Adhesive layer coating device for aluminum-based copper-clad plate

By introducing glue coating treatment components and cleaning ball columns into the aluminum-based copper clad coating device, the problem of irritating gases generated by the agitated glue liquid is solved, uniform coating and environmental protection are achieved, and coating quality and health and safety are improved.

CN120325481AInactive Publication Date: 2025-07-18ZHUHAI LANGDE WANTONG TECH CO LTD
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Patent Information

Application Number
CN202510812848.2
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-06-18
Publication Date
2025-07-18
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

The existing aluminum-based copper clad coating device produces irritating gas when stirring the glue, which endangers the health of staff and pollutes the environment. The coating thickness control accuracy is low, and it is prone to stripe defects.

Method used

The glue coating treatment components are adopted, including arc-shaped protective cover, gas treatment components, interfering object treatment components and cleaning ball columns. Through the cooperation of rack blocks and sliding insert blocks, the glue liquid is uniformly applied and gas absorption is achieved, preventing the interference from falling again and improving the coating quality.

Benefits of technology

Effectively absorb irritating gases, prevent the glue liquid from coagulating, improve the uniformity of coating and cleaning efficiency, ensure the glue coating effect, and protect the environment and health.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of aluminum-based copper-clad plate production, in particular to an aluminum-based copper-clad plate adhesive layer coating device. According to the technical scheme, the device comprises a raw material machining support, a raw material machining conveying assembly is installed on one side of the raw material machining support, a machining conveying frame used for conveying coating machining is installed at the top of the raw material machining support, and corresponding position adjusting assemblies are installed on the left side and the right side of the machining conveying frame correspondingly; and a gluing treatment assembly is mounted on one side of the corresponding position adjusting assembly. The advancing speed of a rack block is higher than that of a coating, a cleaning ball column is lifted upwards along with the rack block, and interferents with the surfaces not completely treated can be prevented from falling onto a section of the coating which is cleaned in front again; and the cleaning ball column gradually falls onto the upper uncleaned section of the coating for treatment, so that the gluing effect of the coating is improved.
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Description

Technical Field

[0001] The present invention relates to the technical field of the production of aluminum-based copper clad laminates, and particularly to an aluminum-based copper clad laminate adhesive layer coating device. Background Art

[0002] Aluminum-based copper clad laminates (aluminum substrates) are widely used in fields such as LED lighting, automotive electronics, and 5G base stations due to their certain thermal conductivity and mechanical strength. Their core process is adhesive layer coating, where a thermally conductive insulating adhesive (such as epoxy resin) needs to be evenly coated on the surface of the aluminum plate, and the thickness is usually controlled between 50 and 200 μm, which directly affects the heat dissipation efficiency and electrical insulation performance.

[0003] The current coating technologies are divided into two types. Among them, blade coating extrudes the adhesive liquid through a fixed blade, but the thickness control accuracy is low (±10 μm), and stripe defects are likely to occur. The roll coating technology uses a combination of a coating roller and an extrusion roller, and adjusts the adhesive layer thickness through the roller spacing. The present application uses the roll coating method to process aluminum-based copper clad laminates.

[0004] In the patent document with the publication number CN215243556U that has been published, an aluminum-based copper clad laminate adhesive layer coating device is disclosed, including a spraying box. A first motor is fixed to the inner bottom wall of the spraying box. The driving end of the first motor is fixedly connected to a first rotating shaft. The end of the first rotating shaft away from the first motor is fixedly connected to a bearing plate. Two first electric push-pull rods are fixed to the inner side wall of the spraying box. The telescopic ends of the two first electric push-pull rods are fixedly connected to two connecting rods. The ends of the two connecting rods away from the first electric push-pull rods are fixedly connected to two moving covers. By setting a motor that moves up and down to drive the stirring blades to stir the static adhesive liquid inside the adhesive material box and then spraying the adhesive liquid, the uniformity during spraying can be ensured.

[0005] When the above device is in use, the mixing of the adhesive liquid is realized by using a stirring mechanism, so that the spraying component sprays the adhesive liquid more evenly. However, when the adhesive liquid is stirred, a large amount of irritating gas is more likely to circulate inside it, which causes harm to the physical and mental health of the staff and pollutes the surrounding air and processing environment.

[0006] Therefore, the present application proposes an aluminum-based copper clad laminate adhesive layer coating device. Summary of the Invention

[0007] The object of the present invention is to address the problem in the background art that the mixing of the adhesive liquid is realized by using a stirring mechanism, so that the spraying component sprays the adhesive liquid more evenly. However, when the adhesive liquid is stirred, a large amount of irritating gas is more likely to circulate inside it, which causes harm to the physical and mental health of the staff and pollutes the surrounding air and processing environment, and proposes an aluminum-based copper clad laminate adhesive layer coating device.

[0008] Technical solution of the present invention: An adhesive layer coating device for aluminum-based copper clad laminates, including a raw material processing support. On one side of the raw material processing support, a raw material processing transmission component is installed. On the top of the raw material processing support, a processing transmission frame for coating processing is installed. On both the left and right sides of the processing transmission frame, corresponding position adjustment components are installed. On one side of the corresponding position adjustment component, a glue coating processing component is installed. The glue coating processing component includes an arc-shaped protective cover fixedly installed on the top of the raw material processing support. In the center of the bottom of the arc-shaped protective cover, a glue transmission pipe is fixedly installed. On one side of the glue transmission pipe, a poisonous gas processing component is fixedly installed. On the other side of the glue transmission pipe, an interference object processing component is fixedly installed. At the bottom of the interference object processing component, a first transmission pipe is fixedly installed. At the bottom of the first transmission pipe, an interference object central transmission frame is fixedly installed. At the bottom of the interference object central transmission frame, a cleaning ball column is rotatably installed. At the bottom of the poisonous gas processing component, a second transmission pipe is fixedly installed. At the bottom of the second transmission pipe, a limit card frame is fixedly installed. At the bottom of the limit card frame, a plurality of air suction pipes are fixedly installed. The glue coating processing component further includes a hollow transmission pipe fixedly installed inside the interference object central transmission frame. The diameter of the cavity of the hollow transmission pipe gradually decreases from top to bottom.

[0009] Optionally, the raw material processing transmission component includes a raw material transmission roller rotatably installed on one side of the raw material processing support. On the outer side of the raw material transmission roller, a coating is rotatably installed. The coating is attached to the upper surface of the processing transmission frame.

[0010] Optionally, the corresponding position adjustment component includes a second gear arranged on the outer side of the processing transmission frame. The outer side of the second gear is meshed with a first gear. On the top of the raw material processing support, a cross-rail positioning frame is fixedly installed. The first gear passes through one side of the cross-rail positioning frame and is fixedly installed with a turntable.

[0011] Optionally, on the side of the turntable away from the first gear, a protruding positioning block is fixedly installed. On the outer side of the protruding positioning block, a positioning slide rail rod is slidably installed. On the side of the cross-rail positioning frame away from the first gear, a positioning gear is rotatably installed. The positioning gear is fixedly installed with the positioning slide rail rod.

[0012] Optionally, a rack block is slidably installed inside the cross-rail positioning frame. The rack block is arranged in a meshed state with the positioning gear. On one side of the rack block, a hollow frame is fixedly installed.

[0013] Optionally, on one side of the hollow frame, a slide rail block is fixedly installed. On the inner wall of the cross-rail positioning frame, a slide rail is provided. Inside the slide rail block, a sliding insertion rod block is slidably installed. The sliding insertion rod block passes through one side of the slide rail block and is slidably installed inside the slide rail. The sliding insertion rod block passes through one side of the cross-rail positioning frame and is fixedly installed with a rectangular positioning body.

[0014] Optionally, the interference central transmission frame is fixedly installed on one side of the rectangular positioning body. A hollow clamping pipe is fixedly installed at the bottom of the hollow transmission pipe. A clamping block is slidably installed inside the hollow transmission pipe. A spring is fixedly installed between the clamping block passing through one side of the hollow transmission pipe and the hollow clamping pipe. A fixing rod is fixedly installed on the side of the clamping block passing through the spring. The cleaning ball column is rotatably installed inside the fixing rod.

[0015] Optionally, a pushing clamping frame is fixedly installed on the top of the rectangular positioning body. A limiting clamping frame is slidably installed on one side of the pushing clamping frame. The limiting clamping frame is slidably installed on the top of the raw material processing support. A sliding combined pipe is fixedly installed at the bottom of the pushing clamping frame. The sliding combined pipe is fixedly installed on the top of the suction pipe.

[0016] In summary, the present application includes at least one of the following beneficial technical effects: 1. Since the advancing speed of the rack block is greater than that of the coating, the cleaning ball column is lifted upward accordingly, which can prevent the interference substances that have not been fully processed on the surface from falling back onto the coated area that has been cleaned in front. At the same time, when the sliding insertion rod block moves away, the cleaning ball column gradually drops onto the unprocessed coated area above for treatment, thereby improving the coating effect of the coating. 2. When the clamping block is not interfered by external forces or only affected by gravity, the clamping block fits with the narrower position at the bottom of the hollow transmission pipe. The hollow transmission pipe can suck the interference substances previously stored inside it. During the upward movement of the rectangular positioning body driving the cleaning ball column, the clamping block closes with the hollow transmission pipe, so that the garbage inside the hollow transmission pipe will not fall from below, thereby improving the cleaning quality. 3. During the process of the sliding combined pipe absorbing toxic gases, some glue-attached toxic gases may solidify in the sliding combined pipe later, resulting in the inability of the sliding combined pipe to inhale normally. Then, during the telescopic movement of the sliding combined pipe, it effectively prevents the blockage of the internal glue layer. BRIEF DESCRIPTION OF THE DRAWINGS

[0017] Figure 1 The structural schematic diagram of the aluminum-based copper clad laminate glue layer coating device of the present invention is given; Figure 2 It is the structural schematic diagram of the raw material processing and transmission component of the present invention; Figure 3 It is the structural schematic diagram of the second gear of the present invention; Figure 4 It is the structural schematic diagram of the protruding positioning block of the present invention; Figure 5 It is the structural schematic diagram of the glue transmission pipe of the present invention; Figure 6Schematic structural diagram of the cleaning ball column of the present invention; Figure 7 Schematic structural diagram of the interference object central transmission frame of the present invention; Figure 8 Schematic structural diagram of the sliding combined pipeline of the present invention.

[0018] Reference numerals: 1, raw material processing support; 2, raw material processing transmission assembly; 201, raw material transmission roller; 202, coating; 3, processing transmission frame; 4, corresponding position adjustment assembly; 401, horizontal rail positioning frame; 402, rack block; 403, first gear; 404, protruding positioning block; 405, turntable; 406, positioning slide rail rod; 407, slide rail; 408, positioning gear; 409, hollow frame; 410, slide rail block; 411, sliding insertion rod block; 412, rectangular positioning body; 413, second gear; 5, glue application processing assembly; 501, arc-shaped protective cover; 502, glue transmission pipe; 503, poison gas treatment assembly; 504, interference object treatment assembly; 505, first transmission pipe; 506, interference object central transmission frame; 507, second transmission pipe; 508, limit clamping frame; 509, pushing clamping frame; 510, cleaning ball column; 511, suction pipe; 512, fixed rod; 513, hollow clamping pipe; 514, spring; 515, hollow transmission pipe; 516, clamping block; 517, sliding combined pipeline. Detailed implementation manners

[0019] Next, the technical solutions of the present invention will be clearly and completely described in conjunction with the accompanying drawings. Obviously, the described embodiments are part of the embodiments of the present invention, rather than all of the embodiments.

[0020] Generally, the components of the embodiments of the present invention described and shown in the accompanying drawings here can be arranged and designed in various different configurations. Therefore, the following detailed description of the embodiments of the present invention provided in the accompanying drawings is not intended to limit the scope of the claimed present invention, but merely represents the selected embodiments of the present invention.

[0021] Based on the embodiments in the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.

[0022] In the description of the present invention, it should be noted that the orientation or positional relationship indicated by the terms "center", "upper", "lower", "left", "right", "vertical", "horizontal", "inner", "outer", etc. is based on the orientation or positional relationship shown in the drawings. It is only for the convenience of describing the present invention and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore should not be construed as a limitation to the present invention. In addition, the terms "first", "second", "third" are only used for descriptive purposes and should not be construed as indicating or implying relative importance.

[0023] In the description of the present invention, it should be noted that unless otherwise clearly specified and defined, the terms "installation", "connection", "coupling" should be understood in a broad sense. For example, it can be a fixed connection, a detachable connection, or an integral connection; it can be a mechanical connection or an electrical connection; it can be a direct connection or an indirect connection through an intermediate medium, and it can be the communication inside two elements. For those of ordinary skill in the art, the specific meanings of the above terms in the present invention can be understood according to specific circumstances.

[0024] As Figure 1 and Figure 2 As shown, an aluminum-based copper clad laminate adhesive layer coating device proposed by the present invention includes a raw material processing support 1. On one side of the raw material processing support 1, a raw material processing transmission assembly 2 is installed. The raw material processing transmission assembly 2 is used to transmit the unprocessed raw materials onto the raw material processing support 1. On the top of the raw material processing support 1, a processing transmission frame 3 for transmitting the coating process is installed. The processing transmission frame 3 is installed on the upper surface of the support of the raw material processing support 1. The raw material processing transmission assembly 2 includes a raw material transmission roller 201 rotatably installed on one side of the raw material processing support 1. On the outer side of the raw material transmission roller 201, a coating 202 is rotatably installed. The coating 202 is attached to the upper surface of the processing transmission frame 3, and is used to receive the coating 202 input from the raw material processing transmission assembly 2 and transmit the coating 202 to the specified position. On both the left and right sides of the processing transmission frame 3, corresponding position adjustment assemblies 4 are installed. On one side of the corresponding position adjustment assembly 4, a glue coating treatment assembly 5 is installed. The corresponding position adjustment assembly 4 is installed on both sides of the raw material processing support 1 and is also located on both sides of the upper surface of the processing transmission frame 3, and is used to clean the coating 202 transmitted by the processing transmission frame 3 and absorb the pungent gas on the surface of the coated coating 202. The glue coating treatment assembly 5 is located between the cleaning work area and the pungent gas absorption area of the corresponding position adjustment assembly 4 and is used to perform the glue coating work.

[0025] Specifically, as Figure 2As shown, the coating 202 is installed on the surface of the raw material transfer roller 201. One side of the raw material processing bracket 1 is fixedly installed with a first motor, and the first motor drives the raw material transfer roller 201 to rotate. The coating 202 comes to the processing transfer rack 3 along the transfer surface of the raw material transfer roller 201. The processing transfer rack 3 is composed of a transfer cloth, two rollers and a second motor as a drive, which is a relatively common transfer component in the prior art. Therefore, the second motor is connected to one roller, and the second motor drives the coating 202 to perform transfer processing through the two rollers until the coating 202 is transferred to the collection area on one side.

[0026] As Figure 4 , Figure 5 and Figure 6As shown in the figure, the corresponding position adjustment component 4 includes a second gear 413 arranged outside the processing transfer rack 3. A first gear 403 is meshed and connected to the outside of the second gear 413. A cross-rail positioning frame 401 is fixedly installed at the top of the raw material processing support 1. A turntable 405 is fixedly installed on one side of the first gear 403 passing through the cross-rail positioning frame 401. A protruding positioning block 404 is fixedly installed on the side of the turntable 405 away from the first gear 403. A positioning slide rail rod 406 is slidably installed on the outside of the protruding positioning block 404. A positioning gear 408 is rotatably installed on the side of the cross-rail positioning frame 401 away from the first gear 403. The positioning gear 408 is fixedly installed with the positioning slide rail rod 406. A rack block 402 is slidably installed inside the cross-rail positioning frame 401. The rack block 402 is arranged in a meshed state with the positioning gear 408. A hollow frame 409 is fixedly installed on one side of the rack block 402. A slide rail block 410 is fixedly installed on one side of the hollow frame 409. A slide rail 407 is opened on the inner wall of the cross-rail positioning frame 401. A sliding insertion rod block 411 is slidably installed inside the slide rail block 410. The sliding insertion rod block 411 passes through one side of the slide rail block 410 and is slidably installed inside the slide rail 407. A rectangular positioning body 412 is fixedly installed on the side of the sliding insertion rod block 411 passing through the cross-rail positioning frame 401. The glue application processing component 5 includes an arc-shaped protective cover 501 fixedly installed at the top of the raw material processing support 1. A glue transmission pipe 502 is fixedly installed at the center of the bottom of the arc-shaped protective cover 501. A toxic gas processing component 503 is fixedly installed on one side of the glue transmission pipe 502. An interference object processing component 504 is fixedly installed on the other side of the glue transmission pipe 502. A first transmission pipe 505 is fixedly installed at the bottom of the interference object processing component 504. An interference object central transmission frame 506 is fixedly installed at the bottom of the first transmission pipe 505. A cleaning ball column 510 is rotatably installed at the bottom of the interference object central transmission frame 506. A second transmission pipe 507 is fixedly installed at the bottom of the toxic gas processing component 503. The second transmission pipe 507 is telescopic. A limit card frame 508 is fixedly installed at the bottom of the second transmission pipe 507. A plurality of suction pipes 511 are fixedly installed at the bottom of the limit card frame 508. The glue application processing component 5 further includes a hollow transmission pipe 515 fixedly installed inside the interference object central transmission frame 506. The interference object central transmission frame 506 is fixedly installed on one side of the rectangular positioning body 412. A glue application roller is fixedly installed on the side of the first gear 403 away from the turntable 405. The arc-shaped protective cover 501 stably transmits the glue liquid to the glue application roller directly below through the transmission device arranged at the bottom. A roller of the processing transfer rack 3 passes through one side of the raw material processing support 1 and is fixedly installed with the second gear 413. The roller first drives the second gear 413 to rotate, and the second gear 413 drives the first gear 403 to rotate along the cross-rail positioning frame 401 through meshing with the first gear 403, and the first gear 403 drives the glue application roller to rotate. The glue application roller evenly applies the glue on the coating 202.

[0027] Before the coating 202 is transferred to the glue applicator roller, first, the first gear 403 passes through one side of the cross-rail positioning frame 401 and drives the turntable 405 to rotate along the cross-rail positioning frame 401. When the turntable 405 drives the protruding positioning block 404 to rotate, it should be noted here that the positioning gear 408 is rotatably installed on the cross-rail positioning frame 401 and can only perform rotational movement at the connection of the cross-rail positioning frame 401. During the rotation of the protruding positioning block 404 along with the turntable 405, the protruding positioning block 404 is slidably installed inside the positioning slide rail rod 406, and the protruding positioning block 404 fits against the inner wall of the positioning slide rail rod 406. When the protruding positioning block 404 rotates along the center of the turntable 405, the protruding positioning block 404 first generates a thrust on the inner wall of the positioning slide rail rod 406, and the positioning slide rail rod 406 is fixedly connected to the positioning gear 408, so the positioning slide rail rod 406 can only deflect along the connection between the positioning gear 408 and the cross-rail positioning frame 401. Therefore, when the protruding positioning block 404 slides inside the positioning slide rail rod 406 and changes its position, the thrust generated on the positioning slide rail rod 406 drives the positioning slide rail rod 406 to swing along the connection between the positioning gear 408 and the cross-rail positioning frame 401 through the positioning gear 408. When the protruding positioning block 404 rotates half a circle along the turntable 405, the positioning slide rail rod 406 drives the positioning gear 408 to rotate clockwise along the connection between the positioning gear 408 and the cross-rail positioning frame 401. When the protruding positioning block 404 rotates the other half circle along the turntable 405, similarly, the positioning slide rail rod 406 drives the positioning gear 408 to rotate counterclockwise along the connection between the positioning gear 408 and the cross-rail positioning frame 401. At the same time, due to the meshing of the positioning gear 408 with the rack block 402, the rack block 402 is driven to perform a reciprocating left-right sliding movement along the cross-rail positioning frame 401. At the same time, the rack block 402 drives the slide rail block 410 and the hollow frame 409 to slide in the same direction. The slide rail block 410 and the sliding insertion rod block 411 slide synchronously, and the sliding insertion rod block 411 drives the cleaning ball column 510 to move forward a certain distance through the rectangular positioning body 412, resulting in a large speed difference between the cleaning ball column 510 and the coating 202, so that the cleaning ball column 510 can better generate friction with the coating 202 to clean the interfering substances on the surface of the coating 202, such as particles, residual materials, etc. At the same time, a thrust is generated on the coating 202 to facilitate the coating 202 to be in a stretched and straightened state, avoiding the cleaning ball column 510 bending the coating 202 during its reciprocating movement and making the later glue application efficiency higher. When the cleaning ball column 510 continues to move forward, that is, the sliding insertion rod block 411 drives the rectangular positioning body 412 to move upward along the slide rail 407. Since the advancing speed of the rack block 402 is greater than that of the coating 202, the cleaning ball column 510 is lifted upward, which can prevent the interfering substances that have not been completely processed on the surface from falling back onto the previously cleaned section of the coating 202 in front. At the same time, when the sliding insertion rod block 411 moves towards a distant position, the cleaning ball column 510 gradually drops onto the section of the coating 202 that has not been cleaned above for processing.Thus, the gluing effect of coating 202 is improved.

[0028] like Figure 5 and Figure 7 As shown, the diameter of the cavity of the hollow transmission tube 515 decreases from large to small from top to bottom, a hollow clamping tube 513 is fixedly installed at the bottom of the hollow transmission tube 515, a clamping block 516 is slidably installed inside the hollow transmission tube 515, the clamping block 516 passes through one side of the hollow transmission tube 515 and a spring 514 is fixedly installed between the hollow clamping tube 513, the clamping block 516 passes through one side of the spring 514 and a fixing rod 512 is fixedly installed, the cleaning ball column 510 is rotatably installed inside the fixing rod 512, the interference processing component 504 is a component for sucking garbage such as a vacuum cleaner in the prior art, when the cleaning ball column 510 comes into contact with the coating 202, if there are more interferences on the coating 202, the cleaning ball column 510 is pushed by the interferences to mobilize the fixing rod 512 to move upward along the hollow clamping tube 513, at this time, Under the limitation of spring 514, the locking block 516 moves upward along the hollow transmission tube 515. It is explained here that when the locking block 516 is not disturbed by external force or is only subjected to gravity, the locking block 516 fits with the narrower position of the bottom of the hollow transmission tube 515, that is, the hollow transmission tube 515 and the cleaning ball column 510 are in a relatively closed state, and the interference processing component 504 cannot clean the cleaning ball column 510 through the first transmission tube 505. At this time, the hollow transmission tube 515 can concentrate on absorbing the interference previously stored in the hollow transmission tube 515. That is, when the rectangular positioning body 412 proposed in this article drives the cleaning ball column 510 to move upward, the locking block 516 and the hollow transmission tube 515 are closed, and the garbage in the hollow transmission tube 515 will not fall from below, thereby improving the cleaning quality.

[0029] When the positioning block 516 is pushed upward along the hollow transmission tube 515 by the fixing rod 512, a larger gap is generated between the hollow transmission tube 515 and the positioning block 516. At this time, the interference processing component 504 absorbs the interference on the surface of the cleaning ball column 510 through the first transmission tube 505, so that the surface of the coating 202 is relatively clean before gluing, which effectively prevents the unevenness of the glue layer in the later stage.

[0030] In this embodiment, Figure 8As shown in the figure, a pushing bracket 509 is fixedly installed at the top of the rectangular positioning body 412. A limiting bracket 508 is slidably installed on one side of the pushing bracket 509. The limiting bracket 508 is slidably installed on the top of the raw material processing bracket 1. A sliding pipe 517 is fixedly installed at the bottom of the pushing bracket 509. The sliding pipe 517 is fixedly installed on the top of the suction pipe 511. The suction pipe 511 is in a communicating state with the second transmission pipe 507. The limiting bracket 508 is always located directly above the coating 202 after the coating roller processing. The poisonous gas treatment component 503 is a component such as an air suction machine in the prior art. The poisonous gas treatment component 503 drives the suction pipe 511 through the second transmission pipe 507 to suck air from the glue layer. The first function is to absorb part of the heat of the glue layer, cooperate with the later drying step, and accelerate the solidification of the glue layer. The second function is to absorb the poisonous gas generated before the glue layer solidifies, thereby effectively preventing the diffusion of poisonous gas and improving safety. When the pushing bracket 509 moves up and down with the rectangular positioning body 412, since the limiting bracket 508 is in a slidable state through the chute opened on the raw material processing bracket 1 and cannot move up and down, the pushing bracket 509 drives the sliding pipe 517 to be in a telescopic state. The diameters of the upper and lower layers of the sliding pipe 517 are different. Then, during the process of the sliding pipe 517 moving up and down along the limiting bracket 508 following the pushing bracket 509, the upper and lower layers of the sliding pipe 517 shrink. And sealing rubber layers are fixedly installed on the outer sides of the upper and lower sides of the sliding pipe 517, so that the sliding pipe 517, the suction pipe 511 and the second transmission pipe 507 are always in a sealed state. During the process of the sliding pipe 517 absorbing poisonous gas, some glue-attached poisonous gas may solidify in the sliding pipe 517 later, resulting in the sliding pipe 517 being unable to suck air normally. Then, during the telescopic movement of the sliding pipe 517, the blockage of the internal glue layer is effectively prevented.

[0031] The above specific embodiments are only several alternative embodiments of the present invention. Based on the technical solution of the present invention and the relevant revelations of the above embodiments, those skilled in the art can make various alternative improvements and combinations to the above specific embodiments.

Claims

1. An aluminum-based copper clad laminate adhesive layer coating device, comprising a raw material processing support (1), characterized in that: On one side of the raw material processing bracket (1), a raw material processing transmission component (2) is installed. On the top of the raw material processing bracket (1), a processing transmission rack (3) for coating processing is installed. On both the left and right sides of the processing transmission rack (3), corresponding position adjustment components (4) are installed. On one side of the corresponding position adjustment component (4), a glue coating treatment component (5) is installed; The glue coating treatment component (5) includes an arc-shaped protective cover (501) fixedly installed on the top of the raw material processing bracket (1). In the center of the bottom of the arc-shaped protective cover (501), a glue transmission pipe (502) is fixedly installed. On one side of the glue transmission pipe (502), a toxic gas treatment component (503) is fixedly installed. On the other side of the glue transmission pipe (502), an interference object treatment component (504) is fixedly installed. At the bottom of the interference object treatment component (504), a first transmission pipe (505) is fixedly installed. At the bottom of the first transmission pipe (505), an interference object central transmission rack (506) is fixedly installed. At the bottom of the interference object central transmission rack (506), a cleaning ball column (510) is rotatably installed. At the bottom of the toxic gas treatment component (503), a second transmission pipe (507) is fixedly installed. At the bottom of the second transmission pipe (507), a limit clamping rack (508) is fixedly installed. At the bottom of the limit clamping rack (508), a plurality of air suction pipes (511) are fixedly installed; The glue coating treatment component (5) further includes a hollow transmission pipe (515) fixedly installed inside the interference object central transmission rack (506). The diameter of the cavity of the hollow transmission pipe (515) gradually decreases from top to bottom.

2. The aluminum-based copper clad laminate adhesive layer coating device according to claim 1, wherein The raw material processing transmission component (2) includes a raw material transmission roller (201) rotatably installed on one side of the raw material processing bracket (1). On the outer side of the raw material transmission roller (201), a coating (202) is rotatably installed. The coating (202) is attached to the upper surface of the processing transmission rack (3).

3. The aluminum-based copper clad laminate adhesive layer coating device according to claim 1, characterized in that, The corresponding position adjustment component (4) includes a second gear (413) arranged on the outer side of the processing transmission rack (3). The outer side of the second gear (413) is meshed with a first gear (403). On the top of the raw material processing bracket (1), a cross-rail positioning rack (401) is fixedly installed. The first gear (403) passes through one side of the cross-rail positioning rack (401) and a turntable (405) is fixedly installed.

4. The aluminum-based copper clad laminate adhesive layer coating device according to claim 3, wherein On the side of the turntable (405) away from the first gear (403), a protruding positioning block (404) is fixedly installed. On the outer side of the protruding positioning block (404), a positioning slide rail rod (406) is slidably installed. On the side of the cross-rail positioning rack (401) away from the first gear (403), a positioning gear (408) is rotatably installed. The positioning gear (408) is fixedly installed with the positioning slide rail rod (406).

5. The aluminum-based copper clad laminate adhesive layer coating device according to claim 4, characterized in that A rack block (402) is slidably installed inside the cross-rail positioning rack (401). The rack block (402) is arranged in a meshed state with the positioning gear (408). On one side of the rack block (402), a hollow frame (409) is fixedly installed.

6. The aluminum-based copper clad laminate adhesive layer coating device according to claim 5, characterized in that, One side of the hollow frame (409) is fixedly installed with a slide rail block (410). The inner wall of the cross rail positioning frame (401) is provided with a slide rail (407). A sliding insertion rod block (411) is slidably installed inside the slide rail block (410). The sliding insertion rod block (411) passes through one side of the slide rail block (410) and is slidably installed inside the slide rail (407). One side of the sliding insertion rod block (411) passing through the cross rail positioning frame (401) is fixedly installed with a rectangular positioning body (412).

7. The aluminum-based copper clad laminate adhesive layer coating device according to claim 6, characterized in that, The interference object central transmission frame (506) is fixedly installed on one side of the rectangular positioning body (412).

8. The aluminum-based copper clad laminate adhesive layer coating device according to claim 7, characterized in that, The bottom of the hollow transmission pipe (515) is fixedly installed with a hollow clamping pipe (513). A clamping block (516) is slidably installed inside the hollow transmission pipe (515).

9. The aluminum-based copper clad laminate adhesive layer coating device according to claim 8, wherein, A spring (514) is fixedly installed between the clamping block (516) passing through one side of the hollow transmission pipe (515) and the hollow clamping pipe (513). One side of the clamping block (516) passing through the spring (514) is fixedly installed with a fixing rod (512). The cleaning ball column (510) is rotatably installed inside the fixing rod (512).

10. A coating device for the adhesive layer of an aluminum-based copper clad laminate according to claim 9, characterized in that, The top of the rectangular positioning body (412) is fixedly installed with a pushing clamping frame (509). A limiting clamping frame (508) is slidably installed on one side of the pushing clamping frame (509). The limiting clamping frame (508) is slidably installed on the top of the raw material processing support (1). The bottom of the pushing clamping frame (509) is fixedly installed with a sliding combined pipe (517). The sliding combined pipe (517) is fixedly installed on the top of the suction pipe (511).

Citation Information

Patent Citations

  • Adhesive layer coating device for aluminum-based copper-clad plate

    CN215243556U