A precision structure and function device production line and its forming process
The hydraulic and pneumatically driven clamping system and electric slide rail design simplify the slitting blade replacement process, solving the cumbersome and labor-intensive problems of existing technologies and improving production efficiency.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-01-16
- Publication Date
- 2026-03-31
AI Technical Summary
Existing production lines for precision structural functional components using adhesive bonding are cumbersome and labor-intensive when changing slitting blades, and bolts are prone to stripping, making disassembly impossible and affecting work efficiency.
The clamping plate is moved by hydraulic and pneumatic telescopic rods, and the slitting blade can be easily disassembled by a sliding rod and locking mechanism. The scraper is moved by an electric slide rail, which simplifies the cutting process.
It enables quick replacement and installation of slitting blades without the need for bolts, saving manpower, avoiding bolt stripping problems, and improving production efficiency.
Smart Images

Figure CN117681279B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to a production line for precision structural functional devices using adhesive bonding, and particularly to a production line for precision structural functional devices using adhesive bonding, belonging to the technical field of precision structural functional devices using adhesive bonding. Background Technology
[0002] Layered adhesive precision structural functional components are similar to the concept of large frame adhesive foam technology, which realizes the bonding and fixing function of electronic and automotive electronic components. During processing, corresponding production lines are required for automated production, which is more efficient and accurate than manual processing, and saves manpower.
[0003] Existing production lines and molding processes for laminated precision structural functional components have limitations in practical applications. Because these components vary in size, the raw materials need to be cut during processing. This requires changing the slitting blade according to the different sizes of the components. Currently, the replacement method uses bolts for installation and removal. However, this method requires specialized tools, making it cumbersome, labor-intensive, and inefficient. Furthermore, prolonged use of bolts can cause stripping, preventing the slitting blade from being removed and further impacting work efficiency and increasing the workload for workers.
[0004] Therefore, there is an urgent need to improve the production line for precision structural functional devices using adhesive bonding to solve the aforementioned problems. Summary of the Invention
[0005] The purpose of this invention is to provide a production line for precision structural functional components using a layered adhesive bonding method. This solves the problems of cumbersome replacement methods that waste manpower, resulting in low efficiency, and the tendency of bolts to strip after prolonged use, making it impossible to remove the slitting blade, which in turn affects work efficiency and increases the difficulty of the workers' work by making it inconvenient to disassemble and replace the slitting blade.
[0006] To achieve the above objectives, the main technical solution adopted by the present invention includes: a production line for precision structural functional devices using layered adhesive bonding and its molding process, comprising a base plate and a first conveyor mounted on the base plate, a second conveyor mounted on one side of the first conveyor, a third conveyor mounted on one side of the second conveyor, a first roller mounted on one side of the third conveyor, a fourth conveyor mounted on one side of the first roller, a second roller mounted on one side of the fourth conveyor, a fifth conveyor mounted on one side of the second roller, a sixth conveyor mounted on one side of the fifth conveyor, a seventh conveyor mounted on one side of the sixth conveyor, and a third roller mounted on one side of the seventh conveyor. A cutting mechanism is installed on one side of the device. A fourth roller is installed on one side of the cutting mechanism. An eighth conveyor is installed on one side of the fourth roller. A ninth conveyor is installed on one side of the eighth conveyor. A tenth conveyor is installed on one side of the ninth conveyor. A fifth roller is installed on one side of the tenth conveyor. The cutting mechanism is installed on one side of the fifth roller. A sixth roller is installed on one side of the cutting mechanism. The cutting mechanism is installed on one side of the sixth roller. A seventh roller is installed on one side of the cutting mechanism. An eleventh conveyor is installed on one side of the seventh roller. A twelfth conveyor is installed on one side of the eleventh conveyor. An eighth roller is installed on one side of the twelfth conveyor. A fifth roller is installed on one side of the tenth conveyor. The cutting mechanism is installed on one side of the fifth roller. A sixth roller is installed on one side of the cutting mechanism. A seventh roller is installed on one side of the cutting mechanism. An eleventh conveyor is installed on one side of the seventh roller. A twelfth conveyor is installed on one side of the eleventh conveyor. An eighth roller is installed on one side of the eighth roller. The system comprises nine rollers. A cutting mechanism is mounted on one side of the ninth roller. A tenth roller is mounted on one side of the cutting mechanism. A thirteenth conveyor is mounted on one side of the tenth roller. The cutting mechanism is mounted on one side of the thirteenth conveyor. A T6 waste discharge device is mounted on one side of the cutting mechanism. A fourteenth conveyor is mounted on one side of the T6 waste discharge device. An eleventh roller is mounted on one side of the fourteenth conveyor. The cutting mechanism is mounted on one side of the eleventh roller. The cutting mechanism is divided into T1, T2, T3, T4, T5, and T7, each including a connecting frame. A connecting rod is mounted on the connecting frame. A hydraulic telescopic rod is mounted on the connecting rod. A connecting seat is mounted on the output end of the hydraulic telescopic rod. A... Multiple pneumatic telescopic rods are provided. Each pneumatic telescopic rod has a clamping plate at its output end, and multiple connecting blocks are mounted on the clamping plate. A cutting blade is mounted on the bottom of each connecting block. A sliding rod is slidably mounted on each connecting block and one of the clamping plates. A third sliding block is mounted on the sliding rod. A second sliding groove that mates with the third sliding block is formed on each connecting block and another clamping plate. An insert block is mounted on one of the clamping plates and the other clamping plate. A sliding groove that mates with the insert block is formed on each of the other two sides of the sliding rod. A fourth sliding block is mounted on both sides of the sliding rod. A fourth sliding groove that mates with the fourth sliding block is formed on each connecting block and one of the clamping plates. A locking mechanism is provided on the fourth sliding block.
[0007] Preferably, a connecting plate is installed on the base plate, an electric slide rail is installed on the connecting plate, a support rod is installed on the electric slide rail, and a scraper is installed on the support rod.
[0008] Preferably, the base plate is equipped with support legs, one end of which is connected to the bottom of the placement plate. There are four support legs, all of which are installed on the top of the base plate, and the tops of the four support legs are all connected to the bottom of the placement plate.
[0009] Preferably, the fourth slider is a T-shaped slider, and the fourth groove is a T-shaped groove.
[0010] Preferably, the engaging mechanism includes a cavity, a locking ball, and a spring. The fourth slider has a cavity, a spring is installed inside the cavity, a locking ball is installed at one end of the spring, and the connecting block and one of the clamping plates have locking grooves that cooperate with the locking ball.
[0011] Preferably, the third slider is a T-shaped slider, and the third groove is a T-shaped groove.
[0012] Preferably, a first slider is installed on both sides of the connecting seat, and a first groove is provided on the connecting frame to cooperate with the first slider. The first slider is a T-shaped slider, and the first groove is a T-shaped groove.
[0013] Preferably, a second slider is installed on the top of the clamping plate, and a second groove is provided on the connecting seat to cooperate with the second slider.
[0014] Preferably, the second slider is a T-shaped slider, and the second groove is a T-shaped groove.
[0015] A molding process for precision structural functional devices using adhesive bonding includes the following steps:
[0016] Step 1: Composite base plate: The first and second layers of silicone protective film and blue film are sequentially threaded into the base plate rollers for composite, then the red tape is sequentially threaded into the first conveyor rollers for composite, and then the transparent release film, foam, and matte film are sequentially threaded into the second conveyor rollers for composite.
[0017] Step 2: Die-cutting base plate: The composite material is fed into the T-base plate roller asynchronous die to perform the first step of die-cutting the product shape;
[0018] Step 3: Waste removal plate: Use a scraper to scrape the cut product onto the blue film, and then use a grooved roller to remove the transparent release film;
[0019] Step 4: Lamination of the first conveyor: After the waste is discharged, the transparent release film, foam, and matte film are sequentially fed into the rollers of the second conveyor for lamination;
[0020] Step 5: Die-cutting the first conveyor: The composite material is fed into the asynchronous die of the first conveyor roller to perform die-cutting of the product shape for the second step;
[0021] Step 6: First waste discharge conveyor: The cut products are scraped onto the blue film with a scraper, and the transparent release film is discharged through the grooved roller;
[0022] Step 7: Die-cutting the second conveyor: The two asynchronously completed products are fed into the mold of the T second conveyor roller to perform die-cutting of the product shape in the third step;
[0023] Step 8: Waste removal via the second conveyor: Use transparent tape to remove the film from the cut products;
[0024] Step 9: Composite Second Conveyor: The transparent release film and foam are sequentially threaded through the connecting frame rollers for composite bonding;
[0025] Step 10: Die-cutting the third conveyor: The composite material is fed into the T third conveyor roller mold for die-cutting the product shape in step four;
[0026] Step 11: Composite Third Conveyor: The die-cut products are stacked onto the T-second conveyor for alignment and composite.
[0027] Step 12: Third waste discharge conveyor: Pull off the top transparent release film of the stacked products, and insert the matte film into the fourth roller for lamination;
[0028] Step 13: Die-cutting the first roller: The composite material is fed into the T-shaped first roller mold to die-cut the product shape from step 5;
[0029] Step 14: First roller for waste removal: Remove waste from the cut product. First, lift the outer frame waste, pull down the first layer of silicone protective film and remove the hole waste through the mold ejector pin. Then, use transparent tape in conjunction with the waste removal mold of the fourth conveyor to remove the film around the product. Then, use the waste removal film to remove the foam waste around the product. Finally, use transparent tape to remove the film on the product.
[0030] Step 15: Lamination of the first roller: Insert the transparent double silicone release film into the seventh roller shaft for lamination;
[0031] Step 16: Die-cutting the second roller: The composite material is fed into the mold of the second roller T to slice the product;
[0032] Step 17: Packaging: Put the cut product into a transparent PE bag, seal it, and place it on a clamp.
[0033] The present invention has at least the following beneficial effects:
[0034] 1. The production line and molding process for the laminated adhesive precision structural functional device according to the present invention includes a hydraulic telescopic rod that, when activated, drives the slitting blade to descend, enabling die-cutting of the raw material. A pneumatic telescopic rod that, when activated, moves the clamping plate, separating the clamping plate from the connecting block. A sliding rod that, when pulled, allows the third slider to slide out of the third sliding groove. Pulling the connecting block allows the insert block to be pulled out of the slot, separating the two connecting blocks. The slitting blade can be disassembled and replaced. The appropriate number of slitting blades can be installed according to the processing of laminated adhesive precision structural functional devices of different sizes, adapting to different processing needs. Furthermore, it eliminates the need for bolts for installation and disassembly, saving manpower and reducing the risk of bolt damage. The inability to disassemble the slitting blade due to slippage can be addressed by installing an electric slide rail. The electric slide rail, when activated, moves the support rod and scraper to scrape off the cut material. A placement plate, in conjunction with the cutting mechanism, cuts the raw material. A fourth slider, a T-shaped slider with a T-shaped groove, guides and limits the sliding rod. A ball-and-socket engagement limit the sliding rod after sliding. A third slider, also a T-shaped slider with a T-shaped groove, guides and limits the connecting blocks, facilitating the connection of multiple blocks. A first slider, also a T-shaped slider with a T-shaped groove, guides and limits the connecting seat. A second slider, slidingly connected to a second groove, guides and limits the clamping plate. Attached Figure Description
[0035] The accompanying drawings, which are included to provide a further understanding of this application and form part of this application, illustrate exemplary embodiments and are used to explain this application, but do not constitute an undue limitation of this application. In the drawings:
[0036] Figure 1 This is a schematic diagram of the overall structure of a preferred embodiment of the production line and molding process for a precision structural functional device with adhesive bonding according to the present invention.
[0037] Figure 2 This is a schematic diagram of a cutting blade structure according to a preferred embodiment of the production line and molding process of the precision structural functional device with adhesive bonding according to the present invention.
[0038] Figure 3 This is a schematic diagram of a clamping plate structure according to a preferred embodiment of the production line and molding process of the precision structural functional device with layered adhesive bonding according to the present invention.
[0039] Figure 4 A schematic diagram of the first slider structure of a preferred embodiment of the production line and molding process of the precision structural functional device with layered adhesive bonding according to the present invention.
[0040] Figure 5This is a schematic diagram of an insert structure according to a preferred embodiment of the production line and molding process of the precision structural functional device with layered adhesive bonding according to the present invention.
[0041] Figure 6 This is a schematic diagram of the third slider structure of a preferred embodiment of the production line and molding process of the precision structural functional device with layered adhesive bonding according to the present invention.
[0042] Figure 7 This is a schematic diagram of a slide bar structure according to a preferred embodiment of the production line and molding process of the precision structural functional device with layered adhesive bonding according to the present invention.
[0043] Figure 8 This is a schematic diagram of a ball-holding structure according to a preferred embodiment of the production line and molding process for precision structural functional devices using adhesive bonding according to the present invention.
[0044] In the diagram, 1. Base plate; 2. First conveyor; 3. Second conveyor; 4. Third conveyor; 5. First roller; 6. Fourth conveyor; 7. Second roller; 8. Fifth conveyor; 9. Sixth conveyor; 10. Seventh conveyor; 11. Connecting frame; 12. Fourth roller; 13. Eighth conveyor; 14. Ninth conveyor; 15. Tenth conveyor; 16. Fifth roller; 17. Sixth roller; 18. Seventh roller; 19. Eleventh conveyor; 20. Twelfth conveyor; 21. Eighth roller; 22. Ninth roller; 23. Tenth roller; 24. Thirteenth conveyor; 25. T6 waste discharger; 26. Fourteenth conveyor; 27. Eleventh roller; 28. Connecting rod; 29. Hydraulic telescopic rod; 30. Connecting seat; 31. Pneumatic telescopic rod; 32. Clamping plate; 33. Connecting block; 34. Sliding knife; 35. Placement plate; 36. Support leg; 37. Electric slide rail; 38. Support rod; 39. Scraper; 40. First slider; 41. Second slider; 42. Sliding rod; 43. Third slider; 44. Insert block; 45. Fourth slider; 46. Ball clamp; 47. Spring; 48. Third roller. Detailed Implementation
[0045] The following will describe in detail the implementation of this application with reference to the accompanying drawings and embodiments, so that the implementation process of how this application uses technical means to solve technical problems and achieve technical effects can be fully understood and implemented accordingly.
[0046] like Figures 1-7As shown, the production line and molding process for precision structural functional devices using adhesive bonding provided in this embodiment includes a base plate 1 and a first conveyor 2 mounted on the base plate 1. A second conveyor 3 is mounted on one side of the first conveyor 2, a third conveyor 4 is mounted on one side of the second conveyor 3, a first roller 5 is mounted on one side of the third conveyor 4, a fourth conveyor 6 is mounted on one side of the first roller 5, a second roller 7 is mounted on one side of the fourth conveyor 6, a fifth conveyor 8 is mounted on one side of the second roller 7, a sixth conveyor 9 is mounted on one side of the fifth conveyor 8, a seventh conveyor 10 is mounted on one side of the sixth conveyor 9, and a third roller 48 is mounted on one side of the seventh conveyor 10. A cutting mechanism is mounted on one side of the third roller 48. A fourth roller 12 is mounted on one side of the cutting mechanism. An eighth conveyor 13 is mounted on one side of the fourth roller 12. A ninth conveyor 14 is mounted on one side of the eighth conveyor 13. A tenth conveyor 15 is mounted on one side of the ninth conveyor 14. A fifth roller 16 is mounted on one side of the tenth conveyor 15. The cutting mechanism is mounted on one side of the fifth roller 16. A sixth roller 17 is mounted on one side of the cutting mechanism. The cutting mechanism is mounted on one side of the sixth roller 17. A seventh roller 18 is mounted on one side of the cutting mechanism. An eleventh conveyor 19 is mounted on one side of the eleventh conveyor 19. The system is equipped with a twelfth conveyor 20, an eighth roller 21 mounted on one side of the twelfth conveyor 20, a ninth roller 22 mounted on one side of the eighth roller 21, the cutting mechanism mounted on one side of the ninth roller 22, a tenth roller 23 mounted on one side of the cutting mechanism, a thirteenth conveyor 24 mounted on one side of the tenth roller 23, the cutting mechanism mounted on one side of the thirteenth conveyor 24, a T6 waste discharger 25 mounted on one side of the T6 waste discharger 25, a fourteenth conveyor 26 mounted on one side of the fourteenth conveyor 26, an eleventh roller 27 mounted on one side of the eleventh roller 27, and the cutting mechanism mounted on one side of the eleventh roller 27. The cutting mechanism is divided into T1, T2, and T3. Models T3, T4, T5, and T7 all include a connecting frame 11. A connecting rod 28 is mounted on the connecting frame 11. A hydraulic telescopic rod 29 is mounted on the connecting rod 28. A connecting seat 30 is mounted at the output end of the hydraulic telescopic rod 29. Multiple pneumatic telescopic rods 31 are mounted on the connecting seat 30. A clamping plate 32 is mounted at the output end of each pneumatic telescopic rod 31. Multiple connecting blocks 33 are mounted on the clamping plate 32. A sliding blade 34 is mounted at the bottom of each connecting block 33. A sliding rod 42 is slidably mounted on each connecting block 33 and one of the clamping plates 32. A third slider 43 is mounted on the sliding rod 42. A second sliding groove that cooperates with the third slider 43 is formed on each connecting block 33 and the other clamping plate 32.One of the clamping plates 32 and the connecting block 33 are each equipped with an insert block 44. The other clamping plate 32 and the connecting block 33 are each provided with a sliding groove that mates with the insert block 44. A fourth slider 45 is installed on both sides of the sliding rod 42. The connecting block 33 and one of the clamping plates 32 are provided with a fourth sliding groove that mates with the fourth slider 45. The fourth slider 45 is equipped with a locking mechanism. A hydraulic telescopic rod 29 is provided; its activation lowers the slitting blade 34 to perform die-cutting. A pneumatic telescopic rod 31 is also provided. Moving the clamping plate 32 separates it from the connecting block 33. By pulling the sliding rod 42, the third slider 43 slides out of the third groove. Pulling the connecting block 33 removes the insert block 44 from the slot, separating the two connecting blocks 33. This allows for the disassembly and replacement of the slitting blade 34. The system can install the appropriate number of slitting blades 34 according to the processing of different sizes of laminated precision structural functional components, adapting to various processing needs. Furthermore, it eliminates the need for bolts for installation and disassembly, saving manpower and reducing the risk of stripped bolts preventing the slitting blade 34 from being disassembled.
[0047] In this embodiment, as Figure 2 , Figure 3 , Figure 4 , Figure 6 , Figure 7 and Figure 8As shown, a placement plate 35 is provided below the cutting mechanism. A connecting plate is installed on the base plate 1, and an electric slide rail 37 is installed on the connecting plate. A support rod 38 is installed on the electric slide rail 37, and a scraper 39 is installed on the support rod 38. The scraper 39 is located above the placement plate 35. By setting the electric slide rail 37, the electric slide rail 37 can drive the support rod 38 and the scraper 39 to move, thus scraping off the material after cutting. Support legs 36 are installed on the base plate 1, and one end of the support leg 36 is connected to the bottom of the placement plate 35. The number of support legs 36 is... There are four support legs 36, all mounted on the top of the base plate 1. The tops of the four support legs 36 are connected to the bottom of the placement plate 35. By setting the placement plate 35, the raw material can be cut in conjunction with the cutting mechanism. The fourth slider 45 is a T-shaped slider, and the fourth slide groove is a T-shaped slide groove. By setting the fourth slider 45 as a T-shaped slider and the T-shaped slide groove to cooperate with each other, the slide rod 42 can be guided and limited. The locking mechanism includes a cavity, a locking ball 46, and a spring 47. The fourth slider 45 has a cavity, and the spring 47 is installed inside the cavity. One end is equipped with a retaining ball 46. The connecting block 33 and one of the clamping plates 32 are each provided with a retaining groove that engages with the retaining ball 46. By engaging the retaining ball 46 with the groove, the sliding rod 42 can be limited after sliding. The third slider 43 is a T-shaped slider, and the third sliding groove is a T-shaped sliding groove. By setting the third slider 43 to be a T-shaped slider and the T-shaped sliding groove to engage, the connecting block 33 can be guided and limited, facilitating the connection of multiple connecting blocks 33. First sliders 40 are installed on both sides of the connecting seat 30. The connecting frame 11 has... The first slider 40 has a first groove that cooperates with the first slider 40. The first slider 40 is a T-shaped slider and the first groove is a T-shaped groove. By setting the first slider 40 to be a T-shaped slider and the T-shaped groove to cooperate with each other, the connecting seat 30 can be guided and limited. The top of the clamping plate 32 is equipped with a second slider 41. The connecting seat 30 has a second groove that cooperates with the second slider 41. The second slider 41 is a T-shaped slider and the second groove is a T-shaped groove. By setting the second slider 41 and the second groove to be slidably connected, the clamping plate 32 can be guided and limited.
[0048] A molding process for precision structural functional devices using adhesive bonding includes the following steps:
[0049] Step 1: Lamination 1: Lay the first and second layers of silicone protective film and blue film into roller 1 in sequence, then lay the red tape into roller 2 in sequence, and then lay the transparent release film, foam and matte film into roller 3 in sequence.
[0050] Step 2: Die-cutting 1: The composite material is fed into the T1 roller asynchronous die to perform the first step of die-cutting the product shape;
[0051] Step 3: Waste removal 1: Use a scraper to scrape the cut product onto the blue film, and then use a grooved roller to remove the transparent release film;
[0052] Step 4: Lamination 2: After waste removal, the transparent release film, foam, and matte film are sequentially threaded into the 3 rollers for lamination;
[0053] Step 5: Die-cutting 2: The composite material is fed into the T2 roller asynchronous die to perform the second step of die-cutting the product shape;
[0054] Step 6: Waste Removal 2: Use a scraper to scrape the cut product onto the blue film, and then use a grooved roller to remove the transparent release film;
[0055] Step 7: Die-cutting 3: The two asynchronously completed products are fed into the mold of the T3 roller for die-cutting to form the product shape in the third step;
[0056] Step 8: Waste Removal 3: Use transparent tape to remove the film from the cut product;
[0057] Step 9: Lamination 3: Insert the transparent release film and foam sequentially into roller 11 for lamination;
[0058] Step 10: Die-cutting 4: The composite material is fed into the T4 roller mold to perform die-cutting of the product shape in the fourth step;
[0059] Step 11: Lamination 4: The die-cut products are stacked down onto the T3 die-cut products for alignment and lamination;
[0060] Step 12: Waste Removal 4: Remove the top transparent release film from the stacked products and insert the matte film into roller 12 for lamination;
[0061] Step 13: Die-cutting 5: The composite material is fed into the T5 roller mold to perform die-cutting of the product shape in the fifth step;
[0062] Step 14: Waste Removal 5: Remove waste from the cut products. First, lift up the outer frame waste, pull down the first layer of silicone protective film and remove the hole waste through the mold ejector pin. Then, use transparent tape with the T6 waste removal mold to remove the matte film around the product. Next, use the waste removal film to remove the foam waste around the product. Finally, use transparent tape to remove the matte film on the product.
[0063] Step 15: Lamination 5: Insert the transparent double silicone release film into the 18 rollers for lamination;
[0064] Step 16: Die-cutting 7: The composite material is fed into the mold of the T7 roller to slice the product;
[0065] Step 17: Packaging: Put the cut product into a transparent PE bag, seal it, and place it on a clamp.
[0066] In summary, in this embodiment, the production line and molding process for the laminated adhesive precision structural functional device according to this embodiment utilizes a hydraulic telescopic rod 29. The hydraulic telescopic rod 29, when activated, lowers the slitting blade 34 to die-cut the raw material. A pneumatic telescopic rod 31, when activated, moves the clamping plate 32, separating it from the connecting block 33. A sliding rod 42, when pulled, slides the third slider 43 out of the third groove. Pulling the connecting block 33 removes the insert block 44 from the slot, separating the two connecting blocks 33. This allows for the disassembly and replacement of the slitting blade 34. The appropriate number of slitting blades 34 can be installed according to the processing of laminated adhesive precision structural functional devices of different sizes, adapting to different processing needs. Furthermore, it eliminates the need for bolts for installation and disassembly, saving manpower. The slitting blade 34 is not easily disassembled due to stripped bolt threads. An electric slide rail 37 is provided, which, when activated, moves the support rod 38 and scraper 39 to scrape off the cut material. A placement plate 35 is provided to cooperate with the cutting mechanism to cut the raw material. A fourth slider 45, a T-shaped slider with a T-shaped groove, guides and limits the sliding rod 42. A retaining ball 46 engages with a retaining groove to limit the sliding rod 42 after sliding. A third slider 43, a T-shaped slider with a T-shaped groove, guides and limits the connecting block 33, facilitating the connection of multiple connecting blocks 33. A first slider 40, a T-shaped slider with a T-shaped groove, guides and limits the connecting seat 30. A second slider 41, slidingly connected to a second groove, guides and limits the clamping plate 32.
[0067] If certain terms are used in the specification and claims to refer to specific components, those skilled in the art will understand that hardware manufacturers may use different names to refer to the same component. This specification and claims do not distinguish components based on differences in name, but rather on differences in function. The term "comprising" as used throughout the specification and claims is an open-ended term and should be interpreted as "comprising but not limited to." "Approximately" means that within an acceptable margin of error, those skilled in the art can solve the technical problem and substantially achieve the technical effect within a certain margin of error.
[0068] It should be noted that the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a product or system comprising a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such a product or system. Without further limitation, an element defined by the phrase "comprising one..." does not exclude the presence of other identical elements in the product or system that includes that element.
[0069] The foregoing description illustrates and describes several preferred embodiments of the present invention. However, as previously stated, it should be understood that the present invention is not limited to the forms disclosed herein and should not be construed as excluding other embodiments. It can be used in various other combinations, modifications, and environments, and can be altered within the scope of the inventive concept described herein through the foregoing teachings or techniques or knowledge in related fields. Any modifications and variations made by those skilled in the art that do not depart from the spirit and scope of the present invention should be within the protection scope of the appended claims.
Claims
1. A precision structure-function device production line of layer bonding, characterized by, The utility model relates to a cutting mechanism and a cutting device, including bottom plate (1) and install first conveyor (2) on bottom plate (1), one side of first conveyor (2) is installed with second conveyor (3), one side of second conveyor (3) is installed with third conveyor (4), one side of third conveyor (4) is installed with first roller (5), one side of first roller (5) is installed with fourth conveyor (6), one side of fourth conveyor (6) is installed with second roller (7), one side of second roller (7) is installed with fifth conveyor (8), one side of fifth conveyor (8) is installed with sixth conveyor (9), one side of sixth conveyor (9) is installed with seventh conveyor (10), one side of seventh conveyor (10) is installed with third roller (48), one side of third roller (48) is installed with cutting mechanism T1, one side of cutting mechanism T1 is installed with fourth roller (12), one side of fourth roller (12) is installed eighth conveyor (13), one side of eighth conveyor (13) is installed with ninth conveyor (14), one side of ninth conveyor (14) is installed with tenth conveyor (15), one side of tenth conveyor (15) is installed with fifth roller (16), one side of fifth roller (16) is installed with cutting mechanism T2, one side of cutting mechanism T2 is installed with sixth roller (17), one side of sixth roller (17) is installed with cutting mechanism T3, one side of cutting mechanism T3 is installed with seventh roller (18), one side of seventh roller (18) is installed with eleventh conveyor (19), one side of eleventh conveyor (19) is installed with twelfth conveyor (20), one side of twelfth conveyor (20) is installed with eighth roller (21), one side of eighth roller (21) is installed with ninth roller (22), one side of ninth roller (22) is installed with cutting mechanism T4, one side of cutting mechanism T4 is installed with tenth roller (23), one side of tenth roller (23) is installed with thirteenth conveyor (24), one side of thirteenth conveyor (24) is installed with cutting mechanism T5, one side of cutting mechanism T5 is installed with waste discharge ware T6 (25), one side of waste discharge ware T6 (25) is installed with fourteenth conveyor (26), one side of fourteenth conveyor (26) is installed with eleventh roller (27), one side of eleventh roller (27) is installed with cutting mechanism T7, cutting mechanism all includes connecting frame (11), be installed with connecting rod (28) on connecting frame (11), be installed with hydraulic telescopic rod (29) on connecting rod (28), the output of hydraulic telescopic rod (29) is installed with connecting seat (30), be installed with a plurality of pneumatic telescopic rod (31) on connecting seat (30), the output of pneumatic telescopic rod (31) is installed with clamping plate (32), be installed with a plurality of connecting blocks (33) on clamping plate (32), the bottom of connecting block (33) is installed with slitting knife (34),The connecting block (33) and one of the clamping plates (32) are slidably provided with a sliding rod (42), the sliding rod (42) is provided with a third sliding block (43), the connecting block (33) and the other clamping plate (32) are provided with a third sliding groove matched with the third sliding block (43), one of the clamping plates (32) and the connecting block (33) are provided with an insertion block (44), the other clamping plate (32) and the connecting block (33) are provided with a sliding groove matched with the insertion block (44), the sliding rod (42) is provided with a fourth sliding block (45) on both sides, the connecting block (33) and one of the clamping plates (32) are provided with a fourth sliding groove matched with the fourth sliding block (45), and the fourth sliding block (45) is provided with a clamping mechanism.
2. The precision structure and function device production line with layer adhesive bonding according to claim 1, wherein, The bottom plate (1) is provided with a connecting plate, the connecting plate is provided with an electric sliding rail (37), the electric sliding rail (37) is provided with a supporting rod (38), and the supporting rod (38) is provided with a scraper (39).
3. The precision structure and function device production line with layer adhesive bonding according to claim 2, characterized in that, The bottom plate (1) is provided with supporting legs (36), one end of the supporting legs (36) is connected with the bottom of the placing plate (35), the number of the supporting legs (36) is four, and the four supporting legs (36) are all arranged on the top of the bottom plate (1), and the top of the four supporting legs (36) is connected with the bottom of the placing plate (35).
4. The precision structure and function device production line with layer adhesive bonding according to claim 3, characterized in that, The fourth sliding block (45) is a T-shaped sliding block, and the fourth sliding groove is a T-shaped sliding groove.
5. The precision structure and function device production line with layer adhesive bonding according to claim 4, wherein, The clamping mechanism comprises a cavity, a clamping ball (46) and a spring (47), the fourth sliding block (45) is provided with a cavity, the spring (47) is arranged in the cavity, one end of the spring (47) is provided with the clamping ball (46), and the connecting block (33) and one of the clamping plates (32) are provided with clamping grooves matched with the clamping ball (46).
6. The precision structure and function device production line with layer adhesive bonding of claim 5, wherein, The third sliding block (43) is a T-shaped sliding block, and the third sliding groove is a T-shaped sliding groove.
7. The precision structure and function device production line with layer adhesive bonding according to claim 6, wherein, Both sides of the connecting seat (30) are provided with first sliding blocks (40), the connecting frame (11) is provided with first sliding grooves matched with the first sliding blocks (40), the first sliding blocks (40) are T-shaped sliding blocks, and the first sliding grooves are T-shaped sliding grooves.
8. The precision structure and function device production line with layer adhesive bonding according to claim 7, wherein, The top of the clamping plate (32) is provided with a second sliding block (41), and the connecting seat (30) is provided with a second sliding groove matched with the second sliding block (41).
9. The precision structure and function device production line according to claim 8, wherein, The second sliding block (41) is a T-shaped sliding block, and the second sliding groove is a T-shaped sliding groove.
10. A molding process of the layer-adhesive-bonding type precision structure functional device production line according to claim 9, characterized by, The method comprises the following steps: Step 1: composite bottom plate (1): the first layer and the second layer of silica gel protective film and blue film are sequentially penetrated into the bottom plate (1) roller for compounding, then the red adhesive tape is sequentially penetrated into the first conveyor (2) roller for compounding, and then the transparent release film, foam, and sub-film are sequentially penetrated into the second conveyor (3) roller for compounding; Step 2: die cutting bottom plate (1): the composite material is introduced into the bottom plate (1) roller asynchronous knife die, and the first step product shape is die cut; Step 3: waste discharge bottom plate (1): the cut product is scraped onto the blue film by a scraper, and the transparent release film is discharged through a grooved roller; Step 4: composite first conveyor (2): after the waste is discharged, the transparent release film, foam and sub-film are sequentially penetrated into the second conveyor (3) roller for compounding; Step 5: die cutting first conveyor (2): the composite material is introduced into the first conveyor (2) roller asynchronous knife die, and the second step product shape is die cut; Step 6: waste discharge first conveyor (2): the cut product is scraped onto the blue film by a scraper, and the transparent release film is discharged through a grooved roller; Step 7: die cutting second conveyor (3): the two asynchronous products are introduced into the die of the second conveyor (3) roller, and the third step product shape is die cut; Step 8: waste discharge second conveyor (3): the cut product is discharged from the sub-film on the product by using the transparent adhesive tape; Step 9: Composite second conveyor (3): the transparent release film, foam in turn into the connecting frame (11) roller composite; Step 10: die cutting third conveyor (4): the composite material into the third conveyor (4) roller die, the fourth step product shape; Step 11: composite third conveyor (4): the die cutting products are stacked to the second conveyor (3) die cutting products are stacked to the composite; Step 12: waste third conveyor (4): the product is stacked to the top layer of transparent release film, the film into the fourth roller (12) roller composite; Step 13: die cutting first roller (5): the composite material into the first roller (5) roller die, the fifth step product shape; Step 14: waste first roller (5): the cutting products are waste, first on the outer frame of the waste, pull down the first layer of silica gel protective film through the die pin to remove the hole waste, then use transparent tape with the fourth conveyor (6) of the waste die to remove the product around the film, and then use the waste film to remove the product around the foam waste, and then use the transparent tape to remove the film on the product; Step 15: composite first roller (5): the transparent double silicon release film into the seventh roller (18) roller composite; Step 16: die cutting second roller (7): the composite material into the second roller (7) roller die, the product is cut; Step 17: packaging: the cutting products are packed in transparent PE bag, sealed, and clamped plate.
Citation Information
Patent Citations
Die-cutting and discharge device for die-cutting part with inner lifting handle and die-cutting and discharge method
CN106541448A
Processing technology for strip-shaped foam die cutting piece
CN107443478A