Anti-deviation high-aging-resistance composite geotechnical cloth slitting device

By designing a positioning and clamping mechanism and a cutting mechanism, the problem of positioning and clamping geotextile during the cutting process is solved, achieving precise cutting and efficient fixing of geotextile, and improving the working effect and practicality of the cutting device.

CN122008337APending Publication Date: 2026-05-12WUXI SHENHU TEXTILE MFG CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
WUXI SHENHU TEXTILE MFG CO LTD
Filing Date
2026-03-12
Publication Date
2026-05-12

AI Technical Summary

Technical Problem

Existing cutting devices are unable to accurately position and compress geotextiles, resulting in uneven cutting or inaccurate lengths, which affects work efficiency and practicality.

Method used

The positioning and clamping mechanism includes a positioning block, a servo cylinder, and a wear-resistant rubber pad. The positioning block is fixed by threaded holes and bolts, and the geotextile is accurately positioned and clamped by the servo cylinder pressure plate. The cutting mechanism achieves precise cutting.

Benefits of technology

This ensures that the geotextile does not shift or become inaccurate in length during the cutting process, improving the working efficiency and practicality of the cutting device and guaranteeing the cutting quality.

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Abstract

The invention discloses an anti-deviation high-aging-resistance composite geotechnical cloth slitting device, and relates to the technical field of geotechnical cloth slitting, the anti-deviation high-aging-resistance composite geotechnical cloth slitting device comprises a workbench, a positioning and pressing mechanism is arranged at the top of the workbench, and the positioning and pressing mechanism comprises a positioning stop block. Through the arrangement of the positioning and pressing mechanism, the effects of positioning the geotechnical cloth to a proper position and pressing and fixing the geotechnical cloth can be achieved, and in the using process, the situation that the length of the slit geotechnical cloth cannot reach the expectation due to the fact that the geotechnical cloth is difficult to position to the proper position can be avoided; according to the geotechnical cloth slitting device, the situation that the geotechnical cloth is likely to be slit to be long or short is avoided, the working effect of the slitting device is guaranteed, and the situation that the geotechnical cloth is slit irregularly or the slitting length of the geotechnical cloth is inaccurate due to the fact that the geotechnical cloth is difficult to press and fix and deviates when the geotechnical cloth is slit is also avoided, so that the working efficiency of the geotechnical cloth slitting device is improved, and the working efficiency of the geotechnical cloth slitting device is improved. And the practicability of the geotechnical cloth slitting device is ensured.
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Description

Technical Field

[0001] This invention relates to the field of geotextile cutting technology, specifically a high-aging-resistant composite geotextile cutting device that prevents displacement. Background Technology

[0002] The high anti-aging composite geotextile slitting device is an industrial equipment specifically designed to precisely slit wide high anti-aging composite geotextiles into narrow rolls or sheets of a specified width. Currently, most geotextile cutting devices struggle to position the geotextile correctly and to secure it firmly. During use, difficulty in positioning the geotextile correctly can lead to shorter cuts than expected, resulting in cuts that are either too long or too short, thus reducing the device's effectiveness. Furthermore, difficulty in securing the geotextile can cause it to shift during cutting, leading to uneven cuts or inaccurate lengths, further diminishing the device's practicality. Summary of the Invention

[0003] The purpose of this invention is to provide a high-aging-resistant composite geotextile cutting device that prevents displacement, so as to solve the problems mentioned in the prior art.

[0004] To achieve the above objectives, the present invention provides the following technical solution: a high-aging-resistant composite geotextile cutting device with anti-deviation capability, comprising a workbench, a positioning and pressing mechanism provided on the top of the workbench, the positioning and pressing mechanism comprising a positioning block, the positioning block provided on the top of the workbench, and an installation plate provided at the bottom of the positioning block, with threaded holes provided in both the interior of the installation plate and the interior of the workbench.

[0005] As a preferred technical solution, the inner wall of the threaded hole is provided with a bolt, and a first wear-resistant rubber pad is provided on one side of the positioning block, the shape and size of the first wear-resistant rubber pad matching the shape and size of the positioning block.

[0006] As a preferred technical solution, a support frame is provided on the top of the positioning block, and a servo cylinder is provided at the bottom of the support frame.

[0007] As a preferred technical solution, a pressure plate is provided at the bottom of the servo cylinder, and a second wear-resistant rubber pad is provided at the bottom of the pressure plate. The shape and size of the second wear-resistant rubber pad match the shape and size of the pressure plate.

[0008] As a preferred technical solution, the bottom of the workbench is provided with a base, the top of the base is provided with a fixing plate, and a winding device is provided on one side of the fixing plate.

[0009] As a preferred technical solution, a cutting mechanism is provided on one side of the workbench. The cutting mechanism includes a support plate. A rotating shaft is provided on the inner side of the support plate, and a cutting blade is provided on the outer wall of the rotating shaft.

[0010] As a preferred technical solution, a large gear is provided at one end of the rotating shaft, a protective box is provided outside the support plate, and a servo motor is provided inside the protective box.

[0011] As a preferred technical solution, the output shaft of the servo motor is connected to a motor shaft via a coupling, and a small gear is provided at one end of the motor shaft, which meshes with a large gear.

[0012] As a preferred technical solution, the operation method is as follows: The geotextile is wound up using a winding device. Then, the positioning block needs to be adjusted to a suitable position according to the cutting requirements. At this point, the bolt is rotated to unscrew it from the threaded hole, separating the mounting plate from the worktable. The positioning block is then moved to a suitable position, aligning the threaded hole in the mounting plate with the corresponding threaded hole in the worktable. The bolt is then rotated and inserted into the threaded hole, fixing the positioning block in the appropriate position on the worktable, thus completing the adjustment. After the positioning block is adjusted to the appropriate position, the geotextile is fed onto the worktable using the winding device. During the feeding process, the geotextile needs to be fed to a specific length, which requires positioning the geotextile in a suitable position and aligning it with the desired length. After positioning the geotextile in the appropriate location, press and fix it in place. At this time, the geotextile is positioned in the correct position by the blocking of the positioning blocks. The first wear-resistant rubber pad can prevent the geotextile from sliding inside the positioning blocks. Then, the servo cylinder is activated, causing it to extend and drive the pressure plate to descend, pressing and fixing the geotextile in place. The second wear-resistant rubber pad can ensure that the geotextile is not damaged, thus completing the positioning and pressing work. After the geotextile is positioned in the appropriate position and pressed and fixed, it can now be cut. At this time, the servo motor is activated, causing the motor shaft to rotate. The motor shaft drives the pinion gear to rotate, which in turn drives the large gear to rotate. The large gear drives the rotating shaft to rotate, which in turn drives the cutter to rotate 90 degrees, cutting the geotextile and completing the cutting work.

[0013] Compared with the prior art, the beneficial effects of the present invention are: 1. This invention, through the setting of a positioning and pressing mechanism, can achieve the functions of positioning the geotextile in a suitable position and pressing and fixing the geotextile. During use, by installing the positioning block in the required position, the positioning block positions the geotextile, and by activating the servo cylinder to drive the pressure plate to press and fix the geotextile, it can avoid the situation where the geotextile is not in the expected length due to difficulty in positioning the geotextile in a suitable position, and the geotextile may be cut too long or too short. This ensures the working effect of the cutting device and also avoids the situation where the geotextile is shifted during cutting due to difficulty in pressing and fixing the geotextile, resulting in uneven cutting or inaccurate cutting length. This ensures the practicality of the geotextile cutting device.

[0014] 2. The present invention, through the setting of the cutting mechanism, can achieve the function of cutting geotextile. During use, the servo motor is started to drive the cutter to rotate, so that the cutter cuts the geotextile. This can avoid the situation where the geotextile is cut with burrs or rough edges due to the unsmooth cutting process, resulting in poor quality geotextile. This ensures the cutting effect and practicality of the geotextile cutting device. Attached Figure Description

[0015] Figure 1 This is a schematic diagram of the three-dimensional appearance structure of the present invention; Figure 2 This is a schematic diagram of the positioning and clamping mechanism of the present invention; Figure 3 This is a schematic diagram of the connection structure between the positioning block and the mounting plate of the present invention; Figure 4 This is a schematic diagram of the slitting mechanism of the present invention; Figure 5 This is a schematic diagram of the connection structure between the motor shaft and the pinion of the present invention.

[0016] The components include: 1. Workbench; 2. Positioning and clamping mechanism; 201. Positioning stop; 202. Mounting plate; 203. Threaded hole; 204. Bolt; 205. First wear-resistant rubber pad; 206. Support frame; 207. Servo cylinder; 208. Pressure plate; 209. Second wear-resistant rubber pad; 3. Slitting mechanism; 301. Support plate; 302. Rotating shaft; 303. Cutting blade; 304. Large gear; 305. Servo motor; 306. Motor shaft; 307. Small gear; 308. Protective box; 4. Base; 5. Fixing plate; 6. Winding device. Detailed Implementation

[0017] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0018] Example: Figure 1 As shown, the present invention provides the following technical solution, including a workbench 1, a positioning and pressing mechanism 2 on the top of the workbench 1, a base 4 on the bottom of the workbench 1, a fixing plate 5 on the top of the base 4, a winding device 6 on one side of the fixing plate 5, and a slitting mechanism 3 on one side of the workbench 1.

[0019] When the slitting device is needed, the geotextile is first wound up by the winding device 6. Then, the positioning block 201 needs to be adjusted to a suitable position according to the slitting requirements. The positioning and pressing mechanism 2 is used to adjust the positioning block 201 to a suitable position according to the slitting requirements. After the positioning block 201 is adjusted to a suitable position, the geotextile is fed onto the workbench 1 by the winding device 6. During the feeding process, the geotextile needs to be fed to a specific length, which requires positioning the geotextile to a suitable position. After positioning to a suitable position, the geotextile is pressed and fixed. The positioning and pressing mechanism 2 is used to position the geotextile to a suitable position and press and fix it. After the geotextile is positioned to a suitable position and pressed and fixed, it can then be slitted by the slitting mechanism 3, thus completing the work.

[0020] like Figure 1 , Figure 2 and Figure 3 As shown, a positioning and clamping mechanism 2 is provided on the top of the workbench 1. The positioning and clamping mechanism 2 includes a positioning block 201. The positioning block 201 is provided on the top of the workbench 1. A mounting plate 202 is provided at the bottom of the positioning block 201. Threaded holes 203 are provided inside both the mounting plate 202 and the workbench 1. Bolts 204 are provided on the inner wall of the threaded holes 203. A first wear-resistant rubber pad 205 is provided on one side of the positioning block 201. The shape and size of the first wear-resistant rubber pad 205 match the shape and size of the positioning block 201. A support frame 206 is provided on the top of the positioning block 201. A servo cylinder 207 is provided at the bottom of the support frame 206. A pressure plate 208 is provided at the bottom of the servo cylinder 207. A second wear-resistant rubber pad 209 is provided at the bottom of the pressure plate 208. The shape and size of the second wear-resistant rubber pad 209 match the shape and size of the pressure plate 208.

[0021] When the slitting device is needed, the geotextile is first wound up by the winding device 6. Then, the positioning block 201 needs to be adjusted to a suitable position according to the slitting requirements. At this time, the bolt 204 is rotated to unscrew the threaded hole 203, separating the mounting plate 202 from the worktable 1. Then, the positioning block 201 is moved to a suitable position so that the threaded hole 203 in the mounting plate 202 aligns with the corresponding threaded hole 203 in the worktable 1. Then, the bolt 204 is rotated and inserted into the threaded hole 203, fixing the positioning block 201 in a suitable position on the worktable 1. After completing the adjustment work, during the feeding process, the geotextile needs to be fed to a specific length. This requires positioning the geotextile in a suitable position and then pressing it firmly in place. At this time, the geotextile is positioned in a suitable position by blocking the positioning block 201. The first wear-resistant rubber pad 205 can prevent the geotextile from sliding inside the positioning block 201. Then, the servo cylinder 207 is activated, causing the servo cylinder 207 to extend. The servo cylinder 207 drives the pressure plate 208 to descend, so that the pressure plate 208 presses and fixes the geotextile. The second wear-resistant rubber pad 209 can ensure that the geotextile will not be damaged, thus completing the positioning and pressing work.

[0022] like Figure 1 , Figure 4 and Figure 5 As shown, a slitting mechanism 3 is provided on one side of the workbench 1. The slitting mechanism 3 includes a support plate 301. A rotating shaft 302 is provided on the inner side of the support plate 301. A cutter 303 is provided on the outer wall of the rotating shaft 302. A large gear 304 is provided at one end of the rotating shaft 302. A protective box 308 is provided outside the support plate 301. A servo motor 305 is provided inside the protective box 308. The output shaft of the servo motor 305 is connected to a motor shaft 306 through a coupling. A small gear 307 is provided at one end of the motor shaft 306. The small gear 307 meshes with the large gear 304.

[0023] The process involves positioning the geotextile in the appropriate location and securing it firmly. Then, the geotextile can be cut. At this point, the servo motor 305 is activated, causing the motor shaft 306 to rotate. The motor shaft 306 then rotates the pinion gear 307, which in turn rotates the gear 304. The gear 304 then rotates the rotating shaft 302, which in turn rotates the cutter 303, causing the cutter 303 to rotate 90 degrees, thus cutting the geotextile and completing the cutting process.

[0024] The working principle of this invention is as follows: When the slitting device is needed, the geotextile is first wound up by the winding device 6. Then, the positioning block 201 needs to be adjusted to a suitable position according to the slitting requirements. At this time, the bolt 204 is rotated to rotate the bolt 204 out of the threaded hole 203, so that the mounting plate 202 is separated from the worktable 1. Then, the positioning block 201 is moved to a suitable position so that the threaded hole 203 in the mounting plate 202 is aligned with the corresponding threaded hole 203 in the worktable 1. Then, the bolt 204 is rotated and inserted into the threaded hole 203 to fix the positioning block 201 in a suitable position on the worktable 1, thereby completing the adjustment work. After the positioning block 201 is adjusted to a suitable position, the geotextile is fed onto the worktable 1 by the winding device 6. During the feeding process, the geotextile needs to be fed to a specific length, which requires positioning the geotextile in a suitable position. Next, the geotextile is pressed and fixed in place. At this time, the geotextile is positioned in the appropriate position by the blocking of the positioning block 201. The first wear-resistant rubber pad 205 can prevent the geotextile from sliding inside the positioning block 201. Then, the servo cylinder 207 is activated, causing the servo cylinder 207 to extend. The servo cylinder 207 drives the pressure plate 208 to descend, so that the pressure plate 208 presses and fixes the geotextile. The second wear-resistant rubber pad 209 can ensure that the geotextile will not be damaged, thus completing the positioning and pressing process. After the geotextile is positioned in the appropriate location and pressed firmly, it can be cut. At this time, the servo motor 305 is started, which drives the motor shaft 306 to rotate. The motor shaft 306 drives the pinion 307 to rotate, the pinion 307 drives the large gear 304 to rotate, the large gear 304 drives the rotating shaft 302 to rotate, and the rotating shaft 302 drives the cutter 303 to rotate, causing the cutter 303 to rotate 90 degrees, thus cutting the geotextile and completing the cutting work.

[0025] It will be apparent to those skilled in the art that the present invention is not limited to the details of the exemplary embodiments described above, and that the invention can be implemented in other specific forms without departing from its spirit or essential characteristics. Therefore, the embodiments should be considered in all respects as exemplary and non-limiting, and the scope of the invention is defined by the appended claims rather than the foregoing description. Thus, all variations falling within the meaning and scope of equivalents of the claims are intended to be included within the present invention. No reference numerals in the claims should be construed as limiting the scope of the claims.

Claims

1. A high-aging-resistant composite geotextile cutting device with anti-deviation feature, comprising a workbench (1), characterized in that: The top of the workbench (1) is provided with a positioning and pressing mechanism (2), which includes a positioning block (201). The top of the workbench (1) is provided with a positioning block (201), and the bottom of the positioning block (201) is provided with a mounting plate (202). Threaded holes (203) are opened in both the interior of the mounting plate (202) and the interior of the workbench (1).

2. The anti-deviation, high-aging-resistant composite geotextile cutting device according to claim 1, characterized in that: The inner wall of the threaded hole (203) is provided with a bolt (204), and a first wear-resistant rubber pad (205) is provided on one side of the positioning block (201). The shape and size of the first wear-resistant rubber pad (205) match the shape and size of the positioning block (201).

3. The anti-deviation, high-aging-resistant composite geotextile cutting device according to claim 2, characterized in that: The top of the positioning block (201) is provided with a support frame (206), and the bottom of the support frame (206) is provided with a servo cylinder (207).

4. The anti-deviation, high-aging-resistant composite geotextile cutting device according to claim 3, characterized in that: The bottom end of the servo cylinder (207) is provided with a pressure plate (208), and the bottom of the pressure plate (208) is provided with a second wear-resistant rubber pad (209). The shape and size of the second wear-resistant rubber pad (209) match the shape and size of the pressure plate (208).

5. The anti-deviation, high-aging-resistant composite geotextile cutting device according to claim 4, characterized in that: The bottom of the workbench (1) is provided with a base (4), the top of the base (4) is provided with a fixing plate (5), and a winding device (6) is provided on one side of the fixing plate (5).

6. The anti-deviation, high-aging-resistant composite geotextile cutting device according to claim 5, characterized in that: A slitting mechanism (3) is provided on one side of the workbench (1). The slitting mechanism (3) includes a support plate (301). A support plate (301) is provided on one side of the workbench (1). A rotating shaft (302) is provided on the inner side of the support plate (301). A cutter (303) is provided on the outer wall of the rotating shaft (302).

7. The anti-deviation, high-aging-resistant composite geotextile cutting device according to claim 6, characterized in that: A large gear (304) is provided at one end of the rotating shaft (302), a protective box (308) is provided on the outside of the support plate (301), and a servo motor (305) is provided inside the protective box (308).

8. The anti-deviation, high-aging-resistant composite geotextile cutting device according to claim 7, characterized in that: The output shaft of the servo motor (305) is connected to the motor shaft (306) via a coupling.

9. The anti-deviation, high-aging-resistant composite geotextile cutting device according to claim 8, characterized in that: One end of the motor shaft (306) is provided with a small gear (307), which meshes with the large gear (304).

10. The anti-deviation, high-aging-resistant composite geotextile cutting device according to claim 9, characterized in that: The operation method is as follows: The geotextile is wound up by the winding device (6), and then the positioning block (201) needs to be adjusted to a suitable position according to the cutting requirements. At this time, the bolt (204) is rotated to rotate the bolt (204) out of the threaded hole (203) so that the mounting plate (202) is separated from the worktable (1). Then the positioning block (201) is moved to a suitable position so that the threaded hole (203) in the mounting plate (202) is aligned with the threaded hole (203) in the worktable (1). Align the corresponding threaded holes (203), then rotate the bolt (204) into the threaded hole (203) and fix the positioning block (201) in a suitable position on the workbench (1) to complete the adjustment work. After adjusting the positioning block (201) to a suitable position, the geotextile is fed onto the workbench (1) by the winding device (6). During the feeding process, the geotextile needs to be fed to a specific length, which requires positioning the geotextile in a suitable position. After positioning it in a suitable position, the geotextile is pressed and tightened. Once the geotextile is stationary, it is positioned in the appropriate location by using the positioning block (201). The first wear-resistant rubber pad (205) prevents the geotextile from sliding inside the positioning block (201). Then, the servo cylinder (207) is activated, causing it to extend. The servo cylinder (207) drives the pressure plate (208) to descend, pressing and fixing the geotextile in place. The second wear-resistant rubber pad (209) ensures that the geotextile will not be damaged, thus completing the positioning and pressing work. After the geotextile is positioned in the appropriate location and pressed and fixed, it can be cut. At this time, the servo motor (305) is started, which drives the motor shaft (306) to rotate. The motor shaft (306) drives the pinion (307) to rotate, the pinion (307) drives the gear (304) to rotate, the gear (304) drives the rotating shaft (302) to rotate, and the rotating shaft (302) drives the cutter (303) to rotate, so that the cutter (303) rotates ninety degrees to cut the geotextile, thereby completing the cutting work.