Personalized gift packaging system and method integrating variable data printing

By using a servo motor-driven lead screw and gear meshing linkage, precise coordination between feeding and blocking is achieved, ensuring accurate import of gifts into packaging boxes. This solves the problem of inaccurate import in gift packaging systems and improves the system's adaptability and flexibility.

CN122059136APending Publication Date: 2026-05-19SHANGHAI BOX PACKAGING TECHNOLOGY CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
SHANGHAI BOX PACKAGING TECHNOLOGY CO LTD
Filing Date
2026-03-11
Publication Date
2026-05-19

AI Technical Summary

Technical Problem

In existing personalized gift packaging systems with integrated variable data printing, the lack of coordination between the feeding and blocking actions leads to errors in gift import or positional deviations. Furthermore, the system struggles to adapt to differences in the size and shape of gifts and packaging boxes, resulting in inaccurate import.

Method used

By designing a personalized gift packaging system that integrates variable data printing, a servo motor drives a lead screw to move the bonding plate and the baffle plate. Combined with the meshing of rack and pinion gears, precise linkage between feeding and baffle is achieved. With the sliding of the eccentric wheel and the movable block, the packaging box is able to block the gift from being accurately fed in.

Benefits of technology

It improves the accuracy of gift packaging, reduces packaging waste, and enhances the system's adaptability and flexibility to gifts of different sizes and shapes.

✦ Generated by Eureka AI based on patent content.

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Abstract

The personalized gift packaging system comprises a mounting base, mounting holes are formed in the positions, close to the four corners, of the top of the mounting base, a U-shaped guide plate is connected to the top of the mounting base, a discharging box is connected to the position, close to the right side, of the top of the U-shaped guide plate, and the top and the bottom of the discharging box are open correspondingly; two penetrating grooves are formed in the front side of the discharging box, through grooves are formed in the positions, close to the left side and the right side, of the opposite sides of the two penetrating grooves respectively, striker plates are slidably connected into the two penetrating grooves in a staggered mode, a U-shaped fixing plate is connected to the front side of the discharging box, and the striker plates are slidably connected into the U-shaped fixing plate. The packaging precision can be improved, by solving the problem of cooperation of discharging and material blocking, precise linkage of the discharging and the material blocking is achieved, it can be ensured that during intermittent discharging, a packaging box is accurately blocked in time, gifts are synchronously and accurately guided into the packaging box, the gift packaging precision is greatly improved, and the packaging rejection rate caused by inaccurate guiding is reduced.
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Description

Technical Field

[0001] This invention relates to the field of personalized gift packaging technology, and more specifically to a personalized gift packaging system and method integrating variable data printing. Background Technology

[0002] Personalized gift packaging devices integrating variable data printing (VDP) are an innovative approach to applying VDP technology to the gift packaging industry. This allows each gift package to have a unique design and information. It dynamically changes the printed content based on preset rules or database information. This variable content can include text, images, graphics, colors, etc., while the basic design template of the packaging remains unchanged. In this way, large-scale personalized printing can be achieved without significantly increasing costs and time.

[0003] However, existing personalized gift wrapping systems and methods with integrated variable data printing have the following drawbacks when in use: 1. Material feeding and blocking coordination issues: In the intermittent feeding process of a personalized gift packaging system with integrated variable data printing, how to achieve precise linkage between the feeding action and the blocking action to ensure that the packaging box is blocked at the right time so that the gift can be accurately fed in and avoid gift feeding errors or packaging box position deviations due to the lack of coordination between the two actions. 2. Accuracy Import Stability Issues: Due to the possible differences in size and shape between gifts and packaging boxes, how can we ensure the stability of the operation of accurately importing gifts into packaging boxes under intermittent feeding and linkage material blocking, and reduce inaccurate importing caused by changes in the characteristics of gifts or packaging boxes?

[0004] To address the aforementioned technical issues, our technical solution proposes a personalized gift packaging system and method integrating variable data printing. Summary of the Invention

[0005] To address the shortcomings of existing technologies, this application proposes a personalized gift packaging system and method integrating variable data printing. By solving the coordination problem between material feeding and material blocking, it achieves precise linkage between the two, ensuring that the packaging box is blocked in a timely and accurate manner during intermittent feeding, and the gift is simultaneously and accurately introduced into the packaging box. This greatly improves the accuracy of gift packaging and reduces the packaging waste rate caused by inaccurate introduction.

[0006] This invention provides the following technical solution: a personalized gift packaging system integrating variable data printing, including a mounting base. Mounting holes are provided at the top of the mounting base near the four corners. A U-shaped guide plate is connected to the top of the mounting base. A feeding box is connected to the top of the U-shaped guide plate near the right side, and the feeding box has openings at its top and bottom. Two through slots are provided on the front side of the feeding box. Through slots are provided on the opposite sides of the two through slots near the left and right sides. A baffle plate is slidably connected to the two through slots in a staggered manner. A U-shaped fixing plate is connected to the front side of the feeding box, and the baffle plate is slidably connected within the U-shaped fixing plate.

[0007] As a preferred embodiment of the present invention, the top of the upper baffle plate and the bottom of the lower baffle plate near the left side are respectively connected to the bonding plate, and the two bonding plates are respectively slidably connected to the top and bottom of the inner cavity of the U-shaped fixing plate.

[0008] As a preferred embodiment of the present invention, the bonding plate is provided with round holes near the front and rear sides, and a column is inserted through the round hole. The two ends of the column are respectively connected to the U-shaped fixing plate and the feeding box.

[0009] As a preferred embodiment of the present invention, several evenly distributed racks are connected to one side of the two baffles near the left and right sides, and the racks are fitted inside the through grooves. Gears mesh between the racks near the front and rear sides, and a rotating shaft is connected between the two gears. Connecting plates are movably connected to the left and right sides of the rotating shaft through bearings, and the connecting plates are bolted to the feed box.

[0010] As a preferred embodiment of the present invention, a threaded hole is provided in the middle of the side wall of the bonding plate below, and a lead screw is inserted into the threaded hole. The two ends of the lead screw are respectively movably connected to the U-shaped fixing plate and the unloading box through bearings. A servo motor is connected to the front side of the U-shaped fixing plate, and the front end of the lead screw is connected to the output shaft of the servo motor.

[0011] As a preferred embodiment of the present invention, conveying rollers are movably connected to the U-shaped guide plate near the front and rear sides via rotating shafts and bearings, respectively. A conveyor belt is connected between the two conveying rollers. A drive motor is connected to the right side of the U-shaped guide plate near the front side, and the rotating shaft on the front conveying roller is connected to the output shaft of the drive motor.

[0012] In a preferred embodiment of the present invention, the shaft on the gear passes through the inner ring of the bearing and is connected to an eccentric wheel. A cylinder is connected to the bottom of the two eccentric wheels on opposite sides. A movable frame is fitted around the cylinder. A side plate is connected to the top of the movable frame. A mating plate is connected to the bottom of the front and rear sides of the side plate. A movable block is connected to the side of the mating plate that is away from the side plate. A connecting hole is provided on the movable block. A limiting post is fitted inside the connecting hole. The bottom end of the limiting post is connected to the top of the U-shaped guide plate. A top plate is connected to the top of the limiting post. The rear top plate is connected to the unloading box. A rectangular block is connected to the opposite side of the two front top plates. The bottom end of the rectangular block is connected to the U-shaped fixing plate.

[0013] As a preferred embodiment of the present invention, the limiting post is fitted with a buffer spring, the two ends of the buffer spring are respectively connected to the top plate and the movable block, the movable block on the rear side is connected with an L-shaped post, and a baffle plate is connected between the two L-shaped posts, the baffle plate is fitted inside the U-shaped guide plate.

[0014] As a preferred embodiment of the present invention, a method for a personalized gift packaging system integrating variable data printing includes the following steps: S1: Gift Placement and Connection Process: First, place the gift in the unloading box and connect the conveyor belt with the previous and next processes respectively, so that the conveyor belt can slowly transport the packaging box; S2: Drive the bonding plate to move: Start the servo motor, which rotates forward or reverse to drive the lead screw to rotate forward or reverse, thereby causing the bonding plate below to slide backward or forward on the column. S3: Drive the lower baffle plate to move: The lower bonding plate drives the lower baffle plate to move to the rear or front, allowing the lower baffle plate to enter or exit the material box through the slot; S4: Linkage of upper baffle plate movement: The lower baffle plate rotates counterclockwise or clockwise through the rack and pinion gear, and the gear then drives the upper baffle plate to move forward or backward through the rack and pinion, so that the upper baffle plate moves out of or into the feeding box through the slot. S5: Packaging Box Conveying: The drive motor rotates the conveyor rollers and conveyor belt to transport the packaging boxes. By solving the coordination problem between feeding and blocking, precise linkage between the two is achieved, ensuring that during intermittent feeding, the packaging boxes are blocked in a timely and accurate manner, and the gifts are simultaneously and accurately guided into the packaging boxes, improving the accuracy of gift packaging and reducing the packaging waste rate; S6: Drives related components to slide: The gear drives the eccentric wheel to rotate, and the eccentric wheel drives the movable block to slide up or down on the limit post through the cylinder, side plate and docking plate; S7: Control the baffle action: The movable block drives the baffle to slide up or down via the L-shaped column. After taking effective measures to address the stability issue of accurate feeding, the system can better adapt to gifts and packaging boxes of different sizes and shapes, maintaining accurate feeding of gifts during intermittent feeding and blocking processes, and enhancing the system's adaptability and flexibility to diverse packaging needs.

[0015] The beneficial effects of this invention are: 1. Improve packaging accuracy: By solving the coordination problem between feeding and blocking, the two are precisely linked, which ensures that the packaging box is blocked in a timely and accurate manner during intermittent feeding, and the gift is simultaneously and accurately fed into the packaging box, which greatly improves the accuracy of gift packaging and reduces the packaging waste rate caused by inaccurate feeding. 2. Enhanced System Adaptability: After taking effective measures to address the stability issues of accurate import, the system can better adapt to gifts and packaging boxes of different sizes and shapes. During intermittent feeding and material blocking processes, the system can always maintain accurate import of gifts into packaging boxes, thus enhancing the system's adaptability and flexibility to diverse packaging needs. Attached Figure Description

[0016] Figure 1 This is a schematic diagram of the overall structure of the present invention; Figure 2 for Figure 1 Partial 3D view of components such as the U-shaped fixing plate; Figure 3 for Figure 1 Partial 3D view of components such as the eccentric wheel; Figure 4 for Figure 1 Partial bottom-view 3D view of components such as the middle baffle plate; Figure 5 for Figure 1 Partial 3D view of components such as the U-shaped guide plate; Figure 6 for Figure 1 Partial 3D view of components such as the moving blocks; Figure 7 for Figure 1 Rear-view stereoscopic view.

[0017] In the diagram: 1. Mounting base; 2. Connecting plate; 3. Baffle plate; 4. Rack; 5. Cylinder; 6. Movable frame; 7. Eccentric wheel; 8. Connecting plate; 9. Limiting post; 10. L-shaped post; 11. Baffle plate; 12. Buffer spring; 13. Top plate; 14. Feed box; 15. Side plate; 16. Connecting hole; 17. U-shaped fixing plate; 18. U-shaped guide plate; 19. Mounting hole; 20. Servo motor; 21. Conveyor belt; 22. Column; 23. Conveyor roller; 24. Drive motor; 25. Adhesive plate; 26. Movable block; 27. Gear; 28. Lead screw; 29. ​​Threaded hole; 30. Round hole; 31. Through slot; 32. Through groove; 33. Rectangular block; 34. Rotating shaft. Detailed Implementation

[0018] To make the technical problems solved by the present invention, the technical solutions adopted, and the technical effects achieved clearer, the technical solutions of the embodiments of the present invention will be further described in detail below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention. Example

[0019] like Figures 1 to 7 As shown, a personalized gift packaging system with integrated variable data printing includes: a mounting base 1, mounting holes 19 are provided at the top of the mounting base 1 near the four corners, a U-shaped guide plate 18 is connected to the top of the mounting base 1, a feeding box 14 is connected to the top of the U-shaped guide plate 18 near the right side, and the top and bottom of the feeding box 14 are respectively open, two through slots 31 are provided on the front side of the feeding box 14, and through slots 32 are respectively provided on the opposite side of the two through slots 31 near the left and right sides, a baffle plate 3 is slidably connected in the two through slots 31, and a U-shaped fixing plate 17 is connected to the front side of the feeding box 14, and the baffle plate 3 is slidably connected in the U-shaped fixing plate 17; In this embodiment, the top of the upper baffle plate 3 and the bottom of the lower baffle plate 3 near the left side are respectively connected to the bonding plate 25. The two bonding plates 25 are slidably connected to the top and bottom of the inner cavity of the U-shaped fixing plate 17. The bonding plates 25 are respectively provided with round holes 30 near the front and rear sides. The round holes 30 are provided with columns 22. The two ends of the columns 22 are respectively connected to the U-shaped fixing plate 17 and the feeding box 14. By solving the problem of coordination between feeding and blocking, the two are precisely linked, which can ensure that the packaging box is blocked in time and accurately during intermittent feeding, and the gift is simultaneously and accurately fed into the packaging box, which greatly improves the accuracy of gift packaging and reduces the packaging waste rate caused by inaccurate feeding. Example

[0020] like Figures 1 to 7As shown, several evenly distributed racks 4 are connected to the opposite sides of the two baffle plates 3 near the left and right sides, and the racks 4 are fitted inside the through grooves 32. Gears 27 mesh between the racks 4 near the front and rear sides, and a rotating shaft 34 is connected between the two gears 27. The left and right sides of the rotating shaft 34 are movably connected to the connecting plates 8 through bearings. The connecting plates 8 are bolted to the unloading box 14. A threaded hole 29 is opened in the middle of the side wall of the lower bonding plate 25. A lead screw 28 passes through the threaded hole 29. The two ends of the lead screw 28 are movably connected to the U-shaped fixing plate 17 and the unloading box 14 through bearings. A servo motor 20 is connected to the front side of the U-shaped fixing plate 17, and the front end of the lead screw 28 is connected to the output shaft of the servo motor 20. Implementation Scheme: Conveying rollers 23 are movably connected to the front and rear sides of the U-shaped guide plate 18 via shafts and bearings. A conveyor belt 21 connects the two conveying rollers 23. A drive motor 24 is connected to the right side of the U-shaped guide plate 18 near the front. The shaft on the front conveying roller 23 is connected to the output shaft of the drive motor 24. The shaft on the gear 27 passes through the inner ring of the bearing and connects to an eccentric wheel 7. A cylinder 5 is connected to the bottom of the side of the two eccentric wheels 7 that is furthest from each other. A movable frame 6 is fitted around the cylinder 5. A side plate 15 is connected to the top of the movable frame 6. A docking plate 2 is connected to the front and rear sides of the side plate 15 near the bottom. A movable block 26 is connected to the side of the docking plate 2 that is furthest from the side plate 15. A connecting hole 16 is provided on the movable block 26. A limiting post 9 is fitted inside the connecting hole 16. The bottom end of the limiting post 9 is connected to... On the top of the U-shaped guide plate 18, the top of the limiting post 9 is connected to the top plate 13. The rear top plate 13 is connected to the feeding box 14. On the opposite side of the two front top plates 13, there is a rectangular block 33. The bottom of the rectangular block 33 is connected to the U-shaped fixing plate 17. The limiting post 9 is fitted with a buffer spring 12. The two ends of the buffer spring 12 are connected to the top plate 13 and the movable block 26 respectively. The rear movable block 26 is connected to an L-shaped post 10. A baffle 11 is connected between the two L-shaped posts 10. The baffle 11 is fitted inside the U-shaped guide plate 18. After taking effective measures to address the stability problem of accurate feeding, the system can better adapt to gifts and packaging boxes of different sizes and shapes. During the intermittent feeding linkage blocking process, the gifts are always accurately fed into the packaging boxes, enhancing the system's adaptability and flexibility to diverse packaging needs. A method for a personalized gift wrapping system integrating variable data printing includes the following steps: S1: Gift Placement and Connection Process: First, place the gift in the unloading box 14, and then connect the conveyor belt 21 with the previous process and the next process respectively, so that the conveyor belt 21 can slowly transport the packaging box. S2: Drive the bonding plate to move: Start the servo motor 20, which rotates forward or reverse to drive the lead screw 28 to rotate forward or reverse, thereby causing the bonding plate 25 below to slide backward or forward on the column 22. S3: Drive the lower baffle plate to move: The lower bonding plate 25 drives the lower baffle plate 3 to move to the rear or front side, so that the lower baffle plate 3 enters or exits the feed box 14 through the through groove 31. S4: Linkage of the upper baffle plate movement: The lower baffle plate 3 drives the gear 27 to rotate counterclockwise or clockwise through the rack 4, and the gear 27 then drives the upper baffle plate 3 to move forward or backward through the rack 4, so that the upper baffle plate 3 moves out of or into the feeding box 14 through the through slot 31. S5: Conveying Packaging Boxes: The drive motor 24 drives the conveyor roller 23 and the conveyor belt 21 to rotate, realizing the conveying of packaging boxes. By solving the problem of material feeding and material blocking coordination, the two are precisely linked, ensuring that during intermittent feeding, the packaging boxes are blocked in a timely and accurate manner, and the gifts are simultaneously and accurately introduced into the packaging boxes, improving the accuracy of gift packaging and reducing the packaging waste rate; S6: Drive related components to slide: Gear 27 drives eccentric wheel 7 to rotate, and eccentric wheel 7 drives movable block 26 to slide up or down on limit post 9 through cylinder 5, side plate 15 and docking plate 2; S7: Control the baffle plate movement: The movable block 26 drives the baffle plate 11 to slide up or down via the L-shaped column 10. After taking effective measures to address the stability issue of accurate feeding, the system can better adapt to gifts and packaging boxes of different sizes and shapes, maintain accurate feeding of gifts during intermittent feeding and blocking processes, and enhance the system's adaptability and flexibility to diverse packaging needs.

[0021] Working Principle: In this technical solution, the gift is first placed in the unloading box 14, and the conveyor belt 21 is connected to the previous and next processes, allowing the conveyor belt 21 to slowly transport the packaging box. Then, the forward or reverse rotation of the servo motor 20 drives the lead screw 28 to rotate forward or reverse, causing the lower bonding plate 25 to slide backward or forward on the column 22. The lower bonding plate 25 drives the lower baffle plate 3 to move backward or forward, allowing it to enter or exit the unloading box 14 through the slot 31. The lower baffle plate 3, through the rack 4, drives the gear 27 to rotate counterclockwise or clockwise. The gear 27, through the upper rack 4, drives the upper baffle plate 3 to move forward or backward, allowing the upper baffle plate 3 to exit or enter the unloading box 14 through the slot 31. Meanwhile, the drive motor 24 drives the conveyor roller 23 and the conveyor belt 21 to rotate. The system now conveys the packaging boxes. By solving the coordination problem between feeding and blocking, precise linkage between the two is achieved. This ensures that during intermittent feeding, the packaging boxes are blocked in a timely and accurate manner, and the gifts are simultaneously and accurately introduced into the packaging boxes. This greatly improves the accuracy of gift packaging and reduces the packaging waste rate caused by inaccurate introduction. At this time, the gear 27 drives the eccentric wheel 7 to rotate, so that the eccentric wheel 7 drives the movable block 26 to slide up or down on the limit post 9 through the cylinder 5, side plate 15 and docking plate 2. The movable block 26 drives the baffle plate 11 to slide up or down through the L-shaped post 10. After taking effective measures to address the stability problem of precise introduction, the system can better adapt to gifts and packaging boxes of different sizes and shapes. During the intermittent feeding and blocking process, the gifts are always accurately introduced into the packaging boxes, enhancing the system's adaptability and flexibility to diverse packaging needs. Example

[0022] like Figures 1 to 7 As shown, a personalized gift packaging system integrating variable data printing has the following specific structure and operation: System structure: Mounting base related: Mounting base 1 has mounting holes 19 near the four corners of its top, and a U-shaped guide plate 18 is connected to its top. A feeding box 14 with openings at the top and bottom is connected to the top of the U-shaped guide plate 18 near the right side. The feeding box 14 has two through slots 31 on its front side. On the opposite side of the two through slots 31, there are through slots 32 near the left and right sides respectively. A baffle plate 3 is slidably connected to the two through slots 31 in a staggered manner. A U-shaped fixing plate 17 is connected to the front side of the feeding box 14. The baffle plate 3 is slidably connected to the U-shaped fixing plate 17. Regarding the baffle plates: The top of the upper baffle plate 3 and the bottom of the lower baffle plate 3 near the left side are respectively connected to a bonding plate 25. The two bonding plates 25 are slidably connected to the top and bottom of the inner cavity of the U-shaped fixed plate 17. Circular holes 30 are opened on the bonding plates 25 near the front and rear sides, and uprights 22, whose two ends are respectively connected to the U-shaped fixed plate 17 and the feed box 14, pass through the circular holes 30. Several evenly distributed racks 4, fitted into through grooves 32, are connected to the opposite sides of the two baffle plates 3 near the left and right sides. Gears 27 mesh between the racks 4 near the front and rear sides, and a rotating shaft 34 connects the two gears 27. Connecting plates 8, bolted to the feed box 14, are movably connected to the left and right sides of the rotating shaft 34 via bearings. A threaded hole 29 is provided in the middle of the side wall of the lower bonding plate 25. A lead screw 28 is inserted through the threaded hole 29, with its two ends movably connected to the U-shaped fixing plate 17 and the feeding box 14 respectively via bearings. A servo motor 20 is connected to the front side of the U-shaped fixing plate 17, and the front end of the lead screw 28 is connected to the output shaft of the servo motor 20. Regarding the conveying components: Conveying rollers 23 are movably connected to the U-shaped guide plate 18 near the front and rear sides via shafts and bearings, respectively. A conveyor belt 21 is connected between the two conveying rollers 23. A drive motor 24 is connected to the right side of the U-shaped guide plate 18 near the front side, and the shaft on the front conveying roller 23 is connected to the output shaft of the drive motor 24. Other components: The shaft on gear 27 passes through the inner ring of the bearing and is connected to an eccentric wheel 7. A cylinder 5 is connected to the bottom of the two eccentric wheels 7 on the side furthest from each other. A movable frame 6 is fitted around the cylinder 5. A side plate 15 is connected to the top of the movable frame 6. A mating plate 2 is connected to the bottom of the front and rear sides of the side plate 15. A movable block 26 is connected to the side of the mating plate 2 furthest from the side plate 15. A connecting hole 16 is provided on the movable block 26. A limiting post 9 is fitted inside the connecting hole 16. The bottom end of the limiting post 9 is connected to the top of the U-shaped guide plate 18. The top end of the limiting post 9 is connected to a top plate 13. The rear top plate 13 is connected to the unloading box 14. A rectangular block 33 is connected to the opposite side of the two front top plates 13. The bottom end of the rectangular block 33 is connected to the U-shaped fixing plate 17. The limiting post 9 is fitted with a buffer spring 12 with its two ends connected to the top plate 13 and the movable block 26 respectively. An L-shaped post 10 is connected to the movable block 26 on the rear side. A baffle plate 11 fitted inside the U-shaped guide plate 18 is connected between the two L-shaped posts 10.

[0023] Work results: Material feeding and blocking coordination: The servo motor 20 drives the lead screw 28 to rotate, which in turn moves the bonding plate 25 and the blocking plate 3. The meshing of the rack 4 and the gear 27 achieves the linkage between the upper and lower blocking plates 3. By solving the problem of material feeding and blocking coordination, precise linkage between the two is achieved. This ensures that during intermittent feeding, the packaging box is blocked in a timely and accurate manner, and the gift is simultaneously and accurately fed into the packaging box. This greatly improves the accuracy of gift packaging and reduces the packaging waste rate caused by inaccurate feeding. Precision loading stability effect: Gear 27 drives eccentric wheel 7 to rotate, which in turn drives moving block 26 and partition plate 11 to slide through related components. After taking effective measures to address the issue of precision loading stability, the system can better adapt to gifts and packaging boxes of different sizes and shapes. During intermittent feeding and material blocking processes, it always maintains the precise loading of gifts into packaging boxes, enhancing the system's adaptability and flexibility to diverse packaging needs.

[0024] Although preferred embodiments of the invention have been described, those skilled in the art, upon learning the basic inventive concept, can make other changes and modifications to these embodiments. Therefore, the appended claims are intended to be interpreted as including both the preferred embodiments and all changes and modifications falling within the scope of the invention.

[0025] Obviously, those skilled in the art can make various modifications and variations to this invention without departing from its spirit and scope. Therefore, if these modifications and variations fall within the scope of the claims of this invention and their equivalents, this invention also intends to include these modifications and variations.

Claims

1. A personalized gift packaging system integrating variable data printing, characterized in that, The device includes a mounting base (1), which has mounting holes (19) near the four corners on the top. A U-shaped guide plate (18) is connected to the top of the mounting base (1). A feeding box (14) is connected to the top of the U-shaped guide plate (18) near the right side. The feeding box (14) has openings at the top and bottom. Two through slots (31) are opened on the front side of the feeding box (14). Through slots (32) are opened on the opposite side of the two through slots (31) near the left and right sides. A baffle plate (3) is slidably connected to the two through slots (31) in a staggered manner. A U-shaped fixing plate (17) is connected to the front side of the feeding box (14). The baffle plate (3) is slidably connected to the U-shaped fixing plate (17).

2. The personalized gift packaging system with integrated variable data printing according to claim 1, characterized in that, The top of the upper baffle plate (3) and the bottom of the lower baffle plate (3) near the left side are respectively connected to the bonding plate (25), and the two bonding plates (25) are respectively slidably connected to the top and bottom of the inner cavity of the U-shaped fixing plate (17).

3. The personalized gift packaging system with integrated variable data printing according to claim 2, characterized in that, The bonding plate (25) has round holes (30) on its front and rear sides respectively. A column (22) is inserted through the round hole (30). The two ends of the column (22) are connected to the U-shaped fixing plate (17) and the feeding box (14) respectively.

4. The personalized gift packaging system with integrated variable data printing according to claim 1, characterized in that, Several evenly distributed racks (4) are connected to one side of the two baffles (3) near the left and right sides respectively, and the racks (4) are fitted inside the through groove (32). Gears (27) mesh between the racks (4) near the front and rear sides respectively. A rotating shaft (34) is connected between the two gears (27). A connecting plate (8) is movably connected to the left and right sides of the rotating shaft (34) through bearings. The connecting plate (8) is bolted to the feed box (14).

5. A personalized gift packaging system with integrated variable data printing according to claim 2, characterized in that, A threaded hole (29) is provided in the middle of the side wall of the bonding plate (25) below. A lead screw (28) is inserted in the threaded hole (29). The two ends of the lead screw (28) are movably connected to the U-shaped fixing plate (17) and the feeding box (14) respectively through bearings. A servo motor (20) is connected to the front side of the U-shaped fixing plate (17), and the front end of the lead screw (28) is connected to the output shaft of the servo motor (20).

6. A personalized gift packaging system with integrated variable data printing according to claim 1, characterized in that, The U-shaped guide plate (18) is connected to conveying rollers (23) via shafts and bearings on the front and rear sides. A conveyor belt (21) is connected between the two conveying rollers (23). A drive motor (24) is connected to the right side of the U-shaped guide plate (18) near the front side. The shaft on the front conveying roller (23) is connected to the output shaft of the drive motor (24).

7. A personalized gift packaging system with integrated variable data printing according to claim 4, characterized in that, The shaft on the gear (27) passes through the inner ring of the bearing and is connected to an eccentric wheel (7). A cylinder (5) is connected to the bottom of the two eccentric wheels (7) on opposite sides. A movable frame (6) is fitted around the cylinder (5). A side plate (15) is connected to the top of the movable frame (6). A mating plate (2) is connected to the bottom of the front and rear sides of the side plate (15). A movable block (26) is connected to the side of the mating plate (2) that is opposite to the side plate (15). A connecting hole (16) is provided on the block (26), and a limiting post (9) is fitted inside the connecting hole (16). The bottom end of the limiting post (9) is connected to the top of the U-shaped guide plate (18), and the top end of the limiting post (9) is connected to a top plate (13). The rear top plate (13) is connected to the unloading box (14), and the two front top plates (13) are connected to a rectangular block (33) on opposite sides. The bottom end of the rectangular block (33) is connected to the U-shaped fixing plate (17).

8. A personalized gift packaging system with integrated variable data printing according to claim 7, characterized in that, The limiting post (9) is fitted with a buffer spring (12), the two ends of which are connected to the top plate (13) and the movable block (26) respectively. An L-shaped post (10) is connected to the movable block (26) on the rear side, and a baffle plate (11) is connected between the two L-shaped posts (10). The baffle plate (11) is fitted inside the U-shaped guide plate (18).

9. The method for a personalized gift packaging system integrating variable data printing according to claim 1, characterized in that, Includes the following steps: S1: Gift placement and docking process: First, place the gift in the unloading box (14) and let the conveyor belt (21) dock with the previous process and the next process respectively, so that the conveyor belt (21) can slowly transport the packaging box; S2: Drive the bonding plate to move: Start the servo motor (20), which rotates forward or reverse to drive the lead screw (28) to rotate forward or reverse, thereby causing the bonding plate (25) below to slide backward or forward on the column (22); S3: Drive the lower baffle plate to move: The lower bonding plate (25) drives the lower baffle plate (3) to move to the rear or front side, so that the lower baffle plate (3) enters or exits the feed box (14) through the through slot (31); S4: Linkage of the upper baffle plate movement: The lower baffle plate (3) drives the gear (27) to rotate counterclockwise or clockwise through the rack (4), and the gear (27) then drives the upper baffle plate (3) to move forward or backward through the rack (4), so that the upper baffle plate (3) moves out or into the feed box (14) through the slot (31); S5: Conveying Packaging Boxes: The drive motor (24) drives the conveyor roller (23) and the conveyor belt (21) to rotate, thereby conveying the packaging boxes. By solving the problem of material feeding and material blocking coordination, the two are precisely linked, ensuring that the packaging boxes are blocked in a timely and accurate manner during intermittent feeding, and the gifts are simultaneously and accurately introduced into the packaging boxes, thereby improving the accuracy of gift packaging and reducing the packaging waste rate; S6: Drive related components to slide: Gear (27) drives eccentric wheel (7) to rotate, and eccentric wheel (7) drives movable block (26) to slide up or down on limit post (9) through cylinder (5), side plate (15) and docking plate (2); S7: Control the action of the baffle: The movable block (26) drives the baffle (11) to slide up or down through the L-shaped column (10). After taking effective measures to address the stability problem of accurate feeding, the system can better adapt to gifts and packaging boxes of different sizes and shapes, maintain accurate feeding of gifts during intermittent feeding and blocking processes, and enhance the system's adaptability and flexibility to diverse packaging needs.