Blister connecting line cutting machine

By designing an automated thermoforming cutting machine, automatic feeding, precise cutting, and efficient output are achieved, solving the problems of cumbersome operation and low efficiency of traditional thermoforming cutting equipment, and improving production efficiency and finished product quality.

CN224240337UActive Publication Date: 2026-05-15GUANGDONG SHUANGBAILI TECHNOLOGY CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
GUANGDONG SHUANGBAILI TECHNOLOGY CO LTD
Filing Date
2025-05-16
Publication Date
2026-05-15

AI Technical Summary

Technical Problem

Traditional thermoforming cutting equipment relies on manual or semi-automatic methods, which are cumbersome to operate, have inaccurate positioning, and are inefficient. They cannot achieve efficient, intelligent, and continuous operation, and the finished product unloading process requires manual handling, which affects production efficiency and quality.

Method used

A thermoforming line cutting machine was designed, which includes automatic feeding, precise cutting and efficient material discharge functions. The automatic control is achieved through the drive motor of the mold platen and the motor of the movable column. Combined with the multi-directional material discharge device, the automatic material conveying and precise cutting are realized.

Benefits of technology

It has achieved automated production, improved production efficiency and finished product quality, reduced manual intervention, and adapted to the needs of continuous operation under different specifications and cycle times.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a plastic uptake connecting line cutting machine which comprises a machine frame body, the machine frame body comprises an installation machine frame, the upper end of the installation machine frame is provided with a machine frame installation position, the bottom of the machine frame installation position is provided with a pressing die bottom piece, and the upper end of the machine frame installation position is provided with a pressing die top piece. A die pressing plate is connected to the lower end of the die pressing ejection piece in a vertically movable mode, a feeding opening is formed in the front end of the rack installation position, a feeding device is installed in the feeding opening, a first discharging opening is formed in one side of the rack installation position, and a first discharging device is installed on the side portion of the first discharging opening. A second discharging opening is formed in the other side of the rack installation position, and a second discharging device is installed on the side portion of the second discharging opening. According to the blister connecting line cutting machine, continuous operation of automatic feeding, accurate cutting and efficient discharging is achieved, manual intervention is reduced, and production efficiency and finished product quality are improved.
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Description

Technical Field

[0001] This utility model belongs to the field of automated packaging equipment technology, specifically relating to a blister packaging line cutting machine for use in blister packaging production lines. Background Technology

[0002] Blister packaging is widely used in industries such as electronics, daily necessities, food, and pharmaceuticals. It involves heating and softening plastic sheets, which are then adhered to a mold surface to form the final product, followed by cutting. With the increasing demand for automated packaging, blister packaging production lines are gradually developing towards higher efficiency, intelligence, and continuous operation. Traditional blister cutting processes mostly rely on manual or semi-automatic methods for feeding and cutting, resulting in cumbersome operation, inaccurate positioning, and low efficiency. Furthermore, after forming and cutting, the product unloading process often requires manual handling or unidirectional conveying, which can easily lead to production line bottlenecks and finished product damage, affecting overall production efficiency and product quality.

[0003] Furthermore, existing thermoforming cutting equipment typically has a simple structure, making it unable to simultaneously handle bidirectional discharge or multidirectional sorting. This results in poor flexibility and difficulty in adapting to continuous operation requirements under different specifications and production cycles. While some devices have automatic feeding functions, their coordination in precise cutting, synchronous transmission, and finished product transfer is poor, still requiring considerable manual intervention and hindering the realization of highly automated packaging production lines.

[0004] Therefore, overcoming the shortcomings of the existing technology is an urgent problem to be solved in this technical field. Utility Model Content

[0005] In view of the technical problems mentioned in the background art, the purpose of this utility model is to provide a blister packaging line cutting machine that realizes continuous operation of automatic feeding, precise cutting and efficient output, reduces manual intervention, and improves production efficiency and finished product quality, so as to solve the technical problems mentioned in the background art.

[0006] To achieve the above objectives, the present invention provides the following technical solution: a thermoforming line cutting machine, comprising a frame body, the frame body including a mounting frame, a frame mounting position at the upper end of the mounting frame, a pressing mold bottom component mounted at the bottom of the mounting position, a pressing mold top component mounted at the upper end of the mounting position, a mold pressure plate movably connected to the lower end of the pressing mold top component, a feeding opening at the front end of the mounting position, a feeding device installed in the feeding opening, a first discharge opening on one side of the mounting position, a first discharge device installed on the side of the first discharge opening, and a second discharge opening on the other side of the mounting position, a second discharge device installed on the side of the second discharge opening.

[0007] Furthermore, the die top part includes a top part mounting block, which is located at the upper end of the frame mounting position. A plurality of positioning movable columns are evenly connected between the edge of the top part mounting block and the edge of the die bottom part. The die pressure plate is movably connected between the plurality of positioning movable columns. A drive motor is installed on the side of the top part mounting block, and the drive motor is connected to the die pressure plate.

[0008] Furthermore, each of the positioning movable columns is equipped with a movable column motor on its top, and each movable column motor is connected to a transmission gear at its lower end. The transmission gears are connected to each other by a transmission belt.

[0009] Furthermore, the feeding device includes a first feeding movable rod and a second feeding movable rod, which are respectively disposed in the feeding opening of the frame mounting position. A plurality of first feeding pressure members are movably connected to the first feeding movable rod, and a plurality of second feeding pressure members are movably connected to the second feeding movable rod. The plurality of first feeding pressure members and the plurality of second feeding pressure members are arranged in a one-to-one correspondence. A first feeding motor is installed on both sides of the first feeding movable rod, and a second feeding motor is also installed on both sides of the second feeding movable rod.

[0010] Furthermore, the first discharge device includes a first discharge bracket, on which first movable rails are symmetrically installed on both sides. A first discharge motor is installed on each end of the first movable rail. The two first discharge motors are connected by a first discharge belt. A first discharge mounting plate that can be slidably installed left and right is connected between the two first movable rails. The first discharge mounting plate is connected to the first discharge belt. A first discharge adsorption rack is connected below the first discharge mounting plate.

[0011] Furthermore, a first connecting rail is installed on the upper side of the first discharge bracket, a first movable motor is installed at the lower end of the first connecting rail, and a first motor drive gear is installed at the upper end of the first connecting rail. The first motor drive gear is linked to the first movable motor through a first movable belt. A first adsorption rack connecting rod is slidably connected to the side of the first connecting rail. The upper end of the first adsorption rack connecting rod is clamped and connected to the first movable belt, and its bottom end is fixedly connected to the first discharge adsorption rack.

[0012] Furthermore, the second discharge device includes a second discharge bracket, on which second movable rails are symmetrically installed. Second discharge motors are respectively installed on the two ends of the second movable rails. The two second discharge motors are connected by a second discharge belt. A second discharge mounting plate that can be slidably installed left and right is connected between the two second movable rails. The second discharge mounting plate is connected to the second discharge belt. A second discharge adsorption rack is connected below the second discharge mounting plate.

[0013] Furthermore, a second connecting rail is installed on the upper side of the second discharge bracket, a second movable motor is installed at the lower end of the second connecting rail, and a second motor drive gear is installed at the upper end of the second connecting rail. The second motor drive gear is linked to the second movable motor through a second movable belt. A second adsorption rack connecting rod is slidably connected to the side of the second connecting rail. The upper end of the second adsorption rack connecting rod is clamped to the second movable belt, and its lower end is fixedly connected to the second discharge adsorption rack.

[0014] Furthermore, a first conveyor belt assembly is installed at the lower end of the first discharge bracket, and the first conveyor belt assembly is correspondingly arranged with the first discharge adsorption frame. A second conveyor belt assembly is installed at the lower end of the second discharge bracket, and the second conveyor belt assembly is correspondingly arranged with the second discharge adsorption frame.

[0015] Furthermore, a control component is installed on the front side of the first discharge bracket, and the control component is equipped with a control display screen.

[0016] The present invention has the following advantages: the upper end of the mounting frame is provided with a frame mounting position, the bottom of the frame mounting position is provided with a pressing mold bottom part, the upper end of the frame mounting position is provided with a pressing mold top part, the lower end of the pressing mold top part is movably connected to a mold pressure plate, the front end of the frame mounting position is provided with a feeding opening, a feeding device is installed in the feeding opening, a first discharge opening is provided on one side of the frame mounting position, a first discharge device is installed on the side of the first discharge opening, and a second discharge opening is provided on the other side of the frame mounting position, a second discharge device is installed on the side of the second discharge opening. The vacuum forming line cutting machine of the present invention realizes continuous operation of automatic feeding, precise cutting and efficient discharge, reduces manual intervention, and improves production efficiency and finished product quality. Attached Figure Description

[0017] Figure 1 This is a schematic diagram of the overall three-dimensional structure of this utility model.

[0018] Figure 2 This is a three-dimensional structural diagram of the mounting frame, mold plate, and feeding device of this utility model.

[0019] Figure 3 This is a three-dimensional structural diagram of the mounting frame, the bottom part of the pressing mold, and the top part of the pressing mold of this utility model.

[0020] Figure 4 This is a three-dimensional structural diagram of the first discharge device of this utility model.

[0021] Figure 5 This is a three-dimensional structural diagram of the second discharge device of this utility model.

[0022] Reference numerals: Frame body 1; Mounting frame 10; Frame mounting position 11; Mold base 20; Mold top 30; Mold pressure plate 31; Feeding opening 111; Feeding device 40; First discharge opening 112; First discharge device 50; Second discharge opening 113; Second discharge device 60; Top mounting block 32; Positioning movable column 33; Drive motor 34; Movable column motor 35; Transmission gear 351; Transmission belt 36; First feeding movable rod 41; Second feeding movable rod 42; First feeding pressure piece 411; Second feeding pressure piece 421; First feeding motor 43; Second feeding motor 44; First discharge bracket 51; First movable track 52; First discharge motor Machine 53; First discharge belt 531; First discharge mounting plate 54; First discharge suction rack 55; First connecting track 56; First movable motor 561; First motor drive gear 562; First movable belt 563; First suction rack connecting rod 57; Second discharge bracket 61; Second movable track 62; Second discharge motor 63; Second discharge belt 631; Second discharge mounting plate 64; Second discharge suction rack 65; Second connecting track 66; Second movable motor 661; Second motor drive gear 662; Second movable belt 663; Second suction rack connecting rod 67; First conveyor belt assembly 58; Second conveyor belt assembly 68; Control component 70; Control display screen 71. Detailed Implementation

[0023] like Figures 1 to 5 As shown, a vacuum forming line cutting machine includes a frame body 1, which includes a mounting frame 10. The upper end of the mounting frame 10 has a frame mounting position 11. A pressure mold bottom component 20 is mounted at the bottom of the mounting position 11, and a pressure mold top component 30 is mounted at the upper end of the mounting position 11. A mold pressure plate 31 is movably connected to the lower end of the pressure mold top component 30. A feeding opening 111 is opened at the front end of the mounting position 11, and a feeding device 40 is installed in the feeding opening 111. One side of the mounting position 11... A first discharge opening 112 is provided on the side, and a first discharge device 50 is installed on the side of the first discharge opening 112. A second discharge opening 113 is provided on the other side of the frame mounting position 11, and a second discharge device 60 is installed on the side of the second discharge opening 113. During use, the material is clamped by the feeding device 40 and fed into the frame. When the material is conveyed between the die top part 30 and the die bottom part 20, the die top part 30 drives the die pressure plate 31 to move downward, performing forming and cutting operations on the material. After forming, the first discharge device 50 conveys the material to a conveyor belt on one side through the first discharge opening 112, and the second discharge device 60 conveys the material to a conveyor belt on the other side through the second discharge opening 113. Through this structural design, continuous operation of automatic feeding, precise cutting and efficient discharge is realized, improving the overall work efficiency.

[0024] In practical implementation, the mold top member 30 includes a top member mounting block 32, which is located at the upper end of the frame mounting position 11 and is used to support and mount the drive structure of the mold pressure plate 31. A plurality of positioning movable columns 33 are evenly connected between the edge of the top member mounting block 32 and the edge of the mold bottom member 20 to ensure the relative positional accuracy of the upper and lower molds during cutting and forming processes. The mold pressure plate 31 is movably connected between the plurality of positioning movable columns 33 and can move up and down along the direction of the positioning movable columns 33. The positioning movable columns 33 not only serve as guides but also participate in the lifting and lowering control of the mold pressure plate 31. To achieve automated drive, a drive motor 34 is installed on the side of the top member mounting block 32. The drive motor 34 is connected to the mold pressure plate 31 through a linkage mechanism to provide downward pressing power for the mold pressure plate 31. Furthermore, each of the positioning movable columns 33 is equipped with a movable column motor 35 at its top, and each movable column motor 35 is connected to a transmission gear 351 at its lower end. These transmission gears 351 are connected by a transmission belt 36, forming a linkage transmission mechanism. Synchronous drive of the movable column motors 35 ensures that all the positioning movable columns 33 move in unison, further ensuring that the mold platen 31 remains horizontal during lifting and lowering, preventing offset or tilting, and improving the accuracy and consistency of molding and cutting. In use, the material is fed into the mold area by the feeding device 40. Once the sensor detects that the material has been positioned, the drive motor 34 starts, driving the mold platen 31 downwards, cooperating with the mold base 20 to press and cut the material. The movable column motors 35 can provide auxiliary positioning or fine-tuning actions as needed to achieve precise control. After cutting, the mold platen 31 is reset under the action of the drive system, and the discharge device starts to operate, sending the formed material from the first discharge opening 112 and the second discharge opening 113 to the corresponding conveyor belts to complete one work cycle.

[0025] In practical implementation, the feeding device 40 includes a first feeding movable rod 41 and a second feeding movable rod 42, respectively disposed within the feeding opening 111 of the frame mounting position 11, located on both sides of the material transmission path. A plurality of first feeding clamping members 411 are movably connected to the first feeding movable rod 41 for clamping one side of the material; a plurality of second feeding clamping members 421 are movably connected to the second feeding movable rod 42 for clamping the other side of the material. The plurality of first feeding clamping members 411 and the plurality of second feeding clamping members 421 are arranged in a one-to-one correspondence. When the first feeding clamping member 411 and the second feeding clamping member 421 are close together, the material can be stably clamped in the middle, achieving stable conveying. A first feeding motor 43 is installed on each side of the first feeding rod 41 to drive it in horizontal reciprocating motion. A second feeding motor 44 is also installed on each side of the second feeding rod 42 to drive it in synchronous or alternating motion. In actual use, the first feeding motor 43 and the second feeding motor 44 work in coordination, causing the first feeding rod 41 and the second feeding rod 42 to drive the corresponding feeding clamps to clamp the material. Then, the feeding rods are driven by the motors to move along the feeding direction, feeding the material between the die top part 30 and the die bottom part 20 for forming and cutting. This structural design effectively achieves automatic, stable, and continuous material feeding, improving the overall working efficiency and forming quality of the equipment.

[0026] In practical implementation, the first discharge device 50 includes a first discharge bracket 51 disposed on one side of the frame mounting position 11, which undertakes the overall installation function of the first discharge device 50. First movable rails 52 are symmetrically installed on both sides of the first discharge bracket 51 to guide the horizontal movement of the discharge device. First discharge motors 53 are respectively installed on both ends of the first movable rails 52, and the two first discharge motors 53 are connected by a first discharge belt 531, which drives the discharge component to move between the rails. A first discharge mounting plate 54, which can be slidably installed left and right, is connected between the two first movable rails 52. The first discharge mounting plate 54 is connected to the first discharge belt 531 and moves laterally with the start and stop of the first discharge belt 531. A first discharge suction rack 55 is connected below the first discharge mounting plate 54 for suction or gripping the cut material. To achieve vertical lifting, a first connecting rail 56 is installed on the upper side of the first discharge bracket 51. The lower end of the first connecting track 56 is equipped with a first movable motor 561 for driving vertical movement, and the upper end is equipped with a first motor drive gear 562, which is linked to the first movable motor 561 via a first movable belt 563. A first adsorption rack connecting rod 57 is slidably connected to the side of the first connecting track 56. The upper end of the first adsorption rack connecting rod 57 is clamped to the first movable belt 563, allowing it to move up and down with the belt. Its lower end is fixedly connected to the first discharge adsorption rack 55. In use, the first discharge motor 53 drives the first discharge belt 531, causing the first discharge mounting plate 54 and the first discharge adsorption rack 55 to move horizontally. Simultaneously, the first movable motor 561 drives the first adsorption rack connecting rod 57 to move up and down via the first movable belt 563, thus achieving bidirectional linkage control of the adsorption rack in both horizontal and vertical directions. After being cut, the molding material is adsorbed by the first discharge adsorption rack 55, then moved to the preset conveyor belt position and released, completing the discharge process.

[0027] In practical implementation, the second discharge device 60 includes a second discharge bracket 61 located on the other side of the frame mounting position 11. Second movable rails 62 are symmetrically mounted on both sides of the second discharge bracket 61. Second discharge motors 63 are respectively mounted on the two ends of the second movable rails 62. The two second discharge motors 63 are connected by a second discharge belt 631. A second discharge mounting plate 64, which can slide left and right, is connected between the two second movable rails 62. The second discharge mounting plate 64 is connected to the second discharge belt 631. A second discharge suction rack 65 is connected below the second discharge mounting plate 64. A second connecting rail 66 is mounted on the upper side of the second discharge bracket 61. A second movable motor 661 is mounted at the lower end of the second connecting rail 66, and a second motor drive gear 662 is mounted at its upper end. The second motor drive gear 662 is linked to the second movable motor 661 via the second movable belt 663. The second connecting track 66 has a second adsorption frame connecting rod 67 that can slide up and down on its side. The upper end of the second adsorption frame connecting rod 67 is clamped to the second movable belt 663, and its lower end is fixedly connected to the second discharge adsorption frame 65. In use, the second discharge motor 63 drives the second discharge belt 631 to move, causing the second discharge mounting plate 64 and the adsorption frame below it to move horizontally. At the same time, the second movable motor 661 drives the second movable belt 663 to rotate, driving the second adsorption frame connecting rod 67 to slide up and down, thereby enabling the adsorption frame to achieve bidirectional horizontal and vertical movement control. After the molding material is cut by the mold, it is adsorbed and transported by the adsorption frame to the other side conveyor belt to complete the discharge operation.

[0028] In practical implementation, a first conveyor belt assembly 58 is installed at the lower end of the first discharge bracket 51. The first conveyor belt assembly 58 is correspondingly arranged with the first discharge adsorption frame 55, so that the adsorption frame can accurately release the cut and shaped material onto the conveyor belt for subsequent transfer operations. The first conveyor belt assembly 58 can stably transport the shaped material to the designated area after it falls, improving discharge efficiency and automation level. A second conveyor belt assembly 68 is installed at the lower end of the second discharge bracket 61. The second conveyor belt assembly 68 is correspondingly arranged with the second discharge adsorption frame 65, ensuring that the material can be smoothly transferred to the conveyor belt for the next process or collection after being released from the adsorption frame. During use, after the mold top member 30 drives the mold platen 31 to complete the forming and cutting operations, the formed material is adsorbed and transported by the first discharge adsorption frame 55 and the second discharge adsorption frame 65, and then released after being moved directly above the corresponding conveyor belt assembly. The released material is then conveyed to the subsequent process area via the first conveyor belt assembly 58 or the second conveyor belt assembly 68. The entire process is automated and efficient, reducing manual intervention and improving production efficiency and finished product quality.

[0029] In practice, a control component 70 is installed on the front side of the first discharge bracket 51. The control component 70 is equipped with a control display screen 71, which is used to display and control the various operating parameters of the thermoforming line cutting machine in real time.

[0030] In summary, the upper end of the mounting frame 10 is provided with a frame mounting position 11, the bottom of the frame mounting position 11 is provided with a pressing mold base 20, the upper end of the frame mounting position 11 is provided with a pressing mold top 30, the lower end of the pressing mold top 30 is movably connected to a mold pressure plate 31, the front end of the frame mounting position 11 is provided with a feeding opening 111, a feeding device 40 is installed in the feeding opening 111, one side of the frame mounting position 11 is provided with a first discharge opening 112, the side of the first discharge opening 112 is provided with a first discharge device 50, the other side of the frame mounting position 11 is provided with a second discharge opening 113, the side of the second discharge opening 113 is provided with a second discharge device 60. The vacuum forming line cutting machine of this utility model realizes continuous operation of automatic feeding, precise cutting and efficient discharge, reduces manual intervention, and improves production efficiency and finished product quality.

Claims

1. A thermoforming line cutting machine, characterized in that, It includes a frame body (1), which includes a mounting frame (10). The upper end of the mounting frame (10) is provided with a frame mounting position (11). The bottom of the mounting position (11) is provided with a mold base (20). The upper end of the mounting position (11) is provided with a mold top (30). The lower end of the mold top (30) is movably connected to a mold pressure plate (31). The front end of the mounting position (11) is provided with a feeding opening (111). A feeding device (40) is installed in the feeding opening (111). A first discharge opening (112) is provided on one side of the mounting position (11). A first discharge device (50) is installed on the side of the first discharge opening (112). A second discharge opening (113) is provided on the other side of the mounting position (11). A second discharge device (60) is installed on the side of the second discharge opening (113).

2. The vacuum forming line cutting machine according to claim 1, characterized in that, The die top part (30) includes a top part mounting block (32), which is located at the upper end of the frame mounting position (11). A plurality of positioning movable columns (33) are evenly connected between the edge of the top part mounting block (32) and the edge of the die bottom part (20). The die plate (31) is movably connected between the plurality of positioning movable columns (33). A drive motor (34) is installed on the side of the top part mounting block (32), and the drive motor (34) is connected to the die plate (31).

3. The vacuum forming line cutting machine according to claim 2, characterized in that, Each of the positioning movable columns (33) is equipped with a movable column motor (35) on its top. The lower end of each movable column motor (35) is connected to a transmission gear (351). The transmission gears (351) are connected to each other by a transmission belt (36).

4. The vacuum forming line cutting machine according to claim 3, characterized in that, The feeding device (40) includes a first feeding rod (41) and a second feeding rod (42), which are respectively set in the feeding opening (111) of the frame mounting position (11). A plurality of first feeding pressure members (411) are movably connected to the first feeding rod (41), and a plurality of second feeding pressure members (421) are movably connected to the second feeding rod (42). The plurality of first feeding pressure members (411) and the plurality of second feeding pressure members (421) are arranged in a one-to-one correspondence. A first feeding motor (43) is installed on both sides of the first feeding rod (41), and a second feeding motor (44) is also installed on both sides of the second feeding rod (42).

5. The vacuum forming line cutting machine according to claim 4, characterized in that, The first discharge device (50) includes a first discharge bracket (51), on which first movable rails (52) are symmetrically installed. First discharge motors (53) are respectively installed on the two ends of the first movable rails (52). The two first discharge motors (53) are connected by a first discharge belt (531). A first discharge mounting plate (54) that can be slidably installed on the left and right is connected between the two first movable rails (52). The first discharge mounting plate (54) is connected to the first discharge belt (531). A first discharge suction rack (55) is connected below the first discharge mounting plate (54).

6. The vacuum forming line cutting machine according to claim 5, characterized in that, The upper side of the first discharge bracket (51) is equipped with a first connecting rail (56), the lower end of the first connecting rail (56) is equipped with a first movable motor (561), and the upper end of the first motor drive gear (562) is equipped with a first motor drive gear (562). The first motor drive gear (562) is linked with the first movable motor (561) through a first movable belt (563). The side of the first connecting rail (56) is slidably connected to a first adsorption rack connecting rod (57). The upper end of the first adsorption rack connecting rod (57) is clamped and connected to the first movable belt (563), and its bottom end is fixedly connected to the first discharge adsorption rack (55).

7. The vacuum forming line cutting machine according to claim 6, characterized in that, The second discharge device (60) includes a second discharge bracket (61), on which second movable rails (62) are symmetrically installed. Second discharge motors (63) are respectively installed on both ends of the second movable rails (62). The two second discharge motors (63) are connected by a second discharge belt (631). A second discharge mounting plate (64) that can be slidably installed is connected between the two second movable rails (62). The second discharge mounting plate (64) is connected to the second discharge belt (631). A second discharge suction rack (65) is connected below the second discharge mounting plate (64).

8. The vacuum forming line cutting machine according to claim 7, characterized in that, The upper part of the second discharge bracket (61) is equipped with a second connecting rail (66), the lower end of the second connecting rail (66) is equipped with a second movable motor (661), and the upper end of the second motor drive gear (662) is equipped with a second motor drive gear (662). The second motor drive gear (662) is linked with the second movable motor (661) through a second movable belt (663). The side of the second connecting rail (66) is slidably connected to a second adsorption rack connecting rod (67). The upper end of the second adsorption rack connecting rod (67) is clamped and connected to the second movable belt (663), and its bottom end is fixedly connected to the second discharge adsorption rack (65).

9. The vacuum forming line cutting machine according to claim 8, characterized in that, The lower end of the first discharge bracket (51) is equipped with a first conveyor belt assembly (58), which is correspondingly arranged with the first discharge adsorption rack (55). The lower end of the second discharge bracket (61) is equipped with a second conveyor belt assembly (68), which is correspondingly arranged with the second discharge adsorption rack (65).

10. The vacuum forming line cutting machine according to claim 9, characterized in that, The front side of the first discharge bracket (51) is equipped with a control component (70), which has a control display screen (71).