High-efficiency automatic blister tray cutting machine
By designing an efficient automatic blister tray shearing machine, the driving assembly and multiple sets of shearing assemblies are used to achieve efficient shearing of blister trays of different sizes. The suction and pressing assemblies are used to ensure the stability of the blister trays during the stacking process. This solves the problems of low shearing efficiency and insufficient equipment applicability in the existing technology, and realizes efficient and stable blister tray production.
Patent Information
- Application Number
- CN202310630788.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2023-05-31
- Publication Date
- 2025-09-26
- Estimated Expiration
- 2043-05-31
AI Technical Summary
In the prior art, cutting blister trays of different sizes requires multiple sets of shears, which results in low cutting efficiency and insufficient applicability of the equipment.
An efficient automatic shearing machine for blister trays is designed. A driving component is used to drive the moving plate, and multiple sets of shearing components are set to achieve efficient shearing of blister trays of different sizes. The suction component and the pressing component are used to ensure the stable connection of the blister trays during the stacking process, and the stacking component is used to ensure flatness and limiting effects.
The shearing efficiency and equipment applicability of the blister tray are improved, the connection stability of the blister tray during the stacking process is enhanced, equipment damage and deformation are avoided, and the convenience and efficiency of operation are improved.
Smart Images

Figure CN116834260B_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the technical field of blister tray processing equipment, and in particular to a high-efficiency automatic shearing machine for blister trays. Background Art
[0002] During the production process of blister trays, plastic coils are blister-formed into various shapes through a thermoforming machine, and the blister-formed blister trays are then cut off from the plastic coils.
[0003] Currently, the main methods for cutting blister trays are manual shearing or using a shearing machine. The shearing machine consists of a positioning table and a cutter. The plastic coil after blistering is placed on the positioning table. The positioning table moves to the bottom of the cutter, and then the cutter presses down to cut, separating the blister tray from the plastic coil. Finally, the positioning table moves out from the bottom of the cutter, and the operator removes the blister tray from the plastic coil and stores it.
[0004] For multiple blister trays of different sizes, multiple sets of shears are needed to cut them individually, which results in low shearing efficiency. Summary of the Invention
[0005] In order to solve the problem of shearing blister trays of different sizes by using multiple sets of shearing machines, the present application provides a high-efficiency automatic shearing machine for blister trays.
[0006] The present application provides an efficient automatic shearing machine for blister trays, which adopts the following technical solution: an efficient automatic shearing machine for blister trays, comprising a workbench, drive components are provided on both sides of the workbench in the length direction, a movable plate is provided on the drive component, a positioning platform is provided on the movable plate, and more than one group of shearing components are provided in the middle of the workbench, and each group of shearing components is used to cut the blister tray on the positioning platform.
[0007] By adopting the above technical solution, the blister tray is first placed on the positioning table on one side, and the driving component on one side of the workbench drives the movable plate to move to the bottom of the shearing component. The shearing component cuts the blister tray to separate the blister tray from the plastic coil. During the shearing process, the blister tray can be placed on the positioning table on the other side. When the driving component drives the movable plate on one side to move out, the movable plate on the other side drives the blister tray into the bottom of the shearing component, which helps to improve the shearing efficiency. By setting up more than one set of shearing components, blister trays of different sizes can be sheared, thereby improving the applicability of the equipment.
[0008] In a specific feasible implementation scheme, the driving assembly includes a driving rod 1 and a driving rod 2 arranged along the length direction of the workbench, and a slide groove 1 and a slide groove 2 are opened on the bottom wall of the movable plate. Slider 1 is slidably installed in the slide groove 1, and slider 2 is slidably installed in the slide groove 2. One end of the driving rod 1 is rotatably connected to the workbench, and the other end is rotatably connected to the slider 1. One end of the driving rod 2 is rotatably connected to the workbench, and the other end is rotatably connected to the slider 1.
[0009] By adopting the above technical solution, by driving the driving rod 1 and the driving rod 2 to rotate in opposite directions, the slider 1 moves in the slide groove 1, and the slider 2 moves in the slide groove 2, which can then drive the moving plate to move, making it convenient for the moving plate to drive the blister tray to move, and the operation is convenient and the movement is stable.
[0010] In a specific possible implementation scheme, a conveying plate and a driving source for driving the conveying plate to move are provided on one side of the workbench, and a suction component and a pressing component are provided on the conveying plate. The suction component is used to convey the blister tray, and the pressing component is used to press and stack the blister tray.
[0011] By adopting the above technical solution, after the blister tray is cut, it is transported by the suction component and moved to the stacking position. Since the surface of the blister tray is uneven, two adjacent blister trays can be locked with each other when stacked. The blister tray is then pressed by the pressing component, which can enhance the connection effect between the two adjacent blister trays and facilitate subsequent movement and transportation.
[0012] In a specific possible implementation scheme, the pressing assembly includes a pneumatic source, a pressing rod and a connecting rod, the connecting rod is installed on the transport plate, the pneumatic source and the connecting rod are connected by an air pipe, the pressing rod is slidably installed in the connecting rod, a pressing piece is provided at the bottom of the pressing rod, and a spring is provided on the pressing rod, one end of the spring is in contact with the pressing piece, and the other end is in contact with the connecting rod.
[0013] By adopting the above technical solution, the pneumatic source is used to drive the pressing rod to move in the connecting rod, so as to adjust the vertical position of the pressing rod and the pressing piece, so that the pressing piece contacts the blister disk, presses the blister disk, strengthens the connection between the two adjacent blister disks, helps to compress the space, and facilitates movement and transportation.
[0014] In a specific feasible implementation scheme, one side of the workbench is provided with a stacking assembly, and the stacking assembly includes a base plate and a column. A accommodating groove is provided on the base plate, and a discharge cylinder and a discharge plate are provided at the bottom of the base plate. The discharge plate is installed on the piston rod of the discharge cylinder, and the column is installed on the base plate. A rotating groove is provided in the column, and a rotating assembly is provided in the rotating groove. A support plate for supporting the blister tray is installed on the rotating assembly.
[0015] By adopting the above technical solution, the suction component moves the blister tray to the stacking component. When the conveying plate contacts the rotating component, the rotating component drives the support plate to rotate, so that the support plate can support the blister tray. The blister tray is then pressed by the pressing component to ensure the flatness of the blister tray, thereby minimizing the tilting or offset of the blister tray when stacking.
[0016] In a specific possible implementation scheme, the rotating assembly includes a pressing column and a rotating column, the rotating column is rotatably connected in the rotating groove, the pressing column is sleeved on the rotating column, and a spring is provided between the pressing column and the rotating column, one end of the spring is in contact with the pressing column, and the other end is in contact with the rotating column, a guide groove is provided on the rotating column, a sliding block is slidably installed in the guide groove, a sliding groove is provided on the pressing column for the sliding block to pass through, the inner wall of the sliding groove is in contact with the outer wall of the sliding block, and the support plate is connected to the rotating column.
[0017] By adopting the above technical solution, when the transport plate contacts the pressing column, the pressing column presses the spring downward, and at the same time drives the sliding block to press down, the sliding block moves in the sliding groove, and at the same time drives the rotating column to rotate, and the rotating column drives the support plate to rotate, so that the support plate rotates until it can contact the blister tray and support the blister tray, so that the blister tray can be pressed on the support plate before stacking, so that the blister tray remains flat, which helps to achieve a better stacking effect.
[0018] In a specific feasible implementation scheme, a support groove is provided in the support plate, a limit plate is slidably installed in the support groove, a pad is provided on the limit plate, a spring is provided in the support groove, one end of the spring contacts the inner wall of the support groove, and the other end contacts the bottom wall of the limit plate.
[0019] By adopting the above technical solution, a pad is set up, and the pad is in contact with the blister tray. The pad can support the blister tray and protect the blister tray during the pressing process, thereby minimizing deformation or damage to the blister tray caused by pressure.
[0020] In a specific possible implementation scheme, a baffle is provided on the support plate, a lifting slot is provided in the support plate, a lifting component is provided in the lifting slot, the lifting component is connected to the baffle, and the lifting component is used to drive the baffle to rise and fall.
[0021] By adopting the above technical solution and setting a baffle, the baffle can limit the position of the blister tray, thereby avoiding the position of the blister tray from being offset when stacking, and ensuring a good stacking effect.
[0022] In a specific possible implementation scheme, the lifting assembly includes a rotating shaft and a rotating plate, the rotating shaft is rotatably connected in the lifting slot, the rotating plate is installed on the rotating shaft, and a descending plate and an ascending plate are slidably installed in the support plate, the descending plate is arranged at the bottom of the rotating column, and the ascending plate is arranged at the bottom of the baffle, the descending plate is in contact with one end of the rotating plate, and the ascending plate is in contact with the other end of the rotating plate.
[0023] By adopting the above technical solution, by pressing the pressing column, the pressing column presses down the descending plate, the descending plate drives the rotating plate to rotate, the rotating plate drives the ascending plate to rise, and the ascending plate drives the baffle to rise. While the support plate supports the blister tray, the baffle limits the blister tray, which helps to achieve a better stacking effect.
[0024] In a specific embodiment, the baffles are provided in a plurality of pieces, and the baffles are vertically arranged, and the baffles are used to contact the side wall of the blister tray.
[0025] By adopting the above technical solution and setting a plurality of baffles, a better limiting effect can be achieved on the blister tray, thereby achieving a better stacking effect.
[0026] In summary, this application includes at least one of the following beneficial technical effects:
[0027] 1. Setting up one or more shearing components and driving components can cut blister trays of different sizes and help improve cutting efficiency;
[0028] 2. The pressing component presses the blister tray to enhance the connection between two adjacent blister trays, making it easier to move and carry them later;
[0029] 3. Set up a pad, which is in contact with the blister tray. The pad can support the blister tray and protect it during the pressing process, so as to avoid deformation or damage of the blister tray due to pressure. BRIEF DESCRIPTION OF THE DRAWINGS
[0030] Figure 1 It is a schematic diagram of the overall structure of an embodiment of the present application.
[0031] Figure 2 It is a bottom-up structural schematic diagram of the shearing assembly in an embodiment of the present application.
[0032] Figure 3 It is a bottom-up structural schematic diagram of the drive assembly in an embodiment of the present application.
[0033] Figure 4 It is a structural schematic diagram of the material pressing assembly in an embodiment of the present application.
[0034] Figure 5 It is a structural diagram of the stacking assembly in an embodiment of the present application.
[0035] Figure 6 It is a structural diagram of the rotating assembly in an embodiment of the present application.
[0036] Figure 7 It is a cross-sectional view of the internal structure of the rotating assembly in the embodiment of the present application.
[0037] Figure 8 It is a cross-sectional view of the internal structure of the support plate in an embodiment of the present application.
[0038] Description of reference numerals:
[0039] 1. Workbench; 2. Drive assembly; 21. Moving plate; 22. Positioning table; 23. Shearing frame; 24. Shearing assembly; 25. Shearing cylinder; 26. Cutter; 27. Drive rod 1; 28. Drive rod 2. 31. Slide 1; 33. Slide 2; 34. Motor 1; 35. Motor 2; 40. Transport plate; 41. Driving source; 42. Suction assembly; 43. Pressing assembly; 45. Pressing rod; 46. Connecting rod; 47. Through slot; 49. Pressing piece; 5. Stacking assembly; 51. Bottom plate; 52. Vertical column; 53. Accommodating slot; 54. Unloading cylinder; 55. Unloading plate; 6. Rotating assembly; 61. Rotating slot; 62. Pressing column; 63. Rotating column; 64. Guide slot; 65. Sliding block; 66. Sliding slot; 67. Support plate; 68. Avoiding slot; 7. Lifting assembly; 71. Baffle; 72. Lifting slot; 73. Rotating shaft; 74. Rotating plate; 76. Rising plate; 77. Descending plate; 78. Mounting rod; 80. Support slot; 81. Limiting plate; 82. Pad. DETAILED DESCRIPTION
[0040] The present application is further described in detail below with reference to the accompanying drawings.
[0041] The embodiment of the present application discloses a high-efficiency automatic shearing machine for blister trays, referring to Figure 1 and Figure 2The high-efficiency automatic shearing machine for blister trays includes a workbench 1 with drive assemblies 2 mounted at both ends of the workbench 1 in its longitudinal direction. A movable plate 21 is mounted on the drive assembly 2, and a positioning platform 22 is fixed to the movable plate 21. The positioning platform 22 is used to place the blister trays. A shearing frame 23 is fixed to the workbench 1 between the two sets of drive assemblies 2. The shearing frame 23 is fixed to one or more shearing assemblies 24, specifically two sets in this embodiment.
[0042] Reference Figure 1 and Figure 2 The shearing assembly 24 includes a shearing cylinder 25 and a cutter 26. The shearing cylinder 25 is fixed to the shearing frame 23, and the piston rod of the shearing cylinder 25 passes through the shearing frame 23 and is fixedly connected to the cutter 26. First, the blister tray is placed on the positioning platform 22. The driving assembly 2 drives the movable plate 21 to move and transport the blister tray to the bottom of the shearing assembly 24. The shearing cylinder 25 drives the cutter 26 to move downward, and the cutter 26 cuts the blister tray from the plastic coil. At the same time, the blister tray can be placed on the positioning platform 22 on the other side. After shearing is completed, one group of driving assemblies 2 drives one blister tray to move out while the other group of driving assemblies 2 drives another blister tray to move to the bottom of the cutter 26 for shearing, which helps to improve work efficiency. In addition, the positioning platforms 22 on both sides can be set to different sizes, and the size of the cutter 26 can be changed to achieve cutting of blister trays of different sizes, which can further improve cutting efficiency and enhance the applicability of the equipment.
[0043] Reference Figure 1 and Figure 3 The driving assembly 2 includes a driving rod 1 27 and a driving rod 2 28. Both the driving rod 1 27 and the driving rod 2 28 are arranged along the length direction of the workbench 1. One end of the driving rod 1 27 is rotatably connected to the workbench 1 via a rotating shaft 1, and the other end is rotatably connected to a slider 1 (not shown in the figure). The workbench 1 is provided with a movable plate 21, and a sliding groove 1 31 is provided on the bottom wall of the movable plate 21. The sliding groove 1 31 is horizontally opened perpendicular to the length direction of the workbench 1, and the slider 1 is slidably installed in the sliding groove 1 31. The driving rod 2 28 is arranged parallel to the driving rod 1 27. One end of the driving rod 2 28 is rotatably connected to the workbench 1 via a rotating shaft 2, and the other end of the driving rod 2 28 is rotatably connected to a slider 2 (not shown in the figure). The bottom wall of the movable plate 21 is provided with a sliding groove 2 33. The sliding groove 2 33 is horizontally opened perpendicular to the length direction of the workbench 1, and the slider 2 is slidably installed in the sliding groove 2 33. Motor 1 34 and motor 2 35 are fixed within the workbench 1. Motor 1 34 is coaxially fixed to the rotating shaft, while motor 2 35 is coaxially fixed to the rotating shaft 2. Motor 1 34 and motor 2 35 rotate in opposite directions, thereby driving drive rod 1 27 and drive rod 2 28 to rotate in opposite directions. Drive rod 1 27 drives slider 1 to move within chute 1 31, while drive rod 2 28 drives slider 2 to move within chute 2 33, thereby driving movable plate 21 to reciprocate along the length of the workbench 1, facilitating the transport of blister trays.
[0044] Reference Figure 1 and Figure 4 , both ends of the workbench 1 in the length direction are provided with a conveying plate 40 and a driving source 41 for driving the conveying plate 40 to move. The driving source 41 is specifically an XYZ high-precision mobile platform. The XYZ high-precision mobile platform is a prior art and will not be described in detail here. The conveying plate 40 is installed on the XYZ high-precision mobile platform, and a suction component 42 and a pressing component 43 are installed on the conveying plate 40. The suction component 42 is specifically a nozzle component, which is a prior art and will not be described in detail here. The pressing component 43 includes a pneumatic source (not shown in the figure), a pressing rod 45 and a connecting rod 46. The pneumatic source is fixed on the conveying plate 40, and the connecting rod 46 is fixed on the conveying plate 40. The pneumatic source and the connecting rod 46 are connected by an air pipe. A through groove 47 is provided in the connecting rod 46, and the pressing rod 45 is slidably installed in the through groove 47. A spring is sleeved on the pressing rod 45, one end of the spring is in contact with the pressing piece 49, and the other end is in contact with the connecting rod 46. The bottom end of the pressing rod 45 is fixed with a pressing piece 49, which is specifically an elastic block. The elastic block can contact the edge of the blister tray and press the blister tray.
[0045] Since the surface of the blister tray is irregularly shaped, when multiple blister trays are stacked together, in order to strengthen the connection between two adjacent blister trays, a snap-fit connection structure is provided on the blister tray. However, the transportation and placement of the material suction assembly 42 may easily cause the connection between the two adjacent blister trays to be unstable or tilted, thereby affecting the stacking effect.
[0046] Reference Figure 4 and Figure 5 By setting a pressing component 43, after the suction component 42 sucks the blister disc, the blister disc is transported to the stacking component 5, and then the pressing rod 45 is driven by a pneumatic source to move up and down in the connecting rod 46, so that the pressing piece 49 contacts the blister disc and presses the blister disc to make the adjacent two blister discs engage with each other, which can enhance the connection between the adjacent two blister discs, facilitate transportation and handling, and reduce the occupied space.
[0047] Reference Figure 5 The stacking assembly 5 includes a base plate 51 and columns 52. In this embodiment, there are four columns 52, which are vertically fixed to the base plate 51 at the four corners. The base plate 51 is provided with a receiving slot 53, which penetrates the base plate 51 along the thickness direction of the base plate 51. A blanking cylinder 54 is fixed to the bottom of the base plate 51. The piston rod of the blanking cylinder 54 is arranged toward the side of the base plate 51. A blanking plate 55 is fixed to the piston rod of the blanking cylinder 54. The blanking cylinder 54 can drive the blanking plate 55 to pass through the receiving slot 53, and the blanking plate 55 supports the blister tray.
[0048] Since the structural strength of the blister tray itself is not high, if the pressure of the pressing component 43 is too great during the pressing process, it is easy to cause the blister tray to deform or even be damaged, thereby causing the stacked blister trays to tilt and easily collapse during transportation.
[0049] Reference Figure 7 To address the above-mentioned issues, a rotation groove 61 is defined within the upright column 52. A rotation assembly 6 is disposed within the rotation groove 61. The rotation assembly 6 comprises a pressing column 62 and a rotating column 63. The rotating column 63 is rotatably connected within the rotation groove 61. The pressing column 62 is sleeved onto the rotating column 63. A spring is disposed between the pressing column 62 and the rotating column 63, with one end of the spring contacting the pressing column 62 and the other end contacting the rotating column 63. A guide groove 64 is defined within the rotating column 63. The guide groove 64 is wavy and arranged along the outer wall of the rotating column 63. A sliding block 65 is slidably mounted within the guide groove 64. The pressing column 62 is defined by a sliding groove 66 for the sliding block 65 to pass through. The sliding block 65 is cylindrical, with its axis perpendicular to the axis of the rotating column 63. The inner wall of the sliding groove 66 contacts the outer wall of the sliding block 65. A support plate 67 is fixed to the bottom of the rotating column 63. The support plate 67 is used to support a single blister tray.
[0050] When the transport plate 40 drives the blister tray to the stacking assembly 5, the transport plate 40 contacts the pressing column 62, which pushes the pressing column 62 downward. The pressing column 62 compresses the spring, and the pressing column 62 drives the sliding block 65 downward. The sliding block 65 drives the rotating column 63 to rotate, which in turn drives the support plate 67 to rotate, so that all four support plates 67 can contact the blister tray. The suction assembly 42 releases the blister tray, and the pressing assembly 43 presses the blister tray. Under the support of the support plate 67 and the pressing action of the pressing assembly 43, the blister tray remains flat. After the pressing is completed, the transport plate 40 moves up, and the pressing column 62 rises under the reset action of the spring, thereby driving the rotating column 63 to reset, so that the support plate 67 is separated from the blister disk, and the blister disk falls onto the blanking plate 55, and then the pressing rod 45 is driven downward by the pneumatic source. The pressing rod 45 presses the blister disk, so that the two adjacent blister disks are engaged, thereby strengthening the connection between the two adjacent blister disks.
[0051] Reference Figure 6 and Figure 7, a baffle 71 is provided in the support plate 67, and the baffle 71 is used to contact the blister disk and limit the blister disk. Two baffles 71 are provided on each support plate 67, and the two baffles 71 are arranged vertically. The baffles 71 can contact the side wall of the blister disk. A lifting groove 72 is provided in the support plate 67, and a lifting component 7 is provided in the lifting groove 72. The lifting component 7 is used to drive the baffle 71 to rise and fall. The lifting component 7 includes a rotating shaft 73 and a rotating plate 74. The rotating shaft 73 is rotatably connected in the lifting groove 72, and the rotating plate 74 is fixed on the rotating shaft 73. The rotating shaft 73 is fixed in the middle of the length direction of the rotating plate 74. A descending plate 77 and an ascending plate 76 are provided in the lifting groove 72. The descending plate 77 is slidably installed at the bottom of the rotating column 63. The descending plate 77 contacts one end of the rotating plate 74. The end of the descending plate 77 away from the rotating plate 74 passes through the top wall of the support plate 67 and can contact the rotating column 63. The rising plate 76 is slidably mounted on the bottom of the baffle 71 . The rising plate 76 can contact the other end of the rotating plate 74 . One end of the rising plate 76 away from the rotating plate 74 is fixedly connected to the baffle 71 via a mounting rod 78 .
[0052] When the rotating column 63 is in the process of descending, the rotating column 63 drives the descending plate 77 to descend, and the descending plate 77 drives the rotating plate 74 to deflect. The other end of the rotating plate 74 drives the ascending plate 76 to rise, thereby driving the mounting rod 78 and the baffle 71 to rise. In this way, the baffle 71 can be driven to rise while driving the support plate 67 to rotate, so that the support plate 67 supports the blister tray, and the baffle 71 limits the blister tray to ensure the stacking effect of the blister tray.
[0053] Reference Figure 8 The support plate 67 further defines a support groove 80, within which a limit plate 81 is slidably mounted. A backing plate 82 is fixed to the limit plate 81. A spring is disposed within the support groove 80, one end of the spring contacting the inner wall of the support groove 80 and the other end contacting the bottom wall of the support plate 67. The backing plate 82 is configured to contact the blister tray. The backing plate protects the blister tray, minimizing damage or deformation to the blister tray caused by excessive pressure during pressing.
[0054] The implementation principle of the embodiment of the present application is as follows: the driving component 2 sends the blister disc to the bottom of the shearing component 24, the shearing component 24 shears the blister disc, the suction component 42 sucks the sheared blister disc and transports the blister disc to the stacking component 5. The transport plate 40 presses the pressing column 62, and the pressing column 62 drives the support plate 67 to deflect, so that the baffle 71 extends from the support plate 67 at the same time. The suction component 42 releases the blister disc and places the blister disc on the support plate 67, and the baffle 71 limits the blister disc. The blister disc is then pressed by the pressing component 43 to keep it flat. Then the transport plate 40 rises, the support plate 67 and the baffle 71 are reset, and the pressing component 43 presses down the blister disc, pressing the blister disc down onto the bottom plate 51 to achieve stacking of the blister discs.
[0055] The above are all preferred embodiments of the present application, and are not intended to limit the scope of protection of the present application. Therefore, any equivalent changes made based on the structure, shape, and principle of the present application should be included in the scope of protection of the present application.
Claims
1. A high-efficiency automatic shearing machine for blister trays, comprising a workbench (1), characterized in that: Both sides of the workbench (1) in the longitudinal direction are provided with a driving assembly (2), a movable plate (21) is provided on the driving assembly (2), a positioning platform (22) is provided on the movable plate (21), and one or more shearing assemblies (24) are provided in the middle of the workbench (1), and each group of the shearing assemblies (24) is used to shear the blister disc on the positioning platform (22); A stacking assembly (5) is provided on one side of the workbench (1), and the stacking assembly (5) includes a base plate (51) and a column (52). A receiving groove (53) is provided on the base plate (51). A blanking cylinder (54) and a blanking plate (55) are provided at the bottom of the base plate (51). The blanking plate (55) is mounted on the piston rod of the blanking cylinder (54). The column (52) is mounted on the base plate (51). A rotating groove (61) is provided in the column (52). A rotating assembly (6) is provided in the rotating groove (61). A supporting plate (67) for supporting the blister disk is installed on the rotating assembly (6); The rotating assembly (6) includes a pressing column (62) and a rotating column (63), the rotating column (63) is rotatably connected in the rotating groove (61), the pressing column (62) is sleeved on the rotating column (63), a spring is provided between the pressing column (62) and the rotating column (63), one end of the spring contacts the pressing column (62), and the other end contacts the rotating column (63), a guide groove (64) is provided on the rotating column (63), a sliding block (65) is slidably installed in the guide groove (64), a sliding groove (66) for the sliding block (65) to pass through is provided on the pressing column (62), the inner wall of the sliding groove (66) contacts the outer wall of the sliding block (65), and the support plate (67) is connected to the rotating column (63).
2. The high-efficiency automatic blister tray cutting machine according to claim 1 is characterized in that: The driving assembly (2) includes a driving rod 1 (27) and a driving rod 2 (28) arranged along the length direction of the workbench (1); a slide groove 1 (31) and a slide groove 2 (33) are provided on the bottom wall of the movable plate (21); a slider 1 is slidably installed in the slide groove 1 (31); a slider 2 (32) is slidably installed in the slide groove 2 (33); one end of the driving rod 1 (27) is rotatably connected to the workbench (1), and the other end is rotatably connected to the slider 1; one end of the driving rod 2 (28) is rotatably connected to the workbench (1), and the other end is rotatably connected to the slider 2.
3. The high-efficiency automatic blister tray cutting machine according to claim 1 is characterized in that: A transport plate (40) and a driving source (41) for driving the transport plate (40) to move are provided on one side of the workbench (1); a material suction component (42) and a material pressing component (43) are provided on the transport plate (40); the material suction component (42) is used to suck and lift the blister tray, and the material pressing component (43) is used to press and stack the blister tray.
4. The high-efficiency automatic blister tray cutting machine according to claim 3 is characterized in that: The pressing assembly (43) includes a pneumatic source, a pressing rod (45) and a connecting rod (46), wherein the connecting rod (46) is installed on the transport plate (40), the pneumatic source and the connecting rod (46) are connected via an air pipe, the pressing rod (45) is slidably installed in the connecting rod (46), a pressing piece (49) is provided at the bottom of the pressing rod (45), and a spring is sleeved on the pressing rod (45), one end of the spring is in contact with the pressing piece (49), and the other end is in contact with the connecting rod (46).
5. The high-efficiency automatic blister tray cutting machine according to claim 1 is characterized in that: A support groove (80) is provided in the support plate (67), a limit plate (81) is slidably installed in the support groove (80), a pad (82) is provided on the limit plate (81), and a spring is provided in the support groove (80), one end of the spring contacts the inner wall of the support groove (80), and the other end contacts the bottom wall of the limit plate (81).
6. The high-efficiency automatic blister tray cutting machine according to claim 1 is characterized in that: A baffle (71) is provided on the support plate (67), a lifting slot (72) is provided in the support plate (67), a lifting assembly (7) is provided in the lifting slot (72), the lifting assembly (7) is connected to the baffle (71), and the lifting assembly (7) is used to drive the baffle (71) to move up and down.
7. The high-efficiency automatic blister tray cutting machine according to claim 6, characterized in that: The lifting assembly (7) includes a rotating shaft (73) and a rotating plate (74), wherein the rotating shaft (73) is rotatably connected in the lifting groove (72), and the rotating plate (74) is installed on the rotating shaft (73). A descending plate (77) and an ascending plate (76) are slidably installed in the support plate (67), wherein the descending plate (77) is arranged at the bottom of the rotating column (63), and the ascending plate (76) is arranged at the bottom of the baffle (71), wherein the descending plate (77) contacts one end of the rotating plate (74), and the ascending plate (76) contacts the other end of the rotating plate (74).
8. The high-efficiency automatic blister tray cutting machine according to claim 6, characterized in that: The baffles (71) are provided in a plurality of pieces, and the baffles (71) are arranged vertically. The baffles (71) are used to contact the side wall of the blister tray.
Citation Information
Patent Citations
Steel plate precision shearing technology
CN109158690A
Duplex position material loading cross cutting indentator
CN208438449U
Die cutting device of automatic plastic vacuum forming machine
CN214265900U