Self-energized bimodal dielectric anti-radiation vacuum glass, manufacturing equipment and manufacturing method

By pressing the first tempered glass and the second tempered glass in a vacuum environment and using perovskite photovoltaic materials and graphene materials for photoelectric conversion and power supply, the problem of air ingress in vacuum glass manufacturing is solved, and efficient vacuum formation and self-power supply effects are achieved.

CN120681970AActive Publication Date: 2025-09-23NANJING SHENWEI OPTOELECTRONIC TECH RES INST CO LTD
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Patent Information

Application Number
CN202511027360.5
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-07-24
Publication Date
2025-09-23
Estimated Expiration
2045-07-24

AI Technical Summary

Technical Problem

During the existing vacuum glass manufacturing process, holes need to be punched in the aluminum frame to create a vacuum, which causes air to enter and affects the vacuum effect. In addition, additional structural parts need to be installed to seal the holes, resulting in poor results.

Method used

The first pressure unit and the second pressure unit are used to press the first tempered glass and the second tempered glass together, and a vacuum is formed in a vacuum environment. Perovskite photovoltaic materials and graphene materials are used for photoelectric conversion and power supply, and the sealing is enhanced by combining the conveying and transposition mechanism.

Benefits of technology

It achieves efficient formation of a vacuum environment, enhances sealing, meets the needs of photovoltaic self-power supply and heating, and extends the service life of vacuum glass.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of glass manufacturing, and discloses self-powered bimodal dielectric anti-radiation vacuum glass, manufacturing equipment and a manufacturing method, the self-powered bimodal dielectric anti-radiation vacuum glass comprises a first pressure unit, the first pressure unit comprises a conveying device and a suction cup device; the conveying unit comprises a conveying mechanism and a position changing mechanism, the conveying mechanism comprises a bracket and a driving assembly, the position changing mechanism comprises a supporting rod, a lifting assembly is arranged at the bottom of the supporting rod, and when the conveying mechanism drives the bracket to move to the position changing mechanism through the driving assembly, the supporting rod is lifted by the lifting assembly. The supporting rod is driven by the lifting assembly to execute transposition operation; and the second pressure unit comprises a closed cavity and a base. The first tempered glass, the second tempered glass and the mounting frame are pressed together through the first pressure unit and the second pressure unit, and the first pressure unit and the second pressure unit are operated separately and enter a vacuum environment before the second pressure unit works, so that the vacuum environment between the first tempered glass and the second tempered glass can be effectively formed.
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Description

Technical Field

[0001] The present invention belongs to the technical field of glass manufacturing, and in particular relates to self-powered dual-mode dielectric radiation-proof vacuum glass, a manufacturing device and a manufacturing method. Background Art

[0002] First, tempered glass itself has the function of changing transparency to form two different modes, and the dielectric properties of the glass itself give it a certain radiation protection function. Vacuum glass has excellent sound insulation and heat preservation effects. Combining them together can make the finished glass have radiation protection and sound insulation and heat preservation effects while being able to change the mode.

[0003] A Chinese patent with authorization announcement number CN110723913B discloses a fully automatic vacuum glass manufacturing device. By using an aluminum frame, exhaust holes and glass glue, the original method of drilling metal holes in the outer wall of the glass when manufacturing vacuum glass is changed, thereby increasing the aesthetics of the vacuum glass during use. By using a splint, a first motor and a double-headed threaded rod, two pieces of glass can be directly glued to the aluminum frame at the same time, reducing the time used in the joining process and thereby improving the practicality of the overall mechanism. By using a spring, a push rod and a clamping plate, the installation and disassembly of the aluminum frame is facilitated, greatly improving people's demand for the use of vacuum glass manufacturing.

[0004] However, this technical solution still has at least the following drawbacks: it requires punching holes in the aluminum frame during vacuuming, and requires additional structural components to immediately seal the holes after vacuuming. During this process, a small amount of air still enters, resulting in poor results. In view of this, the present invention is proposed. Summary of the Invention

[0005] To solve the above technical problems, the present invention provides self-powered dual-mode dielectric radiation-proof vacuum glass, manufacturing equipment and manufacturing method. The first tempered glass, the second tempered glass and the mounting frame are pressed together by a first pressure unit and a second pressure unit, and the two are operated separately and enter a vacuum environment before the second pressure unit works, which can effectively form a vacuum environment between the first tempered glass and the second tempered glass.

[0006] The technical solution adopted by the present invention to solve its technical problem is:

[0007] Self-powered dual-mode dielectric radiation-proof vacuum glass includes a mounting frame, a first tempered glass, and a second tempered glass. The mounting frame has a convex cross-section so that the first tempered glass and the second tempered glass form a vacuum gap after being installed with the mounting frame in a vacuum environment. The first tempered glass is coated with a perovskite photovoltaic material on one side of the vacuum gap, and the second tempered glass is coated with a graphene material on the other side of the vacuum gap. The perovskite photovoltaic material on the first tempered glass provides power to the graphene material on the second tempered glass after photoelectric conversion.

[0008] Self-powered dual-mode dielectric radiation-proof vacuum glass manufacturing equipment, including:

[0009] a first pressure unit, the first pressure unit comprising a conveying device and a suction cup device;

[0010] The conveying unit includes a conveying mechanism and a shifting mechanism. The conveying mechanism includes a bracket and a driving assembly. The shifting mechanism includes a supporting rod. A lifting assembly is provided at the bottom of the supporting rod. When the conveying mechanism drives the bracket to move to the shifting mechanism through the driving assembly, the lifting assembly drives the supporting rod to perform the shifting operation.

[0011] The second pressure unit includes a closed cavity and a base.

[0012] As a preferred embodiment of the present invention, the conveying unit also includes an alignment mechanism, which includes a support frame, and the support frame is arranged at an angle. A support plate is installed on the support frame, and a first guide plate is also fixedly installed on the top of the support frame. One end of the conveying device is aligned with one end of the support frame.

[0013] As a preferred embodiment of the present invention, the shifting mechanism also includes a mounting seat, a transmission assembly is provided on the top of the mounting seat, the transmission assembly includes a first rotating shaft and a second rotating shaft, and the first rotating shaft and the second rotating shaft are meshed and connected by a bevel gear, the lifting assembly includes a support member, the support member is fixedly installed on the bottom of the support rod, and a rotating block is rotatably installed on the bottom of the support member, and the rotating block is fixedly connected to the first rotating shaft.

[0014] As a preferred embodiment of the present invention, the conveying mechanism also includes a mounting frame, which is rotatably connected to the bracket, and the driving assembly includes a power device, which is fixedly connected to the mounting frame, and a second gear is installed at the output end of the power device, and the bottom of the second gear is meshed with a second rack, and the second rack is fixedly connected to the mounting seat, and a first guide rod and a second guide rod are fixedly installed on the support frame and the mounting seat respectively, the first guide rod and the second guide rod are fixedly connected to each other, and the mounting frame is slidably connected to the second guide rod.

[0015] As a preferred embodiment of the present invention, a pushing assembly is provided on the top of the mounting seat, and the pushing assembly includes a connecting block, a column movably inserted on the connecting block, a positioning hole is provided on the mounting seat, the positioning hole is adapted to the column, a cavity is provided in the column, a pad is movably connected inside the cavity of the column, and the pad is fixedly connected to the connecting block, a return spring is provided in the cavity of the column, a second guide plate is fixedly installed on one side of the top of the column, a telescopic rod is fixedly installed on the bottom of the mounting frame, and a stop column is fixedly installed on the bottom of the telescopic rod, a pressure spring movably sleeved on the telescopic rod, and the telescopic rod drives the stop column to press against the column to move the connecting block, and is staggered with the stop column when it presses against the second guide plate.

[0016] As a preferred embodiment of the present invention, the pushing assembly further comprises a seesaw, on which a fixed plate is rotatably mounted, the fixed plate being fixedly connected to the mounting seat, one end of the seesaw being adapted to the second guide plate so that the seesaw is driven to rotate when the second guide plate descends, and the other end of the seesaw being adapted to the stop post so that the seesaw is driven to rotate in the opposite direction when the stop post moves to the other end;

[0017] A first rack is fixedly mounted on one side of the connecting block, a limiting rod is movably connected to the first rack, the limiting rod is fixedly connected to the mounting seat, a limiting spring is movably sleeved on the limiting rod, a first gear is meshed and connected to the first rack, and the first gear is fixedly connected to the first rotating shaft.

[0018] As a preferred embodiment of the present invention, the second pressure unit also includes a moving mechanism, which includes an electric slider and an electric slide rail. The electric slider is fixedly connected to the closed cavity, a cylinder is fixedly installed on the top of the closed cavity, and a plug-in plate is installed inside the closed cavity. A lifting device is provided at the bottom of the base to drive the lifting of the base, a sealing gasket is installed on the top of the base and the bottom of the closed cavity, and the base is connected to a vacuum pump through a pipeline.

[0019] A method for manufacturing a self-powered dual-mode dielectric radiation-proof vacuum glass is implemented based on a self-powered dual-mode dielectric radiation-proof vacuum glass manufacturing device, and includes the following steps:

[0020] S1. Place the first support frame on a conveying device, transport the first support frame to the position of the suction cup device through the conveying device, suck up the first tempered glass through the suction cup device, and align the first support frame so that the first tempered glass is installed in the first support frame;

[0021] S2. The conveyor operates to cause the first support frame to continue to move, and when it moves to one end of the conveyor, it falls on the support frame. The first guide plate on the support frame and the groove at the bottom of the first support frame interact to correct the position of the first support frame until the first support frame slides into the bracket.

[0022] S3. Start the power device, which enables the mounting bracket to move along the second guide rod through the meshing action of the second gear and the second rack. When the mounting bracket moves, one end of the bracket rests on the first guide rod.

[0023] As a preferred embodiment of the present invention, the following steps are also included:

[0024] S4. When the mounting frame moves, the telescopic rod drives the blocking column to move, and the blocking column pushes the column to drive the connecting block and the first rack to move. The movement of the first rack simultaneously drives the first rotating shaft to rotate, so that the supporting rod descends. When the column moves to the positioning hole, the elastic force of the return spring acts on the column to make it enter the positioning hole, so that the supporting rod remains in the retracted state;

[0025] S5. When the column moves to the positioning hole, the second guide plate is at the top of one end of the seesaw. When the column descends, the second guide plate follows and descends and presses the seesaw. At this time, the other end of the seesaw is tilted. After the column descends, it is staggered with the stop column, allowing the mounting frame to continue moving. When the mounting frame drives the telescopic rod to move to the other end of the seesaw, the seesaw rotates under the downward pressure of the stop column and tilts the other end to lift the second guide plate. At this time, the second guide plate drives the column to disengage from the positioning hole. At the same time, the limit spring drives the first rack to move, and the first rack drives the first gear to rotate through engagement. The first gear drives the first rotating shaft to rotate, so that the support rod is lifted again and lifts the second support frame.

[0026] As a preferred embodiment of the present invention, the following steps are also included:

[0027] S6. The power device operates in the reverse direction to move the mounting frame in the reverse direction. During the movement, the blocking post moves upward under the guidance of the second guide plate, so that the mounting frame can move smoothly. The movement of the mounting frame drives the bracket to move. The bracket moves along the second guide rod and the first guide rod to reset.

[0028] S7. Start the lifting device at the bottom of the base to control the base to descend. The electric slider and the electric slide rail drive the closed cavity to move, and drive the plug-in plate to move to the bottom of the second support frame. At this time, the power device works again to make the blocking column push the column to move again, and stops moving before the column reaches the positioning hole. The supporting rod remains in the descending state, and transfers the second support frame to the plug-in plate while descending, resetting the closed cavity. At the same time, the base is lifted to seal the internal space. Vacuum is evacuated by a vacuum pump and compressed by a cylinder to form the first tempered glass, the mounting frame and the second tempered glass into one.

[0029] Compared with the prior art, the present invention has the following beneficial effects:

[0030] The present invention forms vacuum glass by combining first tempered glass and second tempered glass, and respectively coats perovskite and graphene on the first tempered glass and the second tempered glass, so that the vacuum glass meets the needs of photovoltaic self-power supply and heat generation.

[0031] The present invention presses the first tempered glass, the second tempered glass and the mounting frame together by means of the first pressure unit and the second pressure unit, and the two pressure units are operated separately and enter a vacuum environment before the second pressure unit operates, thereby effectively forming a vacuum environment between the first tempered glass and the second tempered glass;

[0032] The present invention provides a conveying mechanism and a transposition mechanism to perform transposition operations so that the first tempered glass, the second tempered glass and other structures will not be connected to the interior of the closed cavity through additional mechanisms when entering the closed cavity, thereby enhancing the sealing of the closed cavity. BRIEF DESCRIPTION OF THE DRAWINGS

[0033] Figure 1 This is a schematic diagram of the overall structure of the self-powered dual-mode dielectric radiation-proof vacuum glass manufacturing equipment of the present invention;

[0034] Figure 2 This is a schematic diagram of the structure of the self-powered dual-mode dielectric radiation-proof vacuum glass manufacturing equipment of the present invention during transposition;

[0035] Figure 3 This is a schematic diagram of the structure of the self-powered dual-mode dielectric radiation-proof vacuum glass of the present invention;

[0036] Figure 4 This is a structural diagram of the bracket of the present invention;

[0037] Figure 5 This is a structural schematic diagram of the first guide plate of the present invention;

[0038] Figure 6 This is a structural diagram of the mounting bracket of the present invention;

[0039] Figure 7 This is a structural diagram of the first gear of the present invention;

[0040] Figure 8 This is a structural diagram of the limit rod of the present invention;

[0041] Figure 9 This is a structural diagram of the seesaw of the present invention;

[0042] Figure 10 This is a schematic diagram of the internal structure of the connecting block of the present invention;

[0043] Figure 11 This is a schematic structural diagram of the second pressure unit of the present invention.

[0044] Reference numerals:

[0045] 100. Conveying device; 101. Suction cup device;

[0046] 200, support frame; 201, support plate; 202, first guide plate; 203, first guide rod;

[0047] 300, mounting base; 301, first rotating shaft; 302, rotating block; 303, supporting member; 304, supporting rod; 305, bevel gear; 306, second rotating shaft; 307, first gear; 308, first rack; 309, limiting rod; 310, limiting spring; 311, connecting block; 312, column; 313, second guide plate; 314, backing plate; 315, return spring; 316, positioning hole; 317, rocker; 318, fixing plate;

[0048] 400, mounting frame; 401, bracket; 402, power unit; 403, second gear; 404, second rack; 405, second guide rod; 406, telescopic rod; 407, stop column; 408, pressure spring;

[0049] 500, closed cavity; 501, cylinder; 502, base; 503, electric slider; 504, electric slide rail; 505, plug-in board;

[0050] 600, first tempered glass; 601, mounting frame; 602, first supporting frame; 603, second tempered glass; 604, second supporting frame. DETAILED DESCRIPTION

[0051] In order to make the purpose, technical solutions and advantages of the embodiments of the present invention clearer, the technical solutions in the embodiments will be clearly and completely described below in conjunction with the drawings in the embodiments of the present invention. The following embodiments are used to illustrate the present invention.

[0052] Example 1:

[0053] like Figure 3 As shown, the self-powered dual-mode dielectric radiation-proof vacuum glass includes a mounting frame 601, a first tempered glass 600, and a second tempered glass 603. The mounting frame 601 has a convex cross-section, so that the first tempered glass 600 and the second tempered glass 603 form a vacuum gap after being mounted with the mounting frame 601 in a vacuum environment. The first tempered glass 600 is coated with a perovskite photovoltaic material on one side of the vacuum gap, and the second tempered glass 603 is coated with a graphene material on the other side of the vacuum gap. The electrical energy generated by the perovskite photovoltaic material on the first tempered glass 600 after photoelectric conversion can be used for energy storage and, when necessary, power the graphene material on the second tempered glass 603. Due to the high light transmittance of perovskite and graphene, the vacuum glass maintains an extremely high light transmittance.

[0054] By setting up an intelligent temperature control system, users can adjust the temperature of the vacuum glass to suit heating requirements in different scenarios;

[0055] The vacuum structure formed by the first tempered glass 600 and the second tempered glass 603 provides excellent compressive strength and sealing, prevents the penetration of water vapor and other pollutants, and extends the service life of the vacuum glass.

[0056] The perovskite photovoltaic material on the surface of the first tempered glass 600 uses a methylamine lead iodine-based composite film. A dense light absorption layer with a thickness of 300 nanometers is formed by spin coating, which can effectively absorb solar radiation in the wavelength range of 300-800 nanometers.

[0057] The graphene material coated on the second tempered glass 603 is grown using a chemical vapor deposition process to form a transparent conductive film composed of 3-5 layers of carbon atoms. In the thermally insulating environment formed by the vacuum gap, when the perovskite photovoltaic material generates electricity, it is transmitted to the graphene film through the nano-silver wire electrode network, triggering the Joule heating effect.

[0058] When the first tempered glass 600 and the second tempered glass 603 are electrically connected, silver paste electrodes are printed on the ITO electrode layer of the perovskite photovoltaic material and the surface of the graphene film using screen printing technology to form a conductive circuit, and a flexible circuit board is used to transmit the electrical energy generated by the perovskite photovoltaic material to the graphene film.

[0059] Example 2:

[0060] like Figures 1 to 11 As shown, the self-powered dual-mode dielectric radiation-proof vacuum glass manufacturing equipment includes:

[0061] The first pressure unit includes a conveying device 100 and a suction cup device 101. The suction cup device 101 includes a suction cup and a robotic arm. The robotic arm controls the movement of the suction cup to perform a suction and transportation operation.

[0062] The conveying unit includes a conveying mechanism and a transposition mechanism. The conveying mechanism includes a bracket 401 and a driving assembly. The transposition mechanism includes a support rod 304. A lifting assembly is provided at the bottom of the support rod 304. When the conveying mechanism drives the bracket 401 to move to the transposition mechanism through the driving assembly, the lifting assembly drives the support rod 304 to perform the transposition operation;

[0063] The second pressure unit includes a closed cavity 500 and a base 502 .

[0064] like Figures 4 to 6As shown, in a specific embodiment, the conveying unit also includes an alignment mechanism, which includes a support frame 200, which is arranged at an angle. A support plate 201 is mounted on the support frame 200, and a first guide plate 202 is fixedly mounted on the top of the support frame 200. One end of the conveying device 100 is aligned with one end of the support frame 200. In this arrangement, one end of the first guide plate 202 is trapezoidal, so that when the first support frame 602 moves, the groove at the bottom interacts with the first guide plate 202, thereby achieving the function of correcting the position of the first support frame 602.

[0065] like Figures 5 to 8 As shown, the shifting mechanism further includes a mounting base 300, a transmission assembly is provided on the top of the mounting base 300, and the transmission assembly includes a first rotating shaft 301 and a second rotating shaft 306, and the first rotating shaft 301 and the second rotating shaft 306 are meshed and connected via a bevel gear 305. The lifting assembly includes a support member 303, which is fixedly mounted on the bottom of the support rod 304. A rotating block 302 is rotatably mounted on the bottom of the support member 303, and the rotating block 302 is fixedly connected to the first rotating shaft 301. In this configuration, two first rotating shafts 301 and two second rotating shafts 306 are provided, and are distributed in a rectangular shape. The bevel gear 305 is provided to ensure that the two first rotating shafts 301 rotate synchronously, thereby preventing the support rod 304 from tilting when driven.

[0066] like Figure 6 、 Figure 9 、 Figure 10 As shown, the conveying mechanism further includes a mounting frame 400, which is rotatably connected to the bracket 401. The drive assembly includes a power unit 402, which is fixedly connected to the mounting frame 400. A second gear 403 is mounted on the output end of the power unit 402, and a second rack 404 is meshed and connected to the bottom of the second gear 403. The second rack 404 is fixedly connected to the mounting base 300. A first guide rod 203 and a second guide rod 405 are fixedly mounted on the support frame 200 and the mounting base 300, respectively. The first guide rod 203 and the second guide rod 405 are fixedly connected to each other, and the mounting frame 400 is slidably connected to the second guide rod 405. In this configuration, the power unit 402 uses a servo motor to provide precise angle control. The first guide rod 203 is tilted parallel to the top of the support frame 200, and the second guide rod 405 is horizontal.

[0067] Example 2:

[0068] like Figures 8 to 10When the handle 314 is pressed against the top of the handle 316, the handle 316 can be tightened to the screw thread of the handle 316, thereby tightening the handle 316 to the handle 316. When the handle 316 is pressed against the top of the handle 316, the handle 316 can be tightened to the screw thread of the handle 316, thereby tightening the handle 316 to the handle 316. When the handle 316 is pressed against the top of the handle 316, the handle 316 can be tightened to the screw thread of the handle 316. In this arrangement, the mounting frame 400 drives the blocking column 407 to move through the telescopic rod 406, and the blocking column 407 pushes the column 312 to drive the connecting block 311 and the first rack 308 to move. The first rack 308 moves while driving the first rotating shaft 301 to rotate, so that the support rod 304 descends. When the column 312 moves to the positioning hole 316, the elastic force of the return spring 315 acts on the column 312 to make it enter the positioning hole 316. At this time, the column 312 cannot move horizontally, so that the first rack 308 is locked and the support rod 304 remains in the retracted state.

[0069] like Figures 8 to 10 As shown, the pushing assembly further includes a seesaw 317, on which a fixed plate 318 is rotatably mounted. The fixed plate 318 is fixedly connected to the mounting base 300. One end of the seesaw 317 is adapted to the second guide plate 313 so that when the second guide plate 313 descends, the seesaw 317 is driven to rotate. The other end of the seesaw 317 is adapted to the stop post 407 so that when the stop post 407 moves to the other end, the seesaw 317 is driven to rotate in the opposite direction.

[0070] A first rack 308 is fixedly installed on one side of the connecting block 311, and a limiting rod 309 is movably inserted into the first rack 308. The limiting rod 309 is fixedly connected to the mounting seat 300. A limiting spring 310 is also movably sleeved on the limiting rod 309. The first rack 308 is meshed with a first gear 307, and the first gear 307 is fixedly connected to the first rotating shaft 301.

[0071] When the support rod 304 is kept in the retracted state, the mounting bracket 400 smoothly drives the second support frame 604 to the top of the support rod 304 through the bracket 401. When the mounting bracket 400 drives the telescopic rod 406 to move to the other end of the rocker 317, the rocker 317 is rotated by the downward pressure of the blocking column 407, and the other end is tilted to lift the second guide plate 313.

[0072] like Figure 11 As shown, the second pressure unit further includes a moving mechanism, which includes an electric slider 503 and an electric slide rail 504. The electric slider 503 is fixedly connected to the closed chamber 500. A cylinder 501 is fixedly mounted on the top of the closed chamber 500. A plug-in plate 505 is installed inside the closed chamber 500. A lifting device is installed at the bottom of the base 502 to drive the base 502 to rise and fall. Sealing gaskets are installed at the top and bottom of the closed chamber 500, and the base 502 is connected to a vacuum pump via a pipe. In this configuration, when the cylinder 501 is in operation, the interaction with the plug-in plate 505 causes the first tempered glass 600, the mounting frame 601, and the second tempered glass 603 to adhere.

[0073] The implementation principle of the self-powered dual-mode dielectric radiation-proof vacuum glass manufacturing method and manufacturing equipment of this embodiment is as follows: During use, it is necessary to manually apply glue to the inner walls of both sides of the installation frame 601 and place it on the first support frame 602. During installation, the first support frame 602 is placed on the conveying device 100, and the grooves on both sides are aligned with the belt on the conveying device 100. The first support frame 602 is transported to the position of the suction cup device 101 by the conveying device 100. The first tempered glass 600 is sucked up by the suction cup device 101 and aligned with the first support frame 602 so that the first tempered glass 600 is installed in the first support frame 602.

[0074] At this time, the conveyor 100 continues to work, so that the first support frame 602 continues to move. When it moves to one end of the conveyor 100, it tilts and falls on the support frame 200. The first guide plate 202 on the support frame 200 and the groove at the bottom of the first support frame 602 interact to straighten the position of the first support frame 602 until the first support frame 602 slides into the bracket 401. At this time, the first support frame 602 is aligned with the second support frame 604.

[0075] At this time, the power device 402 is activated. The power device 402 causes the mounting frame 400 to move along the second guide rod 405 through the meshing action of the second gear 403 and the second rack 404, thereby driving the bracket 401 to move. Since the moving direction of the mounting frame 400 forms an angle with the bracket 401, when the mounting frame 400 moves, one end of the bracket 401 rests on the first guide rod 203, while the remaining part is separated from the first guide rod 203, thereby lifting the second support frame 604.

[0076] When the mounting frame 400 moves, the telescopic rod 406 drives the blocking column 407 to move, and the blocking column 407 pushes the column 312 to drive the connecting block 311 and the first rack 308 to move. The movement of the first rack 308 also drives the first rotating shaft 301 to rotate, so that the support rod 304 descends. When the column 312 moves to the positioning hole 316, the elastic force of the return spring 315 acts on the column 312 to make it enter the positioning hole 316. At this time, the column 312 cannot move horizontally, so that the first rack 308 is locked, and the support rod 304 remains in the retracted state.

[0077] When the column 312 moves to the positioning hole 316, the second guide plate 313 is at the top of one end of the rocker 317. When the column 312 descends, the second guide plate 313 follows and descends and presses the rocker 317. At this time, the other end of the rocker 317 tilts up. After the column 312 descends, it is staggered with the stop column 407, allowing the mounting bracket 400 to continue moving. Since the support rod 304 remains in the retracted state, the mounting bracket 400 smoothly drives the second support frame 604 to the top of the support rod 304 through the bracket 401. When the mounting bracket 400 drives the extension When the retracted rod 406 moves to the other end of the seesaw 317, the seesaw 317 is pressed down by the stop post 407, causing the other end to rotate and tilt up, thereby lifting the second guide plate 313. At this time, the second guide plate 313 drives the column 312 to disengage from the positioning hole 316. At the same time, the limit spring 310 drives the first rack 308 to move. The first rack 308 drives the first gear 307 to rotate through engagement. The first gear 307 drives the first rotating shaft 301 to rotate, so that the support rod 304 is lifted again and lifts the second support frame 604.

[0078] At this time, the power device 402 works in the reverse direction to move the mounting frame 400 in the reverse direction. During the movement, the blocking post 407 moves upward under the guidance of the second guide plate 313, so that the mounting frame 400 can move smoothly. When the mounting frame 400 moves, the bracket 401 moves. When the bracket 401 moves, it moves along the second guide rod 405 and the first guide rod 203 to reset.

[0079] The lifting device at the bottom of the base 502 is started to control the base 502 to descend, and the electric slider 503 and the electric slide rail 504 are started. The electric slider 503 and the electric slide rail 504 drive the closed chamber 500 to move, and drive the plug plate 505 to move. The plug plate 505 moves to the bottom of the second support frame 604. At this time, the power device 402 works again to make the blocking column 407 push the column 312 to move again, and stop moving before the column 312 reaches the positioning hole 316. At this time, the support rod 304 still remains in the lowered state, and the mounting frame 400 does not conflict with the plug plate 505, and transfers the second support frame 604 to the plug plate 505 when descending. At this time, the closed chamber 500 is reset, and the base 502 is lifted to seal the internal space. Vacuum is evacuated by the vacuum pump and pressed by the cylinder 501 to form the first tempered glass 600, the mounting frame 601 and the second tempered glass 603 into one.

[0080] It should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention and are not intended to limit the present invention. Although the present invention has been described in detail with reference to the preferred embodiments, those skilled in the art should understand that the technical solutions of the present invention may be modified or replaced by equivalents without departing from the spirit and scope of the technical solutions of the present invention, which should all be included in the scope of the claims of the present invention.

Claims

1. Self-powered dual-mode dielectric radiation-proof vacuum glass, characterized in that: The invention comprises an installation frame (601), a first tempered glass (600) and a second tempered glass (603), wherein the installation frame (601) has a convex cross-section, so that the first tempered glass (600) and the second tempered glass (603) form a vacuum gap after being installed with the installation frame (601) in a vacuum environment; the first tempered glass (600) is coated with a perovskite photovoltaic material on one side of the vacuum gap; the second tempered glass (603) is coated with a graphene material on one side of the vacuum gap; and the perovskite photovoltaic material on the first tempered glass (600) supplies power to the graphene material on the second tempered glass (603) after photoelectric conversion.

2. A self-powered dual-mode dielectric radiation-proof vacuum glass manufacturing device, used to manufacture the self-powered dual-mode dielectric radiation-proof vacuum glass according to claim 1, characterized in that: include: A first pressure unit, the first pressure unit comprising a conveying device (100) and a suction cup device (101); A conveying unit, the conveying unit comprising a conveying mechanism and a transposition mechanism, the conveying mechanism comprising a bracket (401) and a driving assembly, the transposition mechanism comprising a supporting rod (304), a lifting assembly being provided at the bottom of the supporting rod (304), and when the conveying mechanism drives the bracket (401) to move to the transposition mechanism via the driving assembly, the supporting rod (304) is driven by the lifting assembly to perform a transposition operation; The second pressure unit comprises a closed cavity (500) and a base (502).

3. The self-powered dual-mode dielectric radiation-proof vacuum glass manufacturing equipment according to claim 2, characterized in that: The conveying unit further comprises an alignment mechanism, the alignment mechanism comprising a support frame (200), and the support frame (200) is arranged in an inclined manner, a support plate (201) is mounted on the support frame (200), and a first guide plate (202) is fixedly mounted on the top of the support frame (200), and one end of the conveying device (100) is aligned with one end of the support frame (200).

4. The self-powered dual-mode dielectric radiation-proof vacuum glass manufacturing equipment according to claim 3, characterized in that: The shifting mechanism further comprises a mounting seat (300), a transmission assembly is provided on the top of the mounting seat (300), the transmission assembly comprises a first rotating shaft (301) and a second rotating shaft (306), and the first rotating shaft (301) and the second rotating shaft (306) are meshedly connected via a bevel gear (305), the lifting assembly comprises a support member (303), the support member (303) is fixedly mounted on the bottom of the supporting rod (304), a rotating block (302) is rotatably mounted on the bottom of the support member (303), and the rotating block (302) is fixedly connected to the first rotating shaft (301).

5. The self-powered dual-mode dielectric radiation-proof vacuum glass manufacturing equipment according to claim 4, characterized in that: The conveying mechanism further comprises a mounting frame (400), wherein the mounting frame (400) is rotatably connected to the bracket (401), the driving assembly comprises a power device (402), the power device (402) is fixedly connected to the mounting frame (400), a second gear (403) is installed at the output end of the power device (402), and a second rack (404) is meshedly connected to the bottom of the second gear (403), and the second rack (404) is fixedly connected to the mounting seat (300), a first guide rod (203) and a second guide rod (405) are fixedly installed on the support frame (200) and the mounting seat (300), respectively, the first guide rod (203) and the second guide rod (405) are fixedly connected to each other, and the mounting frame (400) is slidably connected to the second guide rod (405).

6. The self-powered dual-mode dielectric radiation-proof vacuum glass manufacturing equipment according to claim 5, characterized in that: A pushing assembly is provided on the top of the mounting seat (300), and the pushing assembly includes a connecting block (311), a column (312) is movably connected to the connecting block (311), a positioning hole (316) is provided on the mounting seat (300), the positioning hole (316) is adapted to the column (312), a cavity is provided in the column (312), a pad (314) is movably connected to the cavity of the column (312), and the pad (314) is fixedly connected to the connecting block (311), and a cavity is provided in the cavity of the column (312). A return spring (315) is provided, a second guide plate (313) is fixedly installed on one side of the top of the column (312), a telescopic rod (406) is fixedly installed on the bottom of the mounting frame (400), and a blocking column (407) is fixedly installed on the bottom of the telescopic rod (406), a pressure spring (408) is movably sleeved on the telescopic rod (406), and when the telescopic rod (406) drives the blocking column (407) to press against the column (312), the connecting block (311) moves, and when the blocking column (407) presses against the second guide plate (313), the blocking column (407) is staggered with the second guide plate (313).

7. The self-powered dual-mode dielectric radiation-proof vacuum glass manufacturing equipment according to claim 6, characterized in that: The pushing assembly further comprises a seesaw (317), a fixed plate (318) being rotatably mounted on the seesaw (317), the fixed plate (318) being fixedly connected to the mounting seat (300), one end of the seesaw (317) being adapted to the second guide plate (313), so that when the second guide plate (313) descends, the seesaw (317) is driven to rotate, and the other end of the seesaw (317) is adapted to the blocking column (407), so that when the blocking column (407) moves to the other end, the seesaw (317) is driven to rotate in the opposite direction; A first rack (308) is fixedly mounted on one side of the connecting block (311); a limiting rod (309) is movably inserted into the first rack (308); the limiting rod (309) is fixedly connected to the mounting seat (300); a limiting spring (310) is movably sleeved on the limiting rod (309); a first gear (307) is meshedly connected to the first rack (308); and the first gear (307) is fixedly connected to the first rotating shaft (301).

8. The self-powered dual-mode dielectric radiation-proof vacuum glass manufacturing equipment according to claim 7, characterized in that: The second pressure unit further comprises a moving mechanism, the moving mechanism comprising an electric slider (503) and an electric slide rail (504), the electric slider (503) being fixedly connected to the closed chamber (500), a cylinder (501) being fixedly mounted on the top of the closed chamber (500), and a plugboard (505) being mounted inside the closed chamber (500), a lifting device being arranged at the bottom of the base (502) to drive the base (502) to be raised and lowered, a sealing gasket being mounted at the top of the base (502) and the bottom of the closed chamber (500), and the base (502) being connected to a vacuum pump via a pipeline.

9. A method for manufacturing a self-powered dual-mode dielectric radiation-proof vacuum glass, which is implemented based on the self-powered dual-mode dielectric radiation-proof vacuum glass manufacturing equipment according to claim 8, characterized in that: The steps include: S1, placing the first support frame (602) on the conveying device (100), transporting the first support frame (602) to the position of the suction cup device (101) through the conveying device (100), sucking up the first tempered glass (600) through the suction cup device (101), and aligning the first support frame (602) so that the first tempered glass (600) is installed in the first support frame (602); S2, the conveying device (100) operates to make the first support frame (602) continue to move, and when it moves to one end of the conveying device (100), it falls on the support frame (200), and the position of the first support frame (602) is adjusted by the interaction of the first guide plate (202) on the support frame (200) and the groove at the bottom of the first support frame (602), until the first support frame (602) slides into the bracket (401); S3, starting the power device (402), the power device (402) causes the mounting frame (400) to move along the second guide rod (405) through the meshing action of the second gear (403) and the second rack (404), and when the mounting frame (400) moves, one end of the bracket (401) rests on the first guide rod (203); S4. When the mounting frame (400) moves, the telescopic rod (406) drives the blocking column (407) to move, and the blocking column (407) pushes the column (312) to drive the connecting block (311) and the first rack (308) to move. When the first rack (308) moves, it drives the first rotating shaft (301) to rotate, so that the supporting rod (304) descends. When the column (312) moves to the positioning hole (316), the elastic force of the return spring (315) acts on the column (312) to make it enter the positioning hole (316), so that the supporting rod (304) remains in the retracted state.

10. The method for manufacturing self-powered dual-mode dielectric radiation-proof vacuum glass according to claim 9, characterized in that: The following steps are also included: S5. When the column (312) moves to the positioning hole (316), the second guide plate (313) is at the top of one end of the seesaw (317). When the column (312) descends, the second guide plate (313) follows and descends and presses the seesaw (317). At this time, the other end of the seesaw (317) is tilted. After the column (312) descends, it is staggered with the blocking column (407), so that the mounting frame (400) continues to move. When the mounting frame (400) drives the telescopic rod (406) to move to the other end of the seesaw (317), the seesaw (317) is tilted. ) is rotated by the downward pressure of the blocking column (407), and the other end is tilted to lift the second guide plate (313). At this time, the second guide plate (313) drives the column (312) to disengage from the positioning hole (316). At the same time, the limit spring (310) drives the first rack (308) to move. The first rack (308) drives the first gear (307) to rotate through engagement. The first gear (307) drives the first rotating shaft (301) to rotate, so that the support rod (304) is lifted again and the second support frame (604) is lifted. S6. At this time, the power device (402) works in the reverse direction to move the mounting frame (400) in the reverse direction. During the movement, the blocking column (407) moves upward under the guidance of the second guide plate (313), so that it can move smoothly. When the mounting frame (400) moves, the bracket (401) is driven to move. When the bracket (401) moves, it moves along the second guide rod (405) and the first guide rod (203) to reset. S7, start the lifting device at the bottom of the base (502) to control the base (502) to descend, the electric slider (503) and the electric slide rail (504) drive the closed cavity (500) to move, and drive the plugboard (505) to move to the bottom of the second support frame (604), at this time the power device (402) works again to make the blocking column (407) push the column (312) to move again, and stops moving before the column (312) reaches the positioning hole (316), the support rod (304) still keeps the descending state, and transfers the second support frame (604) to the plugboard (505) when descending, resets the closed cavity (500), and at the same time lifts the base (502) to close the internal space, vacuum is evacuated by the vacuum pump, and is pressed by the cylinder (501) to form the first tempered glass (600), the installation frame (601) and the second tempered glass (603) into one.

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