Flip-type Winding Device for Aerogel Thermal Insulation Board

By designing a flip-type winding device for aerogel insulation board, the movement of the support plate and the rotation of the clamping shaft is achieved by using hydraulic push rods and electric push rods, the problems of wear and lack of support after winding are solved, and a tighter material winding and lower looseness probability are achieved.

CN119976480BActive Publication Date: 2025-06-10WINCELL INSULATION CO LTD
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Patent Information

Application Number
CN202510472362.9
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-04-16
Publication Date
2025-06-10
Estimated Expiration
2045-04-16

AI Technical Summary

Technical Problem

The existing aerogel insulation board flip winding device is prone to wear the aerogel layer during the winding process, and the lower side of the aerogel insulation board after winding lacks support, resulting in loosening of the outer periphery of the rolled material and sliding downward, affecting the winding effect.

Method used

A flip-type winding device for aerogel insulation board is designed. Through the cooperation of hydraulic push rods and electric push rods, the movement of the support plate is realized to fit the bottom of the material, provide support, and through the rotation of the clamping shaft and the rebound of the elastic member, the material winding is made tighter and the probability of loosening is reduced.

Benefits of technology

It effectively reduces the wear of the aerogel layer, ensures the winding effect of the material, reduces the use of the gas expansion shaft, reduces the winding and storage costs, and improves the stability of the material.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention relates to the technical field of aerogel insulation board winding, and in particular to a flip-type winding device for aerogel insulation board. The device comprises: a base, the base is rotatably connected to a rotating frame, the base is hinged with a hydraulic push rod, and the telescopic end of the hydraulic push rod is hinged with the rotating frame; a driving member is installed on the rotating frame, the output end of the driving member is detachably connected to a rotating disk, and the rotating disk is detachably connected to an inflatable shaft; a supporting disk is slidably connected to the inflatable shaft, the driving member is fixedly connected to a limiting rod, and the limiting rod is fixedly connected to an electric push rod. The present invention reduces the friction on the side of the material when the material is rolled up by making the supporting disk not contact the material during the material rolling process. After the material is rolled up and turned over, the bottom of the material is supported by the movement of the supporting disk to fit the bottom of the material, so as to reduce the probability of the material being deformed and piled up downwards, thereby ensuring the rolling effect of the material.
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Description

Technical Field

[0001] The present invention relates to the technical field of winding of aerogel insulation boards, and particularly to a flipping type winding device for aerogel insulation boards. Background Art

[0002] An aerogel insulation board is a flexible composite material. After the aerogel insulation board is dried, in order to facilitate storage and transportation, it is necessary to wind and store the aerogel insulation board. The existing flipping type winding device generally sets a horizontally placed air shaft, and then winds the aerogel insulation board by rotating the air shaft. After winding is completed, it is necessary to flip the air shaft by 90°, so that the axis of the air shaft and the axis of the aerogel insulation board are both in a vertical state, in order to facilitate the lifting of the aerogel insulation board and its support structure. However, in order to prevent the side of the aerogel insulation board from being worn by friction during the rotating winding process, the side of the aerogel insulation board generally does not directly contact any object. Therefore, after the air shaft drives the aerogel insulation board to flip 90°, there will be a lack of support under the wound aerogel insulation board, resulting in the looseness of the outer periphery of the aerogel insulation board roll and the downward sliding under the influence of gravity, causing the aerogel insulation board roll to be loose, and further affecting the winding effect of the aerogel insulation board. Summary of the Invention

[0003] In order to overcome the disadvantages pointed out in the above background, the present invention provides a flipping type winding device for aerogel insulation boards.

[0004] The technical implementation scheme of the present invention is as follows: A flipping type winding device for aerogel insulation boards, comprising:

[0005] A base, the base is rotatably connected with a rotating frame, the base is hinged with a hydraulic push rod, and the telescopic end of the hydraulic push rod is hinged with the rotating frame;

[0006] A driving member, installed on the rotating frame, the output end of the driving member is detachably connected with a rotating disc, and the rotating disc is detachably connected with an air shaft communicated with an external air supply device;

[0007] A fixing frame, the rotating frame is rotatably connected with a rotating part, the fixing frame is slidably connected to the rotating part of the rotating frame, and the fixing frame is used for limiting one end of the air shaft away from the rotating disc;

[0008] A support disc, slidably connected to the air shaft, the support disc is rotatably connected with a sliding ring, the driving member is fixedly connected with a limiting rod, the limiting rod is used for limiting the sliding ring, and the limiting rod is fixedly connected with an electric push rod, and the telescopic end of the electric push rod is used to push the sliding ring to move, so that the sliding ring is disengaged from the limit of the limiting rod.

[0009] More preferably, it further comprises:

[0010] The rotating shell is slidably and rotatably connected to a position of the air shaft near the fixed frame;

[0011] The clamping shaft is slidably connected to the rotating shell and is also slidably connected to the sliding ring.

[0012] More preferably, it further includes:

[0013] The motor is fixedly connected to the limiting rod, and a gear is fixedly connected to the output shaft of the motor;

[0014] The toothed ring is fixedly connected to the sliding ring and meshes with the gear. The thickness of the gear is greater than that of the toothed ring. Elastic members are fixedly connected between both the rotating shell and the sliding ring and the clamping shaft.

[0015] More preferably, there is damping between the sliding ring and the support disk, there is a gap between the support disk and the rotating disk, and the sliding ring is in contact with the rotating disk.

[0016] More preferably, it further includes:

[0017] The first weight is rotatably connected to the rotating shell and is also slidably connected to the air shaft.

[0018] More preferably, it further includes:

[0019] The pressing plates are provided with several pieces distributed circumferentially and are all fixedly connected to the rotating shell.

[0020] More preferably, it further includes:

[0021] The fixed wheel is fixedly connected to the clamping shaft, and a first rotating ring is rotatably connected to the fixed wheel.

[0022] More preferably, it further includes:

[0023] The fixed block is fixedly connected to one end of the clamping shaft close to the rotating shell. A first fixed pulley is rotatably connected to the fixed block, and a first connecting rope is wound around the first fixed pulley;

[0024] The second weight is fixedly connected to one end of the first connecting rope away from the first fixed pulley. An L-shaped block for limiting the second weight is provided on the clamping shaft.

[0025] More preferably, it further includes:

[0026] The sliding wheel is slidably connected to the clamping shaft. The first connecting rope sequentially passes through the fixed wheel and the sliding wheel. The sliding wheel is located between the fixed wheel and the second weight, and a second rotating ring is rotatably connected to the sliding wheel;

[0027] A second connecting rope, fixedly connected to the sliding pulley;

[0028] A second fixed pulley, rotatably connected to the fixed block. The second connecting rope is wound around the second fixed pulley. The second connecting rope is fixedly connected with a third weight block. The fixed block is provided with a sliding chamber, and the third weight block slides in the sliding chamber of the fixed block in a sealed manner.

[0029] More preferably, it further includes:

[0030] A ventilation pipe, fixedly connected to the fixed block and communicating with the sliding chamber of the fixed block. The ventilation pipe is communicated with an external air supply device;

[0031] A plugging member, threadedly connected to the ventilation pipe, for adjusting the flow area of the ventilation pipe.

[0032] The beneficial effects achieved by the present invention with the above structure are as follows: 1. During the material winding process of the present invention, the support disc does not contact the material to reduce the friction on the side of the material during winding. After the material winding is completed and flipped, the support disc moves to fit the bottom of the material to support the bottom of the material, reducing the probability of material deformation and downward accumulation, thereby ensuring the winding effect of the material;

[0033] 2. By rotating the clamping shaft around the outer circumference of the wound material, and the rotation direction of the clamping shaft is opposite to the rotation direction of the material during winding. At the same time, the elastic member of the clamping shaft gradually rebounds, making the wound material more compact, reducing the probability of the material becoming loose, and thereby ensuring the winding effect of the material;

[0034] 3. By separating the air shaft from the material and storing the material separately, the usage amount of the air shaft is reduced, thereby reducing the costs of material winding and storage. And during the process of pulling out the air shaft, the first weight block and the pressing plate are used to press the material to reduce the probability of displacement of the material core, and further ensure the winding effect of the material;

[0035] 4. By driving the first connecting rope to move through the sliding pulley, the first connecting rope is spirally wound around the wound material for bundling and fixing, reducing the probability of the material becoming loose during storage and transportation, and further ensuring the stability of the wound material;

[0036] 5. By changing the air resistance suffered by the third weight block when it moves under the influence of gravity, the moving speed of the third weight block is adjusted to change the bundling density of the first connecting rope on the material, thereby adaptively adjusting the bundling density according to the size of the wound material. BRIEF DESCRIPTION OF THE DRAWINGS

[0037] Figure 1 It is a three-dimensional structural schematic diagram of the present invention;

[0038] Figure 2 Schematic three-dimensional structure diagram of the base of the present invention;

[0039] Figure 3 Schematic three-dimensional structure diagram of the rotating frame of the present invention;

[0040] Figure 4 Schematic three-dimensional structure diagram of the fixing frame of the present invention;

[0041] Figure 5 Schematic cross-sectional view of the three-dimensional structure of the sliding ring of the present invention;

[0042] Figure 6 Schematic cross-sectional view of the three-dimensional structure of the rotating disc, sliding ring and support disc of the present invention;

[0043] Figure 7 Schematic three-dimensional structure diagram of the clamping shaft of the present invention;

[0044] Figure 8 Schematic cross-sectional view of the three-dimensional structure of the fixing block of the present invention;

[0045] Figure 9 Schematic three-dimensional structure diagram of the sliding wheel of the present invention;

[0046] Figure 10 Schematic three-dimensional structure diagram of the plugging member of the present invention.

[0047] Wherein: 1 - base, 2 - rotating frame, 3 - hydraulic push rod, 4 - driving member, 5 - rotating disc, 6 - air inflation shaft, 7 - fixing frame, 8 - sliding ring, 9 - support disc, 10 - limiting rod, 11 - electric push rod, 12 - rotating housing, 13 - clamping shaft, 14 - motor, 15 - gear, 16 - toothed ring, 17 - first weight, 18 - pressing plate, 19 - fixed wheel, 20 - first rotating ring, 21 - fixing block, 22 - first fixed pulley, 23 - first connecting rope, 24 - second weight, 25 - sliding wheel, 26 - second rotating ring, 27 - second connecting rope, 28 - second fixed pulley, 29 - third weight, 30 - ventilation pipe, 31 - plugging member. Detailed implementation manners

[0048] The present invention will be further described below in conjunction with the accompanying drawings and embodiments.

[0049] The aerogel thermal insulation board flipping and winding device, as Figures 1-6As shown, it includes: a base 1, the base 1 is provided with a control terminal not shown in the figure, the base 1 is rotatably connected to a rotating frame 2, the base 1 is hinged with a hydraulic push rod 3 electrically connected to the control terminal, the telescopic end of the hydraulic push rod 3 is hinged to the rotating frame 2, and when the telescopic end of the hydraulic push rod 3 is contracted, it drives the right part of the rotating frame 2 to flip downward, thereby making the left part of the rotating frame 2 flip upward; a driving member 4, installed on the rotating frame 2, the driving member 4 is electrically connected to the control terminal, the output end of the driving member 4 is detachably connected to a rotating disk 5, the driving member 4 can be an electric motor, the output end of the driving member 4 is used to drive the rotating disk 5 to rotate, the rotating disk 5 is detachably connected to an inflatable shaft 6 connected to an external air supply device, and the external air supply device is electrically connected to the control terminal; a fixed frame 7, the left part of the rotating frame 2 is rotatably connected to a rotating part, the rotating part of the rotating frame 2 is fixedly connected to an electric roller electrically connected to the control terminal, and the fixed frame 7 is composed of a lower The electromagnetic slider and the upper fixed cover are composed of an electromagnetic slide rail electrically connected to the control terminal on the rotating part of the rotating frame 2, the electromagnetic slider of the fixed frame 7 is slidably connected to the electromagnetic slide rail of the rotating part of the rotating frame 2, and the fixed cover of the fixed frame 7 is used to limit the left end of the inflatable shaft 6; the support plate 9 is slidably connected to the inflatable shaft 6, and the support plate 9 is rotatably connected to the sliding ring 8. After the rotating frame 2 rotates 90° so that the left side of the support plate 9 faces upward, the support plate 9 supports the rolled aerogel insulation board (hereinafter referred to as the aerogel insulation board), the driving member 4 is fixedly connected to the limiting rod 10, the limiting rod 10 is used to limit the sliding ring 8, so that the sliding ring 8 cannot rotate when blocked by the limiting rod 10, the limiting rod 10 is fixedly connected to the electric push rod 11 electrically connected to the control terminal, and the telescopic end of the electric push rod 11 is used to push the sliding ring 8 to move so that the sliding ring 8 is free from the limit of the limiting rod 10.

[0050] like Figure 3 and Figure 7 As shown, it also includes: a rotating shell 12, which is slidably and rotatably connected to the air shaft 6 near the fixed frame 7; a clamping shaft 13, which is slidably connected to the rotating shell 12 and slidably connected to the sliding ring 8. After the material is rolled up, the clamping shaft 13 is used to close the material to reduce the probability of loose deformation of the material.

[0051] like Figure 5 and Figure 6As shown in the figure, it also includes: a motor 14, fixedly connected to the limit rod 10. The sliding ring 8 rotates in the opposite direction to the rotating disk 5. A gear 15 is fixedly connected to the output shaft of the motor 14. The motor 14 is electrically connected to the control terminal; a toothed ring 16, fixedly connected to the sliding ring 8 and meshing with the gear 15. The thickness of the gear 15 is greater than that of the toothed ring 16, so that after the sliding ring 8 drives the toothed ring 16 to slide left and right, the toothed ring 16 still meshes with the gear 15. Elastic members are fixedly connected between the rotating shell 12 and the sliding ring 8 and the clamping shaft 13 respectively. The two elastic members on the clamping shaft 13 are both compression springs. There is damping between the sliding ring 8 and the support disk 9, increasing the frictional resistance between the sliding ring 8 and the support disk 9. There is a gap between the support disk 9 and the rotating disk 5. When the rotating disk 5 and the air shaft 6 rotate, the support disk 9 does not rotate, and the sliding ring 8 fits against the rotating disk 5.

[0052] The specific working principle is as follows:

[0053] When an operator needs to use this device to wind the aerogel insulation board, the operator winds the material around the air shaft 6, and then turns on the external air supply device through the control terminal. The external air supply device injects gas into the air shaft 6. The air shaft 6 expands and generates pressure acting on the inner wall of the core to fix the material. The operator turns off the external air supply device through the control terminal and turns on the driving member 4. The output end of the driving member 4 drives the rotating disk 5 to rotate, and the rotating disk 5 drives the air shaft 6 to rotate, so that the material is wound layer by layer onto the air shaft 6. As the material is wound, the thickness of the wound material increases. When the wound material contacts and presses the clamping shaft 13, the clamping shaft 13 is pressed forward, and the two elastic members on the clamping shaft 13 are compressed and store energy.

[0054] When the material winding is completed, the operator turns off the driving member 4 through the control terminal and turns on the electric push rod 11. The telescopic end of the electric push rod 11 moves to the left. When the telescopic end of the electric push rod 11 moves into contact with the sliding ring 8, the telescopic end of the electric push rod 11 pushes the sliding ring 8 to move to the left (the sliding ring 8 drives the toothed ring 16 to move to the left. Since the thickness of the gear 15 is greater than that of the toothed ring 16, the toothed ring 16 still meshes with the gear 15), and the sliding ring 8 drives the support disk 9 to move to the left, so that the support disk 9 moves to press against the wound material, and the sliding ring 8 is no longer blocked by the limit rod 10.

[0055] When the sliding ring 8 and the support disk 9 move to be in contact with the wound material, the operator closes the electric push rod 11 through the control terminal and turns on the hydraulic push rod 3. The telescopic end of the hydraulic push rod 3 contracts and drives the rotating frame 2 to rotate 90° (during the rotation of the rotating frame 2, the control terminal turns on the external air supply device to extract the gas in the air shaft 6, so that the air shaft 6 no longer fixes the material core by expansion). The rotating frame 2 drives all the parts on it to rotate 90°, so that the axes of the rotating disk 5, the air shaft 6, the sliding ring 8, the support disk 9 and the material all change from the horizontal state to the vertical state. During the material winding process, the support disk 9 does not contact the material to reduce the friction on the side of the material during winding. After the material winding is completed and flipped, the bottom of the material is supported by the support disk 9 to reduce the probability of material deformation and downward accumulation, thereby ensuring the winding effect of the material.

[0056] After the material is flipped, the operator closes the hydraulic push rod 3 through the control terminal and turns on the electromagnetic slide rail of the rotating part of the rotating frame 2. The electromagnetic slider of the fixed frame 7 moves, so that the fixed frame 7 slides away from the air shaft 6, and the air shaft 6 is disconnected from the fixed frame 7. Then the operator turns on the electric roller of the rotating part of the rotating frame 2 and closes the fixed frame 7 through the control terminal, so that the rotating part of the rotating frame 2 drives the fixed frame 7 to rotate counterclockwise by 90°, and the upper part of the air shaft 6 is no longer blocked by the fixed frame 7.

[0057] After the material is flipped, the operator turns on the motor 14 through the control terminal. The output shaft of the motor 14 drives the toothed ring 16 to rotate through the gear 15. The toothed ring 16 drives the sliding ring 8 to rotate. The sliding ring 8 drives the clamping shaft 13 to rotate (the sliding ring 8 rotates in the opposite direction to the rotating disk 5, so that the clamping shaft 13 rotates in the opposite direction to the rotation direction of the material during winding). The clamping shaft 13 drives the rotating shell 12 to rotate. The clamping shaft 13 rotates around the wound material. At the same time, the two elastic members of the clamping shaft 13 gradually rebound, so that the material is wound more tightly to reduce the probability of the material loosening, thereby ensuring the winding effect of the material. After the material is wound more tightly by the rotation of the clamping shaft 13, the clamping shaft 13 is pressed against the tail of the material, and the operator closes the motor 14 through the control terminal.

[0058] After the motor 14 is turned off, the operator removes the rotating disk 5, takes off the rotating disk 5 and its parts, the air shaft 6, the slip ring 8, the support disk 9, and the wound material for storage. Then, the operator installs the next set of the rotating disk 5 and its parts, the air shaft 6, the slip ring 8, and the support disk 9, and turns on the electric roller and the electromagnetic slide rail of the rotating part of the rotating frame 2 through the control terminal. The fixed frame 7 slides back to its original position, the rotating part of the rotating frame 2 drives the fixed frame 7 to rotate back to its original position, the fixed frame 7 moves back to its original position, and the fixed frame 7 fixes the air shaft 6 again. Subsequently, the operator turns on the hydraulic push rod 3. The telescopic end of the hydraulic push rod 3 contracts and drives the rotating frame 2 to rotate back to its original position. Finally, the operator controls the telescopic end of the electric push rod 11 to return to its original position and turns off the electric push rod 11 through the control terminal. If it is necessary to wind the next set of materials, repeat the above steps to process the materials. When the operator stops using this device, turn off the power of this device and clean the device for the next use.

[0059] As Figure 3 shown in Figure 7 Figure, it further includes: a first weight 17, rotatably connected to the rotating shell 12 and slidably connected to the air shaft 6. After the rotating frame 2 rotates 90°, with the left side surface of the support disk 9 facing upward, the first weight 17 presses the wound material. The first weight 17 is a ring, and the axis of the first weight 17 is collinear with the axis of the air shaft 6, which is used to ensure the uniformity of the force exerted by each part of the first weight 17 on the material.

[0060] As Figure 3 shown in Figure 4 Figure, it further includes: a pressing plate 18, which has several pieces distributed circumferentially and is fixedly connected to the rotating shell 12. The right side surface of the rotating shell 12, the right side surface of the first weight 17, and the right side surface of the pressing plate 18 are coplanar. After the first weight 17 presses the material, the pressing plate 18 and the rotating shell 12 press the material synchronously.

[0061] The specific working principle is as follows:

[0062] When the material is turned over, the first weight 17 is affected by its own gravity and moves along the axis direction of the air shaft 6 towards the material. The first weight 17 drives all the pressing plates 18 to move towards the material. The first weight 17 and the pressing plates 18 press the material by their own gravity. The material is limited by the first weight 17 and the pressing plates 18 on the upper side, the support disk 9 on the lower side, and the clamping shaft 13 on the side, so that the wound material is more compact. Then, when the rotating part of the rotating frame 2 drives the fixed frame 7 to rotate counterclockwise by 90°, after the upper part of the air shaft 6 is no longer blocked by the fixed frame 7, the operator repeats the above steps to remove the rotating disk 5, and takes off the rotating disk 5, the air shaft 6, the slip ring 8, the support disk 9, the clamping shaft 13 and its parts, and the wound material for storage.

[0063] After the material is completely wound up, the operator uses a hoist to reinstall the next set of rotating disks 5, air shafts 6, slip rings 8, support disks 9, clamping shafts 13 and their components, and repeats the above steps to reset the device for the next use.

[0064] When the operator only needs to remove and store the wound material without disassembling the rotating disk 5 and its components, the operator disassembles the air shaft 6 and uses a hoist to extract the air shaft 6 upward. The first weight 17 and the pressing plate 18 press the material. The air shaft 6 is withdrawn from the core of the material. When the air shaft 6 is separated from the material, the operator takes away the material, collects and stores the material, and finally uses a hoist to reset the air shaft 6, so that the material is stored separately, reducing the usage amount of the air shaft 6, thereby reducing the costs of material winding and storage. And during the process of withdrawing the air shaft 6, the first weight 17 and the pressing plate 18 are used to press the material to reduce the probability of displacement of the material core, thereby ensuring the winding effect of the material.

[0065] As Figures 7-9 shown, it further includes: a fixed wheel 19, fixedly connected to the clamping shaft 13. The fixed wheel 19 is rotatably connected to a first rotating ring 20. When the first rotating ring 20 is in contact with the material and there is relative displacement between the first rotating ring 20 and the material, the first rotating ring 20 rotates to reduce the friction force on the surface of the material.

[0066] As Figures 7-9 shown, it further includes: a fixed block 21, fixedly connected to the left end of the clamping shaft 13. The fixed block 21 is rotatably connected to a first fixed pulley 22. A first connecting rope 23 is wound around the first fixed pulley 22; a second weight 24, fixedly connected to the right end of the first connecting rope 23. The clamping shaft 13 is provided with an L-shaped block for limiting the second weight 24. During the material winding process, the second weight 24 is placed on the L-shaped block of the clamping shaft 13 to prevent the second weight 24 from falling downward.

[0067] As Figure 8 shown in Figure 9 it further includes: a sliding wheel 25, slidably connected to the clamping shaft 13. The first connecting rope 23 passes through the fixed wheel 19 and the sliding wheel 25 in sequence. The sliding wheel 25 is located between the fixed wheel 19 and the second weight 24. The sliding wheel 25 is rotatably connected to a second rotating ring 26; a second connecting rope 27, fixedly connected to the sliding wheel 25; a second fixed pulley 28, rotatably connected to the fixed block 21. The second connecting rope 27 is wound around the second fixed pulley 28. The position of a section of the first connecting rope 23 is restricted by the sliding wheel 25, and the position of the sliding wheel 25 is changed by pulling the second connecting rope 27, thereby changing the restricted position of the first connecting rope 23. A third weight 29 is fixedly connected to the second connecting rope 27. The fixed block 21 is provided with a sliding chamber, and the third weight 29 slides in a sealed manner in the sliding chamber of the fixed block 21.

[0068] As Figure 9 shown in conjunction with Figure 10 Figure [not provided], it further includes: a ventilation pipe 30 fixedly connected to the fixed block 21 and communicating with the sliding chamber of the fixed block 21, and the ventilation pipe 30 is connected to an external air supply device; a plugging member 31 threadedly connected to the ventilation pipe 30. By rotating the plugging member 31, the length of the plugging member 31 inserted into the ventilation pipe 30 is changed to adjust the flow area of the ventilation pipe 30, thereby adjusting the discharge speed of the gas in the sliding chamber of the fixed block 21.

[0069] The specific working principle is as follows:

[0070] Before using this device, the operator pre-rotates the plugging member 31 to adjust the gas flow area of the ventilation pipe 30, thereby changing the gas resistance when the third heavy block 29 moves under the influence of gravity, adjusting the moving speed of the third heavy block 29, and adjusting the moving speed of the sliding wheel 25 to change the bundling density of the first connecting rope 23 on the material, and adaptively adjusting the bundling density according to the size of the wound material.

[0071] Before the material is flipped, the second heavy block 24 is placed on the L-shaped block of the clamping shaft 13. After the material is flipped, the second heavy block 24 falls downward under the influence of gravity onto the support plate 9.

[0072] During the process of the sliding ring 8 driving the clamping shaft 13 to rotate, the clamping shaft 13 drives the fixed wheel 19 and the sliding wheel 25 thereon to rotate. The second heavy block 24 does not rotate with the clamping shaft 13 under the influence of gravity. The sliding wheel 25 drives the first connecting rope 23 to rotate around the material, causing the length of the section of the first connecting rope 23 between the first fixed pulley 22 and the second heavy block 24 to increase. The first fixed pulley 22 rotates, and the first connecting rope 23 rotates around the material, causing the material to be tied up by the connecting rope. At the same time, the third heavy block 29 falls downward under the influence of gravity (since the air shaft 6 is flipped to a vertical axis state, at this time the third heavy block 29 is located above the ventilation pipe 30, and the third heavy block 29 will naturally fall downward. During the process of the third heavy block 29 driving the second connecting rope 27 to move, the third heavy block 29 squeezes the gas in the sliding chamber of the fixed block 21, causing the gas in the sliding chamber of the fixed block 21 to be discharged to the ventilation pipe 30), the third heavy block 29 drives the second connecting rope 27 to move, the second fixed pulley 28 rotates, and the second connecting rope 27 drives the sliding wheel 25 to move upward, causing the sliding wheel 25 to continuously move away from the second heavy block 24 during the process of rotating around the material. The sliding wheel 25 drives the first connecting rope 23 to move, causing the first connecting rope 23 to bundle the material in a spiral rising manner, bundling and fixing the wound material to reduce the probability of the material becoming loose during storage and transportation, and thus ensuring the stability of the wound material.

[0073] After the materials are bundled, the operator turns off the motor 14 through the control terminal, and then the operator repeats the above steps to disassemble the rotating disc 5. The operator removes the rotating disc 5, the air shaft 6, the slip ring 8, the support disc 9, the clamping shaft 13 and its parts, and the wound materials. If it is not necessary to disassemble the rotating disc 5, the slip ring 8, the support disc 9, the clamping shaft 13 and its parts, then first cut the part of the first connecting rope 23 between the first fixed pulley 22 and the second weight 24, tie and fix the first connecting rope 23 on the materials, and then repeat the above steps to only disassemble the air shaft 6, and draw out the air shaft 6 upward by the hoist. The first weight 17 and the pressing plate 18 press the materials, the air shaft 6 is drawn out from the core of the materials, and finally replace the first connecting rope 23, and repeat the above steps to reset the device.

[0074] In summary, the above are only the preferred embodiments of the present invention and are not intended to limit the protection scope of the present invention. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principle of the present invention shall be included in the protection scope of the present invention.

Claims

1. An aerogel insulation board reversing and winding device, characterized in that it includes: have: A base (1), the base (1) being rotatably connected to a rotating frame (2), the base (1) being hingedly connected to a hydraulic push rod (3), the telescopic end of the hydraulic push rod (3) being hingedly connected to the rotating frame (2); A driving member (4) is mounted on the rotating frame (2), the output end of the driving member (4) being detachably connected to a rotating disk (5), and the rotating disk (5) being detachably connected to an air shaft (6) connected to an external air supply device; a fixed frame (7), the rotating frame (2) being rotatably connected to a rotating portion, the fixed frame (7) being slidably connected to the rotating portion of the rotating frame (2), and the fixed frame (7) being used to limit the end of the inflatable shaft (6) away from the rotating disk (5); A support plate (9) is slidably connected to the inflatable shaft (6); the support plate (9) is rotatably connected to a sliding ring (8); the driving member (4) is fixedly connected to a limiting rod (10); the limiting rod (10) is used to limit the sliding ring (8); the limiting rod (10) is fixedly connected to an electric push rod (11); the telescopic end of the electric push rod (11) is used to push the sliding ring (8) to move, so that the sliding ring (8) is separated from the limit of the limiting rod (10); A rotating shell (12) is slidably and rotationally connected to the inflatable shaft (6) at a position close to the fixing frame (7); A clamping shaft (13) slidably connected to the rotating shell (12) and slidably connected to the sliding ring (8); A first weight block (17) is rotatably connected to the rotating shell (12) and is slidably connected to the inflatable shaft (6); A plurality of pressure plates (18) distributed in a circumferential direction and all fixedly connected to the rotating shell (12); A fixed wheel (19) fixedly connected to the clamping shaft (13), the fixed wheel (19) being rotatably connected to a first rotating ring (20); A fixed block (21) is fixedly connected to one end of the clamping shaft (13) close to the rotating shell (12); the fixed block (21) is rotatably connected to a first fixed pulley (22); a first connecting rope (23) is wound around the first fixed pulley (22); a second weight block (24) fixedly connected to an end of the first connection rope (23) away from the first fixed pulley (22), the clamping shaft (13) being provided with an L-shaped block for limiting the position of the second weight block (24); a sliding wheel (25) slidably connected to the clamping shaft (13); the first connecting rope (23) passes through the fixed wheel (19) and the sliding wheel (25) in sequence; the sliding wheel (25) is located between the fixed wheel (19) and the second weight block (24); and the sliding wheel (25) is rotatably connected to a second rotating ring (26); A second connecting rope (27) fixedly connected to the sliding wheel (25); a second fixed pulley (28) rotatably connected to the fixed block (21); the second connecting rope (27) is wound around the second fixed pulley (28); the second connecting rope (27) is fixedly connected to a third weight block (29); the fixed block (21) is provided with a sliding chamber; the third weight block (29) is sealed and slides in the sliding chamber of the fixed block (21); a vent pipe (30) fixedly connected to the fixed block (21) and in communication with the sliding chamber of the fixed block (21); the vent pipe (30) being in communication with an external air supply device; A blocking member (31) is threadedly connected to the ventilation pipe (30) and is used to adjust the flow area of ​​the ventilation pipe (30).

2. The aerogel insulation board flip-type winding device according to claim 1 is characterized in that: Also included are: A motor (14) is fixedly connected to the limiting rod (10), and an output shaft of the motor (14) is fixedly connected to a gear (15); The gear ring (16) is fixedly connected to the sliding ring (8) and meshes with the gear (15); the thickness of the gear (15) is greater than the thickness of the gear ring (16); and elastic members are fixedly connected between the rotating shell (12) and the sliding ring (8) and the clamping shaft (13).

3. The aerogel insulation board flip-type winding device according to claim 2 is characterized in that: There is damping between the sliding ring (8) and the supporting disk (9), there is a gap between the supporting disk (9) and the rotating disk (5), and the sliding ring (8) is in close contact with the rotating disk (5).

Citation Information

Patent Citations

  • Winding device of aluminum high-pressure electric wire

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