Vacuum glass packaging equipment
Through the design of the transmission component and clip mechanism, combined with the glue spray component and the runner system, the automatic packaging of vacuum glass is realized, solving the deformation problem caused by edge sealing and fixing, reducing equipment costs and improving production efficiency.
Patent Information
- Application Number
- CN202510422078.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-07
- Publication Date
- 2025-07-08
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
When the edge seal is fixed, existing vacuum glass packaging equipment is prone to deformation of the center of large-sized glass, reducing the plane accuracy, and fixing requires manual operation, high equipment cost, and heating and cooling requirements lead to complex equipment structure.
A vacuum glass packaging equipment is designed to realize automatic lamination and edge sealing of glass through transmission components and clip mechanisms, and the glue spraying and cooling are combined with the glue spraying components and the runner system to achieve the lamination and glue coating process at the same time, reducing equipment investment and improving efficiency.
The automatic packaging of glass is realized, which improves planarity accuracy, reduces equipment costs, and improves production efficiency.
Smart Images

Figure CN120271249A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of vacuum glass encapsulation processing equipment, and particularly relates to a vacuum glass encapsulation device. Background Art
[0002] During the production process of vacuum glass, the encapsulation process is very important. In existing vacuum glass encapsulation devices, electric elevators, glass conveyor belts, hydraulic push rods, and retractable U-shaped clips are used to achieve the encapsulation of vacuum glass. Generally, after being cleaned by a cleaning machine, the glass enters the lamination process. After the lamination process, the glass is positioned by a retractable U-shape, and then they are jointly conveyed to the gluing process, where edge sealing is performed with glass glue to ensure the tight combination of the glass and the spacer layer. Finally, it enters the vacuum pumping process, where a vacuum pumping device is used to completely remove the air, moisture, and impurities between the glass plates to form a vacuum layer, and then an appropriate amount of polyurethane filler is injected into the vacuum layer to enhance the heat insulation performance while ensuring that the vacuum degree is not affected. Finally, after the hole sealing process, the bottom is sealed with glass glue to ensure that the vacuum glass is isolated from the environment and maintains its stable vacuum degree.
[0003] As described above, when fixing the edges, the circumferential side walls of the glass are fixed by retractable U-shaped clips, and the problem of deformation in the center of large-sized glass cannot be solved, resulting in a reduction in the flatness accuracy after the encapsulation of vacuum glass. Moreover, the fixation of the glass in this way requires manual installation and disassembly, which cannot meet the requirements of the existing glass production line.
[0004] Secondly, in order to achieve a better edge sealing effect, the encapsulation technology uses edge sealing with heating. After the edge sealing is completed, the glass is taken out for cooling, and then vacuum pumping and sealing are performed. Due to the requirements of heating and cooling, the structure of the vacuum glass production equipment is relatively large and the cost is relatively high. Summary of the Invention
[0005] In view of this, the present invention aims to provide a vacuum glass encapsulation device that can realize the same-process treatment of glass lamination and edge sealing, reduce the number of processes while ensuring the edge sealing effect, improve production efficiency, and reduce the equipment investment cost.
[0006] To achieve the above object, the technical solution of the present invention is realized as follows:
[0007] A vacuum glass encapsulation device includes a workbench connected to a production line and a connecting frame provided on the workbench;
[0008] A transmission channel is defined between the connecting frames, and a first clip mechanism and a second clip mechanism are respectively provided on both sides of the transmission channel;
[0009] A transmission component for transmitting glass is provided below the transmission channel, and a glue spraying component that reciprocates in height is also provided on the workbench;
[0010] The first clamping mechanism includes a first driving part and a first pressing part connected to the power output end of the first driving part. A cooling flow channel is arranged in the first pressing part.
[0011] The second clamping mechanism includes a second driving part and a second pressing part connected to the power output end of the second driving part. A mixing flow channel and a heating flow channel are arranged in the second pressing part at intervals along the thickness.
[0012] The mixing flow channel is close to the transmission channel.
[0013] The glue spraying assembly reciprocates along the height of the workbench for glue spraying treatment around the glass.
[0014] Further, the first clamping mechanism includes a first guiding assembly arranged along the length direction of the transmission channel and a supporting assembly connected to the connecting frame; the glass includes a first sheet body and a second sheet body.
[0015] The first guiding assembly is used to abut against the upper side of the first sheet body, and the first pressing part is driven to approach or move away from the glass.
[0016] The second clamping mechanism includes a second guiding assembly arranged in the transmission channel.
[0017] The second guiding assembly is used to abut against the upper side of the second sheet body. When the second pressing part is driven to approach the first sheet body, the first guiding assembly and the second guiding assembly are arranged in a cross manner, and the second pressing part pushes the second sheet body to abut against the supporting assembly.
[0018] When the distance between the first sheet body and the second sheet body reaches a set threshold value, the glue spraying assembly sprays glue on the edges of the first sheet body and the second sheet body, and the supporting assembly is driven to move upward away from the first sheet body.
[0019] Further, an extension plate is arranged on the connecting frame, and a third driving part is arranged on the extension plate.
[0020] The supporting assembly includes a connecting profile connected to the power output end of the third driving part and a plurality of supporting rods arranged at intervals along the extending direction of the connecting profile. A supporting disc is connected to the supporting rod, and the supporting disc abuts between the first sheet body and the second sheet body.
[0021] The third driving part is used to drive the supporting rod to move along the height direction of the connecting frame.
[0022] Furthermore, a limiting frame is connected to the opposite surfaces of the first pressing portion and the second pressing portion. The limiting frame protrudes towards the transmission channel, and the limiting frame is adapted to the shape of the glass.
[0023] Furthermore, the connecting frame includes a first connecting plate and a second connecting plate which are oppositely arranged;
[0024] The first guiding assembly includes a first mounting seat connected to the first connecting plate, and a plurality of first guide wheels pivotally connected to the first mounting seat;
[0025] The second guiding assembly includes a second mounting seat connected to the second connecting plate, and a plurality of second guide wheels pivotally connected to the second mounting seat;
[0026] First concave arc grooves are provided on both the first guide wheels and the second guide wheels. When the first sheet body and the second sheet body are being transmitted, they are respectively disposed in the first concave arc grooves of the first guide wheels and the second guide wheels.
[0027] Furthermore, the first mounting seat, and / or, the second mounting seat moves along the height direction of the connecting frame.
[0028] Furthermore, the transmission assembly includes a fourth driving portion, a driving shaft connected between the first mounting plate and the second mounting plate, a plurality of third guide wheels pivotally connected to the first mounting plate, and a plurality of supporting wheels pivotally connected to the second mounting plate;
[0029] A fifth driving portion is connected to the first mounting plate or the second mounting plate, and the fifth driving portion drives the driving shaft to rotate;
[0030] A plurality of the third guide wheels and a plurality of the supporting wheels are sequentially arranged along the transmission direction of the glass. A driving wheel is sleeved on the driving shaft, and the driving wheel is flush with the supporting planes of the third guide wheels and the supporting wheels.
[0031] Furthermore, the cooling channel includes a plurality of longitudinal pipelines arranged at intervals along the transmission direction, and a plurality of transverse pipelines arranged along the height direction of the first pressing portion;
[0032] The longitudinal pipelines and the transverse pipelines are arranged in a cross manner. A cooling inlet and a cooling outlet are provided on the outer side of the first pressing portion;
[0033] The cooling inlet and the cooling outlet are communicated with an external cooling device.
[0034] Further, the mixing channel is arranged on one side close to the limiting frame, and a circulation inlet and a circulation outlet are respectively arranged on both sides along the length direction of the second pressing part. The mixing channel includes a peripheral pipeline arranged corresponding to the edge of the limiting frame, and an intermediate pipeline connected to the peripheral pipeline and extending towards the middle;
[0035] One of the circulation inlets is connected to an external refrigeration device, and the other circulation inlet is connected to an external heating device.
[0036] Further, the second pressing part is also provided with a heating inlet and a heating outlet. The heating channel includes a first heating module and a second heating module arranged along the glass transmission direction, and a connection module communicating between the first heating module and the second heating module. The connection module includes a plurality of communication pipelines extending along the length direction of the second pressing part;
[0037] The two heating inlets are respectively connected to the first heating module and the second heating module.
[0038] Compared with the prior art, the present invention has the following advantages:
[0039] For the vacuum glass encapsulation device of the present invention, a transmission component is provided to conduct the first layer of glass and the second layer of glass conveyed by the production line to the device. The first layer of glass is vertically transmitted to stop at the first pressing part of the first clamping mechanism, and the second layer of glass is vertically transmitted to stop at the second pressing part of the second clamping mechanism. The second driving part drives the second pressing part and the second layer of glass to gradually approach the first layer of glass. Through the setting of the mixing channel and the heating channel, the second layer of glass is preheated. When the distance between the first layer of glass and the second layer of glass reaches a predetermined distance, the glue spraying component coats the edges of the laminated glass, which can ensure that the glass glue is fully dissolved and ensure that it is evenly filled in the glass gap to form a good seal.
[0040] Moreover, combined with the driving of the transmission component and the spraying of the glue spraying component, the edges of the laminated glass are coated on four sides. At this time, a cooling medium is arranged in the mixing channel, and the cooling channel is used to quickly cool the glass glue at the glass edge simultaneously. This not only realizes the simultaneous realization of the lamination and glue coating processes, reduces the investment in production line equipment, and reduces the enterprise input cost, but also effectively improves the encapsulation efficiency of the vacuum glass. BRIEF DESCRIPTION OF THE DRAWINGS
[0041] The drawings constituting a part of the present invention are used to provide a further understanding of the present invention. The schematic embodiments of the present invention and their descriptions are used to explain the present invention and do not constitute an improper limitation to the present invention. In the drawings:
[0042] Figure 1Schematic perspective view of the first perspective of the vacuum glass encapsulation device according to the embodiment of the present invention;
[0043] Figure 2 Schematic perspective view of the second perspective of the vacuum glass encapsulation device according to the embodiment of the present invention;
[0044] Figure 3 Schematic perspective view of the first perspective of the vacuum glass encapsulation device without a bracket according to the embodiment of the present invention;
[0045] Figure 4 Schematic perspective view of the second perspective of the vacuum glass encapsulation device without a bracket according to the embodiment of the present invention;
[0046] Figure 5 Front view of the second extrusion part according to the embodiment of the present invention;
[0047] Figure 6 is Figure 5 Cross-sectional schematic view at A-A in
[0048] Figure 7 is Figure 5 Cross-sectional schematic view at B-B in
[0049] Figure 8 is Figure 5 Cross-sectional schematic view at C-C in
[0050] Figure 9 Front view of the first extrusion part according to the embodiment of the present invention;
[0051] Figure 10 is Figure 9 Cross-sectional schematic view at D-D in
[0052] Explanation of reference numerals:
[0053] 1, workbench; 2, connecting frame; 3, transmission channel; 4, first clip mechanism; 5, second clip mechanism; 6, transmission component; 7, glue spraying component; 8, limiting frame; 9, third driving part; 10, extension plate;
[0054] 201, first connecting plate; 202, second connecting plate;
[0055] 401, first driving part; 402, first extrusion part; 403, cooling channel; 404, first guiding component; 405, supporting component;
[0056] 501, second driving part; 502, second extrusion part; 503, mixing channel; 504, heating channel; 505, second guiding component; 506, first concave arc groove;
[0057] 601. Fourth driving part; 602. Driving shaft
[0058] 4031. Longitudinal pipeline; 4032. Transverse pipeline
[0059] 4041. First mounting seat; 4042. First guide wheel
[0060] 4051. Connecting profile; 4052. Support rod; 4053. Support disc
[0061] 5031. Circulation inlet; 5032. Circulation outlet; 5033. Peripheral pipeline; 5034. Intermediate pipeline
[0062] 5051. Second mounting seat; 5052. Second guide wheel
[0063] 5041. Heating inlet; 5042. Heating outlet; 5043. First heating module; 5044. Second heating module; 5045. Connection module Detailed implementation mode
[0064] It should be noted that, without conflict, the embodiments and features in the embodiments of the present invention can be combined with each other
[0065] In the description of the present invention, it should be noted that the orientation or positional relationship indicated by the terms "upper", "lower", "inner", "back", etc. is based on the orientation or positional relationship shown in the drawings. It is only for the convenience of describing the present invention and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore cannot be understood as a limitation to the present invention. In addition, the terms "first" and "second" are only used for descriptive purposes and cannot be understood as indicating or implying relative importance
[0066] In addition, in the description of the present invention, unless otherwise clearly defined, the terms "installation", "connection", "connection", "connector" should be understood in a broad sense. For example, it can be a fixed connection, a detachable connection, or an integral connection; it can be a mechanical connection or an electrical connection; it can be directly connected or indirectly connected through an intermediate medium, and it can be the communication inside two elements. For those of ordinary skill in the art, the specific meanings of the above terms in the present invention can be understood in combination with specific situations
[0067] The present invention will be described in detail below with reference to the drawings and in combination with embodiments
[0068] This embodiment relates to a vacuum glass encapsulation device. Generally, as Figures 1 to 4As shown in the figure, the vacuum glass encapsulation device includes a workbench 1 connected to a production line, and a connecting frame 2 provided on the workbench 1. A transmission channel 3 is enclosed between the connecting frames 2, and a first clip mechanism 4 and a second clip mechanism 5 are respectively provided on both sides of the transmission channel 3. A transmission component 6 for transmitting glass is provided below the transmission channel 3, and a glue spraying component 7 that reciprocates along the height of the workbench 1 is also provided on the workbench 1.
[0069] Among them, the first clip mechanism 4 includes a first driving part 401 and a first pressing part 402 connected to the power output end of the first driving part 401. A cooling flow channel 403 is provided inside the first pressing part 402. The second clip mechanism 5 includes a second driving part 501 and a second pressing part 502 connected to the power output end of the second driving part 501. A mixing flow channel 503 and a heating flow channel 504 are provided at intervals along the thickness inside the second pressing part 502. The mixing flow channel 503 is close to the transmission channel 3. The glue spraying component 7 reciprocates along the height of the workbench 1 for glue spraying treatment around the glass.
[0070] Just through the above overall design, the vacuum glass encapsulation device of this embodiment, by setting the transmission component 6 for conducting the first layer of glass and the second layer of glass conveyed by the production line to the device, the first layer of glass is vertically transmitted to the first pressing part 402 of the first clip mechanism 4 and stops, and the second layer of glass is vertically transmitted to the second pressing part 502 of the second clip mechanism 5 and stops. The second driving part 501 drives the second pressing part 502 and the second layer of glass to gradually approach the first layer of glass. Through the setting of the mixing flow channel 503 and the heating flow channel 504, the second layer of glass is preheated. When the distance between the first layer of glass and the second layer of glass reaches a predetermined distance, the glue spraying component 7 applies glue to the edge of the laminated glass, which can ensure that the glass glue is fully dissolved and ensure that it is evenly filled in the glass gap to form a good seal.
[0071] Moreover, combined with the driving of the transmission component 6 and the spraying of the glue spraying component 7, the glue is applied to the four sides of the laminated glass. At this time, a cooling medium is provided in the mixing flow channel 503, and the cooling flow channel 403 is used to quickly cool the glass glue at the edge of the glass at the same time. It not only realizes the simultaneous realization of the lamination and glue application processes, reduces the investment in production line equipment, and reduces the enterprise investment cost, but also effectively improves the encapsulation efficiency of the vacuum glass.
[0072] Based on the above introduction, an exemplary structure of the vacuum glass encapsulation device of this embodiment is as Figures 1 to 2 shown. The height of the workbench 1 is the same as that of the platform of the glass production line. In this embodiment, the glass is vertically transmitted to the transmission component 6, and the first layer of glass and the second layer of glass transmitted are simultaneously conveyed into the transmission channel 3 by the transmission component 6. Both the first driving part 401 and the second driving part 501 adopt cylinders or oil cylinders.
[0073] As a preferred embodiment, as Figures 1 to 4 shown, the first clamping mechanism 4 includes a first guiding component 404 arranged along the length direction of the transmission channel 3, and a supporting component 405 connected to the connecting frame 2; the glass includes a first sheet body and a second sheet body. The first guiding component 404 is used to abut against the upper side of the first sheet body, and the first pressing part 402 is driven to approach or move away from the glass.
[0074] Meanwhile, the second clamping mechanism 5 includes a second guiding component 505 arranged in the transmission channel 3. The second guiding component 505 is used to abut against the upper side of the second sheet body. When the second pressing part 502 is driven to approach the first sheet body, the first guiding component 404 and the second guiding component 505 are arranged in a cross manner, and the second pressing part 502 pushes the second sheet body to abut against the supporting component 405. When the distance between the first sheet body and the second sheet body reaches a set threshold value, the glue spraying component 7 sprays glue on the edges of the first sheet body and the second sheet body, and the supporting component 405 is driven to move upward away from the first sheet body.
[0075] It should be noted that the first sheet body here is the above-mentioned first layer of glass, and the second sheet body is the above-mentioned second layer of glass. In this embodiment, by setting the first guiding component 404 and the second guiding component 505 to guide the first sheet body and the second sheet body, the position of the glass in the thickness direction of the workbench 1 can be restricted, so as to facilitate accurately positioning the distance between the two layers of glass during lamination. In addition, a baffle should be arranged at the transmission end of the workbench 1 to facilitate limiting one end of the glass. The baffle can be connected to a telescopic cylinder, which is convenient for transmission after the glass is encapsulated.
[0076] As a preferred embodiment, as Figures 3 to 4 shown, an extension plate 10 is provided on the connecting frame 2, and a third driving part 9 is provided on the extension plate 10. The supporting component 405 includes a connecting profile 4051 connected to the power output end of the third driving part 9, and a plurality of support rods 4052 arranged at intervals along the extending direction of the connecting profile 4051. A support disc 4053 is connected to the support rods 4052, and the support disc 4053 abuts between the first sheet body and the second sheet body. The third driving part 9 is used to drive the support rods 4052 to move along the height direction of the connecting frame 2.
[0077] In this embodiment, the third driving part 9 is a telescopic cylinder and is arranged on the side plate on one side of the workbench 1. The extension plate 10 is arranged along the upper edge of the side plate and extends towards the transmission channel 3. During the transmission process of the first guiding component 404, the supporting disc 4053 is located above the first guiding component 404. After the transmission is in place, the third driving part 9 drives the supporting disc 4053 to press downwards. As shown in the figure, the supporting disc 4053 is formed into a conical shape, and the supporting rod 4052 is inclined relative to the glass. When the second sheet approaches the first sheet, the bottom surface of the supporting disc 4053 presses on the first sheet, and its conical surface abuts against the second sheet.
[0078] In addition, as Figure 5 and Figure 7 shown, a limiting frame 8 is connected to the opposite surfaces of the first pressing part 402 and the second pressing part 502. The limiting frame 8 protrudes towards the transmission channel 3, and the limiting frame 8 is adapted to the outer shape of the glass. By providing the limiting frame 8 to wrap the edge of the glass, rapid cooling of the glass edge can be achieved through the above-mentioned cooling channel and mixing channel. The setting of the limiting frame 8 can be changed according to the processing of glass in different batches, and the limiting frame 8 and the limiting part can be fixed by bolts.
[0079] As Figures 3 to 4 shown, the connecting frame 2 includes a first connecting plate 201 and a second connecting plate 202 arranged oppositely. The first guiding component 404 includes a first mounting seat 4041 connected to the first connecting plate 201, and a number of first guide wheels 4042 pivotally connected to the first mounting seat 4041. The second guiding component includes a second mounting seat 5051 connected to the second connecting plate 202, and a number of second guide wheels 5052 pivotally connected to the second mounting seat 5051. First concave arc grooves 506 are provided on both the first guide wheels 4042 and the second guide wheels 5052. When the first sheet and the second sheet are transmitted, they are respectively arranged in the first concave arc grooves 506 of the first guide wheels 4042 and the second guide wheels 5052.
[0080] Furthermore, as Figures 1 to 2 shown, the first mounting seat 4041 and the second mounting seat 5051 move along the height direction of the connecting frame 2. As a specific implementation manner, guide grooves are respectively provided on the first connecting plate 201 and the second connecting plate 202 along their height directions, and tooth-shaped parts are provided in the guide grooves. Driving motors are respectively provided on the first mounting seat 4041 and the second mounting seat 5051, and gears are connected to the output shafts of the motors. The gears are engaged along the tooth-shaped parts to drive the first mounting seat 4041 and the second mounting seat 5051 to slide up and down.
[0081] In addition, as Figures 3 to 4As shown, the transmission component 6 includes a fourth driving part 601, a driving shaft 602 connected between the first mounting plate and the second mounting plate, a plurality of third guide wheels pivotally connected to the first mounting plate, and a plurality of support wheels pivotally connected to the second mounting plate. A fifth driving part is connected to the first mounting plate or the second mounting plate, and the fifth driving part drives the driving shaft 602 to rotate. The plurality of third guide wheels and the plurality of support wheels are arranged in sequence along the transmission direction of the glass. A driving wheel is sleeved on the driving shaft 602, and the driving wheel is flush with the support planes of the third guide wheels and the support wheels.
[0082] Further, as Figures 9 to 10 shown, the cooling channel 403 includes a plurality of longitudinal pipelines 4031 arranged at intervals along the transmission direction, and a plurality of transverse pipelines 4032 arranged along the height direction of the first extrusion part 402. The longitudinal pipelines 4031 and the transverse pipelines 4032 are arranged in a cross manner. A cooling inlet and a cooling outlet are arranged outside the first extrusion part 402, and the cooling inlet and the cooling outlet are communicated with an external cooling device. In this embodiment, four transverse pipelines 4032 and two longitudinal pipelines 4031 are provided, and the distribution area of the cooling channel 403 is located in the cross section of the first extrusion part 402 to facilitate the achievement of the purpose of uniform cooling.
[0083] In addition, as Figures 4 to 8 shown, the mixing channel 503 is arranged on one side close to the limiting frame 8. A circulation inlet 5031 and a circulation outlet 5032 are respectively arranged on both sides along the length direction of the second extrusion part 502. The mixing channel 503 includes a peripheral pipeline 5033 corresponding to the edge of the limiting frame 8, and an intermediate pipeline 5034 connected to the peripheral pipeline 5033 and extending towards the middle. One circulation inlet 5031 is connected to an external refrigeration device, and the other circulation inlet 5031 is connected to an external heating device.
[0084] By providing two circulation inlets 5031 for connecting the refrigeration device and the heating device, the second sheet body is heated during the lamination process, and the mixing channel 503 is provided with the peripheral pipeline 5033 and the intermediate pipeline 5034, which can adapt to the uniform heating of glasses with different specifications and shapes, facilitating the application and dissolution of glass glue. After the glue spraying is completed, the circulation inlet 5031 connected to the heating device is closed, and the other circulation inlet 5031 is opened to quickly introduce a cooling medium, so as to quickly cool the colloid and improve the encapsulation efficiency.
[0085] More specifically, the second pressing part 502 of this embodiment is further provided with a heating inlet 5041 and a heating outlet 5042. The heating flow path 504 includes a first heating module 5043 and a second heating module 5044 arranged along the glass transmission direction, and a connection module 5045 connected between the first heating module 5043 and the second heating module 5044. The connection module 5045 includes a number of communication pipes extending along the length direction of the second pressing part 502, and the two heating inlets 5041 are respectively connected to the first heating module 5043 and the second heating module 5044. By setting the first heating module 5043 and the second heating module 5044, the temperature of the second pressing parts 502 on both sides rises first, which is beneficial to the application of the glass glue and improves the encapsulation effect. And by setting two layers of heating flow paths 504, the temperature of the second sheet can be increased by quickly heating the second pressing part before applying the glue.
[0086] The first pressing part and the second pressing part 502 of this embodiment both adopt a flat plate-like structure, which can increase the contact area with the first sheet and the second sheet, quickly heat or cool the glass, so as to achieve a better encapsulation effect and improve the sealing performance. The glue spraying assembly 7 of this embodiment adopts the structure in the prior art, and the glue spraying head on the glue spraying assembly 7 can rotate to adapt to the application on different side frames.
[0087] The above are only the preferred embodiments of the present invention, and are not intended to limit the present invention. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principles of the present invention shall be included in the protection scope of the present invention.
Claims
1. A vacuum glass encapsulation device, characterized in that: It includes a workbench (1) connected to a production line, and a connecting frame (2) arranged on the workbench (1); A transmission channel (3) is enclosed between the connecting frames (2), and a first clip mechanism (4) and a second clip mechanism (5) are respectively arranged on both sides of the transmission channel (3); A transmission component (6) for transmitting glass is arranged below the transmission channel (3), and a glue spraying component (7) reciprocatingly moving along the height of the workbench (1) is also arranged on the workbench (1); The first clip mechanism (4) includes a first driving part (401) and a first pressing part (402) connected to the power output end of the first driving part (401), and a cooling flow channel (403) is arranged in the first pressing part (402); The second clip mechanism (5) includes a second driving part (501) and a second pressing part (502) connected to the power output end of the second driving part (501), and a mixing flow channel (503) and a heating flow channel (504) arranged at intervals along the thickness are arranged in the second pressing part (502); The mixing flow channel (503) is close to the transmission channel (3); The glue spraying component (7) reciprocatingly moves along the height of the workbench (1) for glue spraying treatment around the glass.
2. The vacuum glass encapsulation device according to claim 1, characterized in that: The first clip mechanism (4) includes a first guiding component (404) arranged along the length direction of the transmission channel (3) and a supporting component (405) connected to the connecting frame (2); the glass includes a first sheet body and a second sheet body; The first guiding component (404) is used to abut against the upper side of the first sheet body, and the first pressing part (402) is driven to approach or move away from the glass; The second clip mechanism (5) includes a second guiding component (505) arranged in the transmission channel (3); The second guiding component (505) is used to abut against the upper side of the second sheet body. When the second pressing part (502) is driven to approach the first sheet body, the first guiding component (404) and the second guiding component (505) are arranged crosswise, and the second pressing part (502) pushes the second sheet body to abut against the supporting component (405); When the distance between the first sheet body and the second sheet body reaches a set threshold value, the glue spraying component (7) sprays glue on the edges of the first sheet body and the second sheet body, and the supporting component (405) is driven to move upward away from the first sheet body.
3. The vacuum glass encapsulation device according to claim 2, characterized in that: An extension plate (10) is arranged on the connecting frame (2), and a third driving part (9) is arranged on the extension plate (10); The support assembly (405) includes a connecting profile (4051) connected to the power output end of the third driving part (9), and a plurality of support rods (4052) arranged at intervals along the extending direction of the connecting profile (4051). A support disc (4053) is connected to the support rod (4052), and the support disc (4053) abuts between the first sheet body and the second sheet body; The third driving part (9) is used to drive the support rod (4052) to move along the height direction of the connecting frame (2).
4. The vacuum glass encapsulation device according to claim 3, wherein: A limiting frame (8) is connected to the opposite surfaces of the first pressing part (402) and the second pressing part (502). The limiting frame (8) protrudes into the transmission channel (3), and the limiting frame (8) is adapted to the outer shape of the glass.
5. The vacuum glass encapsulation device according to claim 4, wherein: The connecting frame (2) includes a first connecting plate (201) and a second connecting plate (202) arranged opposite to each other; The first guiding assembly (404) includes a first mounting seat (4041) connected to the first connecting plate (201), and a plurality of first guide wheels (4042) pivotally connected to the first mounting seat (4041); The second guiding assembly includes a second mounting seat (5051) connected to the second connecting plate (202), and a plurality of second guide wheels (5052) pivotally connected to the second mounting seat (5051); First concave arc grooves (506) are provided on both the first guide wheel (4042) and the second guide wheel (5052). When the first sheet body and the second sheet body are transmitted, they are respectively arranged in the first concave arc grooves (506) of the first guide wheel (4042) and the second guide wheel (5052).
6. The vacuum glass encapsulation device according to claim 5, wherein: The first mounting seat (4041), and / or, the second mounting seat (5051) moves along the height direction of the connecting frame (2).
7. The vacuum glass encapsulation device according to claim 6, wherein: The transmission assembly (6) includes a fourth driving part (601), a driving shaft (602) connected between the first mounting plate and the second mounting plate, a plurality of third guide wheels pivotally connected to the first mounting plate, and a plurality of support wheels pivotally connected to the second mounting plate; A fifth driving part is connected to the first mounting plate or the second mounting plate, and the fifth driving part drives the driving shaft (602) to rotate; A plurality of the third guide wheels and a plurality of the support wheels are sequentially arranged along the transmission direction of the glass. A driving wheel is sleeved on the driving shaft (602), and the driving wheel is flush with the supporting planes of the third guide wheels and the support wheels.
8. The vacuum glass encapsulation device according to claim 4, wherein: The cooling channel (403) includes a plurality of longitudinal pipes (4031) arranged at intervals along the transmission direction, and a plurality of transverse pipes (4032) arranged along the height direction of the first extrusion part (402); The longitudinal pipes (4031) and the transverse pipes (4032) are arranged in a crosswise manner, and a cooling inlet and a cooling outlet are arranged outside the first extrusion part (402); The cooling inlet and the cooling outlet are communicated with an external cooling device.
9. The vacuum glass encapsulation device according to claim 8, wherein: The mixing channel (503) is arranged on one side close to the limit frame (8), a circulation inlet (5031) and a circulation outlet (5032) are respectively arranged on both sides along the length direction of the second extrusion part (502), the mixing channel (503) includes a peripheral pipe (5033) arranged corresponding to the edge of the limit frame (8), and an intermediate pipe (5034) connected to the peripheral pipe (5033) and extending towards the middle; One of the circulation inlets (5031) is connected to an external refrigeration device, and the other circulation inlet (5031) is connected to an external heating device.
10. The vacuum glass encapsulation device according to claim 9, wherein: The second extrusion part (502) is further provided with a heating inlet (5041) and a heating outlet (5042), the heating channel (504) includes a first heating module (5043) and a second heating module (5044) arranged along the glass transmission direction, and a connection module (5045) communicated between the first heating module (5043) and the second heating module (5044), the connection module (5045) includes a plurality of communication pipes extending along the length direction of the second extrusion part (502); The two heating inlets (5041) are respectively connected to the first heating module (5043) and the second heating module (5044).