Multifunctional cutting machine for textile production

CN118326683BActive Publication Date: 2026-08-21NANTONG SENCUI TEXTILE TECH CO LTD
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Patent Information

Application Number
CN202410533990.9
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-04-30
Publication Date
2026-08-21
Estimated Expiration
2044-04-30

AI Technical Summary

Technical Problem

[0004]为了改善相关技术中的纺织裁切机构在生产过程中效率较低的问题,本发明提供一种纺织类生产用多功能裁切机

Benefits of technology

[0016]1、采用了转向电机与转向盘配合的形式,从而使得裁切机在进行裁切后,可以通过送料机构将裁切后的纺织面料经由转向盘送入至下一个工序中,当送料结构将上一份裁切完毕后的待加工原料移出工作平台后,裁切机构即可继续对原料进行裁切,同时,操作人员可以在不同的转向盘一侧设置多个产线同时对裁切完毕后的纺织面料进行后续加工,从而使得裁切机构可以实现不停机工作,提升了生产效率。

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Abstract

The present application relates to a kind of multifunctional cutting machine for textile production, and relate to textile technology field.It includes support, the support is provided with work platform, the support is provided with cutting mechanism, the cutting mechanism is set on the work platform, the support is provided with steering wheel, the steering wheel is set on the side of the work platform, the bottom of the steering wheel is provided with steering motor for driving the steering wheel rotation, the side wall of the steering wheel is provided with feeding plate, the feeding plate is provided with several, several feeding plate is along the side wall circumferential direction of the steering wheel Setting, the top wall of the work platform is provided with feeding mechanism, the output end of the feeding mechanism is set towards the direction of the steering wheel.This application has the effect of improving the efficiency of textile production.
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Description

Technical Field

[0001] This invention relates to the field of textile technology, and in particular to a multi-functional cutting machine for textile production. Background Technology

[0002] Automatic cutting machines are used for cutting and slitting sheet materials in various industries. They do not require any molds; they are controlled by system software and then directly cut the products. As long as the corresponding parameters are set on the operating platform, the computer transmits the corresponding instructions to the cutting machine; the cutting machine then quickly cuts according to the received design drawings, with a high degree of automation.

[0003] In the textile industry, cutting machines are often used to cut fabrics. However, in the production process of textile products, in addition to cutting, operations such as hemming, rolling, and cross-sewing are also required. Currently, most textile products on the market undergo subsequent processing on the same production line after cutting. Since the time required for cutting textile products is much shorter than the time required for subsequent hemming, rolling, and cross-sewing, the cutting equipment is often stopped during production to wait for the subsequent processes to be completed, which affects the production efficiency of the production line and needs to be improved. Summary of the Invention

[0004] In order to improve the problem of low efficiency of textile cutting mechanisms in the production process in related technologies, the present invention provides a multi-functional cutting machine for textile production.

[0005] The present invention provides a multi-functional cutting machine for textile production, which adopts the following technical solution:

[0006] A multi-functional cutting machine for textile production includes a support frame, a work platform mounted on the support frame, a cutting mechanism mounted on the support frame and positioned above the work platform, a steering wheel mounted on the support frame and positioned on one side of the work platform, a steering motor mounted at the bottom of the steering wheel for driving the steering wheel to rotate, a plurality of feeding plates mounted on the side wall of the steering wheel and arranged circumferentially along the side wall of the steering wheel, and a feeding mechanism mounted on the top wall of the work platform, the output end of the feeding mechanism facing the steering wheel.

[0007] Optionally, a support plate is provided on the side wall of the steering wheel, and the feeding plate is disposed above the support plate. The end of the feeding plate away from the steering wheel is hinged to the side wall of the support plate. A first adjusting ring is sleeved on the side wall of the steering wheel. The first adjusting ring is rotatably connected to the steering wheel. When the steering wheel rotates, the first adjusting ring remains stationary. An adjusting rod is provided on the side wall of the first adjusting ring, and a second adjusting ring is provided on the side wall away from the first adjusting ring. The second adjusting ring is inclined. The feeding plate rests on the second adjusting ring. When the feeding plate rotates to the furthest position between a point on the second adjusting ring and the working platform, the end of the feeding plate near the working platform is flush with the working platform.

[0008] Optionally, a stabilizing groove is provided on the bottom wall of the feeding plate, the second adjusting ring is inserted into the stabilizing groove, and a sealing plate is rotatably connected to the side wall of the stabilizing groove, the sealing plate abutting against the side wall of the second adjusting ring.

[0009] Optionally, a tensioning spring is provided on the side wall of the cover plate near the second adjusting ring. The end of the tensioning spring away from the cover plate is connected to the inner side wall of the stabilizing groove. The cover plate and the inner side wall of the stabilizing groove are in clearance fit. A light source is provided on the inner side wall of the stabilizing groove. A photoelectric gate for receiving the light source is provided on the end wall of the cover plate near the light source. The photoelectric gate is electrically connected to the steering motor.

[0010] Optionally, the feeding mechanism includes a pair of feeding rollers, a feeding link is provided between the pair of feeding rollers, a feeding motor is provided on the feeding link for driving the feeding link to rotate, and a feeding chain is sleeved on the side wall of the feeding roller, the feeding chain abutting against the textile.

[0011] Optionally, a pair of lifting rods are provided on the side wall of the bracket. The pair of lifting rods are arranged in parallel, and a through hole is opened on the side wall of the pair of lifting rods. The feeding connecting rod is inserted into the through hole. A pair of feeding rollers are located between the pair of lifting rods. A drive cylinder is provided on the bracket and is located below the lifting rod. A sliding groove is opened on the side wall of the lifting rod. A sliding block is rotatably connected to the output end of the drive cylinder. The sliding block is interactively connected to the sliding groove.

[0012] Optionally, the feeding linkage includes a telescopic rod and a telescopic sleeve. The telescopic rod is inserted into the telescopic sleeve, and the telescopic sleeve is slidably connected to the telescopic rod. A first connecting gear is provided on the side wall of the telescopic rod, and a second connecting gear is provided on the side wall of the telescopic sleeve. A rotating motor is provided between a pair of lifting rods, and a rotating cylinder is provided at the output end of the rotating motor. The rotating cylinder has teeth on its side wall, and the rotating cylinder meshes with the first connecting gear and the second connecting gear.

[0013] Optionally, a connecting groove is provided on the end wall of the working platform near the lifting plate, a connecting plate is inserted into the connecting groove, the connecting plate is slidably connected to the connecting groove, and one end of the connecting plate near the lifting plate abuts against the side wall of the lifting plate.

[0014] Optionally, the connecting plate has a guide surface at one end inserted into the connecting groove, and a connecting cylinder is provided on the inner side wall of the connecting groove. The output end of the connecting cylinder abuts against the guide surface, and the connecting cylinder is electrically connected to the steering motor.

[0015] In summary, the present invention has at least one of the following beneficial effects:

[0016] 1. The machine adopts a combination of a steering motor and a steering wheel, which allows the cutting machine to feed the cut textile fabric to the next process via the feeding mechanism after cutting. After the feeding mechanism removes the previous piece of raw material from the work platform, the cutting mechanism can continue to cut the raw material. At the same time, the operator can set up multiple production lines on different sides of the steering wheel to process the cut textile fabric simultaneously, so that the cutting mechanism can work without stopping and improve production efficiency.

[0017] 2. A pair of feeding rollers are connected together by the telescopic structure of the telescopic rod and telescopic sleeve. This allows the operator to adjust the distance between the pair of feeding rollers by adjusting the telescopic rod and telescopic sleeve, thereby enabling the feeding mechanism to feed textile fabrics of different sizes and improving the applicability of the feeding mechanism during feeding. Attached Figure Description

[0018] Figure 1 This is a schematic diagram of the structure of an embodiment of the present invention;

[0019] Figure 2 This is a structural schematic diagram illustrating the connection relationship between the bearing plate and the lifting plate in an embodiment of the present invention;

[0020] Figure 3 for Figure 2 An enlarged schematic diagram of part A in the middle;

[0021] Figure 4 for Figure 3 Enlarged schematic diagram of part B in the middle;

[0022] In the diagram: 1. Support; 11. Working platform; 12. Cutting mechanism; 13. Steering wheel; 14. Steering motor; 15. Feeding plate; 16. Feeding mechanism; 17. Bearing plate; 21. First adjusting ring; 22. Second adjusting ring; 23. Adjusting rod; 24. Stabilizing groove; 25. Cover plate; 3. Tightening spring; 31. Light source; 32. Photoelectric gate; 33. Feeding roller; 34. Feeding connecting rod; 35. Feeding motor; 36. Feeding chain; 4. Lifting bar; 41. Through hole; 42. Drive cylinder; 43. Sliding block; 44. Telescopic rod; 45. Telescopic sleeve; 46. First connecting gear; 47. Second connecting gear; 48. Rotating motor; 49. Rotating cylinder; 51. Connecting groove; 52. Connecting plate; 53. Guide surface; 54. Connecting cylinder; 55. Sliding groove. Detailed Implementation

[0023] The following is in conjunction with the appendix Figure 1-4 The present invention will be described in further detail below.

[0024] This invention discloses a multi-functional cutting machine for textile production. (Refer to...) Figure 1 , Figure 2 and Figure 3 A multi-functional cutting machine for textile production includes a support frame 1, which is vertically mounted. A work platform 11, which is a cuboid structure, is fixedly mounted on the support frame 1 by bolts. A cutting mechanism 12 is mounted on one side of the work platform 11, and the cutting mechanism 12 is mounted by a motor-driven cutting head. A feeding mechanism 16 is located on one side of the cutting mechanism 12, which is used to feed materials after the cutting mechanism 12 has completed the cutting. A drive cylinder 42 is fixedly mounted on the support frame 1 by bolts. A lifting rod 4 is mounted above the drive cylinder 42. A pair of lifting rods 4 are mounted. A sliding groove 55 is opened on the bottom wall of the lifting rod 4. The drive cylinder 42 is vertically mounted. A sliding block 43 is rotatably connected to the output end of the drive cylinder 42 through a rotating shaft. The cross-section of the sliding groove 55 is an inverted trapezoid. The sliding block 43 is inserted into the sliding groove 55. The width of the sliding block 43 matches the sliding groove 55, and the sliding block 43 is slidably connected to the sliding groove 55. The feeding mechanism 16 is mounted on the lifting bar 4. The operator can control the lifting bar 4 by controlling the drive cylinder 42 to raise and lower the lifting bar 4, thereby controlling the height of the lifting bar 4 and thus controlling the height of the feeding mechanism 16 to improve the stability of the feeding mechanism 16 during feeding.

[0025] The feeding mechanism 16 includes a feeding roller 33 and a feeding connecting rod 34. The feeding connecting rod 34 includes a telescopic rod 44 and a telescopic sleeve 45. The telescopic rod 44 is inserted into the telescopic sleeve 45 and is slidably connected to the telescopic sleeve 45. A through hole 41 is provided on the opposite side wall of the lifting rod 4 along the wall thickness direction of the lifting rod 4. The telescopic rod 44 is adapted to be inserted into the through hole 41, and the telescopic sleeve 45 is adapted to be inserted into another through hole 41. A pair of feeding rollers 33 are provided. One feeding roller 33 is sleeved on the side wall of the telescopic rod 44 and is fixedly connected to the telescopic rod 44. The other feeding roller 33 is sleeved on the side wall of the telescopic sleeve 45 and is fixedly connected to the telescopic sleeve 45. A feeding chain 36 (not shown in the figure) is fixedly connected in a ring on the side wall of the feeding roller 33. The feeding chain 36 is used to increase the friction between the feeding roller 33 and the cut fabric to achieve fast and stable feeding.

[0026] A second connecting gear 47 is fixedly connected to the side wall of the telescopic sleeve 45, and a first connecting gear 46 is fixedly connected to the side wall of the telescopic rod 44. The first connecting gear 46 and the second connecting gear 47 are located between a pair of feeding rollers 33. A rotary motor 48 is fixedly installed between a pair of lifting rods 4 by bolts. A rotating cylinder 49 is fixedly installed at the output end of the rotary motor 48. The rotating cylinder 49 is a cylindrical body with teeth on its side wall. The first connecting gear 46 and the second connecting gear 47 are meshed with the rotating cylinder 49. The operator can drive the rotary motor 48, which will cause the rotating cylinder 49 to rotate, thereby driving the first connecting gear 46 and the second connecting gear 47 to rotate the feeding rollers 33, thus completing the feeding of the textiles that have been cut on the work platform 11.

[0027] A steering motor 14 is fixedly mounted on the bracket 1 by bolts, and the steering motor 14 is mounted on the side of the working platform 11 near the output direction of the feeding roller 33. A steering wheel 13 is mounted on the output end of the steering motor 14, and the steering wheel 13 is located below the working platform 11. A bearing plate 17 is fixedly connected to the side wall of the steering wheel 13 by bolts, and a feeding plate 15 is hinged to the end of the bearing plate 17 away from the steering wheel 13. A first adjusting ring 21 is fitted on the side wall of the steering wheel 13 and is rotatably connected to the steering wheel 13. An adjusting rod 23 is welded and fixed to the side wall of the first adjusting ring 21. A second adjusting ring 22 is welded and fixed to the end of the adjusting rod 23 away from the first adjusting ring 21. The second adjusting ring 22 is inclined and the end of the second adjusting ring 22 away from the working platform 11 is higher than the end close to the working platform 11. The feeding plate 15 abuts against the second adjusting ring. When the steering motor 14 drives the bearing plate 17 to rotate, the feeding plate 15 rotates synchronously with the bearing plate 17. Since the second adjusting ring 22 is inclined, when the feeding plate 15 reaches the side of the second adjusting ring 22 away from the working platform 11, the feeding plate 15 is flush with the working platform 11 so that the feeding plate 15 can receive the cut textile fabric transmitted by the feeding mechanism 16.

[0028] A stabilizing groove 24 is formed on the bottom wall of the feeding plate 15. A second adjusting ring 22 is inserted into the stabilizing groove 24 and is slidably connected to the stabilizing groove 24 as the feeding plate 15 is driven to rotate by the steering motor 14. A cover plate 25 is hinged to the inner side wall of the stabilizing groove 24, and a tensioning spring 3 is welded and fixed to the side wall of the cover plate 25 near the stabilizing groove 24. The end of the tensioning spring 3 away from the cover plate 25 is connected to the inner side wall of the stabilizing groove 24. The cover plate 25 is clearance-fitted with the inner wall of the stabilizing groove 24. A light source 31 is fixedly installed on the side wall of the stabilizing groove 24 near the cover plate 25. A photoelectric gate 32 is fixedly connected to the end wall of the cover plate 25 near the light source 31. The photoelectric gate 32 is used to receive the light source. The photoelectric gate 32 is electrically connected to the steering motor 14. When the steering motor 14 drives the feeding plate 15 to rotate and generate vibration or deviation, the cover plate 25 flips over. After the photoelectric gate 32 can no longer receive the light source, it drives the steering motor 14 to stop rotating, and the system stops working, reducing the possibility of system accidents.

[0029] A connecting groove 51 is provided on the end wall of the working platform 11 near the feeding plate 15. The connecting groove 51 is opened along the length direction of the working platform 11. A connecting plate 52 is inserted into the connecting groove 51 and is slidably connected to the connecting groove 51. A guide surface 53 is provided at one end of the connecting plate 52 inserted into the connecting groove 51. The guide surface 53 is inclined, that is, the width of the connecting plate 52 near the lifting plate is greater than the width of the connecting plate 52 away from the lifting plate. A connecting cylinder 54 is fixedly installed on the inner side wall of the connecting groove 51 by bolts. The output end of the connecting cylinder 54 is set towards the guide surface 53 and abuts against the guide surface 53. A connecting spring is provided on the side wall of the connecting plate 52 inserted into the connecting groove 51 and abuts against the inner bottom wall of the connecting groove 51. When the connecting cylinder 54 pushes the connecting plate 52 out of the connecting groove 51, the connecting plate abuts against the lifting plate, so that the feeding mechanism 16 can smoothly feed the textile raw material into the next process.

[0030] The implementation principle of a multi-functional cutting machine for textile production according to an embodiment of the present invention is as follows: When the multi-functional cutting machine of the present invention is in use, the operator places the textile raw material on the work platform 11 and cuts it according to a preset program. At the same time, the output end of the drive cylinder 42 moves down, so that the feeding roller 33 comes into contact with the cut textile raw material. Then, the rotating motor 48 rotates, driving the first connecting gear 46 and the second connecting gear 47 to rotate, which in turn drives the feeding roller 33 to rotate, so as to remove the textile raw material from the work platform 11. At the same time, the steering motor 14 drives the steering wheel 13 to rotate. When the steering wheel 13 rotates to the highest point of the second adjusting ring 22, the connecting cylinder 54 pushes the connecting plate 52 out of the connecting groove 51 and abuts against the side wall of the work platform 11, so as to facilitate the feeding mechanism 16 to feed the textile raw material onto the lifting plate to complete the subsequent process. The multi-functional cutting machine for textile production of the present invention improves production efficiency.

[0031] The above are all preferred embodiments of the present invention and are not intended to limit the scope of protection of the present invention. Therefore, all equivalent changes made in accordance with the structure, shape and principle of the present invention should be covered within the scope of protection of the present invention.

Claims

1. A multi-functional cutting machine for textile production, characterized in that: The system includes a support (1), a working platform (11) on the support (1), a cutting mechanism (12) on the support (1) above the working platform (11), a steering wheel (13) on the support (1) on one side of the working platform (11), a steering motor (14) for driving the steering wheel (13) to rotate at the bottom of the steering wheel (13), a feeding plate (15) on the side wall of the steering wheel (13), and several feeding plates (15) arranged circumferentially along the side wall of the steering wheel (13). A feeding mechanism (16) is provided on the top wall of the steering wheel (13), and the output end of the feeding mechanism (16) is arranged in the direction of the steering wheel (13). A bearing plate (17) is provided on the side wall of the steering wheel (13), and a feeding plate (15) is arranged above the bearing plate (17). The end of the feeding plate (15) away from the steering wheel (13) is hinged to the side wall of the bearing plate (17). A first adjusting ring (21) is sleeved on the side wall of the steering wheel (13). The first adjusting ring (21) is rotatably connected to the steering wheel (13). When the steering wheel (13) rotates, the first adjusting ring (21) remains stationary. A first adjusting ring (21) is provided on the side wall of the first adjusting ring (21). An adjusting rod (23) is provided, and a second adjusting ring (22) is provided on the side wall of the adjusting rod (23) away from the first adjusting ring (21). The second adjusting ring (22) is inclined, and the feeding plate (15) is placed on the second adjusting ring (22). When the feeding plate (15) rotates to the position where a point on the second adjusting ring (22) is furthest from the working platform (11), the end of the feeding plate (15) close to the working platform (11) is flush with the working platform (11). A stabilizing groove (24) is provided on the bottom wall of the feeding plate (15), and the second adjusting ring (22) is inserted into the stabilizing groove (24). The side wall of the stabilizing groove (24) rotates... A cover plate (25) is connected, and the cover plate (25) abuts against the side wall of the second adjusting ring (22). A tensioning spring (3) is provided on the side wall of the cover plate (25) near the second adjusting ring (22). The end of the tensioning spring (3) away from the cover plate (25) is connected to the inner side wall of the stabilizing groove (24). The cover plate (25) and the inner side wall of the stabilizing groove (24) are in clearance fit. A light source (31) is provided on the inner side wall of the stabilizing groove (24). A photoelectric gate (32) for receiving the light source is provided on the end wall of the cover plate (25) near the light source (31). The photoelectric gate (32) is electrically connected to the steering motor (14).

2. The multi-functional cutting machine for textile production according to claim 1, characterized in that: The feeding mechanism (16) includes a feeding roller (33), a pair of feeding rollers (33) are provided, a feeding link (34) is provided between the pair of feeding rollers (33), a feeding motor (35) for driving the feeding link (34) to rotate is provided on the feeding link (34), and a feeding chain (36) is sleeved on the side wall of the feeding roller (33), and the feeding chain (36) abuts against the textile.

3. The multi-functional cutting machine for textile production according to claim 2, characterized in that: The support (1) is provided with a lifting bar (4) on its side wall. There is a pair of lifting bars (4) arranged in parallel. A through hole (41) is opened on the side wall of the pair of lifting bars (4). The feeding connecting rod (34) is inserted into the through hole (41). A pair of feeding rollers (33) are located between the pair of lifting bars (4). A drive cylinder (42) is provided on the support (1). The drive cylinder (42) is located below the lifting bar (4). A sliding groove (55) is opened on the side wall of the lifting bar (4). A sliding block (43) is rotatably connected to the output end of the drive cylinder (42). The sliding block (43) is slidably connected to the sliding groove (55).

4. The multi-functional cutting machine for textile production according to claim 3, characterized in that: The feeding linkage (34) includes a telescopic rod (44) and a telescopic sleeve (45). The telescopic rod (44) is inserted into the telescopic sleeve (45), and the telescopic sleeve (45) is slidably connected to the telescopic rod (44). A first connecting gear (46) is provided on the side wall of the telescopic rod (44), and a second connecting gear (47) is provided on the side wall of the telescopic sleeve (45). A rotating motor (48) is provided on one side of a pair of lifting rods (4). A rotating cylinder (49) is provided at the output end of the rotating motor (48). The rotating cylinder (49) has teeth on its side wall, and the rotating cylinder (49) meshes with the first connecting gear (46) and the second connecting gear (47).

5. The multi-functional cutting machine for textile production according to claim 1, characterized in that: The working platform (11) has a connecting groove (51) on the end wall near the feeding plate (15). A connecting plate (52) is inserted into the connecting groove (51). The connecting plate (52) is slidably connected to the connecting groove (51). One end of the connecting plate (52) near the feeding plate (15) abuts against the side wall of the feeding plate (15).

6. The multi-functional cutting machine for textile production according to claim 5, characterized in that: The connecting plate (52) is inserted into the connecting groove (51) at one end and has a guide surface (53). A connecting cylinder (54) is provided on the inner side wall of the connecting groove (51). The output end of the connecting cylinder (54) abuts against the guide surface (53). The connecting cylinder (54) is electrically connected to the steering motor (14).

Citation Information

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