Conveying type cutting assembly for adhesive tape

By designing a conveyor-type cutting assembly, the problems of frequent traction and lifting during rubber strip cutting were solved, enabling continuous feeding and efficient cutting of rubber strips, thus improving production efficiency and cutting quality.

CN223493393UActive Publication Date: 2025-10-31WEIXIAN SHENGTANG RUBBER & PLASTIC PROD CO LTD
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Patent Information

Application Number
CN202423118669.9
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-17
Publication Date
2025-10-31
Estimated Expiration
2034-12-17

AI Technical Summary

Technical Problem

The existing process of cutting rubber strips requires frequent re-traction and fixation, and the rubber strips are prone to curling up during the cutting process, affecting the cutting quality and efficiency.

Method used

A conveyor-type cutting assembly was designed, comprising a traction assembly, a cutting assembly, and a limiting assembly. The assembly achieves continuous automatic traction and conveying of the adhesive strip through belt clamping. The cutting assembly has vertical lifting and lateral flipping functions, and the limiting assembly prevents the adhesive strip from sticking up.

Benefits of technology

It enables continuous feeding and cutting of rubber strips, improving production efficiency and cutting quality, preventing rubber strips from curling up during the cutting process, and simplifying the operation process.

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Abstract

The utility model relates to the technical field of cutting assemblies, in particular to a conveying type cutting assembly for adhesive tape. The conveying type cutting assembly for the adhesive tape comprises a machine frame and further comprises traction assemblies, a cutting assembly and a limiting assembly, the traction assemblies are symmetrically arranged on the upper portion of the machine frame, continuous and automatic traction and conveying operation is conducted on the adhesive tape in a belt clamping mode, and the cutting assembly is arranged in the middle of the upper portion of the machine frame. According to the conveying type cutting set, the traction assembly and the cutting assembly are arranged and have the overhauling functions of vertical lifting cutting and lateral overturning, the cutting assembly is composed of a longitudinal moving part, a cutting part, an overturning part and a material pressing part, and the limiting assembly is arranged on one side of the cutting assembly and used for preventing the adhesive tape from tilting in the cutting process. Continuous feeding and cutting operation of the adhesive tape can be achieved through the traction assembly and the cutting assembly, and anti-warping fixing operation of the adhesive tape in the cutting process can be achieved through the material pressing piece and the limiting assembly.
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Description

Technical Field

[0001] This application relates to the field of cutting component technology, and in particular to a conveyor-type cutting component for adhesive strips. Background Technology

[0002] In the prior art, the cutting of rubber strips usually relies on a traditional traction machine in conjunction with a fixed cutting device. However, after each rubber strip is cut, subsequent rubber strips need to be re-tractioned and fixed, which is cumbersome and inefficient. In addition, the rubber strip is prone to warping under force during the cutting process, affecting the cutting quality and efficiency. In order to solve these problems, this application proposes a conveyor-type cutting assembly for rubber strips. Utility Model Content

[0003] The problem this application aims to solve is that existing rubber strip cutting usually relies on a traditional traction machine in conjunction with a fixed cutting device. As a result, after each rubber strip is cut, subsequent rubber strips need to be re-tractioned and fixed, and the rubber strips are prone to warping under stress during the cutting process.

[0004] To address the aforementioned technical problems, this application provides a conveyor-type cutting assembly for adhesive strips, including a frame, a traction assembly, a cutting assembly, and a limiting assembly. The traction assembly is symmetrically arranged on the upper part of the frame and uses a belt clamping method to continuously and automatically traction and convey the adhesive strip. The cutting assembly is arranged in the center of the upper part of the frame and has vertical lifting cutting and lateral flipping inspection functions. The cutting assembly consists of a longitudinal moving part, a cutting part, a flipping part, and a pressing part. The limiting assembly is arranged on one side of the cutting assembly to prevent the adhesive strip from curling up during the cutting process.

[0005] Because the conveyor-type cutting assembly of this application is designed with a traction component, a cutting component, and a limiting component, it can achieve continuous feeding and cutting of the rubber strip through the traction component and the cutting component, and can also achieve anti-warping and fixing of the rubber strip during the cutting process through the pressing component and the limiting component. This solves the problem that the cutting of rubber strips in the prior art usually relies on a traditional traction machine in conjunction with a fixed cutting device, so that after each rubber strip is cut, the subsequent rubber strips need to be re-tractioned and fixed, and the rubber strips are prone to warping under force during the cutting process. Attached Figure Description

[0006] Figure 1 This is a three-dimensional structural diagram of an embodiment.

[0007] Figure 2 This is a schematic diagram of the traction assembly.

[0008] Figure 3 This is a schematic diagram of the cutting component.

[0009] Figure 4 This is a schematic diagram of the structure of the cut part.

[0010] Figure 5 This is a schematic diagram of the pressure component.

[0011] Figure 6 This is a schematic diagram of the limit component.

[0012] Figure 7 This is a structural schematic diagram of the flipper.

[0013] Figure 8 This is a schematic diagram of the longitudinal moving component.

[0014] In the diagram: 1. Cutting assembly; 2. Limiting assembly; 3. Traction assembly; 4. Frame; 5. Casters; 6. Side belt; 7. Frame plate; 8. Roller; 9. Bottom belt; 10. Longitudinal movement component; 11. Cutting component; 12. Tilting component; 13. Pressing component; 14. Carrier plate; 15. Second motor; 16. Saw blade; 17. Spring rod; 18. Third slide rail; 19. Third slider; 20. Frame plate; 21. Third screw; 22. Pressure roller; 23. Support block; 24. First motor; 25. First screw; 26. Vertical plate; 27. Base; 28. Support arm; 29. ​​Second screw; 30. Second slide rail; 31. Second slider; 32. First slide rail; 33. First slider; 34. Seat plate. Detailed Implementation

[0015] The technical solutions of the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this application, and not all embodiments. Based on the embodiments of this application, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of this application. Example

[0016] This application relates to a conveyor-type cutting assembly for adhesive strips, such as... Figure 1-8As shown, the cutting assembly includes a frame 4, casters 5, a traction assembly 3, a cutting assembly 1, and a limiting assembly 2. The frame 4 serves as the basic support structure, and casters 5 are installed around the lower part of the frame 4 to facilitate the movement and arrangement of the entire assembly. The traction assembly 3 is symmetrically arranged on the upper part of the frame 4 and uses a belt clamping method to traction and convey the rubber strip. The traction assembly 3 can continuously and automatically convey the rubber strip to the cutting assembly 1 for cutting, improving production efficiency. The cutting assembly 1 is located in the center of the upper part of the frame 4 and has vertical lifting and lateral flipping functions. Through the vertical lifting operation, vertical cutting of the rubber strip is achieved; through the lateral flipping ... For ease of inspection and maintenance, the limiting component 2 is located on one side of the cutting component 1 to limit the rubber strip during the cutting process, preventing it from curling up. The limiting component 2 ensures cutting quality and efficiency. The rubber strip is placed on the traction component 3 and fixed to it by belt clamping. The traction component 3 is started to continuously and automatically transport the rubber strip to the cutting component 1. When the cutting component 1 is cutting, the limiting component 2 limits the rubber strip to ensure that it does not curl up during the cutting process. After the cutting is completed, the cutting component 1 can be vertically lifted and laterally flipped for easy inspection and maintenance.

[0017] The traction assembly 3 includes a conveyor belt, rollers 8, a support plate 7, and a first motor 24. The conveyor belt is the part of the traction assembly 3 that directly contacts the rubber strip. It includes a bottom belt 9 and side belts 6. The bottom belt 9 is arranged vertically and is used to contact the bottom surface of the rubber strip, mainly undertaking the task of conveying the rubber strip. The side belts 6 are arranged horizontally and are used to contact the sides of the rubber strip, playing a role in assisting in clamping and stabilizing the rubber strip. This double-sided contact design can ensure the stability and accuracy of the rubber strip during the conveying process. It is worth noting that the side belts 6 are non-powered structures, that is, they are not directly driven by the first motor 24. This design simplifies the structure, reduces energy consumption, and avoids excessive friction and damage to the sides of the rubber strip. The rollers 8 are the main supporting components of the conveyor belt. They are arranged on the upper part of the support plate 7 and are spaced at certain intervals. The surface of roller 8 is covered with a conveyor belt, which protects roller 8 from wear and ensures the smooth operation of the conveyor belt. The frame plate 7 is the basic structure of the traction assembly 3. It is arranged on the upper part of the frame 4. The main function of the frame plate 7 is to support roller 8 and conveyor belt, while ensuring the stability and rigidity of the entire traction assembly 3. The design of the frame plate 7 should take into account multiple factors such as strength, rigidity and weight to ensure that it can meet the requirements of long-term stable operation. The first motor 24 is the power source of the traction assembly 3. It is arranged inside the frame 4. The first motor 24 is connected to roller 8 through a transmission mechanism to drive roller 8 to rotate, thereby driving the conveyor belt. The selection of the first motor 24 should take into account multiple factors such as power, speed and torque to ensure that it can provide sufficient power to drive the entire traction assembly 3.

[0018] Working principle: In actual operation, when the first motor 24 starts, it drives the roller 8 to rotate through the transmission mechanism. The rotation of the roller 8 drives the conveyor belt to run. The bottom belt 9 is responsible for the main conveying task, conveying the rubber strip from the inlet end to the outlet end. At the same time, the side belt 6 plays an auxiliary role in clamping and stabilizing the rubber strip, ensuring that the rubber strip will not deviate or slip during the conveying process. This traction method has the characteristics of continuous, stable and efficient, which can greatly improve the cutting efficiency and quality of the rubber strip. At the same time, since the side belt 6 is a non-powered structure, it can reduce energy consumption and reduce frictional damage to the rubber strip.

[0019] The cutting assembly 1 consists of a longitudinal moving member 10, a cutting member 11, a flipping member 12, and a pressing member 13. The longitudinal moving member 10 includes a base 27, a vertical plate 26, a first motor 24, a first screw 25, a seat plate 34, a first slider 33, and a first slide rail 32. The base 27 is fixedly arranged on the upper part of the frame 4, serving as the supporting foundation for the entire longitudinal moving member 10. It has sufficient strength and stability to ensure that there will be no shaking or displacement during the cutting process. The vertical plate 26 is arranged on the upper part of the base 27 and can rotate around the base 27. This design allows the vertical plate 26 to be adjusted at an angle as needed, thus facilitating maintenance operations. The first motor 24 is vertically arranged on the top of the vertical plate 26, serving as the power source for driving the rotation of the first screw 25. Through precise control, the first motor 24 can achieve smooth and continuous rotation of the first screw 25. A screw 25 is arranged at the lower end of the first motor 24 and can rotate around the vertical plate 26. The first screw 25 is meshed with the base plate 34. When the first motor 24 drives the first screw 25 to rotate, the base plate 34 will move along the axial direction of the first screw 25. The base plate 34 is meshed with the first screw 25 and can move along its axial direction under the drive of the first screw 25. The movement of the base plate 34 is achieved by the guidance of the first slider 33 and the first slide rail 32, which ensures the smoothness and accuracy of the movement. The first slide rail 32 is symmetrically and vertically arranged on the upper part of the vertical plate 26, and the first slider 33 is arranged on the upper part of the first slide rail 32 and connected to the base plate 34. This structure allows the base plate 34 to slide smoothly along the first slide rail 32 when moving, further improving the cutting accuracy and stability.

[0020] The cutting component 11 includes a carrier plate 14, a second motor 15, and a saw blade 16. The carrier plate 14 is vertically and fixedly arranged on one side of the upright plate 26, providing a stable mounting base for the second motor 15 and the saw blade 16. Due to the vertical arrangement of the carrier plate 14, the entire cutting component 11 has a compact structure and is easy to operate and maintain. The second motor 15 is located at the upper end of the carrier plate 14, serving as the power source for driving the rotation of the saw blade 16. This motor provides stable and strong rotational power to the saw blade 16 through precise control and efficient energy conversion. The saw blade 16 is located at the lower end of the carrier plate 14 and is directly responsible for cutting the material. To improve cutting efficiency and accuracy, the saw blade 16 is made of high-strength, wear-resistant material. After meticulous cutting edge treatment, the size and shape of the saw blade 16 have also been optimized according to specific cutting requirements. The second motor 15 drives the saw blade 16 to rotate via a belt. This driving method is simple and reliable, effectively transmitting the rotational power of the motor to the saw blade 16, while also providing a certain degree of buffering and shock absorption, which helps to extend the service life of the saw blade 16 and the motor. In actual operation, after the longitudinal traverse member 10 moves the cutting piece 11 to the predetermined position, the second motor 15 starts and drives the saw blade 16 to rotate at high speed. As the saw blade 16 rotates, the material is quickly and accurately cut into the required shape and size. The entire cutting process is smooth and stable, greatly improving production efficiency and product quality.

[0021] The flipping component 12 includes a second screw 29, a second slider 31, a second slide rail 30, and a support arm 28. The second screw 29 is horizontally positioned on the upper part of the frame 4 and serves as the main driving component for the flipping operation. By rotating the second screw 29, the movement of the second slider 31 can be precisely controlled, thereby achieving fine-tuning of the angle of the upright plate 26. The second slider 31 is threadedly connected to the upper part of the second screw 29. This connection method allows the slider to move precisely linearly along the screw. When the screw rotates, the slider will move forward or backward according to the rotation direction of the thread. To ensure the stability and accuracy of the movement of the second slider 31, second slide rails 30 are symmetrically arranged on both sides of the second screw 29 and slidably connected to the second slider 31. These slide rails not only provide a smooth movement path for the slider but also ensure that the slider always maintains the correct position and orientation during movement. The support arm 28 is arranged on the upper part of the second slider 31 and connected to the upright plate 26. The design of the support arm 28 fully considers structural strength and... The design ensures stability and can withstand various forces and torques during the flipping process of the upright plate 26. Through the support and traction of the support arm 28, the flipping angle of the upright plate 26 can be precisely controlled. In actual operation, when the angle of the upright plate 26 needs to be adjusted, simply rotate the second screw 29, and the second slider 31 will move precisely along the screw and the second slide rail 30. As the slider moves, the support arm 28 will adjust its position accordingly, thereby driving the upright plate 26 to flip. This design not only achieves precise control of the angle of the upright plate 26 but also ensures the stability and reliability of the flipping process.

[0022] The pressure component 13 includes a third slide rail 18, a third slider 19, a frame plate 20, and a spring rod 17. The third slide rail 18 is symmetrically arranged on the upper part of the upright plates 26 on both sides of the saw blade 16. This symmetrical arrangement ensures the stability and balance of the pressure component 13. The slide rail is made of high-strength material, which can withstand greater pressure and friction, while ensuring smooth sliding of the slider. The third slider 19 is slidably connected to the third slide rail 18 and can move freely on the slide rail. The slider design takes into account wear resistance and precision requirements to ensure stable performance during long-term use. A vertically arranged frame plate 20 is connected to one side of the third slider 19. The frame plate 20 is made of a sturdy material and is used to directly contact and press the material. Its vertical arrangement allows the frame plate 20 to better... To adapt to the shape and size of the material and provide uniform clamping force, the upper part of the upright plate 26 is also equipped with a spring rod 17 connected to the frame plate 20. The spring rod 17 has good elasticity and can automatically adjust the position of the frame plate 20 according to the thickness of the material to ensure that the clamping force is moderate and uniform. This design not only protects the material from damage caused by excessive clamping, but also improves the cutting accuracy. It is particularly noteworthy that the lower end of the frame plate 20 is designed to be lower than the saw blade 16. This design allows the frame plate 20 to contact the rubber strip first during the cutting process, and automatically adjust the clamping force through the elastic extension and contraction function of the spring rod 17. In this way, when the saw blade 16 cuts, the material has been stably clamped, thereby greatly reducing vibration and deviation during the cutting process and improving cutting quality and efficiency.

[0023] The limiting component 2 includes a support block 23, pressure rollers 22, and a third screw 21. The support block 23 is stably arranged on the upper part of the frame 4, mainly serving to support the rubber strip during feeding. Its design fully considers load-bearing capacity and wear resistance to ensure stable performance during long-term use. The shape and size of the support block 23 are also carefully designed to adapt to rubber strips of different specifications and shapes, providing stable support. The third screw 21 is vertically arranged on the upper part of the support block 23. Its main function is to adjust and fix the position of the pressure rollers 22. The screw design allows for easy height adjustment to adapt to rubber strips of different thicknesses. At the same time, the strength and stability of the screw have been rigorously calculated and tested to ensure that it will not deform or loosen during processing. Multiple pressure rollers 22 are evenly and side by side arranged at the lower end of the third screw 21. These pressure rollers 22 directly contact the rubber strips with the pressure rollers 22. The rubber strips abut against each other, and the friction generated by rotation restricts the position of the rubber strips. The pressure rollers 22 are made of wear-resistant materials to extend their service life. At the same time, each pressure roller 22 can be independently adjusted to accommodate rubber strips of different widths and shapes. During the feeding process of the rubber strips, the support block 23 first plays a supporting role to ensure that the rubber strips can enter the processing area smoothly. Then, by adjusting the height of the third screw 21, the pressure rollers 22 are made to abut tightly against the rubber strips. When the rubber strips move during processing, the pressure rollers 22 will limit their range of movement through friction, thereby ensuring processing accuracy. In addition, the design of the limiting component 2 also takes into account ease of use and flexibility. Operators can easily adjust the positions of the support block 23, screw and pressure rollers 22 to accommodate rubber strips of different specifications and shapes. This design not only improves production efficiency, but also reduces operating difficulty and maintenance costs.

[0024] In use, the position of the cutting element 11 is adjusted by the longitudinal movement component 10 to ensure that the saw blade 16 is aligned with the predetermined cutting position of the rubber strip. If necessary, the angle of the upright plate 26 is adjusted by the flipping component 12 to facilitate cutting or equipment maintenance. The second motor 15 is started to drive the saw blade 16 to rotate. The sharpness and smoothness of the saw blade 16 are checked, ensuring that the lower end of the frame plate 20 is lower than the saw blade 16 so that it contacts the rubber strip before cutting. The clamping force of the frame plate 20 is automatically adjusted by the spring rod 17 according to the thickness of the rubber strip. The position of the support block 23 is adjusted to ensure stable support during rubber strip feeding. The third screw 21 is used to adjust... The height of the pressure roller 22 is adjusted so that it fits tightly against the rubber strip, thus limiting the movement of the rubber strip during the cutting process. The traction component 3 is activated to continuously and automatically transport the rubber strip to the position of the cutting component 1. When the rubber strip reaches the predetermined position, the second motor 15 of the cutting component 1 is activated, causing the saw blade 16 to start rotating for cutting. During the cutting process, the pressing component 13 will press the rubber strip tightly, and the limiting component 2 will ensure that the rubber strip does not lift or move. When the rubber strip is completely cut, the second motor 15 of the cutting component 1 is turned off, the rotation of the saw blade 16 is stopped, and the cut rubber strip is transported away by the traction component 3, while preparing for the next round of cutting.

[0025] Generally speaking, terms should be understood at least in part by their use in context. For example, at least in part by context, the term "one or more" as used in the text can be used to describe any feature, structure, or characteristic of the singular meaning, or a combination of features, structures, or characteristics of the plural meaning. Similarly, at least in part by context, terms such as "a" or "the" can also be understood to convey either singular or plural usage.

[0026] It should be readily understood that the terms “on,” “above,” and “on top of” in this disclosure should be interpreted in the broadest possible sense, such that “on” means not only “directly on something” but also “on something” with an intermediate feature or layer therebetween, and that “above” or “on top of” means not only “on top of something” but also “on top of something” without an intermediate feature or layer therebetween (i.e., directly on something).

[0027] Furthermore, for ease of explanation, spatially relative terms such as "below," "below," "under," "above," and "above" may be used to describe the relationship of one element or feature relative to other elements or features as shown in the figures. Spatially relative terms are intended to encompass different orientations of the device in use or operation other than those shown in the figures. The device may have other orientations (rotated 90 degrees or in other orientations), and the spatially relative descriptive terms used herein may be interpreted accordingly.

[0028] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of this application, and are not intended to limit them. Although this application has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that modifications can still be made to the technical solutions described in the foregoing embodiments, or equivalent substitutions can be made to some or all of the technical features therein. Such modifications or substitutions do not cause the essence of the corresponding technical solutions to deviate from the scope of the technical solutions of the embodiments of this application.

Claims

1. A conveyor-type cutting assembly for adhesive strips, comprising a frame, characterized in that: It also includes a traction component, a cutting component, and a limiting component. The traction component is symmetrically arranged on the upper part of the frame and uses a belt clamping method to continuously and automatically traction and convey the rubber strip. The cutting component is arranged in the middle position on the upper part of the frame and has vertical lifting and cutting and lateral flipping inspection functions. The cutting component consists of a longitudinal moving part, a cutting part, a flipping part, and a pressing part. The limiting component is arranged on one side of the cutting component to prevent the rubber strip from curling up during the cutting process.

2. The conveyor-type cutting assembly for adhesive strips according to claim 1, characterized in that: The traction assembly includes a conveyor belt, rollers, a frame, and a first motor. The conveyor belt is divided into a bottom belt and side belts. The bottom belt is arranged vertically to contact the bottom surface of the rubber strip, while the side belts are arranged horizontally to contact the side surface of the rubber strip. The rollers are arranged at intervals on the upper part of the frame, and the surface of the rollers is covered with the conveyor belt. The first motor is arranged inside the frame and connected to the rollers.

3. The conveyor-type cutting assembly for adhesive strips according to claim 1, characterized in that: The longitudinal moving component includes a base, a vertical plate, a first motor, a first screw, and a seat plate. The base is fixedly arranged on the upper part of the frame, the vertical plate is arranged on the upper part of the base and can rotate around the base, the first motor is vertically arranged on the top of the vertical plate, the first screw is arranged at the lower end of the first motor and can rotate around the vertical plate, and the seat plate is arranged on one side of the vertical plate and meshes with the first screw.

4. The conveyor-type cutting assembly for adhesive strips according to claim 3, characterized in that: The longitudinal sliding member includes a first slider and a first slide rail. The first slide rail is symmetrically and vertically arranged on the upper part of the upright plate, and the first slider is arranged on the upper part of the first slide rail and connected to the base plate.

5. The conveyor-type cutting assembly for adhesive strips according to claim 3, characterized in that: The cutting components include a carrier plate, a second motor, and a saw blade. The carrier plate is vertically and fixedly arranged on one side of the upright plate. The second motor is arranged at the upper end of the carrier plate, and the saw blade is arranged at the lower end of the carrier plate. The second motor drives the saw blade to rotate via a belt.

6. The conveyor-type cutting assembly for adhesive strips according to claim 1, characterized in that: The flipping component includes a second screw, a second slider, a second slide rail, and a support arm. The second screw is horizontally placed on the upper part of the frame, and the second slider is threadedly connected to the upper part of the second screw. The second slide rails, which are slidably connected to the second slider, are symmetrically arranged on both sides of the second screw. The support arm is arranged on the upper part of the second slider and connected to the vertical plate.

7. The conveyor-type cutting assembly for adhesive strips according to claim 5, characterized in that: The pressure component includes a third slide rail, a third slider, a frame plate, and a spring rod. The third slide rail is symmetrically arranged on the upper part of the vertical plates on both sides of the saw blade. The third slider is slidably connected to the surface of the third slide rail. A vertically arranged frame plate is connected to one side of the third slider. A spring rod connected to the frame plate is also arranged on the upper part of the vertical plate.

8. The conveyor-type cutting assembly for adhesive strips according to claim 1, characterized in that: The limiting assembly includes a support block, pressure rollers, and a third screw. The support block is stably arranged on the upper part of the frame, and the third screw is vertically arranged on the upper part of the support block. Multiple pressure rollers for abutting against the rubber strip are evenly arranged side by side at the lower end of the third screw.

9. The conveyor-type cutting assembly for adhesive strips according to claim 1, characterized in that: Casters are installed around the bottom of the frame.