Rotary cutting device for preparing bionic adsorption pad

The design of the X-shaped cross-connected sliding clamping mechanism and the gas spring rod lifting plate solves the problem of material deformation and displacement of the bionic adsorption pad during the cutting process, achieves high-precision and consistent cutting effects, and improves product quality.

CN223419688UActive Publication Date: 2025-10-10XUZHOU JULI NEW MATERIAL TECH CO LTD
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Patent Information

Application Number
CN202422938661.0
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-11-29
Publication Date
2025-10-10
Estimated Expiration
2034-11-29

AI Technical Summary

Technical Problem

The existing rotary cutting device for preparing biomimetic adsorption pads lacks a fitting clamping mechanism, which causes soft materials to be easily deformed and displaced during the cutting process, affecting the cutting accuracy and consistency.

Method used

It adopts an X-shaped cross-connected sliding clamping mechanism, which drives the clamping block to slide through the driving motor and rotating connecting rod to achieve close clamping. The gas spring rod is combined with the auxiliary lifting plate to improve the convenience of taking it.

Benefits of technology

It improves the stability of cutting processing and the accuracy and consistency of products, increases the handling operation space, and improves the quality of processed products.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of rotary cutting devices, in particular to a rotary cutting device for preparing a bionic adsorption pad, which is characterized in that a first sliding rod is slidably connected in a placement table, and a second sliding rod is slidably connected to one end, close to the first sliding rod, in the placement table; a rotating connecting rod is rotationally connected into the first sliding rod and the second sliding rod, the outer surface of the first sliding rod is sleeved with a first sliding seat, an output shaft of a driving motor rotates to drive the two second clamping blocks and the two first clamping blocks to slide away from the center of the device body, clamping on the bionic adsorption pad is loosened, and the taking operation space is enlarged; an output shaft of a driving motor rotates reversely, the process is carried out reversely, clamping operation is carried out, a tension spring assists two first clamping blocks to slide and reset during clamping operation, and bionic adsorption pad raw materials are attached and clamped through two second clamping blocks and the two first clamping blocks during cutting machining. Therefore, the precision and the consistency of the processed product are improved.
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Description

Technical Field

[0001] The utility model relates to the technical field of rotary cutting devices, in particular to a rotary cutting device for preparing a bionic adsorption pad. Background Art

[0002] Bionic adsorption pads are adsorption pad tools made of biomimetic materials, inspired by organisms that rely on highly adaptable feet to achieve full-space locomotion (such as geckos, beetles, and tree frogs). Rotary cutting devices for preparing bionic adsorption pads play a key role in the field of material processing. They are mainly used to precisely cut the raw materials of bionic adsorption pads to meet different specifications and shape requirements. Current devices generally require the following technologies in practical applications:

[0003] 1. High-precision rotary cutter ensures smooth and accurate cutting edges;

[0004] 2. Stable motor drive system, providing stable and controllable rotational power;

[0005] 3. Precision measuring and positioning device to ensure the accuracy of cutting size and position.

[0006] At present, in order to realize the function of the rotary cutting device for preparing the biomimetic adsorption pad, a variety of equipment, methods and methods of use are adopted.

[0007] For example, a Chinese patent discloses: a rotary cutting device, patent number: CN221391416U, which places the panel to be ring-cut on the lower mold body and then drives the upper mold mechanism to move downward through the hydraulic cylinder. The interaction between the upper mold core and the lower mold core can achieve convenient fixation of the panel. At the same time, as the upper mold mechanism continues to move downward, the panel can be ring-cut by the ring cutting knife, thereby avoiding the error caused by rotary cutting and ensuring the ring cutting quality of the panel.

[0008] However, there is a prominent problem with the above method, that is, when the above device is cutting the material, it is placed in the lower mold core for cutting, and there is a lack of a fitting clamping mechanism. Since the material texture of the bionic adsorption pad is relatively soft, the lack of a clamping mechanism makes the soft material prone to deformation and displacement during the cutting process, resulting in inaccurate cutting size and shape, affecting the accuracy and consistency of the product. Utility Model Content

[0009] In view of the deficiencies of the prior art, the utility model provides a kind of rotary cutting device for bionic adsorption pad preparation, solve the device when cutting processing to material is placed in lower mould core and is cut, lack of fitting clamping mechanism, since bionic adsorption pad its material texture is relatively soft, lack of clamping mechanism in cutting process, the material of soft texture is easy to deform and displace, leading to the size and shape of cutting are not accurate, affect the precision and consistency of product technical problem.

[0010] To achieve the above object, the utility model is realized by the following technical scheme:

[0011] A kind of rotary cutting device for bionic adsorption pad preparation, including placement table, first sliding rod is slidably connected in the placement table, second sliding rod is slidably connected in the placement table inside close to the end of first sliding rod, rotating connecting rod is rotatably connected in the first sliding rod and second sliding rod, first sliding seat is sleeved on the outer surface of first sliding rod, first sliding seat is slidably connected on the outer surface of second sliding rod, second sliding seat is sleeved on the outer surface of second sliding rod, second sliding seat is slidably connected on the outer surface of first sliding rod, two first clamping blocks are slidably connected on the upper end of placement table, second clamping block is fixedly connected on the upper end of first sliding rod and second sliding rod, the outer surface of two first clamping blocks and two second clamping blocks is respectively fitted, reset mechanism is sleeved on the side of two first clamping blocks close to each other, the reset mechanism includes two tension springs, two tension springs are sleeved on the side of two first clamping blocks close to each other.

[0012] Preferably, the lower end of the placement table is fixedly connected with a device body, and the device body is fixedly connected with a driving motor inside.

[0013] Preferably, the outer surface of the placement table is fixedly connected with a button box, and the upper end of the device body is fixedly connected with two hydraulic rods.

[0014] Preferably, the lower end of the two hydraulic rods is fixedly connected with a rectangular seat, and the rectangular seat is rotatably connected with a cutting knife inside.

[0015] Preferably, the lower end of the first sliding seat is fixedly connected with an inclined surface block, and the device body is slidably connected with a U-shaped block inside.

[0016] Preferably, the upper end of the U-shaped block is fixedly connected with a jacking plate, and the placement table is fixedly connected with two air spring rods inside.

[0017] Compared with the prior art, the utility model has the following beneficial effects:

[0018] 1. After the raw material is cut and processed, the button box connected to one end of the placement table is pressed to control the output shaft of the drive motor to rotate clockwise. The output shaft of the drive motor drives the rotating connecting rod to rotate. The rotating connecting rod pulls the first sliding rod and the second sliding rod to produce opposite sliding directions. The first sliding seat is tightly sleeved on the outer surface of the first sliding rod and slides on the outer surface of the second sliding rod. The second sliding seat is sleeved on the outer surface of the second sliding rod and slides on the outer surface of the first sliding rod, forming an X-shaped cross connection. The sliding of the first sliding rod and the second sliding rod drives the two second clamping blocks to slide toward a position away from the center of the device body. The shape of the joint between the two second clamping blocks and the two first clamping blocks is similar to a right triangle and is in an inclined state. When the two second clamping blocks slide away from each other, they will squeeze and push the two first clamping blocks to slide toward both sides. By driving the output shaft of the motor to rotate, the two second clamping blocks and the two first clamping blocks are driven to slide away from the center of the device body, loosening the clamping of the bionic adsorption pad and increasing the picking operation space. When cutting, the bionic adsorption pad raw material is clamped by the two second clamping blocks and the two first clamping blocks to ensure its stability during cutting, thereby improving the accuracy and consistency of the product after processing.

[0019] 2. When the first sliding seat slides to release the clamping operation, the first sliding seat drives the inclined block to slide toward the end close to the drive motor, and the inclined block slides away from the U-shaped block. At this time, the U-shaped block makes it fit the extrusion force, and the fitting parts of the inclined block and the U-shaped block are their inclined surfaces, as shown in the figure in the specification, the U-shaped block loses the limiting extrusion force. At this time, the output shaft of the sliding gas spring rod lifts the U-shaped block to slide upward, and the U-shaped block drives the lifting plate to lift the bionic adhesive pad after the cutting process. The bionic adhesive pad is pushed upward by the lifting plate when the clamping operation is released, thereby improving the convenience of the material picking and blanking operation. BRIEF DESCRIPTION OF THE DRAWINGS

[0020] The above description is only an overview of the technical solution of the present invention. In order to more clearly understand the technical means of the present invention and to implement it according to the contents of the specification, the following is a detailed description of the preferred embodiments of the present invention in conjunction with the accompanying drawings.

[0021] Figure 1 It is a three-dimensional structural diagram of the utility model;

[0022] Figure 2 This is an exploded view of the placement table connection of the utility model;

[0023] Figure 3 This is an exploded view of the first sliding rod connection of the present invention;

[0024] Figure 4 This is an exploded view of the first clamping block connection of the present invention;

[0025] Figure 5This is an exploded view of the jacking plate connection of the utility model.

[0026] Legend: 11. Placement table; 12. First sliding rod; 13. Second sliding rod; 14. First sliding seat; 15. Second sliding seat; 16. First clamping block; 17. Second clamping block; 18. Tension spring; 19. Device body; 21. Drive motor; 22. Button box; 23. Hydraulic rod; 24. Rectangular seat; 25. Cutting knife; 26. Inclined block; 27. U-shaped block; 28. Lifting plate; 29. ​​Gas spring rod; 31. Rotating connecting rod. DETAILED DESCRIPTION

[0027] The embodiment of the present application provides a rotary cutting device for preparing a bionic adsorption pad, which effectively solves the problem that the above-mentioned device places the material in the lower mold core for cutting during the cutting process, and lacks a fitting clamping mechanism. Since the material texture of the bionic adsorption pad is relatively soft, the lack of a clamping mechanism makes the soft material easily deformed and displaced during the cutting process, resulting in inaccurate cutting size and shape, affecting the accuracy and consistency of the product. After the raw material is cut and processed, the button box connected to one end of the placement table is pressed to control the clockwise rotation of the drive motor output shaft, and the drive motor output shaft drives the rotating connecting rod to rotate, and the rotating connecting rod pulls the first sliding rod and the second sliding rod to generate opposite sliding directions. The first sliding seat is tightly sleeved on the outer surface of the first sliding rod and slides on the outer surface of the second sliding rod. The sliding seat is sleeved on the outer surface of the second sliding rod and slides on the outer surface of the first sliding rod, forming an X-shaped cross-connection. The first sliding rod and the second sliding rod slide to drive the two second clamping blocks to slide toward a position away from the center of the device body. The shape of the joint between the two second clamping blocks and the two first clamping blocks is similar to a right triangle and is in an inclined state. When the two second clamping blocks slide away from each other, they will squeeze and push the two first clamping blocks to slide toward both sides. The output shaft of the driving motor is driven to rotate to drive the two second clamping blocks and the two first clamping blocks to slide away from the center of the device body, loosening the clamping of the bionic adsorption pad and increasing the picking operation space. When cutting, the bionic adsorption pad raw material is clamped by the two second clamping blocks and the two first clamping blocks to ensure its stability during cutting, thereby improving the accuracy and consistency of the product after processing.

[0028] Example: Figure 1 、 Figure 2 、 Figure 3 、 Figure 4 and Figure 5As shown, the technical solution in the embodiment of the present application is to effectively solve the technical problem that the above-mentioned device places the material in the lower mold core for cutting during the cutting process, lacks a fitting clamping mechanism, and the material of the bionic adsorption pad is relatively soft. The lack of a clamping mechanism makes the soft material easily deformed and displaced during the cutting process, resulting in inaccurate cutting size and shape, affecting the accuracy and consistency of the product. The overall idea is as follows: A rotary cutting device for preparing a bionic adsorption pad comprises a placing table 11, a first sliding rod 12 is slidably connected to the placing table 11, a second sliding rod 13 is slidably connected to the end of the placing table 11 close to the first sliding rod 12, and the first sliding rod 12 and the second sliding rod 13 are rotated inside. The first sliding rod 12 is movably connected to the outer surface of the first sliding rod 13, and the second sliding rod 13 is slidably connected to the outer surface of the second sliding rod 13. The second sliding seat 15 is slidably connected to the outer surface of the first sliding rod 12. The upper end of the placement table 11 is slidably connected to two first clamping blocks 16. The upper ends of the first sliding rod 12 and the second sliding rod 13 are fixedly connected to the second clamping blocks 17. The two first clamping blocks 16 are respectively fitted with the outer surfaces of the two second clamping blocks 17. The sides of the two first clamping blocks 16 that are close to each other are both sleeved with a reset mechanism. The reset mechanism includes two tension springs 18. The two tension springs 18 are both sleeved on the sides of the two first clamping blocks 16 that are close to each other. The lower end of the placement table 11 is fixedly connected to the device body 19, and the inside of the device body 19 is fixedly connected to the drive motor 21. The rotating connecting rod 31 is sleeved on the outer surface of the drive motor 21. After the raw material is cut and processed, the button box 22 connected to one end of the placement table 11 is pressed to control the output shaft of the drive motor 21 to rotate clockwise. The output shaft of the drive motor 21 drives the rotating connecting rod 31 to rotate, and the first sliding rod 12 and the second sliding rod 13 are pulled in opposite sliding directions by the rotating connecting rod 31. The first sliding seat 14 is tightly sleeved on the outer surface of the first sliding rod 12 and slides on the outer surface of the second sliding rod 13. The second sliding seat 15 is sleeved on the outer surface of the second sliding rod 13 and slides on the outer surface of the first sliding rod 12, forming an X shape. The two second clamping blocks 17 are connected by a fork, and the first sliding rod 12 and the second sliding rod 13 slide to drive the two second clamping blocks 17 to slide toward a position away from the center of the device body 19. The shape of the joint between the two second clamping blocks 17 and the two first clamping blocks 16 is similar to a right triangle and is in an inclined plane state. When the two second clamping blocks 17 slide away from each other, they squeeze and push the two first clamping blocks 16 to slide toward both sides. The output shaft of the driving motor 21 rotates to drive the two second clamping blocks 17 and the two first clamping blocks 16 to slide away from the center of the device body 19, loosening the clamping of the bionic adsorption pad and increasing the picking operation space. The output shaft of the driving motor 21 rotates in the opposite direction and the above process is reversed to perform the clamping operation. The tension spring 18 assists the two first clamping blocks 16 to slide and reset during the clamping operation.During the cutting process, the bionic adsorption pad material is clamped by the two second clamping blocks 17 and the two first clamping blocks 16 to ensure its stability during the cutting process, thereby improving the accuracy and consistency of the product after the processing.

[0029] The outer surface of the placement table 11 is fixedly connected to a button box 22, which is adapted to the drive motor 21. The upper end of the device body 19 is fixedly connected to two hydraulic rods 23, and the lower ends of the two hydraulic rods 23 are fixedly connected to a rectangular seat 24. The rectangular seat 24 is slidably connected to the inside of the device body 19, and a cutting knife 25 is rotatably connected inside the rectangular seat 24. The cutting knife 25 and the two second clamping blocks 17 are all on the same vertical line. The bionic adsorption pad is a biomimetic adsorption pad tool made of a biological bionic material with reference to a creature that relies on a highly adaptable foot to achieve full-space motion ability. Reference is made to the Chinese patent disclosure: A bionic adhesion device, application number: CN221921597U. When the bionic adhesion pad in the above-mentioned device is produced and processed, it needs to be rotated and cut into a cylindrical shape. When cutting the bionic adsorption pad, the raw material is usually divided into rectangles before cutting. The bionic adsorption pad raw material is placed in the rectangular groove formed by the two second clamping blocks 17 and the two first clamping blocks 16. The hydraulic rod 23 and the cutting knife 25 connected in the device body 19 are started. The output shaft of the hydraulic rod 23 drives the rectangular seat 24 to slide downward, and the cutting knife 25 rotates in the rectangular seat 24. The rectangular seat 24 includes a motor required to drive the cutting knife 25, which is driven by the motor to rotate for cutting. During the sliding and descending process of the rectangular seat 24, the cutting knife 25 rotates to cut the raw material into a cylindrical shape. After cutting is completed, the output shaft of the hydraulic rod 23 is reset to drive the rectangular seat 24 to slide upward and reset, and the cutting knife 25 stops rotating during the rising process. At this time, the bionic adsorption pad after cutting can be taken out for subsequent processing.

[0030] The lower end of the first sliding seat 14 is fixedly connected to a sloped block 26, and a U-shaped block 27 is slidably connected inside the device body 19. The upper end of the U-shaped block 27 is fixedly connected to a lifting plate 28. The lifting plate 28 and the two second clamping blocks 17 are all on the same vertical line. Two gas spring rods 29 are fixedly connected to the inside of the placement table 11. The two gas spring rods 29 are fixedly connected to the outer surface of the U-shaped block 27. When the first sliding seat 14 slides to release the clamping operation, the first sliding seat 14 drives the sloped block 26 to slide toward the end close to the drive motor 21, and the sloped block 26 slides away from the U-shaped block 27. At this time, the U-shaped block 27 makes it fit the extrusion force, and the fitting parts of the sloped block 26 and the U-shaped block 27 are their inclined surfaces, as shown in the attached manual. Figure 5As shown, the U-shaped block 27 loses the limiting extrusion force, at which time the gas spring rod 29 slides the output shaft upward to lift the U-shaped block 27, and the U-shaped block 27 drives the lifting plate 28 to lift the cut processed biomimetic adhesive pad upward, and the lifting plate 28 is upward to lift the biomimetic adhesive pad upward when the clamping operation is loosened, improving the convenience of the take-down operation. When the loading operation is performed, the biomimetic adhesive pad is placed on the lifting plate 28, the inclined block 26 slides to extrude the U-shaped block 27 downward, and the biomimetic adhesive pad slides downward and is clamped by the two second clamping blocks 17 and the two first clamping blocks 16.

[0031] In view of the problems in the prior art, the utility model provides a rotary cutting device for preparing a biomimetic adsorption pad. After the raw material is cut and processed, the button box 22 connected to one end of the placing table 11 is pressed to control the clockwise rotation of the output shaft of the driving motor 21. The output shaft of the driving motor 21 drives the rotary connecting rod 31 to rotate. The first sliding rod 12 and the second sliding rod 13 are pulled to generate opposite sliding directions by the rotary connecting rod 31. The first sliding seat 14 is tightly sleeved on the outer surface of the first sliding rod 12 and slides on the outer surface of the second sliding rod 13. The second sliding seat 15 is sleeved on the outer surface of the second sliding rod 13 and slides on the outer surface of the first sliding rod 12. They are cross-connected in an X shape. The first sliding rod 12 and the second sliding rod 13 slide to drive the two second clamping blocks 17 to slide away from the center of the device main body 19. The shapes of the two second clamping blocks 17 and the two first clamping blocks 16 are similar to right-angled triangles and are in a beveled state. When the two second clamping blocks 17 slide away from each other, they push the two first clamping blocks 16 to slide to the sides. The output shaft of the driving motor 21 rotates to drive the two second clamping blocks 17 and the two first clamping blocks 16 to slide away from the center of the device main body 19. The clamping of the biomimetic adsorption pad is loosened, the operation space is increased, and the stability of the biomimetic adsorption pad during cutting is ensured, thereby improving the precision and consistency of the processed product.

[0032] Working principle:

[0033] The first step is to use a bionic adsorption pad, which is a tool made of biomimetic materials, based on the ability of organisms to achieve full-space movement through their highly adaptable feet (such as geckos, beetles, tree frogs, etc.). Refer to the Chinese patent disclosure: A bionic adhesion device, application number: CN221921597U. When the bionic adhesion pad in the above-mentioned device is produced and processed, it needs to be rotated and cut into a cylindrical shape. When cutting the bionic adsorption pad, the raw material is usually divided into rectangles before cutting. The bionic adsorption pad raw material is placed in the rectangular groove formed by the two second clamping blocks 17 and the two first clamping blocks 16. The hydraulic rod 23 and the cutting knife 25 connected in the device body 19 are started. The output shaft of the hydraulic rod 23 drives the rectangular seat 24 to slide downward, and the cutting knife 25 rotates in the rectangular seat 24. The rectangular seat 24 includes a motor required to drive the cutting knife 25, which is driven by the motor to rotate for cutting. During the sliding and descending process of the rectangular seat 24, the cutting knife 25 rotates to cut the raw material into a cylindrical shape. After cutting is completed, the output shaft of the hydraulic rod 23 is reset to drive the rectangular seat 24 to slide upward and reset, and the cutting knife 25 stops rotating during the rising process. At this time, the bionic adsorption pad after cutting can be taken out for subsequent processing.

[0034] In the second step, after the raw material is cut and processed, the button box 22 connected to one end of the placement table 11 is pressed to control the output shaft of the drive motor 21 to rotate clockwise (the button box 22 is connected to the drive motor 21 and controls its start, stop and forward and reverse control), and the output shaft of the drive motor 21 drives the rotating connecting rod 31 to rotate (a rectangular groove is opened at one end of the placement table 11 close to the rotating connecting rod 31, as shown in the appendix of the manual). Figure 3 As shown, the rotating link 31 slides and rotates therein), the rotating link 31 pulls the first sliding rod 12 and the second sliding rod 13 to produce opposite sliding directions (the first sliding rod 12 and the second sliding rod 13 are arranged in parallel, and the first sliding rod 12 is lower than the second sliding rod 13 in the width direction, refer to the appendix of the manual Figure 3) The first sliding seat 14 is tightly sleeved on the outer surface of the first sliding rod 12 and slides on the outer surface of the second sliding rod 13. The second sliding seat 15 is sleeved on the outer surface of the second sliding rod 13 and slides on the outer surface of the first sliding rod 12, forming an X-shaped cross connection. The first sliding rod 12 and the second sliding rod 13 slide to drive the two second clamping blocks 17 to slide toward a position away from the center of the device main body 19. The shape of the joint between the two second clamping blocks 17 and the two first clamping blocks 16 is similar to a right triangle and is in an inclined state. When the two second clamping blocks 17 slide away from each other, they will squeeze and push the two first clamping blocks 16 to slide toward both sides. The output shaft of the driving motor 21 is rotated to drive the two second clamping blocks 17 and the two first clamping blocks 16 to slide away from the center of the device main body 19, and the imitation The biomimetic adsorption pad is clamped to increase the space for taking operation. The output shaft of the driving motor 21 rotates in the opposite direction and the above process is reversed to perform the clamping operation. The tension spring 18 assists the two first clamping blocks 16 to slide and reset during the clamping operation. When cutting, the two second clamping blocks 17 and the two first clamping blocks 16 are used to fit and clamp the biomimetic adsorption pad raw material to ensure its stability during cutting, thereby improving the accuracy and consistency of the product after processing. When the first sliding seat 14 slides to release the clamping operation, the first sliding seat 14 drives the inclined block 26 to slide toward the end close to the driving motor 21, and the inclined block 26 slides away from the U-shaped block 27. At this time, the U-shaped block 27 makes it fit the extrusion force, and the fitting parts of the inclined block 26 and the U-shaped block 27 are their inclined surfaces, as shown in the attached manual. Figure 5 As shown, the U-shaped block 27 loses its limiting extrusion force. At this time, the sliding output shaft of the gas spring rod 29 lifts the U-shaped block 27 upward to slide (the gas spring rod 29 is composed of a sealed cylinder, a piston, a piston rod and compressed gas. When the piston rod is pressed into the cylinder by an external force, the piston will compress the gas in the cylinder. The compressed gas generates a resistance force, and the magnitude of the resistance force is proportional to the compression stroke). The U-shaped block 27 drives the lifting plate 28 to lift the bionic adhesive pad after cutting upward. When the clamping operation is released, the bionic adhesive pad is pushed upward by the lifting plate 28, thereby improving the convenience of the material removal operation. When performing the loading operation, the bionic adhesive pad is placed on the lifting plate 28, and the inclined block 26 slides to squeeze the U-shaped block 27 to slide downward. The bionic adhesive pad slides downward and is clamped by the two second clamping blocks 17 and the two first clamping blocks 16.

[0035] Finally, it should be noted that the above embodiments are merely examples for the purpose of illustrating the present invention and are not intended to limit the embodiments. Those skilled in the art will readily appreciate that other variations or modifications based on the above description are possible. It is not necessary and impossible to provide an exhaustive list of all possible embodiments. However, any obvious variations or modifications arising therefrom remain within the scope of protection of the present invention.

Claims

1. A rotary cutting device for preparing a biomimetic adsorption pad, comprising a placement table (11), wherein a first sliding rod (12) is slidably connected to the placement table (11), characterized in that: The placement table (11) is slidably connected to one end of the first sliding rod (12) inside, and is rotatably connected to a second sliding rod (13). The first sliding rod (12) and the second sliding rod (13) are internally rotatably connected to a rotating connecting rod (31). The outer surface of the first sliding rod (12) is sleeved with a first sliding seat (14). The first sliding seat (14) is slidably connected to the outer surface of the second sliding rod (13). The outer surface of the second sliding rod (13) is sleeved with a second sliding seat (15). The second sliding seat (15) is slidably connected to the outer surface of the first sliding rod (12). The upper end of the placement table (11) is slidably connected to two first clamping blocks (16). The upper ends of the first sliding rod (12) and the second sliding rod (13) are fixedly connected to second clamping blocks (17). The two first clamping blocks (16) are respectively fitted with the outer surfaces of the two second clamping blocks (17). Wherein, the two first clamping blocks (16) are both sleeved with a reset mechanism on one side close to each other; The reset mechanism comprises two tension springs (18), and the two tension springs (18) are both sleeved on the sides of the two first clamping blocks (16) that are close to each other.

2. A rotary cutting device for preparing a biomimetic adsorption pad according to claim 1, characterized in that: The lower end of the placement table (11) is fixedly connected to a device body (19); The device body (19) is fixedly connected to a drive motor (21) inside, and the rotating connecting rod (31) is sleeved on the outer surface of the drive motor (21).

3. The rotary cutting device for preparing a biomimetic adsorption pad according to claim 2, characterized in that: A button box (22) is fixedly connected to the outer surface of the placement table (11), and the button box (22) is adapted to the drive motor (21); Wherein, two hydraulic rods (23) are fixedly connected to the upper end of the device body (19).

4. The rotary cutting device for preparing a biomimetic adsorption pad according to claim 3, characterized in that: The lower ends of the two hydraulic rods (23) are fixedly connected to rectangular seats (24), and the rectangular seats (24) are slidably connected inside the device body (19); A cutting knife (25) is rotatably connected inside the rectangular seat (24), and the cutting knife (25) and the two second clamping blocks (17) are all located on the same vertical line.

5. The rotary cutting device for preparing a biomimetic adsorption pad according to claim 4, characterized in that: The lower end of the first sliding seat (14) is fixedly connected to a ramp block (26); A U-shaped block (27) is slidably connected inside the device body (19).

6. The rotary cutting device for preparing a biomimetic adsorption pad according to claim 5, characterized in that: The upper end of the U-shaped block (27) is fixedly connected to a lifting plate (28), and the lifting plate (28) and the two second clamping blocks (17) are all on the same vertical line; Two gas spring rods (29) are fixedly connected inside the placement platform (11), and the two gas spring rods (29) are fixedly connected to the outer surface of the U-shaped block (27).

Citation Information

Patent Citations

  • Rotary cutting device

    CN221391416U

  • Bionic adhesion device

    CN221921597U