the broken mica paper. At the same time, the second exhaust pump operates to discharge the air inside the coiling shaft, creating a negative pressure inside the coiling shaft to adsorb one end of the mica paper on the surface of the winding frame. At the same time, turn on the second driving motor, and through the meshing transmission of the gear and the toothed ring, drive the coiling shaft to rotate to wind the mica paper. And during the winding process, the first exhaust pump operates again. By opening the electric control valves in the second airbag and the third airbag, part of the air in the second airbag and the third airbag is discharged to reduce the tension at the edge of the mica paper on the coiling shaft. Then close the electric control valves in the second airbag and the third airbag, open the electric control valve in the first airbag, and make the first exhaust pump discharge air into the first airbag, causing the first airbag to expand and increasing the tension in the middle of the mica paper on the coiling shaft, ensuring the coiling tightness of the wound mica paper, thereby improving the practicability of the equipment.
[0011] Preferably, a second slide rail is provided on the workbench, and an electric slider two is slidably arranged on the second slide rail. A second rack is arranged on the electric slider two, and a bearing is arranged on the second rack. The outer ring of the bearing is connected to the second rack. Limiting discs are arranged on the outer ring of the bearing and the front part of the coiling shaft. An exhaust passage is arranged inside the limiting disc, and multiple groups of one-way nozzles are arranged on the limiting disc. By sliding the electric slider two, the bearing is sleeved on the other end of the coiling shaft to support the coiling shaft. Then, during the winding process, the mica paper roll is placed on the winding rack, covering multiple exhaust holes on the coiling shaft. The exhaust pump two exhausts air into the coiling shaft, enabling air to enter the two limiting discs. The air is ejected through the multiple groups of one-way nozzles to cool the mica paper during the winding process, thereby improving the practicality of the equipment.
[0012] Preferably, the tension adjusting mechanism includes two electric cylinders, two lifting frames, two cylinders one and a tension adjusting roller. The two lifting frames are respectively installed on the tops of the two electric cylinders, the two cylinders one are respectively installed on the two lifting frames, and the two ends of the tension adjusting roller are respectively rotatably installed on the two cylinders one. The mica paper is passed around the top of the tension adjusting roller, and the tension adjusting roller supports the mica paper. Then, by extending or contracting the electric cylinder, the tension of the mica paper is roughly adjusted to eliminate large-range deviations. By extending or contracting the cylinder one, the instantaneous deviation during the operation of the tension adjusting mechanism is eliminated, thereby improving the practicality of the equipment.
[0013] Preferably, the cutting mechanism includes a third slide rail, an electric slider three, a cylinder two and a cutting knife. The third slide rail is installed on the top of the workbench, the electric slider three is slidably installed on the third slide rail, the cylinder two is installed on the top of the electric slider three, and the cutting knife is installed on the top of the cylinder two. By extending or contracting the cylinder two to adjust the height of the cutting knife, and then by sliding the electric slider three on the third slide rail, the cutting knife cuts the mica paper, thereby improving the practicality of the equipment.
[0014] Preferably, the winding rack is made of rubber material; it is convenient for multiple rubber strips to adjust the tension of the edge and middle of the wound mica paper, thereby improving the practicality of the equipment.
[0015] Preferably, air pressure sensors are arranged inside the first airbag, the second airbag and the third airbag; it is convenient to maintain the pressure inside the first airbag, the second airbag and the third airbag, thereby improving the practicality of the equipment.
[0016] Preferably, the second air delivery pipe passes through the middle of the rotary connecting elbow; reducing the influence of the second air delivery pipe on the rotation of the coiling shaft, thereby improving the practicality of the equipment.
[0017] Compared with the prior art, the beneficial effects of the present invention are:
[0018] 1. Continuously wind through a winding mechanism, and adjust the tension at the edges and in the middle of the mica paper during the winding process to ensure the winding effect;
[0019] 2. Adjust the tension of the mica paper during the winding process through a tension adjustment mechanism to ensure the stability of winding;
[0020] 3. Cool down the mica paper by exhausting air during the winding process to ensure the quality of the mica paper. BRIEF DESCRIPTION OF THE DRAWINGS
[0021] Figure 1 is the first axonometric structure schematic diagram of the present invention;
[0022] Figure 2 is the second axonometric structure schematic diagram of the present invention;
[0023] Figure 3 is the rear view structure schematic diagram of the present invention;
[0024] Figure 4 is the axonometric structure schematic diagram of the tension adjustment mechanism of the present invention;
[0025] Figure 5 is the axonometric structure schematic diagram of the shearing mechanism and winding mechanism of the present invention;
[0026] Figure 6 is the first axonometric structure schematic diagram of the winding shaft of the present invention;
[0027] Figure 7 is the second axonometric structure schematic diagram of the winding shaft of the present invention;
[0028] Figure 8 is the left view sectional structure schematic diagram of the winding shaft of the present invention;
[0029] Figure 9 is the axonometric sectional structure schematic diagram of the winding shaft of the present invention;
[0030] Figure 10 is the axonometric structure schematic diagram of the winding rack of the present invention.
[0031] Labels in the attached drawings: 1, first frame; 2, reducer; 3, first driving motor; 4, support frame; 5, first slide rail; 6, workbench; 7, first electric slider; 8, winding shaft; 9, gear ring; 10, second driving motor; 11, gear; 12, first airbag; 13, second airbag; 14, third airbag; 15, rubber strip; 16, first air delivery pipe; 17, electric control valve; 18, rotating connecting pipe; 19, second air delivery pipe; 20, rotating connecting elbow; 21, second slide rail; 22, second electric slider; 23, second frame; 24, bearing; 25, limit disc; 26, one-way nozzle; 27, electric cylinder; 28, lifting frame; 29, first cylinder; 30, tension adjusting roller; 31, third slide rail; 32, third electric slider; 33, second cylinder; 34, cutting knife; 40, winding frame. Detailed implementation mode
[0032] To facilitate the understanding of the present invention, the present invention will be described more comprehensively below with reference to the relevant attached drawings. The present invention can be implemented in many different forms and is not limited to the embodiments described herein. On the contrary, these embodiments are provided to make the disclosure of the present invention more thorough and comprehensive.
[0033] Embodiment 1: As Figures 1 to 10 shown, an adaptive dynamic adjustment high-efficiency mica paper winding device includes a cutting mechanism; it also includes a winding mechanism, a tension adjustment mechanism and a winding frame 40. The cutting mechanism is installed on the winding mechanism, and the winding frame 40 is installed on the winding mechanism;
[0034] The winding mechanism winds the mica paper, the tension adjustment mechanism adjusts the tension of the mica paper, and the cutting mechanism shears the mica paper;
[0035] The winding mechanism includes a moving mechanism, two groups of winding mechanisms, a first frame 1, a reducer 2, a first driving motor 3 and a support frame 4. The first frame 1 is installed on the moving mechanism, the reducer 2 is installed on the first frame 1, the support frame 4 is rotatably installed on the first frame 1, and one end of the support frame 4 is connected to the output end of the reducer 2. The first driving motor 3 is fixedly installed on the reducer 2, and the output shaft of the first driving motor 3 is connected to the input end of the reducer 2. Two groups of winding mechanisms are installed on the support frame 4;
[0036] The moving mechanism includes a first slide rail 5, a workbench 6 and a first electric slider 7. The workbench 6 is slidably installed on the first slide rail 5 through the first electric slider 7;
[0037] The coiling mechanism includes a coiling shaft 8, a toothed ring 9, a second driving motor 10, a gear 11, a first airbag 12, a second airbag 13, a third airbag 14, a first air delivery pipe 16, multiple groups of electric control valves 17, a rotary connecting pipe 18, a second air delivery pipe 19, and a rotary connecting elbow 20. The coiling shaft 8 is rotatably installed on the support frame 4, and a chamber is provided inside the coiling shaft 8. Multiple exhaust holes and multiple reserved holes are provided on the surface of the coiling shaft 8. The toothed ring 9 is sleeved on one end of the coiling shaft 8. The second driving motor 10 is fixedly installed on the support frame 4. The gear 11 is installed on the output shaft of the second driving motor 10, and the gear 11 is meshed with the toothed ring 9. The first airbag 12, the second airbag 13, and the third airbag 14 are all installed inside the coiling shaft 8, and the first airbag 12 is located between the second airbag 13 and the third airbag 14. Multiple rubber strips 15 are provided on the surfaces of the first airbag 12, the second airbag 13, and the third airbag 14, and the multiple rubber strips 15 respectively correspond to the multiple reserved holes on the coiling shaft 8. The first air delivery pipe 16 is installed in the first airbag 12, the second airbag 13, and the third airbag 14. Multiple groups of electric control valves 17 are all installed on the first air delivery pipe 16, and the multiple groups of electric control valves 17 are respectively located in the first airbag 12, the second airbag 13, and the third airbag 14. One end of the first air delivery pipe 16 passes through one end of the coiling shaft 8 and is rotatably connected to the second air delivery pipe 19 through the rotary connecting pipe 18. The rotary connecting elbow 20 is rotatably installed on one end of the coiling shaft 8, and the rotary connecting elbow 20 communicates with the inside of the coiling shaft 8;
[0038] A second slide rail 21 is provided on the workbench 6. An electric slider two 22 is slidably provided on the second slide rail 21. A second frame 23 is provided on the electric slider two 22. A bearing 24 is provided on the second frame 23, and the outer ring of the bearing 24 is connected to the second frame 23. Limit disks 25 are provided on the outer ring of the bearing 24 and the front part of the coiling shaft 8. An exhaust passage is provided inside the limit disk 25. Multiple groups of one-way nozzles 26 are provided on the limit disk 25;
[0039] The cutting mechanism includes a third slide rail 31, an electric slider three 32, a second cylinder 33, and a cutting knife 34. The third slide rail 31 is installed on the top of the workbench 6. The electric slider three 32 is slidably installed on the third slide rail 31. The second cylinder 33 is installed on the top of the electric slider three 32. The cutting knife 34 is installed on the top of the second cylinder 33;
[0040] The winding frame 40 is made of rubber material;
[0041] Pressure sensors are provided inside the first airbag 12, the second airbag 13, and the third airbag 14;
[0042] The second air delivery pipe 19 passes through the middle of the rotary connecting elbow 20;
[0043] Slip two sets of rewinding frames 40 onto two sets of winding shafts 8 respectively. Slide the electric slider one 7 on the slide rail one 5 to adjust the position of the workbench 6, making the right winding shaft 8 approach the mica paper. Meanwhile, the exhaust pump two operates to discharge the air inside the right winding shaft 8, creating a negative pressure inside the right winding shaft 8 to adsorb one end of the mica paper onto the surface of the rewinding frame 40. At the same time, turn on the driving motor two 10. Through the meshing transmission of the gear 11 and the toothed ring 9, drive the right winding shaft 8 to rotate and wind the mica paper. Meanwhile, slide the electric slider two 22 to fit the bearing 24 onto the other end of the right winding shaft 8 to support the right winding shaft 8. And during the winding process, the exhaust pump one operates again. The electromagnetic control valves 17 in the airbag two 13 and the airbag three 14 are opened to discharge some of the air in the airbag two 13 and the airbag three 14, reducing the tension at the edge of the mica paper on the winding shaft 8. Then close the electromagnetic control valves 17 in the airbag two 13 and the airbag three 14, and open the electromagnetic control valves 17 in the airbag one 12, enabling the exhaust pump one to discharge air into the airbag one 12 to make the airbag one 12 expand and increase the tension in the middle of the mica paper on the winding shaft 8, ensuring the winding tightness of the wound mica paper. Meanwhile, exhaust air into the winding shaft 8 through the exhaust pump two, allowing the air to enter the two limit discs 25, and spraying the air through multiple one-way nozzles 26 to cool the mica paper during the winding process. After the thickness of the mica paper wound on the right winding shaft 8 meets the requirements, extend or retract the cylinder two 33 to adjust the height of the cutting knife 34. Then slide the electric slider three 32 on the slide rail three 31 to cut the mica paper with the cutting knife 34. The bearing 24 resets. Then the driving motor one 3 operates, and through the reduction gear 2, the support frame 4 rotates forward to swap the positions of the two sets of winding shafts 8, and repeat the above steps to continue winding the mica paper. After the thickness of the wound mica paper meets the requirements, the driving motor one 3 operates again to make the support frame 4 rotate in the reverse direction to swap the positions of the two sets of winding shafts 8 again, and continuously carry out the winding work, thereby improving the practicability of the equipment.
[0044] Example 2: As Figures 1 to 10 shown, an adaptive dynamic adjustment high-efficiency mica paper rewinding device further includes:
[0045] The tension adjustment mechanism includes two sets of electric cylinders 27, two sets of lifting frames 28, two sets of cylinders one 29 and tension adjustment rollers 30. The two sets of lifting frames 28 are respectively installed on the tops of the two sets of electric cylinders 27. The two sets of cylinders one 29 are respectively installed on the two sets of lifting frames 28. The two ends of the tension adjustment roller 30 are respectively rotatably installed on the two sets of cylinders one 29;
[0046] The mica paper is wound around the top of the tension adjusting roller 30, and the tension adjusting roller 30 supports the mica paper. The two sets of winding frames 40 are respectively sleeved on the two sets of winding shafts 8. The electric slider 1 7 slides on the slide rail 1 5 to adjust the position of the workbench 6, so that the right winding shaft 8 approaches the mica paper. At the same time, the exhaust pump 2 operates to discharge the air in the right winding shaft 8, creating a negative pressure inside the right winding shaft 8 to adsorb one end of the mica paper to the surface of the winding frame 40. At the same time, the driving motor 2 10 is turned on, and through the meshing transmission of the gear 11 and the gear ring 9, the right winding shaft 8 is driven to rotate to wind the mica paper. At the same time, through the sliding of the electric slider 2 22, the bearing 24 is sleeved on the other end of the right winding shaft 8 to support the right winding shaft 8, and the electric cylinder 27 extends or contracts to roughly adjust the tension of the mica paper to eliminate large-range deviations. The air cylinder 1 29 extends or contracts to eliminate the instantaneous deviation during the operation of the tension adjusting mechanism. And during the winding process, the exhaust pump 1 operates again. The electromagnetic valves 17 in the air bag 2 13 and the air bag 3 14 are opened to discharge part of the air in the air bag 2 13 and the air bag 3 14, reducing the tension at the edge of the mica paper on the winding shaft 8. Then the electromagnetic valves 17 in the air bag 2 13 and the air bag 3 14 are closed, and the electromagnetic valves 17 in the air bag 1 12 are opened, so that the exhaust pump 1 discharges air into the air bag 1 12, causing the air bag 1 12 to expand and increasing the tension in the middle of the mica paper on the winding shaft 8 to ensure the winding tightness of the wound mica paper. At the same time, the exhaust pump 2 exhausts air into the winding shaft 8, allowing air to enter the two sets of limit discs 25, and the air is ejected through the multiple groups of one-way nozzles 26 to cool the mica paper during the winding process. After the thickness of the mica paper wound on the right winding shaft 8 meets the requirements, the height of the cutting knife 34 is adjusted by the extension or contraction of the air cylinder 2 33. Then the electric slider 3 32 slides on the slide rail 3 31, and the cutting knife 34 cuts off the mica paper. The bearing 24 resets. Then the driving motor 1 3 operates, and through the reduction gear 2 transmission, the support frame 4 rotates forward to swap the positions of the two sets of winding shafts 8, and the above steps are repeated to continue winding the mica paper. After the thickness of the wound mica paper meets the requirements, the driving motor 1 3 operates again, causing the support frame 4 to rotate reversely to swap the positions of the two sets of winding shafts 8 again, and the winding work continues, thereby improving the practicability of the equipment.
[0047] The main functions achieved by the present invention are:
[0048] 1. Continuously wind through the winding mechanism, and adjust the tension at the edge and middle of the mica paper during the winding process to ensure the winding effect;
[0049] 2. Adjust the tension of the mica paper during the winding process through the tension adjusting mechanism to ensure the stability of winding;
[0050] 3. Cool the mica paper by exhausting air during the winding process to ensure the quality of the mica paper.
[0051] An adaptive dynamic adjustment high-efficiency mica paper winding device of the present invention, its installation method, connection method or setting method are all common mechanical methods, and any implementation that can achieve its beneficial effects can be carried out; the reducer 2, driving motor 1, slide rail 1, electric slider 1, driving motor 2, electric control valve 17, electric slider 2, electric cylinder 27, air cylinder 1 and electric slider 3 of the adaptive dynamic adjustment high-efficiency mica paper winding device of the present invention are purchased on the market, and technicians in this industry only need to install and operate according to the attached operation manual, without the need for technicians in this field to make creative efforts.
[0052] The above are only the preferred embodiments of the present invention. It should be noted that for those of ordinary skill in the art, without departing from the technical principle of the present invention, several improvements and modifications can be made, and these improvements and modifications should also be regarded as the protection scope of the present invention.
Claims
1. An adaptive dynamic adjustment high-efficiency mica paper winding device, comprising a cutting mechanism; characterized in that: It also includes a winding mechanism, a tension adjustment mechanism and a winding frame (40), wherein the cutting mechanism is mounted on the winding mechanism, and the winding frame (40) is mounted on the winding mechanism; The reeling mechanism reels the mica paper, the tension adjusting mechanism adjusts the tension of the mica paper, and the cutting mechanism shears the mica paper.
2. The self-adaptive dynamic adjustment high-efficiency mica paper winding device according to claim 1, characterized in that: The winding mechanism comprises a moving mechanism, two sets of winding and collecting mechanisms, a frame (1), a reducer (2), a driving motor (3) and a support frame (4); the frame (1) is mounted on the moving mechanism, the reducer (2) is mounted on the frame (1), the support frame (4) is rotatably mounted on the frame (1), and one end of the support frame (4) is connected to the output end of the reducer (2); the driving motor (3) is fixedly mounted on the reducer (2), and the output shaft of the driving motor (3) is connected to the input end of the reducer (2); and the two sets of winding and collecting mechanisms are both mounted on the support frame (4).
3. The self-adaptive dynamic adjustment high-efficiency mica paper winding device according to claim 2, characterized in that: The moving mechanism comprises a slide rail (5), a workbench (6) and an electric slider (7); the workbench (6) is slidably mounted on the slide rail (5) via the electric slider (7).
4. The self-adaptive dynamic adjustment high-efficiency mica paper winding device according to claim 3, characterized in that: The winding mechanism comprises a winding shaft (8), a gear ring (9), a second driving motor (10), a gear (11), an airbag one (12), a second airbag (13), a third airbag (14), a first air supply pipe (16), a plurality of groups of electric control valves (17), a rotary connecting pipe (18), a second air supply pipe (19) and a rotary connecting elbow (20); the winding shaft (8) is rotatably mounted on a support frame (4); a chamber is provided inside the winding shaft (8); a plurality of groups of exhaust holes and a plurality of groups of reserved holes are provided on the surface of the winding shaft (8); the gear ring (9) is sleeved on one end of the winding shaft (8); the second driving motor (10) is fixedly mounted on the support frame (4); the gear (11) is mounted on the output shaft of the second driving motor (10); the gear (11) is meshingly connected to the gear ring (9); the first airbag (12), the second airbag (13) and the third airbag (14) are all mounted inside the winding shaft (8); The airbag 1 (12) is located between the airbag 2 (13) and the airbag 3 (14). The surfaces of the airbag 1 (12), the airbag 2 (13) and the airbag 3 (14) are all provided with a plurality of rubber strips (15), and the plurality of rubber strips (15) respectively correspond to the plurality of reserved holes on the winding shaft (8). The air delivery pipe 1 (16) is installed in the airbag 1 (12), the airbag 2 (13) and the airbag 3 (14). The plurality of electric control valves (17) are installed in the On the gas delivery pipe 1 (16), a plurality of groups of electric control valves (17) are respectively located in the air bag 1 (12), the air bag 2 (13) and the air bag 3 (14); one end of the gas delivery pipe 1 (16) passes through one end of the winding shaft (8) and is rotatably connected to the gas delivery pipe 2 (19) through a rotating connecting pipe (18); a rotating connecting elbow (20) is rotatably installed on one end of the winding shaft (8), and the rotating connecting elbow (20) is communicated with the interior of the winding shaft (8).
5. The self-adaptive dynamic adjustment high-efficiency mica paper winding device according to claim 4, characterized in that: The workbench (6) is provided with a second slide rail (21), on which a second electric slider (22) is slidably provided, on which a second electric slider (22) is provided, on which a second frame (23) is provided, on which a bearing (24) is provided, and the outer ring of the bearing (24) is connected to the second frame (23), on which a limit plate (25) is provided on the outer ring of the bearing (24) and on the front of the winding shaft (8), an exhaust passage is provided inside the limit plate (25), and on which a plurality of groups of one-way nozzles (26) are provided.
6. The self-adaptive dynamic adjustment high-efficiency mica paper winding device according to claim 1, characterized in that: The tension adjustment mechanism comprises two groups of electric cylinders (27), two groups of lifting frames (28), two groups of air cylinders (29) and a tension adjustment roller (30). The two groups of lifting frames (28) are respectively mounted on the tops of the two groups of electric cylinders (27), the two groups of air cylinders (29) are respectively mounted on the two groups of lifting frames (28), and the two ends of the tension adjustment roller (30) are respectively rotatably mounted on the two groups of air cylinders (29).
7. The self-adaptive dynamic adjustment high-efficiency mica paper winding device according to claim 3, characterized in that: The cutting mechanism comprises a slide rail three (31), an electric slider three (32), a cylinder two (33) and a cutting knife (34), wherein the slide rail three (31) is installed on the top of the workbench (6), the electric slider three (32) is slidably installed on the slide rail three (31), the cylinder two (33) is installed on the top of the electric slider three (32), and the cutting knife (34) is installed on the top of the cylinder two (33).
8. The self-adaptive dynamic adjustment high-efficiency mica paper winding device according to claim 1, characterized in that: The winding frame (40) is made of rubber material.
9. The self-adaptive dynamic adjustment high-efficiency mica paper winding device according to claim 4, characterized in that: Air pressure sensors are arranged inside the airbag 1 (12), the airbag 2 (13) and the airbag 3 (14).
10. The self-adaptive dynamic adjustment high-efficiency mica paper winding device according to claim 4, characterized in that: The second gas delivery pipe (19) passes through the middle of the rotary connection elbow (20).
Citation Information
Patent Citations
A winding device for mica paper production
CN112357640B
Mica paper winding and drying equipment
CN204356583U