Photovoltaic material dip-coating equipment capable of improving efficiency

Through the combined design of photovoltaic material dip coating equipment, the automatic transfer and rapid drying of photovoltaic materials are achieved by using servo electric cylinders and infrared dryers, solving the problems of uneven dip coating and low production efficiency of photovoltaic materials, and improving production efficiency and dip coating uniformity.

CN223069797UActive Publication Date: 2025-07-08GUANGXI NANGUI ALUMINUM CO LTD
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Patent Information

Application Number
CN202422065344.2
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-23
Publication Date
2025-07-08
Estimated Expiration
2034-08-23

AI Technical Summary

Technical Problem

The existing photovoltaic material dip coating process has low production efficiency, and the dip coating effect of the contact parts of multiple photovoltaic materials when stacked and placed is poor.

Method used

Using a combination design of load-bearing components, dip-coating tank components, immersion box components, partition components, sliding components and drying components, the automated transport and rapid drying of photovoltaic materials are achieved through servo electric cylinders and infrared dryers, ensuring that each piece of material is in full contact with the dip-coating liquid and accelerating the dip-coating process.

Benefits of technology

It improves the uniformity and production efficiency of photovoltaic material dip coating, solves the problems of uneven dip coating and low production efficiency, and realizes efficient and automated processing of photovoltaic materials.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the field of photovoltaic material dip-coating industry, in particular to photovoltaic material dip-coating equipment capable of improving efficiency. The technical problems that the production efficiency of finished products is low due to the fact that dip-coating of photovoltaic materials usually adopts a manufacturing process of dip-coating and natural airing, and meanwhile when multiple photovoltaic materials are stacked and placed for dip-coating, the dip-coating effect of the parts making contact with each other is poor are solved. According to the technical scheme, the photovoltaic material dip-coating equipment capable of improving the efficiency comprises a bearing assembly, a dip-coating groove assembly, a soaking box assembly, a separation assembly, a sliding assembly and a drying assembly. The dip-coating tank is driven by the servo electric cylinder to regularly move up and down, so that the dip-coating process is accelerated, a plurality of photovoltaic materials can be fully contacted with dip-coating liquid when being stacked through the arrangement of the insertion plate, and the photovoltaic materials are transferred into the infrared dryer to be quickly dried through the arrangement of the screw rod and the screw sleeve, so that the production efficiency is improved, and the production cost is reduced. And due to the automatic design, the efficiency is greatly improved, and the problems are solved.
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Description

Technical Field

[0001] The utility model belongs to the field of the photovoltaic material dipping industry, and particularly relates to a photovoltaic material dipping device for improving efficiency. Background Art

[0002] In the photovoltaic material dipping industry, the dipping method means that the object to be coated is completely immersed in a tank filled with coating material. After sufficient contact for a period of time, it is taken out of the tank and dried to form a coating film on the surface of the object to be coated. Photovoltaic material dipping is an important process step in the manufacturing process of photovoltaic cells, mainly used for coating specific liquid materials on the surface of photovoltaic materials to improve their performance and efficiency. In the prior art, the dipping of photovoltaic materials usually adopts the manufacturing processes of immersion coating and natural drying, with low production efficiency and a large amount of manual assistance required. At the same time, when multiple photovoltaic materials are stacked for dipping in order to pursue production efficiency, the dipping effect of the mutually contacting parts is poor, and there is often a phenomenon of uneven coating. Therefore, a photovoltaic material dipping device for improving efficiency is proposed to solve the above problems. Summary of the Utility Model

[0003] In order to overcome the problems that in the dipping process of photovoltaic materials, the dipping of photovoltaic materials usually adopts the manufacturing processes of immersion coating and natural drying, with low finished product production efficiency, and at the same time, when multiple photovoltaic materials are stacked for dipping, the dipping effect of the mutually contacting parts is poor.

[0004] The technical solution of the utility model is as follows: A photovoltaic material dipping device for improving efficiency, comprising a carrying component, a dipping tank component, an immersion tank component, a partitioning component, a sliding component and a drying component; a dipping tank component for containing coating material is arranged inside the carrying component; an immersion tank component for soaking is arranged inside the carrying component; a partitioning component for partitioning materials is arranged on the immersion tank component; a sliding component for facilitating sliding is arranged on the immersion tank component; a drying component for drying is arranged inside the carrying component.

[0005] Preferably, through the setting of the dipping tank component that can move regularly up and down, the fluidity of the liquid is utilized to accelerate the dipping process. Through the setting of the partitioning component, while multiple photovoltaic materials can be stacked and placed, a certain gap can be ensured between each photovoltaic material to ensure sufficient contact with the dipping liquid, solving the problem that when multiple photovoltaic materials are stacked for dipping, the dipping effect of the mutually contacting parts is poor. Through the setting of the immersion tank component and the sliding component, the automatic transfer of photovoltaic materials can be realized. Through the setting of the drying component, the drying process of the dipped photovoltaic materials is made more rapid, improving the production efficiency of the finished product and solving the problem that the dipping of photovoltaic materials usually adopts the manufacturing processes of immersion coating and natural drying, with low finished product production efficiency.

[0006] Preferably, the bearing component includes a bottom plate, a first support rod, a top plate, a first sliding groove, a second sliding groove, a second support rod and a collection table; the four corners of the upper end of the bottom plate are fixedly connected with the first support rods; the upper ends of the four first support rods are fixedly connected together with the top plate; a first sliding groove is penetrated and opened at the center of the upper and lower ends of the top plate; second sliding grooves symmetrically distributed about the center of the first sliding groove are penetrated and opened at the upper and lower ends of the top plate; the upper end of the bottom plate is fixedly connected with second support rods symmetrically distributed about the center of the bottom plate; the upper ends of the two second support rods are fixedly connected together with the collection table; the right end of the collection table is fixedly connected to one end of the first support rod close to the center of the bottom plate; the bottom plate, the first support rods and the top plate form a cuboid frame structure, so that the whole bearing component can be stressed more evenly, improving its bearing capacity. Through the arrangement of the collection table, it is used to store the photovoltaic materials after drying treatment for subsequent processes.

[0007] Preferably, the dip coating tank component includes a first servo electric cylinder, a first box body and a third sliding groove; the upper end of the bottom plate is fixedly connected with uniformly distributed first servo electric cylinders; the upper ends of the output shafts of the four first servo electric cylinders are fixedly connected together with the first box body; the first box body is a rectangular box body with an open upper end; third sliding grooves symmetrically distributed about the center of the first box body are opened at the front and rear end faces inside the first box body; when the photovoltaic materials are completely immersed in the first box body, start the first servo electric cylinder, and the output shaft of the first servo electric cylinder will start to regularly and slightly expand and contract, driving the first box body to move up and down for dip coating, and the flow of the dip coating liquid will make the dip coating of the photovoltaic materials more uniform.

[0008] Preferably, the soaking tank component includes a second box body, leakage holes, support blocks, a second servo electric cylinder and a fourth sliding groove; the second box body is movably arranged inside the first box body; the second box body is a rectangular box body with an open upper end; uniformly distributed leakage holes are penetrated through the inner and outer walls of the second box body; support blocks symmetrically distributed about the center of the second box body are fixedly connected to the upper side edges of the front and rear end faces of the second box body; the upper ends of the support blocks are fixedly connected to the output shafts of the second servo electric cylinder; uniformly distributed fourth sliding grooves are penetrated through the centers of the left and right ends of the second box body; through the arrangement of the leakage holes, it is ensured that the dip coating liquid can fully contact with the photovoltaic materials inside the second box body. Through the arrangement of the second servo electric cylinder, the output shaft of the second servo electric cylinder can be electrically controlled to extend to completely immerse the second box body in the first box body. Subsequently, the first box body starts to move up and down regularly, and the support blocks will slide along the inner walls of the third sliding grooves, making the dip coating reaction of the photovoltaic materials more sufficient and uniform.

[0009] Preferably, the separating component includes a plug board, a positioning groove, a limiting block, a handle, and a photovoltaic material; a plug board is movably arranged on the inner wall of the fourth chute; the cross section of the plug board is T-shaped; the head of the plug board is attached to the outer wall of the second box body; positioning grooves are formed through the upper and lower ends of the plug board; a limiting block is movably arranged on the inner wall of the positioning groove; the limiting block is a U-shaped structure with an open lower end; the upper end surface inside the limiting block is attached to the upper end of the second box body; a handle is fixedly connected to the upper end of the limiting block; the upper end of the plug board is attached to the lower end of the photovoltaic material; by sliding the plug board on the inner wall of the fourth chute, when the symmetric plug boards are inserted into the fourth chute, the protruding part of the plug board inside the second box body will act as a partition, and the photovoltaic material can be placed on the upper end of the plug board, and then the limiting block is vertically inserted into the positioning groove to play a role in limiting and fixing, realizing the stacked placement of multiple photovoltaic materials, and at the same time ensuring that each photovoltaic material can be fully contacted with the dipping solution, solving the problem that the dipping effect of the mutually contacting parts is poor when multiple photovoltaic materials are stacked and placed.

[0010] Preferably, the sliding component includes a motor, a first bearing seat, a lead screw, a second bearing seat, a lead screw nut, a first connecting column, a first connecting plate, a second connecting column, a second connecting plate, and a bottom wheel; a motor is fixedly connected to the left edge of the upper end of the top plate; a lead screw is fixedly connected to the output shaft of the motor; the first bearing seat and the second bearing seat which are symmetrically distributed about the center of the top plate are fixedly connected to the upper end of the top plate; the lead screw is rotatably installed inside the first bearing seat and the second bearing seat; a lead screw nut is movably installed on the outer wall of the lead screw; a first connecting column is fixedly connected to the lower end of the lead screw nut; the outer wall of the first connecting column is attached to the inner wall of the first chute; a first connecting plate is fixedly connected to the lower end of the first connecting column; second connecting columns which are symmetrically distributed about the center of the first connecting plate are fixedly connected to the upper end of the first connecting plate; a second connecting plate is fixedly connected to the upper end of the second connecting column; bottom wheels which are symmetrically distributed about the center of the second connecting plate are fixedly connected to the lower end of the second connecting plate; the lower end of the bottom wheel is attached to the upper end of the top plate; second servo electric cylinders which are symmetrically distributed about the center of the first connecting plate are fixedly connected to the lower end of the first connecting plate; after the dipping is completed, the second servo electric cylinders are started to lift the second box body out of the first box body, and at the same time the motor is started, the output shaft of the motor will drive the lead screw to rotate synchronously, the lead screw nut will slide horizontally along the outer wall of the lead screw, thereby driving the first connecting column and the first connecting plate to slide along the inner walls of the first chute and the second chute, and the setting of the bottom wheel plays a role in assisting the sliding, thereby realizing the stable movement of the second box body in the horizontal direction, and further transporting the second bearing seat inside the second box body to different working areas.

[0011] Preferably, the drying assembly includes an infrared dryer body, infrared lamp tubes, a recovery box, and a connecting hose; the lower end of the top plate is fixedly connected with infrared dryer bodies symmetrically distributed about the center of the top plate; evenly distributed infrared lamp tubes are installed at one end of the infrared dryer body close to the center of the bottom plate; the lower ends of the two recovery boxes are jointly fixedly connected with the recovery box; the recovery box is a rectangular box with an open upper end; the lower end of the recovery box is fixedly connected with the connecting hose; the other end of the connecting hose is fixedly connected to the upper side edge of the right end of the first box body; the spaces inside the recovery box, the connecting hose, and the first box body are connected; after the photovoltaic material is dip-coated, it is conveyed into the drying assembly through the sliding assembly. Through the settings of the infrared dryer body and the infrared lamp tubes, the energy of infrared radiation can be used to heat the surface of the object, so that it can quickly increase in temperature and achieve the effect of rapid drying. At the same time, the setting of the recovery box helps to collect the residual dip-coating liquid on the photovoltaic material and flow back into the first box body through the connecting hose to realize the recycling of the dip-coating liquid, reduce waste, and lower the production cost.

[0012] Advantages of the utility model:

[0013] 1. When the photovoltaic material is completely immersed in the first box body, start the first servo electric cylinder. The output shaft of the first servo electric cylinder will start to stretch and contract regularly in a small range, driving the first box body to move up and down for dip-coating. The flow of the dip-coating liquid will make the dip-coating of the photovoltaic material more uniform. After the photovoltaic material is dip-coated, it is conveyed into the drying assembly through the sliding assembly. Through the settings of the infrared dryer body and the infrared lamp tubes, the energy of infrared radiation can be used to heat the surface of the object, so that it can quickly increase in temperature and achieve the effect of rapid drying, solving the problem that the conventional manufacturing process of dip-coating photovoltaic materials usually uses immersion plating and natural drying, and the dip-coating efficiency is relatively low.

[0014] 2. A plug board is slidably arranged on the inner wall of the fourth chute. When the symmetrical plug boards are inserted into the fourth chute, the protruding part of the plug board inside the second box body will act as a partition. The photovoltaic material can be placed on the upper end of the plug board, and then the limit block is vertically inserted into the positioning groove to play a role in limiting and fixing, realizing the stacked placement of multiple photovoltaic materials, and at the same time ensuring that each photovoltaic material can be fully contacted with the dip-coating liquid, solving the problem that the dip-coating effect of the mutually contacting parts is poor when multiple photovoltaic materials are stacked.

[0015] 3. After the dip-coating is completed, start the second servo electric cylinder to lift the second box body out of the first box body. At the same time, start the motor. The output shaft of the motor will drive the lead screw to rotate synchronously, and the nut sleeve will slide horizontally along the outer wall of the lead screw, thereby driving the first connecting column and the first connecting plate to slide along the inner walls of the first chute and the second chute. The setting of the bottom wheels plays a role in assisting sliding, thereby realizing the stable movement of the second box body in the horizontal direction, and then conveying the second bearing seat inside the second box body to different working areas. BRIEF DESCRIPTION OF THE DRAWINGS

[0016] Figure 1 FIG. 1 shows a three-dimensional structural schematic diagram of a photovoltaic material dipping device for improving efficiency according to the present utility model;

[0017] Figure 2 FIG. 2 shows a three-dimensional structural schematic diagram of a bearing assembly and a dipping tank assembly of a photovoltaic material dipping device for improving efficiency according to the present utility model;

[0018] Figure 3 FIG. 3 shows a three-dimensional structural schematic diagram of a soaking tank assembly and a partition assembly of a photovoltaic material dipping device for improving efficiency according to the present utility model;

[0019] Figure 4 FIG. 4 shows a three-dimensional structural schematic diagram of a sliding assembly of a photovoltaic material dipping device for improving efficiency according to the present utility model;

[0020] Figure 5 FIG. 5 shows a three-dimensional structural schematic diagram of a drying assembly of a photovoltaic material dipping device for improving efficiency according to the present utility model.

[0021] The reference signs in the drawings are: 1 - bearing assembly, 101 - bottom plate, 102 - first support rod, 103 - top plate, 104 - first chute, 105 - second chute, 106 - second support rod, 107 - collection table, 2 - dipping tank assembly, 201 - first servo electric cylinder, 202 - first box body, 203 - third chute, 3 - soaking tank assembly, 301 - second box body, 302 - leakage holes, 303 - support block, 304 - second servo electric cylinder, 305 - fourth chute, 4 - partition assembly, 401 - insertion plate, 402 - positioning groove, 403 - limiting block, 404 - handle, 405 - photovoltaic material, 5 - sliding assembly, 501 - motor, 502 - first bearing seat, 503 - lead screw, 504 - second bearing seat, 505 - nut sleeve, 506 - first connecting column, 507 - first connecting plate, 508 - second connecting column, 509 - second connecting plate, 510 - bottom wheel, 6 - drying assembly, 601 - infrared dryer body, 602 - infrared lamp tube, 603 - recovery box, 604 - connecting hose. DETAILED DESCRIPTION OF THE EMBODIMENTS

[0022] The present utility model will be further described below with reference to the drawings and embodiments.

[0023] Please refer to Figure 1, the present utility model provides an embodiment: a photovoltaic material dip coating device for improving efficiency, which includes a carrying component 1, a dip coating tank component 2, a soaking tank component 3, a partitioning component 4, a sliding component 5 and a drying component 6; a dip coating tank component 2 for containing coating is arranged inside the carrying component 1; a soaking tank component 3 for soaking is arranged inside the carrying component 1; a partitioning component 4 for partitioning materials is arranged on the soaking tank component 3; a sliding component 5 for facilitating sliding is arranged on the soaking tank component 3; a drying component 6 for drying is arranged inside the carrying component 1.

[0024] Please refer to Figure 2 , in this embodiment, the carrying component 1 includes a bottom plate 101, a first support rod 102, a top plate 103, a first chute 104, a second chute 105, a second support rod 106 and a collection table 107; first support rods 102 are fixedly connected to the four corner edges of the upper end of the bottom plate 101; a top plate 103 is fixedly connected to the upper ends of the four first support rods 102; a first chute 104 is penetrated and opened at the center of the upper and lower ends of the top plate 103; second chutes 105 which are symmetrically distributed about the center of the first chute 104 are penetrated and opened at the upper and lower ends of the top plate 103; second support rods 106 which are symmetrically distributed about the center of the bottom plate 101 are fixedly connected to the upper end of the bottom plate 101; a collection table 107 is fixedly connected to the upper ends of the two second support rods 106; the right end of the collection table 107 is fixedly connected to one end of the first support rod 102 close to the center of the bottom plate 101; the dip coating tank component 2 includes a first servo electric cylinder 201, a first box body 202 and a third chute 203; first servo electric cylinders 201 which are evenly distributed are fixedly connected to the upper end of the bottom plate 101; a first box body 202 is fixedly connected to the upper ends of the output shafts of the four first servo electric cylinders 201; the first box body 202 is a rectangular box body with an open upper end; third chutes 203 which are symmetrically distributed about the center of the first box body 202 are opened at the front and rear end faces inside the first box body 202.

[0025] Please refer to Figure 3, in this embodiment, the soaking tank assembly 3 includes a second box body 301, leakage holes 302, support blocks 303, a second servo electric cylinder 304 and fourth sliding grooves 305; the second box body 301 is movably arranged inside the first box body 202; the second box body 301 is a rectangular box body with an open upper end; leakage holes 302 evenly distributed are formed through the inner and outer walls of the second box body 301; support blocks 303 symmetrically distributed about the center of the second box body 301 are fixedly connected to the upper side edges of the front and rear end faces of the second box body 301; the output shaft of the second servo electric cylinder 304 is fixedly connected to the upper end of the support block 303; fourth sliding grooves 305 evenly distributed are formed through the centers of the left and right ends of the second box body 301; the partition assembly 4 includes a plug board 401, positioning grooves 402, limit blocks 403, a handle 404 and a photovoltaic material 405; the plug board 401 is movably arranged on the inner wall of the fourth sliding groove 305; the cross section of the plug board 401 is T-shaped; the head of the plug board 401 fits against the outer wall of the second box body 301; positioning grooves 402 are formed through the upper and lower ends of the plug board 401; the limit block 403 is movably arranged on the inner wall of the positioning groove 402; the limit block 403 is a U-shaped structure with an open lower end; the upper end face inside the limit block 403 fits against the upper end of the second box body 301; the handle 404 is fixedly connected to the upper end of the limit block 403; the upper end of the plug board 401 fits against the lower end of the photovoltaic material 405.

[0026] Please refer to Figure 4 , in this embodiment, the sliding assembly 5 includes a motor 501, a first bearing seat 502, a lead screw 503, a second bearing seat 504, a lead screw nut 505, a first connecting column 506, a first connecting plate 507, a second connecting column 508, a second connecting plate 509 and bottom wheels 510; the motor 501 is fixedly connected to the left side edge of the upper end of the top plate 103; the lead screw 503 is fixedly connected to the output shaft of the motor 501; the first bearing seat 502 and the second bearing seat 504 symmetrically distributed about the center of the top plate 103 are fixedly connected to the upper end of the top plate 103; the lead screw 503 is rotatably installed inside the first bearing seat 502 and the second bearing seat 504; the lead screw nut 505 is movably installed on the outer wall of the lead screw 503; the first connecting column 506 is fixedly connected to the lower end of the lead screw nut 505; the outer wall of the first connecting column 506 fits against the inner wall of the first sliding groove 104; the first connecting plate 507 is fixedly connected to the lower end of the first connecting column 506; the second connecting column 508 symmetrically distributed about the center of the first connecting plate 507 is fixedly connected to the upper end of the first connecting plate 507; the second connecting plate 509 is fixedly connected to the upper end of the second connecting column 508; the bottom wheels 510 symmetrically distributed about the center of the second connecting plate 509 are fixedly connected to the lower end of the second connecting plate 509; the lower end of the bottom wheel 510 fits against the upper end of the top plate 103; the second servo electric cylinder 304 symmetrically distributed about the center of the first connecting plate 507 is fixedly connected to the lower end of the first connecting plate 507.

[0027] Please refer toFigure 5 , in this embodiment, the drying assembly 6 includes an infrared dryer body 601, infrared lamp tubes 602, a recovery box 603, and a connecting hose 604; the lower end of the top plate 103 is fixedly connected with infrared dryer bodies 601 symmetrically distributed about the center of the top plate 103; one end of the infrared dryer body 601 close to the center of the bottom plate 101 is provided with evenly distributed infrared lamp tubes 602; the lower ends of two recovery boxes 603 are jointly fixedly connected with the recovery box 603; the recovery box 603 is a rectangular box with an open upper end; the lower end of the recovery box 603 is fixedly connected with a connecting hose 604; the other end of the connecting hose 604 is fixedly connected to the upper side edge of the right end of the first box body 202; the spaces inside the recovery box 603, the connecting hose 604, and the first box body 202 are connected and communicated.

[0028] When working, first place the photovoltaic materials 405 into the second box body 301 in sequence. At the same time, every two photovoltaic materials 405 are separated by a plug board 401. After the stacking of the photovoltaic materials 405 is completed, vertically insert the limiting block 403 into the positioning groove 402 to limit and fix the entire separation assembly 4, preventing the scattering of the photovoltaic materials 405 during transportation;

[0029] Then start the second servo electric cylinder 304. The output shaft of the second servo electric cylinder 304 will drive the support block 303 and the second box body 301 to move downward synchronously into the first box body 202. When the dip coating liquid inside the first box body 202 completely submerges the photovoltaic materials 405, stop the second servo electric cylinder 304 and start the first servo electric cylinder 201. The output shaft of the first servo electric cylinder 201 will drive the first box body 202 to perform regular up and down undulating movements in the vertical direction, enabling the dip coating liquid inside the first box body 202 to fully contact and react with the photovoltaic materials 405, accelerating the dip coating process;

[0030] When the dip coating is completed, start the second servo electric cylinder 304 to lift the second box body 301 out of the first box body 202. At the same time, start the motor 501. The output shaft of the motor 501 will drive the lead screw 503 to rotate synchronously. The lead screw sleeve 505 will slide horizontally along the outer wall of the lead screw 503, thereby driving the first connecting column 506 and the first connecting plate 507 to slide along the inner walls of the first chute 104 and the second chute 105, and convey the second box body 301 to the inside of the drying assembly 6 to the right. Start the infrared dryer body 601, and the infrared lamp tubes 602 will start to emit infrared rays, using the energy of infrared radiation to heat the surface of the photovoltaic materials 405, enabling them to quickly heat up and dry quickly. At the same time, the residual dip coating liquid on the photovoltaic materials 405 and the second box body 301 will drip into the recovery box 603 under the influence of their own gravity and flow back to the first box body 202 through the connecting hose 604, realizing the recycling of the dip coating liquid;

[0031] After the drying is completed, the sliding assembly 5 will continue to convey the second box body 301 to the right until it reaches above the collection table 107. Pull out the limit block 403 from the positioning groove 402 through the handle 404 to release the limit lock on the plug board 401, and take out the photovoltaic material 405 from the second box body 301, realizing a high-efficiency dip coating process for the photovoltaic material.

[0032] Through the above steps, by setting the dip coating tank assembly 2 that can move regularly up and down, the fluidity of the liquid is utilized to accelerate the dip coating process. Through the setting of the separation assembly 4, while enabling multiple photovoltaic materials to be stacked and placed, a certain gap can be ensured between each photovoltaic material to ensure sufficient contact with the dip coating liquid, solving the problem that when multiple photovoltaic materials are stacked and placed for dip coating, the dip coating effect of the mutually contacting parts is poor. Through the setting of the soaking tank assembly 3 and the sliding assembly 5, the automatic transfer of the photovoltaic material can be realized. Through the setting of the drying assembly 6, the drying process of the dip-coated photovoltaic material is made more rapid, improving the efficiency of finished product production, and solving the problem that the dip coating of photovoltaic materials usually adopts the manufacturing processes of immersion coating and natural drying, resulting in a low efficiency of finished product production.

[0033] The above has described in detail the embodiments of the present invention in conjunction with the accompanying drawings. However, the present invention is not limited to the above embodiments, and various changes can be made without departing from the gist of the present invention within the scope of knowledge possessed by those skilled in the art.

Claims

1. A photovoltaic material dip coating device for improving efficiency, comprising a carrying component (1); characterized in that: It further includes a dip coating tank assembly (2), an immersion tank assembly (3), a separation assembly (4), a sliding assembly (5) and a drying assembly (6); an immersion tank assembly (2) for containing paint is arranged inside the carrier assembly (1); an immersion tank assembly (3) for soaking is arranged inside the carrier assembly (1); a separation assembly (4) for separating materials is arranged on the immersion tank assembly (3); a sliding assembly (5) for facilitating sliding is arranged on the immersion tank assembly (3); a drying assembly (6) for drying is arranged inside the carrier assembly (1).

2. The dip coating equipment for photovoltaic materials to improve efficiency according to claim 1, wherein: The carrier assembly (1) includes a bottom plate (101), a first support rod (102), a top plate (103), a first chute (104), a second chute (105), a second support rod (106) and a collection table (107); the first support rods (102) are fixedly connected to the four corner edges of the upper end of the bottom plate (101); the upper ends of the four first support rods (102) are jointly fixedly connected to the top plate (103); a first chute (104) is penetrated and opened at the center of the upper and lower ends of the top plate (103); second chutes (105) symmetrically distributed about the center of the first chute (104) are penetrated and opened at the upper and lower ends of the top plate (103); the second support rods (106) symmetrically distributed about the center of the bottom plate (101) are fixedly connected to the upper end of the bottom plate (101); the upper ends of the two second support rods (106) are jointly fixedly connected to the collection table (107); the right end of the collection table (107) is fixedly connected to one end of the first support rod (102) close to the center of the bottom plate (101).

3. The dip coating equipment for photovoltaic materials to improve efficiency according to claim 2, characterized in that: The dip coating tank assembly (2) includes a first servo electric cylinder (201), a first box body (202) and a third chute (203); the first servo electric cylinders (201) evenly distributed are fixedly connected to the upper end of the bottom plate (101); the upper ends of the output shafts of the four first servo electric cylinders (201) are jointly fixedly connected to the first box body (202); the first box body (202) is a rectangular box body with an open upper end; third chutes (203) symmetrically distributed about the center of the first box body (202) are opened at the front and rear end faces inside the first box body (202).

4. The dip coating device for photovoltaic materials for improving efficiency according to claim 3, characterized in that: The immersion tank assembly (3) includes a second box body (301), leakage holes (302), support blocks (303), a second servo electric cylinder (304) and fourth chutes (305); the second box body (301) is movably arranged inside the first box body (202); the second box body (301) is a rectangular box body with an open upper end; uniformly distributed leakage holes (302) are penetrated and opened through the inner and outer walls of the second box body (301); support blocks (303) symmetrically distributed about the center of the second box body (301) are fixedly connected to the upper side edges of the front and rear end faces of the second box body (301); the output shaft of the second servo electric cylinder (304) is fixedly connected to the upper end of the support block (303); uniformly distributed fourth chutes (305) are penetrated and opened at the centers of the left and right ends of the second box body (301).

5. The dip coating equipment for photovoltaic materials to improve efficiency according to claim 4, characterized in that: The separation component (4) includes an insertion plate (401), a positioning groove (402), a limit block (403), a handle (404), and a photovoltaic material (405); the insertion plate (401) is movably arranged on the inner wall of the fourth chute (305); the cross-section of the insertion plate (401) is T-shaped; the head of the insertion plate (401) is in contact with the outer wall of the second box body (301); positioning grooves (402) are formed through the upper and lower ends of the insertion plate (401); the limit block (403) is movably arranged on the inner wall of the positioning groove (402); the limit block (403) is a U-shaped structure with an open lower end; the upper end surface inside the limit block (403) is in contact with the upper end of the second box body (301); a handle (404) is fixedly connected to the upper end of the limit block (403); the upper end of the insertion plate (401) is in contact with the lower end of the photovoltaic material (405).

6. The dip coating device for photovoltaic materials to improve efficiency according to claim 2, wherein: The sliding component (5) includes a motor (501), a first bearing seat (502), a lead screw (503), a second bearing seat (504), a lead screw nut (505), a first connecting column (506), a first connecting plate (507), a second connecting column (508), a second connecting plate (509), and a bottom wheel (510); the motor (501) is fixedly connected to the left edge of the upper end of the top plate (103); the output shaft of the motor (501) is fixedly connected to the lead screw (503); the first bearing seat (502) and the second bearing seat (504) which are symmetrically distributed about the center of the top plate (103) are fixedly connected to the upper end of the top plate (103); the lead screw (503) is rotatably installed inside the first bearing seat (502) and the second bearing seat (504); the lead screw nut (505) is movably installed on the outer wall of the lead screw (503); the first connecting column (506) is fixedly connected to the lower end of the lead screw nut (505); the outer wall of the first connecting column (506) is in contact with the inner wall of the first chute (104); the first connecting plate (507) is fixedly connected to the lower end of the first connecting column (506); the second connecting columns (508) which are symmetrically distributed about the center of the first connecting plate (507) are fixedly connected to the upper end of the first connecting plate (507); the second connecting plate (509) is fixedly connected to the upper end of the second connecting column (508); the bottom wheels (510) which are symmetrically distributed about the center of the second connecting plate (509) are fixedly connected to the lower end of the second connecting plate (509); the lower end of the bottom wheel (510) is in contact with the upper end of the top plate (103); the second servo electric cylinder (304) which is symmetrically distributed about the center of the first connecting plate (507) is fixedly connected to the lower end of the first connecting plate (507).

7. An immersion coating device for photovoltaic materials to improve efficiency according to claim 2, characterized in that: The drying component (6) includes an infrared dryer body (601), infrared lamp tubes (602), a recycling box (603), and a connecting hose (604); the lower end of the top plate (103) is fixedly connected with infrared dryer bodies (601) symmetrically distributed about the center of the top plate (103); one end of the infrared dryer body (601) close to the center of the bottom plate (101) is provided with evenly distributed infrared lamp tubes (602); the lower ends of two recycling boxes (603) are jointly fixedly connected with a recycling box (603); the recycling box (603) is a rectangular box body with an open upper end; the lower end of the recycling box (603) is fixedly connected with a connecting hose (604); the other end of the connecting hose (604) is fixedly connected to the upper side edge of the right end of the first box body (202); the spaces inside the recycling box (603), the connecting hose (604), and the first box body (202) are connected and communicated with each other.