Manufacturing method of a double-sided power generation photovoltaic insulating glass

By designing a grinder with integrated transmission, glue scraping, grinding and cleaning functions, the problem of slow processing speed and easy breakage of traditional double-sided power generation photovoltaic hollow glass is solved, automatic processing and efficient cleaning are achieved, and overall processing efficiency is improved.

CN116845122BActive Publication Date: 2025-06-13GUANGXI YUANDA GLASS ENERGY SAVING TECH JOINT CO LTD
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Patent Information

Application Number
CN202310933730.6
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2023-07-27
Publication Date
2025-06-13
Estimated Expiration
2043-07-27

AI Technical Summary

Technical Problem

The processing of traditional double-sided power generation photovoltaic hollow glass requires the steps of removing glue and grinding the edge separately, resulting in slow processing speed and easy to break. Dust or glass slag will be generated during grinding, affecting the operation of the machinery.

Method used

A edge grinding machine including transmission assembly, glue scraping assembly, grinding assembly and cleaning assembly is designed. The double-sided power generation photovoltaic hollow glass body is transmitted through a conveyor belt, and the glue scraping, grinding and cleaning are performed in turn during the transmission process to achieve automatic processing.

Benefits of technology

The processing efficiency of double-sided power generation photovoltaic hollow glass is improved, manual operation is reduced, dust is avoided from entering the machine, and the safety and efficiency of the processing process is ensured.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention relates to the technical field of glass manufacturing, and specifically to a double-sided power generation photovoltaic insulating glass and a manufacturing method thereof. A double-sided power generation photovoltaic insulating glass and a manufacturing method thereof include the following steps. The beneficial effects of the present invention are as follows: By setting a transmission component and a grinding component, the power provided by the motor drives the first transmission shaft to rotate. The first transmission shaft drives the conveyor belt, thereby slowly transmitting the double-sided power generation photovoltaic insulating glass body. The power of the first transmission shaft is transmitted to the second transmission shaft through the first transmission belt. The second transmission shaft drives the first gear, the first gear drives the second gear to rotate, and the second gear drives the first grinding head to rotate, thereby grinding the corners of the double-sided power generation photovoltaic insulating glass body. The power of the second transmission shaft is transmitted to the third transmission rod through the second transmission belt, and the third transmission rod drives the second grinding head to rotate, so that the second grinding head grinds the corners of the double-sided power generation photovoltaic insulating glass body.
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Description

Technical Field

[0001] The present invention relates to the technical field of glass production, and specifically to a double-sided power generation photovoltaic insulating glass and a manufacturing method thereof. Background Art

[0002] Glass is an amorphous inorganic non-metallic material, generally made of a variety of inorganic minerals as the main raw materials, and a small amount of auxiliary raw materials are added. Double-sided glass is two pieces of glass adhered together on the edge with double-sided tape. Insulating glass means that a molecular sieve (specially used to absorb moisture in the air) is installed in the middle of the glass, and the two pieces of glass are adhered to each other, and the outer edge is sealed to isolate the air between the two layers of glass from the outside. Double-sided power generation photovoltaic insulating glass is based on insulating glass and adds photovoltaic panels.

[0003] Currently, when manufacturing double-sided power generation photovoltaic insulating glass, it is necessary to remove the glue on the corners of the double-sided power generation photovoltaic insulating glass and polish the corners. The processing of traditional double-sided power generation photovoltaic insulating glass requires the steps of removing glue and edge grinding to be carried out separately, and two devices are needed. This method has a slow processing speed, and during the processing, the double-sided power generation photovoltaic insulating glass is transported back and forth, which easily causes the double-sided power generation photovoltaic insulating glass to break, and is very inconvenient. Moreover, dust or glass fragments will be generated during the edge grinding process. If not processed in time, these waste residues may enter the mechanical interior, thereby affecting the operation of the machine, which is rather troublesome. Summary of the Invention

[0004] In view of the technical problems existing in the prior art, the present invention provides a double-sided power generation photovoltaic insulating glass and a manufacturing method thereof to solve the problem that the processing of traditional double-sided power generation photovoltaic insulating glass requires the steps of removing glue and edge grinding to be carried out separately, and two devices are needed. This method has a slow processing speed, and during the processing, the double-sided power generation photovoltaic insulating glass is transported back and forth, which easily causes the double-sided power generation photovoltaic insulating glass to break, and is very inconvenient. Moreover, dust or glass fragments will be generated during the edge grinding process. If not processed in time, these waste residues may enter the mechanical interior, thereby affecting the operation of the machine, which is rather troublesome.

[0005] The technical solution of the present invention to solve the above technical problems is as follows: A double-sided power generation photovoltaic insulating glass and a manufacturing method thereof, including the following steps:

[0006] SS001. Cut the glass according to production requirements, and perform cleaning and drying;

[0007] SS002. Fix the photovoltaic panel between two groups of glass;

[0008] SS003. Install a molecular sieve in the middle of the two pieces of glass, then bond the two pieces of glass with butyl glue, and seal the outer edge with polysulfide glue;

[0009] SS004. Use an edging machine to remove glue and polish the outer side of the glass;

[0010] SS005. Let the finished product stand still, and then connect the solar cell laminate to the junction box.

[0011] The beneficial effects of the present invention are as follows:

[0012] 1). By setting a transmission component and a polishing component, driven by the power provided by the motor, the first transmission shaft rotates, the first transmission shaft drives the conveyor belt, thereby slowly transmitting the double-sided power generation photovoltaic insulating glass body. The power of the first transmission shaft is transmitted to the second transmission shaft through the first transmission belt, the second transmission shaft drives the first gear, the first gear drives the second gear to rotate, and the second gear drives the first polishing head to rotate, so as to polish the corners of the double-sided power generation photovoltaic insulating glass body. The power of the second transmission shaft is transmitted to the third transmission rod through the second transmission belt, and the third transmission rod drives the second polishing head to rotate, so that the second polishing head polishes the corners of the double-sided power generation photovoltaic insulating glass body. Thus, while the double-sided power generation photovoltaic insulating glass body is being conveyed, the corners of the double-sided power generation photovoltaic insulating glass body are quickly polished by the polishing device, greatly improving the processing efficiency of the double-sided power generation photovoltaic insulating glass body.

[0013] 2). By setting a glue scraping component, when the double-sided power generation photovoltaic insulating glass body is being conveyed, the glue overflowing from the edge of the double-sided power generation photovoltaic insulating glass body is scraped off by the scraper, and the overflowing glue enters the collection tank through the material dropping hole, which is convenient for cleaning processing waste. After processing, pull the first handle, the first handle drives the second mounting plate, the second mounting plate drives the connecting rod, and the connecting rod drives the first mounting plate, so as to pull out the first mounting plate from the collection tank. The first mounting plate scrapes the collected glue out of the collection tank, thereby cleaning the collection tank, greatly improving the practicability of the device.

[0014] 3) By setting a cleaning component, when the double-sided photovoltaic insulating glass body is being transported, the power of the rotation of the third transmission rod is transmitted to the fourth transmission shaft through the third transmission belt, and the fourth transmission shaft drives the fan blades to rotate, and the fan blades emit suction, so that the dust on the double-sided photovoltaic insulating glass body enters the fourth mounting block through the air intake port, and finally falls into the collection box through the air outlet, and the power of the first transmission shaft is transmitted to the third gear through the fourth transmission belt. The upper and lower sets of fifth transmission shafts rotate simultaneously under the action of the third gear, thereby driving the sponge pad to wipe the upper and lower ends of the double-sided photovoltaic insulating glass body, so as to clean the dust on the double-sided photovoltaic insulating glass body, and the dust cleaned by the sponge pad finally falls into the collection box. At the same time, the waste produced by the double-sided photovoltaic insulating glass body during the processing process finally falls into the collection box. After the processing is completed, the second handle is pulled to pull out the collection box for cleaning. The cleaning component is used to prevent the splashing dust of the double-sided photovoltaic insulating glass body during the processing from entering the machine, and the dust is prevented from affecting the operation of the machine.

[0015] Based on the above technical solution, the present invention can also be improved as follows.

[0016] Furthermore, the edge grinding machine includes side panels, and the front and rear sides of the lower ends of the two groups of side panels are fixedly connected with support columns. The inner sides of the two groups of side panels are provided with a double-sided photovoltaic hollow glass body through a transmission assembly, a scraper assembly is provided on the front side of the side panel, a grinding assembly is provided in the middle of the side panel, and a cleaning assembly is provided on the rear side of the side panel.

[0017] The beneficial effect of adopting the above further scheme is that the double-sided photovoltaic hollow glass body is transferred through the conveying component. During the conveying process, the double-sided photovoltaic hollow glass body first passes through the scraping component to remove the glue overflowing from the edge of the double-sided photovoltaic hollow glass body, and then passes through the grinding component to grind the edges and corners of the double-sided photovoltaic hollow glass body, and finally passes through the cleaning component to collect and clean the dust generated during the grinding of the double-sided photovoltaic hollow glass body, and finally the conveying component transfers the double-sided photovoltaic hollow glass body to the next processing step.

[0018] Furthermore, the transmission assembly includes a motor, and a motor is fixedly installed on the front side of the side panel on the right side. The front and rear sides of the two groups of side panels are rotatably connected to the same first transmission shaft, and the right end of the first transmission shaft on the front side is fixedly connected to the left end of the motor output shaft. The outer sides of the two groups of the first transmission shafts are sleeved with the same conveyor belt, and the upper and lower ends of the conveyor belt are fixedly connected to a stop plate. The double-sided photovoltaic hollow glass body is placed on the upper end of the conveyor belt, and the front end of the double-sided photovoltaic hollow glass body is against the rear side of the stop plate.

[0019] The beneficial effect of adopting the above further solution is that, driven by the power provided by the motor, the motor drives the first transmission shaft to rotate. Under the action of the two groups of first transmission shafts, the conveyor belt rotates, so that the pressing plate presses against the double-sided power generation photovoltaic hollow glass body for transmission.

[0020] Further, the grinding assembly includes a first mounting block. The middle parts of the two side plates are fixedly connected with the first mounting block. The middle part of the first mounting block is rotatably connected with a second transmission shaft. The outer side of the second transmission shaft and the right end of the front first transmission shaft are sleeved with the same first transmission belt. The inner side of the second transmission shaft is fixedly connected with a first gear. The upper and lower ends of the first gear are both meshed with a second gear. The second gear is rotatably connected to the middle part of the first mounting block. The inner side of the second gear is fixedly connected with a first grinding head.

[0021] The beneficial effect of adopting the above further solution is that when the double-sided power generation photovoltaic hollow glass body is being transmitted, the power of the first transmission shaft is transmitted to the second transmission shaft through the first transmission belt. The second transmission shaft drives the first gear, the first gear drives the second gear to rotate, and the second gear drives the first grinding head to rotate, so as to grind the corners of the double-sided power generation photovoltaic hollow glass body.

[0022] Further, the middle parts of the two side plates are both fixedly connected with a second mounting block. The second mounting block is arranged behind the first mounting block. The middle part of the second mounting block is rotatably connected with a third transmission rod. The inner side of the third transmission rod is fixedly connected with a second grinding head. The outer side of the third transmission rod and the outer side of the second transmission shaft are sleeved with the same second transmission belt.

[0023] The beneficial effect of adopting the above further solution is that when the double-sided power generation photovoltaic hollow glass body is being transmitted, the second transmission shaft rotates. The power of the second transmission shaft is transmitted to the third transmission rod through the second transmission belt. The third transmission rod drives the second grinding head to rotate, so that the second grinding head grinds the corners of the double-sided power generation photovoltaic hollow glass body.

[0024] Further, the glue scraping assembly includes a third mounting block. The inner sides of the two side plates are both fixedly connected with the third mounting block. The inner side of the upper end of the third mounting block is fixedly connected with a scraper. A material dropping hole is opened in the inner side of the upper end of the third mounting block.

[0025] The beneficial effect of adopting the above further solution is that when the double-sided power generation photovoltaic hollow glass body is being transmitted, the double-sided power generation photovoltaic hollow glass body passes through the third mounting block. The glue that moves out of the edge of the double-sided power generation photovoltaic hollow glass body is scraped off by the scraper, and the overflowing glue enters the collection tank through the material dropping hole.

[0026] Further, a first mounting plate is inserted in the middle of the third mounting block. A collection groove matching with the first mounting plate is formed in the middle of the third mounting block. A connecting rod is fixedly connected to the upper end of the first mounting plate. A second mounting plate is fixedly connected to the upper end of the connecting rod. A first handle is fixedly connected to the upper end of the second mounting plate.

[0027] The beneficial effect of adopting the above further scheme is that after the double-sided power generation photovoltaic insulating glass main body is processed, pull the first handle. The first handle drives the second mounting plate, the second mounting plate drives the connecting rod, and the connecting rod drives the first mounting plate, so as to pull out the first mounting plate from the collection groove. The first mounting plate scrapes the collected glue out of the collection groove, thereby cleaning the collection groove.

[0028] Further, the cleaning assembly includes a fourth mounting block. Fourth mounting blocks are fixedly connected to the rear sides of the two side plates. A fourth transmission shaft is rotatably connected to the middle of the fourth mounting block. A fan blade is fixedly connected to the middle of the fourth transmission shaft. Third mounting plates are fixedly connected to the upper and lower ends inside the fourth mounting block. An air suction port is formed inside the third mounting plate. An air outlet is formed at the lower end of the fourth mounting block. The outer sides of the fourth transmission shaft and the third transmission rod are sleeved with the same third transmission belt.

[0029] The beneficial effect of adopting the above further scheme is that when the double-sided power generation photovoltaic insulating glass main body is being conveyed, the third transmission rod rotates. The power of the rotation of the third transmission rod is transmitted to the fourth transmission shaft through the third transmission belt. The fourth transmission shaft drives the fan blade to rotate. The fan blade generates suction, so that the dust on the double-sided power generation photovoltaic insulating glass main body enters the fourth mounting block through the air suction port and finally falls into the collection box through the air outlet, thereby cleaning the dust on the surface of the double-sided power generation photovoltaic insulating glass main body.

[0030] Further, two groups of fifth transmission shafts are rotatably connected to the upper and lower ends of the rear sides of the two side plates. A sponge pad is adhered to the inner side of the fifth transmission shaft. The outer sides of the four sponge pads are attached to the double-sided power generation photovoltaic insulating glass main body. A third gear is fixedly connected to the outer side of the fifth transmission shaft. The upper and lower third gears mesh with each other. The outer ends of the lower fifth transmission shaft and the outer end of the rear first transmission shaft are sleeved with the same fourth transmission belt.

[0031] The beneficial effect of adopting the above further scheme is that when the double-sided power generation photovoltaic insulating glass main body is being conveyed, the first transmission shaft rotates. The power of the first transmission shaft is transmitted to the third gear through the fourth transmission belt. The upper and lower fifth transmission shafts rotate simultaneously under the action of the third gear, so as to drive the sponge pads to wipe the upper and lower ends of the double-sided power generation photovoltaic insulating glass main body, thereby cleaning the surface of the double-sided power generation photovoltaic insulating glass main body.

[0032] Furthermore, a collection box is inserted into the lower ends of the two groups of side panels, a slot cooperating with the collection box is opened at the lower end of the side panel, and a second handle is fixedly connected to the front side of the collection box.

[0033] The beneficial effect of adopting the above further scheme is that during the whole processing process, the waste materials from the processing of the double-sided photovoltaic insulating glass body eventually fall into the collection box. After the processing is completed, the second handle is pulled to pull out the collection box for cleaning. BRIEF DESCRIPTION OF THE DRAWINGS

[0034] Figure 1 It is a schematic diagram of the manufacturing process of the present invention;

[0035] Figure 2 It is a schematic diagram of the three-dimensional structure of the present invention;

[0036] Figure 3 It is a three-dimensional structural schematic diagram of the double-sided photovoltaic insulating glass body, the conveying assembly, the grinding assembly, the scraping assembly and the cleaning assembly of the present invention;

[0037] Figure 4 For the present invention Figure 3 A schematic diagram of the structure enlargement at the center A;

[0038] Figure 5 It is a schematic diagram of the three-dimensional structure of the second transmission shaft, the first gear, the second gear, the first grinding head, the second mounting block, the third transmission rod, the second grinding head and the second transmission belt of the present invention;

[0039] Figure 6 It is a schematic diagram of the three-dimensional structure of the scraper assembly of the present invention;

[0040] Figure 7 For the present invention Figure 6 A schematic diagram of a front cross-section of the structure;

[0041] Figure 8 It is a schematic diagram of the three-dimensional structure of the fourth mounting block, the fourth transmission shaft, the third mounting plate, the air intake port and the air outlet of the present invention;

[0042] Figure 9 For the present invention Figure 8 A schematic diagram of a front cross-section of the structure;

[0043] Figure 10 It is a three-dimensional structural schematic diagram of the side panel, double-sided photovoltaic insulating glass body, motor, first transmission shaft, conveyor belt, abutment plate, slot and support column of the present invention.

[0044] In the accompanying drawings, the components represented by the reference numerals are listed as follows:

[0045] 1. Side plate; 2. Double-sided power generation photovoltaic insulating glass body; 311. Motor; 312. First transmission shaft; 313. Conveyor belt; 314. Baffle; 411. First mounting block; 412. Second transmission shaft; 413. First transmission belt; 414. First gear; 415. Second gear; 416. First grinding head; 417. Second mounting block; 418. Third transmission rod; 419. Second grinding head; 420. Second transmission belt; 511. Third mounting block; 512. Scraper; 513. Discharge hole; 514. First mounting plate; 515. Collection tank; 516. Connecting rod; 517. Second mounting plate; 518. First handle; 611. Fourth mounting block; 612. Fourth transmission shaft; 613. Fan blade; 614. Third mounting plate; 615. Air inlet; 616. Air outlet; 617. Third transmission belt; 618. Fifth transmission shaft; 619. Sponge pad; 620. Third gear; 621. Fourth transmission belt; 622. Collection box; 623. Slot; 624. Second handle; 7. Support column. Detailed implementation manners

[0046] The principles and features of the present invention will be described below in conjunction with the accompanying drawings. The examples given are only for explaining the present invention and are not intended to limit the scope of the present invention.

[0047] Glass is an amorphous inorganic non-metallic material, generally made with a variety of inorganic minerals as the main raw materials, and a small amount of auxiliary raw materials are added. Double-sided glass is two pieces of glass adhered together at the edges with double-sided tape. Insulating glass means that there is a molecular sieve (specially designed to absorb moisture in the air) installed in the middle of the glass, and the two pieces of glass are bonded to each other, and the outer edge is sealed to isolate the air between the two layers of glass from the outside. Double-sided power generation photovoltaic insulating glass is based on insulating glass and incorporates photovoltaic panels.

[0048] After in-depth investigation and research on the production process of double-sided power generation photovoltaic insulating glass, the inventor found that there is currently no device that can simultaneously scrape glue and grind the edges, resulting in a slow processing speed of double-sided power generation photovoltaic insulating glass, and it is also very troublesome to transport double-sided power generation photovoltaic insulating glass back and forth on the device. In response to this, the inventor proposed a double-sided power generation photovoltaic insulating glass and manufacturing method to solve the above problems.

[0049] The present invention provides the following preferred embodiments

[0050] Such as Figure 1 、 Figure 2 、 Figure 3 、 Figure 4 、 Figure 5 、 Figure 6 、 Figure 7 、 Figure 8 、 Figure 9 And Figure 10As shown, a double-sided power generation photovoltaic insulating glass and its manufacturing method include the following steps:

[0051] SS001. Cut the glass according to production requirements, and then clean and dry it.

[0052] SS002. Fix the photovoltaic panel between two groups of glass.

[0053] SS003. Install a molecular sieve between two pieces of glass, then bond the two pieces of glass with butyl glue, and seal the outer edge with polysulfide glue.

[0054] SS004. Use an edge grinding machine to remove glue and polish the outer side of the glass.

[0055] SS005. Let the finished product stand still, and then connect the solar cell laminate to the junction box.

[0056] The edge grinding machine includes side plates 1. The front and rear sides of the lower ends of the two groups of side plates 1 are fixedly connected with support columns 7. A double-sided power generation photovoltaic insulating glass main body 2 is arranged between the two groups of side plates 1 through a transmission component. A glue scraping component is arranged on the front side of the side plate 1, a grinding component is arranged in the middle of the side plate 1, and a cleaning component is arranged on the rear side of the side plate 1.

[0057] In this embodiment, as Figure 2-8 shown, the transmission component includes a motor 311. The motor 311 is fixedly installed on the front side of the right side plate 1. The front and rear sides of the two groups of side plates 1 are rotatably connected with the same first transmission shaft 312. The right end of the front first transmission shaft 312 is fixedly connected to the left end of the output shaft of the motor 311. The outer sides of the two groups of first transmission shafts 312 are sleeved with the same conveyor belt 313. The upper end and the lower end of the conveyor belt 313 are fixedly connected with a pressing plate 314. The double-sided power generation photovoltaic insulating glass main body 2 is placed on the upper end of the conveyor belt 313. The front end of the double-sided power generation photovoltaic insulating glass main body 2 abuts against the rear side of the pressing plate 314. Driven by the power provided by the motor 311, the motor 311 drives the first transmission shaft 312 to rotate. Under the action of the two groups of first transmission shafts 312, the conveyor belt 313 rotates, so that the pressing plate 314 abuts against the double-sided power generation photovoltaic insulating glass main body 2 and conveys it.

[0058] In this embodiment, as Figure 2 、 Figure 3 、 Figure 4 and Figure 5As shown in the figure, the grinding assembly includes a first mounting block 411. The middle parts of two groups of side plates 1 are fixedly connected with the first mounting block 411. A second transmission shaft 412 is rotatably connected to the middle of the first mounting block 411. The outer side and the front side of the second transmission shaft 412 and the right end of the first transmission shaft 312 are sleeved with the same first transmission belt 413. The inner side of the second transmission shaft 412 is fixedly connected with a first gear 414. The upper and lower ends of the first gear 414 are both meshed with a second gear 415. The second gear 415 is rotatably connected to the middle of the first mounting block 411. The inner side of the second gear 415 is fixedly connected with a first grinding head 416. When the double-sided power generation photovoltaic hollow glass body 2 is being conveyed, the power of the first transmission shaft 312 is transmitted to the second transmission shaft 412 through the first transmission belt 413. The second transmission shaft 412 drives the first gear 414, the first gear 414 drives the second gear 415 to rotate, and the second gear 415 drives the first grinding head 416 to rotate, so as to grind the corners of the double-sided power generation photovoltaic hollow glass body 2.

[0059] In this embodiment, as Figure 2 , Figure 3 , Figure 4 and Figure 5 shown, the middle parts of two groups of side plates 1 are fixedly connected with second mounting blocks 417. The second mounting blocks 417 are arranged behind the first mounting blocks 411. A third transmission rod 418 is rotatably connected to the middle of the second mounting block 417. The inner side of the third transmission rod 418 is fixedly connected with a second grinding head 419. The outer side of the third transmission rod 418 and the outer side of the second transmission shaft 412 are sleeved with the same second transmission belt 420. When the double-sided power generation photovoltaic hollow glass body 2 is being conveyed, the second transmission shaft 412 rotates, and the power of the second transmission shaft 412 is transmitted to the third transmission rod 418 through the second transmission belt 420. The third transmission rod 418 drives the second grinding head 419 to rotate, so that the second grinding head 419 grinds the corners of the double-sided power generation photovoltaic hollow glass body 2.

[0060] In this embodiment, as Figure 2 , Figure 6 and Figure 7 shown, the glue scraping assembly includes a third mounting block 511. The inner sides of two groups of side plates 1 are fixedly connected with the third mounting block 511. The inner side of the upper end of the third mounting block 511 is fixedly connected with a scraper 512. A material dropping hole 513 is opened in the inner side of the upper end of the third mounting block 511. When the double-sided power generation photovoltaic hollow glass body 2 is being conveyed, the double-sided power generation photovoltaic hollow glass body 2 passes through the third mounting block 511, and the glue moved out from the edge of the double-sided power generation photovoltaic hollow glass body 2 is scraped off by the scraper 512. The overflowing glue enters the collection tank 515 through the material dropping hole 513.

[0061] In this embodiment, as Figure 6 and Figure 7As shown, a first mounting plate 514 is inserted in the middle of the third mounting block 511. A collection groove 515 that cooperates with the first mounting plate 514 is formed in the middle of the third mounting block 511. A connecting rod 516 is fixedly connected to the upper end of the first mounting plate 514. A second mounting plate 517 is fixedly connected to the upper end of the connecting rod 516. A first handle 518 is fixedly connected to the upper end of the second mounting plate 517. After the double-sided power generation photovoltaic hollow glass body 2 is processed, pull the first handle 518. The first handle 518 drives the second mounting plate 517. The second mounting plate 517 drives the connecting rod 516. The connecting rod 516 drives the first mounting plate 514. Thus, the first mounting plate 514 is pulled out from the collection groove 515. The first mounting plate 514 scrapes the collected glue out of the collection groove 515. Thus, the collection groove 515 is cleaned.

[0062] In this embodiment, as Figure 3 , Figure 4 , Figure 8 and Figure 9 shown, the cleaning assembly includes a fourth mounting block 611. Fourth mounting blocks 611 are fixedly connected to the rear sides of both side plates 1. A fourth transmission shaft 612 is rotatably connected to the middle of the fourth mounting block 611. A fan blade 613 is fixedly connected to the middle of the fourth transmission shaft 612. Third mounting plates 614 are fixedly connected to the upper and lower ends inside the fourth mounting block 611. An air suction port 615 is formed inside the third mounting plate 614. An air outlet 616 is formed at the lower end of the fourth mounting block 611. The outer sides of the fourth transmission shaft 612 and the third transmission rod 418 are sleeved with the same third transmission belt 617. When the double-sided power generation photovoltaic hollow glass body 2 is being conveyed, the third transmission rod 418 rotates. The power of the rotation of the third transmission rod 418 is transmitted to the fourth transmission shaft 612 through the third transmission belt 617. The fourth transmission shaft 612 drives the fan blade 613 to rotate. The fan blade 613 generates suction. Thus, the dust on the double-sided power generation photovoltaic hollow glass body 2 enters the fourth mounting block 611 through the air suction port 615 and finally falls into the collection box 622 through the air outlet 616. Thus, the dust on the surface of the double-sided power generation photovoltaic hollow glass body 2 is cleaned up.

[0063] In this embodiment, as Figure 3 and Figure 4As shown, at the upper and lower ends of the rear sides of the two groups of side plates 1, there are two groups of fifth drive shafts 618 rotatably connected. A sponge pad 619 is adhered to the inner side of the fifth drive shaft 618. The outer sides of the four sponge pads 619 are in mutual contact with the double-sided power generation photovoltaic hollow glass body 2. A third gear 620 is fixedly connected to the outer side of the fifth drive shaft 618. The upper and lower two third gears 620 are meshed with each other. The outer ends of the lower fifth drive shaft 618 and the outer end of the rear first drive shaft 312 are sleeved with the same fourth transmission belt 621. When the double-sided power generation photovoltaic hollow glass body 2 is being conveyed, the first drive shaft 312 rotates, and the power of the first drive shaft 312 is transmitted to the third gear 620 through the fourth transmission belt 621. The upper and lower two fifth drive shafts 618 rotate simultaneously under the action of the third gear 620, thereby driving the sponge pads 619 to wipe the upper and lower ends of the double-sided power generation photovoltaic hollow glass body 2, so as to clean the surface of the double-sided power generation photovoltaic hollow glass body 2.

[0064] In this embodiment, as Figure 2 and Figure 10 shown, collection boxes 622 are inserted at the lower ends of the two groups of side plates 1. Slots 623 that cooperate with the collection boxes 622 are opened at the lower ends of the side plates 1. A second handle 624 is fixedly connected to the front side of the collection box 622. During the entire processing process, the waste materials generated during the processing of the double-sided power generation photovoltaic hollow glass body 2 finally fall into the collection box 622. After the processing is completed, the second handle 624 is pulled to draw out the collection box 622 for cleaning.

[0065] It should be noted that in this embodiment,

[0066] The specific usage method steps of the present invention are as follows:

[0067] When in use, first start the device. Through the power provided by the motor 311, the motor 311 drives the first drive shaft 312 to rotate. Under the action of the two first drive shafts 312, the conveyor belt 313 rotates, so that the pressing plate 314 presses against the double-sided power generation photovoltaic hollow glass body 2 to start conveying;

[0068] The double-sided power generation photovoltaic hollow glass body 2 first passes through the third mounting block 511. The glue that moves out of the edge of the double-sided power generation photovoltaic hollow glass body 2 is scraped off by the scraping plate 512. The overflowing glue enters the collection groove 515 through the material dropping hole 513;

[0069] Then, through the first mounting block 411 and the second mounting block 417, the power of the first transmission shaft 312 is transmitted to the second transmission shaft 412 through the first transmission belt 413. The second transmission shaft 412 drives the first gear 414, the first gear 414 drives the second gear 415 to rotate, and the second gear 415 drives the first grinding head 416 to rotate. The power of the second transmission shaft 412 is transmitted to the third transmission rod 418 through the second transmission belt 420, and the third transmission rod 418 drives the second grinding head 419 to rotate, so that the first grinding head 416 and the second grinding head 419 grind the edges of the double-sided power generation photovoltaic insulating glass body 2;

[0070] Then, through the fourth mounting block 611, the power of the rotating third transmission rod 418 is transmitted to the fourth transmission shaft 612 through the third transmission belt 617. The fourth transmission shaft 612 drives the fan blade 613 to rotate, and the fan blade 613 generates suction, so that the dust on the double-sided power generation photovoltaic insulating glass body 2 enters the fourth mounting block 611 through the suction port 615 and finally falls into the collection box 622 through the air outlet 616, thereby cleaning the dust on the surface of the double-sided power generation photovoltaic insulating glass body 2;

[0071] Finally, through the sponge pad 619, the power of the first transmission shaft 312 is transmitted to the third gear 620 through the fourth transmission belt 621. The upper and lower groups of fifth transmission shafts 618 rotate simultaneously under the action of the third gear 620, thereby driving the sponge pad 619 to wipe the upper and lower ends of the double-sided power generation photovoltaic insulating glass body 2, thereby cleaning the surface of the double-sided power generation photovoltaic insulating glass body 2;

[0072] When the double-sided power generation photovoltaic insulating glass body 2 completely passes through the sponge pad 619, the processing of the double-sided power generation photovoltaic insulating glass body 2 on this device is completed. Pull the second handle 624 to draw out the collection box 622 and clean the collection box 622. Pull the first handle 518, the first handle 518 drives the second mounting plate 517, the second mounting plate 517 drives the connecting rod 516, and the connecting rod 516 drives the first mounting plate 514, thereby pulling out the first mounting plate 514 from the collection groove 515. The first mounting plate 514 scrapes the collected glue from the collection groove 515, thereby cleaning the collection groove 515.

[0073] In summary, the beneficial effects of the present invention are specifically reflected in that as the double-sided power generation photovoltaic insulating glass body 2 is conveyed, the device sequentially scrapes glue, grinds, and cleans the double-sided power generation photovoltaic insulating glass body 2. The whole process does not require manual operation and automatically completes three steps, making the processing of the double-sided power generation photovoltaic insulating glass body 2 more convenient, improving the processing efficiency of the double-sided power generation photovoltaic insulating glass body 2, and at the same time, the device has three functions and is convenient to use.

Claims

1. A manufacturing method of a double-sided power generation photovoltaic insulating glass, characterized in that, it includes the following steps: SS001. Cut the glass according to production requirements, and then clean and dry it; SS002. Fix the photovoltaic panel between two groups of glass; SS003. Install a molecular sieve between two pieces of glass, then bond the two pieces of glass with butyl rubber, and seal the outer edge with polysulfide rubber; SS004. Use an edge grinding machine to remove glue and polish the outer side of the glass; SS005. Let the finished product stand still, and then connect the solar cell stack to the junction box; The edge grinding machine includes side plates (1), and support columns (7) are fixedly connected to the front and rear sides of the lower ends of the two groups of side plates (1); A double-sided power generation photovoltaic insulating glass body (2) is arranged between the inner sides of the two groups of side plates (1) through a transmission component, and a glue scraping component is arranged on the front side of the side plates (1); A grinding component is arranged in the middle of the side plate (1), and a cleaning component is arranged at the rear side of the side plate (1); the transmission component includes a motor (311), and the motor (311) is fixedly installed on the front side of the right side plate (1). The front and rear sides of the two side plates (1) are rotatably connected with the same first transmission shaft (312). The right end of the front first transmission shaft (312) is fixedly connected to the left end of the output shaft of the motor (311). The outer sides of the two first transmission shafts (312) are sleeved with the same conveyor belt (313). The upper and lower ends of the conveyor belt (313) are fixedly connected with abutting plates (314). The double-sided power generation photovoltaic hollow glass body (2) is placed on the upper end of the conveyor belt (313), and the front end of the double-sided power generation photovoltaic hollow glass body (2) abuts against the rear side of the abutting plate (314); the grinding component includes a first mounting block (411). The middle parts of the two side plates (1) are fixedly connected with the first mounting block (411). The middle part of the first mounting block (411) is rotatably connected with a second transmission shaft (412). The outer side of the second transmission shaft (412) and the right end of the front first transmission shaft (312) are sleeved with the same first transmission belt (413). The inner side of the second transmission shaft (412) is fixedly connected with a first gear (414). The upper and lower ends of the first gear (414) are meshed with second gears (415). The second gears (415) are rotatably connected to the middle part of the first mounting block (411). The inner side of the second gear (415) is fixedly connected with a first grinding head (416); the middle parts of the two side plates (1) are fixedly connected with second mounting blocks (417). The second mounting blocks (417) are arranged behind the first mounting blocks (411). The middle part of the second mounting block (417) is rotatably connected with a third transmission rod (418). The inner side of the third transmission rod (418) is fixedly connected with a second grinding head (419). The outer side of the third transmission rod (418) and the outer side of the second transmission shaft (412) are sleeved with the same second transmission belt (420); the glue scraping component includes a third mounting block (511). The inner sides of the two side plates (1) are fixedly connected with the third mounting block (511). The inner side of the upper end of the third mounting block (511) is fixedly connected with a scraping plate (512). A material dropping hole (513) is opened in the inner side of the upper end of the third mounting block (511);The cleaning component includes a fourth mounting block (611). The fourth mounting blocks (611) are fixedly connected to the rear sides of the two side plates (1). A fourth transmission shaft (612) is rotatably connected to the middle of the fourth mounting block (611). A fan blade (613) is fixedly connected to the middle of the fourth transmission shaft (612). The upper and lower ends of the inner side of the fourth mounting block (611) are fixedly connected with third mounting plates (614). An air suction port (615) is formed in the inner side of the third mounting plate (614). An air outlet (616) is formed in the lower end of the fourth mounting block (611). The outer sides of the fourth transmission shaft (612) and the third transmission rod (418) are sleeved with the same third transmission belt (617).; 2. The manufacturing method of a double-sided power generation photovoltaic insulating glass according to claim 1, characterized in that, A first mounting plate (514) is inserted in the middle of the third mounting block (511), and a collecting groove (515) that cooperates with the first mounting plate (514) is opened in the middle of the third mounting block (511).

3. The manufacturing method of a double-sided power generation photovoltaic insulating glass according to claim 2, characterized in that, A connecting rod (516) is fixedly connected to the upper end of the first mounting plate (514), a second mounting plate (517) is fixedly connected to the upper end of the connecting rod (516), and a first handle (518) is fixedly connected to the upper end of the second mounting plate (517).

4. The manufacturing method of a double-sided power generation photovoltaic insulating glass according to claim 1, characterized in that, Two groups of fifth transmission shafts (618) are rotatably connected to the upper and lower ends of the rear sides of the two groups of side plates (1), and a sponge pad (619) is bonded to the inner side of the fifth transmission shaft (618).

5. The manufacturing method of a double-sided power generation photovoltaic insulating glass according to claim 4, characterized in that, The outer sides of the four groups of sponge pads (619) are attached to the double-sided power generation photovoltaic insulating glass body (2), a third gear (620) is fixedly connected to the outer side of the fifth transmission shaft (618), the upper and lower two groups of third gears (620) are meshed with each other, and the outer ends of the lower fifth transmission shaft (618) and the outer end of the first transmission shaft (312) at the rear are sleeved with the same fourth transmission belt (621).

6. The manufacturing method of a double-sided power generation photovoltaic insulating glass according to claim 1, characterized in that, Collecting boxes (622) are inserted into the lower ends of the two groups of side plates (1), slots (623) that cooperate with the collecting boxes (622) are opened at the lower ends of the side plates (1), and a second handle (624) is fixedly connected to the front side of the collecting boxes (622).

Citation Information

Patent Citations

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