Glass plate coating equipment

By setting up multiple glass plate placement racks and air-controlled sliders in the glass plate coating equipment, multiple glass plates are simultaneously coated, which solves the problem of low coating efficiency of existing equipment and improves production efficiency.

CN223118329UActive Publication Date: 2025-07-18ANHUI YUANCHENGLONG OPTOELECTRONICS TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202422147508.6
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-03
Publication Date
2025-07-18
Estimated Expiration
2034-09-03

AI Technical Summary

Technical Problem

The existing glass plate coating equipment can only coat one glass plate at a time, and it cannot be taken out in time after the coating is completed, resulting in low coating efficiency.

Method used

A glass plate coating equipment is designed. By setting up multiple glass plate placement frames in the coating machine housing, the gas-controlled slider and hollow plate are used to realize the simultaneous coating of multiple glass plates, and combining the mixed injection of inert gas and coating materials, the simultaneous coating operation of multiple glass plates is realized.

Benefits of technology

The efficiency of glass plate coating is improved, delayed waiting is avoided, and the simultaneous processing of multiple glass plates is achieved, improving production efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of glass coating, in particular to glass plate coating equipment which comprises a coating machine shell, a storage part for storing coating materials is arranged at the top end of the outer wall of the coating machine shell, and a supporting partition plate is fixed in the coating machine shell. A plurality of glass plates are fixed at different heights in the glass plate placing frame, the glass plate placing frame is provided with a plurality of glass plates, the glass plate placing frame is provided with a plurality of glass plate placing parts, the coating machine shell and the supporting partition plate are respectively provided with a pair of coating parts, and the coating machine shell is also internally provided with a placing part for placing the glass plates. Then the glass plate placing rack on which the glass plates are fixed is inserted into the coating machine shell to be fixed, and then the multiple placed glass plates can be simultaneously coated through the coating component, so that a worker can coat the multiple pieces of glass at one time and can simultaneously finish coating operation on the glass plates, delayed waiting is avoided, and the working efficiency is improved. And the coating efficiency of the glass plate is improved.
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Description

Technical Field

[0001] The utility model relates to the technical field of glass coating, and particularly relates to a glass plate coating device. Background Art

[0002] Glass plate coating is to coat a thin film on the glass surface to improve its optical properties, increase strength, improve wear resistance or endow specific functions.

[0003] In the existing glass plate coating equipment, at most one glass plate can be coated at a time, or the glass plate is coated in batches. During the batch coating process, personnel cannot take out the coated glass plate, resulting in a certain impact on the coating efficiency of the glass plate. Therefore, there are still some deficiencies.

[0004] In summary, it is necessary to invent a glass plate coating device. Content of the Utility Model

[0005] Therefore, the utility model provides a glass plate coating device to solve the problem that during the batch coating process, personnel cannot take out the coated glass plate, resulting in a certain impact on the coating efficiency of the glass plate.

[0006] To achieve the above object, the utility model provides the following technical solution: A glass plate coating device includes a coating machine housing. A storage component for storing coating materials is provided at the top of the outer wall of the coating machine housing. A support partition is fixed inside the coating machine housing, and coating components are provided on both the coating machine housing and the support partition. A placement component for placing the glass plate is further provided inside the coating machine housing.

[0007] Preferably, the storage component includes an inert gas storage tank fixed at the top of the outer wall of the coating machine housing. A vacuum pump is provided on the front side of the inert gas storage tank at the top of the outer wall of the coating machine housing, and a first feeding pump is installed on the rear side of the inert gas storage tank at the top of the outer wall of the coating machine housing.

[0008] Preferably, the top of the first feeding pump is communicated with the discharge pipe at the rear side of the inner wall of the inert gas storage tank through a suction pipe. A feeding pipe is fixed on the rear side of the outer wall of the coating machine housing, and the upper end of the feeding pipe is communicated with the feeding port of the first feeding pump.

[0009] Preferably, the coating component includes a pneumatic slide seat fixed at the top of the inner wall of the coating machine housing and the bottom of the outer wall of the support partition. A second feeding pump is fixed at the bottom of the outer wall of the pneumatic slide seat, and the suction end of the second feeding pump is communicated with the front end of the inner wall of the feeding pipe through a suction hose.

[0010] Preferably, a hollow plate is fixedly communicated with the bottom discharge pipe of the second feeding pump. The two sides of the top end of the outer wall of the hollow plate are fixed to the bottom end of the outer wall of the pneumatic control sliding seat through short rods. Nozzles are communicated with the bottom ends of the outer walls of the hollow plate.

[0011] Preferably, the placing component includes a glass plate placing rack. Slots for clamping the glass plate placing rack are formed on both sides of the front end of the outer wall of the supporting partition plate. The outer wall of the glass plate placing rack is slidably connected with the inner wall of the slot.

[0012] Preferably, curved supporting blocks for placing the glass plate are arranged on both sides of the inner wall of the glass plate placing rack. Threaded rods are fixed on both sides of the outer wall of the curved supporting blocks. Strip-shaped grooves are formed on both sides of the outer wall of the glass plate placing rack at positions corresponding to the curved supporting blocks. One ends of the threaded rods far away from the curved supporting blocks pass through the strip-shaped grooves and are fixedly provided with locking nuts in a threaded manner.

[0013] Preferably, side clamping blocks for clamping the glass plate are arranged on the side ends of the inner wall of the curved supporting blocks. Clamping springs for pressing the side clamping blocks are fixed on one sides of the inner wall of the curved supporting blocks far away from the side clamping blocks.

[0014] The beneficial effects of the utility model are as follows:

[0015] In the utility model, by fixing multiple glass plates at different heights in the glass plate placing rack, then inserting the glass plate placing rack with the fixed glass plates into the coating machine housing for fixation, and then the coating component can perform the coating process on the placed multiple glass plates simultaneously. In this way, not only can personnel coat multiple glass plates at one time, but also can complete the coating operation on the glass plates simultaneously, avoiding the delay waiting and improving the coating efficiency of the glass plates. Description of the Drawings

[0016] Figure 1 It is a schematic cross-sectional structure view in the side view direction of the utility model;

[0017] Figure 2 It is a partial schematic cross-sectional structure view in the front view direction of the utility model;

[0018] Figure 3 It is a partial schematic cross-sectional structure view in the front view direction of the glass plate placing rack in the utility model;

[0019] Figure 4 It is a schematic cross-sectional structure view in the front view direction of the curved supporting block in the utility model;

[0020] Figure 5 It is a three-dimensional structure view in the top view direction of the supporting partition plate in the utility model.

[0021] In the figure: 100, coating machine housing; 110, inert gas storage tank; 120, first feeding pump; 121, feeding pipe; 200, vacuum pump; 300, support partition; 301, slot; 310, pneumatic slide seat; 320, second feeding pump; 330, hollow plate; 331, nozzle; 400, glass plate placement rack; 410, curved support block; 411, side clamping block; 412, clamping spring; 420, lock nut. Detailed implementation mode

[0022] The following is a description of the preferred embodiments of the present invention with reference to the accompanying drawings. It should be understood that the preferred embodiments described herein are only for the purpose of illustrating and explaining the present invention, and are not used to limit the present invention.

[0023] Refer to the attached Figures 1-5 As shown in the figure, a glass plate coating device provided by the present invention includes a coating machine housing 100. A storage component for storing coating materials is provided at the top end of the outer wall of the coating machine housing 100. The storage component includes an inert gas storage tank 110. The inert gas storage tank 110 is provided to store inert gas. The inert gas storage tank 110 is fixed at the top end of the outer wall of the coating machine housing 100. A vacuum pump 200 is provided at the front side of the inert gas storage tank 110 at the top end of the outer wall of the coating machine housing 100. The vacuum pump 200 is provided to evacuate the inside of the coating machine housing 100 to a vacuum. A first feeding pump 120 is installed at the rear side of the inert gas storage tank 110 at the top end of the outer wall of the coating machine housing 100. The top of the first feeding pump 120 is communicated with the discharge pipe at the rear side of the inner wall of the inert gas storage tank 110 through a suction pipe. A feeding pipe 121 is fixed at the rear side of the outer wall of the coating machine housing 100. The upper end of the feeding pipe 121 is communicated with the feeding port of the first feeding pump 120. The first feeding pump 120 can suck the inert gas in the inert gas storage tank 110 and transport it into the feeding pipe 121. Personnel can transport the coating materials into the feeding pipe 121 through a pipeline, so that the inert gas and the coating materials are mixed in the feeding pipe 121, and then are sprayed by the coating component to complete the coating.

[0024] Inside the coating machine housing 100, a support partition 300 is fixed. Coating components are provided on both the coating machine housing 100 and the support partition 300. The coating components include a pneumatically controlled sliding seat 310. The pneumatically controlled sliding seat 310 is fixed to the top end of the inner wall of the coating machine housing 100 and the bottom end of the outer wall of the support partition 300. The pneumatically controlled sliding seat 310 is provided to drive the second feeding pump 320 to move back and forth inside the coating machine housing 100, so as to be able to complete the coating operation on the top end of the glass plate. The bottom end of the outer wall of the pneumatically controlled sliding seat 310 is fixed with the second feeding pump 320. The suction end of the second feeding pump 320 is communicated with the front end of the inner wall of the feeding pipe 121 through a suction hose. The suction hose is provided to avoid affecting the sliding of the second feeding pump 320. The second feeding pump 320 is provided to suck the inert gas and coating material in the feeding pipe 121 and convey them together into the hollow plate 330. The bottom discharge pipe of the second feeding pump 320 is fixedly communicated with the hollow plate 330. The two sides of the top end of the outer wall of the hollow plate 330 are fixed to the bottom end of the outer wall of the pneumatically controlled sliding seat 310 through short rods. The hollow plate 330 is provided to spray the coating material on the glass plate through the nozzles 331, and the coating operation on the glass plate can be completed under the action of vacuum. Nozzles 331 are communicated with the bottom end of the outer wall of the hollow plate 330;

[0025] Inside the coating machine housing 100, there is also a placement component for placing the glass plate. The placement component includes a glass plate placement rack 400. On both sides of the front end of the outer wall of the support partition 300, there are slots 301 for clamping the glass plate placement rack 400. The slots 301 are provided to facilitate the insertion of the glass plate placement rack 400 into the coating machine housing 100 and also play a role in positioning the glass plate placement rack 400. The material of the support partition 300 can be selected as a high-hardness material to avoid the situation of the support partition 300 breaking due to the opening of the slots 301. The outer wall of the glass plate placement rack 400 is slidably connected to the inner wall of the slot 301. On both sides of the inner wall of the glass plate placement rack 400, there are curved support blocks 410 for placing the glass plate. The curved support blocks 410 are provided to support the bottom end of the glass plate. On both sides of the outer wall of the curved support blocks 410, there are threaded rods fixed. On both sides of the outer wall of the glass plate placement rack 400 at positions corresponding to the curved support blocks 410, there are strip-shaped grooves opened. One end of the threaded rod away from the curved support block 410 passes through the strip-shaped groove and is fixedly connected with a locking nut 420 by threading. The opened strip-shaped groove is provided to enable personnel to adjust the height position of the curved support block 410 through the threaded rod. After the adjustment is completed, the position of the curved support block 410 is fixed by tightening the locking nut 420 so that it can support the glass plate. On the side ends of the inner wall of the curved support block 410, there are side clamping blocks 411 for clamping the glass plate. On the side of the inner wall of the curved support block 410 and away from the side clamping block 411, there are clamping springs 412 for pushing the side clamping block 411 tightly. The two ends of the provided clamping spring 412 are fixedly connected to the opposite sides of the curved support block 410 and the side clamping block 411 respectively. The provided clamping spring 412 can push the side clamping block 411 out through the elastic force, so that the side clamping block 411 can tightly push the side end of the glass plate. The provided side clamping block 411 can be made of rubber material to avoid scratching the glass plate.

[0026] The usage process of the present utility model is as follows: First, the personnel can pull out the glass plate placing rack 400 from the coating machine housing 100, then loosen the locking nut 420 to adjust the position of the curved support block 410. After the adjustment is completed, tighten the locking nut 420 again. Subsequently, the personnel can take out the glass plate and place it on the curved support block 410, and the side clamping block 411 can clamp both ends of the glass plate through the clamping spring 412. After multiple glass plates are placed, the personnel can slide the glass plate placing rack 400 back into the coating machine housing 100, and the provided support partition 300 can position and clamp the glass plate placing rack 400 through the slot 301. Then, the personnel can close the sealed cabinet door hinged at the front end of the coating machine housing 100 to enclose the coating machine housing 100. Then, the personnel can start the vacuum pump 200 to evacuate the interior of the coating machine housing 100. Subsequently, the vacuum state inside the coating machine housing 100 is detected by a vacuum gauge. After completion, the personnel can start the first feeding pump 120, and the first feeding pump 120 can suck the inert gas in the inert gas storage tank 110 and transport it into the feeding pipe 121. The personnel can transport the coating material into the feeding pipe 121 through a pipeline, so that the inert gas and the coating material are mixed together in the feeding pipe 121. At the same time, the second feeding pump 320 can suck the inert gas and the coating material in the feeding pipe 121 through a suction hose and transport them together into the hollow plate 330. The provided hollow plate 330 can spray the coating material onto the glass plate through the nozzle 331, and the coating operation of the glass plate can be completed under the action of vacuum. At the same time, the pneumatic control slide 310 can drive the second feeding pump 320 and the hollow plate 330 to move back and forth to ensure that the entire end surface of the glass plate is coated. In this way, the coating processes of multiple glass plates can be carried out together. After the coating is completed, the personnel only need to pull out the glass plate placing rack 400 to remove the glass plate.

[0027] The above are only the preferred embodiments of the present utility model. Any person skilled in the art may modify the present utility model by using the technical solutions described above or modify it into an equivalent technical solution. Therefore, any simple modification or equivalent replacement made according to the technical solutions of the present utility model falls within the scope of protection required by the present utility model.

Claims

1. A glass plate coating device, including a coating machine housing (100), wherein a storage component for storing coating materials is provided at the top end of the outer wall of the coating machine housing (100), and it is characterized in that: Inside the coating machine housing (100), a support partition (300) is fixed. Coating components are provided on both the coating machine housing (100) and the support partition (300). Inside the coating machine housing (100), a placement component for placing the glass plate is also provided.

2. The glass plate coating equipment according to claim 1, characterized in that: The storage component includes an inert gas storage tank (110). The inert gas storage tank (110) is fixed at the top of the outer wall of the coating machine housing (100). A vacuum pump (200) is provided on the top of the outer wall of the coating machine housing (100) and in front of the inert gas storage tank (110). A first feed pump (120) is installed on the top of the outer wall of the coating machine housing (100) and behind the inert gas storage tank (110).

3. The glass plate coating equipment according to claim 2, characterized in that: The top of the first feed pump (120) is connected to the discharge pipe at the rear of the inner wall of the inert gas storage tank (110) through a suction pipe. A feed pipe (121) is fixed on the rear side of the outer wall of the coating machine housing (100). The upper end of the feed pipe (121) is connected to the feed port of the first feed pump (120).

4. A glass plate coating device according to claim 3, characterized in that: The coating component includes a pneumatic control slide (310). The pneumatic control slide (310) is fixed at the top of the inner wall of the coating machine housing (100) and the bottom of the outer wall of the support partition (300). A second feed pump (320) is fixed at the bottom of the outer wall of the pneumatic control slide (310). The suction end of the second feed pump (320) is connected to the front end of the inner wall of the feed pipe (121) through a suction hose.

5. The glass plate coating equipment according to claim 4, characterized in that: The bottom discharge pipe of the second feed pump (320) is fixedly connected to a hollow plate (330). The two sides at the top of the outer wall of the hollow plate (330) are fixed to the bottom of the outer wall of the pneumatic control slide (310) through short rods. Nozzles (331) are connected to the bottom of the outer wall of the hollow plate (330).

6. A glass plate coating device according to claim 1, characterized in that: The placement component includes a glass plate placement rack (400). Slots (301) for clamping the glass plate placement rack (400) are provided on both sides at the front end of the outer wall of the support partition (300). The outer wall of the glass plate placement rack (400) is slidably connected to the inner wall of the slot (301).

7. A glass plate coating device according to claim 6, wherein: Curved support blocks (410) for placing the glass plate are provided on both sides of the inner wall of the glass plate placement rack (400). Threaded rods are fixed on both sides of the outer wall of the curved support blocks (410). Strip-shaped grooves are provided on both sides of the outer wall of the glass plate placement rack (400) at positions corresponding to the curved support blocks (410). One end of each threaded rod away from the curved support block (410) passes through the strip-shaped groove and is threadedly fixed with a locking nut (420).

8. A glass plate coating device according to claim 7, characterized in that: Side clamping blocks (411) for clamping the glass plate are provided on the side ends of the inner wall of the curved support block (410). Clamping springs (412) for pressing the side clamping blocks (411) are fixed on the side of the inner wall of the curved support block (410) away from the side clamping blocks (411).