A glass laminating machine for the production of insulating glass

By designing a hollow glass composite machine using hydraulic cylinders and suction cups, the automatic feeding and limiting of hollow glass is achieved, and the problems of physical consumption and low working efficiency caused by manual operation in the prior art are solved, and the surface cleaning of hollow glass at different heights is adapted to improve work efficiency and reduce work limitations.

CN119241096BActive Publication Date: 2025-06-13YONGCHENG NORTHGLASS GLASS CO LTD
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Patent Information

Application Number
CN202411183951.7
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-08-27
Publication Date
2025-06-13
Estimated Expiration
2044-08-27

AI Technical Summary

Technical Problem

The existing hollow glass composite machine requires operators to manually carry out feeding and limit plate movement, resulting in high physical consumption, low working efficiency, and inability to adapt to the cleaning of hollow glass surfaces of different heights, which increases work limitations.

Method used

A glass composite machine for hollow glass production is designed, using hydraulic cylinders and suction cups to realize the automatic feeding and limiting of hollow glass, and the surface cleaning of hollow glass of different heights is adapted to the cleaning of hollow glass surfaces at different heights through auxiliary cleaning mechanisms.

Benefits of technology

It realizes automatic feeding of hollow glass, saves manual labor, improves work efficiency, and reduces work limitations, and can adapt to the cleaning of hollow glass surfaces of different heights.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention relates to the technical field of insulating glass processing equipment, in particular to a glass laminator for insulating glass production. A first threaded rod is fixedly connected to the end of the output shaft of the first motor. The first threaded rod is threadedly connected to a first moving block. In this glass laminator for insulating glass production, the suction cup moves upward to take out the insulating glass from the material box, so as to realize automatic feeding without manual operation by the operator, thus saving labor. The push rod slides along the surface of the protruding part on the inner wall of the first housing to realize automatic limiting. It takes a short time to move the limiting plate well, thereby improving work efficiency. The swing of the rotating plate drives the lifting rod to slide along the chute processed on the second housing, so that when there are more or fewer insulating glasses to be laminated, the operator does not need to switch to other compatible machines for processing, reducing work limitations.
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Description

Technical Field

[0001] The invention relates to the technical field of hollow glass processing equipment, in particular to a glass laminating machine for producing hollow glass. Background Art

[0002] Insulating glass is composed of two or more layers of flat glass. It is a new type of building material with good heat insulation, sound insulation, beautiful appearance, practicality, and can reduce the weight of buildings. When insulating glass is assembled, a glass assembling machine is required.

[0003] The existing insulating glass assembling machine uses a transverse driving device to remove the cleaned foreign matter to the outside of the insulating glass, thereby reducing the foreign matter remaining on the surface of the insulating glass. At the same time, the disc brush is pushed by the cylinder to move along the width direction of the base, and then the foreign matter on the surface of the insulating glass can be removed. At least to a certain extent, the foreign matter and dust attached to the surface of the insulating glass to be assembled are reduced, thereby improving the assembly quality. However, the hollow glass joining machine requires the operator to manually feed the materials for joining. Since the operator needs to manually move the hollow glass to the surface of the positioning seat, the operator needs to expend more physical strength, thereby increasing the manual labor. In addition, the hollow glass joining machine requires the operator to manually rotate the shaft so that the limit plate fixes the hollow glass. Since the shaft is manually rotated, it takes a long time to move the limit plate, thereby reducing the work efficiency. At the same time, since the height of the disk brush of the hollow glass joining machine is fixed, when there are more or fewer hollow glasses to be joined, the surface of the hollow glass cannot be cleaned, and the operator needs to switch to other compatible machines for processing, thereby increasing the working limitations. Summary of the invention

[0004] The purpose of the present invention is to solve the problem that the operator needs to manually feed the materials for joining. Since the operator needs to manually move the hollow glass to the surface of the positioning seat, the staff needs to expend more physical strength, thereby increasing the manual labor. In addition, the hollow glass joining machine requires the operator to manually rotate the rotating shaft so that the limit plate fixes the hollow glass. Since the rotating shaft is manually rotated, it takes a long time to move the limit plate, thereby reducing the work efficiency. At the same time, since the height of the disk brush of the hollow glass joining machine is fixed, when there are more or fewer hollow glasses to be joined, the surface of the hollow glass cannot be cleaned, and the operator needs to switch to other compatible machines for processing, thereby increasing the problem of work limitations. A glass joining machine for the production of hollow glass is proposed.

[0005] To achieve the above object, the present invention provides the following technical solutions:

[0006] Design a glass laminator for insulating glass production, including a bottom plate, a workbench and a first hydraulic cylinder. The workbench is symmetrically provided with limiting mechanisms inside, and the surface of the first hydraulic cylinder is provided with an auxiliary cleaning mechanism. The surface of the bottom plate is fixedly connected with a box body. The inner wall of the box body is fixedly connected with a plurality of second hydraulic cylinders. The telescopic ends of the plurality of second hydraulic cylinders are fixedly connected to the surface of a cross bar. The cross bar is slidably connected to a chute machined on the box body. The inner wall of the box body is fixedly connected with a first motor through a bracket. The end of the output shaft of the first motor is fixedly connected with a first threaded rod. The first threaded rod is threadedly connected with a first moving block.

[0007] Preferably, the first moving block is slidably connected to a chute machined on the box body. The surface of the first moving block is fixedly connected with a first hydraulic cylinder. One end of a guide rod is fixedly connected to the inner wall of the box body, and the other end of the guide rod is fixedly connected to the protruding surface of the bottom plate. The protruding surface of the bottom plate is fixedly connected with a third hydraulic cylinder.

[0008] Preferably, the limiting mechanism includes a first outer shell. The surface of the first outer shell is fixedly connected to the inner wall of the workbench. The inner wall of the first outer shell is fixedly connected with a second motor through a bracket. The end of the output shaft of the second motor is fixedly connected with a second threaded rod. The second threaded rod is threadedly connected with a sliding rod. The sliding rod is slidably connected to a chute machined on a protruding part of the inner wall of the first outer shell. The protruding part of the sliding rod is slidably connected to a chute machined on a roller. The roller is rotatably connected to the inner wall of the first outer shell through a pin shaft. The surface of the roller is fixedly connected with a disc. The chute machined on the disc is slidably connected to the surface of a protruding part of a push rod. The chute machined on the push rod is slidably connected to the surface of a protruding part of the inner wall of the first outer shell. The push rod passes through the first outer shell through a through hole and is slidably connected to the first outer shell through the through hole.

[0009] Preferably, the end of the push rod is fixedly connected with a limiting plate. The limiting plate is slidably connected to a chute machined on the workbench. The inner wall of the box body is fixedly connected to the surface of the workbench.

[0010] Preferably, the auxiliary cleaning mechanism includes a second outer shell. The surface of the second outer shell is fixedly connected to the telescopic end of the first hydraulic cylinder. The inner wall of the second outer shell is fixedly connected with a third motor through a bracket. The end of the output shaft of the third motor is fixedly connected with a worm. The worm is rotatably connected to a protruding part of the inner wall of the second outer shell through a bearing. The worm is meshed with a worm gear. The worm gear is rotatably connected to the inner wall of the second outer shell through a pin shaft. The surface of the worm gear is fixedly connected with a semi-gear. The semi-gear is meshed with a gear. The gear is rotatably connected to the second outer shell through a pin shaft. The surface of the gear is fixedly connected with a rotating plate. The rotating plate is movably connected to a lifting rod through a pin shaft. The lifting rod passes through the second outer shell through a bracket and a through hole and is slidably connected to the second outer shell through the bracket and the through hole.

[0011] Preferably, a wiping head is fixedly connected to the end of the lifting rod, a second moving block is fixedly connected to the surface of the second housing, a opening and closing plate is hinged to the surface of the box body, a plurality of material boxes are placed on the surface of the bottom plate, a spraying plate is fixedly connected to the surface of the second housing, the spraying plate is fixedly communicated with a hose, the hose passes through the box body through a through hole, and a plurality of nozzles are fixedly communicated with the surface of the spraying plate.

[0012] Preferably, a third moving block is fixedly connected to the telescopic end of the third hydraulic cylinder, and a sliding groove machined on the third moving block is slidably connected to the surface of the guide rod.

[0013] Preferably, a plurality of fourth hydraulic cylinders are fixedly connected to the surface of the third moving block, and a plurality of suction cups are installed at the telescopic ends of the plurality of fourth hydraulic cylinders.

[0014] Preferably, the surface of the workbench is fixedly connected to the surface of the shock-absorbing plate, two connecting arms are movably connected to the surface of the shock-absorbing plate through a pin shaft, the two connecting arms are respectively movably connected to two limiting blocks through a pin shaft, sliding grooves machined on the two limiting blocks are slidably connected to the surface of the limiting rod, the two limiting rods are both fixedly connected to the inner wall of the box body through a bracket, springs are sleeved on the surfaces of the two limiting rods, one end of the spring is fixedly connected to the surface of the bracket at the end of the limiting rod, and the other end of the spring is fixedly connected to the surface of the limiting block.

[0015] A glass laminator for hollow glass production proposed by the present invention has the beneficial effects that:

[0016] Through the cooperation of components such as the second hydraulic cylinder, the first hydraulic cylinder and the suction cups, the telescopic end of the fourth hydraulic cylinder moves to drive the two suction cups to move downward. When the surface of the suction cup fits with the surface of the hollow glass, the power supplies of the two fourth hydraulic cylinders are turned off, the suction cups are started, the hollow glass is adsorbed on the surface of the suction cups, then the power supplies of the two fourth hydraulic cylinders are started again, so that the suction cups move upward to take out the hollow glass from the material box. When moving to an appropriate position, the power supplies of the two second hydraulic cylinders are turned off, the power supply of the third hydraulic cylinder is started, the telescopic end of the third hydraulic cylinder moves to drive the third moving block to slide rightward along the surface of the guide rod, and enters the box body through the through hole machined on the box body. When the third moving block moves to an appropriate position, the power supply of the third hydraulic cylinder is turned off, the power supplies of the two fourth hydraulic cylinders are started, so that the hollow glass moves downward. When the surface of the hollow glass fits with the surface of the workbench, the power supplies of the two fourth hydraulic cylinders and the suction cups are turned off, so that the hollow glass falls on the surface of the workbench, so as to realize automatic feeding, without manual operation by the operator, thus saving labor force.

[0017] Through the cooperation of the limit plate and the limiting mechanism, the rotation of the output shaft of the second motor drives the rotation of the second threaded rod, thereby driving the sliding rod to slide along the surface of the protruding part of the inner wall of the first housing. At the same time, the protruding part of the sliding rod slides along the sliding groove processed on the drum, thereby driving the rotation of the drum. The rotation of the drum drives the rotation of the disc, thereby driving the protruding part of the push rod to slide along the sliding groove processed on the disc, causing the push rod to slide along the surface of the protruding part of the inner wall of the first housing. At the same time, the push rod slides along the through hole processed on the first housing, so as to realize automatic limiting. It takes a short time to move the limit plate well, thereby improving work efficiency.

[0018] Through the cooperation of the wiping head and the auxiliary cleaning mechanism, the third motor is a forward and reverse motor. The rotation of the output shaft of the third motor drives the rotation of the worm, thereby driving the rotation of the worm wheel. The rotation of the worm wheel drives the rotation of the semi-gear, thereby driving the swing of the gear. The rotation of the gear drives the swing of the rotating plate. The swing of the rotating plate drives the lifting rod to slide along the sliding groove processed on the second housing, so as to realize that when there are more or fewer insulating glass for laminating, the surface of the insulating glass can be cleaned, and the operator does not need to change to other machines adapted thereto for processing, thereby reducing the work limitation. Brief Description of the Drawings

[0019] Figure 1 is a schematic structural diagram of the present invention;

[0020] Figure 2 is Figure 1 the front elevation sectional view of

[0021] Figure 3 is Figure 2 the rear elevation sectional view of the limiting mechanism in

[0022] Figure 4 is Figure 2 the front elevation sectional view of the auxiliary cleaning mechanism in

[0023] Figure 5 is Figure 1 the partial top plan sectional view;

[0024] Figure 6 is Figure 2 the top plan sectional view of the auxiliary cleaning mechanism in

[0025] Figure 7 is Figure 2 the partial top plan sectional view of the limiting mechanism in

[0026] Figure 8 is a schematic diagram of the connection relationship among the box body, the second hydraulic cylinder and the cross bar.

[0027] In the figure: 1. Bottom plate, 2. Material box, 3. Limiting mechanism, 301. First housing, 302. Second motor, 303. Second threaded rod, 304. Slide bar, 305. Drum, 306. Disc, 307. Push rod, 4. Limiting plate, 5. Workbench, 6. Box body, 7. Wiping head, 8. Auxiliary cleaning mechanism, 801. Second housing, 802. Third motor, 803. Worm, 804. Worm gear, 805. Half gear, 806. Gear, 807. Rotating plate, 808. Lifting rod, 9. First threaded rod, 10. First moving block, 11. First hydraulic cylinder, 12. Second hydraulic cylinder, 13. Cross bar, 14. Guide rod, 15. Third moving block, 16. Third hydraulic cylinder, 17. Fourth hydraulic cylinder, 18. Suction cup, 19. Opening and closing plate, 20. First motor, 21. Second moving block, 22. Nozzle, 23. Hose, 24. Spraying plate, 25. Shock absorbing plate, 26. Connecting arm, 27. Spring, 28. Limiting rod, 29. Limiting block. Detailed implementation mode

[0028] The present invention will be further described below with reference to the attached drawings:

[0029] Refer to the attached Figures 1 - 8 In this embodiment, a glass laminator for hollow glass production includes a bottom plate 1, a workbench 5 and a first hydraulic cylinder 11. Limiting mechanisms 3 are symmetrically arranged inside the workbench 5, and an auxiliary cleaning mechanism 8 is arranged on the surface of the first hydraulic cylinder 11. The models of the first hydraulic cylinder 8, the second hydraulic cylinder 12, the third hydraulic cylinder 16, the fourth hydraulic cylinder 17, the first motor 20, the second motor 302 and the third motor 802 are selected according to actual needs to meet the working requirements. The surface of the bottom plate 1 is fixedly connected with a box body 6. A plurality of second hydraulic cylinders 12 are fixedly connected to the inner wall of the box body 6. The telescopic ends of the plurality of second hydraulic cylinders 12 are fixedly connected to the surface of the cross bar 13. The cross bar 13 is slidably connected to the chute processed on the box body 6. Connect the power supply of the second hydraulic cylinder 12. The movement of the telescopic end of the second hydraulic cylinder 12 drives the cross bar 13 to slide along the chute processed on the box body 6. The inner wall of the box body 6 is fixedly connected with a first motor 20 through a bracket. The end of the output shaft of the first motor 20 is fixedly connected with a first threaded rod 9. The first threaded rod 9 is threadedly connected with the first moving block 10;

[0030] The first moving block 10 is slidably connected to the chute machined on the box body 6. After turning on the power supply of the first motor 20, the rotation of the output shaft of the first motor 20 drives the rotation of the first threaded rod 9, thereby driving the first moving block 10 to slide along the chute machined on the box body 6. The first hydraulic cylinder 11 is fixedly connected to the surface of the first moving block 10. One end of the guide rod 14 is fixedly connected to the inner wall of the box body 6, and the other end of the guide rod 14 is fixedly connected to the convex surface of the bottom plate 1. The third hydraulic cylinder 16 is fixedly connected to the convex surface of the bottom plate 1. The end of the push rod 307 is fixedly connected with a limiting plate 4, and the limiting plate 4 is slidably connected to the chute machined on the workbench 5. The movement of the push rod 307 drives the limiting plate 4 to slide along the chute machined on the workbench 5. The inner wall of the box body 6 is fixedly connected to the surface of the workbench 5. The end of the lifting rod 808 is fixedly connected with a wiping head 7, and the movement of the lifting rod 808 drives the movement of the wiping head 7. The second moving block 21 is fixedly connected to the surface of the second outer shell 801, and the opening and closing plate 19 is hinged to the surface of the box body 6;

[0031] A plurality of material boxes 2 are placed on the surface of the bottom plate 1. The telescopic end of the third hydraulic cylinder 16 is fixedly connected with a third moving block 15. The chute machined on the third moving block 15 is slidably connected to the surface of the guide rod 14. After turning on the power supply of the third hydraulic cylinder 16, the movement of the telescopic end of the third hydraulic cylinder 16 drives the third moving block 15 to slide along the surface of the guide rod 14. A plurality of fourth hydraulic cylinders 17 are fixedly connected to the surface of the third moving block 15, and a plurality of suction cups 18 are installed at the telescopic ends of the plurality of fourth hydraulic cylinders 17. After turning on the power supply of the fourth hydraulic cylinder 17, the movement of the telescopic end of the fourth hydraulic cylinder 17 drives the movement of the suction cup 18.

[0032] The spray plate 24 is fixedly connected to the surface of the second outer shell 801. The spray plate 24 is fixedly communicated with a hose 23. The hose 23 passes through the box body 6 through a through hole. A plurality of spray nozzles 22 are fixedly communicated with the surface of the spray plate 24. The surface of the workbench 5 is fixedly connected to the surface of the shock-absorbing plate 25. Two connecting arms 26 are movably connected to the surface of the shock-absorbing plate 25 through a pin shaft. The two connecting arms 26 are respectively movably connected to two limiting blocks 29 through a pin shaft. The chutes machined on the two limiting blocks 29 are slidably connected to the surface of the limiting rod 28. The two limiting rods 28 are both fixedly connected to the inner wall of the box body 6 through a bracket. Springs 27 are sleeved on the surfaces of the two limiting rods 28. One end of the spring 27 is fixedly connected to the surface of the bracket at the end of the limiting rod 28, and the other end of the spring 27 is fixedly connected to the surface of the limiting block 29. The movement of the shock-absorbing plate 25 drives the movement of the two connecting arms 26, thereby driving the two limiting blocks 29 to slide along the surface of the limiting rod 28, and simultaneously compressing or stretching the spring 27.

[0033] Refer to the appendix Figure 3 and the appendix Figure 7

[0034] The limit mechanism 3 includes a first housing 301, the surface of the first housing 301 is fixedly connected to the inner wall of the workbench 5, a second motor 302 is fixedly connected to the inner wall of the first housing 301 through a bracket, a second threaded rod 303 is fixedly connected to the end of the output shaft of the second motor 302, the second threaded rod 303 is threadedly connected to a slide rod 304, the slide rod 304 is slidably connected to a chute machined on a protruding part of the inner wall of the first housing 301, a protruding part of the slide rod 304 is slidably connected to a chute machined on a roller 305, the roller 305 is rotatably connected to the inner wall of the first housing 301 through a pin shaft, a disc 306 is fixedly connected to the surface of the roller 305, a chute machined on the disc 306 is slidably connected to the surface of a protruding part of a push rod 307, and a chute machined on the push rod 307 is slidably connected to the surface of a protruding part of the inner wall of the first housing 301;

[0035] The push rod 307 passes through the first housing 301 through a through hole, the push rod 307 is slidably connected to the first housing 301 through the through hole. When the power of the second motor 302 is turned on, the output shaft of the second motor 302 rotates to drive the second threaded rod 303 to rotate, thereby driving the slide rod 304 to slide along the surface of a protruding part of the inner wall of the first housing 301. At the same time, the protruding part of the slide rod 304 slides along the chute machined on the roller 305, thereby driving the roller 305 to rotate. The rotation of the roller 305 drives the disc 306 to rotate, thereby driving the protruding part of the push rod 307 to slide along the chute machined on the disc 306, so that the push rod 307 slides along the surface of a protruding part of the inner wall of the first housing 301. At the same time, the push rod 307 slides along the through hole machined on the first housing 301.

[0036] Refer to the appendix Figure 4 and the appendix Figure 6

[0037] The auxiliary cleaning mechanism 8 includes a second housing 801, the surface of the second housing 801 is fixedly connected to the telescopic end of the first hydraulic cylinder 11, a third motor 802 is fixedly connected to the inner wall of the second housing 801 through a bracket, a worm 803 is fixedly connected to the end of the output shaft of the third motor 802, the worm 803 is rotatably connected to a protruding part of the inner wall of the second housing 801 through a bearing, the worm 803 meshes with a worm gear 804, the worm gear 804 is rotatably connected to the inner wall of the second housing 801 through a pin shaft, a semi-gear 805 is fixedly connected to the surface of the worm gear 804, and the semi-gear 805 meshes with a gear 806;

[0038] The gear 806 is rotatably connected to the second housing 801 through a pin shaft. A rotating plate 807 is fixedly connected to the surface of the gear 806. The rotating plate 807 is movably connected to the lifting rod 808 through a pin shaft. The lifting rod 808 passes through the second housing 801 through a bracket and a through hole. The lifting rod 808 is slidably connected to the second housing 801 through the bracket and the through hole. After the power of the third motor 802 is turned on, since the third motor 802 is a forward and reverse motor, the rotation of the output shaft of the third motor 802 drives the worm 803 to rotate, thereby driving the worm gear 804 to rotate. The rotation of the worm gear 804 drives the half gear 805 to rotate, thereby driving the gear 806 to swing. The rotation of the gear 806 drives the rotating plate 807 to swing. The swing of the rotating plate 807 drives the lifting rod 808 to slide along the chute machined on the second housing 801.

[0039] Working principle:

[0040] When using a glass laminator for insulating glass production to laminate insulating glass:

[0041] Insulating glass feeding process:

[0042] First, turn on the power of two fourth hydraulic cylinders 17. The telescopic ends of the fourth hydraulic cylinders 17 move to drive the two suction cups 18 to move downward. When the surfaces of the suction cups 18 are in contact with the surface of the insulating glass, turn off the power of the two fourth hydraulic cylinders 17, turn on the suction cups 18, and adsorb the insulating glass on the surfaces of the suction cups 18. Then, turn on the power of the two fourth hydraulic cylinders 17 again to move the suction cups 18 upward to take out the insulating glass from the material box 2. When it moves to an appropriate position, turn off the power of the two second hydraulic cylinders 17, turn on the power of the third hydraulic cylinder 16. The telescopic end of the third hydraulic cylinder 16 moves to drive the third moving block 14 to slide to the right along the surface of the guide rod 14 and enter the box body 6 through the through hole machined on the box body 6. When the third moving block 15 moves to an appropriate position, turn off the power of the third hydraulic cylinder 16, turn on the power of the two fourth hydraulic cylinders 17 to move the insulating glass downward. When the surface of the insulating glass is in contact with the surface of the workbench 5, turn off the power of the two fourth hydraulic cylinders 17 and the suction cups 18 to make the insulating glass fall on the surface of the workbench 5, so as to realize the automatic feeding of the insulating glass in multiple material boxes 2 on the surface of the bottom plate 1, saving labor.

[0043] Insulating glass limiting process:

[0044] Start the power supplies of two second motors 302. The output shaft of the second motor 302 rotates to drive the second threaded rod 303 to rotate, thereby driving the slide rod 304 to slide along the surface of the protruding part on the inner wall of the first housing 301. At the same time, the protruding part of the slide rod 304 slides along the chute machined on the roller 305, thereby driving the roller 305 to rotate. The rotation of the roller 305 drives the disc 306 to rotate, thereby driving the protruding part of the push rod 307 to slide along the chute machined on the disc 306, causing the push rod 307 to slide along the surface of the protruding part on the inner wall of the first housing 301. At the same time, the push rod 307 slides along the through hole machined on the first housing 301. The relative movement of the push rod 307 drives the limit plate 4 to slide along the chute machined on the workbench 5. When the surface of the limit plate 4 abuts against the surface of the insulating glass, turn off the power supplies of the two second motors 302 to achieve rapid limiting and fixing of the insulating glass.

[0045] Insulating glass cleaning process:

[0046] First, start the external power supply of the water pump. The water pump pumps the water in the water tank into the hose 23 and then conveys it into the spray plate 24 and sprays out from the spray nozzles 22. Start the power supplies of the fourth hydraulic cylinder 17 and the third hydraulic cylinder 16 to reset the third moving block 15. Start the power supplies of two second hydraulic cylinders 12. The telescopic end of the second hydraulic cylinder 12 moves to drive the cross bar 13 to slide along the chute machined on the box body 6. When the surface of the cross bar 13 fits against the inner wall of the groove machined on the second moving block 21, turn off the power supplies of the two second hydraulic cylinders 12. Then start the power supply of the first hydraulic cylinder 11. The telescopic end of the first hydraulic cylinder 11 moves to drive the second housing 801 to move, so as to control the wiping head 7 to move horizontally. Start the power supply of the first motor 20. The output shaft of the first motor 20 rotates to drive the first threaded rod 9 to rotate, thereby driving the first moving block 10 to slide along the chute machined on the box body 6. At the same time, start the power supply of the second second hydraulic cylinder 12 again to keep the surface of the cross bar 13 always in contact with the inner wall of the groove of the second moving block 21, so as to control the wiping head 7 to move vertically. When there are more insulating glasses, start the power supply of the third motor 802. The third motor 802 is a forward and reverse motor. The output shaft of the third motor 802 rotates to drive the worm 803 to rotate, thereby driving the worm gear 804 to rotate. The rotation of the worm gear 804 drives the semi-gear 805 to rotate, thereby driving the gear 806 to swing. The rotation of the gear 806 drives the rotating plate 807 to swing. The swing of the rotating plate 807 drives the lifting rod 808 to slide along the chute machined on the second housing 801. The up and down movement of the lifting rod 808 drives the wiping head 7 to move up and down. When the wiping head 7 moves to an appropriate position, turn off the power supply of the third motor 802. According to the actual situation, start the power supplies of the first motor, the second hydraulic cylinder 12 and the first hydraulic cylinder 11 to achieve that the insulating glass can be washed by the continuous movement of the wiping head 7, and the moisture on the surface of the insulating glass can be absorbed by the wiping head 7, and the insulating glass of different heights can be comprehensively cleaned.

[0047] Laminating process of insulating glass:

[0048] After the cleaning of the first insulating glass is completed, according to the quantity of the laminating glass required, repeat the above-mentioned feeding process and cleaning process of the insulating glass. After multiple insulating glasses are stacked together and the laminating is completed, during the laminating process, the shock-absorbing plate 25 moves downward to drive the two connecting arms 26 to move, thereby driving the two limit blocks 29 to slide along the surface of the limit rod 28, and at the same time compressing or stretching the spring 27, so that the insulating glass will not be damaged during the laminating process. The operator opens the opening and closing plate 19 and starts the power supply of the two second motors 302 to make the limit plate 4 away from the surface of the insulating glass. The operator manually takes out the laminated insulating glass and seals the edge of the insulating glass with sealant.

[0049] Although the present invention has been illustrated and described by reference to the preferred embodiments, those skilled in the art should understand that various changes in form and detail can be made within the scope of the claims.

Claims

1. A glass laminating machine for producing insulating glass, comprising a bottom plate (1), a workbench (5) and a first hydraulic cylinder (11), characterized in that: The workbench (5) is symmetrically provided with a limit mechanism (3) inside, the surface of the first hydraulic cylinder (11) is provided with an auxiliary cleaning mechanism (8), the surface of the bottom plate (1) is fixedly connected to a box body (6), the inner wall of the box body (6) is fixedly connected to a plurality of second hydraulic cylinders (12), the telescopic ends of the plurality of second hydraulic cylinders (12) are fixedly connected to the surface of a cross bar (13), the cross bar (13) is slidably connected to a slide groove processed on the box body (6), the inner wall of the box body (6) is fixedly connected to a first motor (20) via a bracket, the end of the output shaft of the first motor (20) is fixedly connected to a first threaded rod (9), and the first threaded rod (9) is threadedly connected to the first moving block (10); The auxiliary cleaning mechanism (8) comprises a second housing (801), the surface of the second housing (801) being fixedly connected to the telescopic end of the first hydraulic cylinder (11), the inner wall of the second housing (801) being fixedly connected to a third motor (802) via a bracket, the end of the output shaft of the third motor (802) being fixedly connected to a worm (803), the worm (803) being rotatably connected to a protruding portion of the inner wall of the second housing (801) via a bearing, the worm (803) being meshed with a worm wheel (804), and the worm wheel (804) being connected to the second housing (801) via a pin. The inner wall is rotatably connected, a half gear (805) is fixedly connected to the surface of the worm wheel (804), the half gear (805) is meshed with the gear (806), the gear (806) is rotatably connected to the second housing (801) via a pin shaft, a rotating plate (807) is fixedly connected to the surface of the gear (806), the rotating plate (807) is movably connected to the lifting rod (808) via a pin shaft, the lifting rod (808) passes through the second housing (801) via a bracket and a through hole, and the lifting rod (808) is slidably connected to the second housing (801) via the bracket and the through hole; The end of the lifting rod (808) is fixedly connected to a wiping head (7), and the surface of the second shell (801) is fixedly connected to a second moving block (21).

2. A glass laminating machine for producing insulating glass according to claim 1, characterized in that: The first moving block (10) is slidably connected to a slide groove processed on the box body (6); a first hydraulic cylinder (11) is fixedly connected to the surface of the first moving block (10); an inner wall of the box body (6) is fixedly connected to one end of a guide rod (14); the other end of the guide rod (14) is fixedly connected to a raised surface of the bottom plate (1); and a third hydraulic cylinder (16) is fixedly connected to the raised surface of the bottom plate (1).

3. The glass laminating machine for producing hollow glass according to claim 1, characterized in that: The limiting mechanism (3) comprises a first shell (301), the surface of the first shell (301) is fixedly connected to the inner wall of the workbench (5), the inner wall of the first shell (301) is fixedly connected to a second motor (302) via a bracket, the end of the output shaft of the second motor (302) is fixedly connected to a second threaded rod (303), the second threaded rod (303) is connected to a slide rod (304) via a threaded connection, the slide rod (304) is slidably connected to a slide groove processed in a protruding portion of the inner wall of the first shell (301), and the protruding portion of the slide rod (304) is connected to the roller (3 The roller (305) is rotatably connected with the inner wall of the first shell (301) through a pin shaft, a disc (306) is fixedly connected to the surface of the roller (305), the slide groove processed on the disc (306) is slidably connected with the surface of the protruding part of the push rod (307), the slide groove processed on the push rod (307) is slidably connected with the surface of the protruding part of the inner wall of the first shell (301), the push rod (307) passes through the first shell (301) through a through hole, and the push rod (307) is slidably connected to the first shell (301) through the through hole.

4. A glass laminating machine for producing insulating glass according to claim 3, characterized in that: The end of the push rod (307) is fixedly connected to a limit plate (4), the limit plate (4) is slidably connected to a slide groove processed on the workbench (5), and the inner wall of the box body (6) is fixedly connected to the surface of the workbench (5).

5. The glass laminating machine for producing insulating glass according to claim 1, characterized in that: The surface of the box body (6) is hinged with an opening and closing plate (19), the surface of the bottom plate (1) is provided with a plurality of material boxes (2), the surface of the second shell (801) is fixedly connected with a spray plate (24), the spray plate (24) is fixedly connected with a hose (23), the hose (23) passes through the box body (6) through a through hole, and the surface of the spray plate (24) is fixedly connected with a plurality of spray heads (22).

6. The glass laminating machine for producing insulating glass according to claim 2, characterized in that: The telescopic end of the third hydraulic cylinder (16) is fixedly connected to a third moving block (15), and a sliding groove machined on the third moving block (15) is slidably connected to the surface of the guide rod (14).

7. A glass laminating machine for producing insulating glass according to claim 6, characterized in that: A plurality of fourth hydraulic cylinders (17) are fixedly connected to the surface of the third moving block (15), and a plurality of suction cups (18) are installed at the telescopic ends of the plurality of fourth hydraulic cylinders (17).

8. The glass laminating machine for producing insulating glass according to claim 1, characterized in that: The surface of the workbench (5) is fixedly connected to the surface of the damping plate (25); the surface of the damping plate (25) is movably connected to two connecting arms (26) via a pin shaft; the two connecting arms (26) are movably connected to two limit blocks (29) via pin shafts respectively; the slide grooves processed on the two limit blocks (29) are slidably connected to the surface of the limit rod (28); the two limit rods (28) are fixedly connected to the inner wall of the box body (6) via a bracket; the surfaces of the two limit rods (28) are sleeved with a spring (27); one end of the spring (27) is fixedly connected to the surface of the bracket at the end of the limit rod (28); and the other end of the spring (27) is fixedly connected to the surface of the limit block (29).

Citation Information

Patent Citations

  • Glass laminating machine for producing hollow glass

    CN216427142U

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    CN221140224U