A cutting device for clothing processing
By introducing the clamping mechanism of push bolts and bidirectional threaded rods into the cutting device for clothing processing, as well as the ironing function of electric heating tubes and ironing barrels, the wrinkle removal and flattening problem of traditional clothing fabric cutting machines is solved, and the flatness and precise cutting of the fabric is achieved.
Patent Information
- Application Number
- CN202411227443.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-03
- Publication Date
- 2025-08-15
- Estimated Expiration
- 2044-09-03
AI Technical Summary
Traditional clothing fabric cutting machines do not have wrinkle removal and flattening functions, resulting in low accuracy of clothing contour and shifting of fabric position during cutting, resulting in waste of processing and deformation.
A cutting device for clothing processing is designed. By pressing a clamping mechanism composed of push bolts and bidirectional threaded rods, combined with the ironing function of the electric heating tube and the ironing cylinder, the fabric is flattened and fixed, ensuring cutting accuracy.
It effectively eliminates the bending protrusion of the fabric, ensures the smoothness of the fabric during the cutting process, improves the cutting accuracy and cutting stability of the clothing profile, and prevents the position of the fabric from being offset.
Smart Images

Figure CN118727427B_ABST
Abstract
Description
Technical Field
[0001] The present invention belongs to the field of clothing, and more specifically, relates to a cutting device for clothing processing. Background Art
[0002] Garment cutting is a process of cutting the contours of flat fabrics into certain sizes and pattern shapes using laser burning or knife cutting. This process ultimately results in a beautiful, durable, and body-fitting garment pattern. Currently, garment cutting typically involves using a fabric laser cutter or knife cutter to cut the contours of garments placed on a cutting platform. However, during the stacking and storage of fabrics, a large number of wrinkles form on the surface of the fabric. Traditional fabric cutting machines do not have the ability to remove wrinkles and flatten the fabric. As a result, after the fabric laser cutter cuts the wrinkled fabric along the predetermined cutting path, the resulting garment contour is not precise, and the garment pattern structure deviates, leading to fabric processing waste. Furthermore, if a cutter is used to cut garment fabric, the friction of the cutter can easily cause the loose and soft fabric to shift in position, resulting in deformation of the garment contour. Summary of the Invention
[0003] In order to solve the above technical problems, the present invention provides a cutting device for clothing processing to solve the problem that traditional clothing fabric cutting machines do not have the wrinkle removal, flattening and fixing functions for fabrics, resulting in deformation of clothing contours and low clothing pattern accuracy.
[0004] The present invention provides a cutting device for garment processing, comprising a base plate; a support plate is welded to the upper side of the base plate, a support frame is welded to the upper side of the support plate, a foot seat is welded to the lower side of the base plate, a column is welded to the upper side of the base plate, a cloth placing plate is welded to the top of the column, and cloth to be processed is placed on the upper side of the cloth placing plate; the number of the support frames is two groups, the support frames are symmetrically distributed front and back, a conveying motor is installed at the left end of the support frame, and a waste roller is installed on the motor shaft of the conveying motor; the waste roller is rotatably connected to the support frame on the front side, and a driving sleeve is installed at the right end of the waste roller, a belt is nested on the outer side of the driving sleeve, a driven sleeve is nested on the inner side of the belt, and the driven sleeve A cloth roller is installed at the left end, and the cloth roller is rotatably connected to the support frame on the rear side; it also includes a cutting device, a return spring, a guide rod, a gantry, a two-way threaded rod, a sliding column, a threaded column and an electric heating tube; a cloth placing plate is welded on the outer side of the guide rod, and the front and rear ends of the guide rod are welded to the support frame; the top of the return spring is welded with a pressure plate, and the bottom end of the return spring is welded with a flattening frame, and the upper side of the flattening frame is welded with a guide column, and the top of the guide column is welded with a support plate, and the upper side of the support plate is engaged and connected with a push bolt; a through hole is provided on the front side of the gantry, and a guide rod is inserted into the through hole of the gantry. A lateral displacement motor and a longitudinal displacement motor are installed on the left side of the gantry, and the electric motor of the lateral displacement motor A threaded adjustment rod is installed on the machine shaft, and a slider is meshed and connected on the outer side of the threaded adjustment rod. A gear is installed on the motor shaft of the longitudinal displacement motor. A controller is installed on the right side of the gantry. The gantry is welded to the sliding column. A water tank is installed on the upper side of the gantry. A micro water pump is installed on the upper side of the water tank. The water outlet of the micro water pump is screwed with a hose, and the other end of the hose is screwed with a shunt pipe. An atomizing nozzle is installed at the water outlet of the shunt pipe; the outer side of the electric heating tube is rotatably connected to the ironing cylinder, and the left and right ends of the electric heating tube are both connected to the sliding frame by bolts, and the upper side of the sliding frame is connected to the beam plate by bolts; a knob is installed on the top of the threaded column; a turntable is installed at the front end of the bidirectional threaded rod; the control The controller is connected to the horizontal displacement motor through a wire, the controller is connected to the longitudinal displacement motor through a wire, the controller is connected to the conveying motor through a wire, the controller is connected to the electric heating tube through a wire, and the controller is connected to the micro water pump through a wire; the cutting device includes a cutting machine, a bracket, a movable frame, a height limiting frame, a guide column, a pushing spring and a clamping bolt; the front side of the height limiting frame is provided with a threaded through hole, and the threaded through hole of the height limiting frame is screwed with a clamping bolt; the bottom end of the pushing spring is welded to the movable frame, the front side of the movable frame is connected to the cutting machine through bolts, the top end of the pushing spring is welded to the bracket, the bracket is connected to the front side of the slider through bolts, and the bracket is welded to the guide column.
[0005] In at least some embodiments, the movable frame is an L-shaped folded plate structure, a through hole extending vertically therethrough is provided at the center of the bottom end of the L-shaped folded plate structure of the movable frame, and the guide column is inserted into the through hole of the movable frame.
[0006] In at least some embodiments, the slider is provided with a threaded through hole extending leftward and rightward, the outer side of the threaded adjustment rod is threadedly engaged in the threaded through hole of the slider, and the lower side of the slider is attached to the upper side of the gantry.
[0007] In at least some embodiments, the support plates are in two groups, and the upper side of the support plates is provided with two groups of threaded through holes symmetrically distributed left and right, and the outer side surfaces of the push bolts are threadedly engaged in the threaded through holes of the support plates.
[0008] In at least some embodiments, there are two groups of pressure plates, the lower side of each group of pressure plates is covered with a rubber gasket, and the upper side of the pressure plate near the left and right ends is provided with through holes running through the upper and lower sides, and the two groups of guide pillars are respectively inserted into the two groups of through holes of the pressure plate.
[0009] In at least some embodiments, there are two groups of flattening frames, which are symmetrically distributed front to back. A protrusion is provided at the center of the lower side surface of each group of flattening frames, and a threaded through hole is provided at the center of the protrusion that passes through the front and back. The positive threaded end of the outer side surface of the bidirectional threaded rod is engaged and connected in the threaded through hole of the protrusion of the flattening frame on the front side, and the reverse threaded end of the outer side surface of the bidirectional threaded rod is engaged and connected in the threaded through hole of the protrusion of the flattening frame on the rear side. Through holes are provided at the front side surface of the flattening frame near the left and right ends, and the guide rod is inserted into the through hole of the flattening frame.
[0010] In at least some embodiments, a rack structure is provided on the upper side of the cloth placement plate near the left end, and the gear is meshedly connected to the rack structure of the cloth placement plate.
[0011] In at least some embodiments, the upper side of the beam plate is provided with seven groups of through holes, which are equidistantly arranged on the left and right sides, and the seven groups of water outlets of the diversion pipe are respectively bonded to the seven groups of through holes in the beam plate.
[0012] In at least some embodiments, there are two groups of sliding frames, which are symmetrically distributed on the left and right sides. The upper side surface of the sliding frame on the right side is provided with a threaded through hole that passes through from top to bottom, and the outer side surface of the threaded column is threadedly engaged with the threaded through hole on the upper side surface of the sliding frame on the right side. The upper side surface of the sliding frame on the left side is provided with a through hole that passes through from top to bottom, and the sliding column is inserted into the through hole of the sliding frame on the left side. The upper sides of the two groups of sliding frames are connected to beams and plates by bolts.
[0013] Compared with the prior art, the present invention has the following beneficial effects:
[0014] 1. In the present invention, a pressing bolt is used to push the pressing plate and the flattening frame at the threaded through hole of the support plate to form a clamping mechanism, so that the pressing plate and the flattening frame can clamp and fix the fabric to be processed. The threaded engagement transmission structure formed by the positive threaded end and the reverse threaded end on the outer side of the bidirectional threaded rod in the threaded through holes of the two sets of flattening frame protrusions can realize the forward and backward pulling and unfolding work of the flattening frame and the pressing plate for the fabric to be processed, eliminate the bending bulge of the fabric, keep the fabric to be processed flat during the cutting process, ensure that the cutting machine uses a cutter to stably cut the contour of the fabric, and prevent the fabric position from shifting due to the cutting force of the cutter during the cutting process.
[0015] 2. In the present invention, a threaded engagement transmission structure formed by a threaded column and a threaded through-hole of a sliding frame is utilized, so that the sliding frame drives the ironing cylinder heated by the electric heating tube to move vertically along the sliding column, so that the ironing cylinder can iron the outer surface of fabrics of different thicknesses in a conforming manner. This ironing cylinder can iron out wrinkles on piled and stored fabrics to be processed, keeping the fabrics neat and tidy, and ensuring the cutting contour accuracy of the fabrics when the cutting machine uses a laser cutting method.
[0016] 3. In the present invention, a cutting device is provided, and a push spring drives the vertical nested sliding structure of the movable frame through hole on the outer side of the guide column, so that the movable frame slides vertically along the guide column, so that the cutter or laser head of the cutting machine is always close to the fabric to be processed of different thicknesses for cutting operations, thereby improving the applicability of fabric cutting. BRIEF DESCRIPTION OF THE DRAWINGS
[0017] Figure 1 It is a structural schematic diagram of the present invention.
[0018] Figure 2 It is a right side structural schematic diagram of the present invention.
[0019] Figure 3 It is a front structural schematic diagram of the present invention.
[0020] Figure 4 It is a right-side structural schematic diagram of the present invention.
[0021] Figure 5 It is a left-side structural schematic diagram of the present invention.
[0022] Figure 6 It is a schematic diagram of the top structure of the present invention.
[0023] Figure 7 It is a rear side structural schematic diagram of the present invention.
[0024] Figure 8 It is a right side cross-sectional structural schematic diagram of the present invention.
[0025] Figure 9 It is a schematic structural diagram of the cutting device of the present invention.
[0026] Figure 10 It is a schematic structural diagram of the cutting device of the present invention from the right side.
[0027] Reference numerals:
[0028] 1. Foot base;
[0029] 2. Bottom plate;
[0030] 3. Pillar;
[0031] 4. Support plate;
[0032] 5. Support frame;
[0033] 6. Cutting device; 601. Cutting machine; 602. Bracket; 603. Moving frame; 604. Height limit frame; 605. Guide column; 606. Push spring; 607. Clamping bolt;
[0034] 7. Press plate;
[0035] 8. Turntable;
[0036] 9. Support plate;
[0037] 10. Guide pillar;
[0038] 11. Return spring;
[0039] 12. Guide rod;
[0040] 13. Fabric placement board;
[0041] 14. Push bolt;
[0042] 15. Waste drum;
[0043] 16. Belt;
[0044] 17. Active sleeve;
[0045] 18. Fabric roller;
[0046] 19. Driven sleeve;
[0047] 20. Horizontal displacement motor;
[0048] 21. Longitudinal displacement motor;
[0049] 22. Conveying motor;
[0050] 23. Gantry;
[0051] 24. Micro water pump;
[0052] 25. Hose;
[0053] 26. Water tank;
[0054] 27. Shunt pipe;
[0055] 28. Beam and slab;
[0056] 29. Sliding rack;
[0057] 30. Bidirectional threaded rod;
[0058] 31. Sliding column;
[0059] 32. Fabric to be processed;
[0060] 33. Controller;
[0061] 34. Flattening rack;
[0062] 35. Threaded column;
[0063] 36. Threaded adjustment rod;
[0064] 37. Slider;
[0065] 38. Ironing iron;
[0066] 39. Atomizing nozzle;
[0067] 40. Knob;
[0068] 41. Electric heating tube;
[0069] 42. Gear. DETAILED DESCRIPTION
[0070] The following embodiments of the present invention are described in further detail with reference to the accompanying drawings and examples. The following examples are used to illustrate the present invention but are not intended to limit the scope of the present invention.
[0071] like Figures 1-10As shown, the present invention provides a cutting device for garment processing, comprising a base plate 2; a support plate 4 is welded to the upper side of the base plate 2, a support frame 5 is welded to the upper side of the support plate 4, a foot seat 1 is welded to the lower side of the base plate 2, a column 3 is welded to the upper side of the base plate 2, a cloth placing plate 13 is welded to the top of the column 3, and cloth 32 to be processed is placed on the upper side of the cloth placing plate 13; there are two groups of support frames 5, the support frames 5 are symmetrically distributed front and back, a conveying motor 22 is installed on the left end of the support frame 5, and a waste roller 15 is installed on the motor shaft of the conveying motor 22; the waste roller 15 is rotatably connected to the front support frame 5, and an active sleeve 17 is installed on the right end of the waste roller 15, and a belt 16 is nested on the outer side of the active sleeve 17. A driven sleeve 19 is nested on the inner side of 16, and a cloth roller 18 is installed on the left end of the driven sleeve 19, and the cloth roller 18 is rotatably connected to the support frame 5 on the rear side; it also includes a cutting device 6, a return spring 11, a guide rod 12, a gantry 23, a bidirectional threaded rod 30, a sliding column 31, a threaded column 35 and an electric heating tube 41; the outer side of the guide rod 12 is welded with a cloth placement plate 13, and the front and rear ends of the guide rod 12 are welded with a support frame 5; the top of the return spring 11 is welded with a pressure plate 7, and the bottom end of the return spring 11 is welded with a flattening frame 34, and the upper side of the flattening frame 34 is welded with a guide column 10, and the top of the guide column 10 is welded with a support plate 9, and the upper side of the support plate 9 is engaged with a push bolt 14; the front side of the gantry 23 is provided with a through hole, and the gantry A guide rod 12 is inserted into the through hole of 23, and a lateral displacement motor 20 and a longitudinal displacement motor 21 are installed on the left side of the gantry 23. A threaded adjustment rod 36 is installed on the motor shaft of the lateral displacement motor 20, and a slider 37 is meshed and connected on the outer side of the threaded adjustment rod 36. A gear 42 is installed on the motor shaft of the longitudinal displacement motor 21. A controller 33 is installed on the right side of the gantry 23. The gantry 23 is welded to the sliding column 31. A water tank 26 is installed on the upper side of the gantry 23, and a micro water pump 24 is installed on the upper side of the water tank 26. The water outlet of the micro water pump 24 is screwed with a hose 25, and the other end of the hose 25 is screwed with a shunt pipe 27. The water outlet of the shunt pipe 27 is installed with an atomizing nozzle 39; the outer side of the electric heating tube 41 is rotated The ironing cylinder 38 is connected to the electric heating tube 41. The left and right ends are both bolted to the sliding frame 29. The upper side of the sliding frame 29 is bolted to the beam plate 28. The top of the threaded column 35 is mounted with a knob 40. The front end of the bidirectional threaded rod 30 is mounted with a turntable 8. The controller 33 is connected to the horizontal displacement motor 20 by a wire, the controller 33 is connected to the longitudinal displacement motor 21 by a wire, the controller 33 is connected to the conveying motor 22 by a wire, the controller 33 is connected to the electric heating tube 41 by a wire, and the controller 33 is connected to the micro water pump 24 by a wire. The cutting device 6 includes a cutting machine 601, a bracket 602, a movable frame 603, a height limit frame 604, a guide column 605, a push spring 606, and a clamping bolt 607.The front side of the height limit frame 604 has a threaded through-hole, into which a clamping bolt 607 is screwed. The bottom end of the push spring 606 is welded to the movable frame 603, and the front side of the movable frame 603 is bolted to the cutting machine 601. The top end of the push spring 606 is welded to the bracket 602, which is bolted to the front side of the slider 37. The bracket 602 is welded to the guide post 605.
[0072] In the disclosed embodiment, the movable frame 603 is an L-shaped folding plate structure. A through hole extending vertically through the bottom center of the L-shaped folding plate structure of the movable frame 603 is provided. The guide column 605 is inserted into the through hole of the movable frame 603, so that the push spring 606 drives the movable frame 603 to slide vertically along the guide column 605, so that the movable frame 603 drives the cutting machine 601 connected by the bolts on the front side to perform laser cutting on fabrics of different thicknesses.
[0073] In the embodiment of the present disclosure, the slider 37 is provided with a threaded through hole extending left and right, the outer side surface of the threaded adjustment rod 36 is threadedly engaged with the threaded through hole of the slider 37, and the lower side surface of the slider 37 is attached to the upper side surface of the gantry 23. In the process of the lateral displacement motor 20 driving the threaded adjustment rod 36 to rotate, the threaded adjustment rod 36 drives the slider 37 to move in a left and right direction along the upper side surface of the gantry 23, so that the slider 37 drives the cutting device 6 to perform a lateral cutting operation on the fabric 32 to be processed.
[0074] In the embodiment of the present disclosure, there are two groups of support plates 9, and the upper side surface of the support plate 9 is provided with two groups of threaded through holes symmetrically distributed on the left and right. The outer side surface of the pushing bolt 14 is threadedly engaged with the threaded through holes of the support plate 9. During the rotation of the pushing bolt 14, it rotates vertically downward along the threaded through holes of the support plate 9. The pushing bolt 14 pushes the pressure plate 7 to overcome the elastic force of the return spring 11 and move downward, so that the fabric 32 to be processed is clamped and fixed between the pressure plate 7 and the flattening frame 34.
[0075] In the disclosed embodiment, there are two groups of pressing plates 7, and the lower side of each group of pressing plates 7 is covered with a rubber gasket bonded thereto. The upper side of the pressing plate 7 near the left and right ends is provided with through holes running through it from top to bottom. The two groups of guide pillars 10 are respectively inserted into the two groups of through holes of the pressing plate 7, and each group of pressing plates 7 slides vertically along the two groups of guide pillars 10, so that the rubber gasket on the lower side of the pressing plate 7 is stably squeezed and fitted on the upper surface of the fabric 32 to be processed. The rubber gasket increases the contact friction between the fabric 32 to be processed and the pressing plate 7, thereby preventing the fabric 32 to be processed from slipping out from between the pressing plate 7 and the flattening frame 34.
[0076] In the embodiment of the present disclosure, there are two groups of flattening frames 34, and the flattening frames 34 are symmetrically distributed front to back. A protrusion is provided at the center position of the lower side surface of each group of flattening frames 34, and a threaded through hole is provided at the center position of the protrusion that passes through the front and back. The positive threaded end of the outer side surface of the two-way threaded rod 30 is engaged and connected in the threaded through hole of the protrusion of the flattening frame 34 on the front side, and the reverse threaded end of the outer side surface of the two-way threaded rod 30 is engaged and connected in the threaded through hole of the protrusion of the flattening frame 34 on the rear side. Through holes are provided in the front side surface near the left and right ends of the flattening frame 34, and the guide rod 12 is inserted into the through hole of the flattening frame 34. The two-way threaded rod 30 drives the two groups of flattening frames 34 to move apart and apart along the guide rod 12 front and back, so that the flattening frame 34 drives the pressing plate 7 to squeeze and fix the fabric 32 to be processed, pull it back and forth and unfold it, so that the fabric 32 to be processed remains flat.
[0077] In the embodiment of the present disclosure, a rack structure is provided on the upper side surface of the fabric placement plate 13 near the left end, and a gear 42 is meshedly connected to the rack structure of the fabric placement plate 13. When the longitudinal displacement motor 21 drives the gear 42 to rotate, the gear 42 meshes and moves along the tooth surface of the rack structure, and the gear 42 drives the gantry 23 to slide forward and backward along the guide rod 12, so that the gantry 23 drives the cutting device 6 to perform longitudinal cutting operations on the fabric 32 to be processed.
[0078] In the disclosed embodiment, seven groups of through holes are provided on the upper side of the beam plate 28, and the seven groups of through holes are arranged equidistantly on the left and right. The seven groups of water outlets of the diversion pipe 27 are respectively bonded to the seven groups of through holes of the beam plate 28. The beam plate 28 supports the atomizing nozzle 39 connected to the water outlet of the diversion pipe 27 to evenly spray water mist on the ironing surface of the fabric 32 to be processed, so as to prevent the ironing cylinder 38 heated by the high temperature of the electric heating tube 41 from damaging the fabric 32 to be processed.
[0079] In the embodiment of the present disclosure, there are two groups of sliding frames 29, and the sliding frames 29 are symmetrically distributed on the left and right. The upper side surface of the sliding frame 29 on the right side is provided with a threaded through hole that passes through from top to bottom, and the outer side surface of the threaded column 35 is threadedly engaged with the threaded through hole on the upper side surface of the sliding frame 29 on the right side. The upper side surface of the sliding frame 29 on the left side is provided with a through hole that passes through from top to bottom, and the sliding column 31 is inserted into the through hole of the sliding frame 29 on the left side. The upper sides of the two groups of sliding frames 29 are connected to the beam plate 28 by bolts. The threaded column 35 drives the sliding frame 29 to slide vertically along the sliding column 31, so that the ironing cylinder 38 can fit and move to iron the fabrics 32 to be processed with different thicknesses, eliminate fabric wrinkles, and improve the applicability of the ironing cylinder 38 for ironing work.
[0080] The specific usage and function of this embodiment are as follows:
[0081] When the present invention is performing clothing fabric cutting work, the fabric 32 to be processed is wound around the outer sides of the fabric drum 18 and the waste drum 15 respectively. At this time, the fabric 32 to be processed is placed on the upper side of the fabric placement plate 13, and then the four sets of pushing bolts 14 are manually screwed. Since the pushing bolts 14 are engaged and connected in the threaded through holes of the support plate 9, the pushing bolts 14 rotate downward vertically along the threaded through holes of the support plate 9. The pushing bolts 14 push the pressing plate 7 to overcome the elastic force of the return spring 11 and move vertically downward along the guide column 10 until the lower side of the pressing plate 7 is covered with the bonded rubber gasket and fits against the upper side of the fabric 32 to be processed. The two sets of pressing plates 7 respectively cooperate with the upper sides of the two sets of flattening frames 34 to squeeze, clamp and fix the fabric 32 to be processed, and then the turntable 8 is manually rotated. The turntable 8 drives the bidirectional threaded rod 30 to rotate. Since the positive thread end and the reverse thread end on the outer side of the bidirectional threaded rod 30 are respectively engaged with the screw thread holes of the protruding blocks of the two sets of flattening frames 34, the bidirectional threaded rod 30 drives the two sets of flattening frames 34 to move apart in the front and back directions. The flattening frames 34 and the pressing plate 7 drive the clamped and fixed fabric 32 to be processed to be pulled and unfolded back and forth, eliminating the bending protrusions of the fabric 32 to be processed, so that the fabric remains flat. The knob 40 is manually turned, and the knob 40 drives the threaded column 35 to rotate. The threaded column 35 drives the sliding frame 29 engaged on the outer side to move downward. The sliding frame 29 drives the ironing cylinder 38 connected to the outer side of the electric heating tube 41 to be rotated to fit the upper surface of the fabric 32 to be processed. Then the controller 33 controls the longitudinal displacement motor 21 to drive the gear The wheel 42 rotates, and since the gear 42 is meshed and connected to the rack structure of the fabric placement plate 13, the gear 42 drives the gantry 23 to move from front to back along the guide rod 12. The controller 33 controls the electric heating tube 41 and the micro water pump 24 to start. The electric heating tube 41 heats the ironing cylinder 38, and the micro water pump 24 pumps the water in the water tank 26 into the hose 25. The water flows into the shunt pipe 27 through the hose 25, and finally is sprayed on the fabric 32 to be processed in the form of water mist by the atomizing nozzle 39 installed at the water outlet of the shunt pipe 27. During the movement of the gantry 23, the ironing cylinder 38 is driven to move from front to back on the surface of the fabric 32 to be processed. The ironing cylinder 38 rolls over the surface of the fabric 32 to be processed that has been sprayed with water to flatten and iron it, thereby eliminating squeeze wrinkles on the surface of the fabric 32 to be processed. After ironing is completed, the controller 33 controls the cutting device 6 to start and cut the cloth. The controller 33 controls the horizontal displacement motor 20 to drive the slider 37 engaged with the outer side of the threaded adjustment rod 36 to slide. The slider 37 drives the cutting device 6 to complete the horizontal cutting operation of the cloth 32 to be processed. The controller 33 controls the longitudinal displacement motor 21 to drive the gear 42 to rotate. The gear 42 and the longitudinal displacement motor 21 drive the gantry 23 to move back and forth. The gantry 23 drives the cutting device 6 to complete the longitudinal cutting of the cloth 32 to be processed. After the cutting is completed, the pushing bolt 14 is screwed in the opposite direction. The pushing bolt 14 rotates and moves upward along the threaded through hole of the support plate 9. The return spring 11 pushes the pressing plate 7 to lift upward along the guide column 10, and the pressing plate 7 is separated from the upper side of the cloth 32 to be processed.Controller 33 controls the rotation of conveyor motor 22, which drives scrap drum 15, which in turn drives driving sleeve 17. Driving sleeve 17, via belt 16, drives distribution drum 18, mounted on the left end of driven sleeve 19, to rotate synchronously. The cut portion of fabric is then transported and wound around the outer side of scrap drum 15. Uncut fabric 32 is transported from distribution drum 18 to the upper side of fabric placement plate 13 for the next cutting operation.
[0082] All of the above components are installed, connected, or set up using common mechanical methods, such as welding, threaded connections, and screw connections. The specific structures, models, and coefficient indicators of all components are proprietary technologies, and any method that can achieve beneficial effects may be implemented. The aforementioned cutting machine 601, lateral displacement motor 20, longitudinal displacement motor 21, conveying motor 22, micro water pump 24, controller 33, atomizing nozzle 39, and electric heating pipe 41 are all commonly available components on the market. Upon purchase and use, they can be connected simply by following the included instruction manual, so further description is omitted.
[0083] The technical solutions of the present invention are not limited to the scope of the embodiments of the present invention, and the technical contents not described in detail in the present invention are all well-known technologies.
Claims
1. A cutting device for garment processing, comprising a base plate (2); a support plate (4) is welded to the upper side of the base plate (2); a support frame (5) is welded to the upper side of the support plate (4); a foot seat (1) is welded to the lower side of the base plate (2); a column (3) is welded to the upper side of the base plate (2); a cloth placement plate (13) is welded to the top of the column (3); and cloth (32) to be processed is placed on the upper side of the cloth placement plate (13); the number of the support frames (5) is two, and the support frames (5) are symmetrically distributed front and back. A conveying motor (22) is installed at the left end, and a waste roller (15) is installed on the motor shaft of the conveying motor (22); the waste roller (15) is rotatably connected to the support frame (5) on the front side, and a driving sleeve (17) is installed at the right end of the waste roller (15), a belt (16) is nested on the outer side of the driving sleeve (17), and a driven sleeve (19) is nested on the inner side of the belt (16), and a cloth roller (18) is installed at the left end of the driven sleeve (19), and the cloth roller (18) is rotatably connected to the support frame (5) on the rear side; it is characterized in that: It also includes a cutting device (6), a return spring (11), a guide rod (12), a gantry (23), a bidirectional threaded rod (30), a sliding column (31), a threaded column (35) and an electric heating tube (41); the outer side surface of the guide rod (12) is welded with a cloth placement plate (13), and the front and rear ends of the guide rod (12) are welded with a support frame (5); the top end of the return spring (11) is welded with a pressure plate (7), the bottom end of the return spring (11) is welded with a flattening frame (34), the upper side surface of the flattening frame (34) is welded with a guide column (10), the top end of the guide column (10) is welded with a support plate (9), and the upper side surface of the support plate (9) is engaged with a push bolt (14); The front side of the gantry (23) is provided with a through hole, and a guide rod (12) is inserted into the through hole of the gantry (23). A lateral displacement motor (20) and a longitudinal displacement motor (21) are installed on the left side of the gantry (23). A threaded adjustment rod (36) is installed on the motor shaft of the lateral displacement motor (20). The outer side of the threaded adjustment rod (36) is meshedly connected with a slider (37). A gear (42) is installed on the motor shaft of the longitudinal displacement motor (21). A controller (33) is installed on the right side of the gantry (23). The gantry (23) is welded to the sliding column (31). A water tank (26) is installed on the upper side of the gantry (23). The upper side of the water tank (26) A micro water pump (24) is installed, the water outlet of the micro water pump (24) is screwed with a hose (25), the other end of the hose (25) is screwed with a diverter pipe (27), and the water outlet of the diverter pipe (27) is installed with an atomizing nozzle (39); the outer side surface of the electric heating pipe (41) is rotatably connected to the ironing cylinder (38), the left and right ends of the electric heating pipe (41) are both connected to the sliding frame (29) by bolts, and the upper side surface of the sliding frame (29) is connected to the beam plate (28) by bolts; the top end of the threaded column (35) is installed with a knob (40); the front end of the bidirectional threaded rod (30) is installed with a turntable (8); the controller (33) is connected to the lateral displacement motor (20) The controller (33) is connected to the longitudinal displacement motor (21) through a wire, the controller (33) is connected to the conveying motor (22) through a wire, the controller (33) is connected to the electric heating tube (41) through a wire, and the controller (33) is connected to the micro water pump (24) through a wire; the cutting device (6) includes a cutting machine (601), a bracket (602), a movable frame (603), a height limiting frame (604), a guide column (605), a push spring (606) and a clamping bolt (607); the front side of the height limiting frame (604) is provided with a threaded through hole, and the threaded through hole of the height limiting frame (604) is screwed with a clamping bolt (607);The bottom end of the push spring (606) is welded to the movable frame (603), the front side of the movable frame (603) is connected to the cutting machine (601) via bolts, the top end of the push spring (606) is welded to the bracket (602), the bracket (602) is connected to the front side of the slider (37) via bolts, and the bracket (602) is welded to the guide column (605).
2. A cutting device for garment processing according to claim 1, characterized in that: The movable frame (603) is an L-shaped folded plate structure. A through hole is provided at the center of the bottom end of the L-shaped folded plate structure of the movable frame (603), and the guide column (605) is inserted into the through hole of the movable frame (603).
3. A cutting device for garment processing according to claim 1, characterized in that: The slider (37) is provided with threaded through holes extending left and right, the outer side of the threaded adjustment rod (36) is threadedly engaged with the threaded through hole of the slider (37), and the lower side of the slider (37) is attached to the upper side of the gantry (23).
4. A cutting device for garment processing according to claim 1, characterized in that: The number of the support plates (9) is two groups, and the upper side of the support plates (9) is provided with two groups of threaded through holes symmetrically distributed on the left and right sides, and the outer side surfaces of the push bolts (14) are threadedly engaged with the threaded through holes of the support plates (9).
5. A cutting device for garment processing according to claim 1, characterized in that: The number of the pressure plates (7) is two groups, and the lower side of each group of pressure plates (7) is covered with a rubber gasket, and the upper side of the pressure plates (7) near the left and right ends is provided with through holes that pass through the upper and lower parts, and the two groups of guide pillars (10) are respectively inserted into the two groups of through holes of the pressure plates (7).
6. A cutting device for garment processing according to claim 1, characterized in that: The number of the flattening frames (34) is two groups, and the flattening frames (34) are symmetrically distributed front to back. A protrusion is provided at the center position of the lower side of each group of flattening frames (34), and a threaded through hole is provided at the center of the protrusion that passes through the front and back. The positive threaded end of the outer side of the bidirectional threaded rod (30) is engaged with the threaded through hole of the protrusion of the flattening frame (34) on the front side, and the reverse threaded end of the outer side of the bidirectional threaded rod (30) is engaged with the threaded through hole of the protrusion of the flattening frame (34) on the rear side. Through holes are provided at the positions near the left and right ends of the front side of the flattening frame (34), and the guide rod (12) is inserted into the through hole of the flattening frame (34).
7. A cutting device for garment processing according to claim 1, characterized in that: A rack structure is provided on the upper side of the cloth placement plate (13) near the left end, and the gear (42) is meshedly connected to the rack structure of the cloth placement plate (13).
8. A cutting device for garment processing according to claim 1, characterized in that: The upper side surface of the beam plate (28) is provided with seven groups of through holes, which are arranged equidistantly on the left and right sides. The seven groups of water outlets of the diversion pipe (27) are respectively bonded to the seven groups of through holes of the beam plate (28).
9. A cutting device for garment processing according to claim 1, characterized in that: The number of the sliding frames (29) is two groups, and the sliding frames (29) are symmetrically distributed on the left and right sides. The upper side of the sliding frame (29) on the right side is provided with a threaded through hole that passes through the upper side, and the outer side of the threaded column (35) is threadedly engaged with the threaded through hole on the upper side of the sliding frame (29) on the right side. The upper side of the sliding frame (29) on the left side is provided with a through hole that passes through the upper side, and the sliding column (31) is inserted into the through hole of the sliding frame (29) on the left side. The upper sides of the two groups of sliding frames (29) are connected to the beam plate (28) by bolts.
Citation Information
Patent Citations
Fabric cutting device for garment making
CN110373886A
Garment production cloth cleaning and cutting device
CN112647271A