Cloth cutting machine capable of flattening cloth

By using a conveyor assembly that combines soft and hard brushes on the fabric cutting machine, the problem of wrinkles during fabric laying is solved, uniform tension of the fabric is achieved, and the accuracy and efficiency of cutting are improved.

CN223706086UActive Publication Date: 2025-12-23青岛盛驰包装制品有限公司
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Patent Information

Application Number
CN202520111699.2
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-01-17
Publication Date
2025-12-23
Estimated Expiration
2035-01-17

AI Technical Summary

Technical Problem

Fabrics with finer fibers or smoother surfaces are prone to wrinkling when laid on a fabric cutting machine, affecting the machine's accuracy and efficiency.

Method used

The conveyor assembly, which combines soft and hard brushes, uses a synchronous belt and gear system to drive the soft brushes to rotate and compress the fabric, maintaining uniform tension and preventing wrinkles.

Benefits of technology

It effectively prevents wrinkles from forming in the fabric during the cutting process, ensuring the accuracy and efficiency of the cutting.

✦ Generated by Eureka AI based on patent content.

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    Figure CN223706086U_ABST
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Abstract

The utility model belongs to the technical field of cutting machines, in particular to a cloth cutting machine capable of leveling cloth, which comprises a cutting machine main body and a workbench, the workbench is mounted on the upper side of the cutting machine main body, a conveying component is mounted on the inner side of the workbench, and the conveying component comprises a transmission roller, a transmission belt and a transmission motor. According to the cloth cutting machine capable of flattening the cloth, a driving motor is started, a banister brush moves to the position above a first synchronous wheel, then the cloth is laid on the upper side of a conveying belt of a conveying assembly, the driving motor is started again, the synchronous belt drives the banister brush to extrude the cloth, and meanwhile a tooth column drives the banister brush to rotate; the two sides of the cloth are pulled by the two banister brushes respectively, so that the cloth is not prone to wrinkling when laid on the conveying assembly, the cloth can keep uniform tension, the cloth is prevented from loosening or deforming, uneven cutting is avoided, and the accuracy and efficiency of the cloth cutting machine are not prone to being affected.
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Description

Technical Field

[0001] This utility model relates to the field of cutting machine technology, specifically a fabric cutting machine that can flatten fabric. Background Technology

[0002] A fabric cutting machine is a mechanical device used for the precise cutting of fabric or other textile materials. Fabric cutting machines can quickly complete the cutting task of fabric, greatly improving production efficiency. Especially in large-scale production, they can significantly shorten the production cycle. Moreover, fabric cutting machines can precisely cut fabric according to preset sizes, shapes, and patterns, ensuring that the size and shape of each piece of fabric meet the design requirements, reducing human error, reducing fabric scraps and waste, and lowering production costs.

[0003] Fabric cutting machines can cut fabric using high-energy laser beams. The cutting machine can precisely focus the laser beam and cut the fabric along a predetermined path under computer control. It can cut very complex patterns and produce smooth and neat cut edges. Because different types of fabrics have different softness, elasticity, and thickness, some fabrics with finer fibers or smooth surfaces are prone to wrinkling. When these fabrics are laid on the fabric cutting machine, wrinkles easily appear due to their softness and difficulty in restoring their shape, thus affecting the accuracy and efficiency of the cutting machine. Therefore, we propose a fabric cutting machine that can flatten the fabric. Utility Model Content

[0004] The purpose of this invention is to provide a fabric cutting machine that can flatten fabric, thereby solving the problem mentioned in the background art that some fabrics with fine fibers or smooth surfaces are prone to wrinkling when stacked on the fabric cutting machine, thus affecting the accuracy and efficiency of the cutting machine.

[0005] To achieve the above objectives, this utility model provides the following technical solution: a fabric cutting machine capable of flattening fabric, comprising a cutting machine body and a worktable. The worktable is mounted on the upper side of the cutting machine body, and a conveying assembly is mounted on the inner side of the worktable. The conveying assembly includes a transmission roller, a transmission belt, and a transmission motor. A cutting main box is mounted on the cutting machine body via a guide rail. Support plates are fixed on both sides of the worktable, and a drive motor is mounted on the outer side of the support plates. The inner side of the support plates is movably connected to a gear 1 via a bearing, and a gear 1 on one side of the support plate is fixed to the output end of the drive motor. The gear 1 and a gear 2 are engaged with each other, and the gear 2 is movably connected to the support plates via a bearing.

[0006] Preferably, one side of gear one and one side of gear two are fixed to synchronous pulley one, synchronous pulley one is connected to one end of synchronous belt, and the other end of synchronous belt is connected to synchronous pulley two.

[0007] Preferably, the second synchronous pulley is movably connected to the support plate via a bearing, the two first synchronous pulleys are fixed together by a shaft, the two second synchronous pulleys are connected together by a shaft, and the outer side of the synchronous belt is movably connected to the gear column via a bearing.

[0008] Preferably, the two toothed columns are connected to a soft brush, the toothed columns are in contact with the toothed plate, and the toothed plate is connected to the inner side of the support plate through a connecting plate.

[0009] Preferably, the two ends of the transmission shaft of the conveying component are fixed to the large gear, and the large gear is movably connected to the worktable through bearings.

[0010] Preferably, one end of the large gear is engaged with one end of the toothed belt, and the other end of the toothed belt is engaged with the small gear.

[0011] Preferably, the pinion is movably connected to the worktable via a bearing, and the two pinions are fixed to the hard brush.

[0012] Preferably, gear one and gear two are meshed together, and synchronous pulley one and synchronous pulley two are meshed together with the synchronous belt.

[0013] Preferably, the large gear and small gear are meshed with the toothed belt, and the hard brush is pressed against the transmission belt of the conveying assembly.

[0014] Compared with the prior art, the beneficial effects of this utility model are as follows: This fabric cutting machine that can flatten the fabric, when the drive motor is started, moves the soft brush above the synchronous wheel one, and then lays the fabric on the upper side of the conveyor belt of the conveyor component. The drive motor is started again, and the synchronous belt drives the soft brush and the fabric to squeeze. At the same time, the toothed column drives the soft brush to rotate, so that the two soft brushes pull the two sides of the fabric respectively, so that the fabric is less likely to wrinkle when laid on the conveyor component, so that the fabric can maintain uniform tension, avoid the fabric from loosening or deforming, and thus avoid uneven cutting, thereby not affecting the accuracy and efficiency of the fabric cutting machine. Attached Figure Description

[0015] Figure 1 This is a schematic diagram of the main body, worktable, and connecting structure of the cutting machine of this utility model;

[0016] Figure 2 This is a schematic diagram of the support plate, drive motor and their connection structure of this utility model;

[0017] Figure 3 This utility model Figure 2 A magnified view of the structure at point A in the middle;

[0018] Figure 4 This utility model Figure 2 A magnified schematic diagram of the structure at point B in the middle.

[0019] In the diagram: 1. Main body of the cutting machine; 101. Workbench; 102. Conveying assembly; 103. Cutting main box; 2. Support plate; 201. Drive motor; 202. Gear 1; 203. Gear 2; 204. Synchronous pulley 1; 2041. Synchronous pulley 2; 205. Synchronous belt; 206. Gear column; 207. Soft brush; 208. Gear plate; 209. Connecting plate; 210. Large gear; 211. Gear belt; 212. Small gear; 213. Hard brush. Detailed Implementation

[0020] 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.

[0021] Please see Figures 1-4This utility model provides a technical solution: a fabric cutting machine capable of flattening fabric, comprising a cutting machine body 1 and a worktable 101. The worktable 101 is mounted on the upper side of the cutting machine body 1, and a conveying assembly 102 is mounted on the inner side of the worktable 101. The conveying assembly 102 includes a transmission roller, a transmission belt, and a transmission motor. A cutting main box 103 is mounted on the cutting machine body 1 via a guide rail. Support plates 2 are fixed on both sides of the worktable 101, and a drive motor 201 is mounted on the outer side of the support plates 2. The inner side of the support plates 2 is movable via a bearing and a gear 202. The gear 202 on one side of the support plate 2 is fixed to the output end of the drive motor 201. Gear 202 is connected to gear 203, which is movably connected to the support plate 2 via bearings. One side of gear 202 and one side of gear 203 are fixed to synchronous pulley 204. Synchronous pulley 204 is connected to one end of synchronous belt 205, and the other end of synchronous belt 205 is connected to synchronous pulley 2041. Synchronous pulley 2041 is movably connected to the support plate 2 via bearings. The two synchronous pulleys 204 are fixed together by a shaft. Two synchronous pulleys 2041 are connected by a shaft. The outer side of the synchronous belt 205 is movably connected to the toothed column 206 via a bearing. The two toothed columns 206 are connected to a soft brush 207. The toothed column 206 is in contact with the toothed plate 208. The toothed plate 208 is connected to the inner side of the support plate 2 via a connecting plate 209. The two ends of the transmission shaft of the conveying assembly 102 are fixed to the large gear 210, and the large gear 210 is movably connected to the worktable 101 via a bearing. One end of the large gear 210 is in contact with the toothed belt 211, and the other end of the toothed belt 211 is in contact with the small toothed belt 211. Wheels 212 are connected to each other, and pinion 212 is movably connected to workbench 101 through bearings. The two pinions 212 are fixed to hard brush 213. Gear 1 202 and gear 2 203 are meshed. Synchronous pulley 1 204 and synchronous pulley 2 2041 are meshed with synchronous belt 205. Large gear 210 and pinion 212 are meshed with toothed belt 211. Hard brush 213 is pressed against the transmission belt of conveying assembly 102. Tooth column 206 is meshed with toothed plate 208. Soft brush 207 is pressed against the transmission belt of conveying assembly 102.

[0022] In specific implementation, according to Figures 1-4When the fabric cutting machine cuts the fabric, the drive motor 201 is started first, causing the output end of the drive motor 201 to drive gear 202 to rotate. Gear 202 meshes with gear 203, causing gear 202 to drive gear 203 to rotate. At this time, gear 202 and gear 203 rotate simultaneously, but in opposite directions, causing the two synchronous pulleys 204 to rotate in opposite directions. Then, synchronous pulleys 204 and 2041 mesh with the synchronous belt 205, causing the two synchronous belts 205 to move in opposite directions. This causes the synchronous belts 205 to drive the soft brush 207 from below the synchronous pulley 204 to the same position via the toothed column 206. Below the second pulley 2041, the two soft brushes 207 move away from each other during this process. Then, the soft brushes 207 are moved from below the second pulley 2041 to above the first pulley 204, and during this process, the two soft brushes 207 move closer to each other. Then, the fabric is laid on the upper side of the conveyor belt of the conveyor assembly 102. The drive motor 201 is started again, causing the synchronous belt 205 to drive the soft brushes 207 from above the first pulley 204 to below the first pulley 204 via the toothed column 206. This causes the synchronous belt 205 to squeeze the soft brushes 207 against the fabric, and at the same time, the synchronous belt 205 drives the toothed column 206 to mesh with the toothed plate 208. When the synchronous belt 205 drives the toothed column 206 to move along the toothed plate 208, the toothed column 206 and the toothed plate 208 mesh together. The 8 teeth are meshed together, allowing the toothed column 206 to drive the soft brush 207 to rotate. The toothed column 206 rotates upwards in the direction of the soft brush 207's movement, allowing the soft brush 207 to move and rotate simultaneously. The soft brush 207 then presses against the transmission belt of the conveyor assembly 102, compressing the fabric. This causes the two soft brushes 207 to pull on both sides of the fabric, preventing wrinkles when the fabric is laid on the conveyor assembly 102. When the conveyor assembly 102 conveys the fabric, its drive motor is activated, causing the drive roller to rotate. This drive roller in turn rotates the large gear 210, which in turn rotates the small gear 210. Gear 212 meshes with toothed belt 211, allowing large gear 210 to drive small gear 212 to rotate via toothed belt 211. This causes small gear 212 to drive hard brush 213 to rotate, and the rotation direction of hard brush 213 is opposite to the movement direction of the contact point of the conveyor belt of conveyor assembly 102. The hard brush 213 then presses against the conveyor belt of conveyor assembly 102, allowing it to sweep away residual fabric debris from the conveyor belt of conveyor assembly 102, making the conveyor belt of conveyor assembly 102 easier to clean. Additionally, two soft brushes 207 flatten the fabric, maintaining uniform tension and preventing fabric loosening or deformation, thus avoiding uneven cutting and minimizing impact on the accuracy and efficiency of the fabric cutting machine.

[0023] In summary, starting the drive motor 201 causes the synchronous belt 205 to move the soft brush 207 from below the first synchronous pulley 204 to below the second synchronous pulley 2041 via the toothed column 206. Then, the soft brush 207 is moved from below the second synchronous pulley 2041 to above the first synchronous pulley 204. The fabric is then laid on the upper side of the transmission belt of the conveyor assembly 102. Starting the drive motor 201 again causes the synchronous belt 205 to squeeze the soft brush 207 against the fabric. At the same time, the toothed column 206 drives the soft brush 207 to rotate, causing the two soft brushes 207 to pull the two sides of the fabric respectively. This prevents wrinkles from forming when the fabric is laid on the conveyor assembly 102, maintains uniform tension, and avoids fabric loosening or deformation, thus preventing uneven cutting and minimizing impact on the accuracy and efficiency of the fabric cutting machine. Content not described in detail in this specification belongs to prior art known to those skilled in the art.

[0024] Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present invention should be included within the protection scope of the present invention.

Claims

1. A fabric cutting machine capable of flattening fabric, comprising a cutting machine body (1) and a worktable (101), characterized in that: A workbench (101) is installed on the upper side of the main body (1) of the cutting machine. A conveying assembly (102) is installed on the inner side of the workbench (101). The conveying assembly (102) includes a transmission roller, a transmission belt and a transmission motor. A cutting main box (103) is installed on the main body (1) of the cutting machine via a guide rail. Support plates (2) are fixed on both sides of the workbench (101). A drive motor (201) is installed on the outer side of the support plate (2). The inner side of the support plate (2) is movably connected to a gear (202) via a bearing. The gear (202) on one side of the support plate (2) is fixed to the output end of the drive motor (201). The gear (202) is connected to a gear (203). The gear (203) is movably connected to the support plate (2) via a bearing.

2. The fabric cutting machine capable of flattening fabric according to claim 1, characterized in that: One side of gear one (202) and one side of gear two (203) are respectively fixed to synchronous pulley one (204). Synchronous pulley one (204) is connected to one end of synchronous belt (205), and the other end of synchronous belt (205) is connected to synchronous pulley two (2041).

3. A fabric cutting machine capable of flattening fabric according to claim 2, characterized in that: The second synchronous pulley (2041) is movably connected to the support plate (2) via a bearing. The two first synchronous pulleys (204) are fixed together by a shaft. The two second synchronous pulleys (2041) are connected together by a shaft. The outer side of the synchronous belt (205) is movably connected to the toothed column (206) via a bearing.

4. A fabric cutting machine capable of flattening fabric according to claim 3, characterized in that: The two toothed columns (206) are connected to a soft brush (207), the toothed columns (206) are connected to a toothed plate (208), and the toothed plate (208) is connected to the inner side of the support plate (2) through a connecting plate (209).

5. A fabric cutting machine capable of flattening fabric according to claim 1, characterized in that: The two ends of the transmission shaft of the conveying assembly (102) are fixed to the large gear (210), and the large gear (210) is movably connected to the worktable (101) through bearings.

6. A fabric cutting machine capable of flattening fabric according to claim 5, characterized in that: The large gear (210) is connected to one end of the toothed belt (211), and the other end of the toothed belt (211) is connected to the small gear (212).

7. A fabric cutting machine capable of flattening fabric according to claim 6, characterized in that: The pinion (212) is movably connected to the worktable (101) via a bearing, and the two pinions (212) are fixed to the hard brush (213).

8. A fabric cutting machine capable of flattening fabric according to claim 2, characterized in that: The gear one (202) and gear two (203) are meshed together, and the synchronous pulley one (204) and synchronous pulley two (2041) are meshed together with the synchronous belt (205).

9. A fabric cutting machine capable of flattening fabric according to claim 7, characterized in that: The large gear (210) and small gear (212) mesh with the toothed belt (211), and the hard brush (213) is pressed against the transmission belt of the conveying assembly (102).