Intelligent clothing tailoring system
By integrating a high-speed vibrating cutter head and a dust removal system into the cutting machine, the problem of dust pollution during fabric cutting is solved, and safety and cost-effectiveness are improved, making it suitable for small and medium-sized enterprises.
Patent Information
- Application Number
- CN202511901183.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-12-16
- Publication Date
- 2026-03-06
AI Technical Summary
The dust generated by existing cutting machines during fabric cutting is harmful to the health of operators, and existing CNC cutting machines are expensive and have poor adaptability, making it difficult to meet the needs of small and medium-sized enterprises.
Design an intelligent garment cutting system that uses a high-speed vibrating cutter head and mounting box combined with fan blades and dust removal components. Dust is sucked in through the dust inlet and separated by the dust removal components, reducing the possibility of dust spreading.
It improves the safety of fabric cutting, reduces dust dispersion in the factory, simplifies the dust handling process, and is highly adaptable, making it suitable for small and medium-sized enterprises.
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Figure CN121610979A_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of cutting machine technology, and in particular to an intelligent garment cutting system. Background Technology
[0002] In the current garment manufacturing industry, the cutting process still relies heavily on manual operation or semi-automated equipment, resulting in low efficiency and difficulty in guaranteeing accuracy. With the development of intelligent manufacturing technology, some companies have begun to introduce CNC cutting machines, but their high cost and poor adaptability make them difficult to meet the needs of small and medium-sized enterprises. CNC cutting machines (computerized automatic cutting beds) are among the most advanced equipment in the garment industry. Compared with manual cutting methods, they have advantages such as faster cutting speed, shorter production cycle, higher product quality, labor saving, and reduced labor intensity.
[0003] Currently, patent document CN105173870A discloses a CNC cutting machine, which includes a frame, a conveyor belt device mounted on the frame, and a cutting device mounted above the conveyor belt device. The frame is equipped with one or more of a fabric stacking device, a fabric feeding device, and a fabric guiding device, wherein the fabric stacking device is located downstream of the conveyor belt device, and the fabric feeding device and the fabric guiding device are located upstream of the conveyor belt device. However, during the fabric cutting process, a certain amount of dust is generated, mainly from fiber breakage and high-speed friction, which has a certain impact on the operator. Summary of the Invention
[0004] To improve the safety of fabric cutting, this application provides an intelligent garment cutting system.
[0005] The intelligent garment cutting system provided in this application adopts the following technical solution: An intelligent garment cutting system includes a frame, a crossbeam mounted on the frame, and a cutting device mounted on the crossbeam. The cutting device includes a housing, a high-speed vibrating cutter head, and a drive system. The high-speed vibrating cutter head is disposed inside the housing. The drive system drives the high-speed vibrating cutter head to slide along the XY axis. A mounting box is disposed on the housing, located on one side of the high-speed vibrating cutter head. A dust suction port is provided on the mounting box facing the housing, located at the bottom of the mounting box. An air outlet is provided on the top of the mounting box. A fan blade is disposed inside the mounting box and rotates within the mounting box. The rotation of the fan blade drives air through the dust suction port into the mounting box and out through the air outlet. A dust removal component is disposed inside the mounting box for separating dust from the air.
[0006] Optionally, the fan blade includes a mounting shaft, a mounting frame, and a drive motor. The mounting frame is mounted on the mounting shaft, and the drive motor drives the mounting shaft to rotate, thereby causing the mounting frame to rotate. Multiple mounting frames are provided and arranged circumferentially along the mounting shaft. The dust removal component includes a dust-collecting cloth disposed within the mounting frame. The area of the dust-collecting cloth is larger than the area of the inner cavity of the mounting chamber. The dust-collecting cloth is circumferentially fixed within the inner frame of the mounting frame. The dust removal component also includes an adhesive coated on the dust-collecting cloth. The adhesive is used to adsorb smoke and dust in the air.
[0007] Optionally, a rectangular frame is provided inside the mounting box, the rectangular frame abuts against the inner wall of the mounting box, the fan blades are arranged inside the rectangular frame, multiple fan blades are arranged inside the rectangular frame, the drive motor is arranged on the top surface of the rectangular frame, a first gear is sleeved on the mounting shaft, a drive chain is arranged inside the rectangular frame, the drive chain is sleeved on the first gear, and bevel gears that mesh with each other are arranged on the output shaft of the drive motor and any one of the mounting shafts.
[0008] Optionally, a lead screw is rotatably installed inside the mounting box. The lead screw is vertically arranged, and the rectangular frame is threadedly connected to the lead screw. A first motor is installed inside the mounting box, and the lead screw is coaxially mounted on the output shaft of the first motor. The first motor drives the lead screw to rotate, thereby moving the rectangular frame carrying the fan out of the air outlet to clean the dust on the dust collection cloth.
[0009] Optionally, the rectangular frame has an installation notch on its inner ring, extending from the top surface of the rectangular frame to the middle of the frame. The edge of the vacuum cloth is located within the installation notch. The frame also includes a pressing frame for pressing the edge of the vacuum cloth into the installation notch. A fixing member is provided on the rectangular frame for fixing the pressing frame to the inside of the rectangular frame.
[0010] Optionally, the fastener includes a fixing bolt threaded into a rectangular frame, the end of the fixing bolt being tapered, and a fixing groove being provided on the side wall of the pressing frame. The fixing groove is triangular with its hypotenuse facing downwards. After the fixing bolt enters the fixing groove, it presses against the inclined surface of the fixing groove, thereby pressing the pressing frame into the installation notch.
[0011] Optionally, the mounting box is slidably mounted on the housing, and the mounting box slides along the height direction of the housing. The housing is provided with a first driving member, which is used to drive the mounting box to slide so that the bottom of the mounting box presses against the cut fabric.
[0012] Optionally, an installation rod is provided inside the crimping frame. The installation rod is located inside the short side of the crimping frame. Two installation rods are provided and face each other. The ends of the two installation rods are provided with abutment rings. The abutment rings are circular. The installation rods move outward toward the crimping frame and abut against the dust-collecting cloth, making the dust-collecting cloth conical and increasing the adsorption area of the dust-collecting cloth.
[0013] Optionally, the mounting rod is a telescopic structure and is rotatably disposed inside the crimping frame, and a rotary motor for driving the mounting rod to rotate is provided inside the crimping frame.
[0014] Optionally, the mounting rod is provided with a drive spring inside, which is used to drive the mounting rod to extend so that the abutment ring abuts against the vacuum cloth.
[0015] In summary, this application includes at least one of the following beneficial technical effects: 1. During fabric cutting, the fabric is laid flat on the frame, and then the high-speed vibrating cutter head is driven by the drive system to move along the XY axis. The high-speed vibrating cutter head cuts the fabric. During the fabric cutting process, the fan blades in the mounting box rotate at high speed. The rotation of the fan blades drives the airflow in the mounting box. The airflow in the mounting box carries the dust generated near the high-speed vibrating cutter head into the mounting box through the dust suction port. The dust in the air is separated by the dust removal components on the left and right sides, which reduces the possibility of dust generated by fabric cutting spreading in the factory, thereby improving the safety of fabric cutting. Attached Figure Description
[0016] Figure 1 This is a schematic diagram of the overall structure of an intelligent clothing cutting system according to an embodiment of this application; Figure 2 This is a schematic diagram of the structure of a cutting device in an intelligent clothing cutting system according to an embodiment of this application; Figure 3 This is a schematic diagram of the structure of the mounting box in an intelligent clothing cutting system according to an embodiment of this application; Figure 4 This is a cross-sectional view of the mounting box in an intelligent clothing cutting system according to an embodiment of this application; Figure 5 This is a schematic diagram of the structure of a rectangular frame in an intelligent clothing cutting system according to an embodiment of this application; Figure 6 This is a schematic diagram of the installation frame in an intelligent clothing cutting system according to an embodiment of this application.
[0017] Explanation of reference numerals in the attached diagram: 1. Frame; 2. Crossbeam; 3. Cutting device; 4. Housing; 5. Mounting box; 6. Dust suction port; 7. Air outlet; 8. Fan blades; 81. Mounting shaft; 82. Mounting frame; 83. Drive motor; 9. Dust removal components; 91. Dust collection cloth; 10. Rectangular frame; 11. First gear; 12. Drive chain; 13. Lead screw; 14. First motor; 15. Mounting notch; 16. Pressing frame; 17. Fixing bolt; 18. Electric push rod; 19. Mounting rod; 20. Abutment ring. Detailed Implementation
[0018] The following is in conjunction with the appendix Figure 1-6 This application will be described in further detail.
[0019] This application discloses an intelligent clothing cutting system. (Refer to...) Figure 1 The intelligent garment cutting system includes a frame 1, a crossbeam 2 mounted on the frame 1, and a cutting device 3 mounted on the crossbeam 2. The cutting device 3 includes a housing 4, a high-speed vibrating cutter head, and a drive system. The high-speed vibrating cutter head is located inside the housing 4. The drive system is used to drive the high-speed vibrating cutter head to slide along the XY axis. The drive system includes a lead screw transmission device and a drive motor to drive the crossbeam 2 to move on the frame 1 and to drive the cutting device 3 to move on the crossbeam 2. When cutting the fabric, the fabric is laid flat on the frame 1, and then the high-speed vibrating cutter head is driven to move along the XY axis by the drive system. The high-speed vibrating cutter head cuts the fabric.
[0020] Reference Figure 2 , Figure 3 and Figure 4 In this embodiment, a mounting box 5 is provided on the outer shell 4. The mounting box 5 is located on one side of the high-speed vibrating cutter head. A dust suction port 6 is provided in the mounting box 5 facing the outer shell 4. The dust suction port 6 is located at the lower part of the mounting box 5. An air outlet 7 is provided on the top of the mounting box 5. A fan blade 8 is provided inside the mounting box 5. The fan blade 8 is rotatably installed inside the mounting box 5. The rotation of the fan blade 8 drives air to enter the mounting box 5 through the dust suction port 6 and be discharged from the air outlet 7. A dust removal component 9 is provided inside the mounting box 5. The dust removal component 9 is used to separate dust in the air.
[0021] During the fabric cutting process, the fan blades 8 inside the mounting box 5 rotate at high speed. The rotation of the fan blades 8 drives the airflow inside the mounting box 5. The airflow inside the mounting box 5 carries the dust generated near the high-speed vibrating cutter head into the mounting box 5 through the dust suction port 6. Under the left and right of the dust removal components 9, the dust in the air is separated, thereby reducing the possibility of dust generated by fabric cutting spreading in the factory and improving the safety of fabric cutting.
[0022] Reference Figure 4 , Figure 5 and Figure 6In this embodiment, the fan blade 8 includes a mounting shaft 81, a mounting frame 82, and a drive motor 83. The mounting frame 82 is mounted on the mounting shaft 81 and is rectangular. The drive motor 83 drives the mounting shaft 81 to rotate, thereby rotating the mounting frame 82. Multiple mounting frames 82 are provided and are arranged circumferentially along the mounting shaft 81. The dust removal component 9 includes a dust-collecting cloth 91 disposed within the mounting frame 82. The area of the dust-collecting cloth 91 is larger than the area of the inner cavity of the mounting cavity, causing the dust-collecting cloth 91 to fall to one side. The dust-collecting cloth 91 is circumferentially fixed within the inner frame of the mounting frame 82. The dust removal component 9 also includes an adhesive coated on the dust-collecting cloth 91. The adhesive is used to absorb smoke and dust in the air.
[0023] When cutting the fabric, the drive motor 83 is started, which drives the mounting shaft 81 to rotate. The rotation of the mounting shaft 81 drives the mounting frame 82 to rotate, and the rotation of the mounting frame 82 drives the dust-collecting cloth 91 to move within the mounting box 5. The dust-collecting cloth 91 bulges outward in the direction of rotation of the mounting frame 82, forming an inverted cone shape. During this process, the mounting frame 82 and the dust-collecting cloth 91 drive the air to flow within the mounting box 5, which serves two purposes: to drive the airflow and to absorb dust. This dust treatment is simple and convenient. With the help of the adhesive, the dust adheres to the dust-collecting cloth 91, thereby improving the dust treatment effect.
[0024] Reference Figure 4 , Figure 5 and Figure 6 In this embodiment, a rectangular frame 10 is provided inside the mounting box 5, and the rectangular frame 10 abuts against the inner wall of the mounting box 5. Fan blades 8 are provided inside the rectangular frame 10, and multiple fan blades 8 are provided inside the rectangular frame 10. A drive motor 83 is provided on the top surface of the rectangular frame 10, and the length direction of the output shaft of the drive motor 83 is perpendicular to the rectangular frame 10. A first gear 11 is sleeved on the mounting shaft 81. A drive chain 12 is provided inside the rectangular frame 10, and the drive chain 12 is sleeved on the first gear 11. A bevel gear meshes with each other on the output shaft of the drive motor 83 and any one of the mounting shafts 81. When dust is being treated, the drive motor 83 is started, and the drive motor 83 drives the bevel gear to rotate. The rotation of the bevel gear drives the mounting shaft 81 to rotate, and the rotation of the mounting shaft 81 drives the first gear 11 to rotate. The rotation of the first gear 11 drives the drive chain 12 to move, while the other mounting shafts 81 rotate, thereby driving the other mounting frames 82 and the dust collection cloth 91 to rotate, thereby increasing the airflow speed and improving the dust treatment effect.
[0025] Reference Figure 4 , Figure 5 and Figure 6In this embodiment, a lead screw 13 is rotatably mounted inside the mounting box 5. The lead screw 13 is vertically positioned, and a rectangular frame 10 is threadedly connected to the lead screw 13. A first motor 14 is installed inside the mounting box 5, and the lead screw 13 is coaxially mounted on the output shaft of the first motor 14. The first motor 14 drives the lead screw 13 to rotate, causing the rectangular frame 10 to carry the fan out of the air outlet 7 to clean the dust on the dust collection cloth 91. When a large amount of dust accumulates on the dust collection cloth 91, the first motor 14 is activated, driving the lead screw 13 to rotate. The rotation of the lead screw 13 causes the rectangular frame 10 to move within the mounting box 5. The rectangular frame 10 carries the fan blades 8 out of the air outlet 7, thereby cleaning the dust on the dust collection cloth 91 and facilitating the replacement of the dust collection cloth 91. On the other hand, during the sliding process, the rectangular frame 10 scrapes off the dust on the inner wall of the mounting box 5.
[0026] Reference Figure 4 , Figure 5 and Figure 6 In this embodiment of the application, in order to facilitate the replacement of the vacuum cloth 91, the inner ring of the rectangular frame 10 is provided with an installation notch 15. The installation notch 15 is opened from the top surface of the rectangular frame 10 to the middle of the rectangular frame 10. The installation notch 15 faces the inner ring of the rectangular frame 10. The edge of the vacuum cloth 91 is located inside the installation notch 15. It also includes a pressing frame 16, which is used to press the edge of the vacuum cloth 91 into the installation notch 15. A fixing member is provided on the rectangular frame 10, which is used to fix the pressing frame 16 into the rectangular frame 10. Reference Figure 4 , Figure 5 and Figure 6 The fastener includes a fixing bolt 17 threaded into the rectangular frame 10. The end of the fixing bolt 17 is tapered. The side wall of the crimping frame 16 is provided with a fixing groove. The fixing groove is triangular with the hypotenuse facing downward. After the fixing bolt 17 enters the fixing groove, it presses against the inclined surface of the fixing groove and presses the crimping frame 16 into the installation notch 15.
[0027] When installing the vacuum cloth 91, place the edge of the vacuum cloth 91 inside the mounting notch 15 and support it against the bottom wall of the mounting notch 15. Then, move the crimping frame 16 into the mounting notch 15, and then rotate the fixing bolt 17. The fixing bolt 17 enters the fixing groove, and the end of the fixing bolt 17 presses against the inclined surface of the fixing groove, causing the crimping frame 16 to move downward and press against the mounting notch 15, thereby fixing the vacuum cloth 91 in the rectangular frame 10. The operation is simple and convenient. In addition, when removing the vacuum cloth 91, move the fixing bolt 17 out of the fixing groove, then move the crimping frame 16 out of the rectangular frame 10, and then remove the vacuum cloth 91 from the rectangular frame 10.
[0028] Reference Figure 2 and Figure 3In this embodiment, the mounting box 5 is slidably mounted on the housing. The mounting box 5 slides along the height direction of the housing. A first driving member is provided on the housing. The first driving member is used to drive the mounting box 5 to slide so that the bottom of the mounting box 5 presses against the cutting fabric. The first driving member includes an electric push rod 18 disposed on the outer wall of the housing. The side wall of the mounting box 5 is fixedly mounted on the output shaft of the electric push rod 18. The mounting box 5 is driven by the electric push rod 18 to move towards the fabric and press against the fabric, thereby flattening the fabric and improving the cutting effect of the fabric.
[0029] Reference Figure 4 , Figure 5 and Figure 6 In this embodiment, an mounting rod 19 is provided inside the crimping frame 16. The mounting rod 19 is located inside the short side of the crimping frame 16. Two mounting rods 19 are provided and face each other. The ends of the two mounting rods 19 are provided with abutment rings 20. The abutment rings 20 are circular. The mounting rods 19 move outward toward the crimping frame 16 and abut against the dust-collecting cloth 91, making the dust-collecting cloth 91 conical and increasing the adsorption area of the dust-collecting cloth 91. Under the action of the mounting rods 19, the inner side of the dust-collecting cloth 91 is supported, making the dust-collecting cloth 91 conical, thereby increasing the contact area between the dust-collecting cloth 91 and the air, thus improving the dust-collecting cloth 91's dust-handling effect. Also, under the support of the mounting rods 19, the dust-collecting cloth 91 is located behind the rotating mounting frame 82, which facilitates the conical shape of the dust-collecting cloth 91 and makes it easier to capture dust. Reference Figure 4 , Figure 5 and Figure 6 When a large amount of dust is adsorbed on one side of the dust-collecting cloth 91, the dust-capturing effect of the adhesive decreases. Therefore, in this embodiment, the mounting rod 19 is a telescopic structure and is rotatably disposed inside the pressing frame 16. A rotating motor for driving the mounting rod 19 to rotate is disposed inside the pressing frame 16. When there is a large amount of dust on one side of the dust-collecting cloth 91, the rotating motor is started, and the rotating motor drives the mounting rod 19 toward the other side of the pressing frame 16. Subsequently, the mounting shaft 81 drives the mounting frame 82 to rotate, and the dust-collecting cloth 91 moves toward the inside of the mounting rod 19 under the action of air resistance. The mounting rod 19 restricts the shape of the dust-collecting cloth 91, which facilitates the dust-collecting cloth 91 to adsorb dust.
[0030] Reference Figure 4 , Figure 5 and Figure 6 In this embodiment, a drive spring is provided inside the mounting rod 19. The drive spring is used to drive the mounting rod 19 to extend so that the abutment ring 20 abuts against the dust collection cloth 91. Under the action of the drive spring, the mounting rod 19 is driven to extend, so that the mounting rod 19 is extended and the dust collection cloth 91 is driven to be conical.
[0031] The implementation principle of an intelligent clothing cutting system according to an embodiment of this application is as follows: During the fabric cutting process, the drive motor 83 is started, which drives the mounting shaft 81 to rotate. The rotation of the mounting shaft 81 causes the mounting frame 82 to rotate, and the rotation of the mounting frame 82 causes the dust-collecting cloth 91 to move within the mounting box 5. The dust-collecting cloth 91 protrudes outward in the direction of rotation of the mounting frame 82 and is inverted conical in shape. During this process, the mounting frame 82 and the dust-collecting cloth 91 drive the air to flow within the mounting box 5. On the one hand, they drive the air to flow, and on the other hand, they absorb dust, thereby treating the dust and reducing the possibility of dust generated by fabric cutting spreading in the factory, thus improving the safety of fabric cutting.
[0032] The above are all preferred embodiments of this application, and are not intended to limit the scope of protection of this application. Therefore, all equivalent changes made in accordance with the structure, shape and principle of this application should be covered within the scope of protection of this application.
Claims
1. An intelligent garment cutting system, characterized by: The utility model provides a cutting device, including frame (1), the crossbeam (2) of setting on frame (1) and erecting on crossbeam (2), the cutting device (3) is set up in the cutting device (3) including shell (4), high -speed vibration cutter head and drive system, high -speed vibration cutter head is set up in shell (4), drive system is used for drive high -speed vibration cutter head along X-Y axis direction sliding, shell (4) is provided with mounting box (5), mounting box (5) is located high -speed vibration cutter head one side, mounting box (5) is opened dust suction port (6) towards the direction of shell (4), dust suction port (6) is located mounting box (5) lower part, the top of mounting box (5) is provided with air outlet (7), be provided with fan blade (8) in mounting box (5), fan blade (8) rotation is set up in mounting box (5), fan blade (8) rotation drives air to enter mounting box (5) from air outlet (7) and from air outlet (7) and is discharged, be provided with dust removal spare (9) in mounting box (5), dust removal spare (9) is used to separate dust in air.
2. The intelligent garment cutting system of claim 1, wherein: The fan blade (8) includes a mounting shaft (81), a mounting frame (82), and a drive motor (83), the mounting frame (82) is arranged on the mounting shaft (81), the drive motor (83) is used for driving the mounting shaft (81) to rotate and drive the mounting frame (82) to rotate, the mounting frame (82) is provided with a plurality of and is circumferentially provided with a plurality of along the mounting shaft (81), the dust removal spare (9) includes a dust absorption cloth (91) arranged in the mounting frame (82), the area of the dust absorption cloth (91) is greater than the area of the mounting cavity, the dust absorption cloth (91) is circumferentially fixedly arranged in the inner frame of the mounting frame (82), the dust removal spare (9) further includes an adhesive agent coated on the dust absorption cloth (91), the adhesive agent is used for adsorbing smoke dust in the air.
3. The intelligent garment cutting system of claim 2, wherein: The mounting box (5) is provided with a rectangular frame (10) inside, the rectangular frame (10) abuts the inner wall of the mounting box (5), the fan blade (8) is arranged in the rectangular frame (10), a plurality of fan blades (8) are arranged in the rectangular frame (10), the drive motor (83) is arranged on the top surface of the rectangular frame (10), a first gear (11) is sleeved on the mounting shaft (81), a drive chain (12) is arranged in the rectangular frame (10), the drive chain (12) is sleeved on the first gear (11), the output shaft of the drive motor (83) and any one mounting shaft (81) are provided with intermeshing bevel gears.
4. The intelligent garment cutting system of claim 3, wherein: A lead screw (13) is rotationally arranged in the mounting box (5), the lead screw (13) is vertically arranged, the rectangular frame (10) is threadedly connected to the lead screw (13), a first motor (14) is arranged in the mounting box (5), the lead screw (13) is coaxially arranged on the output shaft of the first motor (14), the first motor (14) drives the lead screw (13) to rotate and drives the rectangular frame (10) to carry the fan to move out of the air outlet (7) to clean the dust on the dust absorption cloth (91).
5. The intelligent garment cutting system of claim 4, wherein: The rectangular frame (10) is internally provided with a mounting notch (15) which is opened from the top surface of the rectangular frame (10) to the middle of the rectangular frame (10), the edge of the dust absorption cloth (91) is located in the mounting notch (15), further comprising a crimping frame (16) which is used for crimping the edge of the dust absorption cloth (91) into the mounting notch (15), the rectangular frame (10) is provided with a fixing part which is used for fixing the crimping frame (16) into the rectangular frame (10).
6. The intelligent garment cutting system of claim 5, wherein: The fixing part comprises a fixing bolt (17) which is screwed into the rectangular frame (10), the end of the fixing bolt (17) is tapered, the side wall of the crimping frame (16) is provided with a fixing groove which is triangular and the oblique side faces downward, after the fixing bolt (17) enters the fixing groove, the crimping frame (16) is pressed tightly in the mounting notch (15) by pressing the inclined surface of the fixing groove.
7. The intelligent garment cutting system of claim 1, wherein: The mounting box (5) is slidingly arranged on the shell, the mounting box (5) slides along the height direction of the shell, the shell is provided with a first driving part which is used for driving the mounting box (5) to slide so that the bottom of the mounting box (5) is crimped on the cutting cloth.
8. The intelligent garment cutting system of claim 5, wherein: The inside of the crimping frame (16) is provided with a mounting rod (19), the mounting rod (19) is located in the inside of the short side of the crimping frame (16), the mounting rod (19) is provided with two rods which face each other, the end of the two mounting rods (19) is provided with an abutting ring (20), the abutting ring (20) is a circular ring, the mounting rod (19) moves out towards the outside of the crimping frame (16) to abut the dust absorption cloth (91) so that the dust absorption cloth (91) is tapered to increase the adsorption area of the dust absorption cloth (91).
9. The intelligent garment cutting system of claim 8, wherein: The mounting rod (19) is a telescopic structure and is rotationally arranged in the inside of the crimping frame (16), the crimping frame (16) is provided with a rotating motor which is used for driving the mounting rod (19) to rotate.
10. The intelligent garment cutting system of claim 9, wherein: The inside of the mounting rod (19) is provided with a driving spring which is used for driving the mounting rod (19) to elongate so that the abutting ring (20) abuts the dust absorption cloth (91).
Citation Information
Patent Citations
Numerical control cutting machine
CN105173870A