Clothing cloth template segmentation device
By adopting the design of pushing mechanism and elastic components in the clothing fabric template segmentation device, the problem of template size deviation and pattern deformation caused by wrinkles during cutting of the fabric is solved, and a higher segmentation accuracy is achieved.
Patent Information
- Application Number
- CN202510483036.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-17
- Publication Date
- 2025-05-30
AI Technical Summary
The existing clothing fabric template splitting devices are prone to form size deviation and pattern deformation due to fabric folds during cutting.
A clothing fabric template splitting device is designed, using a pushing mechanism and an elastic component, which drives the elastic component to move to the outside and below by moving the pushing mechanism to the outside, straighten the fabric and eliminate wrinkles.
Effectively eliminate wrinkles on the fabric, improve the accuracy of segmentation, and ensure the accurate size and complete pattern of the cut template.
Smart Images

Figure CN120055576A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the field of clothing fabrics, and particularly to a device for dividing clothing fabric templates. Background Art
[0002] A device for dividing clothing fabric templates is mainly used to accurately divide a roll of fabric or a large - format fabric according to the shape of a pre - designed clothing template.
[0003] The patent with the publication number CN213358106U discloses a fabric cutting device, including a table body. The table body includes a first surface and a second surface arranged opposite to each other. The first surface is a working surface. A sliding plate is slidably connected to the second surface. A blade is rotatably connected to the side of the sliding plate facing the table body. The table body is provided with a knife groove. The knife groove is located on the movement path of the cutting edge of the blade. A scale is provided on the side surface of the blade. The side of the blade away from the rotation center is the starting line of the scale.
[0004] Fabrics themselves have diversity, and their materials, thicknesses, textures, and elasticities are different. Fabrics such as light silk and chiffon are soft in texture and are extremely likely to form wrinkles due to external forces or their own gravity during the transmission and fixation processes of the device. While heavy denim, woolen fabrics, etc. are relatively hard, they will also wrinkle when subjected to improper pulling or unreasonable fixation methods.
[0005] When the fabric has wrinkles, it will seriously affect the accuracy of the divided template during cutting. For laser cutting, the wrinkles will change the relative position between the fabric surface and the laser beam, causing the laser to be unable to cut precisely according to the preset path, resulting in size deviation and pattern deformation of the cut template.
[0006] To solve the above problems, a device for dividing clothing fabric templates is proposed. Summary of the Invention
[0007] The purpose of the present invention is to provide a device for dividing clothing fabric templates, which solves the problems of size deviation and pattern deformation of the cut template.
[0008] To achieve the above purpose, the present invention provides the following technical solution: A device for dividing clothing fabric templates includes a workbench, a first support plate fixedly connected to the middle side of the upper surface of the workbench, a winding drum fixedly connected to one side of the upper surface of the workbench, a laser cutting machine arranged in the middle above the workbench, a pushing mechanism arranged inside the first support plate, and an elastic component arranged below the pushing mechanism;
[0009] The pushing mechanism includes a sliding component and a rotating component. The rotating component is arranged below the sliding component;
[0010] The sliding assembly includes a first cylinder fixedly connected to one side of the first support plate. The output end of the first cylinder is fixedly connected to a first air rod. The other end of the first air rod is vertically slidably connected to a second support plate fixedly connected to the laser cutting machine. Inside the upper end of the first support plate, there is a first hole. Horizontally slidably connected to the upper surface of the first support plate is a second cylinder. The output end of the second cylinder is fixedly connected to a second air rod. Below the second air rod, there is a first push rod fixedly connected to the second support plate.
[0011] Preferably, the central axis of the first hole is parallel to the central axis of the first air rod, and the width of the first hole is greater than the width of the second air rod.
[0012] Preferably, the central axis of the first push rod and the central axis of the second air rod are on the same vertical line.
[0013] Preferably, the rotating assembly includes a first rotating cylinder disposed outside the second air rod and rotatably connected to the second cylinder. Inside the first rotating cylinder, there is a first guiding groove. Inside the first guiding groove, there is a first guiding rod fixedly connected to the second air rod. Inside the lower end of the second air rod, there is a first groove. Above the inner side of the first groove, there is a sliding plate fixedly connected to the first push rod. Vertically slidably connected to the outer side below the first rotating cylinder is a second rotating cylinder. The lower end of the second rotating cylinder is fixedly connected to a rotating disc. On the lower surface of the rotating disc, there is a second guiding groove. Inside the second support plate, there is a third hole. Inside the third hole, there is an elastic telescopic rod. Inside the second guiding groove, there is a second guiding rod fixedly connected to the elastic telescopic rod.
[0014] Preferably, the upper appearance structure of the first guiding groove is a vertical straight line shape, and the lower appearance structure of the first guiding groove is a spiral shape.
[0015] Preferably, the outer side surface of the sliding plate fits with the upper inner side of the first groove. The appearance structure of the sliding plate is a cuboid, and the width of the upper end of the first groove is greater than the width of the lower end of the first groove.
[0016] Preferably, the appearance structure of the second guiding groove is an arc shape, and the matching manner between the second guiding groove and the second guiding rod is a clearance fit.
[0017] Preferably, the appearance structure of the third hole is a horizontal straight line shape, and the matching manner between the third hole and the elastic telescopic rod is a clearance fit.
[0018] Preferably, the elastic component includes a first push plate fixedly connected to the lower end of the elastic telescopic rod. An elastic rubber pad is fixedly connected to the lower surface of the second support plate. A second hole is provided inside the first push plate. A second push plate is arranged inside the second hole. The second push plates at both ends are fixedly connected by a bidirectional telescopic rod. A sliding groove is formed on the inner wall of the second hole. A slider fixedly connected to the second push plate is arranged inside the sliding groove. The width of the sliding groove near the second push plate is greater than the width of the sliding groove far from the second push plate, and the width of the sliding groove is greater than the width of the slider. The outer side surface of the second push plate fits with the inner side surface of the second hole. Baffles are fixedly connected to both sides of the first push plate. A third guiding groove is formed on the inner side surface of the third hole. A third guiding rod fixedly connected to the elastic telescopic rod is arranged inside the third guiding groove. A cooler is fixedly connected to the lower surface of the workbench. A filtering and adsorbing machine is fixedly connected to one end of the second support plate. The suction end and the output end of the filtering and adsorbing machine are both communicated with the inner wall of the first push plate. The third guiding groove far from the first air rod communicates with a fourth guiding groove at one end. The upper and lower ends of the third guiding groove are in a horizontal straight line shape in appearance structure, and the middle end of the third guiding groove is in an inclined straight line shape. The two ends of the fourth guiding groove are in an inclined straight line shape in appearance structure, and the middle end of the fourth guiding groove is in a horizontal straight line shape in appearance structure. The other end of the fourth guiding groove communicates with a fifth guiding groove. The outer side point of the communication part between the fifth guiding groove and the fourth guiding groove is farther from the first air rod than the inner side point of the communication part, and the outer side point of the communication part between the fifth guiding groove and the third guiding groove is lower than the inner side point of the communication part.
[0019] Preferably, the horizontal straight line length of the upper end of the third guiding groove close to the first air rod in the same direction as the central axis of the winding drum is the same as the overall length of the third guiding groove not in the same direction as the central axis of the winding drum.
[0020] Compared with the prior art, the beneficial effects of the present invention are as follows:
[0021] 1. A clothing fabric template segmentation device provided by the present invention, through the pushing mechanism and the elastic component, when the pushing mechanism moves outward, it can drive the elastic mechanism to move outward, and then drive the elastic mechanism to move downward. Compared with the prior art, the fabric can be straightened before fabric segmentation, so that the fabric segmentation is more accurate. BRIEF DESCRIPTION OF THE DRAWINGS
[0022] Figure 1 is the overall three-dimensional structure schematic diagram of the present invention;
[0023] Figure 2 is the front view sectional structure schematic diagram of the workbench of the present invention;
[0024] Figure 3 is of the present invention Figure 2 structural schematic diagram at A in;
[0025] Figure 4 For the present invention Figure 2 Schematic diagram of the structure at position B in the present invention;
[0026] Figure 5 Schematic diagram of the external structure of the first guiding groove of the present invention;
[0027] Figure 6 Schematic diagram of the external structure of the second guiding groove of the present invention;
[0028] Figure 7 Front view sectional structure diagram of the first pushing plate of the present invention;
[0029] Figure 8 Top view sectional structure diagram of the second supporting plate of the present invention;
[0030] Figure 9 Schematic diagram of the external structure of the third guiding groove of the present invention.
[0031] In the figure: 1, workbench; 2, first supporting plate; 3, winding drum; 4, laser cutting machine; 5, pushing mechanism; 6, elastic component; 51, sliding component; 52, rotating component; 5101, first cylinder; 5102, first air rod; 5103, second supporting plate; 5104, first hole; 5105, second cylinder; 5106, second air rod; 5107, first push rod; 5201, first rotating cylinder; 5202, first guiding groove; 5203, first guiding rod; 5204, first groove; 5205, sliding plate; 5206, rotating disc; 5207, second guiding groove; 5208, third hole; 5209, elastic telescopic rod; 5210, second guiding rod; 5211, second rotating cylinder; 602, elastic rubber pad; 603, first pushing plate; 604, second hole; 605, second pushing plate; 606, baffle; 607, third guiding groove; 608, third guiding rod; 609, cooler; 610, filtering and adsorbing machine; 611, sliding groove; 612, slider; 613, fourth guiding groove; 614, bidirectional telescopic rod; 615, fifth guiding groove. Detailed implementation manners
[0032] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.
[0033] Please refer to Figures 1-9, the present invention provides a technical solution: a device for dividing a clothing fabric template, which includes a workbench 1, a first support plate 2 fixedly connected to one side of the middle of the upper surface of the workbench 1, a winding drum 3 fixedly connected to one side of the upper surface of the workbench 1, a laser cutting machine 4 arranged in the middle above the workbench 1, a pushing mechanism 5 arranged inside the first support plate 2, and an elastic component 6 arranged below the pushing mechanism 5;
[0034] The pushing mechanism 5 includes a sliding component 51 and a rotating component 52, and the rotating component 52 is arranged below the sliding component 51;
[0035] The sliding component 51 includes a first cylinder 5101 fixedly connected to one side of the first support plate 2, a first air rod 5102 fixedly connected to the output end of the first cylinder 5101, the other end of the first air rod 5102 is vertically slidably connected to a second support plate 5103 fixedly connected to the laser cutting machine 4, a first hole 5104 is arranged inside the upper end of the first support plate 2, a second cylinder 5105 is horizontally slidably connected to the upper surface of the first support plate 2, a second air rod 5106 is fixedly connected to the output end of the second cylinder 5105, a first push rod 5107 fixedly connected to the second support plate 5103 is arranged below the second air rod 5106, the central axis of the first hole 5104 is parallel to the central axis of the first air rod 5102, and the width of the first hole 5104 is greater than the width of the second air rod 5106. The central axis of the first push rod 5107 and the central axis of the second air rod 5106 are on the same vertical line, so that the second air rod 5106 can move horizontally inside the first hole 5104.
[0036] The rotating assembly 52 includes a first rotating cylinder 5201 disposed outside the second air rod 5106 and rotatably connected to the second cylinder 5105. A first guiding groove 5202 is provided inside the first rotating cylinder 5201. Inside the first guiding groove 5202, there is a first guiding rod 5203 fixedly connected to the second air rod 5106. Inside the lower end of the second air rod 5106, there is a first groove 5204. Above the first groove 5204, there is a sliding plate 5205 fixedly connected to the first push rod 5107. Vertically slidably connected to the outside of the lower part of the first rotating cylinder 5201 is a second rotating cylinder 5211. The lower end of the second rotating cylinder 5211 is fixedly connected to a rotating disk 5206. On the lower surface of the rotating disk 5206, there is a second guiding groove 5207. Inside the second support plate 5103, there is a third hole 5208. Inside the third hole 5208, there is an elastic telescopic rod 5209. Inside the second guiding groove 5207, there is a second guiding rod 5210 fixedly connected to the elastic telescopic rod 5209. The upper end external structure of the first guiding groove 5202 is a vertical straight line shape, and the lower end external structure of the first guiding groove 5202 is a spiral shape, such that when the first guiding rod 5203 moves up and down inside the upper end of the first guiding groove 5202, it will not rotate, and when the first guiding rod 5203 moves up and down inside the lower end of the first guiding groove 5202, it will rotate. The outer side of the sliding plate 5205 fits with the upper end inside of the first groove 5204, and the external structure of the sliding plate 5205 is a cuboid, and the width of the upper end of the first groove 5204 is greater than the width of the lower end of the first groove 5204, such that when the sliding plate 5205 moves inside the first groove 5204, it will not rotate. The external structure of the second guiding groove 5207 is an arc shape, and the cooperation mode between the second guiding groove 5207 and the second guiding rod 5210 is a clearance fit. The external structure of the third hole 5208 is a horizontal straight line shape, and the cooperation mode between the third hole 5208 and the elastic telescopic rod 5209 is a clearance fit, such that when the second guiding groove 5207 rotates, it can push the second guiding rod 5210 to move outward or inward.
[0037] The elastic component 6 includes a first push plate 603 fixedly connected to the lower end of the elastic telescopic rod 5209. An elastic rubber pad 602 is fixedly connected to the lower surface of the second support plate 5103. A second hole 604 is provided inside the first push plate 603. A second push plate 605 is provided inside the second hole 604. The second push plates 605 at both ends are fixedly connected by a bidirectional telescopic rod 614. A sliding groove 611 is formed on the inner wall of the second hole 604. A slider 612 fixedly connected to the second push plate 605 is provided inside the sliding groove 611. The width of the sliding groove 611 near the second push plate 605 is greater than the width of the sliding groove 611 on the side away from the second push plate 605, and the width of the sliding groove 611 is greater than the width of the slider 612. The outer side surface of the second push plate 605 fits against the inner side surface of the second hole 604. Baffles 606 are fixedly connected to both sides of the first push plate 603. A third guiding groove 607 is formed on the inner side surface of the third hole 5208. A third guiding rod 608 fixedly connected to the elastic telescopic rod 5209 is provided inside the third guiding groove 607. A cooler 609 is fixedly connected to the lower surface of the workbench 1. A filter adsorber 610 is fixedly connected to one end of the second support plate 5103. The suction end and the output end of the filter adsorber 610 are both communicated with the inner wall of the first push plate 603. The third guiding groove 607 away from the first air rod 5102 is communicated with a fourth guiding groove 613. The upper and lower ends of the third guiding groove 607 are in a horizontal straight line shape in appearance, and the middle end of the third guiding groove 607 is in an inclined straight line shape. The two ends of the fourth guiding groove 613 are in an inclined straight line shape in appearance, and the middle end of the fourth guiding groove 613 is in a horizontal straight line shape in appearance. The horizontal straight line length of the upper end of the third guiding groove 607 close to the first air rod 5102 in the same direction as the central axis of the winding drum 3 is the same as the overall length of the third guiding groove 607 not in the same direction as the central axis of the winding drum 3. The other end of the fourth guiding groove 613 is communicated with a fifth guiding groove 615. The outer side point of the communication part of the fifth guiding groove 615 and the fourth guiding groove 613 is farther away from the first air rod 5102 than the inner side point of the communication part, and the outer side point of the communication part of the fifth guiding groove 615 and the third guiding groove 607 is lower than the inner side point of the communication part.
[0038] The fabric to be cut is moved under the laser cutting machine 4 by the take-up reel 3. The second cylinder 5105 is activated to drive the second air rod 5106 and the second support plate 5103 to move downward, driving the elastic rubber pad 602, the first push plate 603 and the second push plate 605 to move downward. At this time, the first guide rod 5203 is inside the lower part of the first guide groove 5202. When the first push plate 603 and the second push plate 605 move to the upper surface of the fabric, the second cylinder 5105 drives the second air rod 5106 to continue moving downward, so that the first push rod 5107 does not move downward and moves relatively between the second air rod 5106 and the first rotating cylinder 5201, causing the first guide rod 5203 to move out of the straight groove inside the first guide groove 5202 and into the spiral groove inside the first guide groove 5202. The first rotating cylinder 5201 and the first rotating cylinder 5201 both rotate, driving the rotating disk 5206 and the second guide groove 5207 to rotate. The outer structure of the second guide groove 5207 is arc-shaped, and the cooperation mode between the second guide groove 5207 and the second guide rod 5210 is clearance fit. The outer structure of the second guide groove 5207 is arc-shaped, and the cooperation mode between the second guide groove 5207 and the second guide rod 5210 is clearance fit, so that the rotation of the second guide groove 5207 pushes the second guide rod 5210 and the elastic telescopic rod 5209 to move outward along the track of the third hole 5208, driving the first push plate 603, the slider 612 and the second push plate 605 to move outward. At this time, the first push plate 603 and the second push plate 605 are already attached to the upper surface of the fabric. When the elastic telescopic rod 5209 moves outward, it drives the third guide rod 608 to move outward. Since the upper and lower ends of the third guide groove 607 have a horizontal straight-line structure and the middle end of the third guide groove 607 is an inclined straight line, the third guide rod 608 first moves horizontally a certain distance. When it moves to the inside of the inclined groove of the third guide groove 607, it will move downward, driving the elastic telescopic rod 5209 to deform and store energy, driving the first push plate 603 to press downward, causing the fabric to deform to a certain extent and open outward. Since the horizontal straight-line length of the third guide groove 607 near the upper end of the first air rod 5102 in the same direction as the central axis of the take-up reel 3 is the same as the overall length of the third guide groove 607 not in the same direction as the central axis of the take-up reel 3, when the fabric is pressed and pulled horizontally, the fabric along the central axis direction of the take-up reel 3 can move freely. When the third guide rod 608 moves to the inside of the horizontal straight groove of the fourth guide groove 613 of the third guide groove 607, the third guide rod 608 rises, and the third guide rod 608 in the same direction as the central axis of the take-up reel 3 drives the downward pressure, repeating the above state of stretching the fabric, pulling the fabric along the central axis direction of the take-up reel 3 to eliminate wrinkles.Since one end face of the third guide groove 607 close to the first air rod 5102 is communicated with one end face of the third hole 5208 close to the first air rod 5102, and one end face of the fourth guide groove 613 far from the first air rod 5102 is communicated with one end face of the third hole 5208 far from the first air rod 5102, when pushed to the end, all the third guide rods 608 will be pressed down to fix the fabric, preventing wrinkles from occurring during the cutting process. In summary, the wrinkles on the fabric can be eliminated to improve the cutting accuracy.
[0039] Since the outermost end of the fourth guide groove 613 is in an inclined straight shape, the third guide rod 608 will move outward during the downward pressing process, and the first push plate 603, the slider 612, and the second push plate 605 move outward, stretching the fabric and increasing the gap between the fabrics. Since when using a laser to cut, after the heat generated divides the fabric, there is still relatively high heat on the fabric. The increased gap between the fabrics improves the heat dissipation area, reduces the damage of heat to the fabric, and improves the cutting quality.
[0040] Since a certain amount of fumes will be generated when using a laser to cut, and these fumes are harmful to the human body. Since the first push plate 603, the second push plate 605, the elastic rubber pad 602, and the fabric achieve basic sealing, most of the fumes can be blocked inside the first push plate 603 and the second push plate 605. After the cutting is completed, start the filter adsorber 610 to suck the harmful gas away from the suction end, and then re-enter from the output end after filtration, reducing the harm to the human body.
[0041] Since the outermost end of the fourth guide groove 613 is in an inclined straight shape, the third guide rod 608 will move outward during the downward pressing process, and the first push plate 603, the slider 612, and the second push plate 605 move outward, stretching the fabric. After the cutting is completed, the fabric will immediately rebound, enabling the cut parts to be immediately separated, improving the heat dissipation area, reducing the damage of heat to the fabric, and improving the cutting quality.
[0042] Since the outermost end of the fourth guide groove 613 is in an inclined straight shape, the third guide rod 608 will move outward during the downward pressing process, and the first push plate 603, the slider 612, and the second push plate 605 will also move downward during the outward movement. Since a cooler 609 is fixedly connected to the lower surface of the workbench 1, the fabric can fit more closely to the workbench 1, with better heat exchange effect, reducing the damage of heat to the fabric, and improving the cutting quality.
[0043] After the splitting is completed, start the second cylinder 5105 to drive the second air rod 5106 to move downward a little further, so that the third guide rods 608 all move downward a certain distance to reach the connection of the fifth guide groove 615 and the fourth guide groove 613. Since the outer point of the connection of the fifth guide groove 615 and the fourth guide groove 613 is more upward than the inner point of the connection, and the outer point of the connection of the fifth guide groove 615 and the third guide groove 607 is lower than the inner point of the connection, the second cylinder 5105 drives the second air rod 5106 to move upward, so that the second guide rod 5210 and the elastic telescopic rod 5209 move upward, so that the first push plate 603, the slider 612 and the second push plate 605 move upward, do not contact the fabric, and move together to the connection of the fifth guide groove 615 and the third guide groove 607. Since the outer point of the connection of the fifth guide groove 615 and the third guide groove 607 is lower than the inner point of the connection, when the second guide rod 5210 moves outward, it can move downward to the inside of the third guide groove 607 to be flattened again. After the first push plate 603 and the second push plate 605 are reset, start the first cylinder 5101 to drive the first air rod 5102 to move to one side, driving the second support plate 5103 and the like to move to one side as a whole, preparing for the next flattening of the wrinkles. Since an appropriate tensile force can keep the fabric in a flat and tight state, avoiding the movement or wrinkles of the fabric during the cutting process, thus ensuring the neatness and accuracy of the cutting edge. If the fabric is in a relaxed state, it is easy to deviate during cutting, affecting the cutting quality. After the wrinkles are eliminated, the fabric is generally pulled out a little, generating a certain tensile force. When dividing the template on the same straight line on a large piece of fabric, it is not to divide one template, but generally multiple templates need to be divided. After the upper part has been divided, the force is uneven. If the fabric is pulled outward as a whole using the clamping plate, then the phenomenon of wrinkles will occur. However, each time this device divides, it is flattened again, further reducing the occurrence of wrinkles and improving the accuracy rate.
[0044] It should be noted that in this article, relational terms such as first and second are only used to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations. Moreover, the term "comprising", "including" or any other variant thereof is intended to cover non-exclusive inclusion, so that a process, method, article or device comprising a series of elements not only includes those elements, but also includes other elements not expressly listed, or also includes elements inherent to such process, method, article or device.
[0045] Although embodiments of the present invention have been shown and described, it will be understood by those of ordinary skill in the art that various changes, modifications, substitutions and variations can be made to these embodiments without departing from the principles and spirit of the present invention, and the scope of the present invention is defined by the appended claims and their equivalents.
Claims
1. A clothing fabric template dividing device, comprising a workbench (1), a first support plate (2) fixedly connected to one side of the middle of the upper surface of the workbench (1), a winding drum (3) fixedly connected to one side of the upper surface of the workbench (1), and a laser dividing machine (4) arranged in the middle above the workbench (1), characterized in that: A pushing mechanism (5) is arranged on the inner side of the first supporting plate (2), and an elastic component (6) is arranged below the pushing mechanism (5); The pushing mechanism (5) comprises a sliding component (51) and a rotating component (52), wherein the rotating component (52) is arranged below the sliding component (51); The sliding assembly (51) includes a first cylinder (5101) fixedly connected to one side of a first support plate (2); the output end of the first cylinder (5101) is fixedly connected to a first gas rod (5102); the other end of the first gas rod (5102) is vertically slidably connected to a second support plate (5103) fixedly connected to a laser segmentation machine (4); a first hole (5104) is provided inside the upper end of the first support plate (2); the upper surface of the first support plate (2) is laterally slidably connected to a second cylinder (5105); the output end of the second cylinder (5105) is fixedly connected to a second gas rod (5106); and a first push rod (5107) fixedly connected to the second support plate (5103) is provided below the second gas rod (5106).
2. The clothing fabric panel dividing device according to claim 1, characterized in that: The central axis of the first hole (5104) is parallel to the central axis of the first gas rod (5102), and the width of the first hole (5104) is greater than the width of the second gas rod (5106).
3. The clothing fabric template segmentation device according to claim 1, characterized in that: The central axis of the first push rod (5107) and the central axis of the second gas rod (5106) are on the same vertical line.
4. The clothing fabric template segmentation device according to claim 1, characterized in that: The rotating assembly (52) includes a first rotating cylinder (5201) arranged on the outside of the second gas rod (5106) and rotatably connected to the second cylinder (5105); a first guide groove (5202) is arranged inside the first rotating cylinder (5201); a first guide rod (5203) fixedly connected to the second gas rod (5106) is arranged inside the first guide groove (5202); a first groove (5204) is arranged inside the lower end of the second gas rod (5106); a sliding plate (5205) fixedly connected to the first push rod (5107) is arranged on the inner side above the first groove (5204). ), a second rotating cylinder (5211) is vertically slidably connected to the lower outer side of the first rotating cylinder (5201), a rotating disk (5206) is fixedly connected to the lower end of the second rotating cylinder (5211), a second guide groove (5207) is provided on the lower surface of the rotating disk (5206), a third hole (5208) is provided inside the second support plate (5103), an elastic telescopic rod (5209) is provided inside the third hole (5208), and a second guide rod (5210) fixedly connected to the elastic telescopic rod (5209) is provided inside the second guide groove (5207).
5. The clothing fabric template segmentation device according to claim 4, characterized in that: The appearance structure of the upper end of the first guide groove (5202) is a vertical straight line, and the appearance structure of the lower end of the first guide groove (5202) is a spiral.
6. The clothing fabric template segmentation device according to claim 4, characterized in that: The outer side surface of the sliding plate (5205) fits with the inner side of the upper end of the first groove (5204), and the appearance structure of the sliding plate (5205) is a rectangular parallelepiped, and the width of the upper end of the first groove (5204) is greater than the width of the lower end of the first groove (5204).
7. The clothing fabric template segmentation device according to claim 4, characterized in that: The appearance structure of the second guide groove (5207) is arc-shaped, and the cooperation mode between the second guide groove (5207) and the second guide rod (5210) is clearance cooperation.
8. The clothing fabric template segmentation device according to claim 4, characterized in that: The appearance structure of the third hole (5208) is a horizontal straight line, and the third hole (5208) and the elastic telescopic rod (5209) are matched in a clearance fit.
9. The clothing fabric template segmentation device according to claim 1, characterized in that: The elastic component (6) comprises a first push plate (603) fixedly connected to the lower end of the elastic telescopic rod (5209); the lower surface of the second support plate (5103) is fixedly connected to an elastic rubber pad (602); a second hole (604) is arranged inside the first push plate (603); a second push plate (605) is arranged inside the second hole (604); the second push plates (605) at both ends are fixedly connected via a bidirectional telescopic rod (614); a slide groove (611) is provided on the inner wall of the second hole (604); a second push plate (605) is arranged inside the slide groove (611) and is in contact with the second push plate (605); ) is fixedly connected to the slider (612), the width of the slide groove (611) close to the second push plate (605) is greater than the width of the slide groove (611) away from the second push plate (605), and the width of the slide groove (611) is greater than the width of the slider (612), the outer side surface of the second push plate (605) is in contact with the inner side surface of the second hole (604), the two sides of the first push plate (603) are fixedly connected with baffles (606), the inner side surface of the third hole (5208) is provided with a third guide groove (607), and the inner side of the third guide groove (607) is provided with a third guide groove (607) fixedly connected to the elastic telescopic rod (5209) The workbench (1) is provided with three guide rods (608), a cooler (609) is fixedly connected to the lower surface of the workbench (1), one end of the second support plate (5103) is fixedly connected to a filter adsorbent (610), the suction end and the output end of the filter adsorbent (610) are both connected to the inner wall of the first push plate (603), the end of the third guide groove (607) away from the first gas rod (5102) is connected to a fourth guide groove (613), the upper and lower ends of the third guide groove (607) are in the shape of horizontal straight lines, and the middle end of the third guide groove (607) is in the shape of an inclined straight line, and the two ends of the fourth guide groove (613) are in the shape of horizontal straight lines. The fourth guide groove (613) is in the shape of an inclined straight line, and the appearance structure of the middle end of the fourth guide groove (613) is in the shape of a horizontal straight line. The other end of the fourth guide groove (613) is connected with the fifth guide groove (615). The outer point of the connection between the fifth guide groove (615) and the fourth guide groove (613) is farther away from the first gas rod (5102) than the inner point of the connection. The outer point of the connection between the fifth guide groove (615) and the third guide groove (607) is lower than the inner point of the connection. The horizontal height of the third guide groove (607) away from one end of the first gas rod (5102) is higher than the horizontal height of the connection between the fifth guide groove (615) and the fourth guide groove (613).
10. The clothing fabric template segmentation device according to claim 9, characterized in that: The horizontal straight length of the upper end of the third guide groove (607) close to the first gas rod (5102) in the same direction as the central axis of the winding drum (3) is consistent with the overall length of the third guide groove (607) not in the same direction as the central axis of the winding drum (3).
Citation Information
Patent Citations
Cloth cutting device
CN213358106U