Vacuum blister cutting all-in-one machine for blister tray production
By introducing the anti-warping and transfer mechanism into the vacuum blister cutting machine, the stability problem of plastic sheets during cutting is solved, high-precision and safe blister tray production is achieved, and the material retrieving process is simplified.
Patent Information
- Application Number
- CN202510916090.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-07-03
- Publication Date
- 2025-09-19
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
During the production of plastic suction cups, plastic sheets are prone to displacement or warping during cutting, resulting in unstable cutting and affecting cutting accuracy and safety.
The anti-warping mechanism and transfer mechanism are adopted. Through the design of the pressing plate and the moving plate, the stable fixation of the plastic sheet and the automatic transfer of the plastic suction plate after cutting are achieved. Combined with the cooperation of the vacuum pump and the cylinder, the cutting accuracy and safety are ensured.
It effectively prevents displacement and warping of plastic sheets during cutting, improves cutting quality and safety, simplifies the material removal process, and improves production efficiency.
Smart Images

Figure CN120663518A_ABST
Abstract
Description
Technical Field
[0001] The invention relates to the technical field of production of blister plastic trays, in particular to a vacuum blister and cutting integrated machine for producing blister plastic trays. Background Art
[0002] A blister tray, also known as a blister tray, is a plastic tray produced using a blister process. The production process involves heating and softening a flat, rigid plastic sheet (such as PVC, PET, PP, PS, etc.), vacuum-attaching it to a mold surface, and then cooling it to form the finished product. To ensure neat cutting and precise shaping, a vacuum blister cutting machine is often used during the production of these trays. This automated machine integrates the blister forming and automatic cutting processes into a single device. Following heating and blister forming, the device automatically positions and cuts the plastic sheet, directly producing the finished tray. Precise mold design and vacuum adsorption technology ensure the precise shape and size of the tray. The cutting system utilizes advanced cutting technology to ensure neat, burr-free edges, enhancing the product's appearance. Integrated production also improves production efficiency and reduces manual labor.
[0003] In the prior art, when the blister plastic tray is blister cut, the knife die will exert a certain force on the plastic sheet during the cutting process. If the plastic sheet cannot be stabilized during cutting, the plastic sheet may be displaced or bounced due to the cutting force, which may easily cause the cutting fragments to splash, and safety cannot be well guaranteed. At the same time, displacement and the like may also easily cause unstable cutting, which may easily cause deformation or deviation in cutting, thereby failing to well guarantee the accuracy and quality of the blister plastic tray cutting. Therefore, in order to solve the above problems, a vacuum blister plastic cutting integrated machine for the production of blister plastic trays is proposed. Summary of the Invention
[0004] The purpose of the present invention is to provide a vacuum plastic blister cutting machine for the production of plastic blister trays, so as to solve the problem mentioned in the above background technology that if the stability of the plastic sheet during cutting cannot be achieved well, the plastic sheet may be displaced or bounced due to the cutting force, which may easily cause the cutting fragments to splash, and the safety cannot be well guaranteed. At the same time, the displacement may also easily cause the cutting to be unstable, and the cutting may easily cause deformation or deviation, thereby failing to well guarantee the accuracy and quality of the cutting of the plastic blister trays.
[0005] To achieve the above-mentioned object, the present invention provides the following technical solution: a vacuum blister cutting machine for producing blister plastic discs, comprising a base, a first telescopic cylinder fixedly mounted on the upper surface of the base, and an output end of the first telescopic cylinder fixedly connected to a lower cutting die, a support rod fixedly connected to the surface of the base, and a top plate fixedly connected to the top of the support rod, a second telescopic cylinder fixedly mounted on the lower surface of the top plate, and an output end of the second telescopic cylinder fixedly connected to an upper die, a vacuum pump fixedly mounted on the top of the upper die, and a vacuum tube fixedly connected to the surface of the vacuum pump, the vacuum tube fixedly connected to the inner side of the upper die, a processing table is provided between the lower cutting die and the support rod, and the lower cutting die and the upper die move on the inner side of the processing table;
[0006] The surface of the processing table is provided with an anti-warping mechanism, the surface of the processing table is provided with a transfer mechanism, and the top of the top plate is provided with a pushing mechanism;
[0007] The anti-warping mechanism includes a pressing plate, which is arranged on the top of the processing table;
[0008] The transfer mechanism includes a movable plate, which is movably arranged on the top of the processing table;
[0009] The pushing mechanism includes a push rod, which is movably arranged on the inner side of the top plate and the upper mold.
[0010] Preferably, the anti-warping mechanism also includes a support frame, which is fixedly connected to the surface of the processing table, and a first rotating rod is movably connected to the inner side of the processing table. A motor is fixedly installed on the surface of the processing table, and the first rotating rod is fixedly connected to the output end of the motor, and a gear is fixedly connected to the surface of the first rotating rod.
[0011] Preferably, a fixing frame is fixedly connected to the inner surface of the support frame, and a rack plate is movably connected to the inner side of the fixing frame, and the pressure plate is fixedly connected to the bottom end of the rack plate.
[0012] Preferably, the surface of the rack plate is fixedly connected to the limiting block, the inner side of the fixed frame is provided with a limiting groove, and the limiting block moves inside the limiting groove, the inner side of the support frame is provided with a first movable groove, and the pressure plate moves inside the first movable groove.
[0013] Preferably, the surface of the first rotating rod is movably connected to the first transmission belt, the support frame is fixedly connected to the processing table in two groups and is respectively distributed on both sides of the upper mold, the first rotating rod is correspondingly connected to the support frame in two groups, and the two groups of the first rotating rods are movably connected to the first transmission belt through the pulley.
[0014] Preferably, the transfer mechanism also includes a second transmission belt, which is movably connected to the surface of the first rotating rod, the second rotating rod is movably connected to the inner side of the processing table, and the surface of the second rotating rod is fixedly connected to the first conical teeth, and both ends of the second transmission belt are movably connected to the first rotating rod and the second rotating rod through pulleys.
[0015] Preferably, a second movable groove is opened on the inner side of the processing table, and the inner side of the second movable groove is movably connected to the first screw, and the first screw and the processing table are movably connected, and the surface of the first screw is fixedly connected to the second conical tooth, and the second rotating rod, the first conical tooth and the second conical tooth are all movable on the inner side of the second movable groove.
[0016] Preferably, the second movable grooves are opened in two groups on the inner side of the processing table, the first screws are in two groups and connected to the second movable grooves accordingly, the surface of the first screws is threadedly connected to the first moving block, and the moving plate is fixedly connected to the top of the first moving block, the first moving block is movable on the inner side of the second movable groove, the surface of the first screw is movably connected to the third transmission belt, and the two groups of the first screws are movably connected through the pulley and the third transmission belt.
[0017] Preferably, the pushing mechanism also includes a fourth transmission belt, which is movably connected to the surface of the first rotating rod, the upper surface of the top plate is fixedly connected to a fixed block, and the inner side of the fixed block is movably connected to the second screw, and the two ends of the fourth transmission belt are movably connected to the first rotating rod and the second screw through pulleys respectively, the surface of the second screw is threadedly connected to the second moving block, and the top of the second moving block is fixedly connected to the inclined block.
[0018] Preferably, the inner surface of the fixed block is fixedly connected to the limiting rod, and the second movable block and the limiting rod are movably connected, the surface of the push rod is fixedly connected to a spring, and the two ends of the spring are respectively fixedly connected to the top plate and the push rod, the top end of the upper mold is fixedly connected to a sleeve, and the push rod moves on the inner side of the sleeve.
[0019] Compared with the prior art, the present invention has the following beneficial effects:
[0020] 1. The first rotating rod drives the gear to rotate, so that the rack plate can move vertically under the action of the gear and drive the pressure plate to move up and down. The downward movement of the pressure plate can realize the compression and fixation of the plastic sheet, so that the plastic sheet is not easily displaced and warped during cutting, thereby ensuring the stability of the plastic sheet, thereby helping to reduce the deformation and deviation of the plastic suction plate, ensuring the quality of cutting, and avoiding the plastic sheet from warping or splashing, thereby ensuring the effect and safety of cutting.
[0021] 2. The rotation of the first screw can realize the movement of the first moving block under the action of the first screw, thereby facilitating the movement of the moving plate and realizing the change of the position of the moving plate. The displacement of the moving plate can realize the connection and transfer of the cut blister plastic disc, so that there is no need to manually reach under the upper mold to take the material from the blister plastic disc after cutting, thereby making it more convenient to take the material and better ensuring the safety of taking the material.
[0022] 3. The rotation of the second screw can realize the movement of the second moving block and the inclined surface block. The movement of the inclined surface block can realize the extrusion of the ejector rod. Cooperating with the setting of the sleeve, the ejector rod can move vertically under the action of the inclined surface block and the sleeve, and can exert a certain force on the blister plate on the surface of the upper mold, thereby facilitating the ejector rod to push the blister plate, so that the blister plate is better separated from the upper mold, thereby avoiding jamming and better transferring the blister plate. BRIEF DESCRIPTION OF THE DRAWINGS
[0023] Figure 1 It is a schematic front view of the structure of the present invention;
[0024] Figure 2 It is a side exploded schematic diagram of the structure of the present invention;
[0025] Figure 3 It is a schematic exploded side view of the support frame and the pressure plate of the present invention;
[0026] Figure 4 This is an exploded side view of the structure of the processing table and the movable plate of the present invention;
[0027] Figure 5 This is a front cross-sectional exploded schematic diagram of the structure of the first screw and the movable plate of the present invention;
[0028] Figure 6 It is a schematic front view and cross-sectional view of the structure of the lower cutting die and the upper die of the present invention;
[0029] Figure 7 This is a schematic diagram of an exploded front view of the structure of the ramp block and the push rod of the present invention;
[0030] Figure 8 For the present invention Figure 5 Schematic diagram of the enlarged structure at point A in the middle.
[0031] In the figure: 1. base; 11. first telescopic cylinder; 12. lower cutting die; 13. support rod; 14. top plate; 15. second telescopic cylinder; 16. upper die; 17. vacuum pump; 18. vacuum tube; 19. processing table; 2. support frame; 21. first rotating rod; 22. motor; 23. gear; 24. fixed frame; 25. rack plate; 26. pressure plate; 27. limit block; 28. limit slot; 29. first movable slot; 210. 1. Transmission belt; 3. Second transmission belt; 31. Second rotating rod; 32. First conical tooth; 33. Second movable groove; 34. First screw; 35. Second conical tooth; 36. First moving block; 37. Moving plate; 38. Third transmission belt; 4. Fourth transmission belt; 41. Fixed block; 42. Second screw; 43. Second moving block; 44. Inclined block; 45. Limit rod; 46. Push rod; 47. Spring; 48. Sleeve. DETAILED DESCRIPTION
[0032] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.
[0033] See also Figure 1-8 , an embodiment provided by the present invention:
[0034] The first telescopic cylinder 11, the second telescopic cylinder 15, the vacuum pump 17 and the motor 22 used in this application are products that can be directly purchased on the market. Their principles and connection methods are existing technologies well known to those skilled in the art, so they will not be repeated here.
[0035] A vacuum blister cutting machine for producing blister trays includes a base 1, a first telescopic cylinder 11 is fixedly installed on the upper surface of the base 1, and the output end of the first telescopic cylinder 11 is fixedly connected to a lower cutting die 12, a support rod 13 is fixedly connected to the surface of the base 1, and the top of the support rod 13 is fixedly connected to a top plate 14, a second telescopic cylinder 15 is fixedly installed on the lower surface of the top plate 14, and the output end of the second telescopic cylinder 15 is fixedly connected to an upper die 16, a vacuum pump 17 is fixedly installed on the top of the upper die 16, and a vacuum tube 18 is fixedly connected to the surface of the vacuum pump 17, and the vacuum tube 18 is fixedly connected to the inner side of the upper die 16, the lower cutting die 12 and A processing table 19 is provided in the middle of the support rod 13, and the lower cutting die 12 and the upper die 16 are movable on the inner side of the processing table 19. By placing the plastic sheet on the processing table 19 and allowing the plastic sheet to enter between the lower cutting die 12 and the upper die 16, the lower cutting die 12 and the upper die 16 can be lifted and lowered by the telescopic action of the first telescopic cylinder 11 and the second telescopic cylinder 15, thereby achieving the punching of the blister plastic disc. The vacuum pump 17 enables the vacuum tube 18 to suck the air inside the upper die 16, thereby allowing the cut blister plastic disc to be adsorbed on the surface of the upper die 16, thereby facilitating the separation of the blister plastic disc and the plastic sheet.
[0036] The surface of the processing table 19 is provided with an anti-warping mechanism, the surface of the processing table 19 is provided with a transfer mechanism, and the top of the top plate 14 is provided with a pushing mechanism. The anti-warping mechanism includes a pressure plate 26, which is provided on the top of the processing table 19; the transfer mechanism includes a movable plate 37, which is movably provided on the top of the processing table 19; the pushing mechanism includes a push rod 46, which is movably provided on the inner side of the top plate 14 and the upper mold 16. Through the provision of the anti-warping mechanism, the plastic sheet can be fixedly positioned to prevent displacement and warping of the plastic sheet, which is conducive to achieving stable cutting, reducing cutting deformation of the plastic blister disc and improving cutting quality. Through the provision of the transfer mechanism, the cut plastic blister disc can be transferred, thereby facilitating the material removal of the plastic blister disc, and improving the convenience and safety of material removal. Through the provision of the pushing mechanism, a certain force can be applied to the cut plastic blister disc, so that the plastic blister disc can overcome the adsorption force and can better separate from the upper mold 16, thereby avoiding jamming and accelerated separation.
[0037] Furthermore, the anti-warping mechanism also includes a support frame 2, which is fixedly connected to the surface of the processing table 19, and a first rotating rod 21 is movably connected to the inner side of the processing table 19. A motor 22 is fixedly installed on the surface of the processing table 19, and the first rotating rod 21 and the output end of the motor 22 are fixedly connected. The surface of the first rotating rod 21 is fixedly connected to a gear 23, which is driven by the first rotating rod 21 to rotate. The rotation of the gear 23 can drive the rack plate 25 to move vertically, thereby facilitating the lifting and lowering of the pressure plate 26. The plastic sheet can be pressed by the lowering of the pressure plate 26, which is convenient for stable cutting of the plastic sheet, thereby avoiding warping and splashing of the plastic sheet, and is also beneficial to ensuring the quality of cutting the plastic suction disc and avoiding cutting deformation.
[0038] Furthermore, the inner surface of the support frame 2 is fixedly connected to a fixed frame 24, and the inner side of the fixed frame 24 is movably connected to a rack plate 25, and the pressure plate 26 is fixedly connected to the bottom end of the rack plate 25. Through the setting of the pressure plate 26, the rack plate 25 drives the pressure plate 26 to descend, and the contact between the pressure plate 26 and the surface of the plastic sheet can be achieved, thereby achieving the downward pressure on the plastic sheet, making it less likely for the plastic sheet to be displaced and warped during the cutting process.
[0039] Furthermore, the surface of the rack plate 25 is fixedly connected to the limiting block 27, the inner side of the fixed frame 24 is provided with a limiting groove 28, and the limiting block 27 moves on the inner side of the limiting groove 28. The inner side of the support frame 2 is provided with a first movable groove 29, and the pressure plate 26 moves on the inner side of the first movable groove 29. Through the setting of the limiting block 27 and the action of the limiting groove 28, when the rack plate 25 moves vertically under the action of the gear 23, the limiting block 27 can slide on the inner side of the limiting groove 28, thereby limiting the rack plate 25, avoiding the rack plate 25 from deflecting, and ensuring that the rack plate 25 drives the pressure plate 26 to move vertically stably.
[0040] Furthermore, the surface of the first rotating rod 21 is movably connected with a first transmission belt 210, and the support frame 2 is fixedly connected to the processing table 19 in two groups and is respectively distributed on both sides of the upper mold 16. The first rotating rod 21 is correspondingly connected to the support frame 2 in two groups, and the two groups of first rotating rods 21 are movably connected to the first transmission belt 210 through the pulley. Through the setting of the first transmission belt 210, when the first rotating rod 21 on the left rotates, the first transmission belt 210 can be activated, and the first transmission belt 210 can drive the first rotating rod 21 on the right to rotate at the same time, thereby facilitating the two groups of pressure plates 26 on both sides of the upper mold 16 to move vertically at the same time, thereby achieving compression of the plastic sheet.
[0041] Furthermore, the transfer mechanism also includes a second transmission belt 3, which is movably connected to the surface of the first rotating rod 21, and the second rotating rod 31 is movably connected to the inner side of the processing table 19, and the surface of the second rotating rod 31 is fixedly connected to the first conical teeth 32. Both ends of the second transmission belt 3 are movably connected to the first rotating rod 21 and the second rotating rod 31 through pulleys. Through the setting of the second transmission belt 3, the transmission of the first rotating rod 21 to the second rotating rod 31 can be realized, and then in conjunction with the setting of the first conical teeth 32 and the second conical teeth 35, the rotation of the second rotating rod 31 can drive the first screw 34 to transmit, thereby facilitating the first moving block 36 to move the moving plate 37 under the action of the first screw 34.
[0042] Furthermore, a second movable groove 33 is opened on the inner side of the processing table 19, and the inner side of the second movable groove 33 is movably connected to the first screw 34, and the first screw 34 and the processing table 19 are movably connected. The surface of the first screw 34 is fixedly connected with the second conical tooth 35, and the second rotating rod 31, the first conical tooth 32 and the second conical tooth 35 are all movable on the inner side of the second movable groove 33. Through the setting of the first screw 34, the rotation of the first screw 34 can make the first moving block 36 drive the moving plate 37 to move. The movement of the moving plate 37 can realize the transfer of the blister disk, so that there is no need to take the blister disk after cutting, thereby improving the convenience of taking the material and ensuring the safety of taking the material.
[0043] Furthermore, the second movable grooves 33 are opened in two groups on the inner side of the processing table 19, and the first screws 34 are connected in two groups to the second movable grooves 33. The surface of the first screws 34 is threadedly connected to the first movable block 36, and the movable plate 37 is fixedly connected to the top of the first movable block 36. The first movable block 36 is movable on the inner side of the second movable groove 33. The surface of the first screw 34 is movably connected to the third transmission belt 38, and the two groups of first screws 34 are movably connected to the third transmission belt 38 through the pulley. Through the setting of the third transmission belt 38, when the outer group of first screws 34 rotates, the third transmission belt 38 can be transmitted, and then the two groups of first screws 34 can be rotated at the same time under the action of the third transmission belt 38, which makes it easier for the first movable block 36 to drive the movable plate 37 to move, so that the movable plate 37 can connect and transfer the cut plastic blister disk.
[0044] The second screw rod 42 is connected to the second movable block 43 by a threaded connection, and the top of the second movable block 43 is fixedly connected to the inclined surface block 44. When the second screw rod 42 rotates, the second movable block 43 can move under the action of the second screw rod 42 and drive the inclined surface block 44 to move accordingly. The movement of the inclined surface block 44 can realize the squeezing of the push rod 46 by the inclined surface block 44, and the push rod 46 moves downward after being squeezed, so as to realize the squeezing of the plastic disk on the surface of the upper mold 16, so as to facilitate the better separation of the plastic disk and the upper mold 16, thereby facilitating the better transfer of the cut plastic disk.
[0045] Furthermore, the inner surface of the fixed block 41 is fixedly connected to the limit rod 45, and the second movable block 43 and the limit rod 45 are movably connected. The surface of the push rod 46 is fixedly connected to the spring 47, and the two ends of the spring 47 are fixedly connected to the top plate 14 and the push rod 46 respectively. The top end of the upper mold 16 is fixedly connected to the sleeve 48, and the push rod 46 is movable on the inner side of the sleeve 48. Through the setting of the spring 47, the push rod 46 can be reset, so that after the push rod 46 squeezes and detaches the blister disk on the surface of the upper mold 16, the push rod 46 can be raised, which is convenient for subsequent pushing.
[0046] Working principle: When in use, the lower cutting die 12 and the upper die 16 are cut to the plastic sheet by extending the first telescopic cylinder 11 and the second telescopic cylinder 15, and then the lower cutting die 12 and the upper die 16 are reset by contracting the first telescopic cylinder 11 and the second telescopic cylinder 15. With the arrangement of the vacuum pump 17 and the vacuum tube 18, the cut plastic suction disc is adsorbed on the surface of the upper die 16. The motor 22 is electrically connected to the external power supply. The staff starts the motor 22 by pressing the switch. The operation of the motor 22 drives the corresponding first rotating rod 21 to rotate. The first transmission belt 210 is driven by the first rotating rod 21 to rotate. The gear 23 is rotated under the action of the first rotating rod 21, and the gear 23 rotates to transmit the rack plate 25, so that the rack plate 25 can move on the inner side of the fixed frame 24 and drive the pressure plate 26 to move vertically. At the same time, the limit block 27 slides in the limit groove 28. The gear 23 rotates to make the rack plate 25 drive the pressure plate 26 to descend, so that the pressure plate 26 presses the plastic sheet and prevents the plastic sheet from warping. The rack plate 25 drives the pressure plate 26 to rise, so as to cancel the pressure on the plastic sheet.
[0047] When the first rotating rod 21 rotates, the second transmission belt 3 moves under the action of the first rotating rod 21 and transmits the power to the second rotating rod 31. Then, the second rotating rod 31 rotates and drives the first conical teeth 32 to rotate. The first conical teeth 32 transmit the power to the second conical teeth 35, so that the first screw 34 rotates. The third transmission belt 38 moves under the action of the first screw 34 and drives the other set of first screws 34 to rotate accordingly, so that the two sets of first screws 34 rotate simultaneously. Then, the two sets of first moving blocks 36 move in the second movable groove 33 under the action of the first screw 34 and drive the moving plate 37 to move.
[0048] When the first rotating rod 21 rotates, the fourth transmission belt 4 moves under the action of the first rotating rod 21, which can realize the transmission of the second screw rod 42, and then the second screw rod 42 rotates, and the second moving block 43 is limited by the limiting rod 45, and will move under the action of the second screw rod 42 and move on the surface of the limiting rod 45, and then the inclined surface block 44 moves accordingly, and the inclined surface block 44 moves to squeeze the ejector rod 46, so that the ejector rod 46 can move inside the top plate 14, the upper mold 16 and the sleeve 48 and move downward. At this time, the spring 47 is in a contracted state, and the downward movement of the ejector rod 46 can squeeze and push the blister disk on the surface of the upper mold 16, so that the blister disk and the upper mold 16 can be separated; the squeezing of the ejector rod 46 is cancelled by the movement of the inclined surface block 44, and the ejector rod 46 can be reset under the rebound action of the sleeve 48;
[0049] When the cutting is completed, the rack plate 25 drives the pressure plate 26 to rise and cancel the pressure on the plastic sheet through the rotation of the gear 23. At the same time, the first screw 34 rotates to make the first moving block 36 drive the moving plate 37 to move left to the bottom of the upper mold 16. At the same time, the inclined surface block 44 moves and squeezes the ejector rod 46, so that the ejector rod 46 pushes the blister plate and the upper mold 16 to separate, and then the blister plate falls on the moving plate 37, so that the moving plate 37 receives the blister plate on the surface of the upper mold 16; then the rack plate 25 drives the pressure plate 26 to descend through the rotation of the gear 23. During the descent, the first screw 34 rotates to make the first moving block 36 drive the moving plate 37 away from the upper mold 16, thereby realizing the transfer of the blister plate. At the same time, the inclined surface block 44 moves to cancel the squeezing of the ejector rod 46, so that the ejector rod 46 is reset.
[0050] The above are only preferred embodiments of the present invention and do not limit the present invention in any form. Any ordinary technician in this industry can smoothly implement the present invention as shown in the drawings and above. However, any equivalent changes, modifications and evolutions made by technicians familiar with this profession without departing from the scope of the technical solution of the present invention using the technical content disclosed above are all equivalent embodiments of the present invention. At the same time, any equivalent changes, modifications and evolutions made to the above embodiments based on the essential technology of the present invention are still within the scope of protection of the technical solution of the present invention.
Claims
1. A vacuum blister cutting machine for producing blister trays, comprising a base (1), a first telescopic cylinder (11) fixedly mounted on the upper surface of the base (1), and a lower cutting die (12) fixedly connected to the output end of the first telescopic cylinder (11), a support rod (13) fixedly connected to the surface of the base (1), and a top plate (14) fixedly connected to the top of the support rod (13), and a second telescopic cylinder (15) fixedly mounted on the lower surface of the top plate (14). The output end of the second telescopic cylinder (15) is fixedly connected to an upper mold (16), a vacuum pump (17) is fixedly installed on the top of the upper mold (16), and a vacuum tube (18) is fixedly connected to the surface of the vacuum pump (17), and the vacuum tube (18) is fixedly connected to the inner side of the upper mold (16). A processing table (19) is provided between the lower cutting mold (12) and the support rod (13), and the lower cutting mold (12) and the upper mold (16) are movable on the inner side of the processing table (19); It is characterized by: The surface of the processing table (19) is provided with an anti-warping mechanism, the surface of the processing table (19) is provided with a transfer mechanism, and the top of the top plate (14) is provided with a pushing mechanism; The anti-warping mechanism includes a pressing plate (26), and the pressing plate (26) is arranged on the top of the processing table (19); The transfer mechanism includes a movable plate (37), and the movable plate (37) is movably arranged on the top of the processing table (19); The pushing mechanism includes a push rod (46), and the push rod (46) is movably arranged on the inner side of the top plate (14) and the upper mold (16).
2. The vacuum blister and cutting machine for producing blister trays according to claim 1, characterized in that: The anti-warping mechanism further comprises a support frame (2), the support frame (2) being fixedly connected to the surface of a processing table (19), and a first rotating rod (21) being movably connected to the inner side of the processing table (19), a motor (22) being fixedly mounted on the surface of the processing table (19), and the first rotating rod (21) and an output end of the motor (22) being fixedly connected, and a gear (23) being fixedly connected to the surface of the first rotating rod (21).
3. The vacuum blister and cutting machine for producing blister trays according to claim 2, characterized in that: The inner surface of the support frame (2) is fixedly connected to a fixed frame (24), and the inner side of the fixed frame (24) is movably connected to a rack plate (25), and the pressing plate (26) is fixedly connected to the bottom end of the rack plate (25).
4. The vacuum blister and cutting machine for producing blister trays according to claim 3, characterized in that: The surface of the rack plate (25) is fixedly connected to a limiting block (27); a limiting groove (28) is provided on the inner side of the fixed frame (24), and the limiting block (27) moves inside the limiting groove (28); a first movable groove (29) is provided on the inner side of the support frame (2), and the pressing plate (26) moves inside the first movable groove (29).
5. The vacuum blister and cutting machine for producing blister trays according to claim 2, characterized in that: The surface of the first rotating rod (21) is movably connected to a first transmission belt (210); the support frame (2) is in two groups and fixedly connected to the processing table (19) and respectively distributed on both sides of the upper mold (16); the first rotating rod (21) is in two groups and correspondingly connected to the support frame (2); the two groups of the first rotating rods (21) are movably connected to the first transmission belt (210) via a pulley.
6. The vacuum blister and cutting machine for producing blister trays according to claim 1, characterized in that: The transfer mechanism further comprises a second transmission belt (3), the second transmission belt (3) being movably connected to the surface of the first rotating rod (21), the inner side of the processing table (19) being movably connected to the second rotating rod (31), and the surface of the second rotating rod (31) being fixedly connected to the first conical tooth (32), and both ends of the second transmission belt (3) being movably connected to the first rotating rod (21) and the second rotating rod (31) through pulleys.
7. The vacuum blister and cutting machine for producing blister trays according to claim 6, characterized in that: A second movable groove (33) is provided on the inner side of the processing table (19), and a first screw (34) is movably connected to the inner side of the second movable groove (33), and the first screw (34) and the processing table (19) are movably connected. A second conical tooth (35) is fixedly connected to the surface of the first screw (34), and the second rotating rod (31), the first conical tooth (32) and the second conical tooth (35) are all movable on the inner side of the second movable groove (33).
8. The vacuum blister and cutting machine for producing blister trays according to claim 7, characterized in that: The second movable groove (33) is formed into two groups and is opened on the inner side of the processing table (19). The first screw rod (34) is formed into two groups and is connected to the second movable groove (33) in correspondence. The surface of the first screw rod (34) is threadedly connected to the first moving block (36), and the moving plate (37) is fixedly connected to the top of the first moving block (36). The first moving block (36) is movable on the inner side of the second movable groove (33). The surface of the first screw rod (34) is movably connected to the third transmission belt (38), and the two groups of the first screw rods (34) are movably connected through the pulley and the third transmission belt (38).
9. The vacuum blister and cutting machine for producing blister trays according to claim 1, characterized in that: The pushing mechanism further comprises a fourth transmission belt (4), the fourth transmission belt (4) being movably connected to the surface of the first rotating rod (21), the upper surface of the top plate (14) being fixedly connected to a fixed block (41), and the inner side of the fixed block (41) being movably connected to a second screw rod (42), the two ends of the fourth transmission belt (4) being movably connected to the first rotating rod (21) and the second screw rod (42) respectively through pulleys, the surface of the second screw rod (42) being threadedly connected to a second moving block (43), and the top end of the second moving block (43) being fixedly connected to a sloped block (44).
10. The vacuum blister and cutting machine for producing blister trays according to claim 9, characterized in that: The inner surface of the fixed block (41) is fixedly connected to a limiting rod (45), and the second movable block (43) and the limiting rod (45) are movably connected. The surface of the push rod (46) is fixedly connected to a spring (47), and the two ends of the spring (47) are respectively fixedly connected to the top plate (14) and the push rod (46). The top end of the upper mold (16) is fixedly connected to a sleeve (48), and the push rod (46) is movable on the inner side of the sleeve (48).