Impressing mechanism for nanometer material printing

By designing an imprinting mechanism for nanomaterial printing, and using multiple first adsorption cylinders and hydraulic push rods and other components, the problem of intimate bonding between the diaphragm and the substrate is solved, automatic loading and cleaning of residual glue is realized, and the quality and working efficiency of the imprint are improved.

CN222952583UActive Publication Date: 2025-06-06HUBEI JINCHENG NEW MATERIALS CO LTD
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Patent Information

Application Number
CN202421678251.0
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-07-16
Publication Date
2025-06-06
Estimated Expiration
2034-07-16

AI Technical Summary

Technical Problem

During the imprinting process, existing nanoprinting mechanisms are prone to affect the imprinting quality due to the intimate bond between the diaphragm and the substrate, and the loading efficiency is low, making it inconvenient to clean residual glue.

Method used

An imprinting mechanism for nanomaterial printing is designed, and components such as a plurality of first adsorption cylinders and hydraulic push rods are used to ensure a close fit between the substrate and the diaphragm, and automatic loading is achieved through electric push rods and guide columns, and residual glue is removed by cleaning rollers.

Benefits of technology

Improve the imprint quality, reduce the generation of bubbles and wrinkles, realize automatic loading, improve work efficiency, and simplify the residual glue cleaning process.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to an impressing mechanism for nanometer material printing, which is characterized in that the top of a machine body is fixedly connected with a working table, the top of the working table is fixedly connected with an impressing table, a plurality of first adsorption cylinders are arranged below the impressing table, and suction nozzles of the first adsorption cylinders are arranged on the impressing table; according to the tabletting mechanism for nano material production, by arranging the auxiliary assembly, in the using process of the tabletting mechanism, it can be effectively achieved that under the uniform pressure of a pressing grinding roller, it can be ensured that a base plate and a diaphragm are tightly attached, bubbles and wrinkles are reduced, and therefore the overall quality of a product is improved; a second adsorption air cylinder and an adsorption hole are arranged on the coining assembly, a discharging groove is formed in the mounting frame, and a plurality of membranes are arranged in the discharging groove, so that in the using process of the coining device, a worker can control the second adsorption air cylinder to achieve the effect of adsorbing the membranes, and therefore the effect of automatic feeding is achieved.
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Description

Technical Field

[0001] The utility model relates to the technical field of nano-printing, in particular to a stamping mechanism used for printing nano-materials. Background Art

[0002] Nano-printing is an emerging technology that abandons the traditional idea of ​​photosensitive imaging. It does not require darkroom operation and has a simple plate-making process. It eliminates environmental pollution while improving the quality of images. The technical advantage is that this technology incorporates many sciences such as nanotechnology, fine processing technology, contact printing technology, interface science and new materials. Generally, factories will choose assembly line printing substrates when choosing nano-printing, and then cut them according to length.

[0003] Usually, the mold and the substrate are pressed together by means of a pressure roller. This operation is likely to cause uneven force on the mold, bubbles between the mold and the substrate, and other factors, thereby affecting the quality of the imprinting. In addition, during the printing process, the existing nano-printing mechanism usually adopts a manual loading method, which has low work efficiency. At the same time, it is not convenient to clean the residual glue after the imprinting is completed. Therefore, a pressing mechanism for nano-material printing is proposed to solve the above problems. Utility Model Content

[0004] In view of the shortcomings of the prior art, the utility model provides a stamping mechanism for nanomaterial printing, which has the advantages of good stamping effect and convenient loading, and solves the problems of inconvenient loading of stamping mechanisms in traditional technologies and easy impact of stamping due to loose fit between the diaphragm and the substrate.

[0005] To achieve the above-mentioned purpose, the utility model provides the following technical solutions: an imprinting mechanism for nanomaterial printing, comprising a machine body, a workbench is fixedly connected to the top of the machine body, an imprinting platform is fixedly connected to the top of the workbench, a plurality of first adsorption cylinders are arranged below the imprinting platform, and the suction nozzles of the first adsorption cylinders are arranged on the imprinting platform;

[0006] The four corners of the top of the stamping table are all fixedly connected with hydraulic push rods, and the push rod ends of the plurality of hydraulic push rods are all fixedly connected with a connecting table, and a stamping assembly is arranged below the connecting table;

[0007] An electric push rod is arranged on one side of the stamping table, a guide column is arranged on the stamping table, an auxiliary component is slidably connected to the guide column, a push rod end of the electric push rod is fixedly connected to the auxiliary component, a lifting platform is arranged on the electric push rod, and the lifting platform is fixedly connected to the stamping table.

[0008] Furthermore, the auxiliary component includes a mounting frame, a connecting block is arranged on the top of the mounting frame, the connecting block is fixedly connected to the push rod end of the electric push rod, a material discharge trough is also opened on the top of the mounting frame, a plurality of diaphragms are arranged in the material discharge trough, the mounting frame is slidably connected to a guide block, and the guide block is slidably connected to the guide column.

[0009] Furthermore, a connecting frame is fixedly connected to one side of the mounting frame, and a pressing roller is rotatably connected to the connecting frame.

[0010] Furthermore, a plurality of mounting grooves are provided at the bottom of the mounting frame, and cleaning rollers are rotatably connected in the mounting grooves.

[0011] Furthermore, the stamping assembly includes a mounting platform, the top of the mounting platform is fixedly connected to the connecting platform, the bottom of the mounting platform is fixedly connected to a plurality of support columns, and the other ends of the support columns are fixedly connected to a pressing plate.

[0012] Furthermore, a plurality of adsorption holes are provided on the pressing plate, and a second adsorption cylinder having a number matching that of the adsorption holes is provided between the pressing plate and the mounting platform, and a suction nozzle of the second adsorption cylinder is provided in the adsorption hole.

[0013] Compared with the prior art, the technical solution of this application has the following beneficial effects:

[0014] 1. The tablet pressing mechanism for nanomaterial production is provided with auxiliary components so that it can effectively achieve uniform pressure of the pressing roller during use, ensure close fit between the substrate and the diaphragm, reduce the generation of bubbles and wrinkles, and thus improve the overall quality of the product.

[0015] 2. The tablet pressing mechanism for nanomaterial production is provided with a second adsorption cylinder and adsorption holes on the stamping component and a discharge trough on the mounting frame, wherein a plurality of diaphragms are arranged in the discharge trough, so that during use, the staff can control the second adsorption cylinder to achieve the effect of adsorbing the diaphragms, thereby achieving the effect of automatic loading. BRIEF DESCRIPTION OF THE DRAWINGS

[0016] Figure 1 It is a schematic diagram of the structure of the utility model;

[0017] Figure 2 This is a side view of the structure of the utility model;

[0018] Figure 3 This is a schematic diagram of the auxiliary component structure of the utility model;

[0019] Figure 4 This is a schematic diagram of the bottom structure of the auxiliary component of the utility model;

[0020] Figure 5 This is a schematic diagram of the structure of the stamping component of the utility model.

[0021] In the figure: 1. Machine body; 11. Workbench; 12. Imprinting table; 13. First adsorption cylinder; 14. Hydraulic push rod; 15. Connecting table; 16. Electric push rod; 161. Lifting table; 17. Guide column; 2. Imprinting assembly; 21. Mounting table; 22. Support column; 23. Pressing plate; 24. Second adsorption cylinder; 25. Adsorption hole; 3. Auxiliary assembly; 31. Mounting frame; 32. Connecting block; 33. Discharge trough; 34. Diaphragm; 35. Connecting frame; 36. Pressing roller; 37. Mounting trough; 38. Cleaning roller. DETAILED DESCRIPTION

[0022] The following will be combined with the drawings in the embodiments of the utility model to clearly and completely describe the technical solutions in the embodiments of the utility model. Obviously, the described embodiments are only part of the embodiments of the utility model, not all of the embodiments. Based on the embodiments in the utility model, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the utility model.

[0023] Embodiment 1:

[0024] See also Figure 1-4In the present embodiment, a stamping mechanism for nanomaterial printing is provided, and the stamping mechanism for nanomaterial printing comprises a machine body 1, characterized in that: a workbench 11 is fixedly connected to the top of the machine body 1, a stamping platform 12 is fixedly connected to the top of the workbench 11, a plurality of first adsorption cylinders 13 are arranged below the stamping platform 12, and the suction nozzles of the first adsorption cylinders 13 are arranged on the stamping platform 12; hydraulic push rods 14 are fixedly connected to the four corners of the top of the stamping platform 12, and the push rod ends of the plurality of hydraulic push rods 14 are fixedly connected to the connecting platform 15, and a stamping component 2 is arranged below the connecting platform 15; an electric push rod 16 is arranged on one side of the stamping platform 12, a guide column 17 is arranged on the stamping platform 12, an auxiliary component 3 is slidably connected to the guide column 17, a push rod end of the electric push rod 16 is fixedly connected to the auxiliary component 3, a lifting platform 161 is arranged on the electric push rod 16, and the lifting platform 161 is fixedly connected to the stamping platform 12. The auxiliary component 3 includes a mounting frame 31, a connecting block 32 is provided on the top of the mounting frame 31, and the connecting block 32 is fixedly connected to the end of the push rod of the electric push rod 16. A material discharge trough 33 is also provided on the top of the mounting frame 31, and a plurality of diaphragms 34 are provided in the material discharge trough 33. The mounting frame 31 is slidably connected to a guide block, and the guide block is slidably connected to the guide column 17. It is worth noting that the guide block and the mounting frame in this embodiment can slide up and down, and both directions are limited. A connecting frame 35 is fixedly connected to one side of the mounting frame 31, and a pressing roller 36 is rotatably connected to the connecting frame 35. A plurality of mounting grooves 37 are provided at the bottom of the mounting frame 31, and cleaning rollers 38 are rotatably connected in the mounting grooves 37.

[0025] As a preferred technical solution in this embodiment: in the actual use process, when it is necessary to imprint the nanomaterial, the staff can first place the substrate on the imprinting table 12, and then apply glue to the substrate. Then the staff can control the lifting platform 161 to lift the electric push rod 16, and then control the electric push rod 16 to drive the mounting frame 31 to produce a displacement effect, so that the mounting frame 31 and the material discharge trough 33 are located below the imprinting component 2. At this time, the staff can control the imprinting component 2 to take out the diaphragm 34 in the material discharge trough 33, and then the staff can control the electric push rod 16 to drive the mounting frame 31 to retract, and finally control the hydraulic push rod 14 to drive the connecting platform 15 to make the imprinting component The part 2 produces a downward displacement effect, so that the stamping component 2 can cover the diaphragm 34 on the substrate; when the diaphragm 34 is kept in contact with the substrate, the staff can drive the electric push rod 16 to produce a downward displacement effect by controlling the lifting platform 161, and the pressing roller 36 can be driven to produce a downward displacement effect during the downward displacement of the electric push rod 16. Then the staff can control the push rod of the electric push rod 16 to drive the mounting frame 31 to make the pressing roller 36 produce a displacement effect. During the displacement of the pressing roller 36, the pressing effect between the diaphragm 34 and the substrate can be effectively achieved. This method can effectively avoid the situation where the diaphragm 34 and the substrate are not closely attached and the imprinting effect is poor due to bubbles and other reasons during the imprinting process. By providing a cleaning roller 38, it can achieve the effect of removing the residual glue on the surface of the substrate after the imprinting is completed, avoiding manual cleaning.

[0026] Embodiment 2:

[0027] See also Figure 5 In order to achieve the effect of automatic loading and unloading, the stamping assembly 2 in this embodiment includes a mounting platform 21, the top of the mounting platform 21 is fixedly connected to the connecting platform 15, and the bottom of the mounting platform 21 is fixedly connected to a plurality of support columns 22, and the other ends of the support columns 22 are fixedly connected to a pressing plate 23. The pressing plate 23 is provided with a plurality of adsorption holes 25, and a second adsorption cylinder 24 matching the number of the adsorption holes 25 is arranged between the pressing plate 23 and the mounting platform 21, and the suction nozzle of the second adsorption cylinder 24 is arranged in the adsorption hole 25.

[0028] As a preferred technical solution in this embodiment: during the stamping process, when the staff controls the mounting frame 31 to move it below the pressing plate 23, the staff can control the connecting platform 15 to drive the adsorption hole 25 to produce a downward displacement effect, until the adsorption hole 25 moves downward to fit with the diaphragm 34, and the second adsorption cylinder 24 can be controlled to generate negative pressure to achieve the adsorption effect on the diaphragm 34, and the adsorption hole 25 is controlled to cover it on the substrate to achieve the discharge effect of the diaphragm 34; when the discharge is completed, the staff can control the auxiliary component 3 It can achieve the bonding effect between the diaphragm 34 and the substrate. After the bonding is completed, the connection table 15 can be controlled again to drive the adsorption holes 25 to realize the imprinting of the diaphragm 34. After the imprinting is completed, the staff can control the first adsorption cylinder 13 to adsorb the substrate to achieve the fixing effect of the substrate. At the same time, the second adsorption cylinder 24 can be controlled again to generate negative pressure, thereby achieving the adsorption effect on the diaphragm 34, and the connection table 15 can be controlled to drive the adsorption holes 25 to produce an upward displacement effect, thereby realizing the separation between the diaphragm 34 and the substrate, thereby ensuring the material removal effect on the diaphragm 34.

[0029] The working principle of the above embodiment is:

[0030] 1. In actual use, when it is necessary to emboss the nanomaterial, the staff can first place the substrate on the embossing table 12, and then apply glue to the substrate. Then, the staff can control the lifting platform 161 to lift the electric push rod 16, and then control the electric push rod 16 to drive the mounting frame 31 to produce a displacement effect, so that the mounting frame 31 and the material discharge trough 33 are located below the embossing component 2. At this time, the staff can control the embossing component 2 to take out the diaphragm 34 in the material discharge trough 33, and then the staff can control the electric push rod 16 to drive the mounting frame 31 to retreat, and finally control the hydraulic push rod 14 to drive the connecting table 15 to cause the embossing component 2 to move downward. The effect enables the stamping assembly 2 to cover the diaphragm 34 on the substrate; when the diaphragm 34 is kept in contact with the substrate, the staff can control the lifting platform 161 to drive the electric push rod 16 to produce a downward displacement effect, and during the downward displacement of the electric push rod 16, the pressing roller 36 can be driven to produce a downward displacement effect, and then the staff can control the push rod of the electric push rod 16 again to drive the mounting frame 31 to cause the pressing roller 36 to produce a displacement effect, and during the displacement of the pressing roller 36, the pressing effect between the diaphragm 34 and the substrate can be effectively achieved. This method can effectively avoid the situation where the diaphragm 34 and the substrate are not closely fitted, resulting in a poor imprinting effect due to bubbles and other reasons during the imprinting process.

[0031] 2. During the stamping process, when the staff controls the mounting frame 31 to move it below the pressing plate 23, the staff can control the connecting platform 15 to drive the adsorption hole 25 to produce a downward displacement effect, until the adsorption hole 25 moves downward to fit the diaphragm 34, and the second adsorption cylinder 24 can be controlled to generate negative pressure to achieve the adsorption effect on the diaphragm 34, and the adsorption hole 25 is controlled to cover it on the substrate to achieve the discharge effect of the diaphragm 34; when the discharge is completed, the staff can control the auxiliary component 3 to achieve the diaphragm 34 4 and the substrate. After the bonding is completed, the connecting platform 15 can be controlled to drive the adsorption holes 25 to realize the imprinting of the diaphragm 34. After the imprinting is completed, the staff can control the first adsorption cylinder 13 to adsorb the substrate to achieve the fixing effect of the substrate. At the same time, the second adsorption cylinder 24 can be controlled to generate negative pressure again, thereby achieving the adsorption effect on the diaphragm 34, and the connecting platform 15 can be controlled to drive the adsorption holes 25 to produce an upward displacement effect, so as to realize the separation between the diaphragm 34 and the substrate, thereby ensuring the material taking effect on the diaphragm 34.

[0032] Although embodiments of the present invention have been shown and described, it will be appreciated by those skilled in the art that various changes, modifications, substitutions and variations may be made to the embodiments without departing from the principles and spirit of the present invention, and that the scope of the present invention is defined by the appended claims and their equivalents.

Claims

1. A stamping mechanism for printing nanomaterials, comprising a body (1), characterized in that: The top of the machine body (1) is fixedly connected to a workbench (11), the top of the workbench (11) is fixedly connected to a stamping table (12), a plurality of first adsorption cylinders (13) are arranged below the stamping table (12), and the suction nozzles of the first adsorption cylinders (13) are arranged on the stamping table (12); The four corners of the top of the stamping platform (12) are all fixedly connected to hydraulic push rods (14), and the push rod ends of the plurality of hydraulic push rods (14) are all fixedly connected to a connecting platform (15), and a stamping assembly (2) is arranged below the connecting platform (15); An electric push rod (16) is arranged on one side of the stamping table (12); a guide column (17) is arranged on the stamping table (12); an auxiliary component (3) is slidably connected to the guide column (17); a push rod end of the electric push rod (16) is fixedly connected to the auxiliary component (3); a lifting platform (161) is arranged on the electric push rod (16); and the lifting platform (161) is fixedly connected to the stamping table (12).

2. The imprinting mechanism for nanomaterial printing according to claim 1, characterized in that: The auxiliary component (3) comprises a mounting frame (31), a connecting block (32) is arranged on the top of the mounting frame (31), the connecting block (32) is fixedly connected to the end of the push rod of the electric push rod (16), a material discharge groove (33) is also opened on the top of the mounting frame (31), a plurality of diaphragms (34) are arranged in the material discharge groove (33), and the mounting frame (31) is slidably connected to a guide block, and the guide block is slidably connected to the guide column (17).

3. The imprinting mechanism for nanomaterial printing according to claim 2, characterized in that: A connecting frame (35) is fixedly connected to one side of the mounting frame (31), and a pressing roller (36) is rotatably connected to the connecting frame (35).

4. The imprinting mechanism for nanomaterial printing according to claim 3, characterized in that: A plurality of mounting grooves (37) are provided at the bottom of the mounting frame (31), and cleaning rollers (38) are rotatably connected in each of the mounting grooves (37).

5. The imprinting mechanism for nanomaterial printing according to claim 1, characterized in that: The stamping assembly (2) comprises a mounting platform (21), the top of the mounting platform (21) being fixedly connected to the connecting platform (15), the bottom of the mounting platform (21) being fixedly connected to a plurality of support columns (22), and the other ends of the support columns (22) being fixedly connected to a pressing plate (23).

6. The imprinting mechanism for nanomaterial printing according to claim 5, characterized in that: The pressing plate (23) is provided with a plurality of adsorption holes (25); a second adsorption cylinder (24) whose number matches the number of the adsorption holes (25) is arranged between the pressing plate (23) and the mounting platform (21); and a suction nozzle of the second adsorption cylinder (24) is arranged in the adsorption hole (25).