An apparatus for processing artemisia vestita by cutting

CN224809701UActive Publication Date: 2026-09-29NANYANG BLUE OCEAN SENYUAN PHARM TECH CO LTD
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Patent Information

Application Number
CN202522410514.0
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-11-13
Publication Date
2026-09-29
Estimated Expiration
2035-11-13

AI Technical Summary

Technical Problem

[0003]现有的艾草贴加工用剪裁装置,通常由电机或气动装置提供动力,操作员将片材放入工作台,踩下脚踏开关或按下按钮,使得冲压机构带动定制化的刀模向下移动对片状材料进行冲压裁切,使得设备自动完成一次冲压循环,但是在实际使用的过程中,而艾草贴片材材质柔软、易变形,导致在在被裁切过程中片材可能会滑动或起皱,进而可能会影响艾草贴的剪裁精度

Benefits of technology

其一,通过双轴电机驱动调节丝杆,精细控制活动座两侧伸缩架的伸缩,从而带动下压块水平移动以适应片材宽度;同时,伺服电机驱动双向丝杆,通过剪刀撑结构(驱动块、连杆、滑动块组合)带动两侧活动座同步相向或背向移动,最终实现四个下压块在水平面内位置的独立与协同调节,这种设计使得下压块能精确适配不同尺寸的艾草贴片材,为后续裁切提供了坚实的基础,电动推杆最终驱动下压块完成下压动作,确保片材四角被均匀施力固定,有效防止了裁切过程中片材的滑动或起皱,这种精准且稳固的固定方式,是获得高质量裁切轮廓的前提,特别适用于材质柔软、易变形的艾草贴片材。

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Abstract

The utility model provides a kind of cutting device for processing wormwood paste, including support, the upper surface support plate of support is fixedly arranged with cutting table, the upper surface of support is fixedly arranged with support, the downside of support is fixedly arranged with two with the vertical center of support symmetrically distributed slide rail, two sliding blocks are slidably arranged on each slide rail, sliding frame is fixedly arranged between sliding block;The inside of sliding frame is fixedly arranged with driving seat, the inside of driving seat is slidably arranged with two with the vertical center of sliding frame symmetrically distributed sliding plate, mounting rack is fixedly arranged on each sliding plate. Through the cutting device for processing wormwood paste described in the utility model, the four corners of the sheet are uniformly forced to be fixed, effectively preventing the sliding or wrinkling of the sheet during cutting, this accurate and stable fixing method is the prerequisite for obtaining high-quality cutting profile, especially suitable for soft material, wormwood paste sheet is easily deformed.
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Description

Technical Field

[0001] This utility model belongs to the technical field, and specifically relates to a cutting device for processing mugwort patches. Background Technology

[0002] The processing of mugwort patches is a process that combines traditional Chinese medicine theory with modern manufacturing technology. In the processing of mugwort patches, a die-cutting machine is used to drive a customized die to press the sheet material coated with medicinal powder and glue into a specific shape.

[0003] Existing cutting devices for processing mugwort patches are typically powered by motors or pneumatic devices. The operator places the sheet on the worktable, steps on a foot switch or presses a button, causing the stamping mechanism to move a customized die downwards to stamp and cut the sheet material, allowing the equipment to automatically complete one stamping cycle. However, in actual use, the mugwort patch sheet material is soft and easily deformed, which may cause the sheet to slip or wrinkle during the cutting process, potentially affecting the cutting accuracy of the mugwort patch. Utility Model Content

[0004] In view of this, this utility model addresses the shortcomings of the prior art by providing a cutting device for processing mugwort patches. By applying force evenly to fix the four corners of the sheet, it effectively prevents the sheet from sliding or wrinkling during the cutting process. This precise and stable fixing method is a prerequisite for obtaining a high-quality cutting outline and is particularly suitable for mugwort patch sheets that are soft and easily deformed.

[0005] To solve the above technical problems, the technical solution adopted by this utility model is: a cutting device for processing mugwort patches, including a support, a cutting table fixedly installed on the upper surface of the support plate, a bracket fixedly installed on the upper surface of the support, and two slide rails symmetrically distributed about the vertical center of the bracket fixedly installed on the lower side of the bracket, with two sliders slidably installed on each slide rail, and a sliding frame fixedly installed between the sliders. The sliding frame has a fixed drive base inside. Inside the drive base, there are two sliding plates symmetrically distributed around the vertical center of the sliding frame. Each sliding plate has a fixed mounting bracket. On the side of the mounting bracket closest to the vertical center of the cutting table, there is a fixed movable seat. Inside each movable seat, there are two telescopic frames symmetrically distributed around the vertical center of the movable seat. On the side of the telescopic frame closest to the vertical center of the cutting table, there is a fixed pressing block.

[0006] As a further improvement of this utility model, two support plates symmetrically distributed around the vertical center of the movable seat are fixedly installed inside each movable seat. Adjusting screws are rotatably installed between the support plates and the inner walls of adjacent movable seats, and the adjusting screws are threadedly connected to adjacent telescopic frames respectively. A sliding groove is opened on the side of the sliding plate near the vertical center of the drive seat. Two sliding blocks symmetrically distributed around the horizontal center of the drive seat are slidably installed inside the sliding groove. A bidirectional screw is rotatably installed in the middle of the drive seat. Two drive blocks symmetrically distributed around the horizontal center of the drive seat are threadedly connected to the outer side of the bidirectional screw. Connecting rods are rotatably installed on both sides of the drive blocks. The ends of the connecting rods away from the drive blocks are rotatably connected to adjacent sliding blocks respectively. The middle parts of adjacent connecting rods are rotatably connected. A servo motor is installed on the upper surface of the sliding frame. The output shaft of the servo motor is fixed to the bidirectional screw through a coupling. A dual-axis motor is installed between two adjacent support plates. The output shaft of the dual-axis motor is fixed to the adjacent adjusting screws through couplings respectively.

[0007] As a further improvement of this utility model, an electric push rod is provided on the upper surface of the bracket, and the telescopic end of the electric push rod is connected and fixed to the drive seat.

[0008] As a further improvement of this utility model, the upper surface of the bracket is provided with multiple sliding cylinders, and each sliding cylinder has a sliding column slidably disposed inside. A mounting seat is fixedly disposed between the bottom ends of the sliding columns, and a cutting die is detachably mounted on the lower surface of the mounting seat. The upper surface of the bracket is provided with a hydraulic push rod, the telescopic end of which is connected and fixed to the mounting seat. The upper surface of the bracket is provided with a hydraulic pump, and the oil inlet and outlet of the hydraulic push rod are both connected to the hydraulic pump.

[0009] As a further improvement of this utility model, the lower surface of the support is provided with multiple support feet, and the front side of the support is rotatably provided with multiple door panels.

[0010] Compared with the prior art, the beneficial effects of this utility model are as follows: Firstly, a dual-axis motor drives an adjusting screw to precisely control the extension and retraction of the telescopic frames on both sides of the movable seat, thereby causing the lower pressure block to move horizontally to adapt to the width of the sheet. At the same time, a servo motor drives a bidirectional screw, which, through a scissor brace structure (a combination of drive block, connecting rod, and sliding block), drives the movable seats on both sides to move synchronously in opposite directions or in opposite directions. Ultimately, this achieves independent and coordinated adjustment of the position of the four lower pressure blocks in the horizontal plane. This design allows the lower pressure blocks to accurately adapt to different sizes of mugwort patch sheets, providing a solid foundation for subsequent cutting. The electric push rod ultimately drives the lower pressure block to complete the pressing action, ensuring that the four corners of the sheet are evenly force-fixed, effectively preventing the sheet from sliding or wrinkling during the cutting process. This precise and stable fixing method is a prerequisite for obtaining a high-quality cutting profile and is particularly suitable for soft and easily deformable mugwort patch sheets.

[0011] Secondly, after the sheet is reliably fixed, the hydraulic pump drives the hydraulic push rod, which in turn drives the mounting base equipped with a specific cutting die to perform stamping and cutting. Since the sheet remains flat and fixed in position throughout the cutting process, the cutting die can cut completely according to the preset trajectory, effectively avoiding problems such as dimensional deviation, edge burrs, or shape distortion caused by material displacement. This is crucial for products like Artemisia argyi patches that may require flatness during application, significantly improving the overall quality and consistency of the cut products, reducing the scrap rate caused by cutting defects, and laying a good foundation for subsequent packaging and user experience. Attached Figure Description

[0012] The present invention will now be described in further detail with reference to the accompanying drawings and specific embodiments.

[0013] Figure 1 This is a schematic diagram of the cutting device for processing mugwort patches according to this utility model; Figure 2 This is a schematic diagram of the internal cross-sectional structure of the cutting device for processing mugwort patches according to this utility model; Figure 3 This is an enlarged structural diagram of section A of the cutting device for processing mugwort patches according to this utility model; Figure 4 This is a schematic diagram of the planar structure of the cutting device for processing mugwort patches according to this utility model.

[0014] In the diagram: 101, support; 102, door panel; 103, support leg; 104, cutting table; 105, bracket; 106, slide cylinder; 107, slide column; 108, mounting base; 109, cutting die; 110, hydraulic push rod; 111, hydraulic pump; 201, slide rail; 202, slider; 203, sliding frame; 204, drive base; 205, sliding plate; 206, mounting frame; 207, movable base; 208, telescopic frame; 209, lower pressure block; 210, electric push rod; 301, support plate; 302, adjusting screw; 303, dual-axis motor; 304, slide groove; 305, sliding block; 306, double-acting screw; 307, drive block; 308, connecting rod; 309, servo motor. Detailed Implementation

[0015] To better understand this utility model, the following embodiments further illustrate its content, but the scope of protection of this utility model is not limited to the embodiments described below. Numerous specific details are set forth in the following description to provide a more thorough understanding of this utility model. However, it will be apparent to those skilled in the art that this utility model can be practiced without one or more of these details.

[0016] like Figure 1 , 4As shown, the support includes a support 101. A cutting table 104 is fixedly installed on the upper surface of the support plate 301. A bracket 105 is fixedly installed on the upper surface of the support 101. Two slide rails 201 are fixedly installed on the lower side of the bracket 105, which are symmetrically distributed around the vertical center of the bracket 105. Two sliders 202 are slidably installed on each slide rail 201. A sliding frame 203 is fixedly installed between the sliders 202. A drive seat 204 is fixedly installed inside the sliding frame 203. Two sliding plates 205 are slidably arranged inside the drive seat 204, symmetrically distributed around the vertical center of the sliding frame 203. A mounting bracket 206 is fixedly installed on each sliding plate 205. A movable seat 207 is fixedly installed on the side of the mounting bracket 206 near the vertical center of the cutting table 104. Two telescopic frames 208 are slidably arranged inside the movable seat 207, symmetrically distributed around the vertical center of the movable seat 207. A pressing block 209 is fixedly installed on the side of the telescopic frame 208 near the vertical center of the cutting table 104.

[0017] like Figure 2 , 3 As shown, each movable seat 207 has two support plates 301 fixedly installed inside, symmetrically distributed around the vertical center of the movable seat 207. Adjusting screws 302 are rotatably installed between each support plate 301 and the inner wall of the adjacent movable seat 207. The adjusting screws 302 are threadedly connected to the adjacent telescopic frames 208. Each sliding plate 205 has a groove 304 on the side near the vertical center of the drive seat 204. Two sliding blocks 305 symmetrically distributed around the transverse center of the drive seat 204 are slidably installed inside each groove 304. A bidirectional screw 306 is rotatably installed in the middle of the drive seat 204, and the outer side of the bidirectional screw 306 is threadedly connected to… Two drive blocks 307 are symmetrically distributed around the transverse center of the drive base 204. Connecting rods 308 are rotatably mounted on both sides of the drive blocks 307. The ends of the connecting rods 308 away from the drive blocks 307 are rotatably connected to the adjacent sliding blocks 305. The middle parts of the adjacent connecting rods 308 are rotatably connected. A servo motor 309 is mounted on the upper surface of the sliding frame 203. The output shaft of the servo motor 309 is fixed to the bidirectional lead screw 306 by a coupling. A dual-axis motor 303 is mounted between two adjacent support plates 301. The output shaft of the dual-axis motor 303 is fixed to the adjacent adjusting lead screw 302 by a coupling.

[0018] like Figure 1 , 2 As shown, an electric push rod 210 is provided on the upper surface of the bracket 105, and the telescopic end of the electric push rod 210 is connected and fixed to the drive seat 204.

[0019] like Figure 1 , 2As shown, the upper surface of the bracket 105 is provided with multiple sliding cylinders 106, and each sliding cylinder 106 has a sliding column 107 slidably disposed inside. A mounting base 108 is fixedly disposed between the bottom ends of the sliding columns 107, and a cutting die 109 is detachably mounted on the lower surface of the mounting base 108. The upper surface of the bracket 105 is provided with a hydraulic push rod 110, and the telescopic end of the hydraulic push rod 110 is connected and fixed to the mounting base 108. The upper surface of the bracket 105 is provided with a hydraulic pump 111, and the oil inlet and oil outlet of the hydraulic push rod 110 are both connected to the hydraulic pump 111.

[0020] According to another embodiment of the present invention, such as Figure 1 , 4 As shown, the lower surface of the support 101 is provided with a plurality of legs 103, and the front side of the support 101 is rotatably provided with a plurality of door panels 102.

[0021] Place the mugwort patch material to be processed and cut on the cutting table 104, and then fix the cutting die 109 corresponding to the mugwort patch material on the mounting base 108 by external bolts. Then, the dual-axis motor 303 and servo motor 309 are adjusted according to the length and width of the mugwort patch to be processed and cut. The output shaft of the dual-axis motor 303 drives the adjusting screw 302 connected to it to rotate. In turn, through the threaded relationship between the adjusting screw 302 and the telescopic frame 208, the telescopic frames 208 on both sides of each movable seat 207 retract into the interior of the movable seat 207 or extend out from the interior of the movable seat 207. This causes the pressing blocks 209 installed on the telescopic frame 208 to move closer to or further away from the vertical center of the movable seat 207, so that the positions of the two pressing blocks 209 on both sides of the movable seat 207 can adapt to the width of the mugwort patch. The output shaft of the servo motor 309 drives the bidirectional screw 306 connected to it to rotate. In turn, through the threaded relationship between the bidirectional screw 306 and the drive block 307, the drive blocks 307 on both sides move towards each other or away from each other. During the movement of the drive blocks 307, the drive blocks 307 and the connecting rod 308 move together. The drive block 307, the connecting rod 308 and the sliding block 305 rotate, and the middle part of the connecting rod 308 rotates. At this time, the sliding block 305 moves towards or away from each other inside the slide groove 304. The drive block 307, the connecting rod 308 and the sliding block 305 can form a scissor brace structure, which can drive the sliding plates 205 on both sides of the drive seat 204 to move towards or away from each other. This causes the movable seat 207 installed on the sliding plate 205 to move closer to or away from the vertical center of the cutting table 104. This causes the movable seats 207 on both sides to drive the two pressing blocks 209 installed on the movable seats 207 to move closer to or away from the vertical center of the cutting table 104. This allows the position of the pressing blocks 209 on both sides to adapt to the width of the mugwort patch. Through the cooperation of the dual-axis motor 303 and the servo motor 309, the four pressing blocks 209 can be moved horizontally to a suitable position, so that the four pressing blocks 209 can press down and fix the four corners of the mugwort patch. Then control the electric push rod 210 to operate, so that the telescopic end of the electric push rod 210 drives the sliding frame 203 to move downward, thereby driving the pressure block 209 to move downward to press down and fix the four corners of the mugwort patch. Then, the hydraulic pump 111 is controlled to run, which in turn controls the hydraulic push rod 110 to run. This causes the hydraulic push rod 110 to move the mounting base 108 downward, which in turn causes the cutting die 109 mounted on the lower side of the mounting base 108 to punch and cut the mugwort patch material fixed at the four corners on the cutting table 104.

[0022] Finally, it should be noted that the above embodiments are only used to illustrate the technical solution of this utility model and are not intended to limit it. Any other modifications or equivalent substitutions made by those skilled in the art to the technical solution of this utility model, as long as they do not depart from the spirit and scope of the technical solution of this utility model, should be covered within the scope of the claims of this utility model.

Claims

1. A cutting device for processing mugwort patches, comprising a support (101), characterized in that: A cutting table (104) is fixedly installed on the upper surface support plate (301) of the support (101), and a bracket (105) is fixedly installed on the upper surface of the support (101). Two slide rails (201) are fixedly installed on the lower side of the bracket (105) and are symmetrically distributed around the vertical center of the bracket (105). Two sliders (202) are slidably installed on each slide rail (201), and a sliding frame (203) is fixedly installed between the sliders (202). A drive seat (204) is fixedly installed inside the sliding frame (203). Two sliding plates (205) are symmetrically distributed around the vertical center of the sliding frame (203) inside the drive seat (204). A mounting bracket (206) is fixedly installed on each sliding plate (205). A movable seat (207) is fixedly installed on the side of the mounting bracket (206) near the vertical center of the cutting table (104). Two telescopic frames (208) are symmetrically distributed around the vertical center of the movable seat (207) inside the movable seat (207). A pressing block (209) is fixedly installed on the side of the telescopic frame (208) near the vertical center of the cutting table (104).

2. The cutting device for processing mugwort patches as described in claim 1, characterized in that: The interior of each movable seat (207) is fixedly provided with two support plates (301) symmetrically distributed around the vertical center of the movable seat (207). Each support plate (301) and the inner wall of the adjacent movable seat (207) are rotatably provided with an adjusting screw (302). The adjusting screw (302) is threadedly connected to the adjacent telescopic frame (208).

3. The cutting device for processing mugwort patches as described in claim 2, characterized in that: The sliding plate (205) has a groove (304) on the side near the vertical center of the drive seat (204). Inside the groove (304), there are two sliding blocks (305) symmetrically distributed around the horizontal center of the drive seat (204). A double-acting screw (306) is rotatably provided in the middle of the drive seat (204). Two drive blocks (307) symmetrically distributed around the horizontal center of the drive seat (204) are threaded to the outside of the double-acting screw (306). A connecting rod (308) is rotatably provided on both sides of the drive block (307). The end of the connecting rod (308) away from the drive block (307) is rotatably connected to the adjacent sliding block (305). The middle parts of the adjacent connecting rods (308) are rotatably connected.

4. The cutting device for processing mugwort patches as described in claim 3, characterized in that: A servo motor (309) is provided on the upper surface of the sliding frame (203). The output shaft of the servo motor (309) is fixed to the bidirectional lead screw (306) by a coupling. A dual-axis motor (303) is provided between two adjacent support plates (301). The output shaft of the dual-axis motor (303) is fixed to the adjacent adjusting lead screw (302) by a coupling.

5. The cutting device for processing mugwort patches as described in claim 1, characterized in that: An electric push rod (210) is provided on the upper surface of the bracket (105), and the telescopic end of the electric push rod (210) is connected and fixed to the drive seat (204).

6. The cutting device for processing mugwort patches as described in claim 1, characterized in that: The upper surface of the bracket (105) is provided with a plurality of sliding cylinders (106), and a sliding column (107) is slidably provided inside each sliding cylinder (106). A mounting base (108) is fixedly provided between the bottom ends of the sliding columns (107), and a cutting die (109) is detachably installed on the lower surface of the mounting base (108).

7. The cutting device for processing mugwort patches as described in claim 6, characterized in that: The upper surface of the bracket (105) is provided with a hydraulic push rod (110), the telescopic end of the hydraulic push rod (110) is connected and fixed to the mounting base (108), the upper surface of the bracket (105) is provided with a hydraulic pump (111), and the oil inlet and oil outlet of the hydraulic push rod (110) are both connected to the hydraulic pump (111).

8. The cutting device for processing mugwort patches as described in claim 1, characterized in that: The lower surface of the support (101) is provided with a plurality of legs (103), and the front side of the support (101) is rotatably provided with a plurality of door panels (102).