Physiotherapy muscle paste pattern high-precision printing and automatic cutting integrated equipment
Through the linkage mechanism of the flip part and the twisting dragon, the rapid and automatic shedding and crushing of the residual material of the physiotherapy muscle patch is achieved, solving the problems of low processing efficiency and insufficient production continuity in existing equipment, improving production efficiency and accuracy, and meeting the mass production needs of medical-grade physical therapy muscle patches.
Patent Information
- Application Number
- CN202510848120.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-24
- Publication Date
- 2025-08-01
- Estimated Expiration
- 2045-06-24
AI Technical Summary
The existing physical therapy muscle patch production equipment has low residual material processing efficiency, insufficient production continuity and accuracy defects. The lack of automated transportation positioning system leads to printing misalignment and excessive cutting, making it difficult to meet the mass production needs of medical-grade physical therapy muscle patches.
The linkage mechanism of the connecting group and the windshield group is adopted. Through the cooperation of the flip part and the twisting dragon, the residual material can be quickly and automatically fall off and broken. Combined with the dual-guiding block circulation guidance and intermittent division design, an automated production process is built to ensure positioning accuracy and continuous operation.
It realizes the rapid and automatic peeling and cleaning of residual materials, improves production efficiency and accuracy, ensures high-precision printing and cutting of physical therapy patches, simplifies the operation process, and meets the mass production needs of medical-grade physical therapy patches.
Smart Images

Figure CN120396516A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of physiotherapy muscle patch production, and specifically, to an integrated device for high-precision printing and automatic cutting of physiotherapy muscle patch patterns. Background Art
[0002] The integrated device for high-precision printing and automatic cutting adopts a high-resolution printing system, which can clearly present complex patterns and texts with high color restoration. The automatic cutting module uses precise sensors and efficient blades to achieve fast and accurate cutting. In the production of physiotherapy muscle patches, this device can accurately print information such as product labels and usage instructions, and at the same time automatically cut the muscle patches according to the set size, ensuring the uniformity of product specifications and improving production efficiency and quality.
[0003] The patent with the application number CN202410818890.0 discloses a printing device with an anti-deformation cutting mechanism, including a base. A ink brushing machine and a plate conveyor are installed on the upper side of the base. A fixed frame is fixedly connected to the upper side of the base. The fixed frame is rotatably connected with symmetrically distributed rotating wheel shafts. Symmetrically distributed conveying chains are commonly installed on the symmetrically distributed rotating wheel shafts. Uniformly distributed telescopic brackets are installed on the conveying chains. The telescopic ends of the symmetrically distributed telescopic brackets are commonly fixedly connected with a temperature guiding plate. The temperature guiding plate is heated by hot water, and then the ink on the cardboard is evaporated by the temperature guiding plate, and the temperature guiding plate always presses and fixes the cardboard during the evaporation process.
[0004] However, the existing equipment has significant shortboards such as low efficiency in waste material handling, insufficient production continuity, and precision defects. Traditional equipment lacks an automatic waste material shedding mechanism, and manual removal of the cut waste is required. Manual operation leads to an extended single operation cycle. In addition, due to the lack of an automated transportation and positioning system, there are gaps in the process connection, and manual positioning will also have errors, resulting in frequent problems such as printing misalignment and cutting over-tolerance, making it difficult to meet the mass production requirements of medical-grade physiotherapy muscle patches.
[0005] In view of this, we propose an integrated device for high-precision printing and automatic cutting of physiotherapy muscle patch patterns. Summary of the Invention
[0006] The purpose of the present invention is to provide an integrated device for high-precision printing and automatic cutting of physiotherapy muscle patch patterns. By connecting a linkage group to drive a part of the wind shielding group to partially block the air holes, the waste material of the physiotherapy muscle patch after cutting will fall off automatically due to gravity to solve the problems raised in the above background art.
[0007] To achieve the above purpose, the present invention provides the following technical solutions: An integrated device for high-precision printing and automatic cutting of physiotherapy muscle patch patterns, including a driving table, a transportation system arranged on the top surface of the driving table, an inkjet printer is arranged on its right side, and a laser cutting machine is arranged in front. The driving table includes a driving shaft, a screw conveyor that rotates with the driving shaft, and a transmission part. The transmission part includes a dial and a grooved pulley. This setting drives the screw conveyor to crush and discharge waste synchronously when the driving shaft rotates, and at the same time drives the dial to make the grooved pulley intermittently rotate 90°; The transportation system includes a rotating part that rotates synchronously with the grooved pulley, a fixed part sleeved inside it, and four turning parts regularly distributed on the outer wall of the rotating part. The fixed part includes a fixed disk and two guiding blocks arranged below it. Guiding grooves are provided at the corresponding positions of the outer wall of the fixed disk and the guiding blocks; The turning part includes a rotating pipe, an arc-shaped block sleeved at the inner end of the rotating pipe, guiding rods rotating at both ends of the arc-shaped block, a turning frame clamped at the outer end of the rotating pipe, a cover plate with air holes, two wind shielding groups symmetrically arranged inside the turning frame, and a connecting group sleeved outside the rotating pipe; With the above setting, when the turning part rotates, the guiding rod close to the guiding block moves along the guiding groove, driving the rotating pipe and the turning frame to turn 180°. At the same time, the connecting group drives the wind shielding group to partially block the air holes, so that the remaining materials of the physiotherapy muscle patch after laser cutting fall off automatically due to gravity.
[0008] In the technical solution of the present invention, the driving table further includes a bracket, a support cylinder fixedly connected to the top surface on the right side of the bracket by bolts, a motor fixedly connected to the outer wall of the bracket by bolts, two worms clamped and fixed on the outer wall of the driving shaft, a worm gear fixedly connected to the front end of the central shaft of the screw conveyor by a pin. A discharge pipe is integrally formed on the arc-shaped bulkhead inside the bracket, and a partition is integrally formed on the inner wall of the support cylinder, and an air duct for externally connecting a blower is clamped above the partition on its outer wall.
[0009] This setting is to ensure the recovery of the remaining materials. A collection frame is integrally formed on the top of the bracket to ensure that after the remaining materials fall, they can be crushed and discharged by the rotating screw conveyor.
[0010] In the technical solution of the present invention, the transmission part further includes a rotating shaft, a shaft gear fixedly connected to the outer wall of the rotating shaft by a pin and meshing with the worm, a dial rod integrally formed on the top surface of the dial. The dial is clamped and fixed on the outer wall of the rotating shaft, and the grooved pulley is rotatably connected to the top surface of the horizontal plate inside the bracket through a wheel core shaft.
[0011] This setting drives the driving shaft to rotate through the motor. While driving the screw conveyor to crush and discharge the remaining materials, it drives the dial to make the grooved pulley intermittently rotate 90°, thereby reducing the investment in additional driving equipment.
[0012] In the technical solution of the present invention, the rotating part includes a connecting shaft clamped and fixed to the wheel core shaft of the grooved pulley, a rotating cylinder clamped and fixed to the top of the connecting shaft, a number of sleeves integrally formed on the outer wall of the rotating cylinder, and a number of ventilation covers welded to the inner bottom surface of the rotating cylinder and corresponding to the positions of the sleeves. The bottom surface of the ventilation cover is communicated with the bottom surface of the rotating cylinder.
[0013] This setting is to improve the production continuity of physical therapy muscle stickers. The rotating cylinder drives several flipping parts to complete an intermittent 90° rotation together, and accurately transports the physical therapy muscle stickers to the inkjet printer and the laser cutting machine. Cooperating with the fixing part, it drives the flipping parts at four workstations to complete the processes of feeding, printing, cutting, and waste discharging in sequence.
[0014] In the technical solution of the present invention, the fixing part further includes a sleeve welded and fixed to the inner top surface of the fixing disk at the top. The bottom end of the sleeve is fixedly connected to the top surface of the bracket by bolts and sleeved outside the connecting shaft. The guiding block is fixedly installed on the inner top surface of the fixing disk by bolts.
[0015] This setting is to fix the trajectory between the guiding groove on the fixing disk and the guiding block, and cooperate with the internal structure of the flipping part to enable it to flip, providing conditions for the automatic dropping of the waste material. In the technical solution of the present invention, a cam groove is provided in the outer wall of the rotating pipe in the inner area of the sleeve, and several through-wall grooves penetrating inside and outside are provided in the inner area of the ventilation cover. The arc-shaped block is clamped and fixed to the inner end of the rotating pipe. The end of the guiding rod is hemispherical and its size is adapted to the distance between the guiding groove and the guiding block.
[0016] In the technical solution of the present invention, the other end of the rotating pipe is clamped and fixed to the flipping frame. The cover plate is fixedly connected to the outside of the top frame opening of the flipping frame by screws. The air holes in the middle of the cover plate correspond to the area of the physical therapy muscle sticker, and the air holes at the edge are used to fix the corners of the cutting raw material.
[0017] The above setting is to stabilize the environment for printing and laser cutting. By providing through-wall grooves on the rotating pipe, the air holes on the cover plate can be connected to form an air flow with an external blower. When the flipping part rotates, the guiding rod close to the guiding block moves along the guiding groove, driving the rotating pipe and the flipping frame to flip 180°.
[0018] In the technical solution of the present invention, the wind shielding group includes a collar slidably connected to the circular hole on the outside of the flipping frame, two cross bars symmetrically distributed inside the flipping frame, two connecting ropes connecting the collar and the cross bars, and wind shielding frames welded to both ends of the cross bars.
[0019] In the technical solution of the present invention, the wind shielding group further includes two guiding rings clamped to the inner bottom surface of the flipping frame, sliding rods clamped to the bottom square of the guiding ring and the inner wall of the flipping frame, and springs sleeved outside the sliding rods. The cross bar is slidably connected to the outside of the sliding rod, and the elastic force provided by the spring pushes the cross bar to move away from the guiding ring.
[0020] In the technical solution of the present invention, the connection group includes a sliding ring slidably connected to the inside of the sleeve, a lower protruding rod integrally formed on the inner wall of the sliding ring, two connecting rods clamped and fixed on the outer wall of the sliding ring, and a ring block rotatably connected to the inside of the ring and clamped and fixed with the two connecting rods. When the rotating tube rotates, the lower protruding rod will move along the groove wall of the cam groove, driving the sliding ring to displace in the sleeve, and after pulling the ring block through the connecting rod and then changing the position of the ring, the cross bar is pulled by the connecting rope, thereby covering the edge wind hole of the cover plate through the wind shield frame.
[0021] The above arrangement partially blocks the wind hole by linking the wind shielding group with the connecting group, so that the remaining material of the physiotherapy muscle patch after laser cutting falls off by itself due to gravity.
[0022] Compared with the prior art, the present invention has the following beneficial effects: 1. This integrated device for high-precision printing and automatic cutting of physiotherapy muscle patch patterns achieves rapid and automatic shedding of excess material through the linkage mechanism of the connection group and the windshield group. When the equipment completes the cutting process, the flipping action of the rotating tube drives the connecting rod mechanism through the cam groove, so that the windshield frame accurately closes the adsorption air holes on the edge of the cover plate. At the same time, the spring mechanism provides reset elastic force, which not only makes the excess material fall off quickly, but also realizes automatic cleaning of waste through the extrusion and crushing of the auger, thereby improving waste discharge efficiency.
[0023] 2. This integrated device for high-precision printing and automatic cutting of physiotherapy patches utilizes a collaborative design of dual guide blocks for circular guidance and intermittent indexing of grooved wheels, creating a fully automated production process. Four stations perform loading, printing, cutting, and waste removal sequentially during 90-degree intermittent rotation. Dual guide blocks ensure rapid repositioning of the flip unit. This system enables continuous operation and ensures precise positioning, while operators only need to perform simple loading and unloading operations, significantly shortening production cycles. BRIEF DESCRIPTION OF THE DRAWINGS
[0024] Figure 1 It is a schematic diagram of the overall structure of the present invention; Figure 2 It is a partial structural schematic diagram of the present invention; Figure 3 It is a schematic cross-sectional view of the structure of the driving platform in the present invention; Figure 4 This is one of the partial structural diagrams of the driving platform in the present invention; Figure 5 This is the second schematic diagram of the partial structure of the driving platform in the present invention; Figure 6 This is the third schematic diagram of the partial structure of the driving platform in the present invention; Figure 7 It is a schematic diagram of the structural disassembly of the transmission part in the present invention; Figure 8Schematic cross-sectional view of the structure of the transportation system in the present invention; Figure 9 Schematic cross-sectional view of the structure of the rotating part in the present invention; Figure 10 Schematic cross-sectional view of the structure of the fixed part in the present invention; Figure 11 Schematic exploded view of the structure of the flipping part in the present invention; Figure 12 Schematic view of the structure of the transfer pipe in the present invention; Figure 13 Schematic view of the structure of the wind shield group in the present invention; Figure 14 Schematic cross-sectional view of the structure of the connection group in the present invention; Explanation of reference numerals: 100, driving platform; 110, bracket; 111, discharge pipe; 120, support cylinder; 130, motor; 140, drive shaft; 150, worm; 160, worm gear; 170, auger; 180, transmission part; 181, rotating shaft; 182, shaft gear; 183, dial; 184, lever; 185, sprocket; 200, transportation system; 210, rotating part; 211, connecting shaft; 212, rotating cylinder; 213, sleeve; 214, ventilation hood; 220, fixed part; 221, sleeve; 222, fixed disk; 2220, guide groove; 223, guide block; 230, flipping part; 231, transfer pipe; 2310, cam groove; 2311, pipe wall through groove; 232, arc block; 233, guide rod; 234, flipping frame; 235, cover plate; 236, wind shield group; 2360, collar; 2361, connecting rope; 2362, cross bar; 2363, wind shield frame; 2364, guide ring; 2365, slide bar; 2366, spring; 237, connection group; 2370, sliding ring; 2371, lower convex rod; 2372, connecting rod; 2373, ring block; 300, inkjet printer; 400, laser cutting machine. Detailed implementation manners
[0025] Next, the technical solutions in the present invention will be clearly and completely described in conjunction with the accompanying drawings in the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments in 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.
[0026] Please refer to Figures 1 - 7 As shown, the present embodiment provides the following technical solutions: Integrated equipment for high-precision printing and automatic cutting of physical therapy muscle patch patterns, including a driving platform 100, a transportation system 200 arranged on the top surface of the driving platform 100, an inkjet printer 300 arranged on its right side, and a laser cutting machine 400 arranged in front; In this embodiment, the driving platform 100 includes a driving shaft 140, a screw conveyor 170 rotating with the driving shaft 140, and a transmission part 180. The transmission part 180 includes a dial 183 and a grooved pulley 185.
[0027] Specifically, the driving platform 100 further includes a bracket 110, a support cylinder 120 fixedly connected to the top surface of the right side of the bracket 110 by bolts, a motor 130 fixedly connected to the outer wall of the bracket 110 by bolts, two worms 150 clamped and fixed to the outer wall of the driving shaft 140, a worm gear 160 fixedly connected to the front end of the central axis of the screw conveyor 170 by a pin. A discharge pipe 111 is integrally formed on the arc-shaped bulkhead inside the bracket 110. A partition is integrally formed on the inner wall of the support cylinder 120, and an air duct for connecting an external fan is clamped above the partition on its outer wall.
[0028] Further, the transmission part 180 further includes a rotating shaft 181, a shaft gear 182 fixedly connected to the outer wall of the rotating shaft 181 by a pin and meshing with the worm 150, and a dial rod 184 integrally formed on the top surface of the dial 183. The dial 183 is clamped and fixed to the outer wall of the rotating shaft 181. The grooved pulley 185 is rotatably connected to the top surface of the inner horizontal plate of the bracket 110 through a wheel core shaft.
[0029] Further, the driving platform 100, the inkjet printer 300, and the laser cutting machine 400 are all arranged inside an external frame plate. The bracket 110 in the driving platform 100 is used to provide a fixed platform for the transportation system 200. A collection frame for recycling waste materials is integrally formed on the top of the bracket 110. The discharge pipe 111 is integrally formed at the rear end of the arc-shaped bulkhead of the waste material collection frame. After the fan connected to the support cylinder 120 is started, it is used to form a negative pressure in the space above the inner partition of it. The driving shaft 140 is coaxially connected to the output shaft of the motor 130, and worms 150 are sleeved at the positions corresponding to the worm gear 160 and the transmission part 180 on its outer wall. The rotating shaft 181 in the transmission part 180 is rotatably connected above the inner partition of the bracket 110. This setting can drive the screw conveyor 170 to break and discharge the waste materials while driving the dial 183 to make the grooved pulley 185 intermittently rotate by 90°, thereby reducing the investment in additional driving equipment.
[0030] Please refer to Figures 8 - 9 As shown, in this embodiment, the transportation system 200 includes a rotating part 210 that rotates synchronously with the grooved pulley 185, a fixed part 220 sleeved inside it, and four flipping parts 230 regularly distributed on the outer wall of the rotating part 210.
[0031] Specifically, the rotating part 210 includes a connecting shaft 211 clamped and fixed to the core shaft of the Geneva wheel 185, a rotating cylinder 212 clamped and fixed to the top end of the connecting shaft 211, several sleeves 213 integrally formed on the outer wall of the rotating cylinder 212, and several ventilation hoods 214 welded to the inner bottom surface of the rotating cylinder 212 and corresponding to the positions of the sleeves 213. The bottom surface of the ventilation hood 214 is communicated with the bottom surface of the rotating cylinder 212.
[0032] Further, while the Geneva wheel 185 intermittently rotates 90°, the connecting shaft 211 rotates synchronously with it, and the ventilation hood 214 is used to communicate with the negative pressure space formed by the fan. This setting is to improve the production continuity of the physical therapy muscle patch. The rotating cylinder 212 drives several flipping parts 230 to complete an intermittent 90° rotation together, and accurately transports the physical therapy muscle patch in the inkjet printer 300 and the laser cutting machine 400, and cooperates with the fixing part 220 to drive the flipping parts 230 at the four workstations to complete the feeding, printing, cutting, and waste discharging processes in sequence.
[0033] Please refer to Figures 8 - 10 As shown, in this embodiment, the fixing part 220 includes a fixing disk 222 and two guiding blocks 223 arranged below it. Guiding grooves 2220 are opened at the corresponding positions on the outer wall of the fixing disk 222 and the guiding blocks 223.
[0034] Specifically, the fixing part 220 further includes a sleeve 221 welded and fixed to the inner top surface of the fixing disk 222. The bottom end of the sleeve 221 is fixedly connected to the top surface of the bracket 110 through bolts and sleeved outside the connecting shaft 211. The guiding blocks 223 are fixed to the inner top surface of the fixing disk 222 through bolts.
[0035] Further, the trajectory between the guiding grooves 2220 on the fixing disk 222 and the guiding blocks 223 in this setting, in cooperation with the internal structure of the flipping part 230, enables it to achieve flipping, providing conditions for the automatic dropping of the waste materials.
[0036] Please refer to Figures 8 - 12 As shown, in this embodiment, the flipping part 230 includes a rotating tube 231, an arc-shaped block 232 sleeved at the inner end of the rotating tube 231, guiding rods 233 rotating at both ends of the arc-shaped block 232, a flipping frame 234 clamped at the outer end of the rotating tube 231, a cover plate 235 with air holes, two wind shielding groups 236 symmetrically arranged inside the flipping frame 234, and a connecting group 237 sleeved outside the rotating tube 231.
[0037] Specifically, a cam groove 2310 is opened on the outer wall of the rotating tube 231 in the inner area of the sleeve 213, and several through-wall grooves 2311 that penetrate inside and outside are opened in the inner area of the ventilation hood 214. The arc-shaped block 232 is clamped and fixed to the inner end of the rotating tube 231. The ends of the guiding rods 233 are hemispherical and the size is adapted to the distance between the guiding grooves 2220 and the guiding blocks 223.
[0038] Further, the other end of the rotating tube 231 is clamped and fixed to the flipping frame 234, and the cover plate 235 is fixedly connected to the outside of the top frame opening of the flipping frame 234 by screws. The air hole in the middle of the cover plate 235 corresponds to the physical therapy muscle patch area, and the edge air holes are used to fix the cut corners of the raw materials.
[0039] Further, when the material-carrying flipping part 230 rotates below the inkjet printer 300, the through slots 2311 on the tube wall of the rotating tube 231 are used to allow air flow to enter the inside of the flipping frame 234 from the air holes on the cover plate 235, and then be sent into the inside of the ventilation hood 214 through the rotating tube 231. The device is connected to the air flow of the external fan of the support cylinder 120 through the ventilation hood 214 to stabilize the printing environment and ensure the high-precision printing of the physical therapy muscle patch pattern. Then, after turning to the laser cutting machine 400 station, laser cutting is completed. After that, the rotating part 210 continues to rotate intermittently. At this time, the guide rod 233 near the guide block 223 in the flipping part 230 will move along the trajectory formed by the guide slot 2220 and the guide block 223, causing the other guide rod 233 to move downward, and causing the arc-shaped block 232 to flip, thereby driving the rotating tube 231 and the flipping frame 234 to flip 180°. This setting is to stabilize the printing and laser cutting environment. By opening the through slots 2311 on the rotating tube 231, the air holes on the cover plate 235 can be connected to the external fan to form an air flow connection. When the flipping part 230 rotates, the guide rod 233 near the guide block 223 moves along the guide slot 2220, driving the rotating tube 231 and the flipping frame 234 to flip 180°.
[0040] Please refer to Figures 8 - 14 As shown, in this embodiment, the wind blocking group 236 includes a collar 2360 slidably connected to the circular hole outside the flipping frame 234, two cross bars 2362 symmetrically distributed inside the flipping frame 234, two connecting ropes 2361 connecting the collar 2360 and the cross bars 2362, and wind blocking frames 2363 welded to both ends of the cross bars 2362.
[0041] Specifically, the wind blocking group 236 further includes two guide rings 2364 clamped to the inner bottom surface of the flipping frame 234, sliding rods 2365 clamped to the bottom square of the guide ring 2364 and the inner wall of the flipping frame 234, and springs 2366 sleeved outside the sliding rods 2365. The cross bars 2362 are slidably connected to the outside of the sliding rods 2365, and the elastic force provided by the springs 2366 pushes the cross bars 2362 to move away from the guide rings 2364.
[0042] Furthermore, the connection group 237 includes a sliding ring 2370 slidably connected to the inside of the sleeve 213, a lower protrusion 2371 integrally formed on the inner wall of the sliding ring 2370, two connecting rods 2372 clamped and fixed on the outer wall of the sliding ring 2370, and a ring block 2373 rotatably connected to the inside of the ring 2360 and clamped and fixed with the two connecting rods 2372. When the rotating tube 231 rotates, the lower protrusion 2371 will move along the groove wall of the cam groove 2310, driving the sliding ring 2370 to move in the sleeve 213, and pulling the ring block 2373 through the connecting rod 2372, thereby changing the position of the ring 2360, and pulling the cross bar 2362 through the connecting rope 2361, thereby covering the edge air holes of the cover through the wind shield frame 2363.
[0043] Furthermore, when the flip frame 234 completes the flipping process, in the connection group 237, the cam groove 2310 on the outer side of the rotating tube 231 forms a track with the lower protrusion 2371 of the sliding ring 2370, driving the sliding ring 2370 to move axially along the sleeve 213, and pulling the ring block 2373 to move through the connecting rod 2372, thereby changing the position of the ring 2360, and the connecting rope 2361 pulls the cross bar 2362, so that the wind shield 2363 blocks the air hole on the edge of the cover plate 235 for fixing the corners of the cut raw materials, thereby releasing the adsorption of the corners of the raw materials. The cutting residue falls into the collection frame outside the auger 170 under the action of gravity, and is discharged from the discharge pipe 111 after being squeezed and crushed by the auger 170. During the subsequent flipping process of the flip frame 234, the position of the sliding ring 2370 is restored, and the cross bar 2362 is reset under the elastic force of the spring 2366, so that the air holes at the edge of the cover plate 235 for fixing the edges of the cut raw materials are reopened. This setting partially blocks the air holes through the connecting group 237 to link the wind shield group 236, so that the residual physical therapy muscle patch after laser cutting falls off by itself due to gravity.
[0044] Finally, it should be noted that the motor 130, inkjet printer 300 and laser cutter 400 involved in the present invention are all universal standard parts or components known to those skilled in the art. Their structures and principles are known to those skilled in the art through technical manuals or conventional experimental methods. In the idle space of this device, the motor 130, inkjet printer 300 and laser cutter 400 are connected to an external power supply through wires. The specific connection method should refer to the working principle of the present invention. The electrical connection between each electrical component is completed in a sequential working order, and the detailed connection methods are all well-known technologies in the art.
[0045] When the integrated device for high-precision printing and automatic cutting of the physical therapy muscle patch pattern of the present invention is in use, the operator places the raw material of the physical therapy muscle patch on the surface of the middle cover plate 235 of the flipping part 230 and then starts the motor 130. At this time, the driving shaft 140 drives the auger 170 to rotate and extrude and crush the waste material in the discharge pipe 111 through the double-worm 150 transmission structure, and drives the rotating part 210 in the transportation system 200 to achieve precise 90° intermittent rotation through the cooperation of the dial 183 and the sprocket 185 of the transmission part 180; When the loading and flipping part 230 rotates to the lower part of the inkjet printer 300, the equipment is connected to the air flow of the external fan of the support cylinder 120 through the ventilation hood 214 to stabilize the printing environment and ensure the high-precision printing of the physical therapy muscle patch pattern. Then, after turning to the laser cutting machine 400 station, the laser cutting is completed. After that, the rotating part 210 continues to rotate intermittently. At this time, the guide rod 233 near the guide block 223 in the flipping part 230 will move along the trajectory formed by the guide groove 2220 and the guide block 223, driving the arc-shaped block 232 to flip, thereby driving the rotating pipe 231 and the flipping frame 234 to flip 180°; At this time, in the connecting group 237, the cam groove 2310 on the outer side of the rotating pipe 231 forms a trajectory fit with the lower convex rod 2371 of the sliding ring 2370, driving the sliding ring 2370 to move axially along the sleeve 213. The ring block 2373 is pulled to move through the connecting rod 2372, thereby changing the position of the collar 2360, and the cross bar 2362 is pulled by the connecting rope 2361, so that the windshield 2363 blocks the air holes at the edge of the cover plate 235 for fixing the corners of the cutting raw material, releasing the adsorption force of the raw material corners. The cutting scraps fall into the collection box outside the auger 170 under the action of gravity, and after being extruded and crushed by the auger 170, they are discharged through the discharge pipe 111; After the waste is discharged, the flipping part 230 continues to rotate with the rotating part 210, and the other guide block 223 guides the guide rod 233 to flip and reset twice. When the cut finished product rotates back to the initial station, the operator can take down the finished product and place new raw materials, and repeat the above operations subsequently to realize the batch production of physical therapy muscle patches.
[0046] The foregoing description of the specific exemplary embodiments of the present invention is for purposes of illustration and exemplification. These descriptions are not intended to limit the invention to the precise forms disclosed, and it is apparent that many changes and variations are possible in light of the above teaching. The purpose of selecting and describing the exemplary embodiments is to explain the specific principles of the invention and its practical applications, so that those skilled in the art can implement and utilize the various different exemplary embodiments of the invention as well as various different selections and changes. The scope of the present invention is intended to be defined by the specification and its equivalents.
Claims
1. An integrated device for high-precision printing and automatic cutting of physical therapy muscle tape patterns, including a driving platform, a transportation system arranged on the top surface of the driving platform, an inkjet printer arranged on its right side, and a laser cutting machine arranged in front; It is characterized in that: The driving platform includes a driving shaft, a screw conveyor that rotates with the driving shaft, and a transmission part. The transmission part includes a dial and a sprocket. When the driving shaft rotates, it synchronously drives the screw conveyor to crush and discharge waste, and at the same time drives the dial to make the sprocket intermittently rotate 90°; The transportation system includes a rotating part that rotates synchronously with the sprocket, a fixed part sleeved inside it, and four flipping parts regularly distributed on the outer wall of the rotating part. The fixed part includes a fixed disk and two guiding blocks arranged below it. Guiding grooves are opened at the corresponding positions of the outer wall of the fixed disk and the guiding blocks; The flipping part includes a rotating tube, an arc-shaped block sleeved at the inner end of the rotating tube, guiding rods rotating at both ends of the arc-shaped block, a flipping frame clamped at the outer end of the rotating tube, a cover plate with air holes, two symmetrically arranged wind blocking groups inside the flipping frame, and a connecting group sleeved outside the rotating tube; When the flipping part rotates, the guiding rod close to the guiding block moves along the guiding groove, driving the rotating tube and the flipping frame to flip 180°. At the same time, the connecting group drives the wind blocking group to partially block the air holes, so that the remaining material of the physical therapy muscle tape after laser cutting falls off automatically due to gravity.
2. The integrated device for high-precision printing and automatic cutting of physiotherapy muscle tape patterns according to claim 1, wherein: The driving platform further includes a bracket, a support cylinder fixedly connected to the top surface of the bracket on the right side by bolts, a motor fixedly connected to the outer wall of the bracket by bolts, two worms clamped and fixed on the outer wall of the driving shaft, a worm gear fixedly connected to the front end of the central shaft of the screw conveyor by a pin. A discharge pipe is integrally formed on the arc-shaped bulkhead inside the bracket, and a partition is integrally formed on the inner wall of the support cylinder, and an air duct for connecting an external blower is clamped above the partition on its outer wall.
3. The integrated device for high-precision printing and automatic cutting of the physical therapy muscle patch pattern according to claim 1, wherein: The transmission part further includes a rotating shaft, a shaft gear fixedly connected to the outer wall of the rotating shaft by a pin and meshing with the worm, and a dial rod integrally formed on the top surface of the dial. The dial is clamped and fixed on the outer wall of the rotating shaft, and the sprocket is rotatably connected to the top surface of the horizontal plate inside the bracket through a wheel core shaft.
4. The integrated device for high-precision printing and automatic cutting of physiotherapy muscle patch patterns according to claim 1, characterized in that: The rotating part includes a connecting shaft clamped and fixed to the wheel core shaft of the sprocket, a rotating cylinder clamped and fixed to the top of the connecting shaft, a number of sleeves integrally formed on the outer wall of the rotating cylinder, and a number of ventilation covers welded to the inner bottom surface of the rotating cylinder and corresponding to the positions of the sleeves. The bottom surface of the ventilation cover is communicated with the bottom surface of the rotating cylinder.
5. The integrated device for high-precision printing and automatic cutting of physical therapy muscle patch patterns according to claim 1, characterized in that: The fixed part further includes a sleeve welded and fixed to the inner top surface of the fixed disk at the top. The bottom end of the sleeve is fixedly connected to the top surface of the bracket by bolts and sleeved outside the connecting shaft. The guiding block is fixed to the inner top surface of the fixed disk by bolts.
6. The integrated device for high-precision printing and automatic cutting of physiotherapy muscle tape patterns according to claim 1, characterized in that: A cam groove is opened in the outer wall of the rotating tube in the inner area of the sleeve, and a number of through-wall through grooves are opened in the inner area of the ventilation cover. The arc-shaped block is clamped and fixed to the inner end of the rotating tube. The end of the guiding rod is hemispherical and its size is adapted to the distance between the guiding groove and the guiding block.
7. The integrated device for high-precision printing and automatic cutting of the physical therapy muscle patch pattern according to claim 1, wherein: The other end of the rotating tube is clamped and fixed to the flipping frame. The cover plate is fixedly connected to the outside of the top frame opening of the flipping frame by screws. The air holes in the middle of the cover plate correspond to the area of the physical therapy muscle tape, and the air holes at the edge are used to fix the corners of the cutting raw material.
8. The integrated device for high-precision printing and automatic cutting of physical therapy muscle patch patterns according to claim 1, characterized in that: The windshield group includes a collar slidably connected to the circular hole on the outside of the flipping frame, two cross bars symmetrically distributed inside the flipping frame, two connecting ropes connecting the collar and the cross bars, and windshield frames welded to both ends of the cross bars.
9. The integrated device for high-precision printing and automatic cutting of physiotherapy muscle tape patterns according to claim 8, characterized in that: The windshield group further includes two guide rings clamped to the inner bottom surface of the flipping frame, a sliding rod clamped to the bottom square of the guide ring and the inner wall of the flipping frame, and a spring sleeved on the outside of the sliding rod. The cross bar is slidably connected to the outside of the sliding rod, and the elastic force provided by the spring pushes the cross bar to move away from the guide ring.
10. The integrated equipment for high-precision printing and automatic cutting of the physical therapy muscle patch pattern according to claim 1, characterized in that: The connection group includes a sliding ring slidably connected to the inside of the sleeve, a lower convex rod integrally formed on the inner wall of the sliding ring, two connecting rods clamped and fixed to the outer wall of the sliding ring, and a ring block rotatably connected to the inside of the collar and clamped and fixed to the two connecting rods. When the rotating pipe rotates, the lower convex rod will move along the wall of the cam groove, driving the sliding ring to displace inside the sleeve. By pulling the ring block through the connecting rod, the position of the collar is changed, and then the cross bar is pulled through the connecting rope, so as to block the edge air holes of the cover plate through the windshield frame.
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