Abrasive cloth slitting continuous deviation rectifying module integrated equipment
By working in concert with tension rollers and compensating guide rollers, the position of the abrasive cloth is monitored in real time and automatically adjusted, which solves the problems of offset and wear during the abrasive cloth slitting process and achieves high-quality and efficient slitting results.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- JIANGSU TIANYU GRINDING TECH CO LTD
- Filing Date
- 2025-04-30
- Publication Date
- 2026-04-24
AI Technical Summary
Uneven tension and wear during the slitting process of abrasive cloth can cause deviations in the slitting trajectory, resulting in product dimensions that do not meet standards, increasing production costs and reducing production efficiency.
The system employs tension rollers, primary, intermediate, and secondary compensating guide roller sets, and dynamic pressure sensors to monitor and automatically adjust the position of the abrasive cloth in real time. The primary compensating guide roller set provides initial correction, the intermediate compensating guide roller set adjusts the trajectory, and the secondary compensating guide roller set provides precise guidance to ensure slitting accuracy.
It improves the quality of abrasive cloth slitting, reduces the defect rate, increases production efficiency, lowers production costs, and enhances the company's competitiveness.
Smart Images

Figure CN224160143U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of abrasive cloth cutting and correction technology, specifically to an integrated device for continuous abrasive cloth cutting and correction modules. Background Technology
[0002] Abrasive cloth is widely used in industrial production, from metal surface polishing to wood processing. In the production process of abrasive cloth, slitting is one of the key steps. With the increasing demand for abrasive cloth in industrial production, the quality and efficiency of abrasive cloth slitting have become important factors affecting production efficiency.
[0003] Currently, there are many problems in the abrasive cloth slitting process. Due to the inherent characteristics of abrasive cloth material, it is easily affected by uneven tension during slitting. When the abrasive cloth roll is unwound, the tension difference in different parts will cause the abrasive cloth to deviate during slitting. In addition, the edges of the abrasive cloth may wear during production, transportation or storage. During slitting, these worn edges will cause the cutting trajectory of the slitting tool to deviate from the preset path, ultimately resulting in slitting trajectory deviation. Slitting trajectory deviation makes the dimensions of the abrasive cloth products non-standard, and a large number of products become defective. This not only increases production costs but also reduces production efficiency and affects the economic benefits of enterprises. To address this, we propose an integrated equipment for continuous correction module in abrasive cloth slitting. Utility Model Content
[0004] (a) Technical problems to be solved
[0005] To address the shortcomings of existing technologies, this utility model provides an integrated device for continuous correction module of abrasive cloth cutting, which solves the above-mentioned problems.
[0006] (II) Technical Solution
[0007] To achieve the above-mentioned objectives, this utility model provides the following technical solution: an integrated device for continuous correction module of abrasive cloth slitting, comprising a housing, a tension roller, a primary compensation guide roller group, a secondary compensation guide roller group, a support roller, and a slitting roller. The tension roller is provided on the axial side inside the housing and is rotatably connected to two opposite inner walls inside the housing. The support roller is provided inside the housing and is axially symmetrically distributed with the tension roller. A slitting roller is provided on the top of the support roller. The primary compensation guide roller group, the secondary compensation guide roller group, and the secondary compensation guide roller group are arranged in sequence between the tension roller and the support roller, with equidistant distribution and identical structure. The abrasive cloth body is inserted into the housing.
[0008] Preferably, the box body is a hollow cuboid structure, and the top and two opposite axial sides of the box body are open. The two opposite inner walls of the box body are provided with multiple mating holes that are rotatably connected to the two axial ends of the tension roller, support roller and slitting roller. The outer side wall of the box body is provided with three side blocks that are equidistantly distributed, and the side wall of the box body and the side block opposite to the side block are provided with a rotating connecting block. The top side of the rotating connecting block is provided with a mating hole that penetrates the interior of the box body.
[0009] Preferably, the side block has an adjustment groove inside, and two guide grooves are provided on the two opposite inner walls of the adjustment groove in an axisymmetrical manner, and a matching hole is provided at the bottom of the adjustment groove.
[0010] Preferably, the primary compensation guide roller assembly consists of three parts: a drive motor, a compensation roller assembly, and a roller with a built-in dynamic pressure sensor. The drive motor is connected to the bottom of the side block via an adapter bolt, and the output shaft of the drive motor passes through the corresponding adjustment groove via the second mating hole. The output shaft end of the drive motor is connected to the shaft end of the compensation roller assembly, and the two shaft ends of the roller with the built-in dynamic pressure sensor are rotatably connected to the first mating hole.
[0011] Preferably, the main body of the compensation roller assembly is a second roller with a built-in dynamic pressure sensor. The two shaft ends of the second roller with the built-in dynamic pressure sensor are respectively provided with a rotating block 1 and a rotating block 2. The side of the rotating block 2 away from the second roller with the built-in dynamic pressure sensor is rotatably connected to the rotating connecting block. The shaft end of the rotating block 1 away from the second roller with the built-in dynamic pressure sensor is provided with a slider. The slider is slidably connected to the inside of the adjusting groove. The side of the rotating block 1 corresponding to the slider is provided with a connecting hole. The side of the rotating block 1 corresponding to the second roller with the built-in dynamic pressure sensor is provided with an adjusting hole. The shaft end of the second roller with the built-in dynamic pressure sensor is provided with an adjusting rod, which is slidably connected to the inside of the adjusting hole. The shaft end of the second roller with the built-in dynamic pressure sensor is provided with a mating block, which is rotatably connected to the second roller with the rotating block.
[0012] Preferably, the slider has a threaded bushing inside, which is threadedly connected to the output shaft of the drive motor. The slider has two guide blocks that are symmetrically distributed on two opposite sidewalls outside, which are slidably connected to the guide groove. The slider sidewall also has a connecting block, which is rotatably connected to the connecting hole.
[0013] (III) Beneficial Effects
[0014] Compared with the prior art, this utility model provides an integrated device for continuous correction module of abrasive cloth cutting, which has the following beneficial effects:
[0015] 1. This integrated equipment for continuous correction of abrasive cloth cutting improves the quality of abrasive cloth cutting. Through the coordinated work of primary, intermediate, and secondary compensation guide roller groups, this equipment can effectively correct the deviation problem during the abrasive cloth cutting process. The primary compensation guide roller group initially corrects the deviation and reduces friction and wear, the intermediate compensation guide roller group adjusts the trajectory according to the characteristics of the abrasive cloth, and the secondary compensation guide roller group provides precise guidance. With the help of dynamic pressure sensors and automatic compensation structures, the position of the abrasive cloth is monitored and adjusted in real time, making the size of the cut abrasive cloth more accurate, greatly reducing the defect rate, and improving the quality of abrasive cloth cutting.
[0016] 2. This integrated equipment for continuous correction module in abrasive cloth slitting improves slitting production efficiency. The equipment achieves continuous correction during abrasive cloth slitting, reducing downtime for adjustment due to slitting trajectory deviation. The automatic compensation structure responds quickly and can rapidly adjust abrasive cloth offset, ensuring continuous slitting. Moreover, the rational design of each guide roller group makes the abrasive cloth slitting process smoother, eliminating the need for frequent manual intervention, thus improving production efficiency, reducing production costs, and enhancing the company's competitiveness in the abrasive cloth production field. Attached Figure Description
[0017] Figure 1 This is a schematic diagram of the integrated equipment for the continuous correction module of the abrasive cloth cutting of this utility model;
[0018] Figure 2 This is a cross-sectional schematic diagram of the integrated equipment for continuous correction module of abrasive cloth cutting according to this utility model;
[0019] Figure 3 This is a schematic diagram of the housing of this utility model;
[0020] Figure 4 This is a schematic diagram of the primary compensation guide roller assembly of this utility model;
[0021] Figure 5 This is a schematic diagram of the compensation roller assembly of this utility model.
[0022] In the diagram: 1. Housing; 2. Tension roller; 3. Primary compensation guide roller group; 4. Intermediate compensation guide roller group; 5. Secondary compensation guide roller group; 6. Support roller; 7. Slitting roller; 8. Abrasive cloth body; 9. Rotating connecting block; 10. Mating hole one; 11. Side block; 12. Adjusting slide groove; 13. Guide slide groove; 14. Mating hole two; 15. Drive motor; 16. Compensating roller assembly; 17. Roller one with built-in dynamic pressure sensor; 18. Slider; 19. Rotating block one; 20. Roller two with built-in dynamic pressure sensor; 21. Rotating block two; 22. Guide block; 23. Connecting block one; 24. Connecting hole; 25. Adjusting slide hole; 26. Adjusting rod; 27. Mating block; 28. Threaded bushing. Detailed Implementation
[0023] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0024] Please see Figure 1-5 A continuous correction module integrated device for abrasive cloth slitting includes a housing 1, a tension roller 2, a primary compensation guide roller group 3, a secondary compensation guide roller group 4, a secondary compensation guide roller group 5, a support roller 6, and a slitting roller 7. The tension roller 2 is axially mounted inside the housing 1 and is rotatably connected to two opposite inner walls of the housing 1. The support roller 6 is located inside the housing 1, and its position is axially symmetrical to that of the tension roller 2. The slitting roller 7 is located on top of the support roller 6. Between the tension roller 2 and the support roller 6, the primary compensation guide roller group 3, the secondary compensation guide roller group 4, and the secondary compensation guide roller group 5 are sequentially arranged at equal intervals and with identical structures. The abrasive cloth body 8 is inserted into the interior of the housing 1. The two ends of the housing 1 are equipped with winding devices to wind up the abrasive cloth body 8. The primary compensation guide roller group 3 provides initial guidance and correction for the abrasive cloth. Its surface is made of a special wear-resistant material to reduce friction between the abrasive cloth and the guide rollers and reduce edge wear of the abrasive cloth caused by friction. The intermediate compensation guide roller group further adjusts the running trajectory of the abrasive cloth. It can be flexibly adjusted according to the width and thickness of the abrasive cloth to ensure that the abrasive cloth is in the best running state before slitting. The secondary compensation guide roller group 5 provides final precise guidance for the abrasive cloth when it approaches the slitting cutter to ensure the accuracy of slitting.
[0025] Furthermore, the box body 1 has a hollow cuboid structure, and the top and two opposite axial ends of the box body 1 are open. The two opposite inner walls of the box body 1 are provided with multiple mating holes that are rotatably connected to the two shaft ends of the tension roller 2, support roller 6 and slitting roller 7. The outer side wall of the box body 1 is provided with three side blocks 11 that are equidistantly distributed, and the side wall of the box body 1 opposite to the side blocks 11 is provided with a rotating connecting block 9. The top side of the rotating connecting block 9 is provided with a mating hole 10 that penetrates the interior of the box body 1. The box body 1 provides support for the internal components.
[0026] Furthermore, the side block 11 has an adjustment groove 12 inside, and two guide grooves 13 are symmetrically distributed on two opposite inner walls inside the adjustment groove 12. The bottom of the adjustment groove 12 has a mating hole 14. The side block 11 is the adjustment site of the automatic compensation structure. The sliding cooperation between the two guide grooves 13 and the two guide blocks 22 effectively ensures the stability of the compensation adjustment.
[0027] Furthermore, the primary compensation guide roller assembly 3 consists of three parts: a drive motor 15, a compensation roller assembly 16, and a roller 17 with a built-in dynamic pressure sensor. The drive motor 15 is connected to the bottom of the side block 11 via an adapter bolt, and the output shaft of the drive motor 15 passes through the matching hole 14 into the adjusting groove 12. The output shaft end of the drive motor 15 is connected to the shaft end of the compensation roller assembly 16, and the two shaft ends of the roller 17 with the built-in dynamic pressure sensor are rotatably connected to the matching hole 10. The dynamic pressure sensor inside the roller 17 and the compensation roller assembly 16 can monitor the pressure distribution of the abrasive cloth body 8 on the guide roller in real time. By analyzing the pressure data, it can be determined whether the abrasive cloth body 8 has shifted. Once the shift of the abrasive cloth body 8 is detected, the dynamic pressure sensor will immediately transmit the signal to the control system. The control system will then feed back and control the drive motor 15 to rotate. The drive motor 15 controls the compensation roller assembly 16 to shift its angle, thereby achieving automatic compensation.
[0028] Furthermore, the main body of the compensation roller assembly 16 is a second roller 20 with a built-in dynamic pressure sensor. The two ends of the second roller 20 are respectively provided with a first rotating block 19 and a second rotating block 21. The side of the second rotating block 21 facing away from the second roller 20 is rotatably connected to the rotating connecting block 9. The shaft end of the first rotating block 19 facing away from the second roller 20 is provided with a slider 18, which is slidably connected to the inside of the adjusting groove 12. A connecting hole 24 is opened on the side of the first rotating block 19 corresponding to the slider 18. One side of the roller 20 with built-in dynamic pressure sensor is provided with an adjustment slide hole 25. The shaft end of the roller 20 with built-in dynamic pressure sensor is provided with an adjustment rod 26, which is slidably connected to the inside of the adjustment slide hole 25. The shaft end of the roller 20 with built-in dynamic pressure sensor away from the adjustment rod 26 is provided with a mating block 27, which is rotatably connected to the rotating block 21. When automatic compensation is performed, the roller 20 with built-in dynamic pressure sensor rotates at an angle. At this time, the adjustment rod 26 can slide slightly inside the adjustment slide hole 25, so that the automatic compensation is stable and smooth.
[0029] Furthermore, the slider 18 is provided with a threaded bushing 28 inside, which is threadedly connected to the output shaft of the drive motor 15. The slider 18 is provided with two guide blocks 22 that are symmetrically distributed on two opposite side walls outside, which are slidably connected to the guide groove 13. The slider 18 is also provided with a connecting block 23 on the side wall, which is rotatably connected to the connecting hole 24.
[0030] Structural Description:
[0031] Box 1: Box 1 is the supporting frame of the equipment. It is a hollow cuboid with openings on the top and sides and mating holes inside for installing various components, providing stable support for the operation of the equipment.
[0032] Tension roller 2: Tension roller 2 is installed on the axial side inside the housing 1 and rotates with the two opposite inner walls of the housing to play a preliminary tension adjustment role on the abrasive cloth body 8, ensuring smooth cutting;
[0033] Primary compensation guide roller group 3: The primary compensation guide roller group 3 is composed of drive motor 15, etc. It can initially guide and correct deviation. Its surface is wear-resistant, reducing the friction and wear of sandpaper, and laying the foundation for subsequent slitting.
[0034] Intermediate compensation guide roller group 4: The intermediate compensation guide roller group 4 can be adjusted according to the width and thickness of the abrasive cloth to further correct the running trajectory of the abrasive cloth and ensure that the abrasive cloth reaches the best state before slitting;
[0035] Secondary compensation guide roller group 5: The secondary compensation guide roller group 5 plays a role when the abrasive cloth approaches the slitting roller 7, and accurately guides the abrasive cloth to ensure the slitting accuracy of the abrasive cloth.
[0036] Support roller 6: Support roller 6 is symmetrically distributed with tension roller 2 and is located inside box 1. It is used to support the abrasive cloth body 8 and cooperate with other components to complete the slitting work.
[0037] Slitting roller 7: Located on top of support roller 6, slitting roller 7 is a key component for slitting the abrasive cloth body 8 and determines the actual slitting effect of the abrasive cloth.
[0038] Abrasive cloth body 8: Abrasive cloth body 8 is a cutting device that is cut into products that meet the requirements through the coordinated action of various components;
[0039] Rotary connecting block 9: Rotary connecting block 9 has a mating hole 10 on the top of the side wall of the housing 1, which rotatably engages with the rotating block 21 of the compensation roller assembly 16 to assist in achieving automatic compensation;
[0040] Mating Hole 10: Mating Hole 10 penetrates the housing 1 and rotates with the two shaft ends of the built-in dynamic pressure sensor roller 17, providing installation and rotation support for it;
[0041] Side blocks 11: Side blocks 11 are evenly distributed on the outer side wall of the housing 1, and have structures such as adjustment grooves 12 inside, which are the adjustment places of the automatic compensation structure.
[0042] Adjustment slide 12: The adjustment slide 12 is inside the side block 11 and is used to accommodate components such as the slider 18, providing space for the movement of components during automatic compensation;
[0043] Guide groove 13: Guide groove 13 is symmetrically distributed on the inner wall of adjustment groove 12 and slides with guide block 22 to ensure the stability of compensation adjustment;
[0044] Matching hole 2 14: Matching hole 2 14 is located at the bottom of the adjusting slide 12. The output shaft of the drive motor 15 passes through it and connects to the compensation roller assembly 16.
[0045] Drive motor 15: Drive motor 15 is installed at the bottom of side block 11 and controls the rotation of compensation roller assembly 16 through output shaft to realize automatic compensation function;
[0046] Compensating roller assembly 16: The compensating roller assembly 16 is based on roller 20 with built-in dynamic pressure sensor, and together with other components, it adjusts and compensates for the angle of the offset sandpaper.
[0047] Built-in dynamic pressure sensor roller 17: Built-in dynamic pressure sensor roller 17 can monitor the pressure distribution of the abrasive cloth, determine whether the abrasive cloth is deviated and transmit signals.
[0048] Slider 18: Slider 18 slides in the adjusting groove 12. It has a threaded bushing 28 inside that cooperates with the output shaft of the drive motor 15, and a guide block 22 outside.
[0049] Rotating block 19: Rotating block 19 is located at the shaft end of roller 20 with built-in dynamic pressure sensor, and is connected to slider 18 and adjusting rod 26 to assist in compensation action;
[0050] Built-in dynamic pressure sensor roller 20: Built-in dynamic pressure sensor roller 20 is the main body of compensation roller assembly 16, which monitors pressure and rotates to adjust during automatic compensation;
[0051] Rotating Block 21: Rotating Block 21 is located at the other shaft end of the built-in dynamic pressure sensor roller 20 and rotates in conjunction with the rotating connecting block 9 to ensure smooth compensation;
[0052] Guide block 22: Guide blocks 22 are symmetrically distributed on the side wall of slider 18 and slide in cooperation with guide groove 13 to ensure stable movement of slider 18;
[0053] Connecting block 23: Connecting block 23 is located on the side wall of slider 18 and rotates in conjunction with the connecting hole 24 of rotating block 19 to enhance structural stability;
[0054] Connection hole 24: Connection hole 24 is on rotating block 19 and rotates with connecting block 23 to make the connection of each component more stable and work together.
[0055] Adjusting slide hole 25: The adjusting slide hole 25 is on the rotating block 19 and slides with the adjusting rod 26 to ensure stable and smooth operation during automatic compensation;
[0056] Adjusting rod 26: The adjusting rod 26 cooperates with the adjusting slide hole 25 and slides slightly when the built-in dynamic pressure sensor roller 20 rotates to assist in compensation;
[0057] Matching block 27: Matching block 27 is located at one end of the built-in dynamic pressure sensor roller 20 and rotates in conjunction with rotating block 21 to ensure the continuity of compensation action;
[0058] Threaded bushing 28: The threaded bushing 28 is inside the slider 18 and is threadedly engaged with the output shaft of the drive motor 15 to convert the motor rotation into slider movement.
[0059] Working Principle: The abrasive cloth slitting and continuous correction module integrated equipment is correctly installed according to the diagram. During operation, the abrasive cloth body 8 is inserted into the housing 1, and both ends are wound up by the winding device. The abrasive cloth first passes through the tension roller 2, which rotates with the two opposing inner walls of the housing 1, providing initial tension adjustment. Subsequently, the abrasive cloth passes sequentially through the primary compensation guide roller group 3, the intermediate compensation guide roller group 4, and the secondary compensation guide roller group 5. The built-in dynamic pressure sensor roller 17 in the primary compensation guide roller group 3 and the dynamic pressure sensor inside the compensation roller assembly 16 monitor the pressure distribution of the abrasive cloth body 8 on the guide rollers in real time. Once a deviation of the abrasive cloth is detected, the signal is immediately transmitted to the control system. The control system then feeds back and controls the drive motor 15 to rotate. The output shaft of the drive motor 15 passes through the mating hole 14 into the adjusting groove 12, and its shaft end is connected to the shaft end of the compensation roller assembly 16. The output shaft of the drive motor 15 is also threadedly engaged with the threaded bushing 28 inside the slider 18. When the drive motor 15 rotates, it drives the slider... The slider 18 slides within the adjusting groove 12. The guide block 22 outside the slider 18 slides in cooperation with the guide groove 13, ensuring the smooth movement of the slider 18. The rotating block 19 at the shaft end of the built-in dynamic pressure sensor roller 20 of the compensation roller assembly 16 is connected to the slider 18. The rotating block 21 rotates in cooperation with the rotating connecting block 9. When automatic compensation is performed, the built-in dynamic pressure sensor roller 20 rotates at an angle, and the adjusting rod 26 slides slightly inside the adjusting sliding hole 25, making the automatic compensation stable and smooth, thereby providing initial guidance and correction for the abrasive cloth. The intermediate compensation guide roller group 4 is flexibly adjusted according to the width and thickness of the abrasive cloth to further adjust the running trajectory of the abrasive cloth, ensuring that the abrasive cloth is in the best running state before slitting. The secondary compensation guide roller group 5 provides final precise guidance for the abrasive cloth when it approaches the slitting roller 7, ensuring the slitting accuracy. The support roller 6 provides support for the abrasive cloth, and the slitting roller 7 completes the slitting of the abrasive cloth. Throughout the process, all components work together to achieve continuous correction of the abrasive cloth slitting.
[0060] Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the appended claims and their equivalents.
Claims
1. An integrated device for continuous correction module of abrasive cloth slitting, comprising a housing (1), a tension roller (2), a primary compensation guide roller group (3), a secondary compensation guide roller group (4), a secondary compensation guide roller group (5), a support roller (6), and a slitting roller (7), characterized in that: The box (1) is equipped with a tension roller (2) on the axial side inside. The tension roller (2) is rotatably connected to the two opposite inner walls inside the box (1). The box (1) is equipped with a support roller (6). The support roller (6) and the tension roller (2) are axially symmetrically distributed. The top of the support roller (6) is equipped with a slitting roller (7). The tension roller (2) and the support roller (6) are sequentially equipped with a primary compensation guide roller group (3), a secondary compensation guide roller group (4) and a secondary compensation guide roller group (5) that are equidistantly distributed and have the same structure. The sandpaper body (8) is inserted into the box (1) accordingly.
2. The integrated device for continuous correction module of abrasive cloth cutting according to claim 1, characterized in that: The box (1) is a hollow cuboid structure, and the top of the box (1) and the two opposite axial sides are open. The two opposite inner walls of the box (1) are provided with multiple mating holes that are rotatably connected to the two shaft ends of the tension roller (2), the support roller (6) and the slitting roller (7). The outer side wall of the box (1) is provided with three side blocks (11) that are equidistantly distributed. The side wall of the box (1) and the side block (11) opposite to the side wall are provided with a rotating connecting block (9). The top side of the rotating connecting block (9) is provided with a mating hole (10) that penetrates the inside of the box (1).
3. The integrated device for continuous correction module of abrasive cloth cutting according to claim 2, characterized in that: The side block (11) has an adjustment groove (12) inside. The two opposite inner walls of the adjustment groove (12) have two guide grooves (13) that are symmetrically distributed. The bottom of the adjustment groove (12) has a matching hole (14).
4. The integrated equipment for continuous correction module of abrasive cloth cutting according to claim 1, characterized in that: The primary compensation guide roller group (3) consists of three parts: a drive motor (15), a compensation roller assembly (16), and a built-in dynamic pressure sensor roller (17). The drive motor (15) is connected to the bottom of the side block (11) by an adapter bolt. The output shaft of the drive motor (15) passes through the matching hole (14) and enters the adjustment groove (12). The output shaft end of the drive motor (15) is connected to the shaft end of the compensation roller assembly (16). The two shaft ends of the built-in dynamic pressure sensor roller (17) are connected to the matching hole (10) in a rotatable manner.
5. The integrated device for continuous web-correcting module of abrasive cloth cutting according to claim 4, characterized in that: The main body of the compensation roller assembly (16) is a roller 2 (20) with a built-in dynamic pressure sensor. The two shaft ends of the roller 2 (20) with the built-in dynamic pressure sensor are respectively provided with a rotating block 1 (19) and a rotating block 2 (21). The side of the rotating block 2 (21) away from the roller 2 (20) is rotatably connected to the rotating connecting block (9). The shaft end of the rotating block 1 (19) away from the roller 2 (20) with the built-in dynamic pressure sensor is provided with a slider (18). The slider (18) is slidably connected to the inside of the adjusting groove (12). Next, a connecting hole (24) is provided on the side of the rotating block (19) corresponding to the slider (18), and an adjusting sliding hole (25) is provided on the side of the rotating block (19) corresponding to the built-in dynamic pressure sensor roller (20). An adjusting rod (26) is provided at the shaft end of the built-in dynamic pressure sensor roller (20) and is slidably connected to the adjusting sliding hole (25). A mating block (27) is provided at the shaft end of the built-in dynamic pressure sensor roller (20) away from the adjusting rod (26). The mating block (27) is rotatably connected to the rotating block (21).
6. The integrated device for continuous web-correcting module of abrasive cloth cutting according to claim 5, characterized in that: The slider (18) is provided with a threaded bushing (28) inside, which is threadedly connected to the output shaft of the drive motor (15). The slider (18) has two guide blocks (22) distributed symmetrically on two opposite sidewalls. The guide blocks (22) are slidably connected to the guide groove (13). The slider (18) is also provided with a connecting block (23) on the sidewall, which is rotatably connected to the connecting hole (24).