A full-automatic plastic label multi-station die-cutting forming equipment
By integrating a motor-driven label wheel cutting, conveyor belt conveying, flexible filter vibration, and smear moving structure into a fully automatic multi-station plastic label die-cutting and forming equipment, the problem of loose label adhesion has been solved, achieving a highly efficient and tight label adhesion effect, and improving production efficiency and equipment integration.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- 浙江华众标签有限公司
- Filing Date
- 2025-09-16
- Publication Date
- 2026-07-24
AI Technical Summary
Existing fully automatic multi-station die-cutting and forming equipment for plastic labels has problems with air bubbles and loose bonding during the label bonding process. In particular, it has poor adaptability to irregular or uneven objects, which affects production efficiency and product quality.
The system employs a structure that combines motor-driven label wheel cutting, conveyor belt conveying, flexible filter vibration, and smear plate movement within an integrated housing. Vibration enhances the initial adhesion between the label and the material, while the smear plate removes air bubbles, achieving a tight adhesion between the label and the material.
It improves the efficiency and quality of label bonding, meets the high requirements of automated production, has a high degree of integration, and the equipment completes the entire process from label cutting to bonding without additional operation steps, thus improving production efficiency.
Smart Images

Figure CN224546618U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of molding equipment, specifically a fully automatic multi-station die-cutting and molding equipment for plastic labels. Background Technology
[0002] In the field of plastic label production and bonding, fully automated multi-station die-cutting and forming equipment for plastic labels is a key piece of equipment for automating label die-cutting and bonding to objects. It can efficiently complete the processes of label cutting, conveying, and bonding to the object being labeled. However, such equipment generally has shortcomings: in the label bonding stage, relying solely on simple pressing or natural bonding can easily result in air bubbles between the label and the object being labeled, and the bonding is not tight enough, affecting the quality and aesthetics of the label bonding; at the same time, the adaptability of bonding is poor for objects of different materials and shapes, making it difficult to guarantee good label bonding results on various objects, causing many inconveniences in production and reducing production efficiency and product quality.
[0003] To improve this situation, conventional techniques attempt to modify the equipment. For example, simple pressure rollers are installed at the lamination station to roll and press the laminated labels, thereby removing some air bubbles and enhancing the adhesion. Alternatively, different lamination molds are used for different objects to improve adaptability. These methods are effective to some extent; pressure rollers can reduce some air bubbles, and changing the mold can achieve better adhesion on specific objects.
[0004] However, improvements to conventional techniques have significant drawbacks. Simple roller pressing methods are insufficient for completely and evenly removing air bubbles from irregularly shaped or uneven surfaces, resulting in limited improvement in adhesion tightness.
[0005] Therefore, a fully automatic multi-station die-cutting and forming equipment for plastic labels is proposed to solve the problems mentioned above. Utility Model Content
[0006] To address the shortcomings of existing technologies, this utility model provides a fully automatic multi-station die-cutting and forming equipment for plastic labels, which can solve the problems mentioned in the background.
[0007] To achieve the above objectives, this utility model provides the following technical solution: a fully automatic multi-station die-cutting and forming equipment for plastic labels, comprising an integrated housing, a base at the bottom of the integrated housing, a first motor on one side of the front of the integrated housing, a label wheel on the back of the first motor, a label strip on one side of the label wheel, a second roller on the upper end of one side of the label strip, a first roller on the upper end of the other side of the label strip, a pressure strip on the upper end of the other side of the integrated housing, a transmission housing on the other side of the front of the integrated housing, and a second motor on one side of the front of the transmission housing;
[0008] A front frame is provided in the middle of the other side of the integrated housing. A front plate is provided on one side of the upper end of the front frame. A transmission belt is provided at the lower end of the back of the transmission housing. An auxiliary gear is provided in the middle of the bottom of the transmission belt. A first gear is provided on the inner side of the other side of the transmission belt.
[0009] A top bar is provided on the outer side of the first gear, a rotating rod is provided at the upper end of the top bar, a flip bar is sleeved on the outside of the rotating rod, and a flexible filter screen is provided on the top of the flip bar;
[0010] The first gear has two curved arms on both sides at the middle of its outer side, and a trowel is provided at the upper end of the curved arms.
[0011] Preferably, the flexible filter screen is elastically connected to the top of the front frame.
[0012] Preferably, the rotation direction of the top bar is the same as the rotation direction of the first gear.
[0013] Preferably, the rotating rod and the flip bar form a flipping structure.
[0014] Preferably, the length of the flip bar is equal to the width of the flexible filter screen.
[0015] Preferably, the crank arm and the trowel are fixedly connected.
[0016] Preferably, the bottom surface of the squeegee has an inclined structure.
[0017] Preferably, the path of the push direction after the crank arm rotates is along the horizontal edge of the front frame.
[0018] Compared with the prior art, this utility model provides a fully automatic multi-station die-cutting and forming equipment for plastic labels, which has the following beneficial effects:
[0019] 1. The label wheel is driven by the first motor to cut the label, and the second motor drives the transmission belt and other structures to make the top bar push the flip bar, causing the flexible filter screen to vibrate the material. At the same time, the curved arm moves the squeegee to expel air bubbles. The vibration and the movement of the squeegee work together to enhance the initial adhesion between the label and the material through vibration, and to ensure the tightness of the label adhesion by expelling air bubbles through the squeegee. This improves the efficiency and quality of label adhesion and meets the high requirements for label adhesion in automated production.
[0020] 2. The first and second motors serve as the power source, linking multiple structures such as the label wheel, transmission belt, first gear, top bar, and crank arm. This integrates label cutting, conveying, bonding, and subsequent vibration bonding and air bubble removal functions. The various structures work together without the need for additional individual operation steps. Under a unified power transmission and structural linkage system, the entire process from label cutting to tight bonding is completed, improving the integration level and production efficiency of the equipment. Attached Figure Description
[0021] Figure 1 This is a schematic diagram of the overall structure of the fully automatic multi-station die-cutting and forming equipment for plastic labels according to this utility model;
[0022] Figure 2 This is a diagram showing the linkage between the label strip and the roller in the fully automatic multi-station die-cutting and forming equipment for plastic labels according to this utility model.
[0023] Figure 3 This is a schematic diagram of the flexible filter vibration structure of the fully automatic multi-station die-cutting and forming equipment for plastic labels according to this utility model;
[0024] Figure 4 This is a schematic diagram of the air bubble removal structure of the squeegee in the fully automatic multi-station die-cutting and forming equipment for plastic labels of this utility model;
[0025] Figure 5 This utility model relates to a fully automatic multi-station die-cutting and forming equipment for plastic labels. Figure 4 A magnified structural diagram at point A.
[0026] In the diagram: 1. First motor; 2. Integrated housing; 3. Transmission belt; 4. Front plate; 5. Wiping plate; 6. Flexible filter screen; 7. First gear; 8. Top bar; 9. Crank arm; 10. Front frame; 11. Transmission housing; 12. Second motor; 13. Base; 14. Auxiliary belt gear; 15. Rotating rod; 16. Flip bar; 17. Transmission shaft; 18. Pressure strip; 19. Label wheel; 20. First roller; 21. Label strip; 22. Second roller. Detailed Implementation
[0027] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0028] Example:
[0029] A fully automatic multi-station die-cutting and forming equipment for plastic labels includes an integrated housing 2, a base 13 at the bottom of the integrated housing 2, a first motor 1 on one side of the front of the integrated housing 2, a label wheel 19 on the back of the first motor 1, a label strip 21 on one side of the label wheel 19, a second roller 22 at the upper end of one side of the label strip 21, a first roller 20 at the upper end of the other side of the label strip 21, a pressure strip 18 at the upper end of the other side of the integrated housing 2, a transmission housing 11 on the other side of the front of the integrated housing 2, and a second motor 12 on one side of the front of the transmission housing 11.
[0030] A front frame 10 is provided in the middle of the other side of the integrated housing 2. A front plate 4 is provided on one side of the upper end of the front frame 10. A transmission belt 3 is provided at the lower end of the back of the transmission housing 11. An auxiliary gear 14 is provided in the middle of the bottom of the transmission belt 3. A first gear 7 is provided on the inner side of the other side of the transmission belt 3.
[0031] A top bar 8 is provided on the outer side of the first gear 7. A rotating rod 15 is provided at the upper end of the top bar 8. A flip bar 16 is sleeved on the outside of the rotating rod 15. A flexible filter screen 6 is provided on the top of the flip bar 16.
[0032] The first gear 7 has two curved arms 9 on both sides of the middle outer side, and a squeegee 5 is provided at the upper end of the curved arms 9.
[0033] The process involves starting the first motor 1, which drives the label wheel 19 to rotate. When the label wheel 19 rotates, it cuts the label body that is attached to the outside of the label strip 21. At the same time, the first roller shaft 20 and the second roller shaft 22 expand the structure of the label strip 21. Then, the second motor 12 is started, which drives the inner roller of the transmission housing 11 to rotate. The roller at the upper end of the transmission housing 11 drives the transmission shaft 17 to rotate. When the transmission shaft 17 rotates, it drives the label strip 21 to rotate. The material that needs to be labeled is placed on the surface of the front plate 4. When the label strip 21 rotates, it will attach the cut label body to the surface of the material on the surface of the front plate 4.
[0034] The roller at the lower end of the transmission housing 11 drives the transmission belt 3 to rotate. At the same time, the auxiliary belt gear 14 at the bottom of the transmission belt 3 rotates with it. When the transmission belt 3 rotates, it drives the first gear 7 to rotate. When the first gear 7 rotates, it drives the top bar 8 to rotate. When the top bar 8 rotates, it continuously pushes the flip bar 16. The flip bar 16 flips outside the rotating rod 15. When the flip bar 16 rotates, it continuously pushes the flexible filter screen 6. The bottom of the flexible filter screen 6 is subjected to force and begins to deform. The user places the material to be affixed on the top of the flexible filter screen 6. When the flexible filter screen 6 deforms, it will vibrate the material placed on the top of the front plate 4. This vibration makes the label body and the material to be affixed adhere more tightly.
[0035] When the first gear 7 rotates, it drives the crank arm 9 to rotate, and the front end of the crank arm 9 moves back and forth. The front end of the crank arm 9 drives the smear plate 5 to move back and forth on the top of the flexible filter screen 6, so that the air bubbles between the label body and the material being adhered to are expelled.
[0036] Example 1: Please refer to Figure 1 - Figure 5 The bottom of the integrated housing 2 is provided with a base 13. A first motor 1 is provided on one side of the front of the integrated housing 2. A label wheel 19 is provided on the back of the first motor 1. A label strip 21 is provided on one side of the label wheel 19. A second roller 22 is provided at the upper end of one side of the label strip 21. A first roller 20 is provided at the upper end of the other side of the label strip 21. A pressure strip 18 is provided at the upper end of the other side of the integrated housing 2. A transmission housing 11 is provided on the other side of the front of the integrated housing 2. A second motor 12 is provided on one side of the front of the transmission housing 11.
[0037] A front frame 10 is provided in the middle of the other side of the integrated housing 2. A front plate 4 is provided on one side of the upper end of the front frame 10. A transmission belt 3 is provided at the lower end of the back of the transmission housing 11. An auxiliary gear 14 is provided in the middle of the bottom of the transmission belt 3. A first gear 7 is provided on the inner side of the other side of the transmission belt 3.
[0038] A top bar 8 is provided on the outer side of the first gear 7. A rotating rod 15 is provided at the upper end of the top bar 8. A flip bar 16 is sleeved on the outside of the rotating rod 15. A flexible filter screen 6 is provided on the top of the flip bar 16.
[0039] The first gear 7 has two curved arms 9 on both sides of the middle outer side, and a squeegee 5 is provided at the upper end of the curved arms 9.
[0040] The flexible filter 6 is elastically connected to the top of the front frame 10;
[0041] The rotation direction of the top bar 8 is the same as the rotation direction of the first gear 7;
[0042] The rotating rod 15 and the flip bar 16 form a flipping structure;
[0043] The length of the flip bar 16 is equal to the width of the flexible filter screen 6;
[0044] In this process, the first motor 1 is started, driving the label wheel 19 to rotate and cut the label body adhered to the outside of the label strip 21. The first roller shaft 20 and the second roller shaft 22 expand the structure of the label strip 21. The second motor 12 is started, and the inner side of the transmission housing 11 is adapted to rotate the roller. The upper roller drives the transmission shaft 17 to rotate, and the transmission shaft 17 drives the label strip 21 to rotate, attaching the cut label body to the material on the surface of the front plate 4. The lower roller of the transmission housing 11 drives the transmission belt 3 to rotate, and the auxiliary gear 14 follows the rotation. The transmission belt 3 drives the first gear 7 to rotate, and the first gear 7 drives the top bar 8 to rotate. The rotation direction of the top bar 8 is the same as that of the first gear 7. Similar to gear 7, top bar 8 continuously pushes the flip bar 16. Rotating rod 15 and flip bar 16 form a flipping structure. Flip bar 16 flips outside of rotating rod 15. The length of flip bar 16 is equal to the width of flexible filter screen 6. When flip bar 16 rotates, it continuously pushes the flexible filter screen 6. The flexible filter screen 6 is elastically connected to the top of the front frame 10. The bottom is deformed by force. The material to be labeled is placed on top of the flexible filter screen 6. The deformation of the flexible filter screen 6 vibrates the material, making the label body and the material adhere tightly. At the same time, the first gear 7 drives the crank arm 9 to rotate. The crank arm 9 drives the smear plate 5 to move back and forth on the top of the flexible filter screen 6 to remove air bubbles between the label body and the material.
[0045] Example 2: Please refer to Figure 1 - Figure 5 The bottom of the integrated housing 2 is provided with a base 13. A first motor 1 is provided on one side of the front of the integrated housing 2. A label wheel 19 is provided on the back of the first motor 1. A label strip 21 is provided on one side of the label wheel 19. A second roller 22 is provided at the upper end of one side of the label strip 21. A first roller 20 is provided at the upper end of the other side of the label strip 21. A pressure strip 18 is provided at the upper end of the other side of the integrated housing 2. A transmission housing 11 is provided on the other side of the front of the integrated housing 2. A second motor 12 is provided on one side of the front of the transmission housing 11.
[0046] A front frame 10 is provided in the middle of the other side of the integrated housing 2. A front plate 4 is provided on one side of the upper end of the front frame 10. A transmission belt 3 is provided at the lower end of the back of the transmission housing 11. An auxiliary gear 14 is provided in the middle of the bottom of the transmission belt 3. A first gear 7 is provided on the inner side of the other side of the transmission belt 3.
[0047] A top bar 8 is provided on the outer side of the first gear 7. A rotating rod 15 is provided at the upper end of the top bar 8. A flip bar 16 is sleeved on the outside of the rotating rod 15. A flexible filter screen 6 is provided on the top of the flip bar 16.
[0048] The first gear 7 has two curved arms 9 on both sides of the middle outer side, and a squeegee 5 is provided at the upper end of the curved arms 9.
[0049] The crank arm 9 and the trowel 5 are fixedly connected;
[0050] The bottom surface of the trowel 5 has an inclined structure;
[0051] After the articulated boom 9 rotates, its pushing direction path is along the horizontal edge of the front frame 10;
[0052] The process involves starting the first motor 1, which drives the label wheel 19 to rotate and cut the label body on the label strip 21. The first roller shaft 20 and the second roller shaft 22 expand the label strip 21. Then, starting the second motor 12, the inner side of the transmission housing 11 rotates the adaptive roller, and the upper roller drives the transmission shaft 17 to rotate, which in turn drives the label strip 21 to rotate, thus attaching the cut label body to the material on the surface of the front plate 4. The lower roller of the transmission housing 11 drives the transmission belt 3 to rotate, and the auxiliary gear 14 rotates accordingly. The transmission belt 3 drives the first gear 7 to rotate, and the first gear 7 drives... The top bar 8 rotates, pushing the flip bar 16. The flip bar 16 flips outside the rotating rod 15, pushing the flexible filter 6 to cause it to deform. The material to be labeled is placed on top of the flexible filter 6. Vibration makes the label body and the material adhere tightly. The first gear 7 rotates, driving the crank arm 9 to rotate. The crank arm 9 is fixedly connected to the smear 5. After the crank arm 9 rotates, the pushing direction path is the horizontal edge line of the front frame 10. The bottom surface of the smear 5 is an inclined structure. The crank arm 9 drives the smear 5 to move back and forth on the top of the flexible filter 6, expelling air bubbles between the label body and the material.
[0053] The installation, connection, or setting methods disclosed in this embodiment are all common mechanical connection methods. As long as they can achieve their beneficial effects, they can be implemented. Therefore, this embodiment will not elaborate on their specific structural composition and working principle.
[0054] Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the appended claims and their equivalents.
Claims
1. A fully automatic multi-station die-cutting and forming equipment for plastic labels, characterized in that, The device includes an integrated housing (2), a base (13) at the bottom of the integrated housing (2), a first motor (1) on one side of the front of the integrated housing (2), a label wheel (19) on the back of the first motor (1), a label strip (21) on one side of the label wheel (19), a second roller (22) on the upper end of one side of the label strip (21), a first roller (20) on the upper end of the other side of the label strip (21), a pressure strip (18) on the upper end of the other side of the integrated housing (2), a transmission housing (11) on the other side of the front of the integrated housing (2), and a second motor (12) on one side of the front of the transmission housing (11). A front frame (10) is provided in the middle of the other side of the integrated housing (2). A front plate (4) is provided on one side of the upper end of the front frame (10). A transmission belt (3) is provided at the lower end of the back of the transmission housing (11). An auxiliary gear (14) is provided in the middle of the bottom of the transmission belt (3). A first gear (7) is provided on the inner side of the other side of the transmission belt (3). The first gear (7) is provided with a top bar (8) on the outside, and a rotating rod (15) is provided at the upper end of the top bar (8). A flip bar (16) is sleeved on the outside of the rotating rod (15), and a flexible filter screen (6) is provided at the top of the flip bar (16). The first gear (7) has two crank arms (9) on both sides at the middle of the outer side, and a squeegee (5) is provided at the upper end of the crank arms (9).
2. The fully automatic multi-station die-cutting and forming equipment for plastic labels according to claim 1, characterized in that: The flexible filter (6) is elastically connected to the top of the front frame (10).
3. The fully automatic multi-station die-cutting and forming equipment for plastic labels according to claim 1, characterized in that: The rotation direction of the top bar (8) is the same as the rotation direction of the first gear (7).
4. The fully automatic multi-station die-cutting and forming equipment for plastic labels according to claim 1, characterized in that: The rotating rod (15) and the flip bar (16) form a flipping structure.
5. The fully automatic multi-station die-cutting and forming equipment for plastic labels according to claim 1, characterized in that: The length of the flap (16) is equal to the width of the flexible filter (6).
6. The fully automatic multi-station die-cutting and forming equipment for plastic labels according to claim 1, characterized in that: The crank arm (9) and the trowel (5) are fixedly connected.
7. The fully automatic multi-station die-cutting and forming equipment for plastic labels according to claim 1, characterized in that: The bottom surface of the trowel (5) is inclined.
8. The fully automatic multi-station die-cutting and forming equipment for plastic labels according to claim 1, characterized in that: The path of the rotating boom (9) is along the horizontal edge of the front frame (10).