A high-precision automated film die-cutting device
By designing a combination of a die-cutting treatment structure, a first support structure and a second support structure in the film die-cutting equipment, combined with the power mechanism and an electrically controlled hydraulic control system, the problem of channel blockage caused by dust and waste in the film die-cutting equipment is solved, and high-precision automatic die-cutting and efficient waste chip treatment are achieved.
Patent Information
- Application Number
- CN202411814660.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-11
- Publication Date
- 2025-05-30
- Estimated Expiration
- 2044-12-11
AI Technical Summary
Existing film die-cutting equipment is prone to dust and waste during use, resulting in blockage of channels and affecting the in-place and efficiency of die-cutting.
A high-precision automated film die-cutting equipment is designed, which adopts a combination of a die-cutting processing structure, a first support structure and a second support structure. The film is lifted through the synchronous movement of the power mechanism, leaving enough processing time for the film processed at the center position, and is also adjusted through the conversion of the electrically controlled hydraulic control rod and the die-cutting tool to avoid waste chip accumulation and prevent passage blockage.
High-precision automated die-cutting of films is achieved, avoids channel blockage, ensures the in-place and efficiency of die-cutting, and is suitable for large-area die-cutting.
Smart Images

Figure CN119283129B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of thin film die-cutting equipment, and specifically relates to a high-precision automatic thin film die-cutting equipment. Background Art
[0002] Die-cutting is a process of cutting printed products or other paper products according to a designed pattern, so that their shapes are no longer limited to straight edges and right angles. Traditional die-cutting uses a die-cutting knife to form a die-cutting plate according to the pattern required by the product design, and under the action of pressure, the printed product or other sheet blanks are rolled and cut into the required shapes or cut marks. The indentation process is to use a scoring knife or a scoring die to press a score line on the sheet material through pressure, so that the sheet material can be bent and formed at a predetermined position.
[0003] Chinese Patent Publication No. CN208247000U discloses a die-cutting positioning device for ultra-long plastic film products, including a punching press body. The bottom of the punching press body is fixedly provided with universal wheels. The top of the punching press body is fixedly provided with a support plate. A first guide rail is fixedly provided on the support plate. The two ends of the first guide rail are fixedly provided with limit blocks A. A first electric slider is slidably arranged in the first guide rail. The top of the first electric slider is fixedly connected to the bottom of the mold. A plastic film is laid on the top of the mold. Positioning limit columns are arranged on both sides of the plastic film. A punch is arranged above the plastic film. The punch is fixed on a punch fixing seat. The end of the punch fixing seat is fixedly connected to a second electric slider. By setting the mold, the plastic film, the positioning limit columns and the punch, the problems that it is difficult for a traditional punching press to process ultra-long products during the die-cutting process of the plastic film and it is not suitable for small-batch production are solved.
[0004] At present, most thin film die-cutting equipment and the above-mentioned cases perform die-cutting processing in the form of hydraulic pressure. During the actual use of the equipment, dust waste will be generated during die-cutting. Traditionally, the negative pressure adsorption method is used for treatment. After a long time, the channel blockage phenomenon will occur, making the die-cutting unable to reach the position. Changing the traditional die-cutting equipment and performing a conversion adjustment on the die-cutting knife can solve the above problems. Summary of the Invention
[0005] Aiming at the problems in the prior art, the present invention provides a high-precision automatic thin film die-cutting equipment.
[0006] The technical solution adopted by the present invention to solve its technical problems is as follows: a high-precision automatic film die-cutting device, which includes a support and fixation combined frame, a die-cutting processing structure, a first track frame, and a first supporting structure. The die-cutting processing structure is installed on the support and fixation combined frame. The front end of the die-cutting processing structure is drivingly connected to the first supporting structure, and the rear end of the die-cutting processing structure is drivingly connected to the second supporting structure. The side end of the first supporting structure is slidably connected to the first track frame. The lower end of the support and fixation combined frame is fixedly connected to a support and fixation bottom plate, and the second supporting structure is slidably connected to the second track frame;
[0007] The die-cutting processing structure includes an upper die-cutting component, a lower die-cutting component, a bottom bracket, and a track plate. The lower end of the track plate is fixedly connected to the bottom bracket. The upper die-cutting component is slidably connected to the track plate. The lower end of the upper die-cutting component is provided with a lower die-cutting component, and the upper die-cutting component and the lower die-cutting component are cooperatively arranged to perform film die-cutting processing. Moreover, the lower die-cutting component can be adjusted for face-changing processing. Through the settings of the die-cutting processing structure, the first supporting structure, and the second supporting structure, when the die-cutting processing structure is driven, it can drive the first supporting structure and the second supporting structure to move synchronously, thereby lifting the film from both sides and leaving sufficient processing time for the film processed at the central position. Moreover, the rotation directions of the first supporting structure and the second supporting structure are opposite, so as to lift the film synchronously. The upper die-cutting component in the die-cutting processing structure performs die-pressing processing work. The power mechanism drives the first upper die-cutting mechanism and the second upper die-cutting mechanism to move up and down through rotation to achieve die-pressing processing work. At the same time, the electro-hydraulic control rod can control the docking seat frame and the die-cutting tool to move, strengthening the die-pressing pressure. Through the externally provided in-place inductor, when it senses that the support wing plate reaches the bottom, at this time, the electro-hydraulic control rod performs downward pressure regulation through electro-control technology. At the same time, the die-cutting tool seat and the regulation plate seat in the lower die-cutting component can rotate continuously to perform conversion adjustment on the die-cutting tool, so that the stored waste chips can be separated, avoiding the phenomenon of channel blockage and ensuring accurate die-cutting.
[0008] Specifically, the upper die-cutting component includes a first bearing ring, a mating ring, a first upper die-cutting mechanism, and a second upper die-cutting mechanism. The side end of the first upper die-cutting mechanism is fixedly connected to the second upper die-cutting mechanism. The other side of the first upper die-cutting mechanism is hinged to the mating ring. The mating ring is rotatably connected to the first bearing ring. The side end of the second upper die-cutting mechanism is provided with a power mechanism, and the power mechanism drives the second upper die-cutting mechanism to slide up and down for adjustment.
[0009] Specifically, the first upper die-cutting mechanism includes a cross frame, a fixed sleeve frame, a supporting die seat, an electro-hydraulic control rod and a docking seat frame, the cross frame is fixedly connected to a fixed sleeve frame, the lower end of the fixed sleeve frame is fixedly connected to a supporting die seat, the side end of the supporting die seat is fixedly connected to a supporting wing plate, the supporting wing plate is installed with an electro-hydraulic control rod, the electro-hydraulic control rod controls the telescopic adjustment of the docking seat frame, the lower end of the docking seat frame is fixedly connected to a die-cutting tool, and the die-cutting tool is set to slide in a limited position at the lower end of the supporting die seat.
[0010] Specifically, the power mechanism includes a sliding adjustment block, a rotating disk, a push control column, a matching ring shaft and a double-headed motor, one side of the double-headed motor is drivingly connected to the drive shaft, the side of the double-headed motor facing away from the drive shaft is drivingly connected to the matching ring shaft, the side end of the matching ring shaft is fixedly connected to the rotating disk, and the outer ring position of the rotating disk is fixedly connected to the push control column.
[0011] Specifically, the power mechanism includes a docking fastening ring seat, a first hinged frame, a matching transmission member and a second hinged frame, the side end of the rotating disk is hingedly provided with a matching transmission member through the second hinged frame, the upper end of the matching transmission member is hingedly provided with a sliding adjustment block through the first hinged frame, and the center of the sliding adjustment block is fixedly connected with the docking fastening ring seat;
[0012] The double-headed motor drives the rotating disk to rotate through the matching ring shaft, and the second hinged connection frame is arranged at the eccentric position of the rotating disk. The second hinged connection frame drives the matching transmission member to follow the movement, so that the sliding adjustment block slides in a limited position.
[0013] Specifically, the lower die-cutting component includes a die-cutting knife seat, an adjustment plate seat, a second bearing ring and a first mating tooth seat. The adjustment plate seat is provided with a die-cutting knife seat, and the side end of the adjustment plate seat is fixedly connected to the first mating tooth seat, and the side end of the first mating tooth seat is rotatably connected to the second bearing ring, and the end of the adjustment plate seat facing away from the first mating tooth seat is fixedly connected to the second mating tooth seat, and the side end of the second mating tooth seat is rotatably connected to the third bearing ring.
[0014] Specifically, the first supporting structure includes a driven gear plate, a transmission guide rod, a driven wheel, a rotating control disk and an eccentric rod, the side end of the driven gear plate is fixedly connected to the transmission guide rod, the transmission guide rod is fixedly connected to the driven wheel, the side end of the driven wheel is fixedly connected to the rotating control disk, and the side end of the rotating control disk is hingedly provided with an eccentric rod.
[0015] Specifically, the first supporting structure further includes an adaption adjustment ring, a support roller frame, a lifting plate, a conical frame, a swing adjustment rod, a derivation square frame, and a hinge seat shaft. The side end of the eccentric rod is hinged with a hinge seat shaft. The side end of the hinge seat shaft is fixedly connected with a derivation square frame. The lower end of the derivation square frame is fixedly connected with a lifting plate. The upper end of the lifting plate is in contact connection with a conical frame. The upper end of the conical frame is fixedly connected with a swing adjustment rod. The left side of the swing adjustment rod is hinged. The right side of the swing adjustment rod is sleeved with a support roller frame. The front end of the support roller frame is fixedly connected with an adaption adjustment ring. Through the structural setting of the power mechanism, the double-headed motor in the power mechanism synchronously drives the cooperation ring shaft and the drive shaft to rotate. The drive shaft drives the driven wheel to rotate through a belt, thereby controlling the operation of the first supporting structure. When the cooperation ring shaft drives the rotating disk to rotate, it drives the pushing control column to rotate accordingly, so that the pushing control column acts on the second cooperation tooth seat, causing the second cooperation tooth seat to drive the die-cutting tool seat and the regulation plate seat to rotate, enabling continuous adjustment of the die-cutting tool seat. And when the die-cutting tool seat rotates, debris can naturally fall. With the cooperation of an external blower, effective protection of the die-cutting tool seat can be achieved. When the rotating disk, the pushing control column, and the cooperation ring shaft rotate one circle, the second cooperation tooth seat rotates one-sixth of a circle. Thus, the die-cutting tool seat and the regulation plate seat rotate one-sixth in cooperation, exactly making the die-cutting tool seat reach the upper position. At the same time, when the rotating disk rotates, it can drive the sliding adjustment block to adjust on the support and fixation combined frame through the cooperation transmission part, changing the position of the first upper die-cutting mechanism, causing the first upper die-cutting mechanism to descend for die-pressing treatment. When the driven wheel rotates, it can drive the rotating regulation disk to rotate accordingly, so that the eccentric rod drives the hinge seat shaft and the derivation square frame to move horizontally, causing the lifting plate to drive the contacted conical frame to move, lifting the swing adjustment rod, and thus lifting the support roller frame to lift the film, thereby reserving processing time. And the setting of this structure is suitable for large-area die-cutting and is the first die-cutting means.
[0016] Specifically, the adaption adjustment ring is slidably connected to the first track frame. The driven wheel is connected to the drive shaft through a belt. The cooperation ring shaft cooperates with the arc-shaped groove on the second cooperation tooth seat. The pushing control column cooperates with the vertical groove on the second cooperation tooth seat.
[0017] Specifically, the sliding adjustment block is slidably connected to the track plate. The first supporting structure and the second supporting structure have the same structure and are symmetrically arranged. The first supporting structure and the second supporting structure are meshed and connected through a driven gear disk. The die-cutting tool seat is adaptively arranged with the die-cutting tool.
[0018] Advantages of the present invention:
[0019] 1. Through the settings of the die-cutting processing structure, the first supporting structure, and the second supporting structure, when the die-cutting processing structure is driven, the first supporting structure and the second supporting structure can be driven to move synchronously, thereby lifting the film from both sides, leaving sufficient processing time for the film processed at the central position. Moreover, the rotation directions of the first supporting structure and the second supporting structure are opposite, so as to lift the film synchronously. The upper die-cutting component in the die-cutting processing structure performs the die-pressing processing work. The power mechanism drives the first upper die-cutting mechanism and the second upper die-cutting mechanism to move up and down through rotation to achieve the die-pressing processing work. At the same time, the electro-hydraulic control rod can control the movement of the docking seat frame and the die-cutting tool, strengthening the pressure of the die-pressing. Through the externally provided in-place inductor, when it senses that the support wing plate reaches the bottom, at this time, the electro-hydraulic control rod performs downward pressure regulation through electro-control technology. At the same time, the die-cutting tool seat and the regulation plate seat in the lower die-cutting component can rotate continuously to perform conversion adjustment of the die-cutting tool, so that the stored waste chips can be separated, avoiding the phenomenon of channel blockage and ensuring accurate die-cutting.
[0020] 2. Through the structural settings of the power mechanism, the double-headed motor in the power mechanism synchronously drives the cooperation ring shaft and the drive shaft to rotate. The drive shaft drives the driven wheel to rotate through the belt, thereby controlling the operation of the first supporting structure. When the cooperation ring shaft drives the rotating disk to rotate, it drives the pushing control column to rotate accordingly, so that the pushing control column acts on the second cooperation tooth seat, causing the second cooperation tooth seat to drive the die-cutting tool seat and the regulation plate seat to rotate, enabling continuous adjustment of the die-cutting tool seat. And when the die-cutting tool seat rotates, the debris can fall naturally. With the cooperation of the external blower, effective protection of the die-cutting tool seat can be carried out. When the rotating disk, the pushing control column, and the cooperation ring shaft rotate one circle, the second cooperation tooth seat rotates one-sixth of a circle. Thus, the die-cutting tool seat and the regulation plate seat cooperate to rotate one-sixth, just making the die-cutting tool seat reach the upper end position. At the same time, when the rotating disk rotates, it can drive the sliding adjustment block to adjust on the support and fixation combined frame through the cooperation transmission part, changing the position of the first upper die-cutting mechanism, so that the first upper die-cutting mechanism descends to perform the die-pressing processing work. When the driven wheel rotates, it can drive the rotation control disk to rotate accordingly, so that the eccentric rod drives the articulated seat shaft and the derivation square frame to move horizontally, so that the lifting plate drives the contacted conical frame to move, lifting the swing adjustment rod, so that the support roller frame moves up to lift the film, thereby reserving processing time. And the setting of this structure is suitable for large-area die-cutting and is the first die-cutting means. BRIEF DESCRIPTION OF THE DRAWINGS
[0021] The present invention will be further described below in conjunction with the drawings and embodiments.
[0022] Figure 1 It is a front-view three-dimensional structural schematic diagram of the main body in the present invention;
[0023] Figure 2Schematic diagram of the three-dimensional structure of the main body in the side view of the present invention;
[0024] Figure 3 Schematic diagram of the three-dimensional structure of the main body in the rear view of the present invention;
[0025] Figure 4 Schematic diagram of the three-dimensional structure of the die-cutting processing structure in the front view of the present invention;
[0026] Figure 5 Schematic diagram of the three-dimensional structure of the upper die-cutting component in the front view of the present invention;
[0027] Figure 6 Schematic diagram of the three-dimensional structure of the first upper die-cutting mechanism in the front view of the present invention;
[0028] Figure 7 Schematic diagram of the three-dimensional structure of the power mechanism in the front view of the present invention;
[0029] Figure 8 Schematic diagram of the three-dimensional structure of the power mechanism in the side view of the present invention;
[0030] Figure 9 Schematic diagram of the three-dimensional structure of the lower die-cutting component in the front view of the present invention;
[0031] Figure 10 Schematic diagram of the three-dimensional structure of the first supporting structure in the front view of the present invention;
[0032] Figure 11 Schematic diagram of the three-dimensional structure of the first supporting structure in the side view of the present invention.
[0033] In the figure: 1 - Support and fixation combined frame, 2 - Die-cutting processing structure, 3 - First track frame, 4 - First supporting structure, 5 - Support and fixation bottom plate, 6 - Second supporting structure, 7 - Second track frame, 8 - Upper die-cutting component, 9 - Lower die-cutting component, 10 - Bottom bracket, 11 - Track plate, 12 - First bearing ring, 13 - Fitting ring, 14 - First upper die-cutting mechanism, 15 - Second upper die-cutting mechanism, 16 - Power mechanism, 17 - Cross frame, 18 - Fixed sleeve frame, 19 - Support die base, 20 - Electric control hydraulic control rod, 21 - Docking seat frame, 22 - Support wing plate, 23 - Die-cutting tool, 24 - Sliding adjustment block, 25 - Rotating disk, 26 - Pushing control column, 27 - Fitting ring shaft, 28 - Double-headed motor, 29 - Driving shaft, 30 - Docking fastening ring seat, 31 - First hinge connecting frame, 32 - Fitting transmission part, 33 - Second hinge connecting frame, 34 - Die-cutting tool seat, 35 - Regulation plate seat, 36 - Second bearing ring, 37 - First fitting tooth seat, 38 - Second fitting tooth seat, 39 - Third bearing ring, 40 - Driven gear disk, 41 - Transmission guide rod, 42 - Driven wheel, 43 - Rotating regulation disk, 44 - Eccentric rod, 45 - Adaptation adjustment ring, 46 - Support roller frame, 47 - Lifting plate, 48 - Conical frame, 49 - Swing adjustment rod, 50 - Deducing square frame, 51 - Hinge seat shaft. Detailed implementation manners
[0034] In order to enable those skilled in the art of this technology to better understand the solution of this application, the technical solutions in the embodiments of this application will be clearly and completely described below in conjunction with the accompanying drawings in the embodiments of this application. Obviously, the described embodiments are only a part of the embodiments of this application, rather than all the embodiments. Based on the embodiments in this application, all other embodiments obtained by those of ordinary skill in the art without making creative efforts shall fall within the protection scope of this application.
[0035] The present invention will be further described below in conjunction with the accompanying drawings. Embodiment
[0036] As Figures 1-11As shown in the figure, a high-precision automatic film die-cutting device of the present invention includes a support and fixation combined frame 1, a die-cutting processing structure 2, a first track frame 3, and a first support structure 4. The die-cutting processing structure 2 is installed on the support and fixation combined frame 1. The front end of the die-cutting processing structure 2 is drivingly connected to the first support structure 4, and the rear end of the die-cutting processing structure 2 is drivingly connected to a second support structure 6. The side end of the first support structure 4 is slidably connected to the first track frame 3. The lower end of the support and fixation combined frame 1 is fixedly connected to a support and fixation bottom plate 5. The second support structure 6 is slidably connected to the second track frame 7. The support and fixation combined frame 1 functions to support the die-cutting processing structure 2. The die-cutting processing structure 2 performs specific die-cutting processing work. The lower end of the support and fixation combined frame 1 is fixed to the support and fixation bottom plate 5. At the same time, when the die-cutting processing structure 2 is working, it can drive the first support structure 4 and the second support structure 6 to move in the opposite direction, thereby lifting the film and giving the processing time. The first support structure 4 is limited and protected on one side by the first track frame 3, and the second support structure 6 is limited and protected on one side by the second track frame 7, so that the first track frame 3 and the second track frame 7 can be rotated and adjusted to prevent excessive weight from affecting the subsequent lifting movement;
[0037] As Figure 4 shown in the figure, the die-cutting processing structure 2 includes an upper die-cutting component 8, a lower die-cutting component 9, a bottom bracket 10, and a track plate 11. The lower end of the track plate 11 is fixedly connected to the bottom bracket 10. The upper die-cutting component 8 is slidably connected to the track plate 11. The lower end of the upper die-cutting component 8 is provided with a lower die-cutting component 9, and the upper die-cutting component 8 and the lower die-cutting component 9 are cooperatively arranged for film die-cutting processing. Moreover, the lower die-cutting component 9 can be adjusted for face-changing processing. The die-cutting processing structure 2 is combined by the upper die-cutting component 8, the lower die-cutting component 9, the bottom bracket 10, and the track plate 11. The track plate 11 is fixed to the support and fixation combined frame 1. The lower end of the bottom bracket 10 can limit the upper die-cutting component 8. The lower die-cutting component 9 is arranged at the lower end of the upper die-cutting component 8. When the upper die-cutting component 8 is driven to work, it can synchronously drive the lower die-cutting component 9 to rotate and adjust.
[0038] As Figure 5As shown, the upper die-cutting component 8 includes a first bearing ring 12, a mating ring 13, a first upper die-cutting mechanism 14 and a second upper die-cutting mechanism 15. The side end of the first upper die-cutting mechanism 14 is fixedly connected to the second upper die-cutting mechanism 15. The other side of the first upper die-cutting mechanism 14 is hinged to the mating ring 13. The mating ring 13 is rotatably connected to the first bearing ring 12. A power mechanism 16 is provided at the side end of the second upper die-cutting mechanism 15. The power mechanism 16 drives the second upper die-cutting mechanism 15 to slide up and down for adjustment. The first bearing ring 12 inside the upper die-cutting component 8 supports the mating ring 13, and the first upper die-cutting mechanism 14 and the second upper die-cutting mechanism 15 are fixed. When the double-headed motor 28 in the power mechanism 16 drives the rotating disk 25, the pushing control column 26, and the mating ring shaft 27 to rotate, it can drive the second hinge connecting frame 33 to rotate. At the same time, a mating transmission part 32 is hinged to the upper end of the second hinge connecting frame 33. The upper end of the mating transmission part 32 is hinged and matched with the sliding adjustment block 24 through the first hinge connecting frame 31, so that the sliding adjustment block 24 can be adjusted up and down on the track plate 11 under the drive, and at the same time, the docking fastening ring seat 30 is provided to support and fix the cross frame 17.
[0039] As Figure 6 shown, the first upper die-cutting mechanism 14 includes a cross frame 17, a fixed sleeve frame 18, a carrier die seat 19, an electro-hydraulic control rod 20 and a docking seat frame 21. The cross frame 17 is fixedly connected with the fixed sleeve frame 18. The lower end of the fixed sleeve frame 18 is fixedly connected with the carrier die seat 19. A support wing plate 22 is fixedly connected to the side end of the carrier die seat 19. An electro-hydraulic control rod 20 is installed on the support wing plate 22. The electro-hydraulic control rod 20 controls the telescopic adjustment of the docking seat frame 21. The lower end of the docking seat frame 21 is fixedly connected with a die-cutting tool 23. The die-cutting tool 23 is limited to slide at the lower end of the carrier die seat 19. The cross frame 17 inside the first upper die-cutting mechanism 14 can drive the fixed sleeve frame 18 to move up and down. The lower end of the fixed sleeve frame 18 is fixed to the carrier die seat 19. At the same time, the side end of the carrier die seat 19 fixedly supports the support wing plate 22, and the electro-hydraulic control rod 20 is installed on the support wing plate 22. The electro-hydraulic control rod 20 can act on the die-cutting tool 23 through the docking seat frame 21, so that the die-cutting tool 23 slides and adjusts on the carrier die seat 19, thereby increasing the power of die-cutting. The electro-hydraulic control rod 20 is used in cooperation with electro-control and sensor technologies. The electro-control and sensor technologies are set by existing technologies and will not be elaborated in this article.
[0040] As Figure 7As shown, the power mechanism 16 includes a sliding adjustment block 24, a rotating disk 25, a pushing control column 26, a mating ring shaft 27, and a double-headed motor 28. One side of the double-headed motor 28 is drivingly connected to a driving shaft 29, and the side of the double-headed motor 28 opposite to the driving shaft 29 is drivingly connected to the mating ring shaft 27. The side end of the mating ring shaft 27 is fixedly connected to the rotating disk 25, and the outer ring of the rotating disk 25 is fixedly connected to the pushing control column 26. The double-headed motor 28 can simultaneously drive the driving shaft 29 to rotate. The driving shaft 29 is connected to the driven wheel 42 through a belt, and can drive the transmission guide rod 41 and the driven gear disk 40 to rotate. The first supporting structure 4 and the second supporting structure 6 are meshed through the driven gear disk 40, so that the first supporting structure 4 and the second supporting structure 6 can move relatively in opposite directions. The driven wheel 42 simultaneously drives the eccentric rod 44 to move, so that the eccentric rod 44 drives the articulated seat shaft 51, the derivation square frame 50, and the lifting plate 47 to move. The derivation square frame 50 and the articulated seat shaft 51 move on the transverse track on the supporting bottom plate 5, and the lower end of the derivation square frame 50 penetrates through the bottom of the transverse track for sliding adjustment.
[0041] As Figure 8 shown, the power mechanism 16 includes a docking fastening ring seat 30, a first hinged connecting frame 31, a mating transmission member 32, and a second hinged connecting frame 33. The side end of the rotating disk 25 is hinged with the mating transmission member 32 through the second hinged connecting frame 33. The upper end of the mating transmission member 32 is hinged with the sliding adjustment block 24 through the first hinged connecting frame 31. The center of the sliding adjustment block 24 is fixedly connected to the docking fastening ring seat 30;
[0042] The double-headed motor 28 drives the rotating disk 25 to rotate through the mating ring shaft 27, and the second hinged connecting frame 33 is arranged at an eccentric position of the rotating disk 25. The second hinged connecting frame 33 drives the mating transmission member 32 to move accordingly, so that the sliding adjustment block 24 is limited to slide.
[0043] As Figure 9As shown, the lower die-cutting component 9 includes a die-cutting knife seat 34, an adjusting plate seat 35, a second bearing ring 36 and a first matching tooth seat 37. The adjusting plate seat 35 is provided with a die-cutting knife seat 34. The side end of the adjusting plate seat 35 is fixedly connected with the first matching tooth seat 37. The side end of the first matching tooth seat 37 is rotatably connected with the second bearing ring 36. The end of the adjusting plate seat 35 away from the first matching tooth seat 37 is fixedly connected with the second matching tooth seat 38. The side end of the second matching tooth seat 38 is rotatably connected with the third bearing ring 39. The second bearing ring 36 in the lower die-cutting component 9 cooperates with the first matching tooth seat 37, and the third bearing ring 39 cooperates with the second matching tooth seat 38. The die-cutting knife seat 34 is fixed on the regulating plate seat 35, and the die-cutting knife seat 34 is provided with 12 pieces, which are symmetrically arranged on the regulating plate seat 35. The second matching tooth seat 38 can cooperate with the push control column 26 and the matching ring shaft 27. When the push control column 26 rotates, it contacts the vertical groove on the second matching tooth seat 38, driving the second matching tooth seat 38 to rotate, so that the die-cutting knife seat 34 and the regulating plate seat 35 can follow the rotation, and the rotating disk 25, the push control column 26, and the matching ring shaft 27 rotate one circle, and the second matching tooth seat 38 rotates one sixth of a circle, so that the die-cutting knife seat 34 and the regulating plate seat 35 can be adjusted every time.
[0044] like Figure 10 As shown, the first supporting structure 4 includes a driven gear plate 40, a transmission guide rod 41, a driven wheel 42, a rotating regulating disk 43 and an eccentric rod 44. The side end of the driven gear plate 40 is fixedly connected with the transmission guide rod 41, the transmission guide rod 41 is fixedly connected with the driven wheel 42, the side end of the driven wheel 42 is fixedly connected with the rotating regulating disk 43, and the side end of the rotating regulating disk 43 is hinged with an eccentric rod 44.
[0045] like Figure 11As shown, the first supporting structure 4 further includes an adaptive adjustment ring 45, a support roller frame 46, a lifting plate 47, a conical frame 48, a swing adjustment rod 49, a derivation square frame 50, and a hinge seat shaft 51. The side end of the eccentric rod 44 is hinged with a hinge seat shaft 51. The side end of the hinge seat shaft 51 is fixedly connected with a derivation square frame 50. The lower end of the derivation square frame 50 is fixedly connected with a lifting plate 47. The upper end of the lifting plate 47 is in contact connection with a conical frame 48. The upper end of the conical frame 48 is fixedly connected with a swing adjustment rod 49. The left side of the swing adjustment rod 49 is hinged. The right side of the swing adjustment rod 49 is sleeved with a support roller frame 46. The front end of the support roller frame 46 is fixedly connected with an adaptive adjustment ring 45. When the lifting plate 47 moves, it can drive the conical frame 48 and the swing adjustment rod 49 to move together, so that the swing adjustment rod 49 can rotate through one side, driving the adaptive adjustment ring 45 and the support roller frame 46 to perform flipping adjustment, thereby lifting the film and cooperating with the die-cutting processing structure 2 for synchronous control work. And every time the die-cutting processing structure 2 performs die-cutting once, the first supporting structure 4 and the second supporting structure 6 also lift once. The adaptive adjustment ring 45 is limited and slidably adjusted on the first track frame 3 to perform limit support at the other end.
[0046] The adaptive adjustment ring 45 is slidably connected to the first track frame 3. The driven wheel 42 is connected to the drive shaft 29 through a belt. The cooperating ring shaft 27 cooperates with the arc-shaped groove on the second cooperating tooth seat 38. The pushing control column 26 cooperates with the vertical groove on the second cooperating tooth seat 38.
[0047] The sliding adjustment block 24 is slidably connected to the track plate 11. The first supporting structure 4 and the second supporting structure 6 have the same structure and are symmetrically arranged. The first supporting structure 4 and the second supporting structure 6 are meshed and connected through a driven gear disk 40. The die-cutting tool holder 34 is adaptively arranged with the die-cutting tool 23.
[0048] Working principle: When in use, the supporting and fixing combined frame 1 functions as the support for the die-cutting processing structure 2. The die-cutting processing structure 2 performs specific die-cutting processing work. The lower end of the supporting and fixing combined frame 1 is fixed to the supporting and fixing bottom plate 5. At the same time, when the die-cutting processing structure 2 is working, it can drive the first supporting structure 4 and the second supporting structure 6 to move in the opposite direction, thereby lifting the film and giving the processing time. The first supporting structure 4 is limited and protected on one side through the first track frame 3. The second supporting structure 6 is limited and protected on one side through the second track frame 7, enabling the first track frame 3 and the second track frame 7 to rotate and adjust to prevent excessive weight from affecting the subsequent lifting movement.
[0049] Among them, the die-cutting processing structure 2 is composed of an upper die-cutting component 8, a lower die-cutting component 9, a bottom bracket 10 and an orbital plate 11. The orbital plate 11 is fixed to the support and fixation combined frame 1. The lower end of the bottom bracket 10 can limit the upper die-cutting component 8. The lower die-cutting component 9 is arranged at the lower end of the upper die-cutting component 8. When the upper die-cutting component 8 is driven to work, it can synchronously drive the lower die-cutting component 9 to rotate and adjust;
[0050] Among them, the first bearing ring 12 in the upper die-cutting component 8 supports the mating ring 13, and the first upper die-cutting mechanism 14 and the second upper die-cutting mechanism 15 are fixed. When the double-headed motor 28 in the power mechanism 16 drives the rotating disk 25, the pushing control column 26, and the mating ring shaft 27 to rotate, it can drive the second hinge connecting frame 33 to rotate. At the same time, the upper end of the second hinge connecting frame 33 is hinged with the mating transmission part 32. The upper end of the mating transmission part 32 is hinged and matched with the sliding adjustment block 24 through the first hinge connecting frame 31, so that the sliding adjustment block 24 can be adjusted up and down on the orbital plate 11 under the drive, and at the same time, the docking fastening ring seat 30 is provided to support and fix the cross frame 17;
[0051] Among them, the cross frame 17 in the first upper die-cutting mechanism 14 can drive the fixed sleeve frame 18 to move up and down. The lower end of the fixed sleeve frame 18 is fixed to the carrier die base 19. At the same time, the side end of the carrier die base 19 is fixedly supported by the support wing plate 22. An electric control hydraulic control rod 20 is installed on the support wing plate 22. The electric control hydraulic control rod 20 can act on the die-cutting tool 23 through the docking seat frame 21, so that the die-cutting tool 23 can slide and adjust on the carrier die base 19, thereby increasing the power of die-cutting. The electric control hydraulic control rod 20 is used in cooperation with electric control and sensor technology. The electric control and sensor technology is set by existing technology and will not be elaborated in this article;
[0052] Among them, the double-headed motor 28 can also drive the drive shaft 29 to rotate. The drive shaft 29 is connected to the driven wheel 42 through a belt and can drive the transmission guide rod 41 and the driven gear disk 40 to rotate. The first support structure 4 and the second support structure 6 are meshed through the driven gear disk 40, so that the first support structure 4 and the second support structure 6 can move relatively in the opposite direction. The driven wheel 42 also drives the eccentric rod 44 to move, so that the eccentric rod 44 drives the hinge seat shaft 51, the derivation square frame 50, and the lifting plate 47 to move. The derivation square frame 50 and the hinge seat shaft 51 move on the transverse track on the support bottom plate 5, and the lower end of the derivation square frame 50 penetrates and slides through the bottom of the transverse track for adjustment;
[0053] Among them, when the lifting plate 47 moves, it can drive the conical frame 48 and the swing adjustment rod 49 to move together, enabling the swing adjustment rod 49 to rotate through one side, driving the adapter adjustment ring 45 and the support roller frame 46 to perform flipping adjustment, so as to lift the film and cooperate with the die-cutting processing structure 2 for synchronous control work. Moreover, each time the die-cutting processing structure 2 performs die-cutting, the first supporting structure 4 and the second supporting structure 6 also lift once. The adapter adjustment ring 45 is limited and slides on the first track frame 3 for limit support at the other end;
[0054] Among them, the second bearing ring 36 in the lower die-cutting component 9 cooperates with the first mating tooth seat 37, and the third bearing ring 39 cooperates with the second mating tooth seat 38. The die-cutting tool holder 34 is fixed on the control plate seat 35, and 12 die-cutting tool holders 34 are provided and are symmetrically arranged on the control plate seat 35. The second mating tooth seat 38 can cooperate with the pushing control column 26 and the mating ring shaft 27. When the pushing control column 26 rotates and contacts the vertical groove on the second mating tooth seat 38, it drives the second mating tooth seat 38 to rotate, so that the die-cutting tool holder 34 and the control plate seat 35 can follow the rotation. Moreover, when the rotating disk 25, the pushing control column 26, and the mating ring shaft 27 rotate one circle, the second mating tooth seat 38 rotates one-sixth of a circle, enabling the die-cutting tool holder 34 and the control plate seat 35 to be adjusted each time;
[0055] In use, the user guides and transmits the film through the first supporting structure 4 and the second supporting structure 6. The double-headed motor 28 can drive the rotating disc 25, the pushing control column 26, and the mating ring shaft 27 to rotate. When the rotating disc 25 rotates, it drives the second hinge connecting frame 33 to rotate accordingly, so that the mating transmission member 32 is adjusted accordingly. The upper end of the mating transmission member 32 is hinged to the sliding adjustment block 24 through the first hinge connecting frame 31, so that the sliding adjustment block 24 slides and adjusts on the track plate 11, thereby performing the die-cutting process. At this time, the docking fastening ring seat 30 drives the cross frame 17 to move up and down, so that the fixed sleeve frame 18, the carrier die seat 19, and the support wing plate 22 are adjusted accordingly. At the same time, the die-cutting tool 23 contacts the film. Then, the electro-hydraulic control rod 20 controls the docking seat frame 21 and the die-cutting tool 23 to move down for die-cutting work. When the pushing control column 26 and the mating ring shaft 27 rotate, they cooperate with the second mating tooth seat 38. When the pushing control column 26 and the mating ring shaft 27 rotate one circle, the second mating tooth seat 38 rotates one-sixth of a circle, so that the die-cutting tool seat 34 and the regulation plate seat 35 are adjusted accordingly. At the same time, when the drive shaft 29 rotates, it can drive the driven wheel 42 to rotate accordingly, so that the rotating regulation disc 43 drives the eccentric rod 44 to move. The eccentric rod 44 acts on the hinge seat shaft 51, so that the hinge seat shaft 51 drives the lifting plate 47 to move horizontally. At this time, the upper end of the lifting plate 47 contacts the conical frame 48, and can drive the conical frame 48 to move up and adjust. At this time, the swing adjustment rod 49 rotates accordingly, so that the support roller frame 46 moves up accordingly to lift the film, thus facilitating the processing of the film. With the setting of the driven gear disc 40, the first supporting structure 4 and the second supporting structure 6 are meshed and connected, so that the support roller frames 46 in the first supporting structure 4 and the second supporting structure 6 move in the opposite direction, thereby cooperating to lift the film from both sides to complete the work.
[0056] Although the embodiments of the present invention have been shown and described, for those of ordinary skill in the art, it can be understood that various changes, modifications, substitutions, and variations can be made to these embodiments without departing from the principles and spirit of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.
Claims
1. A high-precision automated film die-cutting device, characterized in that: The invention comprises a supporting assembly frame (1), a die-cutting processing structure (2), a first track frame (3) and a first supporting structure (4); the die-cutting processing structure (2) is mounted on the supporting assembly frame (1); the front end of the die-cutting processing structure (2) is drivingly connected to the first supporting structure (4); the rear end of the die-cutting processing structure (2) is drivingly connected to the second supporting structure (6); the side end of the first supporting structure (4) is slidably connected to the first track frame (3); the lower end of the supporting assembly frame (1) is fixedly connected to a supporting bottom plate (5); and the second supporting structure (6) is slidably connected to the second track frame (7); The die-cutting processing structure (2) comprises an upper die-cutting component (8), a lower die-cutting component (9), a bottom bracket (10) and a track plate (11); the lower end of the track plate (11) is fixedly connected to the bottom bracket (10); the track plate (11) is slidably connected to the upper die-cutting component (8); the lower end of the upper die-cutting component (8) is provided with a lower die-cutting component (9); the upper die-cutting component (8) and the lower die-cutting component (9) are arranged in coordination to perform film die-cutting processing; and the lower die-cutting component (9) can be adjusted to perform surface changing processing; The upper die-cutting component (8) comprises a first bearing ring (12), a matching ring (13), a first upper die-cutting mechanism (14) and a second upper die-cutting mechanism (15); the side end of the first upper die-cutting mechanism (14) is fixedly connected to the second upper die-cutting mechanism (15); the other side of the first upper die-cutting mechanism (14) is hingedly arranged with the matching ring (13); the matching ring (13) is rotatably connected to the first bearing ring (12); the side end of the second upper die-cutting mechanism (15) is provided with a power mechanism (16); the power mechanism (16) drives the second upper die-cutting mechanism (15) to slide up and down for adjustment; The first upper die-cutting mechanism (14) comprises a cross frame (17), a fixed sleeve frame (18), a supporting die seat (19), an electric-controlled hydraulic control rod (20) and a docking seat frame (21); the cross frame (17) is fixedly connected to the fixed sleeve frame (18); the lower end of the fixed sleeve frame (18) is fixedly connected to the supporting die seat (19); the side end of the supporting die seat (19) is fixedly connected to a supporting wing plate (22); the supporting wing plate (22) is equipped with an electric-controlled hydraulic control rod (20); the electric-controlled hydraulic control rod (20) controls the telescopic adjustment of the docking seat frame (21); the lower end of the docking seat frame (21) is fixedly connected to a die-cutting tool (23); the die-cutting tool (23) is set to slide at the lower end of the supporting die seat (19); The lower die-cutting component (9) comprises a die-cutting knife seat (34), an adjusting plate seat (35), a second bearing ring (36) and a first matching tooth seat (37); the die-cutting knife seat (34) is provided on the adjusting plate seat (35); a side end of the adjusting plate seat (35) is fixedly connected to the first matching tooth seat (37); a side end of the first matching tooth seat (37) is rotatably connected to the second bearing ring (36); an end of the adjusting plate seat (35) facing away from the first matching tooth seat (37) is fixedly connected to the second matching tooth seat (38); a side end of the second matching tooth seat (38) is rotatably connected to the third bearing ring (39).
2. The high-precision automated film die-cutting equipment according to claim 1, characterized in that: The power mechanism (16) comprises a sliding adjustment block (24), a rotating disk (25), a push control column (26), a matching ring shaft (27) and a double-headed motor (28); one side of the double-headed motor (28) is drivingly connected to a driving shaft (29); the side of the double-headed motor (28) facing away from the driving shaft (29) is drivingly connected to the matching ring shaft (27); the side end of the matching ring shaft (27) is fixedly connected to the rotating disk (25); and the outer ring position of the rotating disk (25) is fixedly connected to the push control column (26).
3. The high-precision automated film die-cutting equipment according to claim 2, characterized in that: The power mechanism (16) comprises a docking fastening ring seat (30), a first hinged connecting frame (31), a matching transmission member (32) and a second hinged connecting frame (33); the side end of the rotating disk (25) is hingedly provided with the matching transmission member (32) via the second hinged connecting frame (33); the upper end of the matching transmission member (32) is hingedly provided with the sliding adjustment block (24) via the first hinged connecting frame (31); the center of the sliding adjustment block (24) is fixedly connected with the docking fastening ring seat (30); The double-headed motor (28) drives the rotating disk (25) to rotate via the matching ring shaft (27), and the second hinged connecting frame (33) is arranged at an eccentric position of the rotating disk (25), and the second hinged connecting frame (33) drives the matching transmission member (32) to follow the movement, so that the sliding adjustment block (24) slides in a limited position.
4. The high-precision automated film die-cutting equipment according to claim 3, characterized in that: The first supporting structure (4) comprises a driven toothed disc (40), a transmission guide rod (41), a driven wheel (42), a rotating regulating disc (43) and an eccentric rod (44); the side end of the driven toothed disc (40) is fixedly connected to the transmission guide rod (41); the transmission guide rod (41) is fixedly connected to the driven wheel (42); the side end of the driven wheel (42) is fixedly connected to the rotating regulating disc (43); and the side end of the rotating regulating disc (43) is hingedly provided with an eccentric rod (44).
5. The high-precision automated film die-cutting equipment according to claim 4, characterized in that: The first supporting structure (4) further comprises an adaptor ring (45), a support roller frame (46), a lifting plate (47), a conical frame (48), a swing adjustment rod (49), a derivation square frame (50) and an articulated seat shaft (51); the side end of the eccentric rod (44) is hingedly provided with an articulated seat shaft (51); the side end of the articulated seat shaft (51) is fixedly connected to the derivation square frame (50); the lower end of the derivation square frame (50) is fixedly connected to the lifting plate (47); the upper end of the lifting plate (47) is contact-connected with the conical frame (48); the upper end of the conical frame (48) is fixedly connected to the swing adjustment rod (49); the left side of the swing adjustment rod (49) is hingedly arranged; the right side of the swing adjustment rod (49) is sleeved with the support roller frame (46); the front end of the support roller frame (46) is fixedly connected to the adaptor ring (45).
6. The high-precision automated film die-cutting equipment according to claim 5, characterized in that: The adapting adjustment ring (45) is slidably connected to the first track frame (3), the driven wheel (42) is connected to the driving shaft (29) via a belt, the matching ring shaft (27) matches with the arc groove on the second matching tooth seat (38), and the push control column (26) matches with the vertical groove on the second matching tooth seat (38).
7. The high-precision automated film die-cutting equipment according to claim 6, characterized in that: The sliding adjustment block (24) is slidably connected to the track plate (11); the first supporting structure (4) and the second supporting structure (6) have the same structure and are symmetrically arranged; the first supporting structure (4) and the second supporting structure (6) are meshingly connected via a driven gear disk (40); and the die-cutting tool seat (34) is adapted to be arranged to match the die-cutting tool (23).
Citation Information
Patent Citations
Overlength plastic film product cross cutting positioner
CN208247000U
Automatic film punching device
CN103950067A
Die-cutting automatic material removing structure and die-cutting machine with same
CN111687939A