Vacuum glass degassing device
By designing a vacuum glass degassing device, which utilizes an electromagnet to drive a scraper and an oxidizing liquid for cleaning, the problem of gas residue caused by burrs in the vacuum glass sealant was solved, improving the degassing quality and sealing performance of the vacuum glass, and enabling convenient operation and component reuse.
Patent Information
- Application Number
- CN202311224417.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2023-09-21
- Publication Date
- 2026-01-27
- Estimated Expiration
- 2043-09-21
AI Technical Summary
During the sealing process of vacuum glass, burrs are generated in the sealant, which leads to the formation of air bubbles and affects the vacuum level. Existing technologies are difficult to remove them effectively, resulting in poor degassing quality of vacuum glass.
A vacuum glass degassing device was designed, which uses the attraction force between an electromagnet and a magnetic strip to drive a scraper to move on the inner wall of the vacuum glass. Combined with oxidizing liquid cleaning and heater drying, it can remove sealant burrs and clean residues. A vacuum state is maintained by a vacuum pump.
It effectively removes residual gas inside the vacuum glass, improves the degassing quality, ensures the sealing and heat insulation performance of the vacuum glass, enables convenient operation and reuse of parts, and solves the problems of inconvenience in the use of traditional equipment and reduced vacuum level.
Smart Images

Figure CN117181680B_ABST
Abstract
Description
Technical Field
[0001] This invention is a vacuum glass degassing device, belonging to the field of vacuum glass technology. Background Technology
[0002] Vacuum glass is a new type of deep-processed glass product, developed based on the principle of thermos flasks. Vacuum glass consists of two flat glass plates sealed together, with the gap typically evacuated using a degassing device. This creates a vacuum inside the glass, giving it heat and sound insulation properties. Its working principle is the same as that of a thermos flask. During the sealing process, sealant is first applied around the edges of the two flat glass plates. Pressure is then applied to seal the area. However, during this pressure process, the sealant may flow outwards, creating burrs. These burrs, located inside the vacuum glass, tend to flow along the inner wall, easily trapping gas and forming bubbles. After vacuuming, a pressure difference can create a barrier between the bubbles and the burrs, causing damage and gas release. This reduces the vacuum level and affects the degassing quality. Summary of the Invention
[0003] To address the problems in the prior art, the present invention provides a vacuum glass degassing device.
[0004] The technical solution adopted by this invention to solve its technical problem is as follows: a vacuum glass degassing device, including a workbench, a placement plate hinged to the upper end of the workbench, an adjusting component installed at the rear end of the placement plate and located at the upper end of the workbench, the front end of the placement plate adhering to the vacuum glass, two symmetrical openings symmetrically opened on the sealing part at the left end of the vacuum glass and the openings communicating with the inner cavity of the vacuum glass, four limiting plates arranged in a rectangular pattern at equal intervals at the front end of the placement plate and located at the upper, lower, left, and right ends of the vacuum glass respectively, the openings located outside the limiting plates, and a discharge component installed at the middle position of the rear end of the placement plate, the discharge component passing through the placement plate and connecting with the rear end of the vacuum glass. The vacuum glass is fitted with a first electromagnet at its front end. A sliding frame is connected inside the vacuum glass. A magnetic strip is set inside the frame and is located directly behind the first electromagnet. The first electromagnet and the magnetic strip are arranged to attract each other. Scrapers are set at opposite ends of the frame and are respectively attached to opposite walls inside the vacuum glass. A movable plate is installed at the front end of the first electromagnet. A driving component is connected to the front end of the movable plate. A fixed plate is installed on the upper end of the driving component and is fixed to the front end of the placement plate. An auxiliary component is installed on the fixed plate and is located above the uppermost limiting plate. A functional component is installed on the upper end of the workbench and is located on the left side of the placement plate.
[0005] Furthermore, the functional component includes a vacuum device, which is installed on the front side of the upper end of the workbench and located on the left side of the placement plate. The inlet of the vacuum device is connected to a suction nozzle via a flexible air tube.
[0006] Furthermore, a water pumping device is installed on the upper end of the workbench and is located to the left of the vacuuming device. A water tank is installed on the rear side of the upper end of the workbench and is located behind the water pumping device. The inlet of the water pumping device is connected to the water tank through a soft water pipe. The outlet of the water pumping device is connected to a nozzle that works with the opening through a soft water pipe. A return water inlet is connected to the front end of the water tank through a soft water pipe with a control valve and is located between the vacuuming device and the placement plate.
[0007] Furthermore, the auxiliary component includes a heater, which is attached to the lower end of the fixed plate and located above the uppermost limiting plate. The rear end face of the heater coincides with the front end face of the vacuum glass. A fixing part of the first lifting device is provided on the upper left side of the fixed plate. The movable part of the first lifting device passes through the fixed plate and is connected to the heater. A vertically arranged round rod is provided on the upper right side of the heater. The round rod passes through the fixed plate and the fixed plate is slidably connected to the round rod.
[0008] Furthermore, the driving component includes a mounting block located on the front side of the movable plate. A fixing part of the driving device is installed at the middle position of the front end of the mounting block. The movable part of the driving device passes through the mounting block and is connected to the movable plate. A movable block is provided on the front side of the placement plate and is located to the right of the rightmost limiting plate. A fixing part of a first telescopic device is installed at the right end of the movable block. The movable part of the first telescopic device passes through the movable block and is connected to the mounting block. A fixing part of a second lifting device is provided on the upper right side of the fixing plate and the second lifting device is located to the right of the round rod. The movable part of the second lifting device passes through the fixing plate and is connected to the movable block.
[0009] Furthermore, the rear end of the movable block is uniformly provided with a plurality of fixing parts of the first rolling members, and the rolling parts of the first rolling members are tactilely connected to the front end of the placement plate. The rear end of the mounting block is equidistantly installed with a plurality of fixing parts of the second rolling members arranged in a circular pattern, and the second rolling members are located outside the driving device. The rolling parts of the plurality of second rolling members are all tactilely connected to the front end of the movable plate.
[0010] Furthermore, the discharge component includes a box body, which is installed at the middle of the rear end of the placement plate. The middle of the front end face of the placement plate is recessed to form a through-hole that penetrates the placement plate. The through-hole is connected to the front end of the box body. A second electromagnet is provided on the rear wall inside the box body. A top plate is slidably connected inside the through-hole. A protective component is provided at the front end of the top plate. The front end face of the protective component coincides with the front end face of the placement plate. The front end face of the protective component is recessed to form multiple through holes that penetrate the protective component. A magnetic plate is provided at the rear end of the top plate. The magnetic plate is located in front of the second electromagnet, and the second electromagnet and the magnetic plate are arranged to repel each other.
[0011] Furthermore, guide members are installed at the four corner positions of the rear end of the top plate, and the guide members are located outside the magnetic plate and outside the second electromagnet. The four guide members are respectively set at the four corner positions of the inner rear wall of the box. Four elastic members are evenly arranged between the rear end of the top plate and the inner rear wall of the box, and the elastic members are located outside the guide members.
[0012] Furthermore, the adjusting component includes two second telescopic devices, the fixed parts of the two second telescopic devices are hinged to the upper end of the workbench, the movable parts of the two second telescopic devices are hinged to the rear end of the placement plate, and the two second telescopic devices are located on the left and right sides of the box body.
[0013] The beneficial effects of this invention are:
[0014] (1) A vacuum glass degassing device of the present invention involves inserting a frame into the inner cavity of the vacuum glass through an opening and connecting the circuit of a first electromagnet, thereby generating an attraction force between the first electromagnet and the magnetic strip. A second electric push rod is then used to move the first electromagnet to the right, thereby moving two scrapers to the right and placing them against the left and right walls of the vacuum glass. A third electric push rod then drives the first electromagnet to move up and down, causing the magnetic strip, frame, and two scrapers to move up and down under the attraction force. After a predetermined time has elapsed, the device degasses the glass. A servo motor drives the movable plate and the first electromagnet to rotate 90°. Under the action of adsorption force, the structure formed by the magnetic strip, frame and two scrapers rotates 90°. At this time, the two scrapers are respectively attached to the upper and lower walls inside the vacuum glass. Then, the second electric push rod moves the first electromagnet left and right. Under the action of adsorption force, the magnetic strip, frame and two scrapers move left and right. This achieves the purpose of scraping off the burrs of the sealant on the inner wall of the vacuum glass by using the two moving scrapers, effectively avoiding the probability of gas remaining in the vacuum glass and improving the degassing quality.
[0015] (2) The vacuum glass degassing device of the present invention can push the structure formed by the magnetic strip, the frame and the two scrapers out of the opening through the adsorption force generated between the first electromagnet and the magnetic strip, so as to facilitate the removal of the structure formed by the magnetic strip, the frame and the two scrapers from the vacuum glass, realize the convenient removal and placement of the structure formed by the magnetic strip, the frame and the two scrapers, make the structure formed by the magnetic strip, the frame and the two scrapers reusable, and do not require additional parts to be installed in the vacuum glass, which is convenient to use and has good practicality.
[0016] (3) The vacuum glass degassing device of the present invention uses two first electric push rods to rotate the placement plate around the corresponding hinge to a suitable angle, thereby achieving the purpose of adjusting the tilt angle of the placement plate, which can meet the needs of people of different heights to operate. It is practical and solves the problem that the placement part of the traditional equipment is in a fixed state, and some operators have to bend over to operate due to their height and feel uncomfortable.
[0017] (4) A vacuum glass degassing device of the present invention can position and place the vacuum glass through four limiting plates, and can degas the vacuum glass. After the work is completed, the magnetic plate and the top plate will move forward under the repulsive force between the second electromagnet and the magnetic plate. On the one hand, the elastic element can be stretched, so that the elastic element generates elastic force. On the other hand, the vacuum glass can be pushed forward, so that the vacuum glass moves forward and separates from the placement plate, making it easy to pick up the vacuum glass. Afterwards, the magnetic plate and the top plate will return to their original positions under the elastic force of the elastic element, which is convenient for subsequent work and realizes convenient material picking. This solves the problem that the vacuum glass is inconvenient to pick up because of the adsorption phenomenon between the vacuum glass and the corresponding contact surface.
[0018] (5) A vacuum glass degassing device of the present invention uses a water pump and a nozzle to transport the oxidizing liquid in the water tank into the vacuum glass and fill the vacuum glass with the oxidizing liquid. At this time, the oxidizing liquid is in full contact with the inner wall of the inner sealing part of the vacuum glass. On the one hand, it can clean the residue generated by scraping inside the vacuum glass, and on the other hand, it can release the residual air bubbles attached to the inner wall of the inner sealing part of the vacuum glass, effectively preventing the vacuum degree of the vacuum glass from decreasing in the future. Then, the oxidizing liquid inside the vacuum glass is recycled and transported back to the water tank through the return water inlet, and the residue generated by scraping inside the vacuum glass is discharged, so as to realize the recycling of the oxidizing liquid.
[0019] (6) A vacuum glass degassing device of the present invention drives the heater to move up and down on the front end face of the vacuum glass through the fourth electric push rod. At the same time, the heater delivers heat to the vacuum glass, and then uses the heat to dry the residual oxidizing liquid inside the vacuum glass, thereby discharging the residual oxidizing liquid inside the vacuum glass and effectively avoiding the impact of residual oxidizing liquid on the sealing performance of the vacuum glass. Attached Figure Description
[0020] Other features, objects, and advantages of the present invention will become more apparent from the following detailed description of non-limiting embodiments with reference to the accompanying drawings:
[0021] Figure 1 This is a schematic diagram of the structure of a vacuum glass degassing device according to the present invention;
[0022] Figure 2 This is a perspective view of a vacuum glass degassing device according to the present invention;
[0023] Figure 3 This is a front view of a vacuum glass degassing device according to the present invention;
[0024] Figure 4 for Figure 3 Sectional view along line AA;
[0025] Figure 5 for Figure 3 Sectional view along the BB direction;
[0026] Figure 6 This is an assembly diagram of the movable plate, the first electromagnet, and the mounting block in a vacuum glass degassing device of the present invention.
[0027] Figure 7 for Figure 6 A sectional view;
[0028] Figure 8 This is an assembly diagram of the magnetic strip, frame, and scraper in a vacuum glass degassing device according to the present invention.
[0029] In the diagram: 1. Workbench frame, 2. Limiting plate, 3. Placement plate, 4. Moving block, 5. Fixed plate, 6. Vacuum glass, 7. Movable plate, 8. First electromagnet, 9. Mounting block, 11. First electric push rod, 12. Water tank, 13. Water pump, 14. Vacuuming equipment, 15. Nozzle, 16. Suction nozzle, 17. Return water inlet, 31. Box body, 32. Top plate, 33. Magnetic plate, 34. Second electromagnet, 35. Elastic element, 36. Telescopic rod, 41. Second electric push rod, 42. Third electric push rod, 51. Round rod, 52. Power supply, 53. Fourth electric push rod, 54. Heater, 61. Magnetic strip, 62. Frame, 63. Scraper, 91. Servo motor, 92. First bullseye. Detailed Implementation
[0030] To make the technical means, creative features, objectives and effects of this invention easier to understand, the invention will be further described below in conjunction with specific embodiments.
[0031] Please see Figure 1 , Figure 2 , Figure 4 and Figure 5 This invention provides a technical solution: a vacuum glass degassing device, including a workbench 1, a placement plate 3 is hinged to the upper end of the workbench 1, and the fixed parts of two second telescopic devices located on the left and right sides of the box 31 are both hinged to the upper end of the workbench 1. The movable parts of the two second telescopic devices are both hinged to the rear end of the placement plate 3. Before use, the two second telescopic devices are started, so that the two second telescopic devices can extend or retract synchronously, thereby rotating the placement plate 3 around the corresponding hinge to a suitable angle, so as to adjust the tilt angle of the placement plate 3. This allows people of different heights to operate, has good practicality, and solves the problem that the placement part of the traditional device is in a fixed state, which makes it difficult for some operators to bend over and feel uncomfortable. The second telescopic device can be a first electric push rod 11.
[0032] like Figure 2 , Figure 4 and Figure 5As shown, four rectangular limiting plates 2 are equidistantly positioned on the front end of the placement plate 3. These four limiting plates 2 work together to position the vacuum glass 6. A through-hole is formed by a rearward indentation in the center of the front face of the placement plate 3. A box 31, whose front end communicates with the through-hole, is installed at the middle of the rear end of the placement plate 3. A top plate 32 is slidably connected to the through-hole. A protective component, whose front face overlaps with the front face of the placement plate 3, is then placed on the front end of the top plate 32. This protective component protects the vacuum glass 6. Multiple through-holes are formed by a rearward indentation in the front face of the protective component. These through-holes work together to effectively reduce the amount of material required for the production of the protective component. The protective components can be rubber pads. The second electromagnet 34 is installed on the inner rear wall of the housing 31. A magnetic plate 33, located in front of the second electromagnet 34 and arranged in a mutually repelling manner, is installed on the rear end of the top plate 32. The magnetic plate 33 works in conjunction with the second electromagnet 34 to apply a forward thrust to the top plate 32. Four guide members located outside the magnetic plate 33 and outside the second electromagnet 34 are respectively installed at the four corner positions between the rear end of the top plate 32 and the inner rear wall of the housing 31. The four guide members work in conjunction to guide the movement of the top plate 32. The guide members can be telescopic rods 36. Four elastic members 35 located outside the guide members are installed on the top plate 32. Four elastic elements 35 work together between the rear end and the inner rear wall of the box 31 to return the top plate 32 to its original position. These elastic elements 35 can be springs. In use, the vacuum glass 6 is first placed on the front end of the placement plate 3, with the center of each of the four ends of the vacuum glass 6 abutting the limiting plates 2. The four limiting plates 2 then position the vacuum glass 6. After the vacuum glass 6 is degassed, the circuit of the second electromagnet 34 is activated, causing the second electromagnet 34 to generate a magnetic field. This magnetic field creates a repulsive force between the second electromagnet 34 and the magnetic plate 33, causing the magnetic plate 33 to move forward, thus moving the top plate 32 along... Moving the opening forward can stretch the elastic element 35, generating an elastic force, and also apply a forward pushing force to the vacuum glass 6, causing it to move forward and separate from the placement plate 3. This allows for convenient material retrieval from the vacuum glass 6. Then, the circuit of the second electromagnet 34 is disconnected, eliminating the repulsive force between the second electromagnet 34 and the magnetic plate 33. Under the elastic force of the elastic element 35, the magnetic plate 33 and the top plate 32 will return to their original positions, facilitating subsequent work and enabling convenient material retrieval. This solves the problem of the vacuum glass 6 being difficult to retrieve due to adsorption between itself and the corresponding contact surface.
[0033] like Figure 1 , Figure 3 , Figure 4 , Figure 5 , Figure 6 , Figure 7 and Figure 8 As shown, two openings are symmetrically arranged on the sealing part at the left end of the vacuum glass 6, communicating with the inner cavity of the vacuum glass 6 and located outside the limiting plate 2. The fixing plate 5 above the uppermost limiting plate 2 is fixed to the front end of the placement plate 3, and the magnetic strip 61 is set inside the frame 62. Then, two scrapers 63 are respectively set on opposite ends of the frame 62. The two scrapers 63 work together to scrape off the sealing burrs in the inner cavity of the vacuum glass 6. The movable plate 7 is installed on the front end of the first electromagnet 8, and the fixing part of the drive device is installed on the middle position of the front end of the mounting block 9 located on the front side of the movable plate 7. The movable part of the drive device passes through the mounting block 9. Install block 9 and connect it to movable plate 7. Through the driving device, movable plate 7 and first electromagnet 8 can be rotated. The fixed part of the first telescopic device is installed on the right end of the movable block 4 located to the right of the rightmost limit plate 2. The movable part of the first telescopic device passes through the movable block 4 located in front of the placement plate 3 and is connected to the mounting block 9. Through the first telescopic device, the mounting block 9 is driven to move left and right. The movable part of the second lifting device located to the right of the round rod 51 and whose fixed part is set on the upper right side of the fixed plate 5 passes through the fixed plate 5 and is connected to the movable block 4. Through the second lifting device, the first telescopic device, movable block 4 and mounting block 9 are driven to move up and down.
[0034] In use, the vacuum glass 6 is first positioned and installed on the front end of the placement plate 3. Then, the mounting block 9 is moved by the second lifting device and the first telescopic device, thereby moving the first electromagnet 8 to the front end of the vacuum glass 6. Then, the frame 62 is inserted into the inner cavity of the vacuum glass 6 through the opening. At this time, the frame 62 is slidably connected to the inner cavity of the vacuum glass 6, while the magnetic strip 61, which is attracted to the first electromagnet 8, is located directly behind the first electromagnet 8. Then, the circuit of the first electromagnet 8 is turned on, thereby causing the first electromagnet 8 to generate a magnetic field, thereby creating an attraction force between the first electromagnet 8 and the magnetic strip 61. Then, the first telescopic device is activated, thereby moving the mounting block 9, the driving device, the movable plate 7, and the first electromagnet 8 to the right, thereby moving the magnetic strip 61, the frame 62, and the two scrapers 63 to the right, so that the structure formed by the magnetic strip 61, the frame 62, and the two scrapers 63 is completely moved into the inner cavity of the vacuum glass 6. At this time, the two scrapers 63 are respectively attached to the left and right sides inside the vacuum glass 6. On the wall, then the second lifting device is activated, driving the moving block 4, the first telescopic device, the mounting block 9, the driving device, the movable plate 7, and the first electromagnet 8 to move up and down. Under the action of adsorption force, the magnetic strip 61, the frame 62, and the two scrapers 63 move up and down. When the movement time reaches the predetermined time, the driving device is activated, driving the movable plate 7 and the first electromagnet 8 to rotate 90°. Under the action of adsorption force, the structure formed by the magnetic strip 61, the frame 62, and the two scrapers 63 rotates 90°. At this time, the two scrapers 63 are respectively attached to the upper and lower walls inside the vacuum glass 6. Then the first telescopic device is activated, thereby driving the mounting block 9, the driving device, the movable plate 7, and the first electromagnet 8 to move left and right. Under the action of adsorption force, the magnetic strip 61, the frame 62, and the two scrapers 63 move left and right, so as to use the two moving scrapers 63 to scrape off the sealant burrs on the inner wall of the vacuum glass 6, effectively avoiding the probability of gas remaining in the vacuum glass 6 and improving the degassing quality.
[0035] After scraping is completed, the structure formed by the magnetic strip 61, frame 62, and two scrapers 63 is pushed out of the opening by the adsorption force. Then, the circuit of the first electromagnet 8 is disconnected, thereby eliminating the adsorption force. The structure formed by the magnetic strip 61, frame 62, and two scrapers 63 is then removed from the vacuum glass 6. This allows for convenient handling of the structure formed by the magnetic strip 61, frame 62, and two scrapers 63, making it reusable. Furthermore, no additional components need to be installed inside the vacuum glass 6, making it easy to use and highly practical. Multiple fixing parts are evenly arranged at the rear end of the moving block 4, forming a rolling connection. Connected to the front end of the placement plate 3, multiple first rolling components work together to assist the movement of the moving block 4. Multiple fixed parts, which are equidistantly installed at the rear end of the mounting block 9 in a circular arrangement, are equidistantly installed at the rear end of the mounting block 9 and located outside the drive device. The rolling parts of the second rolling components are all rotatably connected to the front end of the movable plate 7. Multiple second rolling components work together to assist the rotation of the movable plate 7. The drive device can be a servo motor 91 with a reducer, the first telescopic device can be a second electric push rod 41, the second lifting device can be a third electric push rod 42, the first rolling component can be a first bullseye ball 92, and the second rolling component can be a second bullseye ball.
[0036] like Figure 1 , Figure 2 and Figure 3As shown, a water pump located to the left of the evacuation device 14 is installed on the upper end of the workbench 1. A water tank 12, located on the rear side of the upper end of the workbench 1 and behind the water pump, is connected to the inlet of the water pump via a flexible water pipe. The water pump works in conjunction with the water tank 12 to deliver oxidizing liquid. A nozzle 15, which works with the opening, is connected to the outlet of the water pump via a flexible water pipe, delivering oxidizing liquid into the vacuum glass 6. A return water inlet 17, located between the evacuation device 14 and the placement plate 3, is connected to the front end of the water tank 12 via a flexible water pipe with a control valve. The oxidizing liquid inside the vacuum glass 6 is recovered through the return water inlet 17. In use, the nozzle 15 is first inserted into the upper opening, then the return water inlet 17 is inserted into the lower opening, and then the water pump is started to extract the oxidizing liquid from the water tank 12. Oxidizing liquid is delivered into the vacuum glass 6 through nozzle 15, filling the vacuum glass 6 with oxidizing liquid. At this time, the oxidizing liquid is in full contact with the inner wall of the sealing part of the vacuum glass 6. On the one hand, it can clean the residue generated by scraping inside the vacuum glass 6, and on the other hand, it can release the residual air bubbles attached to the inner wall of the sealing part of the vacuum glass 6, effectively preventing the vacuum degree of the vacuum glass 6 from decreasing later. Then, the control valve on the soft water pipe on the return water inlet 17 is opened, so that the oxidizing liquid inside the vacuum glass 6 is recycled and delivered to the water tank 12 through the return water inlet 17, and the residue generated by scraping inside the vacuum glass 6 is discharged. A filter screen is installed in the water tank 12 between the connection between the water pump and the water tank 12 and the connection between the return water inlet 17 and the water tank 12. The filter screen performs filtration, realizing the recycling of the oxidizing liquid. The water pump can be a water pump 13.
[0037] like Figure 1 , Figure 2 , Figure 3 , Figure 4 and Figure 5As shown, the vacuuming device 14, located on the left side of the placement plate 3, is installed on the upper front side of the workbench 1. The suction nozzle 16 is connected to the inlet of the vacuuming device 14 via a flexible air tube. The vacuuming device 14 and the suction nozzle 16 work together to vacuum the vacuum glass 6. The heater 54, located above the uppermost limiting plate 2 and with its end face overlapping the front face of the vacuum glass 6, is attached to the lower end of the fixing plate 5. After the inside of the vacuum glass 6 is cleaned, the first lifting device, whose fixing part is located on the upper left side of the fixing plate 5, is activated. This drives the heater 54, which is connected to the movable part of the first lifting device that penetrates the fixing plate 5, to move up and down on the front face of the vacuum glass 6. At the same time, the heater 54 is activated to transfer heat into the vacuum glass 6, thereby using the heat to dry the residual oxidizing liquid inside the vacuum glass 6 and discharge the residual oxidizing liquid inside the vacuum glass 6. To effectively prevent residual oxidizing liquid from affecting the sealing of the vacuum glass 6, two suction caps are installed on the two openings to seal them. Then, the suction nozzle 16 is installed on the suction cap to connect with the inside of the vacuum glass 6. Then, the vacuum equipment 14 is activated to vacuum the vacuum glass 6, thereby giving the vacuum glass 6 heat insulation and sound insulation effects. The round rod 51, which is located on the upper right side of the heater 54, is arranged vertically and passes through the fixed plate 5, and is slidably connected to the fixed plate 5. The round rod 51 guides the movement of the heater 54. A power supply 52 is set at the front end of the placement plate 3, located on the upper side of the fixed plate 5 and between the round rod 51 and the first lifting device. The power supply 52 provides power to the first lifting device, heater 54 and other electronic equipment. The first lifting device can be a fourth electric push rod 53.
[0038] Although this specification describes embodiments, not every embodiment contains only one independent technical solution. This narrative style is merely for clarity. Those skilled in the art should consider the specification as a whole, and the technical solutions in each embodiment can also be appropriately combined to form other embodiments that can be understood by those skilled in the art.
Claims
1. A vacuum glass degassing device, characterized in that: The system includes a workbench (1), with a placement plate (3) hinged to the upper end of the workbench (1). An adjustment component is installed at the rear end of the placement plate (3) and is located at the upper end of the workbench (1). The front end of the placement plate (3) is attached to a vacuum glass (6). Two openings are symmetrically opened on the sealing part at the left end of the vacuum glass (6) and the openings are connected to the inner cavity of the vacuum glass (6). Four limiting plates (2) are equidistantly arranged in a rectangular pattern at the front end of the placement plate (3) and are located at the four ends of the vacuum glass (6), respectively. The openings are located outside the limiting plates (2). A discharge component is installed at the middle of the rear end of the placement plate (3) and passes through the placement plate (3) and is attached to the rear end of the vacuum glass (6). The front end of the vacuum glass (6) is attached to a first electromagnet (8). The glass (6) has an internal sliding frame (62). A magnetic strip (61) is provided inside the frame (62) and the magnetic strip (61) is located directly behind the first electromagnet (8). The first electromagnet (8) and the magnetic strip (61) are attracted to each other. Scrapers (63) are provided at both ends of the frame (62), and the two scrapers (63) are respectively attached to the two opposite walls inside the vacuum glass (6). A movable plate (7) is installed at the front end of the first electromagnet (8). A driving component is connected to the front end of the movable plate (7). A fixed plate (5) is installed at the upper end of the driving component and the fixed plate (5) is fixed on the front end of the placement plate (3). An auxiliary component is installed on the fixed plate (5) and the auxiliary component is located above the uppermost limiting plate (2). A functional component is installed at the upper end of the workbench (1) and the functional component is located on the left side of the placement plate (3). The functional components include a vacuuming device (14), which is installed on the front side of the upper end of the workbench (1) and is located on the left side of the placement plate (3). The inlet of the vacuuming device (14) is connected to a suction nozzle (16) via a soft air pipe. A water pumping device is installed on the upper end of the workbench (1) and is located on the left side of the vacuuming device (14). A water tank (12) is installed on the rear side of the upper end of the workbench (1) and is located on the rear side of the water pumping device. The inlet of the water pumping device is connected to the water tank (12) via a soft water pipe. The outlet of the water pumping device is connected to a nozzle (15) for use with the opening via a soft water pipe. A return water inlet (17) is connected to the front end of the water tank (12) via a soft water pipe with a control valve and is located between the vacuuming device (14) and the placement plate (3). The auxiliary component includes a heater (54), which is attached to the lower end of the fixed plate (5) and is located above the uppermost limiting plate (2). The rear end face of the heater (54) overlaps with the front end face of the vacuum glass (6). The upper left side of the fixed plate (5) is provided with a fixing part of the first lifting device. The movable part of the first lifting device passes through the fixed plate (5) and is connected to the heater (54). The upper right side of the heater (54) is provided with a vertically arranged round rod (51). The round rod (51) passes through the fixed plate (5) and the fixed plate (5) and the round rod (51) are slidably connected.
2. The vacuum glass degassing device according to claim 1, characterized in that: The driving component includes a mounting block (9), which is located on the front side of the movable plate (7). The mounting block (9) has a fixed part of the driving device installed at the middle position of the front end of the mounting block (9). The movable part of the driving device passes through the mounting block (9) and is connected to the movable plate (7). A moving block (4) is provided on the front side of the placement plate (3) and is located to the right of the rightmost limiting plate (2). The right end of the moving block (4) has a fixed part of the first telescopic device installed. The movable part of the first telescopic device passes through the moving block (4) and is connected to the mounting block (9). The upper right side of the fixed plate (5) has a fixed part of the second lifting device and is located to the right of the round rod (51). The movable part of the second lifting device passes through the fixed plate (5) and is connected to the moving block (4).
3. The vacuum glass degassing device according to claim 2, characterized in that: The rear end of the moving block (4) is uniformly provided with a plurality of fixing parts of the first rolling members, and the rolling parts of the first rolling members are rolledly connected to the front end of the placement plate (3). The rear end of the mounting block (9) is equidistantly installed with a plurality of fixing parts of the second rolling members arranged in a circular pattern, and the second rolling members are located outside the driving device. The rolling parts of the plurality of second rolling members are all rolledly connected to the front end of the movable plate (7).
4. The vacuum glass degassing device according to claim 1, characterized in that: The discharge component includes a box body (31), which is installed at the middle of the rear end of the placement plate (3). The middle of the front end face of the placement plate (3) is recessed to form a through-hole, which penetrates the placement plate (3). The through-hole is connected to the front end of the box body (31). A second electromagnet (34) is provided on the rear wall inside the box body (31). A top plate (32) is slidably connected inside the through-hole. A protective component is provided at the front end of the top plate (32). The front end face of the protective component overlaps with the front end face of the placement plate (3). The front end face of the protective component is recessed to form multiple through holes, which penetrate the protective component. A magnetic plate (33) is provided at the rear end of the top plate (32). The magnetic plate (33) is located in front of the second electromagnet (34), and the second electromagnet (34) and the magnetic plate (33) are arranged to repel each other.
5. A vacuum glass degassing device according to claim 4, characterized in that: Guide members are installed at the four corners of the rear end of the top plate (32), and the guide members are located outside the magnetic plate (33) and outside the second electromagnet (34). The four guide members are respectively set at the four corners of the inner rear wall of the box (31). Four elastic members (35) are evenly arranged between the rear end of the top plate (32) and the inner rear wall of the box (31), and the elastic members (35) are located outside the guide members.
6. The vacuum glass degassing device according to claim 4, characterized in that: The adjusting component includes two second telescopic devices. The fixed parts of the two second telescopic devices are hinged to the upper end of the workbench (1), and the movable parts of the two second telescopic devices are hinged to the rear end of the placement plate (3). The two second telescopic devices are located on the left and right sides of the box body (31).
Citation Information
Patent Citations
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