Roll-to-roll electronic film screen printing cutting and cleaning processing equipment

By designing roll-to-roll electronic film screen printing, cutting, cleaning and processing equipment, automated production line production has been realized, solving the problems of low efficiency and poor consistency in traditional electronic film processing, and improving product qualification rate and processing efficiency.

CN223835218UActive Publication Date: 2026-01-27SHENZHEN HANYUE INTELLIGENT CO LTD
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Patent Information

Application Number
CN202423011112.5
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-06
Publication Date
2026-01-27
Estimated Expiration
2034-12-06

AI Technical Summary

Technical Problem

Traditional electronic thin film processing technology is inefficient, has poor product consistency, and lacks intelligent control systems, resulting in a low pass rate.

Method used

Design a roll-to-roll electronic film screen printing, cutting, and cleaning processing equipment, including a feeding machine, a screen printing machine, a cutting machine, and a cleaning and collecting machine. It realizes automated production line production through moving components and an adsorption worktable, and supports single-machine or multi-machine combination operation.

Benefits of technology

It improves the efficiency of electronic thin film processing and the stability of product quality, enables fully unmanned operation, and increases the product qualification rate.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses roll-to-roll electronic film screen printing, cutting and cleaning processing equipment which comprises a discharging machine, a screen printing machine, a cutting machine and a cleaning and receiving machine which are sequentially arranged and combined. The utility model has the beneficial effects that four single-machine wiring devices are realized through the feeding machine, the screen printing machine, the cutting machine and the cleaning and receiving machine, each single machine or any two single machines or three single machines can be randomly recombined to independently work, the flexibility is very high, the single machines can be arranged and combined for use according to the requirements, and the working efficiency can be greatly improved according to the actual processing requirements. A feeding machine is independently used for film covering, a screen printing machine is independently used for screen printing, a cutting machine is independently used for cutting, a cleaning and receiving machine is independently used for plasma product cleaning, or only two or three machines are used for combined operation, and the machine which is not used is shielded in the aspect of signals. A worker only needs to penetrate the material belt through the adsorption workbench of the machine.
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Description

Technical Field

[0001] This utility model relates to the field of electronic thin film screen printing technology, specifically to a roll-to-roll electronic thin film screen printing cutting and cleaning processing equipment. Background Technology

[0002] In traditional electronic thin film processing, the general working state is single-machine operation, that is, there is no online operation between processes, and it is mostly a semi-manual and semi-automatic method. This results in low efficiency and lack of humanization in electronic thin film processing. Moreover, there is no intelligent control interface and control system. Since the semi-manual and semi-automatic production process is difficult to control, it leads to poor product consistency and low pass rate. Therefore, a roll-to-roll electronic thin film screen printing, cutting and cleaning processing equipment is needed to solve the above problems. Utility Model Content

[0003] The purpose of this invention is to overcome the shortcomings of the above-mentioned background technology and provide a roll-to-roll electronic thin film screen printing, cutting, cleaning and processing equipment.

[0004] It includes a feeding machine, a screen printing machine, a cutting machine, and a cleaning and collecting machine. The feeding machine, the screen printing machine, the cutting machine, and the cleaning and collecting machine are arranged in sequence and combined. The feeding machine, the screen printing machine, the cutting machine, and the cleaning and collecting machine are spaced apart, and a film is provided between the feeding machine, the screen printing machine, the cutting machine, and the cleaning and collecting machine.

[0005] Furthermore, the feeding machine includes an L-shaped base and an electrical box. The electrical box is vertically arranged, and a product feeding shaft is rotated on one side of the electrical box. A bottom film feeding shaft is rotated on another side of the electrical box, and the bottom film feeding shaft is located below the product feeding shaft.

[0006] Furthermore, the screen printing machine includes a first cabinet and a first moving component installed on the first cabinet. An ink doctor blade is installed on the first moving component. A first adsorption worktable is provided on the first cabinet and is located below the ink doctor blade. A screen plate groove is engaged on the first adsorption worktable. A protective film feeding shaft is rotated on one side of the first cabinet near the top.

[0007] Furthermore, the cutting machine includes a second cabinet and a second moving component mounted on the second cabinet. A cutting head is mounted on the second moving component. A second adsorption worktable is provided on the second cabinet and is located below the cutting head.

[0008] Furthermore, the cleaning and collecting machine includes a third cabinet and a third moving component installed on the third cabinet. A plasma cleaning head is installed on the third moving component. A third adsorption worktable is provided on the third cabinet and is located below the plasma cleaning head. A lever is installed on one side of the third cabinet near the third moving component. A frame material collecting shaft and a product film collecting shaft are rotated on one side of the third cabinet near the lever. The frame material collecting shaft and the product film collecting shaft are arranged vertically.

[0009] Furthermore, the first moving component, the second moving component, and the third moving component respectively include a first Y-axis, a first X-axis, and a first Z-axis; a second Y-axis, a second X-axis, and a second Z-axis; and a third Y-axis, a third X-axis, and a third Z-axis.

[0010] Furthermore, the feeding machine, the screen printing machine, the cutting machine, and the cleaning and collecting machine are respectively equipped with a first foot cup, a second foot cup, a third foot cup, and a fourth foot cup, all of which are designed at the four corners.

[0011] Furthermore, a first material strip transition plate, a second material strip transition plate, a third material strip transition plate, and a fourth material strip transition plate are respectively installed on one side of the electrical box, the first cabinet, the second cabinet, and the third cabinet. A first ion rod, a second ion rod, a third ion rod, and a fourth ion rod are also respectively installed on one side of the electrical box, the first cabinet, the second cabinet, and the third cabinet. The first ion rod, the second ion rod, the third ion rod, and the fourth ion rod are respectively disposed above and below the first material strip transition plate, the second material strip transition plate, the third material strip transition plate, and the fourth material strip transition plate. A first guide roller, a second guide roller, and a third guide roller are respectively provided on one side of the electrical box, the first cabinet, and the third cabinet, and above and below the first material strip transition plate, the second material strip transition plate, and the fourth material strip transition plate.

[0012] Furthermore, a first guide rack, a second guide rack, and a third guide rack are respectively installed on one side of the first cabinet, the second cabinet, and the third cabinet.

[0013] Furthermore, a first coating mechanism, a material pulling and coating mechanism, a first material pulling mechanism, and a second material pulling mechanism are respectively provided above the first material strip transition plate, the second material strip transition plate, the third material strip transition plate, and the fourth material strip transition plate. The first coating mechanism, the material pulling and coating mechanism, the first material pulling mechanism, and the second material pulling mechanism are respectively mounted on the electrical box, the first cabinet, the second cabinet, and the third cabinet.

[0014] Compared with the prior art, the advantages of this utility model are as follows: By using a feeding machine, a screen printing machine, a cutting machine, and a cleaning and collecting machine, four types of stand-alone equipment can be connected in a line. Each stand-alone machine, or any two or three of them, can be freely recombined and work independently, which is highly flexible. They can be arranged and combined as needed. According to actual processing requirements, the feeding machine can be used alone for lamination, the screen printing machine can be used alone for screen printing, the cutting machine can be used alone for cutting, and the cleaning and collecting machine can be used alone for plasma cleaning of products. Alternatively, it can be set up to use only two or three of the machines in combination, with the unused machine shielded from signal transmission. The operator only needs to pass the material belt through the adsorption worktable of that machine. Attached Figure Description

[0015] Figure 1 This is a schematic diagram of the overall three-dimensional structure of this utility model.

[0016] Figure 2 This is a schematic diagram of the overall working state process structure of this utility model.

[0017] Figure 3 This is a three-dimensional structural diagram of the feeding machine in this utility model.

[0018] Figure 4 This is a three-dimensional structural diagram of the screen printing machine in this utility model.

[0019] Figure 5 This is a schematic diagram of the three-dimensional structure of the cutting machine in this utility model.

[0020] Figure 6 This is a three-dimensional structural diagram of the cleaning and collecting machine in this utility model.

[0021] In the picture:

[0022] 1. Feeding machine; 101. Base; 102. First foot cup; 103. Electrical box; 104. Product feeding shaft; 105. Bottom film feeding shaft; 106. First material belt transition plate; 107. First guide roller; 108. First coating mechanism; 109. First ion bar;

[0023] 2. Screen printing machine; 201. Second foot cup; 202. First cabinet; 203. First guide rack; 204. First Y-axis; 205. First X-axis; 206. First Z-axis; 207. Ink doctor blade; 208. Screen tray; 209. Protective film feeding shaft; 210. Second guide roller; 211. Second conveyor belt transition plate; 212. Material pulling and coating mechanism; 213. Second ion bar; 214. First adsorption worktable;

[0024] 3. Cutting machine; 301. Third foot cup; 302. Second cabinet; 303. Second guide rack; 304. Second Y-axis; 305. Second X-axis; 306. Second Z-axis; 307. Cutting head; 308. Second adsorption worktable; 309. Third material belt transition plate; 310. First material pulling mechanism; 311. Third ion bar;

[0025] 4. Cleaning and receiving machine; 401. Fourth foot cup; 402. Third cabinet; 403. Third guide rack; 404. Third Y-axis; 405. Third X-axis; 406. Third Z-axis; 407. Plasma cleaning head; 408. Third adsorption worktable; 409. Fourth material belt transition plate; 410. Second material pulling mechanism; 411. Dispenser; 412. Third guide roller; 413. Fourth ion bar; 414. Edge material receiving shaft; 415. Product film receiving shaft. Detailed Implementation

[0026] Referring now to specific embodiments of the present invention, examples of which are illustrated in the accompanying drawings. Although the present invention will be described in conjunction with specific embodiments, it will be understood that it is not intended to limit the present invention to the described embodiments. Rather, it is intended to cover variations, modifications, and equivalents included within the spirit and scope of the present invention as defined by the appended claims. It should be noted that the method steps described herein can be implemented by any functional block or functional arrangement, and any functional block or functional arrangement can be implemented as a physical entity or a logical entity, or a combination of both.

[0027] To enable those skilled in the art to better understand this utility model, the present utility model will be further described in detail below with reference to the accompanying drawings and specific embodiments.

[0028] Note: The examples described below are merely specific examples and are not intended to limit the embodiments of this utility model to the specific steps, values, conditions, data, order, etc. Those skilled in the art can utilize the concept of this utility model to construct more embodiments not mentioned herein by reading this specification.

[0029] In traditional electronic thin film processing, the general working state is single-machine operation, that is, there is no online operation between processes, and it is mostly a semi-manual and semi-automatic method. This results in low efficiency and lack of humanization in electronic thin film processing. Moreover, there is no intelligent control interface and control system. Since the semi-manual and semi-automatic production process is difficult to control, it leads to poor product consistency and low pass rate. Therefore, a roll-to-roll electronic thin film screen printing, cutting and cleaning processing equipment is needed to solve the above problems.

[0030] In order to solve the problems existing in the above-mentioned electronic film screen printing process, this utility model proposes a roll-to-roll electronic film screen printing cutting and cleaning processing equipment.

[0031] Please see Figure 1 and Figure 2 It includes a feeding machine 1, a screen printing machine 2, a cutting machine 3, and a cleaning and collecting machine 4. The feeding machine 1, screen printing machine 2, cutting machine 3, and cleaning and collecting machine 4 are arranged in sequence and are spaced apart from each other. A film is placed between the feeding machine 1, screen printing machine 2, cutting machine 3, and cleaning and collecting machine 4.

[0032] like Figure 1 and Figure 2 As shown, the overall device consists of a feeding machine 1, a screen printing machine 2, a cutting machine 3, and a cleaning and collecting machine 4. The feeding machine 1, screen printing machine 2, cutting machine 3, and cleaning and collecting machine 4 are arranged in sequence in this application, but are not limited to this combination. Since the feeding machine 1, screen printing machine 2, cutting machine 3, and cleaning and collecting machine 4 are not completely fixed and are set at intervals, the combination order can be shuffled as needed. At the same time, the multiple devices in this application are equipped with an integrated processing technology of lamination, screen printing, cutting, and cleaning, which has extremely high processing efficiency, fully unmanned operation, and ensures product stability and pass rate.

[0033] Please see Figure 1 , Figure 2 and Figure 3 The feeding machine 1 includes an L-shaped base 101 and an electrical box 103. The electrical box 103 is vertically arranged. A product feeding shaft 104 is rotated on one side of the electrical box 103, and a bottom film feeding shaft 105 is rotated on the other side of the electrical box 103. The bottom film feeding shaft 105 is located below the product feeding shaft 104.

[0034] like Figure 1 , Figure 2 and Figure 3 As shown, the main body of the feeding machine 1 is a base 101 and an electrical box 103. The electrical box 103 is vertically fixed to one side of the base 101, so that the base 101 and the electrical box 103 form an L-shaped structure. The product feeding shaft 104 and the bottom film feeding shaft 105 are rotated on one side of the electrical box 103. The product feeding shaft 104 and the bottom film feeding shaft 105 are arranged vertically. The electrical box 103 provides power to the product feeding shaft 104 and the bottom film feeding shaft 105 to ensure that the product feeding shaft 104 and the bottom film feeding shaft 105 can rotate.

[0035] Specifically, the function of the feeding machine 1 is to feed materials. A roll of product film is placed on the product feeding shaft 104, a roll of bottom film is placed on the bottom film feeding shaft 105, and a roll of protective film is placed on the protective film feeding shaft 209 of the screen printing machine 2. After the feeding is completed, the air expansion shafts of the product feeding shaft 104, the bottom film feeding shaft 105, and the protective film feeding shaft 209 are inflated and expanded to hold the material rolls in place, preventing them from falling off and facilitating processing.

[0036] Please see Figure 1 , Figure 2 and Figure 4 The screen printing machine 2 includes a first cabinet 202 and a first moving component installed on the first cabinet 202. An ink doctor blade 207 is installed on the first moving component. A first adsorption worktable 214 is provided on the first cabinet 202 and is located below the ink doctor blade 207. A screen plate groove 208 is engaged on the first adsorption worktable 214. A protective film feeding shaft 209 is provided on one side of the first cabinet 202 near the top.

[0037] like Figure 1 , Figure 2 and Figure 4 As shown, the main body of the screen printing machine 2 is composed of a first cabinet 202, and a first moving component is installed on the top of the first cabinet 202. A protruding plate extends from the right side of the first cabinet 202, which can rotate the protective film feeding shaft 209 onto the protruding plate. A protective film is installed on the protective film feeding shaft 209 to ensure subsequent material feeding. An ink doctor blade 207 is installed at the output end of the first moving component. Below the ink doctor blade 207 is a recessed first adsorption worktable 214. The first moving component is arranged around the first adsorption worktable 214. At the same time, a screen plate groove 208 is provided on the first adsorption worktable 214 to ensure adsorption of the material strip and prevent movement during processing.

[0038] Specifically, when the screen printing machine 2 starts working, the first adsorption worktable 214 adsorbs the material strip; the first moving component drives the ink squeegee 207 to move to the position where screen printing is required, the ink squeegee 207 descends, and scrapes the ink in the screen groove 208 once along the trajectory set by the system, so that the ink is attached to the product.

[0039] After screen printing is completed, the vacuum of the first adsorption worktable 214 is turned off, and the material pulling and coating mechanism 212 pulls the screen-printed material strip out of the first adsorption worktable 214. At the same time, it also pulls the material strip that is about to be screen-printed onto the first adsorption worktable 214. The above actions are repeated to continue the cycle operation.

[0040] Please see Figure 1 , Figure 2 and Figure 5 The cutting machine 3 includes a second cabinet 302 and a second moving component installed on the second cabinet 302. A cutting head 307 is installed on the second moving component. A second adsorption worktable 308 is provided on the second cabinet 302 and is located below the cutting head 307.

[0041] like Figure 1 , Figure 2 and Figure 5As shown, the main structure of the cutting machine 3 is the second cabinet 302. The second moving component installed on the second cabinet 302 has the same structure as the first moving component. The output end of the second moving component is equipped with a cutting head 307. The second cabinet 302 is provided with a recessed second adsorption worktable 308. The second adsorption worktable 308 is located below the cutting head 307, and the second moving component is arranged around the second adsorption worktable 308.

[0042] Specifically, when the second adsorption worktable 308 is vacuumed, the material strip is firmly adsorbed. The second moving component drives the cutting head 307 to move along a predetermined trajectory. At the same time, the laser built into the cutting head 307 emits light. The beam is transmitted to the cutting head 307 through an optical fiber. The cutting head 307 is a device that focuses the laser beam into a high-energy micro-spot. When the spot comes into contact with the product, the material on the product surface instantly vaporizes, completing the cutting process.

[0043] Please see Figure 1 , Figure 2 and Figure 6 The cleaning and receiving machine 4 includes a third cabinet 402 and a third moving component installed on the third cabinet 402. A plasma cleaning head 407 is installed on the third moving component. A third adsorption worktable 408 is provided on the third cabinet 402 and is located below the plasma cleaning head 407. A lever 411 is installed on one side of the third cabinet 402 near the third moving component. A frame material receiving shaft 414 and a product film receiving shaft 415 are rotated on one side of the third cabinet 402 near the lever 411. The frame material receiving shaft 414 and the product film receiving shaft 415 are arranged vertically.

[0044] like Figure 1 , Figure 2 and Figure 6 As shown, the main structure of the cleaning and collecting machine 4 is the third cabinet 402, and the third moving component is set on the third cabinet 402 with the same structure as the first / second moving component. The output end of the third moving component is equipped with a plasma cleaning head 407, and a protruding plate is also set on the right side of the third cabinet 402. A knife 411 is installed on the protruding plate. The plasma cleaning head 407 cleans the material strip, and the top layer of the three-layer material strip is peeled off after the material strip passes through the knife 411. The peeled material strip is wound up by the edge material collecting shaft 414, and the product is collected into a roll by the product film collecting shaft 415.

[0045] Please see Figure 4 , Figure 5 and Figure 6The first moving component, the second moving component, and the third moving component respectively include a first Y-axis 204, a first X-axis 205, and a first Z-axis 206; a second Y-axis 304, a second X-axis 305, and a second Z-axis 306; and a third Y-axis 404, a third X-axis 405, and a third Z-axis 406.

[0046] like Figure 4 , Figure 5 and Figure 6 As shown, the first moving component, the second moving component, and the third moving component have the same structure, and are mainly composed of the Y-axis, X-axis, and Z-axis. The Y-axis, X-axis, and Z-axis are all driven by linear motors or cylinders, so that the ink doctor blade 207, the cutting head 307, and the plasma cleaning head 407 connected on the Y-axis, X-axis, and Z-axis can move back and forth, left and right, up and down, ensuring that the ink doctor blade 207, the cutting head 307, and the plasma cleaning head 407 can process the material strip.

[0047] Please see Figures 1-6 The feeding machine 1, screen printing machine 2, cutting machine 3 and washing and collecting machine 4 are respectively equipped with a first foot cup 102, a second foot cup 201, a third foot cup 301 and a fourth foot cup 401. The first foot cup 102, the second foot cup 201, the third foot cup 301 and the fourth foot cup 401 are all designed at the four corners.

[0048] like Figures 1-6 As shown, the bottom of the feeding machine 1, screen printing machine 2, cutting machine 3 and cleaning and collecting machine 4 are all equipped with feet, which can support and fix the feeding machine 1, screen printing machine 2, cutting machine 3 and cleaning and collecting machine 4, and can be moved to arrange and combine them.

[0049] Please continue reading. Figures 1-6A first material strip transition plate 106, a second material strip transition plate 211, a third material strip transition plate 309, and a fourth material strip transition plate 409 are respectively installed on one side of the electrical box 103, the first cabinet 202, the second cabinet 302, and the third cabinet 402. A first ion rod 109, a second ion rod 213, a third ion rod 311, and a fourth ion rod 413 are also respectively installed on one side of the electrical box 103, the first cabinet 202, the second cabinet 302, and the third cabinet 402. The first ion rod 109, the second ion rod 213, the third ion rod 311, and the fourth ion rod 413 are respectively positioned above and below the sides of the first material strip transition plate 106, the second material strip transition plate 211, the third material strip transition plate 309, and the fourth material strip transition plate 409, and are located on one side of the electrical box 103, the first cabinet 202, and the third cabinet 402, and are situated on the first material strip transition plate 106. The second material belt transition plate 211 and the fourth material belt transition plate 409 are respectively provided with a first guide roller 107, a second guide roller 210 and a third guide roller 412 on their upper and lower sides. The first cabinet 202, the second cabinet 302 and the third cabinet 402 are respectively provided with a first guide frame 203, a second guide frame 303 and a third guide frame 403 on one side. The first material belt transition plate 106, the second material belt transition plate 211, the third material belt transition plate 309 and the fourth material belt transition plate 409 are respectively provided with a first coating mechanism 108, a material pulling and coating mechanism 212, a first material pulling mechanism 310 and a second material pulling mechanism 410 on their upper and lower sides. The first coating mechanism 108, the material pulling and coating mechanism 212, the first material pulling mechanism 310 and the second material pulling mechanism 410 are respectively mounted on the electrical box 103, the first cabinet 202, the second cabinet 302 and the third cabinet 402.

[0050] like Figures 1-6 As shown, loading and unloading: a person manually places one roll of product film onto the product feeding shaft 104, one roll of bottom film onto the bottom film feeding shaft 105, and one roll of protective film onto the protective film feeding shaft 209. After loading is completed, the air expansion shafts of the product feeding shaft, bottom film feeding shaft 105, and protective film feeding shaft 209 are inflated to lock the rolls. When the product on the frame material receiving shaft 414 and the product film receiving shaft 415 reaches a certain quantity, the person manually presses the machine pause button. The air expansion shafts on the frame material receiving shaft and the product film receiving shaft 415 deflate and shrink, and the person manually removes the rolls.

[0051] The working process of feeding machine 1: The product film and the base film are manually fed together through the first guide roller 107, the first material belt transition plate 106, and the first coating mechanism 108. After the two rubber rollers in the first coating mechanism 108 press the material belt of the product film and the base film together, the servo motor drives the rubber rollers. Under the pressing and rotation of the rubber rollers, the product film and the base film are bonded together. After the coating is completed, the material belt passes through the middle gap of the first ion bar 109 to eliminate the static electricity on the upper and lower surfaces in the gap.

[0052] Screen printing machine 2 working process: The material strip passes through the first guide frame 203, through the first Y-axis 204 and the first adsorption worktable 214, the second material strip transition plate 211, and the material pulling and coating mechanism 212. At the same time, the protective film on the protective film feeding shaft 209 passes through the second guide roller 210 and the material pulling and coating mechanism 212. When the two rubber rollers in the material pulling and coating mechanism 212 press the material strip together, the servo motor drives the rubber rollers. Under the pressing and rotation of the rubber rollers, the material strip adheres the protective film and the product film / base film together. The three-layer material strip that has been adhered passes through the middle gap of the second ion bar 213 to eliminate the static electricity on the upper and lower surfaces in the gap.

[0053] When the screen printing machine 2 starts working, the second adsorption worktable 308 adsorbs the material strip to prevent movement. The first Y-axis 204, the first X-axis 205, and the first Z-axis 206 drive the ink squeegee 207 to the position where screen printing is required. The ink squeegee 207 descends and scrapes the ink in the screen groove 208 along the trajectory set by the system once, so that the ink is attached to the product. When the screen printing is completed, the vacuum of the first adsorption worktable 214 is turned off, and the material pulling and coating mechanism 212 pulls the screen-printed material strip out of the first adsorption worktable 214. At the same time, it also pulls the material strip that is about to be screen-printed onto the first adsorption worktable 214. The above actions are repeated to continue the cycle operation.

[0054] The working process of the cutting machine 3: The material strip passes through the second guide frame 303, through the second Y-axis 304 and the second adsorption worktable 308, the third material strip transition plate 309, and the first pulling mechanism 310. At the same time, after the second adsorption worktable 308 turns on the vacuum, it firmly adsorbs the material strip. The second Y-axis 304, the second X-axis 305, and the second Z-axis 306 drive the cutting head 307 to move along a predetermined trajectory. At the same time, the laser emits light, and the beam is transmitted to the cutting head 307 by optical fiber. The cutting head 307 is a device that focuses the laser beam into a high-energy micro-spot. When the spot comes into contact with the product, the material on the surface of the product is instantly vaporized, completing the cutting process.

[0055] After cutting is completed, the vacuum of the second adsorption worktable 308 is turned off, and the two rubber rollers in the first material pulling mechanism 310 press the material strip together. The servo motor drives the rubber rollers, and the material strip is pulled out under the pressure and rotation of the rubber rollers. The material strip passes through the middle gap of the third ion bar 311, and the static electricity on the upper and lower surfaces is eliminated in the gap. After cutting is completed, the first material pulling mechanism 310 pulls the cut material strip out of the second adsorption worktable 308. At the same time, it also pulls the material strip that is about to be cut onto the second adsorption worktable 308. The above actions are repeated to continue the cycle operation.

[0056] The working process of the cleaning and receiving machine 4: The material belt passes through the third guide frame 403, through the third Y-axis 404 and the third adsorption worktable 408, the fourth material belt transition plate 409, and pulls the second material mechanism. At the same time, when the vacuum of the third adsorption worktable 408 is turned on, the material belt is firmly adsorbed. The third Y-axis 404, the third X-axis 405, and the third Z-axis 406 drive the plasma cleaning head 407 to move along a predetermined trajectory. While moving, the plasma cleaning head 407 emits rotating plasma to clean the product surface.

[0057] After cleaning, the vacuum of the third adsorption worktable 408 is closed, and the two rubber rollers in the second material pulling mechanism 410 press the material strip together. The servo motor drives the rubber rollers, and the material strip is pulled out under the pressure and rotation of the rubber rollers. The material strip passes through the peeler 411, which peels off the top layer of the three-layer material strip (commonly known as waste strip or waste frame) and separates it from the product film / bottom film. The peeled material strip is guided by the two third guide rollers 412 above the peeler 411 and collected into a roll by the edge material take-up shaft 414. The product film / bottom film is guided by the two third guide rollers 412 below the peeler 411, and a fourth ion bar 413 is set between the two third guide rollers 412. The material strip passes through the middle gap of the fourth ion bar 413, where the static electricity on the upper and lower surfaces is eliminated, and it is collected into a roll by the product film take-up shaft 415.

[0058] When using this utility model, the feeding machine 1, screen printing machine 2, cutting machine 3 and washing and collecting machine 4 can be arranged and combined as needed so that the product film can be processed by the required machines without manual operation, thereby improving processing efficiency and product quality.

[0059] In the description of this utility model, it should be noted that the terms "upper," "lower," etc., indicating the orientation or positional relationship are based on the orientation or positional relationship shown in the accompanying drawings, and are only for the convenience of describing this utility model and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of this utility model. Unless otherwise expressly specified and limited, the terms "installed," "connected," and "linked" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; they can refer to the internal connection of two components. For those skilled in the art, the specific meaning of the above terms in this utility model can be understood according to the specific circumstances.

[0060] It should be noted that in this invention, relational terms such as "first" and "second" are used merely to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such a process, method, article, or apparatus. Without further limitations, an element defined by the phrase "comprising one..." does not exclude the presence of other identical elements in the process, method, article, or apparatus that includes said element.

[0061] The above description is merely a specific embodiment of the present invention, enabling those skilled in the art to understand or implement the present invention. Various modifications to these embodiments will be readily apparent to those skilled in the art, and the general principles defined herein may be implemented in other embodiments without departing from the spirit or scope of the present invention. Therefore, the present invention is not to be limited to the embodiments shown herein, but is to be accorded the widest scope consistent with the principles and novel features of the present invention.

Claims

1. A roll-to-roll electronic thin film screen printing, cutting, cleaning, and processing equipment, characterized in that, It includes a feeding machine (1), a screen printing machine (2), a cutting machine (3), and a cleaning and collecting machine (4). The feeding machine (1), the screen printing machine (2), the cutting machine (3), and the cleaning and collecting machine (4) are arranged in sequence and are spaced apart from each other. A film is provided between the feeding machine (1), the screen printing machine (2), the cutting machine (3), and the cleaning and collecting machine (4).

2. The roll-to-roll electronic thin film screen printing, cutting, cleaning, and processing equipment as described in claim 1, characterized in that, The feeding machine (1) includes an L-shaped base (101) and an electrical box (103). The electrical box (103) is vertically arranged. A product feeding shaft (104) is rotated on one side of the electrical box (103), and a bottom film feeding shaft (105) is rotated on the other side of the electrical box (103). The bottom film feeding shaft (105) is located below the product feeding shaft (104).

3. The roll-to-roll electronic thin film screen printing, cutting, and cleaning processing equipment as described in claim 2, characterized in that, The screen printing machine (2) includes a first cabinet (202) and a first moving component installed on the first cabinet (202). An ink doctor blade (207) is installed on the first moving component. A first adsorption worktable (214) is provided on the first cabinet (202) and the first adsorption worktable (214) is located below the ink doctor blade (207). A screen plate groove (208) is snapped onto the first adsorption worktable (214). A protective film feeding shaft (209) is rotated on one side of the first cabinet (202) near the top.

4. The roll-to-roll electronic thin film screen printing, cutting, cleaning, and processing equipment as described in claim 3, characterized in that, The cutting machine (3) includes a second cabinet (302) and a second moving component installed on the second cabinet (302). A cutting head (307) is installed on the second moving component. A second adsorption worktable (308) is provided on the second cabinet (302) and the second adsorption worktable (308) is located below the cutting head (307).

5. The roll-to-roll electronic thin film screen printing, cutting, and cleaning processing equipment as described in claim 4, characterized in that, The cleaning and collecting machine (4) includes a third cabinet (402) and a third moving component installed on the third cabinet (402). A plasma cleaning head (407) is installed on the third moving component. A third adsorption worktable (408) is provided on the third cabinet (402) and the third adsorption worktable (408) is located below the plasma cleaning head (407). A lever (411) is installed on one side of the third cabinet (402) near the third moving component. A frame material collecting shaft (414) and a product film collecting shaft (415) are rotated on one side of the third cabinet (402) near the lever (411). The frame material collecting shaft (414) and the product film collecting shaft (415) are arranged vertically.

6. The roll-to-roll electronic thin film screen printing, cutting, and cleaning processing equipment as described in claim 5, characterized in that, The first moving component, the second moving component and the third moving component respectively include a first Y-axis (204), a first X-axis (205) and a first Z-axis (206); a second Y-axis (304), a second X-axis (305) and a second Z-axis (306); a third Y-axis (404), a third X-axis (405) and a third Z-axis (406).

7. The roll-to-roll electronic thin film screen printing, cutting, cleaning, and processing equipment as described in claim 1, characterized in that, The feeding machine (1), the screen printing machine (2), the cutting machine (3) and the cleaning and collecting machine (4) are respectively equipped with a first foot cup (102), a second foot cup (201), a third foot cup (301) and a fourth foot cup (401), and the first foot cup (102), the second foot cup (201), the third foot cup (301) and the fourth foot cup (401) are all designed at the four corners.

8. The roll-to-roll electronic thin film screen printing, cutting, cleaning, and processing equipment as described in claim 6, characterized in that, A first material strip transition plate (106), a second material strip transition plate (211), a third material strip transition plate (309), and a fourth material strip transition plate (409) are respectively installed on one side of the electrical box (103), the first cabinet (202), the second cabinet (302), and the third cabinet (402). A first ion rod (109), a second ion rod (213), a third ion rod (311), and a fourth ion rod (413) are also respectively installed on one side of the electrical box (103), the first cabinet (202), the second cabinet (302), and the third cabinet (402). 213) The third ion bar (311) and the fourth ion bar (413) are respectively disposed on the upper and lower sides of the first material strip transition plate (106), the second material strip transition plate (211), the third material strip transition plate (309) and the fourth material strip transition plate (409). The electrical box (103), the first cabinet (202) and the third cabinet (402) are respectively provided on the upper and lower sides of the first material strip transition plate (106), the second material strip transition plate (211) and the fourth material strip transition plate (409). The first guide roller (107), the second guide roller (210) and the third guide roller (412) are respectively provided on the upper and lower sides of the first material strip transition plate (106), the second material strip transition plate (211) and the fourth material strip transition plate (409).

9. The roll-to-roll electronic thin film screen printing, cutting, cleaning, and processing equipment as described in claim 8, characterized in that, A first guide rack (203), a second guide rack (303), and a third guide rack (403) are respectively installed on one side of the first cabinet (202), the second cabinet (302), and the third cabinet (402).

10. The roll-to-roll electronic thin film screen printing, cutting, cleaning, and processing equipment as described in claim 8, characterized in that, Above the first material strip transition plate (106), the second material strip transition plate (211), the third material strip transition plate (309), and the fourth material strip transition plate (409) are respectively provided a first film coating mechanism (108), a material pulling film coating mechanism (212), a first material pulling mechanism (310), and a second material pulling mechanism (410). The first film coating mechanism (108), the material pulling film coating mechanism (212), the first material pulling mechanism (310), and the second material pulling mechanism (410) are respectively mounted on the electrical box (103), the first cabinet (202), the second cabinet (302), and the third cabinet (402).