A product package transport device and a transport method
By using the cutting, shaping, and folding components of the product packaging and transportation device, the problems of misalignment and incomplete folding in film packaging are solved, achieving stable coverage and efficient sealing, and improving the product's aesthetics and protective performance.
Patent Information
- Application Number
- CN202411050064.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-01
- Publication Date
- 2026-08-25
- Estimated Expiration
- 2044-08-01
AI Technical Summary
During the process of lamination packaging, problems such as misalignment and incomplete folding are prone to occur, resulting in reduced aesthetics, decreased protective performance, low production efficiency, increased costs, and poor user experience.
A product packaging and transportation device is adopted, including a base, a feeding belt, a film feeding assembly, a forming assembly, and a folding assembly. Through steps such as cutting, forming, folding, and hot pressing, the film is used to ensure stable coverage and sealing.
It achieves high-precision folding and hot pressing of the film, ensuring sealing and aesthetics, avoiding misalignment and shaking, and improving production efficiency and product protection.
Smart Images

Figure CN118953793B_ABST
Abstract
Description
Technical Field
[0001] This invention belongs to the field of film packaging technology, specifically a product wrapping and transportation device and method. Background Technology
[0002] Laminated packaging is an important packaging technology, primarily used to provide protection, moisture-proofing, dust-proofing, and other functions for products or goods. The following is a detailed explanation of laminated packaging: I. Definition Laminated packaging is a packaging method in which products or goods are placed in an appropriate location and then covered with one or more layers of plastic film. Its purpose is to provide a certain level of protection and security for the goods through the covering of the plastic film.
[0003] II. Features Protective: Film packaging can protect goods to a certain extent, preventing them from being affected by moisture, pollution, damage, etc.
[0004] Moisture and dust protection: By covering the goods with plastic film, external moisture and dust can be effectively isolated, keeping the goods dry and clean.
[0005] Aesthetics: The surface of the packaged product is smoother and shinier after being coated, which improves the appearance quality and grade of the product.
[0006] Environmental friendliness: With the development of technology, the materials used in film packaging are becoming more and more environmentally friendly, reducing pollution to the environment.
[0007] The main disadvantages of laminated packaging are summarized and presented in points according to different aspects: If misalignment or improper folding occurs during the lamination and packaging process, it will lead to a series of drawbacks. The following is a detailed analysis of these problems: 1. Misalignment of laminated packaging Affects aesthetics: Misalignment will result in an untidy appearance of the packaging, losing its original aesthetic effect and affecting the overall image of the product.
[0008] Reduced protective performance: Misalignment may result in packaging that does not fully cover the product, thereby reducing its ability to protect the product from external environmental influences.
[0009] Increased costs: Misalignment can lead to waste of packaging materials, increasing production costs. Furthermore, correcting the misalignment may require additional labor and time, further increasing costs.
[0010] Reduced production efficiency: In automated production lines, misalignment can cause machine downtime or require manual intervention for adjustment, thereby reducing production efficiency.
[0011] II. Folding not in place Impact on packaging stability: Improper folding can lead to unstable packaging structure, making it prone to deformation or damage during transportation or storage.
[0012] Reduced sealing: Improper folding may result in inadequate sealing of the packaging, making the product susceptible to external environmental factors such as moisture and dust.
[0013] Increased risk of breakage: Improper folding may make the packaging more susceptible to breakage when subjected to external forces, thereby affecting product safety and quality.
[0014] Reduced user experience: For consumers, improperly folded packaging may leave a bad impression and reduce their trust and satisfaction with the product.
[0015] Cargo misalignment and shaking Tearing or damage to the film: Goods may rub against the film during shaking, especially when the film material is thin or of poor quality, it is easy to tear or break at the corners or stress points, losing its due protective function.
[0016] Reduced airtightness: Shaking of goods can cause gaps or openings in the originally sealed film packaging, especially at the seal or edges of the film. This exposes the goods inside the packaging to the external environment, increasing the risk of moisture, contamination or damage.
[0017] Cargo shifting or collision: Shaking of goods may cause them to move inside the packaging and collide with the inner walls of the packaging or other goods. This may not only damage the goods themselves, but may also put additional pressure on the film, causing the film to deform or break. Summary of the Invention
[0018] The technical solution adopted in this invention is as follows: A product package transportation device, comprising: A base and a feeding belt, wherein the feeding belt is located at the top opening of the outer wall of the base; A film-coating feeding assembly is located on one side of the outer wall of the base. The assembly includes a feeding shell, a cutting frame, feeding wheels, a guide wheel assembly, rubber wheels, a lifting cylinder, a lifting frame, a cutting motor, a transmission wheel assembly, and a rotating blade. The feeding shell is fixedly located on one side of the outer wall of the base. The guide wheel assembly is rotatably embedded in the inner wall of the feeding shell. The feeding wheels are embedded in the inner wall of the feeding shell. The rubber wheels are rotatably embedded in the inner wall of the feeding shell near the top. The cutting frame is fixedly located at the top of the outer wall of the base. The lifting cylinder is fixedly located on both sides of the bottom of the outer wall of the cutting frame. The output end of the lifting cylinder is fixedly located on the outer wall of the lifting frame. The lifting frame is slidably embedded in the outer wall of the cutting frame. The cutting motor is fixedly located on the outer wall of the lifting frame. The transmission wheel assembly is sleeved on the output end of the cutting motor. Both ends of the rotating blade are embedded in one end of the transmission wheel assembly. The top of the outer wall of the cutting frame is fixedly provided with a top plate and a bottom plate; A molding assembly is located on one side of the outer wall of the base, comprising: a molding shell, a moving frame, a balance plate, a support block, a moving stage, an adjusting motor, an adjusting frame, a fine-tuning cylinder, a misalignment frame, a misalignment motor, and rollers. The molding shell is fixedly mounted on the top of the outer wall of the base plate. The balance plate is fixedly mounted on one end of the outer wall of the moving frame. The support block is slidably embedded in the opening of the balance plate. The moving stage is slidably embedded in the opening of the balance plate. The adjusting motor is embedded inside the moving stage. The adjusting frame is threadedly connected to the output end of the adjusting motor. The adjusting frame is slidably embedded in one end of the opening of the moving stage. The fine-tuning cylinder is fixedly mounted on one end of the outer wall of the adjusting frame. The misalignment frame is fixedly mounted on the output end of the fine-tuning cylinder. The misalignment motor is fixedly mounted on the outer walls of the moving stage and the misalignment frame. The rollers are drivenly connected to the misalignment motor. A folding assembly is located on one side of the outer wall of the base. The folding assembly includes a folding frame, a flattening strip, a compression cylinder, a first folding plate, a second folding plate, a heating strip, an angle motor, a compression shell, a torsion plate, a drive rod, a compression wheel, a top block, a compression block, a return spring, and a sealing strip. The first and second folding plates are slidably embedded in the opening of the base plate. The heating strip is embedded in the outer edge of the first folding plate. The flattening strip is slidably embedded in the opening between the top and bottom plates. The output end of the compression cylinder is fixedly located on the outer wall of the flattening strip. The angle motor is fixedly located on the outer wall of the base plate. The extrusion shell is slidably embedded in the center of the outer wall of the folding frame, the torsion plate is rotatably embedded in the inner wall of the two folding frames, the drive rod is rotatably embedded in the opening of the folding frame, the extrusion wheel is rotatably inserted into the outer wall of one end of the drive rod, the top block is fixedly set in the outer wall of the torsion plate, the extrusion block is fixedly set in both sides of the outer wall of the extrusion shell, the return spring is embedded in the inner wall of the extrusion shell, the sealing strip is fixedly set in the outer wall of the extrusion shell, and the angle motor is connected to the drive rod. Four movable cylinders are fixedly installed on the top of the outer wall of the top plate, and the output end of each movable cylinder is fixedly installed on the outer wall of the folding frame. The base has a conveyor belt on one side of its outer wall, and a lifting stacking shell is provided on one side of the outer wall of the conveyor belt via an external cylinder. A feeding plate is slidably embedded at one end of the lifting stacking shell.
[0019] Furthermore, the inner wall of the base is fixedly provided with a slide rail, which matches the feeding plate. The slide rail is connected to a constraint shell. A lifting plate is slidably embedded in the inner wall of the constraint shell. A clamping plate is slidably embedded in the opening of the outer wall of the lifting plate. A first double-headed motor is fixedly provided at the bottom of the outer wall of the lifting plate. The output end of the first double-headed motor is connected to the inner wall of the clamping plate through a screw thread. An installation platform is fixedly provided at the bottom of the outer wall of the lifting plate. The clamping plate is slidably embedded in the inner wall of the constraint shell. The lifting stacking shell matches the slide rail.
[0020] Furthermore, a discharge cylinder and a second folding cylinder are fixedly installed on one side of the outer wall of the molded shell. The output end of the discharge cylinder matches the opening on one side of the outer wall of the molded shell. The second folding cylinder is fixedly installed on the outer wall of the second folding plate. A first folding cylinder is fixedly installed at the bottom of the outer wall of the base plate, and the first folding cylinder is fixedly installed on the outer wall of the first folding plate.
[0021] Furthermore, a second dual-head motor is fixedly installed on the top of the outer wall of the molded shell.
[0022] Furthermore, the two ends of the second dual-head motor are connected to the inner wall of the moving frame via lead screw threads.
[0023] Furthermore, a molding plate is slidably embedded in the inner wall of the molded shell.
[0024] Furthermore, the extrusion wheel is matched with the top block.
[0025] Furthermore, one end of the return spring is attached to the inner wall of the extrusion shell, and the other end of the return spring is attached to the outer wall of the folding frame.
[0026] Furthermore, the extrusion wheel and the outer wall of the extrusion shell are coated with a rubber coating.
[0027] A method for transporting a product package using a product package transport device, applied to any one of the product package transport devices described above, includes the following steps: S1. First, the film is wound around the feeding wheel. The film is then wound around the guide wheel set and the rubber wheel in sequence, and enters the position directly below the cutting frame. Then, the lifting cylinder is activated to drive the lifting frame to move. The cutting motor drives the transmission wheel set to rotate, thereby realizing the rotating blade to cut the film. The film is transported to the position directly below the forming shell using the feeding belt. The goods are collected using the conveyor belt. Then, the lifting stacking shell is used to prevent it from falling. Finally, the external cylinder pushes the feeding plate, and the feeding plate pushes the goods into the slide. S2. Finally, the goods are moved into the interior of the constraint shell. The stack of multiple goods is swaying. The first dual-head motor drives the clamping plates to move closer together to clamp the goods. The external cylinder drives the mounting platform and lifting plate to rise. The film covers the top of the goods. The film continues to rise with the goods. The film and goods are embedded in the interior of the molding shell. The molding plate is used to adjust the height of the goods inside the molding shell. At this time, the second dual-head motor is started to drive the moving frame on the molding shell to move closer together. Then the balance plate moves closer to the goods to complete the compression. Then the lifting plate descends and detaches from the support of the goods. At this time, the first folding plate and the second folding plate are used to stack the film at the bottom, so that the bottom of the film is folded. S3. The support block presses the top edge of the film to make the corners of both ends of the film 90 degrees. Then, the adjustment motor is started, which drives the adjustment frame to move so that the rollers are close to the film. The fine-tuning cylinder is started, which makes the misalignment frame rise. The two rollers clamp the seam of the film. The misalignment motor is started, which drives the two rollers to rotate in opposite directions, which makes the film move in the opposite direction and completes the clamping of the film, ensuring the stable forming of the film end. The heating strip is started to complete the heat-pressing and sealing of the bottom seam of the film. Using the discharge cylinder, the goods that have completed the bottom heat pressing are pushed out of the interior of the forming shell. The goods and the film enter the space between the top plate and the bottom. S4. Folding Port Steps: First, move the goods to the designated folding position. Then, start the angle motor to rotate the drive rod. The extrusion roller extrudes the film on the short side of the port. Accompanied by the moving cylinder, the folding frame moves. Then, the extrusion shell extrudes the center of the film-covered port. As the folding frame continues to move, the extrusion shell continues to extrude the return spring. At this time, the top block and the extrusion block extrude each other, causing the torsion plate to extrude the long side of the film-covered port, preventing the long side from deforming. At this time, an additional heating wire is installed on one side of the outer wall of the torsion plate to complete the heat pressing on both sides of the short side, completing the heat pressing of the short side of the film-covered port. Then, the goods and film move. Using the extrusion cylinder, the balance bar moves closer to each other, causing the long side of the film-covered port to be extruded. At this time, the corresponding moving cylinder is started again, causing the extrusion shell and sealing strip to extrude the long side. The sealing strip is heated by electricity, completing the heat pressing and sealing of the long side, completing the final film packaging.
[0028] In summary, due to the adoption of the above technical solution, the beneficial effects of the present invention are: (1) In this invention, the molding component provides shrink support for the port of the goods to prevent the goods from shaking and misaligning during the process of moving and hot pressing the bottom long side of the film, thus ensuring the aesthetics and accuracy of the sealing point.
[0029] (2) In this invention, the film feeding assembly can stably attach the film to the outer wall of the goods, avoiding film misalignment before folding and during the movement of the goods, and at the same time achieve stable step-by-step heat-press sealing of the port seam, avoiding the problems of seam misalignment and uneven sealing points.
[0030] (3) In this invention, the folding component can achieve high-precision folding and hot pressing of the film, ensuring the sealing and aesthetics of the film, maximizing the stability of the gaps in the hot pressing of the film, and ensuring the structural strength of the film. Attached Figure Description
[0031] Figure 1 This is a perspective view of the present invention; Figure 2 This is a perspective view of the slide of the present invention; Figure 3 This is a perspective view of the base plate of the present invention; Figure 4 This is a perspective view of the second dual-head motor of the present invention; Figure 5 This is an enlarged schematic diagram of invention A; Figure 6 This is a perspective view of the molding plate of the present invention; Figure 7 This is an enlarged schematic diagram of invention B; Figure 8 This is a perspective view of the torsion plate of the present invention; Figure 9 This is an enlarged schematic diagram of the present invention C; Figure 10 This is a perspective view of the molded shell of the present invention; Figure 11 This is an enlarged schematic diagram of the present invention, D.
[0032] The diagram shows the following components: 1. Base; 2. Feeding shell; 3. Cutting frame; 4. Forming shell; 5. Top plate; 6. Bottom plate; 7. Conveyor belt; 8. Moving frame; 9. Slide rail; 10. Constraint shell; 11. Lifting plate; 12. Clamping plate; 13. Mounting platform; 14. Folding frame; 15. Flattening strip; 16. Extrusion cylinder; 17. First folding plate; 18. Second folding plate; 19. Heating strip; 20. First folding cylinder; 21. Moving cylinder; 101. Feeding belt; 201. Feeding wheel; 202. Guide wheel assembly; 203. Rubber wheel; 301. Lifting cylinder; 302. Lifting frame; 303. Cutting motor; 304. Transmission wheel assembly; 305. Rotary blade. 401. Discharge cylinder; 402. Second folding cylinder; 403. Forming plate; 404. Second dual-head motor; 701. Feeding plate; 702. Lifting stacking shell; 801. Balance plate; 802. Support block; 803. Moving table; 804. Adjustment motor; 805. Adjustment frame; 806. Fine-tuning cylinder; 807. Misalignment frame; 808. Misalignment motor; 809. Roller; 1101. First dual-head motor; 1401. Angle motor; 1402. Extrusion shell; 1403. Torsion plate; 1404. Drive rod; 1405. Extrusion wheel; 1406. Top block; 1407. Extrusion block; 1408. Return spring; 1409. Sealing strip. Detailed Implementation
[0033] To make the objectives, technical solutions, and advantages of this invention clearer, the invention will be further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are merely illustrative and not intended to limit the invention. Example
[0034] Reference Figure 1 - Figure 11A product packaging and transportation device and method includes: a base 1 and a feeding belt 101, the feeding belt 101 being disposed at the top opening of the outer wall of the base 1; and a film-coating feeding assembly disposed on one side of the outer wall of the base 1. The film-coating feeding assembly includes a feeding shell 2, a cutting frame 3, feeding wheels 201, a guide wheel assembly 202, rubber wheels 203, a lifting cylinder 301, a lifting frame 302, a cutting motor 303, a transmission wheel assembly 304, and a rotating blade 305. The feeding shell 2 is fixedly disposed on one side of the outer wall of the base 1. The guide wheel assembly 202 is rotatably embedded in the inner wall of the feeding shell 2. The feeding wheels 201 are embedded in the inner wall of the feeding shell 2. The rubber wheels 203 are rotatably embedded in the inner wall of the feeding shell 2 near the top. The cutting frame 3 is fixedly disposed on the base 1. At the top of the outer wall, the lifting cylinder 301 is fixedly installed on both sides of the bottom of the outer wall of the cutting frame 3. The output end of the lifting cylinder 301 is fixedly installed on the outer wall of the lifting frame 302. The lifting frame 302 is slidably embedded in the outer wall of the cutting frame 3. The cutting motor 303 is fixedly installed on the outer wall of the lifting frame 302. The transmission wheel set 304 is sleeved on the output end of the cutting motor 303. The two ends of the rotating blade 305 are embedded in one end of the transmission wheel set 304. The top of the outer wall of the cutting frame 3 is fixedly installed with a top plate 5 and a bottom plate 6. The forming component is located on one side of the outer wall of the base 1. The forming component includes a forming shell 4, a moving frame 8, a balance plate 801, a support block 802, a moving table 803, an adjusting motor 804, an adjusting frame 805, and a micro The system comprises an air-adjusting cylinder 806, a misalignment frame 807, a misalignment motor 808, and rollers 809. A molding shell 4 is fixedly mounted on the top of the outer wall of the base plate 6. A balance plate 801 is fixedly mounted on the outer wall of one end of the movable frame 8. A support block 802 is slidably embedded in the opening of the balance plate 801. A movable platform 803 is slidably embedded in the opening of the balance plate 801. An adjusting motor 804 is embedded inside the movable platform 803. An adjusting frame 805 is threadedly connected to the output end of the adjusting motor 804 and slidably embedded in the opening of one end of the movable platform 803. A fine-tuning cylinder 806 is fixedly mounted on the outer wall of one end of the adjusting frame 805. A misalignment frame 807 is fixedly mounted on the output end of the fine-tuning cylinder 806. The misalignment motor 808 is fixedly mounted on the movable platform 809. At the outer wall of platform 803 and misalignment frame 807, roller 809 is connected to misalignment motor 808 via transmission. A folding assembly is located on one side of the outer wall of base 1. The folding assembly includes a folding frame 14, a flattening strip 15, a compression cylinder 16, a first folding plate 17, a second folding plate 18, a heating strip 19, an angle motor 1401, a compression shell 1402, a torsion plate 1403, a drive rod 1404, a compression wheel 1405, a top block 1406, a compression block 1407, a return spring 1408, and a sealing strip 1409. The first folding plate 17 and the second folding plate 18 are slidably embedded in the opening of base plate 6. The heating strip 19 is embedded in the outer edge of the first folding plate 17. The flattening strip 15 is slidably embedded in the opening between top plate 5 and base plate 6.The output end of the extrusion cylinder 16 is fixedly mounted on the outer wall of the flat strip 15. The angle motor 1401 is fixedly mounted on the inner wall of two of the folding frames 14. The extrusion shell 1402 is slidably embedded in the center of the outer wall of the folding frame 14. The torsion plate 1403 is rotatably embedded in the inner wall of two of the folding frames 14. The drive rod 1404 is rotatably embedded in the opening of the folding frame 14. The extrusion wheel 1405 is rotatably inserted into the outer wall of one end of the drive rod 1404. The top block 1406 is fixedly mounted on the outer wall of the torsion plate 1403. The extrusion block 1407 is fixedly mounted on both sides of the outer wall of the extrusion shell 1402. The return spring 1408 is embedded in the extrusion shell 1402. On the inner wall of 2, a sealing strip 1409 is fixedly installed on the outer wall of the extrusion shell 1402. An angle motor 1401 is connected to the drive rod 1404. Four moving cylinders 21 are fixedly installed on the top of the outer wall of the top plate 5, and the output end of each moving cylinder 21 is fixedly installed on the outer wall of the folding frame 14. A conveyor belt 7 is provided on one side of the outer wall of the base 1, and a lifting stacking shell 702 is provided on one side of the outer wall of the conveyor belt 7 via an external cylinder. A feeding plate 701 is slidably embedded at one end of the lifting stacking shell 702. The lifting stacking shell 702 can stack the goods conveyed by the conveyor belt, ensuring the stability of storage and preventing misalignment and shaking of goods on the surface.
[0035] Reference Figure 1 - Figure 11The inner wall of the base 1 is fixedly provided with a slide rail 9, which matches the feeding plate 701. The slide rail 9 is connected to a constraint shell 10. A lifting plate 11 is slidably embedded in the inner wall of the constraint shell 10. A clamping plate 12 is slidably embedded in the opening of the outer wall of the lifting plate 11. A first double-head motor 1101 is fixedly provided at the bottom of the outer wall of the lifting plate 11. The output end of the first double-head motor 1101 is connected to the inner wall of the clamping plate 12 through a screw thread. A mounting platform 13 is fixedly provided at the bottom of the outer wall of the lifting plate 11. The clamping plate 12 is slidably embedded in the inner wall of the constraint shell 10. The lifting stacking shell 702 matches the slide rail 9. A discharge cylinder 401 and a second folding cylinder 402 are fixedly provided on one side of the outer wall of the forming shell 4. The output end of the discharge cylinder 401 matches the opening on one side of the outer wall of the forming shell 4. The second folding cylinder 402 is fixedly installed on the outer wall of the second folding plate 18. The first folding cylinder 20 is fixedly installed on the bottom of the outer wall of the base plate 6 and is fixedly installed on the outer wall of the first folding plate 17. The second double-head motor 404 is fixedly installed on the top of the outer wall of the molding shell 4. The two ends of the second double-head motor 404 are connected to the inner wall of the moving frame 8 through screw threads. The molding plate 403 is slidably embedded in the inner wall of the molding shell 4. The extrusion roller 1405 and the top block 1406 are matched with each other. One end of the return spring 1408 is attached to the inner wall of the extrusion shell 1402 and the other end of the return spring 1408 is attached to the outer wall of the folding frame 14. The extrusion roller 1405 and the outer wall of the extrusion shell 1402 are coated with a rubber coating, which can ensure a certain degree of extrusion buffer space and improve the friction coefficient.
[0036] Reference Figure 1 - Figure 11A method for transporting a product package transport device, applied in any one of the above-mentioned product package transport devices, includes the following steps: S1, firstly, the film is wound around the feeding wheel 201, and the film is wound around the guide wheel assembly 202 and the rubber wheel 203 in sequence, entering directly below the cutting frame 3. Then, the lifting cylinder 301 is activated, driving the lifting frame 302 to move. The cutting motor 303 drives the transmission wheel assembly 304 to rotate, thereby realizing the cutting of the film by the rotating blade 305. The film is transported to directly below the forming shell 4 by the feeding belt 101. The goods are collected by the conveyor belt 7. Then, the lifting stacking shell 702 is used to prevent it from falling. Finally, the feeding plate 701 is pushed by the external cylinder, and the feeding plate 701 pushes the goods into the... Upon reaching chute 9, S2, the final goods move into the confinement shell 10. The stack of goods causes some swaying. Using the first dual-head motor 1101, the clamping plates 12 are brought closer together to clamp the goods. An external cylinder drives the mounting platform 13 and lifting plate 11 to rise, covering the top of the goods. The film continues to rise with the goods, embedding the film and goods into the molding shell 4. The molding plate 403 adjusts the height of the goods inside the molding shell 4. At this point, the second dual-head motor 404 is activated, driving the moving frame 8 onto the molding shell 4, bringing them closer together. Then, the balance plate 801 approaches the goods, completing the compression. Subsequently, the lifting plate 11 descends, detaching from the goods' support. At this point, the first folding plate 17 and the second folding plate 18 are used to... The bottom layers of film are stacked to fold the bottom of the film. S3 and support block 802 press the top edge of the film, making the corners of the film at 90 degrees. Then, motor 804 is activated, driving adjustment frame 805 to move, so that roller 809 approaches the film. Fine-tuning cylinder 806 is activated, causing misalignment frame 807 to rise. Two rollers 809 clamp the seam of the film. Misalignment motor 808 is activated, driving two rollers 809 to rotate in opposite directions, causing the film to move in the opposite direction, completing the clamping of the film and ensuring the stable forming of the film end. Heating strip 19 is activated to complete the heat-pressing and sealing of the bottom seam of the film. Using discharge cylinder 401, the goods that have completed bottom heat pressing are pushed out of the interior of the forming shell 4. The goods and film enter the top plate 5 and bottom plate 5. In the space of plate 6, S4, the port folding step: First, the goods are moved to the designated folding position. Then, the angle motor 1401 is started, driving the drive rod 1404 to rotate. The extrusion roller 1405 extrudes the film on the short side of the port. Accompanied by the moving cylinder 21, the folding frame 14 is moved. Then, the extrusion shell 1402 completes the extrusion of the center of the film-covered port. As the folding frame 14 continues to move, the extrusion shell 1402 continues to extrude the return spring 1408. At this time, the top block 1406 and the extrusion block 1407 extrude each other, so that the torsion plate 1403 extrudes the long side of the film-covered port, so that the long side will not deform. At this time, a heating wire is additionally set on one side of the outer wall of the torsion plate 1403 to complete the heat pressing of both sides of the short side, thus completing the heat pressing of the short side of the film-covered port.Subsequently, the goods and the film are moved. Using the compression cylinder 16, the balance bars are brought closer together, causing the long side of the film-covered end to be compressed. At this point, the corresponding moving cylinder 21 is activated again, causing the compression shell 1402 and the sealing strip 1409 to compress the long side. The sealing strip 1409 is heated by electricity, completing the heat-sealing of the long side and completing the final film packaging.
[0037] The above description is only a preferred embodiment of the present invention and is not intended to limit the present invention. Any modifications, equivalent substitutions, and improvements made within the spirit and principles of the present invention should be included within the protection scope of the present invention.
Claims
1. A product package transportation device, characterized in that, include: The base (1) and the feeding belt (101) are located at the top opening of the outer wall of the base (1); A film-coating feeding assembly is located on one side of the outer wall of the base (1), wherein: the film-coating feeding assembly includes a feeding shell (2), a cutting frame (3), a feeding wheel (201), a guide wheel assembly (202), a rubber wheel (203), a lifting cylinder (301), a lifting frame (302), a cutting motor (303), a transmission wheel assembly (304), and a rotating blade (305). The feeding shell (2) is fixedly located on one side of the outer wall of the base (1). The guide wheel assembly (202) is rotatably embedded in the inner wall of the feeding shell (2). The feeding wheel (201) is embedded in the inner wall of the feeding shell (2). The rubber wheel (203) is rotatably embedded in the inner wall of the feeding shell (2). The inner wall of the shell (2) is near the top. The cutting frame (3) is fixedly installed on the top of the outer wall of the base (1). The lifting cylinder (301) is fixedly installed on both sides of the bottom of the outer wall of the cutting frame (3). The output end of the lifting cylinder (301) is fixedly installed on the outer wall of the lifting frame (302). The lifting frame (302) is slidably embedded in the outer wall of the cutting frame (3). The cutting motor (303) is fixedly installed on the outer wall of the lifting frame (302). The transmission wheel set (304) is sleeved on the output end of the cutting motor (303). The two ends of the rotating blade (305) are embedded in one end of the transmission wheel set (304). The top of the outer wall of the cutting frame (3) is fixedly provided with a top plate (5) and a bottom plate (6); A molding assembly is located on one side of the outer wall of the base (1), wherein: the molding assembly includes a molding shell (4), a moving frame (8), a balance plate (801), a support block (802), a moving stage (803), an adjusting motor (804), an adjusting frame (805), a fine-tuning cylinder (806), a misalignment frame (807), a misalignment motor (808), and a roller (809). The molding shell (4) is fixedly installed on the top of the outer wall of the base plate (6), the balance plate (801) is fixedly installed on the outer wall of one end of the moving frame (8), the support block (802) is slidably embedded in the opening of the balance plate (801), and the moving stage (803) is slidably embedded in the outer wall of the base plate (6). At the opening of the balance plate (801), the adjusting motor (804) is embedded inside the moving platform (803), the adjusting frame (805) is threadedly connected to the output end of the adjusting motor (804), the adjusting frame (805) is slidably embedded at one end of the opening of the moving platform (803), the fine-tuning cylinder (806) is fixedly set at one end of the outer wall of the adjusting frame (805), the misalignment frame (807) is fixedly set at the output end of the fine-tuning cylinder (806), the misalignment motor (808) is fixedly set at the outer wall of the moving platform (803) and the misalignment frame (807), and the roller (809) is connected to the misalignment motor (808) in a transmission connection. A folding assembly is located on one side of the outer wall of the base (1), wherein: the folding assembly includes a folding frame (14), a flattening strip (15), a compression cylinder (16), a first folding plate (17), a second folding plate (18), a heating strip (19), an angle motor (1401), a compression shell (1402), a torsion plate (1403), a drive rod (1404), a compression wheel (1405), a top block (1406), a compression block (1407), a return spring (1408), and a sealing strip (1409). The first folding plate (17) and the second folding plate (18) are slidably embedded in the opening of the base plate (6). The heating strip (19) is embedded in the outer edge of the first folding plate (17). The flattening strip (15) is slidably embedded in the opening between the top plate (5) and the base plate (6). The output end of the compression cylinder (16) is fixedly set on the outer wall of the flattening strip (15). The angle motor (1401) is located on the outer wall of the flattening strip (15). The motor (1401) is fixedly installed on the inner wall of two of the folding frames (14), the extrusion shell (1402) is slidably embedded in the center of the outer wall of the folding frame (14), the torsion plate (1403) is rotatably embedded in the inner wall of two of the folding frames (14), the drive rod (1404) is rotatably embedded in the opening of the folding frame (14), and the extrusion wheel (1405) is rotatably inserted into one end of the drive rod (1404). At the wall, the top block (1406) is fixedly installed on the outer wall of the torsion plate (1403), the extrusion block (1407) is fixedly installed on both sides of the outer wall of the extrusion shell (1402), the reset spring (1408) is embedded in the inner wall of the extrusion shell (1402), the sealing strip (1409) is fixedly installed on the outer wall of the extrusion shell (1402), and the angle motor (1401) is connected to the drive rod (1404) in a transmission connection. Four movable cylinders (21) are fixedly installed on the top of the outer wall of the top plate (5), and the output end of each movable cylinder (21) is fixedly installed on the outer wall of the folding frame (14); The base (1) has a conveyor belt (7) on one side of its outer wall, and a lifting stacking shell (702) is provided on one side of the outer wall of the conveyor belt (7) through an external cylinder. A feeding plate (701) is slidably embedded at one end of the lifting stacking shell (702).
2. The product parcel transportation device as described in claim 1, characterized in that: The inner wall of the base (1) is fixedly provided with a slide rail (9), and the slide rail (9) matches the feeding plate (701). The slide rail (9) is connected to a constraint shell (10). The inner wall of the constraint shell (10) is slidably embedded with a lifting plate (11). The opening of the outer wall of the lifting plate (11) is slidably embedded with a clamping plate (12). The bottom of the outer wall of the lifting plate (11) is fixedly provided with a first double-head motor (1101). The output end of the first double-head motor (1101) is connected to the inner wall of the clamping plate (12) through a screw thread. The bottom of the outer wall of the lifting plate (11) is fixedly provided with a mounting platform (13). The clamping plate (12) is slidably embedded in the inner wall of the constraint shell (10). The lifting stacking shell (702) matches the slide rail (9).
3. The product parcel transportation device as described in claim 1, characterized in that: A discharge cylinder (401) and a second folding cylinder (402) are fixedly installed on one side of the outer wall of the molded shell (4). The output end of the discharge cylinder (401) matches the opening on one side of the outer wall of the molded shell (4). The second folding cylinder (402) is fixedly installed on the outer wall of the second folding plate (18). A first folding cylinder (20) is fixedly installed at the bottom of the outer wall of the bottom plate (6), and the first folding cylinder (20) is fixedly installed on the outer wall of the first folding plate (17).
4. The product parcel transportation device as described in claim 1, characterized in that: A second dual-head motor (404) is fixedly installed on the top of the outer wall of the molded shell (4).
5. A product parcel transportation device as described in claim 4, characterized in that: The two ends of the second dual-head motor (404) are connected to the inner wall of the moving frame (8) by screw thread.
6. A product parcel transportation device as described in claim 1, characterized in that: The inner wall of the molded shell (4) is slidably fitted with a molded plate (403).
7. A product parcel transportation device as described in claim 1, characterized in that: The extrusion roller (1405) is matched with the top block (1406).
8. A product parcel transportation device as described in claim 1, characterized in that: One end of the return spring (1408) is attached to the inner wall of the extrusion shell (1402), and the other end of the return spring (1408) is attached to the outer wall of the folding frame (14).
9. A product parcel transportation device as described in claim 1, characterized in that: The outer walls of the extrusion roller (1405) and the extrusion shell (1402) are coated with a rubber coating.
10. A method for transporting a product package using a transport device, characterized in that, When applied to a product parcel transport device according to any one of claims 1-9, the device comprises the following steps: S1. First, the film is wrapped around the feeding wheel (201). The film is then wrapped around the guide wheel group (202) and the rubber wheel (203) in sequence, and enters the position directly below the cutting frame (3). Then, the lifting cylinder (301) is started to drive the lifting frame (302) to move. The cutting motor (303) drives the transmission wheel group (304) to rotate, thereby realizing the cutting of the film by the rotating blade (305). The film is transported to the position directly below the forming shell (4) by the feeding belt (101). The goods are collected by the conveyor belt (7). Then, the lifting stacking shell (702) is used to prevent it from falling. Finally, the external cylinder pushes the feeding plate (701), and the feeding plate (701) pushes the goods into the slide (9). S2. Finally, the goods are moved into the interior of the constraint shell (10). The stack of multiple goods is swaying. The first dual-head motor (1101) is used to drive the clamping plates (12) to move closer to each other and clamp the goods. The external cylinder is used to drive the mounting platform (13) and the lifting plate (11) to rise. The film covers the top of the goods. The film continues to rise with the goods. The film and the goods are embedded in the interior of the molding shell (4). The molding plate (403) is used to adjust the height of the goods inside the molding shell (4). At this time, the second dual-head motor (404) is started to drive the moving frame (8) on the molding shell (4) to move closer to each other. Then the balance plate (801) moves closer to the goods to complete the compression. Then the lifting plate (11) descends and disengages from the support of the goods. At this time, the first folding plate (17) and the second folding plate (18) are used to stack the film at the bottom, so that the bottom of the film is folded. S3. The support block (802) presses the top edge of the film so that the corners of the two ends of the film are 90 degrees. Then the adjustment motor (804) is started, driving the adjustment frame (805) to move so that the roller (809) is close to the film. The fine adjustment cylinder (806) is started, causing the misalignment frame (807) to rise. The two rollers (809) clamp the seam of the film. The misalignment motor (808) is started, driving the two rollers (809) to rotate in the opposite direction, causing the film to move in the opposite direction, completing the clamping of the film, ensuring the stable forming of the film port. The heating strip (19) is started, completing the hot-press sealing of the bottom seam of the film. Using the discharge cylinder (401), the goods that have completed the bottom hot pressing are pushed away from the inside of the forming shell (4). The goods and the film enter the space between the top plate (5) and the bottom plate (6). S4, Port Folding Steps: First, the goods are moved to the designated folding position. Then, the angle motor (1401) is started, driving the drive rod (1404) to rotate. The extrusion wheel (1405) extrudes the film on the short side of the port. Accompanied by the moving cylinder (21), the folding frame (14) is moved. Then, the extrusion shell (1402) is used to extrude the center of the film-covered port. As the folding frame (14) continues to move, the extrusion shell (1402) continues to extrude the return spring (1408). At this time, the top block (1406) and the extrusion block (1407) extrude each other, causing the torsion plate ( 1403) The long side of the film-coated port is squeezed to prevent deformation. At this time, a heating wire is additionally installed on one side of the outer wall of the torsion plate (1403) to complete the hot pressing on both sides of the short side and complete the hot pressing of the short side of the film-coated port. Then the goods and film are moved. The compression cylinder (16) is used to drive the balance bar to move closer to each other, so that the long side of the film-coated port is squeezed. At this time, the corresponding moving cylinder (21) is started again, so that the compression shell (1402) and the sealing strip (1409) squeeze the long side. The sealing strip (1409) is heated by electricity to complete the hot pressing and sealing of the long side and complete the final film-coated packaging.
Citation Information
Patent Citations
Product package transporting device
CN223132513U