A conveying belt facilitating the docking of a clothing cutting bed
By introducing a feeding rack, conveyor rack, and drive rack into the garment cutting bed conveying equipment, combined with conveyor belts and guide rollers, the problems of fabric wrinkling and offset when feeding onto the cutting bed are solved, achieving efficient fabric conveying and cutting accuracy.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- WUHAN KEPUYINENG TECH CO LTD
- Filing Date
- 2025-09-24
- Publication Date
- 2026-07-21
AI Technical Summary
Existing garment cutting bed conveying equipment is prone to problems such as wrinkles, deviations, and difficulties in fitting when feeding, guiding, and connecting fabrics to the cutting bed. In particular, when conveying wide or heavy fabrics, the lack of a synchronous support structure leads to sagging and deviation.
A conveyor belt designed for easy docking with garment cutting tables includes a feeding rack, a conveyor frame, and a drive frame. It is equipped with a conveyor belt, a support plate, guide rollers, and a drive assembly. The material rollers are precisely positioned by the feeding plate and rollers, the guide frame and guide rods are slidably adjusted, and the dual drive rollers work together to drive the fabric with chain transmission, ensuring that the fabric is flat and wrinkle-free throughout its entire path.
It achieves smooth and wrinkle-free fabric transport throughout the entire path, improves cutting accuracy and production continuity, reduces maintenance difficulty and equipment upgrade costs, and ensures precise docking with the cutting bed.
Smart Images

Figure CN224530187U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of conveyor belt technology, specifically a conveyor belt that facilitates docking with garment cutting tables. Background Technology
[0002] The conveyor belt for garment cutting tables is a conveyor belt device specifically designed for garment cutting scenarios and adapted to garment cutting tables. It belongs to the field of conveyor belt technology. Its core function is to solve the problems that traditional conveyor equipment easily encounters when feeding, guiding, and connecting fabric to the cutting table, such as wrinkles, deviations, and difficulty in adaptation. It provides a flat and stable fabric conveying guarantee for the cutting table, thereby improving the accuracy of garment cutting and the continuity of production. The fabric spreading table described in application number CN201120101953.9 uses a conveyor belt and motor to transport fabric from the spreading machine to the cutting table, achieving a purely mechanized transfer of fabric between the spreading machine and the cutting table. This avoids errors caused by human factors and ensures the accuracy of the process from spreading the fabric to cutting it on the cutting table. However, this equipment has certain limitations: it uses a single conveyor belt design, lacks synchronous support structures on both sides of the fabric, and is prone to sagging due to gravity when conveying wide or heavy fabrics; the anti-deviation guide roller is only located on the driven roller side, while the feeding end (driving roller side) is not equipped with a guiding component, causing the fabric to easily deviate in the initial feeding stage. Based on this, this solution proposes "a conveyor belt that facilitates docking with garment cutting tables" to address the aforementioned problems. Utility Model Content
[0003] The purpose of this invention is to provide a conveyor belt that facilitates docking with garment cutting beds, thereby solving the problem mentioned in the background art that existing equipment on the market uses a single conveyor belt design and lacks synchronous support structures on both sides of the fabric.
[0004] To achieve the above objectives, this utility model provides the following technical solution: a conveyor belt that facilitates docking with garment cutting tables, comprising a feeding rack, a conveyor frame, a drive frame, a conveyor belt, and an assembly frame; The loading rack is provided with a flattening mechanism on its side. The flattening mechanism includes a conveyor frame, a drive frame, a conveyor belt, and a support plate. The support plate is installed above the conveyor frame. The conveyor frame is located on the side of the loading rack. The drive frame is located on the side of the conveyor frame. The conveyor belt is installed above the drive frame.
[0005] As a preferred technical solution of this utility model, the material feeding rack has a bolted material plate on the left side, and a U-shaped groove is opened on the left side of the material plate. A pair of rollers are rotatably connected to the groove on the left side of the material plate, and there are two material plates symmetrically distributed on both sides of the feeding rack. The material plate is rotatably connected to the material roller through the rollers. The upper part of the feeding rack has a bolted support plate, which is a rectangular structure. The two sides of the feeding rack have bolted protective side plates. By adopting the above technical solution, a material placement plate with a U-shaped groove is bolted to the left side of the feeding frame, and a pair of rollers are rotatably connected in the groove. The two material placement plates are symmetrically distributed on both sides of the feeding frame, which can accurately limit the material roller and reduce the rotation resistance of the material roller. This avoids the fabric from being pulled and wrinkled due to the material roller jamming or offset during feeding, and ensures that the material roller is laterally centered. At the same time, the rectangular support plate bolted above the feeding frame provides flat support for the fabric and prevents the fabric from sagging and stacking in the early stage of feeding.
[0006] As a preferred technical solution of this utility model, the mounting frame is bolted below the loading frame, and a first drive roller is rotatably connected to one side of the upper part of the loading frame. The first drive roller is fixedly connected to one end of a first universal joint, and the other end of the first universal joint is fixedly connected to a second drive roller. The loading frame is welded and fixed to the guide frame. A straight guide rail is opened on the inner side of the guide frame, and the guide frame is movably connected to the first guide roller. Guide rods are rotatably connected to both ends of the first guide roller. The lower part of the guide rod is slidably connected to the guide frame and the right side of the loading frame is bolted and fixed to the conveying frame. A positioning frame is welded and fixed below the conveying frame. There are eight positioning frames in total, symmetrically distributed, and a T-shaped groove is opened on the surface of the positioning frame. The second guide roller is movably connected in the groove of the positioning frame. Using the above technical solution, the bolt-fixed assembly frame below the loading rack allows for convenient and quick replacement and fixing of the drive unit, improving equipment reliability and facilitating subsequent adjustment of the conveyor belt to match different cutting bed feeding speeds. The first drive roller above the loading rack is connected to the second drive roller via a first universal joint, which can accommodate minor angular deviations during installation, preventing drive jamming due to assembly errors and ensuring stable transmission of conveying power. A straight guide rail is opened on the inner side of the guide frame welded and fixed to the loading rack, and is movably connected to the first guide roller. The guide rods rotatably connected to both ends of the first guide roller are slidably connected to the guide frame below, which can flexibly adjust the lateral position of the conveyor belt to adapt to different conveyor belt tensions and improve equipment versatility. T-shaped grooves are opened on the surface of the eight symmetrical positioning frames welded and fixed below the conveyor frame, and the second guide rollers are movably connected in the grooves. This can limit the lateral movement of the conveyor belt, ensuring that the fabric is conveyed along the central path after entering the conveyor frame, avoiding fabric wrinkles due to unstable guidance and improving the accuracy of docking with the cutting bed.
[0007] As a preferred embodiment of this utility model, the drive frame is bolted to the right side of the conveyor frame, the control interface is bolted to the side of the drive frame, and the junction boxes are distributed parallel to the side of the control interface. Using the above technical solution, the drive frame is bolted to the right side of the conveyor frame, allowing for quick assembly and disassembly of the drive frame and the conveyor frame. If the drive components need to be repaired separately or the distance between the two needs to be adjusted later, there is no need to disassemble the entire conveyor belt, reducing maintenance time. The control interface bolted to the side of the drive frame allows operators to quickly connect to the cutting bed control system, enabling synchronous start and stop of the conveyor belt and the cutting bed, reducing operation steps and preventing fabric accumulation caused by the continuous conveyor belt when the cutting bed is paused. The junction boxes distributed parallel to the side of the control interface can neatly store power cords and control wires, avoiding poor contact or electric shock hazards caused by messy wiring. At the same time, it facilitates quick location of fault points during later line maintenance, improving operational and line management safety.
[0008] As a preferred technical solution of this utility model, the left side of the drive frame is equipped with the same guide rod and guide frame as the loading frame; Using the above technical solution, the left side of the drive frame is equipped with the same guide rod and guide frame as the feeding frame, realizing the universality of guide components. When replacing the guide rod or guide frame later, there is no need to prepare different specifications of accessories, reducing spare parts inventory costs. Moreover, the debugging and maintenance process of the guide structure is consistent for operators, reducing training and operation difficulty. At the same time, the guide structure of the feeding frame and the drive frame is completely identical, which ensures that the fabric is guided with uniform force throughout the entire path from feeding and conveying to the docking cutting bed. This avoids the fabric being tight or loose on one side due to differences in the guide structures on both sides, effectively reducing fabric wrinkles, further improving the flatness of the fabric before docking with the cutting bed, and ensuring cutting accuracy.
[0009] As a preferred technical solution of this utility model, a third drive roller is rotatably connected to one side of the upper part of the drive frame. The third drive roller is fixedly connected to one end of the second universal joint, and a fourth drive roller is fixedly connected to the other end of the second universal joint. A drive sprocket is fixedly connected to the shaft end of the fourth drive roller. The third drive roller and the fourth drive roller are symmetrically distributed. An assembly frame is bolted to the lower part of the drive frame. A motor is bolted to the side of the assembly frame. The output shaft of the motor is fixedly connected to the drive sprocket. The two drive sprockets are driven by a chain. Bolt holes are evenly opened on the right side of the drive frame for docking and expansion. Using the above technical solution, the third drive roller above the drive frame is fixedly connected to the fourth drive roller via the second universal joint, and the two are symmetrically distributed to form a dual-drive roller cooperative drive structure. This ensures that the force on both sides of the conveyor belt is balanced, avoiding conveyor belt deviation caused by unilateral drive. The drive sprocket fixedly connected to the shaft end of the fourth drive roller is connected to the drive sprocket on the motor output shaft bolted to the side of the mounting frame below the drive frame via chain drive. Compared with belt drive, this has a stronger load-bearing capacity, higher transmission efficiency, and is less prone to slippage, ensuring stable conveying speed that matches the cutting speed of the cutting bed and preventing cutting misalignment. The mounting frame below the drive frame has the same structure as the mounting frame below the loading frame, allowing for uniform adjustment of the overall height of the conveyor belt to adapt to different brands and heights of garment cutting beds. The bolt holes evenly spaced on the right side of the drive frame support convenient connection to the conveyor belt extension section. When the production line is expanded in the future, there is no need to redesign the drive frame; the extension components can be directly connected via bolts, reducing equipment upgrade costs.
[0010] As a preferred embodiment of this utility model, the conveyor belt consists of two symmetrically distributed belts, and the inner side of the conveyor belt is fitted with a first guide roller, a second guide roller, a first drive roller, a second drive roller, a third drive roller, and a fourth drive roller.
[0011] Using the above technical solution, two symmetrically distributed conveyor belts simultaneously carry and transport the fabric from both sides, avoiding the sagging and shifting of the fabric on one side caused by a single conveyor belt. Especially for wide garment fabrics, this ensures that the fabric is flat across the entire width, without wrinkles or shifting, providing a flat fabric foundation for precise cutting on the cutting table. The inner side of the conveyor belt is fitted with a first guide roller, a second guide roller, a first drive roller, a second drive roller, a third drive roller, and a fourth drive roller. These multiple rollers form a multi-point support structure, which can distribute the force on the conveyor belt, avoid excessive local wear, limit the running trajectory of the conveyor belt, reduce the probability of conveyor belt deviation and slippage, improve the stability of equipment operation, and reduce production downtime caused by conveyor belt failure.
[0012] Compared with the prior art, the beneficial effects of this utility model are: 1. This conveyor belt, designed for easy docking with garment cutting tables, focuses on fabric conveying stability and adaptability to cutting tables. Its core structure comprises three main components: a feeding frame, a conveyor frame, and a drive frame. Combined with the conveyor belt, support plate, guide rollers, and drive assembly, it effectively solves problems such as wrinkles, misalignment, and difficulty in fitting traditional conveying equipment when feeding, guiding, and docking fabric with the cutting table. The feeding frame features symmetrical material placement plates and rollers on the left side to precisely limit the material rollers, reducing roller rotation resistance and preventing fabric pulling. The rectangular support plate above provides flat support for the fabric, ensuring fabric uniformity from the source of feeding. 2. The conveyor belt's guiding and driving system design emphasizes precision and compatibility. The first drive roller of the loading frame is connected to the second drive roller via a first universal joint, and the third drive roller of the driving frame is connected to the fourth drive roller via a second universal joint. This design accommodates minor angular deviations during assembly, preventing drive jamming and ensuring stable power transmission. Simultaneously, both the loading frame and the driving frame are equipped with a "guide frame + guide rod + guide roller" structure. The guide rod slides along the guide frame, allowing for flexible adjustment of the conveyor belt tension and lateral position to accommodate different fabric specifications. The T-shaped grooves of the eight symmetrical positioning frames below the conveyor frame stably limit the second guide roller, preventing lateral movement of the conveyor belt and ensuring the fabric is conveyed centered throughout its path, reducing wrinkles. 3. As a key component connecting to the cutting bed, the drive frame employs a dual-drive roller synergy and chain drive design to enhance reliability: symmetrically distributed third and fourth drive rollers ensure balanced force on both sides of the conveyor belt, preventing offset caused by unilateral drive; the motor drives the drive sprocket via a chain, offering stronger load-bearing capacity and less slippage compared to belt drive, allowing for precise matching of conveyor speed and cutting bed speed, preventing cutting misalignment. Furthermore, assembly racks are located below both the drive frame and the loading rack, enabling uniform adjustment of the overall conveyor belt height to accommodate cutting beds of different heights; bolt holes on the right side also support direct connection to conveyor belt extensions, reducing upgrade costs for future production line expansion. 4. In terms of ease of operation and maintenance, the conveyor belt lowers the barrier to entry through structural optimization: the conveyor frame and drive frame are bolted together, eliminating the need for complete disassembly when repairing drive components or adjusting spacing, thus reducing maintenance time; the control interface on the side of the drive frame can be quickly connected to the cutting bed control system, enabling synchronous start and stop of both and preventing fabric accumulation when the cutting bed is paused; the side junction box neatly stores wiring, eliminating safety hazards from messy wiring and facilitating quick fault location during maintenance. Furthermore, the drive frame and the feeding frame guide components are interchangeable, eliminating the need for different specifications of spare parts, reducing inventory costs, and standardizing the debugging and maintenance process for operators, thus reducing training difficulty. 5. This conveyor belt ultimately provides high-quality fabric transport for the garment cutting bed. Two symmetrical conveyor belts simultaneously carry the fabric from both sides, making it particularly suitable for wide fabrics. This avoids sagging and offset caused by unilateral transport, ensuring the fabric remains flat across its entire width. Multiple sets of guide rollers and drive rollers are installed inside the conveyor belt to form multi-point support. This not only distributes the stress on the conveyor belt, reducing localized wear and extending its service life, but also limits the conveyor belt's trajectory, reducing the probability of deviation and slippage, and minimizing production downtime. The overall design improves efficiency and precision throughout the entire process of feeding, conveying, docking, and maintenance, providing strong support for garment cutting quality and production continuity. Attached Figure Description
[0013] Figure 1 This is a side view of the structure of this utility model; Figure 2 This is a schematic diagram of the conveyor frame and drive frame structure of this utility model; Figure 3 This is a schematic diagram of the drive sprocket and junction box structure of this utility model; Figure 4 This is a schematic diagram of the material placement plate and roller structure of this utility model; Figure 5 This is a schematic diagram of the guide frame and guide rod structure of this utility model; Figure 6 This is a schematic diagram of the structure of the second drive roller and the first universal joint of this utility model; Figure 7 This is a schematic diagram of the second guide roller and positioning frame structure of this utility model; Figure 8 This is a schematic diagram of the motor and assembly frame structure of this utility model; Figure 9 This is a schematic diagram of the fourth drive roller and the second universal joint of this utility model.
[0014] In the diagram: 1. Loading rack; 2. Conveying rack; 3. Drive rack; 4. Conveyor belt; 5. Bearing plate; 6. Protective side plate; 7. Control interface; 8. Material roller; 9. Drive sprocket; 10. Junction box; 11. Material placement plate; 12. Roller; 13. First guide roller; 14. Guide frame; 15. Guide rod; 16. First drive roller; 17. Second drive roller; 18. First universal joint; 19. Second guide roller; 20. Positioning frame; 21. Third drive roller; 22. Fourth drive roller; 23. Second universal joint; 24. Motor; 25. Assembly rack. Detailed Implementation
[0015] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings. 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.
[0016] Please see Figure 1-9 The technical solution of this utility model includes: a feeding rack 1, a conveyor rack 2, a drive rack 3, a conveyor belt 4, a bearing plate 5, a protective side plate 6, a control interface 7, a material roller 8, a drive sprocket 9, a junction box 10, a material placement plate 11, a roller 12, a first guide roller 13, a guide frame 14, a guide rod 15, a first drive roller 16, a second drive roller 17, a first universal joint 18, a second guide roller 19, a positioning frame 20, a third drive roller 21, a fourth drive roller 22, a second universal joint 23, a motor 24, and an assembly frame 25; The left side of the feeding frame 1 is bolted to the material placement plate 11. The left side of the material placement plate 11 has a U-shaped groove, and a pair of rollers 12 are rotatably connected to the groove. The two material placement plates 11 are symmetrically distributed on both sides of the feeding frame 1. They are rotatably connected to the material roller 8 through the rollers 12. This can accurately limit the material roller 8, reduce its rotational resistance, and prevent the fabric from being pulled and wrinkled due to jamming or displacement of the material roller 8 during feeding. It can also ensure that the material roller 8 is laterally centered. At the same time, the upper part of the feeding frame 1 is bolted to the rectangular support plate 5, which can provide flat support for the fabric and prevent the fabric from sagging and stacking in the early stage of feeding. The protective side plates 6 bolted to both sides of the feeding frame 1 can further prevent the fabric from shifting laterally. The mounting bracket 25 is bolted to the bottom of the feeding frame 1, which allows for quick replacement and fixation of the drive unit, improving equipment reliability and facilitating later adjustments to the conveyor belt to match different cutting bed feeding speeds. The first drive roller 16 is rotatably connected to one side of the upper part of the feeding frame 1. The first drive roller 16 is fixedly connected to one end of the first universal joint 18, and the other end of the first universal joint 18 is fixedly connected to the second drive roller 17. This design accommodates minor angular deviations during installation, preventing drive jamming due to assembly errors and ensuring stable transmission of conveying power. The feeding frame 1 is welded to the guide frame 14, and a straight guide rail is provided on the inner side of the guide frame 14. It is movably connected to the first guide roller 13. The two ends of the first guide roller 13 are rotatably connected to the guide rod 15. The guide rod 15 is slidably connected to the guide frame 14 below, which can flexibly adjust the lateral position and tension of the conveyor belt 4 and improve the versatility of the equipment. The conveyor frame 2 is bolted to the right side of the feeding frame 1. Eight symmetrically distributed positioning frames 20 are welded and fixed to the bottom of the conveyor frame 2. The surface of the positioning frame 20 is opened with a T-shaped groove. The second guide roller 19 is movably connected in the groove, which can limit the lateral movement of the conveyor belt 4 and ensure that the fabric is conveyed along the central path after entering the conveyor frame 2, avoiding fabric wrinkles due to unstable guidance and improving the accuracy of docking with the cutting bed. The drive frame 3 is bolted to the right side of the conveyor frame 2. This eliminates the need to disassemble the entire conveyor belt when the drive components need to be repaired separately or the distance between the two needs to be adjusted, significantly reducing maintenance time. The control interface 7 is bolted to the side of the drive frame 3, which allows operators to quickly connect to the cutting bed control system and achieve synchronous start and stop of the conveyor belt and the cutting bed. This reduces operation steps and avoids fabric accumulation caused by the continuous conveyor belt when the cutting bed is paused. The junction box 10 is distributed parallel to the side of the control interface 7, which can neatly store power cords and control wires, avoiding poor contact or electric shock hazards caused by messy wiring. It also facilitates quick location of fault points when inspecting the wiring later, improving the safety of operation and wiring management. The left side of the drive frame 3 is equipped with the same guide rod 15 and guide frame 14 as the feed frame 1, realizing the standardization of guide components. When replacing the guide rod 15 or guide frame 14 later, there is no need to prepare accessories of different specifications, reducing spare parts inventory costs. Moreover, the debugging and maintenance process of the guide structure is consistent for operators, reducing training and operation difficulty. At the same time, the guide structure at the feeding end of the feed frame 1 and the guide structure at the end of the drive frame 3 near the cutting bed are completely identical, so that the fabric is guided with uniform force throughout the entire path from feeding and conveying to the docking cutting bed. This avoids the fabric being tight or loose on one side due to the difference in the guide structures on both sides, effectively reducing fabric wrinkles, further improving the flatness of the fabric before docking with the cutting bed, and ensuring cutting accuracy. A third drive roller 21 is rotatably connected to one side of the drive frame 3. The third drive roller 21 is fixedly connected to one end of the second universal joint 23, and the other end of the second universal joint 23 is fixedly connected to the fourth drive roller 22. The third drive roller 21 and the fourth drive roller 22 are symmetrically distributed, forming a dual-drive roller cooperative drive structure, which can make the force on both sides of the conveyor belt 4 balanced and avoid the conveyor belt 4 from deviating due to single-sided drive. The shaft end of the fourth drive roller 22 is fixedly connected to the drive sprocket 9. The assembly frame 25 is bolted to the bottom of the drive frame 3. The motor 24 is bolted to the side of the assembly frame 25. The output shaft of the motor 24 is fixedly connected to the drive sprocket 9. The two drive sprockets 9 are driven by a chain, which has a stronger load-bearing capacity, higher transmission efficiency and is less prone to slippage than belt drive, which can ensure stable conveying speed and match the cutting speed of the cutting bed to avoid cutting misalignment. The assembly frame 25 below the drive frame 3 and the assembly frame 25 below the loading frame 1 are connected to the loading frame 22. The frame 25 has a consistent structure, which can realize the uniform adjustment of the overall height of the conveyor belt and adapt to different brands and heights of garment cutting beds; the drive frame 3 has bolt holes evenly distributed on the right side to support convenient docking of the conveyor belt extension section. When the production line is expanded in the future, there is no need to redesign the drive frame 3, reducing the cost of equipment upgrades; in addition, there are two symmetrically distributed conveyor belts 4, with the first guide roller 13, the second guide roller 19, the first drive roller 16, the second drive roller 17, the third drive roller 21 and the fourth drive roller 22 installed on the inner side. It can simultaneously carry and transport the fabric from both sides, especially suitable for wide fabrics, ensuring that the fabric is flat and without deviation. At the same time, the multi-point support structure formed by multiple rollers can distribute the force on the conveyor belt 4, avoid excessive local wear, limit the running trajectory of the conveyor belt 4, reduce the probability of deviation and slippage, improve the stability of equipment operation, and reduce the production downtime caused by conveyor belt 4 failure. Working principle: When using a conveyor belt that facilitates docking with garment cutting tables, the material roller 8 wrapped with fabric is placed on the material plate 11 on the left side of the loading frame 1. The material roller 8 is precisely laterally limited and supported with low resistance by using the U-shaped groove on the left side of the material plate 11 and a pair of rollers 12 in the groove. The two material plates 11 are symmetrically distributed on both sides of the loading frame 1 to ensure that the material roller 8 is centered. At this time, the rectangular support plate 5 above the loading frame 1 provides a flat support surface for the fabric, and the protective side plates 6 on both sides prevent the fabric from shifting laterally, so as to prevent the fabric from sagging or shifting due to insufficient support when it is released from the material roller 8. After the equipment is started, the motor 24, which is bolted to the side of the mounting frame 25 below the drive frame 3, starts to run. The output shaft of the motor 24 drives the drive sprocket 9 at the end of the conveyor belt 4 to rotate. Through the chain transmission, the drive sprocket 9 at the shaft end of the fourth drive roller 22 is driven to rotate synchronously, thereby driving the fourth drive roller 22 to rotate. The fourth drive roller 22 transmits power to the symmetrically distributed third drive roller 21 through the second universal joint 23, so that the third drive roller 21 and the fourth drive roller 22 rotate together. At the same time, the first drive roller 16 above the loading frame 1 is linked with the second drive roller 17 through the first universal joint 18. Under the action of the friction of the conveyor belt 4, the first drive roller 16 and the second drive roller 17 rotate synchronously with the conveyor belt 4, forming a full-path power transmission to ensure the stable operation of the conveyor belt 4. During the conveying process, the conveyor belt 4 consists of two symmetrically distributed inner guide rollers 13, 19, 16, 17, 21, and 22, forming a multi-point support structure. At the loading frame 1, the guide frame 14 is welded to the loading frame 1 and fixed to the inner straight guide rail. The guide rods 15 at both ends of the first guide roller 13 can slide along the guide frame 14 to flexibly adjust the lateral position and tension of the conveyor belt 4 to meet the fabric conveying requirements. The eight symmetrically distributed positioning frames 20 below the conveyor frame 2 have T-shaped grooves on their surfaces. The second guide rollers 19 in the grooves restrict the lateral movement of the conveyor belt 4, ensuring that the fabric is conveyed along the central path after entering the conveyor frame 2. The left side of the drive frame 3 is equipped with the same guide rods 15 and guide frames 14 as the loading frame 1, so that the fabric is guided and stressed evenly throughout the entire path from the loading frame 1 at the feeding end to the drive frame 3 at the cutting bed docking end, avoiding wrinkles caused by the fabric being taut or loose on one side. Under the synchronous support of two symmetrical conveyor belts 4, the fabric is gradually conveyed from above the support plate 5 towards the drive frame 3. During the process, the smooth operation of the conveyor belts 4 and the multi-point support structure can not only prevent the wide fabric from sagging or shifting on one side, but also ensure that the fabric is flat across the entire width through the synergistic effect of the support plate 5 and the conveyor belts 4. At the same time, the operator can connect to the cutting bed control system through the control interface 7 on the side of the drive frame 3 to realize the synchronous start and stop of the conveyor belt and the cutting bed. When the cutting bed stops cutting, the conveyor belt stops conveying synchronously to prevent the fabric from piling up. The junction box 10 next to the control interface 7 neatly stores the power cord and control wires to ensure the safety and stability of the circuit. If it is necessary to adapt to cutting beds of different heights, the overall height of the conveyor belt can be uniformly adjusted by adjusting the structure of the loading frame 1 and the assembly frame 25 below the drive frame 3 to be consistent. If the production line needs to be expanded, the bolt holes evenly opened on the right side of the drive frame 3 can be used to directly connect to the extension section of the conveyor belt without redesigning the drive structure. Finally, the flat and wrinkle-free fabric is transported to the cutting bed through the end of the drive frame 3, completing the precise connection with the cutting bed and providing a stable material guarantee for subsequent cutting operations.
[0017] The above description is only a preferred embodiment of the present utility model and is not intended to limit the present utility model. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present utility model should be included within the protection scope of the present utility model.
Claims
1. A conveyor belt for easy docking with garment cutting tables, comprising a feeding rack (1); characterized in that: The feeding rack (1) is provided with a flattening mechanism on its side. The flattening mechanism includes a conveyor frame (2), a drive frame (3), a conveyor belt (4) and a support plate (5). The support plate (5) is installed above the conveyor frame (2). The conveyor frame (2) is located on the side of the feeding rack (1). The drive frame (3) is located on the side of the conveyor frame (2). The conveyor belt (4) is installed above the drive frame (3).
2. The conveyor belt for easy docking with garment cutting tables according to claim 1, characterized in that, The feeding rack (1) has a bolted placement plate (11) on the left side. The placement plate (11) has a U-shaped groove on the left side. A pair of rollers (12) are rotatably connected to the groove on the left side of the placement plate (11). There are two placement plates (11) symmetrically distributed on both sides of the feeding rack (1). The placement plate (11) is rotatably connected to the material roller (8) through the rollers (12). The feeding rack (1) has a bolted support plate (5) on the top. The support plate (5) is a rectangular structure. The feeding rack (1) has bolted protective side plates (6) on both sides.
3. The conveyor belt for easy docking with garment cutting tables according to claim 2, characterized in that, The loading rack (1) is bolted to the mounting frame (25) below. The loading rack (1) is rotatably connected to the first drive roller (16) on one side above. The first drive roller (16) is fixedly connected to one end of the first universal joint (18). The other end of the first universal joint (18) is fixedly connected to the second drive roller (17). The loading rack (1) is welded to the guide frame (14). A straight guide rail is opened on the inner side of the guide frame (14). The guide frame (14) is movably connected to the first guide roller (13). The two ends of the first guide roller (13) are rotatably connected to the guide rod (15). The guide rod (15) is slidably connected to the guide frame (14) below. The loading rack (1) is bolted to the right side of the conveyor frame (2). The conveyor frame (2) is welded to the bottom of the positioning frame (2). There are eight positioning frames (20) in total, which are symmetrically distributed. The surface of the positioning frame (20) is opened with a T-shaped groove. The second guide roller (19) is movably connected in the groove of the positioning frame (20).
4. The conveyor belt for easy docking with garment cutting tables according to claim 3, characterized in that, The drive frame (3) is bolted to the right side of the conveyor frame (2), and the control interface (7) is bolted to the side of the drive frame (3). The junction box (10) is distributed parallel to the side of the control interface (7).
5. The conveyor belt for easy docking with garment cutting tables according to claim 4, characterized in that, The drive frame (3) is equipped with the same guide rod (15) and guide frame (14) as the loading frame (1) on the left side.
6. The conveyor belt for easy docking with garment cutting tables according to claim 5, characterized in that, The third drive roller (21) is rotatably connected to one side of the drive frame (3). The third drive roller (21) is fixedly connected to one end of the second universal joint (23). The other end of the second universal joint (23) is fixedly connected to the fourth drive roller (22). The shaft end of the fourth drive roller (22) is fixedly connected to the drive sprocket (9). The third drive roller (21) and the fourth drive roller (22) are symmetrically distributed. The assembly frame (25) is bolted to the bottom of the drive frame (3). The motor (24) is bolted to the side of the assembly frame (25). The output shaft of the motor (24) is fixedly connected to the drive sprocket (9). The two drive sprockets (9) are driven by a chain. Bolt holes are evenly opened on the right side of the drive frame (3) for docking and expansion.
7. The conveyor belt for easy docking at garment cutting tables according to claim 6, characterized in that, The conveyor belt (4) consists of two symmetrically distributed belts, and the inner side of the conveyor belt (4) is fitted with a first guide roller (13), a second guide roller (19), a first drive roller (16), a second drive roller (17), a third drive roller (21), and a fourth drive roller (22).