Novel vacuum glass production equipment
By designing new vacuum glass production equipment, vacuum pipes and molecular pumps are used to form vacuum, combined with lifting cylinders and heaters and other devices, the problems of inconvenience and time-consuming and labor-consuming existing equipment are solved, and the automated production of glass plates is realized, efficiency is improved and manual strength is reduced.
Patent Information
- Application Number
- CN202510644693.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Priority Date
- 2024-06-13
- Filing Date
- 2025-05-19
- Publication Date
- 2025-07-08
AI Technical Summary
The existing vacuum glass production equipment is inconvenient to operate, time-consuming and labor-intensive, has high manual strength and low efficiency.
A new type of vacuum glass production equipment was designed, including front pre-extraction box, front transition box, front exhaust box, shaping box, plastic shaping box, brazing box, cooling box, glue coating box and rear transition box. A vacuum is formed through vacuum pipelines and molecular pumps, combined with lifting cylinders, conveying rollers and heaters, to realize automated production process.
It improves production efficiency, reduces manual strength, realizes automatic conveying, heating, brazing and glue coating of glass plates, and maintains the vacuum state inside the equipment.
Smart Images

Figure HDA0005409244670000011 
Figure HDA0005409244670000012 
Figure HDA0005409244670000021
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of vacuum glass production, and specifically to a new type of vacuum glass production equipment. Background Art
[0002] Vacuum glass is a special glass material, and its main feature is that air is removed during the preparation process to form a vacuum layer. This glass material is usually composed of a vacuum gap between two or more glass sheets, making it have excellent heat insulation and heat preservation properties. The production of vacuum glass requires the use of vacuum glass production equipment.
[0003] In the use process of existing vacuum glass production equipment, it is necessary to manually combine two glass sheets and perform brazing around the two glasses. When brazing, air extraction holes are reserved, and then air is extracted through the reserved air extraction holes to form a vacuum between the two glass sheets. After extraction, it is sealed. The production method is inconvenient to operate and use, time-consuming and laborious, with high manual intensity and low efficiency. Summary of the Invention
[0004] Aiming at the deficiencies of the prior art, the present invention provides a new type of vacuum glass production equipment, which solves the problems of inconvenient operation and use of the production method, time-consuming and laborious, high manual intensity, and low efficiency.
[0005] To achieve the above objectives, the present invention is realized through the following technical solutions: A new type of vacuum glass production equipment includes a front pre-pumping box, a front transition box is arranged on one side of the front pre-pumping box, a front exhaust box is arranged on one side of the front transition box, a laminating box is arranged on one side of the front exhaust box, a shaping box is arranged on one side of the laminating box, a first brazing box is arranged on one side of the shaping box, a second brazing box is arranged on one side of the first brazing box, a third brazing box is arranged on one side of the second brazing box, a cooling box is arranged on one side, a gluing box is arranged on one side of the cooling box, a rear transition box is arranged on one side of the gluing box, a rear pre-pumping box is arranged on one side of the rear transition box, pump groups are fixedly connected to the outer walls of the front pre-pumping box and the rear pre-pumping box, vacuum pipelines and molecular pumps are fixedly connected to the outer walls of the front transition box, one end of the vacuum pipeline is fixedly connected to one end of the pump group, and one end of the molecular pump is fixedly connected to the outer wall of the vacuum pipeline.
[0006] Preferably, the vacuum pipelines and the molecular pumps are fixedly connected to the outer walls of the front exhaust box, the laminating box, the shaping box, the first brazing box, the second brazing box, the third brazing box, the cooling box, the gluing box and the rear transition box. A cover plate is arranged on the upper surface of the front pre-pumping box, a first vacuum lock is arranged on the outer wall of the front pre-pumping box, and a second vacuum lock is arranged inside the front pre-pumping box.
[0007] Preferably, a conveying roller is connected inside the pre-pumping box for data. Synchronous wheels are fixedly connected to the outer walls of multiple said conveying rollers, and synchronous belts are arranged on the outer walls of multiple said synchronous wheels.
[0008] Preferably, a second vacuum lock is fixedly connected inside the front transition box, an upper heater is fixedly connected inside the front transition box, a lower heater is fixedly connected inside the front transition box, and the upper surface of the front transition box is arranged on the lower surface of the cover plate.
[0009] Preferably, a cover plate is connected to the upper surface of the front exhaust box. A conveying roller is connected inside the front exhaust box. The front exhaust box is fixedly connected to the outer wall of the upper heater, and the front exhaust box is fixedly connected to the outer wall of the lower heater.
[0010] Preferably, a conveying roller is rotatably connected inside the laminating box. A lifting mechanism is arranged inside the laminating box. A lifting cylinder is arranged inside the laminating box. The output end of the lifting cylinder is fixedly connected to the lifting mechanism. A positioning push block is arranged inside the shaping box. A lifting cylinder is fixedly connected inside the shaping box. The output end of the lifting cylinder is fixedly connected to the positioning push block. The laminating box and the shaping box are both fixedly connected to the inner wall of the upper heater.
[0011] Preferably, cover plates are arranged on the upper surfaces of the first brazing box, the second brazing box and the third brazing box. The first brazing box and the second brazing box are both fixedly connected to the outer wall of the upper heater. The first brazing box and the second brazing box are both fixedly connected to the outer wall of the lower heater. A connecting frame is slidably connected inside the second brazing box. A lifting cylinder is fixedly connected inside the front transition box. The output end of the lifting cylinder is fixedly connected to the lower surface of the connecting frame. An electromagnetic heater is fixedly connected to the outer wall of the connecting frame. One end of the electromagnetic heater is fixedly connected to a filler metal input pipe. A transverse adjuster is arranged inside the connecting frame.
[0012] Preferably, a cover plate is arranged on the upper surface of the cooling box. A cover plate is rotatably connected inside the cooling box. A lifting cylinder is fixedly connected inside the cooling box. The output ends of multiple said lifting cylinders are respectively fixedly connected to an upper cooling plate and a lower cooling plate. The outer walls of the upper cooling plate and the lower cooling plate are both slidably connected inside the cooling box. An upper roller is arranged inside the cooling box.
[0013] Preferably, a glue supply mechanism is provided on the outer wall of the glue application box. One end of the glue supply mechanism is fixedly connected to a longitudinal glue application structure and a lateral glue application mechanism respectively. The outer walls of the longitudinal glue application structure and the lateral glue application mechanism are arranged inside the glue application box. A conveying roller is rotatably connected inside the glue application box, an upper roller is rotatably connected inside the glue application box, a second vacuum lock is connected inside the glue application box, and a cover plate is arranged on the upper surface of the glue application box.
[0014] Preferably, conveying rollers are connected inside both the rear transition box and the rear pre-evacuation box, upper rollers are arranged inside the rear transition box and the rear pre-evacuation box, cover plates are arranged on the upper surfaces of the rear transition box and the rear pre-evacuation box, a second vacuum lock is arranged inside the rear pre-evacuation box, and a first vacuum lock is arranged on the outer wall of the rear pre-evacuation box.
[0015] Working principle: When this new type of vacuum glass production equipment is needed to be used, first insert the glass plate from one end of the front pre-pumping box into the interior. Drive the conveying rollers to rotate through the motor, drive the synchronous pulleys to rotate, so that the synchronous belt runs. At the same time, drive multiple conveying rollers and synchronous pulleys to rotate. Then convey the glass plate through the rotation of the conveying rollers. Before closing the front pre-pumping box through the first vacuum lock, start the pump set to extract the air inside the front pre-pumping box. Then open the second vacuum lock to convey the glass plate into the front transition box. Start the upper heater and the lower heater to heat the incoming glass plate. Then, through the rotation of the conveying rollers, the glass plate enters the front exhaust box. Further, heat the glass plate continuously through the upper heater and the lower heater inside the front exhaust box to continuously raise the temperature of the workpiece. Then, through the conveying rollers, the glass plate enters the laminating box. Push the lifting mechanism to move through the lifting cylinder, and stack the two glass plates up and down. Through the rotation of the conveying rollers, the glass plate enters the shaping box. Push the positioning push block to move through the lifting cylinder to align horizontally and vertically. Then, through the continuous heating of the upper heaters inside the laminating box and the shaping box, through the rotation of the conveying rollers, the glass plate enters the first brazing box. Then, the upper roller slides inside the first brazing box to limit the glass plate. Through the movement of the glass plate, it enters the second brazing box. Drive the connecting frame to move through the output end of the lifting cylinder. Then, move between the connecting frames through the horizontal adjuster to achieve the effects of up-down and horizontal adjustment. Make the filler metal enter the electromagnetic heater through the filler metal input pipe for heating, and then the filler metal is filled in a liquid state for welding. Through the entry of the upper heaters and the lower heaters inside the first brazing box and the second brazing box, through the rotation of the conveying rollers and the upper roller, the glass plate moves into the third brazing box, and then moves into the cooling box. Drive the upper cooling plate and the lower cooling plate to move through the output end of the lifting cylinder to make the upper cooling plate and the lower cooling plate close to the glass plate, and then cool the glass plate. Then, through the rotation of the conveying rollers and the upper roller, the glass plate enters the gluing box. Supply glue to the longitudinal gluing structure and the lateral gluing structure through the glue supply mechanism. Glue the glass plate longitudinally through the longitudinal gluing structure, and then glue the glass plate laterally and longitudinally through the lateral gluing structure. Close the second vacuum lock, start the pump set and the molecular pump to keep the gluing box in a vacuum. Through the rotation of the conveying rollers and the upper roller, the glass plate enters the rear transition box. Then open the second vacuum lock to make the glass plate enter the rear pre-pumping box. Take out the glass plate by opening the first vacuum lock on one side of the rear pre-pumping box. Extract air through the molecular pump to make the air enter the vacuum pipeline and keep the interior in a vacuum.
[0016] The present invention provides a new type of vacuum glass production equipment. It has the following beneficial effects:
[0017] 1. The present invention evacuates the internal air by starting the molecular pump and the pump set, thereby creating a vacuum inside. The glass plate is pushed into the front pre-evacuation chamber by closing the second vacuum lock and opening the first vacuum lock. The internal air is evacuated by closing the first vacuum lock and starting the pump set to create a vacuum inside. Then, it enters the front transition chamber by opening the second vacuum lock and closes the second vacuum lock. The glass plate enters the rear pre-evacuation chamber by opening the second vacuum lock on the rear pre-evacuation chamber, and then the second vacuum lock is closed and the first vacuum lock is opened to take out the glass plate, thereby achieving the effect of maintaining the internal vacuum.
[0018] 2. The present invention moves the lifting mechanism by pushing with the lifting cylinder. Two glass plates are stacked one above the other. The glass plate enters the shaping box by the rotation of the conveying rollers. The positioning push block is moved by pushing with the lifting cylinder to achieve horizontal and vertical alignment, and the glass plate enters the first brazing box. The brazing filler metal enters the electromagnetic heater through the brazing filler metal input pipe for heating, and then the brazing filler metal is filled in a liquid state for welding. The glass plate enters the gluing box by the rotation of the conveying rollers and the upper roller. The glue supply mechanism supplies glue to the longitudinal gluing structure and the lateral gluing structure. The glass plate is longitudinally glued by the longitudinal gluing structure, and then is laterally and longitudinally glued by the lateral gluing structure, achieving the effect of reducing the labor intensity and improving the efficiency. BRIEF DESCRIPTION OF THE DRAWINGS
[0019] Figure 1 is a perspective view of the present invention;
[0020] Figure 2 is a schematic diagram of the front pre-evacuation chamber of the present invention;
[0021] Figure 3 is a schematic diagram of the front transition of the present invention;
[0022] Figure 4 is a schematic diagram of the front exhaust chamber of the present invention;
[0023] Figure 5 is a schematic diagram of the laminating box of the present invention;
[0024] Figure 6 is a cross-sectional view of the shaping box of the present invention;
[0025] Figure 7 is a schematic diagram of the first brazing box of the present invention;
[0026] Figure 8 is a cross-sectional view of the second brazing box of the present invention;
[0027] Figure 9 is Figure 8 the enlarged view at A in
[0028] Figure 10 is Figure 8 the enlarged view at B in
[0029] Figure 11 Schematic diagram of the connecting frame of the present invention;
[0030] Figure 12 Schematic diagram of the cooling box of the present invention;
[0031] Figure 13 Cross-sectional view of the cooling box of the present invention;
[0032] Figure 14 Schematic diagram of the glue application box of the present invention:
[0033] Figure 15 Schematic diagram of the rear transition box of the present invention;
[0034] Figure 16 Schematic diagram of the rear pre-pumping box of the present invention.
[0035] Among them, 1, front pre-pumping box; 2, front transition box; 3, front exhaust box; 4, laminating box; 5, shaping box; 6, first brazing box; 7, second brazing box; 8, third brazing box; 9, cooling box; 10, glue application box; 11, rear transition box; 12, rear pre-pumping box; 13, first vacuum lock; 14, second vacuum lock; 15, pump group; 16, conveying roller; 17, synchronous pulley; 18, synchronous belt; 19, cover plate; 20, vacuum pipeline; 21, molecular pump; 22, upper heater; 23, positioning push block; 24, lower heater; 25, upper roller; 26, electromagnetic heater; 27, lifting cylinder; 28, lateral regulator; 29, filler metal input pipe; 30, upper cooling plate; 31, lower cooling plate; 32, longitudinal glue application structure; 33, lateral glue application mechanism; 34, glue supply mechanism; 35, lifting mechanism; 36, connecting frame. Detailed implementation manners
[0036] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.
[0037] Embodiment:
[0038] Please refer to the attached Figure 1 - attached Figure 16, an embodiment of the present invention provides a new type of vacuum glass production equipment, including a front pre-pumping box 1. A front transition box 2 is provided on one side of the front pre-pumping box 1. A front exhaust box 3 is provided on one side of the front transition box 2. A lamination box 4 is provided on one side of the front exhaust box 3. A shaping box 5 is provided on one side of the lamination box 4. A first brazing box 6 is provided on one side of the shaping box 5. A second brazing box 7 is provided on one side of the first brazing box 6. A third brazing box 8 is provided on one side of the second brazing box 7. A cooling box 9 is provided on one side. A gluing box 10 is provided on one side of the cooling box 9. A rear transition box 11 is provided on one side of the gluing box 10. A rear pre-pumping box 12 is provided on one side of the rear transition box 11. A pump group 15 is fixedly connected to the outer walls of the front pre-pumping box 1 and the rear pre-pumping box 12. Vacuum pipes 20 and molecular pumps 21 are fixedly connected to the outer walls of the front transition box 2. One end of the vacuum pipe 20 is fixedly connected to one end of the pump group 15. One end of the molecular pump 21 is fixedly connected to the outer wall of the vacuum pipe 20; The outer walls of the vacuum pipe 20 and the molecular pump 21 are fixedly connected to the outer walls of the front exhaust box 3, the lamination box 4, the shaping box 5, the first brazing box 6, the second brazing box 7, the third brazing box 8, the cooling box 9, the gluing box 10 and the rear transition box 11. A cover plate 19 is provided on the upper surface of the front pre-pumping box 1. A first vacuum lock 13 is provided on the outer wall of the front pre-pumping box 1. A second vacuum lock 14 is provided inside the front pre-pumping box 1;
[0039] Specifically, by closing the second vacuum lock 14 and opening the first vacuum lock 13, the glass plate enters the front pre-pumping box 1. By closing the first vacuum lock 13 and starting the pump group 15, the internal air is pumped out to make the inside vacuum. Then, by opening the second vacuum lock 14, it enters the front transition box 2 and closes the second vacuum lock 14. By opening the second vacuum lock 14 on the rear pre-pumping box 12, the glass plate enters the rear pre-pumping box 12. By closing the second vacuum lock 14 and opening the first vacuum lock 13, and starting the molecular pump 21 and the pump group 15 to pump out the internal air, a vacuum is formed inside.
[0040] A conveying roller 16 is connected inside the front pre-pumping box 1. Synchronous wheels 17 are fixedly connected to the outer walls of multiple conveying rollers 16. Synchronous belts 18 are provided on the outer walls of multiple synchronous wheels 17;
[0041] Specifically, the glass plate is inserted into the inside from one end of the front pre-pumping box 1. The conveying roller 16 is driven to rotate by a motor, driving the synchronous wheel 17 to rotate, so that the synchronous belt 18 runs. At the same time, multiple conveying rollers 16 and synchronous wheels 17 are driven to rotate. Then, the glass plate is conveyed by the rotation of the conveying roller 16. The front pre-pumping box 1 is closed through the first vacuum lock 13. The air inside the front pre-pumping box 1 is pumped out by starting the pump group 15. Then, the glass plate is conveyed into the front transition box 2 by opening the second vacuum lock 14.
[0042] The interior of the front transition box 2 is fixedly connected with a second vacuum lock 14, the interior of the front transition box 2 is fixedly connected with an upper heater 22, the interior of the front transition box 2 is fixedly connected with a lower heater 24, and the upper surface of the front transition box 2 is arranged on the lower surface of the cover plate 19;
[0043] Specifically, by starting the upper heater 22 and the lower heater 24, the entering glass plate is heated, and then the glass plate enters the front exhaust box 3 through the rotation of the conveying roller 16.
[0044] The upper surface of the front exhaust box 3 is connected with a cover plate 19, the interior of the front exhaust box 3 is connected with a conveying roller 16, the interior of the front exhaust box 3 is fixedly connected to the outer wall of the upper heater 22, and the interior of the front exhaust box 3 is fixedly connected to the outer wall of the lower heater 24;
[0045] Specifically, through the upper heater 22 and the lower heater 24 inside the front exhaust box 3, the glass plate is continuously heated to continuously raise the temperature of the workpiece, and then the glass plate enters the laminating box 4 through the conveying roller 16.
[0046] The interior of the laminating box 4 is rotatably connected with a conveying roller 16, the interior of the laminating box 4 is provided with a lifting mechanism 35, the interior of the laminating box 4 is provided with a lifting cylinder 27, the output end of the lifting cylinder 27 is fixedly connected with the lifting mechanism 35, the interior of the shaping box 5 is provided with a positioning push block 23, the interior of the shaping box 5 is fixed with a lifting cylinder 27, and the output end of the lifting cylinder 27 is fixedly connected to the positioning push block 23. The interiors of the laminating box 4 and the shaping box 5 are both fixedly connected to the inner wall of the upper heater 22;
[0047] Specifically, the lifting cylinder 27 is used to push the lifting mechanism 35 to move, and the two glass plates are stacked up and down. The glass plate enters the shaping box 5 through the rotation of the conveying roller 16. The lifting cylinder 27 is used to push the positioning push block 23 to move to make the horizontal and vertical alignments, and then the upper heater 22 inside the laminating box 4 and the shaping box 5 continuously heats.
[0048] The upper surfaces of the first brazing box 6, the second brazing box 7 and the third brazing box 8 are provided with cover plates 19. The interiors of the first brazing box 6 and the second brazing box 7 are both fixedly connected to the outer wall of the upper heater 22, and the interiors of the first brazing box 6 and the second brazing box 7 are both fixedly connected to the outer wall of the lower heater 24. The interior of the second brazing box 7 is slidably connected with a connecting frame 36. The interior of the front transition box 2 is fixed with a lifting cylinder 27, and the output end of the lifting cylinder 27 is fixedly connected to the lower surface of the connecting frame 36. The outer wall of the connecting frame 36 is fixedly connected with an electromagnetic heater 26, one end of the electromagnetic heater 26 is fixedly connected with a filler metal input pipe 29, and the interior of the connecting frame 36 is provided with a horizontal regulator 28;
[0049] Specifically, the rotation of the conveying roller 16 causes the glass plate to enter the first brazing box 6. Then, the upper roller 25 slides inside the first brazing box 6 to limit the glass plate. Through the movement of the glass plate, it enters the second brazing box 7. The output end of the lifting cylinder 27 drives the connecting frame 36 to move, and then the transverse adjuster 28 moves between the connecting frames 36 to achieve the effect of vertical and transverse adjustment. The solder enters the electromagnetic heater 26 through the solder input pipe 29 for heating, and then the solder is filled in a liquid state for welding. Through the upper heater 22 and the lower heater 24 inside the first brazing box 6 and the second brazing box 7, and through the rotation of the conveying roller 16 and the upper roller 25, the glass plate moves into the third brazing box 8.
[0050] A cover plate 19 is provided on the upper surface of the cooling box 9. The cover plate 19 is rotatably connected inside the cooling box 9. A lifting cylinder 27 is fixedly connected inside the cooling box 9. The output ends of multiple lifting cylinders 27 are respectively fixedly connected with an upper cooling plate 30 and a lower cooling plate 31. The outer walls of the upper cooling plate 30 and the lower cooling plate 31 are slidably connected inside the cooling box 9. An upper roller 25 is provided inside the cooling box 9.
[0051] Specifically, the output end of the lifting cylinder 27 drives the upper cooling plate 30 and the lower cooling plate 31 to move, making the upper cooling plate 30 and the lower cooling plate 31 approach the glass plate, thereby cooling the glass plate. Then, through the rotation of the conveying roller 16 and the upper roller 25, the glass plate enters the gluing box 10.
[0052] A glue supply mechanism 34 is provided on the outer wall of the gluing box 10. One ends of the glue supply mechanism 34 are respectively fixedly connected with a longitudinal gluing structure 32 and a lateral gluing mechanism 33. The outer walls of the longitudinal gluing structure 32 and the lateral gluing mechanism 33 are arranged inside the gluing box 10. A conveying roller 16 is rotatably connected inside the gluing box 10. An upper roller 25 is rotatably connected inside the gluing box 10. A second vacuum lock 14 is connected inside the gluing box 10. A cover plate 19 is provided on the upper surface of the gluing box 10.
[0053] Specifically, the glue supply mechanism 34 supplies glue to the longitudinal gluing structure 32 and the lateral gluing mechanism 33. The longitudinal gluing structure 32 applies longitudinal glue to the glass plate, and then the lateral gluing mechanism 33 applies lateral glue to the glass plate for longitudinal gluing.
[0054] Conveying rollers 16 are connected inside both the rear transition box 11 and the rear pre-pumping box 12. An upper roller 25 is provided inside the rear transition box 11 and the rear pre-pumping box 12. A cover plate 19 is provided on the upper surface of the rear transition box 11 and the rear pre-pumping box 12. A second vacuum lock 14 is provided inside the rear pre-pumping box 12. A first vacuum lock 13 is provided on the outer wall of the rear pre-pumping box 12.
[0055] Specifically, by closing the second vacuum lock 14, the coating box 10 is kept in a vacuum state by starting the pump set 15 and the molecular pump 21. The glass plate enters the rear transition box 11 by the rotation of the conveying roller 16 and the upper roller 25. Then, the second vacuum lock 14 is opened to enable the glass plate to enter the rear pre-pumping box 12. The glass plate is taken out by opening the first vacuum lock 13 on one side of the rear pre-pumping box 12. The degree of automation is high, greatly improving the production efficiency and reducing the production cost.
[0056] Although the embodiments of the present invention have been shown and described, for those of ordinary skill in the art, it can be understood that various changes, modifications, substitutions, and variations can be made to these embodiments without departing from the principles and spirit of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.
Claims
1. A new type of vacuum glass production equipment, including a front pre-pumping box (1), characterized in that, On one side of the front pre-pumping box (1), there is a front transition box (2). On one side of the front transition box (2), there is a front exhaust box (3). On one side of the front exhaust box (3), there is a laminating box (4). On one side of the laminating box (4), there is a shaping box (5). On one side of the shaping box (5), there is a first brazing box (6). On one side of the first brazing box (6), there is a second brazing box (7). On one side of the second brazing box (7), there is a third brazing box (8). On one side, there is a cooling box (9). On one side of the cooling box (9), there is a gluing box (10). On one side of the gluing box (10), there is a rear transition box (11). On one side of the rear transition box (11), there is a rear pre-pumping box (12). On the outer walls of the front pre-pumping box (1) and the rear pre-pumping box (12), there is a pump group (15) fixedly connected. On the outer walls of the front transition box (2), there are a vacuum pipeline (20) and a molecular pump (21) fixedly connected. One end of the vacuum pipeline (20) is fixedly connected to one end of the pump group (15), and one end of the molecular pump (21) is fixedly connected to the outer wall of the vacuum pipeline (20).
2. A novel vacuum glass production device according to claim 1, characterized in that, The outer walls of the vacuum pipeline (20) and the molecular pump (21) are fixedly connected to the outer walls of the front exhaust box (3), the laminating box (4), the shaping box (5), the first brazing box (6), the second brazing box (7), the third brazing box (8), the cooling box (9), the gluing box (10), and the rear transition box (11). On the upper surface of the front pre-pumping box (1), there is a cover plate (19). On the outer wall of the front pre-pumping box (1), there is a first vacuum lock (13). Inside the front pre-pumping box (1), there is a second vacuum lock (14).
3. A new type of vacuum glass production equipment according to claim 1, characterized in that Inside the front pre-pumping box (1), there is a conveying roller (16) connected. On the outer walls of multiple conveying rollers (16), there are synchronous wheels (17) fixedly connected. On the outer walls of multiple synchronous wheels (17), there is a synchronous belt (18).
4. A novel vacuum glass production device according to claim 1, characterized in that, Inside the front transition box (2), there is a second vacuum lock (14) fixedly connected. Inside the front transition box (2), there is an upper heater (22) fixedly connected. Inside the front transition box (2), there is a lower heater (24) fixedly connected. The upper surface of the front transition box (2) is disposed on the lower surface of the cover plate (19).
5. A novel vacuum glass production device according to claim 1, characterized in that, On the upper surface of the front exhaust box (3), there is a connection with a cover plate (19). Inside the front exhaust box (3), there is a conveying roller (16) connected. Inside the front exhaust box (3), the outer wall of the upper heater (22) is fixedly connected. Inside the front exhaust box (3), the outer wall of the lower heater (24) is fixedly connected.
6. A new type of vacuum glass production equipment according to claim 1, characterized in that, Inside the laminating box (4), a conveying roller (16) is rotatably connected. Inside the laminating box (4), a lifting mechanism (35) is provided. Inside the laminating box (4), a lifting cylinder (27) is provided. The output end of the lifting cylinder (27) is fixedly connected to the lifting mechanism (35). Inside the shaping box (5), a positioning push block (23) is provided. Inside the shaping box (5), a lifting cylinder (27) is fixed. The output end of the lifting cylinder (27) is fixedly connected to the positioning push block (23). The inner walls of both the laminating box (4) and the shaping box (5) are fixedly connected to the inner wall of the upper heater (22).
7. A novel vacuum glass production device according to claim 1, characterized in that, On the upper surfaces of the first brazing box (6), the second brazing box (7), and the third brazing box (8), a cover plate (19) is provided. The inner walls of both the first brazing box (6) and the second brazing box (7) are fixedly connected to the outer wall of the upper heater (22). The inner walls of both the first brazing box (6) and the second brazing box (7) are fixedly connected to the outer wall of the lower heater (24). Inside the second brazing box (7), a connecting frame (36) is slidably connected. Inside the front transition box (2), a lifting cylinder (27) is fixedly connected. The output end of the lifting cylinder (27) is fixedly connected to the lower surface of the connecting frame (36). On the outer wall of the connecting frame (36), an electromagnetic heater (26) is fixedly connected. One end of the electromagnetic heater (26) is fixedly connected to a filler metal input pipe (29). Inside the connecting frame (36), a lateral regulator (28) is provided.
8. A novel vacuum glass production device according to claim 1, characterized in that, On the upper surface of the cooling box (9), a cover plate (19) is provided. Inside the cooling box (9), a cover plate (19) is rotatably connected. Inside the cooling box (9), a lifting cylinder (27) is fixedly connected. The output ends of multiple lifting cylinders (27) are respectively fixedly connected to an upper cooling plate (30) and a lower cooling plate (31). The outer walls of the upper cooling plate (30) and the lower cooling plate (31) are slidably connected inside the cooling box (9). Inside the cooling box (9), an upper roller (25) is provided.
9. A novel vacuum glass production device according to claim 1, wherein, On the outer wall of the glue coating box (10), a glue supply mechanism (34) is provided. One end of the glue supply mechanism (34) is respectively fixedly connected to a longitudinal glue coating structure (32) and a lateral glue coating mechanism (33). The outer walls of the longitudinal glue coating structure (32) and the lateral glue coating mechanism (33) are arranged inside the glue coating box (10). Inside the glue coating box (10), a conveying roller (16) is rotatably connected. Inside the glue coating box (10), an upper roller (25) is rotatably connected. Inside the glue coating box (10), a second vacuum lock (14) is connected. On the upper surface of the glue coating box (10), a cover plate (19) is provided.
10. A novel vacuum glass production device according to claim 1, characterized in that, Inside both the rear transition box (11) and the rear pre-extraction box (12), there are conveyor rollers (16) connected. Inside the rear transition box (11) and the rear pre-extraction box (12), there is an upper roller (25). On the upper surfaces of the rear transition box (11) and the rear pre-extraction box (12), there is a cover plate (19). Inside the rear pre-extraction box (12), there is a second vacuum lock (14). On the outer wall of the rear pre-extraction box (12), there is a first vacuum lock (13).