Production and lamination device and method for hollow glass
The vacuum glass production bonding device addresses the lack of automatic surface cleaning by using expandable gas bags and high-pressure air systems for glass panel cleaning, ensuring high-quality bonding and expanded applicability.
Patent Information
- Application Number
- CN202510506522.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-22
- Publication Date
- 2025-07-15
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
The existing hollow glass combinatorial device cannot automatically remove dust on both sides of the glass during the combinatorial process, and requires an external air source or a booster pump, resulting in insufficient functionality.
The telescopic airbag and elastic airbag in the support mechanism are combined with the driving mechanism, and the glass surface is automatically dust-removed by high-pressure gas, and the nozzle movement is driven by the driving motor to blow dust-removed at different positions. At the same time, the visual detection module is integrated for intelligent detection.
It realizes automatic dust removal on both sides during the hollow glass combinatorial process, improves the quality and functionality of the combinatorial, and expands the application scope of the device for glass combinatorial sheets of different sizes, with a pass rate of dust removal reaching 99.8%.
Smart Images

Figure CN120309202A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of the production and lamination of insulating glass, and particularly relates to a production and lamination device for insulating glass and a method thereof. Background Art
[0002] Insulating glass is a composite glass product formed by bonding two (or three) pieces of glass through a high-strength sealing material (such as butyl rubber, polysulfide rubber) and a spacer frame containing a desiccant, with a dry gas space or an inert gas filled inside. Its core structure includes: Glass substrate: The thickness ranges from 3 to 12 mm, and ordinary glass, tempered glass, or fireproof glass can be selected.
[0003] Spacer bar: Usually made of aluminum alloy, it supports the glass and evenly separates the insulating layer, and contains molecular sieve to adsorb water vapor.
[0004] Sealing material: Butyl rubber is used for the first seal, and polysulfide rubber is used as the outer seal to ensure airtightness and durability.
[0005] In the process of manufacturing insulating glass, lamination is one of the key processes, which requires precise alignment and pressing of the upper glass and the lower glass. To ensure product quality, usually a visual inspection system is used to automatically detect the cleanliness of the glass surface before the lamination process to verify the effect of the dust removal process and avoid affecting the bonding quality of the subsequent sealant due to surface contaminants. This quality control link can effectively ensure the sealing performance and the quality of the final finished product of the insulating glass.
[0006] In the prior art, a Chinese invention patent with the authorization announcement number CN117886521A relates to a clamping type automatic insulating glass lamination mechanism. It includes a fixed frame, with lamination parts arranged on both sides of the fixed frame, glass arranged on the lamination parts, the lamination parts restricting the position of the glass, a bonding frame arranged on the fixed frame, the fixed frame clamping and fixing the position of the bonding frame, and the lamination parts driving the glass to approach the bonding frame so that the glass and the bonding frame are attached together. In the present invention, the lower end of the glass is arranged on a glass receiving bar, the glass receiving bar restricting the position of the glass, and the glass is received by a connecting plate frame so that the glass is in an inclined state. Then, the bonding frame is arranged on the upper side of the frame receiving bar. When a worker steps on the driving mechanism, the driving mechanism drives the connecting plate frame to approach the bonding frame, thus making one side of the glass and the bonding frame fit, and making the two pieces of glass adhere to the bonding frame.
[0007] Problems compared with the prior art: Some existing production and lamination devices for insulating glass cannot automatically remove dust from both sides of the glass to be laminated continuously after the two pieces of glass to be laminated are placed, and an external air source or a booster pump is required, resulting in the need to improve the functionality of the production and lamination device for insulating glass.
[0008] Therefore, there is an urgent need for a production laminating device and method for insulating glass. Summary of the Invention
[0009] The purpose of the present invention is to overcome the deficiencies of the prior art and provide a production laminating device and method for insulating glass.
[0010] The present invention solves its technical problems through the following technical solutions: It includes a base, a workbench installed above the base, and a support mechanism arranged above the base for supporting the production laminating device of insulating glass. The support mechanism includes a telescopic airbag and an elastic airbag. The telescopic airbag is fixed above the workbench by bolts. A top block is fixed to the top of the telescopic airbag by bolts. A connecting pipe is fixed to one end of the telescopic airbag by bolts. The elastic airbag is fixed to one end of the connecting pipe by bolts. An air outlet pipe is fixed to the top of the elastic airbag by bolts. One end of the air outlet pipe is fixed to a telescopic hose by bolts. One end of the telescopic hose is fixed to a two-way nozzle. It includes a driving mechanism arranged above the workbench for dust removal at different positions of the glass sheet, and a pressing mechanism arranged at one end of the workbench for pressing and laminating the glass sheet. The pressing mechanism includes a lifting electric push rod. The lifting electric push rod is fixed above the workbench by bolts. The extending end of the lifting electric push rod is fixed to a lateral electric push rod by bolts. The extending end of the lateral electric push rod is fixed to a servo motor by bolts. A rotating frame is fixed to the rotating end of the servo motor by bolts. A pressing plate is arranged below the rotating frame. It also includes a picking mechanism arranged at one end of the pressing mechanism for automatically picking up the glass sheet. The picking mechanism includes an X bracket. The X bracket is fixed above the rotating frame by bolts. A plurality of suction cups are arranged at the middle position of the X bracket.
[0011] As a further scheme of the present invention: The support mechanism includes a box body. The box body is fixed to the outside of the telescopic airbag by bolts. An air inlet pipe is fixed to one side of the telescopic airbag by bolts. An electric valve C is fixed to one side of the air inlet pipe by bolts. An air filter is fixed to one end of the air inlet pipe by bolts. An electric valve A is fixed to the outside of the connecting pipe by bolts. A limiting cover is fixed to the outside of the elastic airbag by bolts. Electric valves B are fixed to both ends of the two-way nozzle by bolts.
[0012] As a further scheme of the present invention: The pressing mechanism includes a steering motor. The steering motor is fixed below the workbench by bolts. A lifting frame is arranged below the rotating frame. A plurality of shock absorbers are fixed inside the lifting frame by bolts. The pressing plate is fixed to one end of the shock absorbers by bolts. A pressure sensor is fixed to the middle position of the pressing plate by bolts. A vision detection module is fixed to the outside of the pressure sensor.
[0013] As a further solution of the present invention: The picking mechanism includes a chute cut inside the X bracket. A slider is slidably connected to the inner wall of the chute. A trachea is fixed in the middle position of the slider by bolts. One end of the trachea is fixed with a negative pressure pump by bolts. The suction cup is fixed above the trachea by bolts. A fastening screw is threadedly connected to one side of the slider.
[0014] As a further solution of the present invention: The driving mechanism includes a driving motor A and a driving motor B. The driving motor A is fixed to one side of the workbench by bolts. A lead screw A is fixed to the rotating end of the driving motor A by bolts. A driving block A is arranged outside the lead screw A. A cross beam is arranged on one side of the driving block A. A driving motor B is fixed to the outer wall of the cross beam by bolts. A lead screw B is fixed to the rotating end of the driving motor B by bolts. A driving block B is arranged outside the lead screw B.
[0015] As a further solution of the present invention: A plurality of hydraulic rods are fixed above the base by bolts. The extending end of the hydraulic rod is fixed with a rubber table by bolts.
[0016] As a further solution of the present invention: A plurality of locking universal wheels are fixed below the base by bolts.
[0017] As a further solution of the present invention: A ring is fixed to the bottom of the top block by bolts. A retaining ring is fixed above the box body by bolts.
[0018] As a further solution of the present invention: Slide rods are fixed to one side of the workbench and the cross beam by bolts.
[0019] A production laminating device and method for insulating glass, comprising: S1: First, turn the fastening screw according to the size of the glass to be laminated to adjust the position of the slider in the chute. Subsequently, the servo motor drives the rotating frame to rotate, and the suction cup is rotated to face vertically downward. S2: The steering motor drives the lifting electric push rod to rotate to adjust the angle of the lateral electric push rod. The lateral electric push rod drives the rotating frame to move. The steering motor drives the lifting electric push rod to rotate to adjust the angle of the lateral electric push rod. Under the adsorption of the suction cup, glass sheets at different positions are adsorbed and picked up. S3: Open the electric valve A, place the glass sheet above the workbench. The gravity of the workbench increases, pressing the telescopic airbag, and the gas inside the telescopic airbag is pressed into the elastic airbag for storage. S4: The driving motor A drives the crossbeam to move horizontally, and the driving motor B drives the double-headed nozzle to move vertically. At the same time, the high-pressure gas inside the elastic airbag is ejected from below the double-headed nozzle to blow and remove dust from the entire surface of the glass sheet. S5: Place the adhesion frame above the glass sheet, repeat S2. Similarly, jet air above the double-headed nozzle to blow and remove dust from the other glass sheet, and place the other glass sheet above the adhesion frame. S6: The servo motor drives the rotating frame to rotate, rotates the pressing plate to face vertically downward, and the lifting electric push rod shortens to press and combine the two glass sheets for the production of insulating glass.
[0020] In summary, due to the adoption of the above technical solutions, the beneficial effects of the present invention are as follows: 1. Utilize the increase in the gravity of the workbench during the placement of the glass sheet to press the telescopic airbag through the top block, press the gas inside the telescopic airbag into the elastic airbag for storage, the elastic airbag expands, and utilize the high-pressure gas inside the elastic airbag to blow the surface of the glass sheet, realizing automatic dust removal of the two sides of the combined glass sheets after the two combined glass sheets are placed, replacing the external air source or booster pump, and enriching the functionality of the insulating glass combining device; 2. Drive the crossbeam to move horizontally by the driving motor A and drive the double-headed nozzle to move vertically by the driving motor B, thereby blowing and removing dust from different positions of the glass sheet, ensuring the combining quality during the insulating glass combining process; 3. Drive the lifting electric push rod to rotate by the steering motor to adjust the angle of the lateral electric push rod, the lateral electric push rod drives the rotating frame to move, thereby driving the X bracket to move to different positions. Under the adsorption action of the suction cup, the glass sheets at different positions can be adsorbed and picked up. Through the fastening screw, the slider can be adjusted to different positions in the chute, so that the insulating glass production and combining device can adsorb and pick up glass sheets of different sizes, expanding the application range of the insulating glass production and combining device. BRIEF DESCRIPTION OF THE DRAWINGS
[0021] Figure 1 Shows an isometric structural schematic diagram provided according to an embodiment of the present invention; Figure 2 Shows the Figure 1 partial enlarged structural schematic diagram at A in the provided according to an embodiment of the present invention; Figure 3 Shows a top view structural schematic diagram provided according to an embodiment of the present invention; Figure 4 Shows a front view sectional structural schematic diagram provided according to an embodiment of the present invention; Figure 5 Shows the Figure 4 partial enlarged structural schematic diagram at B in the provided according to an embodiment of the present invention; Figure 6 shows the partial enlarged structural schematic diagram at position C in Figure 4 ; Figure 7 shows the partial enlarged structural schematic diagram at position D in Figure 4 ; Figure 8 shows the partial enlarged structural schematic diagram at position E in Figure 4 .
[0022] Legend: 100, base; 200, workbench; 300, hydraulic rod; 400, rubber table; 500, locking universal wheel; 101, box body; 102, telescopic airbag; 103, top block; 104, intake pipe; 105, connecting pipe; 106, electric valve A; 107, elastic airbag; 108, limit cover; 109, outlet pipe; 111, telescopic hose; 112, two-way nozzle; 113, electric valve B; 114, air filter; 115, electric valve C; 110, ring; 120, retaining ring; 201, drive motor A; 202, lead screw A; 203, drive block A; 204, cross beam; 205, drive motor B; 206, lead screw B; 207, drive block B; 210, slide bar; 301, steering motor; 302, lifting electric push rod; 303, lateral electric push rod; 304, servo motor; 305, rotating frame; 306, lifting frame; 307, shock absorber; 308, pressing plate; 309, pressure sensor; 310, visual detection module; 401, X bracket; 402, chute; 403, slider; 404, air pipe; 405, negative pressure pump; 406, suction cup; 407, fastening screw. Detailed implementation manners
[0023] In the following, only some exemplary embodiments are briefly described. As those skilled in the art can recognize, the described embodiments can be modified in various different ways without departing from the spirit or scope of the present invention. Therefore, the drawings and the description are regarded as exemplary rather than restrictive in nature.
[0024] In the present invention, unless otherwise clearly specified or limited, the first feature being "above" or "below" the second feature may include direct contact between the first and second features, or may include the first and second features not being in direct contact but in contact through additional features therebetween. Moreover, the first feature being "above", "over" and "on top of" the second feature includes the first feature being directly above and obliquely above the second feature, or merely indicates that the horizontal height of the first feature is higher than that of the second feature. The first feature being "under", "beneath" and "underneath" the second feature includes the first feature being directly below and obliquely below the second feature, or merely indicates that the horizontal height of the first feature is less than that of the second feature.
[0025] The embodiments of the present invention will be described in detail below with reference to the accompanying drawings.
[0026] Embodiment 1: This design is mainly for Figures 1-6As shown in the figure, a production laminating device and method for insulating glass include a base 100, a workbench 200 installed above the base 100, and a support mechanism arranged above the base 100 for supporting the production laminating device of insulating glass. The support mechanism includes a telescopic airbag 102 and an elastic airbag 107. The telescopic airbag 102 is fixed above the workbench 200 by bolts. A top block 103 is fixed to the top of the telescopic airbag 102 by bolts. The top block 103 is fixedly connected to the workbench 200. One end of the telescopic airbag 102 is fixed with a connecting pipe 105 by bolts. The connecting pipe 105 communicates the telescopic airbag 102 with the elastic airbag 107. The elastic airbag 107 is fixed to one end of the connecting pipe 105 by bolts. An air outlet pipe 109 is fixed to the top of the elastic airbag 107 by bolts. The air outlet pipe 109 discharges the gas inside the elastic airbag 107. One end of the air outlet pipe 109 is fixed with a telescopic hose 111 by bolts. One end of the telescopic hose 111 is fixed with a two-way spray head 112 by bolts. Electric valves B113 are fixed to both ends of the two-way spray head 112 by bolts. The electric valves B113 control the opening and closing of both ends of the two-way spray head 112. The support mechanism includes a box body 101. The box body 101 is fixed to the outside of the telescopic airbag 102 by bolts. A ring 110 is fixed to the bottom of the top block 103 by bolts. A retaining ring 120 is fixed above the box body 101 by bolts. The ring 110 cooperates with the retaining ring 120 to prevent the top block 103 from detaching from above the box body 101. One side of the telescopic airbag 102 is fixed with an air inlet pipe 104 by bolts. An electric valve C115 is fixed to one side of the air inlet pipe 104 by bolts. An air filter 114 is fixed to one end of the air inlet pipe 104 by bolts. The air filter 114 filters the air entering the air inlet pipe 104. An electric valve A106 is fixed to the outside of the connecting pipe 105 by bolts. A limiting cover 108 is fixed to the outside of the elastic airbag 107 by bolts. The limiting cover 108 controls the shape of the elastic airbag 107. A plurality of hydraulic rods 300 are fixed above the base 100 by bolts. The extending end of the hydraulic rod 300 is fixed with a rubber table 400 by bolts. The extension of the hydraulic rod 300 drives the rubber table 400 to rise, lifting the workbench 200.The invention comprises a driving mechanism arranged above the workbench 200, and is used for removing dust from different positions of the glass sheet. The driving mechanism comprises a driving motor A201 and a driving motor B205. The driving motor A201 is fixed to one side of the workbench 200 by bolts. A screw rod A202 is fixed to the rotating end of the driving motor A201 by bolts. A driving block A203 is connected to the outer side of the screw rod A202 by transmission. A cross beam 204 is welded to one side of the driving block A203. The driving motor A201 drives the screw rod A202 to rotate, thereby driving the cross beam 204 to move horizontally through the driving block A203. The cross beam 204 4 is fixed with a driving motor B205 on its outer wall by bolts, a screw rod B206 is fixed with its rotating end by bolts, a driving block B207 is connected to the outer side of the screw rod B206 by transmission, a two-way nozzle 112 is installed in the middle of the driving block B207, similarly, the driving motor B205 drives the two-way nozzle 112 to move longitudinally, a sliding rod 210 is fixed with bolts on one side of the workbench 200 and the crossbeam 204, the sliding rod 210 limits the moving track of the driving block A203 and the driving block B207, and a plurality of locking universal wheels 500 are fixed with bolts at the bottom of the base 100.
[0027] In this embodiment, the gravity of the workbench 200 increases during the placement of the glass pieces, and the telescopic airbag 102 is pressed by the top block 103, so that the gas inside the telescopic airbag 102 is pressed into the elastic airbag 107 for storage, and the elastic airbag 107 expands. The high-pressure gas inside the elastic airbag 107 is used to blow the surface of the glass piece, so that the two sides of the glass are automatically dusted after the two pieces of glass are placed together, replacing the external air source or booster pump, and enriching the functionality of the hollow glass joining device; the driving motor A201 drives the beam 204 to move horizontally, and the driving motor B205 drives the bidirectional nozzle 112 to move longitudinally, so that different positions of the glass pieces are blown to remove dust, thereby ensuring the quality of the hollow glass joining process.
[0028] Example 2: Figures 1-8As shown in the figure, a production laminating device and method for insulating glass include a pressing mechanism provided at one end of a workbench 200 for pressing and laminating glass sheets. The pressing mechanism includes a steering motor 301, which is fixed to the lower part of the workbench 200 by bolts. The pressing mechanism includes a lifting electric push rod 302, which is fixed to the upper part of the workbench 200 by bolts. The steering motor 301 drives the lifting electric push rod 302 to rotate. The extending end of the lifting electric push rod 302 is fixed with a lateral electric push rod 303 by bolts. The extending end of the lateral electric push rod 303 is fixed with a servo motor 304 by bolts. The lateral electric push rod 303 drives the servo motor 304 to move laterally. The rotating end of the servo motor 304 is fixed with a rotating frame 305 by bolts. A pressing plate 308 is installed below the rotating frame 305. A lifting frame 306 is welded below the rotating frame 305. A plurality of shock absorbers 307 are fixed inside the lifting frame 306 by bolts. The pressing plate 308 is fixed to one end of the shock absorbers 307 by bolts. The shock absorbers 307 buffer the pressing plate 308. A pressure sensor 309 is fixed to the middle position of the pressing plate 308 by bolts. The pressure sensor 309 monitors the pressing force on the glass sheet. A visual detection module 310 is fixed to the outside of the pressure sensor 309 by bolts. It also includes a picking mechanism provided at one end of the pressing mechanism for automatically picking up glass sheets. The picking mechanism includes an X bracket 401, which is fixed to the upper part of the rotating frame 305 by bolts. A plurality of suction cups 406 are installed at the middle position of the X bracket 401. The picking mechanism includes a chute 402, which is cut inside the X bracket 401. A slider 403 is slidably connected to the inner wall of the chute 402. The slider 403 slides along the chute 402. A trachea 404 is fixed to the middle position of the slider 403 by bolts. One end of the trachea 404 is fixed with a negative pressure pump 405 by bolts. The negative pressure pump 405 sucks air through the trachea 404 to the suction cups 406. The suction cups 406 are fixed to the upper part of the trachea 404 by bolts. One side of the slider 403 is threadedly connected with a fastening screw 407, and the fastening screw 407 locks the position of the slider 403.
[0029] In this embodiment, the steering motor 301 drives the lifting electric push rod 302 to rotate to adjust the angle of the lateral electric push rod 303. The lateral electric push rod 303 drives the rotating frame 305 to move, so as to drive the X bracket 401 to move to different positions. Under the adsorption action of the suction cups 406, glass sheets at different positions can be adsorbed and picked up. By the fastening screw 407, the slider 403 can be adjusted to different positions in the chute 402, so that the production laminating device for insulating glass can adsorb and pick up glass sheets of different sizes, expanding the application range of the production laminating device for insulating glass. To further improve the product quality control level, the system can integrate a high-precision vision detection module 310 to conduct all-round intelligent detection on the dust removal effect of the glass sheet surface, automatically calculate the cleanliness index through image processing algorithms, and real-time feedback the detection data to the central control system. The detection results are synchronously stored in the MES system to form a quality traceability file. This quality control scheme can increase the dust removal qualification rate to 99.8%, significantly reducing the manual sampling inspection cost.
[0030] A production laminating device and method for insulating glass, comprising: S1: First, turn the fastening screw 407 according to the size of the glass to be laminated to adjust the position of the slider 403 in the chute 402. Subsequently, the servo motor 304 drives the rotating frame 305 to rotate, and rotates the suction cup 406 to face vertically downward; S2: The steering motor 301 drives the lifting electric push rod 302 to rotate to adjust the angle of the lateral electric push rod 303. The lateral electric push rod 303 drives the rotating frame 305 to move. The steering motor 301 drives the lifting electric push rod 302 to rotate to adjust the angle of the lateral electric push rod 303. Under the adsorption action of the suction cup 406, glass sheets at different positions are adsorbed and picked up; S3: Open the electric valve A106, place the glass sheet above the workbench 200. The gravity of the workbench 200 increases, pressing the telescopic airbag 102, and pressing the gas inside the telescopic airbag 102 into the elastic airbag 107 for storage; S4: The drive motor A201 drives the cross beam 204 to move horizontally, and the drive motor B205 drives the double-headed nozzle 112 to move longitudinally. At the same time, the high-pressure gas inside the elastic airbag 107 is ejected from below the double-headed nozzle 112 to blow and remove dust from the entire surface of the glass sheet; S5: Place the adhesive frame above the glass sheet, repeat S2. Similarly, air is ejected above the double-headed nozzle 112 to blow and remove dust from another glass sheet, and place another glass sheet above the adhesive frame; S6: The servo motor 304 drives the rotating frame 305 to rotate, rotates the pressing plate 308 to face vertically downward, and the lifting electric push rod 302 shortens to press and laminate the two glass sheets for the production of insulating glass.
[0031] The above is only a preferred specific embodiment of the present invention, but the protection scope of the present invention is not limited thereto. Any person skilled in the art within the technical scope disclosed by the present invention, according to the technical solution and inventive concept of the present invention, makes equivalent substitutions or changes, and should be covered by the protection scope of the present invention.
Claims
1. A production laminating device for insulating glass, characterized in that, It includes a base, a workbench installed above the base, and a support mechanism arranged above the base for supporting the insulating glass production laminating device. The support mechanism includes a telescopic airbag and an elastic airbag. The telescopic airbag is fixed above the workbench by bolts. A top block is fixed to the top of the telescopic airbag by bolts. One end of the telescopic airbag is fixed with a connecting pipe by bolts. The elastic airbag is fixed to one end of the connecting pipe by bolts. An air outlet pipe is fixed to the top of the elastic airbag by bolts. One end of the air outlet pipe is fixed with a telescopic hose by bolts. One end of the telescopic hose is fixed with a two-way nozzle by bolts. It includes a driving mechanism arranged above the workbench for dust removal at different positions of the glass sheet. It includes a pressing mechanism arranged at one end of the workbench for pressing and laminating the glass sheet. The pressing mechanism includes a lifting electric push rod. The lifting electric push rod is fixed above the workbench by bolts. The extending end of the lifting electric push rod is fixed with a lateral electric push rod by bolts. The extending end of the lateral electric push rod is fixed with a servo motor by bolts. The rotating end of the servo motor is fixed with a rotating frame by bolts. A pressing plate is arranged below the rotating frame. It also includes a picking mechanism arranged at one end of the pressing mechanism for automatically picking up the glass sheet. The picking mechanism includes an X bracket. The X bracket is fixed above the rotating frame by bolts. A plurality of suction cups are arranged at the middle position of the X bracket.
2. The production laminating device for insulating glass according to claim 1, characterized in that, The support mechanism includes a box body. The box body is fixed to the outside of the telescopic airbag by bolts. An air inlet pipe is fixed to one side of the telescopic airbag by bolts. An electric valve C is fixed to one side of the air inlet pipe by bolts. An air filter is fixed to one end of the air inlet pipe by bolts. An electric valve A is fixed to the outside of the connecting pipe by bolts. A limiting cover is fixed to the outside of the elastic airbag. Electric valves B are fixed to both ends of the two-way nozzle by bolts.
3. The production and laminating device for insulating glass according to claim 2, characterized in that, The pressing mechanism includes a steering motor. The steering motor is fixed below the workbench by bolts. A lifting frame is arranged below the rotating frame. A plurality of shock absorbers are fixed to the inside of the lifting frame by bolts. The pressing plate is fixed to one end of the shock absorber by bolts. A pressure sensor is fixed to the middle position of the pressing plate by bolts. A vision detection module is fixed to the outside of the pressure sensor.
4. The production laminating device for insulating glass according to claim 3, characterized in that, The picking mechanism includes a chute. The chute is cut inside the X bracket. A slider is slidably connected to the inner wall of the chute. A trachea is fixed to the middle position of the slider by bolts. A negative pressure pump is fixed to one end of the trachea by bolts. The suction cup is fixed above the trachea. A fastening screw is threadedly connected to one side of the slider.
5. The production laminating device for insulating glass according to claim 4, characterized in that, The driving mechanism includes a driving motor A and a driving motor B. The driving motor A is fixed to one side of the workbench by bolts. The rotating end of the driving motor A is fixed with a lead screw A by bolts. A driving block A is arranged on the outside of the lead screw A. A cross beam is arranged on one side of the driving block A. A driving motor B is fixed to the outer wall of the cross beam by bolts. The rotating end of the driving motor B is fixed with a lead screw B by bolts. A driving block B is arranged on the outside of the lead screw B.
6. The production laminating device for insulating glass according to claim 5, characterized in that, A plurality of hydraulic rods are fixed above the base by bolts. The extending ends of the hydraulic rods are fixed with rubber platforms by bolts.
7. The production and laminating device for insulating glass according to claim 6, characterized in that, A plurality of locking universal wheels are fixed below the base by bolts.
8. A lamination device for manufacturing insulating glass according to claim 7, wherein, A ring is fixed to the bottom of the top block by bolts, and a retaining ring is fixed above the box body by bolts.
9. The production and laminating device for insulating glass according to claim 8, characterized in that, Slide bars are fixed to one side of the workbench and the cross beam by bolts.
10. A method for assembling laminated insulating glass, which is applied to a device for assembling laminated insulating glass as described in claim 9, characterized in that, It includes: S1: First, turn the fastening screw according to the size of the glass to be laminated, adjust the position of the slider in the chute, and then the servo motor drives the rotating frame to rotate, turning the suction cup vertically downward. S2: The steering motor drives the lifting electric push rod to rotate, adjusts the angle of the lateral electric push rod, the lateral electric push rod drives the rotating frame to move, the steering motor drives the lifting electric push rod to rotate, adjusts the angle of the lateral electric push rod, and under the adsorption of the suction cup, adsorbs and picks up glass sheets at different positions. S3: Open the electric valve A, place the glass sheet above the workbench, the gravity of the workbench increases, presses the telescopic airbag, and presses the gas inside the telescopic airbag into the elastic airbag for storage. S4: The drive motor A drives the cross beam to move horizontally, the drive motor B drives the double - headed nozzle to move vertically, and at the same time, the high - pressure gas inside the elastic airbag is ejected from below the double - headed nozzle to blow and remove dust from the entire surface of the glass sheet. S5: Place the adhesion frame above the glass sheet, repeat S2, similarly, jet air above the double - headed nozzle to blow and remove dust from another glass sheet, and place another glass sheet above the adhesion frame. S6: The servo motor drives the rotating frame to rotate, turns the pressing plate vertically downward, and the lifting electric push rod shortens to press and laminate the two pieces of glass for insulating glass production.
Citation Information
Patent Citations
Clamping type hollow glass automatic sheet combining mechanism
CN117886521A