Vertical turnover device for glass coating
By using a square sponge clamping and pre-cleaning mechanism made of flexible material in the glass coating device, the problems of glass clamping and dust influence are solved, and the safety and effect of the glass coating process are improved.
Patent Information
- Application Number
- CN202510924335.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-07-04
- Publication Date
- 2025-10-17
AI Technical Summary
During the glass coating process, it is difficult to control the hard pressure when clamping the glass corners, which may cause the glass to break, and the dust particles and impurities on the glass surface may affect the coating effect.
A vertical flip device for glass coating is designed, which uses a square sponge made of flexible material to flexibly contact the glass surface for locking and fixing. A pre-cleaning mechanism and cleaning components are set, including a built-in brush, a curved long plate and a dust-catching net to prevent hard pressure and dust from affecting the coating effect.
It effectively prevents the glass from breaking due to hard pressure during the flipping process, ensures the coating quality, and removes dust particles by pre-cleaning and cleaning components to improve the coating effect and glass transparency.
Smart Images

Figure CN120790622A_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of glass flip coating technology, in particular to a vertical flip device for glass coating. BACKGROUND
[0002] Glass coating is to coat a layer or more layers of special material film on the surface of glass to change the performance of glass to meet specific needs. The main component is polysiloxane, which will form SiO2 after film formation, commonly known as glass coating. It can prevent paint oxidation and aging, isolate car paint from air, prevent acid rain, flying insects, bird droppings and other corrosive substances from damaging car paint, effectively reflect sunlight, prevent high temperature from damaging car paint, and increase the hardness of the car body surface to 7H, which is much higher than the hardness of car wax or enamel 2H-4H. It can better protect the car paint from sand damage, reduce light scattering and refraction, and improve the clarity and transparency of the glass. Some products can also block ultraviolet rays to reduce damage to the car interior and the occupants; When coating glass, it needs to be flipped to fully coat both sides. In order to not affect the effect of glass coating, the edge area of the glass is usually clamped and fixed. When clamping and fixing the glass, it is difficult to control the hard pressure, which may cause the glass to crack due to excessive hard pressure. Therefore, we propose a vertical flip device for glass coating. SUMMARY
[0003] To solve the above technical problems, the present application provides a vertical flip device for glass coating, comprising: A circular bottom plate is provided with a motor at the top; A top fixed plate is provided with a vertical connecting plate at the bottom; A bottom support long plate is provided with a vertical electric sliding rail at the top; A clamping mechanism is used for inserting and clamping the glass to be coated from top to bottom; A pre-cleaning mechanism is used for pre-cleaning the surface of the glass to be coated; The top of the circular bottom plate is fixedly connected with the bottom of the motor, the output end of the motor is fixedly connected with the bottom of the top fixed plate, the bottom of the top fixed plate is fixedly connected with the top of the vertical connecting plate, the bottom of the vertical connecting plate is fixedly connected with the top of the circular bottom plate, the driving shaft of the motor penetrates through the top fixed plate and is fixedly connected with the bottom of the bottom support long plate, the top of the bottom support long plate is fixedly connected with the bottom of the vertical electric slide rail, the vertical electric slide rail is provided with two, and the two vertical electric slide rails are symmetrically arranged on the bottom support long plate, one side of the clamping mechanism is slidably connected with the inner side of the vertical electric slide rail, the clamping mechanism is provided with two, and the two clamping mechanisms are symmetrically arranged on one side of the vertical electric slide rail, and one side of the pre-cleaning mechanism is slidably connected with the inner side of the vertical electric slide rail. The clamping mechanism comprises: The two sides of the square concave plate are provided with first connecting blocks. The square sponge is used for flexible extrusion contact with the side surface of the glass. The square sponge made of flexible material is arranged on one side of the inner pressing plate to press and clamp the glass surface, so that the hard pressure on the glass can be controlled when the glass to be coated is fixed, and the glass is prevented from being broken due to excessive hard pressure. One side of the square sponge is provided with an inner pressing plate. The inner pressing plate is driven by the inner pressing spring to move inward to press and clamp the two sides of the glass, so that the glass to be coated is prevented from shaking or deviating during subsequent overturning, thereby affecting the coating effect. One side of the first connecting block is fixedly connected with one side of the square concave plate, and one side of the square sponge is fixedly connected with one side of the inner pressing plate. The square sponge is provided with a plurality of square sponges, and the plurality of square sponges are symmetrically arranged inside the square concave plate. The side, away from the square concave plate, of the first connecting block is slidably connected with the inner side of the vertical electric slide rail. The inner side of the curved baffle is fixedly connected with the inner pressing spring. By adjusting the position of the inner pressing plate and the square sponge in the square concave plate, the clamping of the glass of different thicknesses can be adapted, so that the device is prevented from being too single in the type of glass to be adapted when the glass of different thicknesses needs to be coated. The end, away from the inner pressing plate, of the inner penetrating rod penetrates through the square concave plate and is slidably connected with the square concave plate. The inner wall top of the curved baffle is fixedly connected with the top of the square concave plate. The inner wall top of the curved baffle is fixedly connected with the top of the inner pressing plate, and the end of the inner pressing spring away from the curved baffle is fixedly connected with one side of the square recessed plate. The inner pressing spring is provided in plurality, and the plurality of inner pressing springs are respectively distributed on the inner side of the curved baffle.
[0004] Further, the pre-cleaning mechanism comprises a square frame plate, both sides of the square frame plate are fixedly connected with second connecting blocks, the inner wall of the square frame plate is fixedly connected with an inner brush, the inner brush is moved to pre-clean the surface of the glass, so as to prevent dust and impurities on the surface of the glass to be coated from affecting the subsequent coating effect, one side of the square frame plate is fixedly connected with a retraction spring, the end of the retraction spring away from the square frame plate is fixedly connected with a folded long plate, the dust and impurities cleaned by the inner brush are collected by arranging the folded long plate at the bottom of the square frame plate, so as to prevent a large amount of dust and impurities cleaned by the inner brush from falling into the clamping mechanism and affecting the clamping effect, one side of the folded long plate is provided with a square sliding hole, the inner wall of the square sliding hole is slidingly connected with a cleaning assembly, one side of the folded long plate is penetratingly and fixedly connected with a side penetrating rod, the inner side of the folded long plate is fixedly connected with an arc-shaped long plate, the arc-shaped long plate is arranged on the inner side of the folded long plate to slidingly contact with the glass, so as to prevent the glass from being inserted into the square frame plate and being difficult to push the folded long plate to both sides and continue to move downward, the outer side of the arc-shaped long plate is provided with an arc-shaped through hole, a plurality of arc-shaped through holes are arranged on the surface of the two arc-shaped long plates to facilitate the dust and impurities to pass through, so as to prevent the dust and impurities cleaned by the inner brush from being concentrated and accumulated between the two arc-shaped long plates and being difficult to be collected in the folded long plate for subsequent processing, one side of the second connecting block away from the square frame plate is slidingly connected with the inner side of the vertical electric sliding rail, one side of the cleaning assembly is fixedly connected with one side of the folded long plate, a plurality of arc-shaped through holes are arranged on the arc-shaped long plate, a plurality of retraction springs are arranged, and the plurality of retraction springs are respectively distributed on the two sides adjacent to the square frame plate and the second connecting block, a plurality of side penetrating rods are arranged, and the plurality of side penetrating rods are respectively distributed on the inner side of the retraction spring, and one end of the side penetrating rod is fixedly connected with one side of the square frame plate.
[0005] Further, the cleaning assembly comprises an inner sliding block, one side of the inner sliding block is slidingly connected with a small electric sliding rail, both sides of the inner sliding block are fixedly connected with side baffles, the side baffles on both sides of the inner sliding block move together with the inner sliding block and resist and protect the area near the triangular frame plate in the square sliding hole, so that dust stirred by the triangular frame plate cannot enter the square sliding hole in large quantities and is difficult to handle, one side of the inner sliding block away from the small electric sliding rail is fixedly connected with a triangular frame plate, the triangular frame plate moves to scrape and clean dust particles collected on the inner side of the folded long plate, so that dust particles accumulated on the inner side of the folded long plate after long-time use are difficult to handle and affect subsequent film coating effect, one side of the triangular frame plate is fixedly connected with an obliquely arranged brush, the obliquely arranged brush moves together with the triangular frame plate to clean the inner side of the arc-shaped long plate and the arc-shaped through hole, so that dust particles cleaned by the inner brush cannot adhere to the inner side of the arc-shaped long plate and the arc-shaped through hole in large quantities and are difficult to handle, the inner wall of the triangular frame plate is fixedly connected with a dust catching net, the dust catching net moves together with the triangular frame plate to capture and collect surrounding dust to suppress dust flying, so that dust stirred by the triangular frame plate cannot fly too much and be suppressed to diffuse and adhere everywhere and be difficult to handle, the outer side of the inner sliding block is slidingly connected with the inner wall of the square sliding hole, and one side of the small electric sliding rail is fixedly connected with one side of the folded long plate.
[0006] The application provides a vertical overturning device for glass film coating. 1. The vertical overturning device for glass film coating prevents the glass to be coated from being broken due to excessive hard pressure when the glass to be coated is fixed, the surface of the glass to be coated is pre-cleaned by the inner brush to prevent dust particles on the surface of the glass to be coated from affecting subsequent film coating effect, and dust particles collected on the inner side of the folded long plate are scraped and cleaned by the triangular frame plate to prevent excessive dust particles accumulated on the inner side of the folded long plate after long-time use from affecting subsequent film coating effect.
[0007] 2. The vertical glass coating turnover device is provided with a clamping mechanism. The inner pressure plate is driven by the inner pressure spring to move inward to press and clamp the two sides of the glass, preventing the glass to be coated from shaking or deviating during subsequent turnover, affecting the coating effect. A square sponge of flexible material is arranged on one side of the inner pressure plate to make flexible contact with the surface of the glass to press and clamp it, preventing the glass to be coated from being difficult to control the hard pressure when being fixed, causing the glass to be broken due to excessive hard pressure. The curved baffle moves inward to cover the top area of the square recessed plate at any time, preventing the film coated on the glass after a long time of coating processing from falling into the square recessed plate and affecting the clamping effect. The position of the inner pressure plate and the square sponge in the square recessed plate is adjusted to adapt to the clamping of glasses of different thicknesses, preventing the device from being too single in the type of glass it can adapt to when coating glasses of different thicknesses.
[0008] 3. The vertical glass coating turnover device is provided with a pre-cleaning mechanism. An arc-shaped long plate with an arc surface is arranged inside the fold-shaped long plate to make sliding contact with the glass, preventing the glass from being inserted into the square frame plate and making contact with the fold-shaped long plate, which is difficult to push the fold-shaped long plate to both sides and continue to move downward. The inner brush moves to pre-clean the surface of the glass, preventing dust particles on the surface of the glass to be coated from affecting the subsequent coating effect. Multiple arc surface through holes are arranged on the surface of the two arc-shaped long plates to facilitate the passage of dust particles, preventing the dust particles cleaned by the inner brush from being concentrated and accumulated between the two arc-shaped long plates and being difficult to collect in the fold-shaped long plate for subsequent processing. The fold-shaped long plate is arranged at the bottom of the square frame plate to collect and process the dust particles cleaned by the inner brush, preventing a large amount of dust particles cleaned by the inner brush from falling downward into the clamping mechanism and affecting the clamping effect.
[0009] 4. The vertical glass coating turnover device is provided with a cleaning assembly. The triangular frame plate moves to scrape and clean the dust particles collected inside the fold-shaped long plate, preventing too much dust and particles from accumulating inside the fold-shaped long plate after a long time of use, affecting the subsequent coating effect. The side baffle on both sides of the inner slide moves with the inner slide and blocks the area near the triangular frame plate where the square sliding hole is located, preventing dust from being stirred up by the triangular frame plate and entering the square sliding hole, which is difficult to handle. The obliquely arranged brush moves with the triangular frame plate to clean the inside of the arc-shaped long plate and the arc surface through hole, preventing a large amount of dust and particles cleaned by the inner brush from being attached to the inside of the arc-shaped long plate and the arc surface through hole, which is difficult to handle. The dust-catching net moves with the triangular frame plate to capture and collect the dust flying around to suppress the flying dust, preventing the dust stirred up by the triangular frame plate from being too large to suppress, causing the dust to diffuse and attach everywhere, which is difficult to handle. BRIEF DESCRIPTION OF DRAWINGS
[0010] Figure 1 Structure diagram of vertical overturning device of the present application; Figure 2 Structure diagram of bottom of vertical overturning device of the present application; Figure 3 Structure diagram of clamping mechanism of the present application; Figure 4 Structure diagram of side section of clamping mechanism of the present application; Figure 5 Structure diagram of pre-cleaning mechanism of the present application; Figure 6 Structure diagram of side section of pre-cleaning mechanism of the present application; Figure 7 Structure diagram of partial cleaning assembly of the present application; Figure 8 Structure diagram of cleaning assembly of the present application.
[0011] In the figure: 1, round bottom plate; 2, electric motor; 3, top fixed plate; 4, vertical connecting plate; 5, bottom support long plate; 6, vertical electric slide rail; 7, clamping mechanism; 8, pre-cleaning mechanism; 701, square recessed plate; 702, first connecting block; 703, square sponge; 704, inner pressing plate; 705, inner through rod; 706, curved baffle; 707, inner pressing spring; 801, square frame plate; 802, second connecting block; 803, built-in brush; 804, retraction spring; 805, folded long plate; 806, square slide hole; 807, cleaning assembly; 808, side through rod; 809, arc long plate; 810, arc surface through hole; 8071, built-in slide block; 8072, small electric slide rail; 8073, side baffle; 8074, triangular frame plate; 8075, obliquely placed brush; 8076, dust catching net. DETAILED DESCRIPTION
[0012] The technical solutions in the embodiments of the present application will be clearly and completely described below with reference to the drawings in the embodiments of the present application. Obviously, the described embodiments are only part of the embodiments of the present application, rather than all the embodiments. Based on the embodiments in the present application, all other embodiments obtained by those skilled in the art without creative labor fall within the scope of protection of the present application.
[0013] Please refer to Figures 1-4 The present application provides a vertical overturning device for glass coating, comprising: The round bottom plate 1 is provided with an electric motor 2 at the top; The top fixed plate 3 is provided with a vertical connecting plate 4 at the bottom; The bottom support long plate 5 is provided with a vertical electric slide rail 6 at the top; The clamping mechanism 7 is used to insert and clamp the glass to be coated up and down; A pre-cleaning mechanism 8 is used to pre-clean the glass surface to be coated with particles and debris; The top of the circular bottom plate 1 is fixedly connected to the bottom of the motor 2, the output end of the motor 2 is fixedly connected to the bottom of the top fixed plate 3, the bottom of the top fixed plate 3 is fixedly connected to the top of the vertical connecting plate 4, the bottom of the vertical connecting plate 4 is fixedly connected to the top of the circular bottom plate 1, the driving shaft of the motor 2 passes through the top fixed plate 3 and is fixedly connected to the bottom of the bottom support long plate 5, the top of the bottom support long plate 5 is fixedly connected to the bottom of the vertical electric slide rail 6, there are two vertical electric slide rails 6, and the two vertical electric slide rails 6 are symmetrically arranged on the bottom support long plate 5, one side of the clamping mechanism 7 is slidably connected to the inner side of the vertical electric slide rail 6, there are two clamping mechanisms 7, and the two clamping mechanisms 7 are symmetrically arranged on one side of the vertical electric slide rail 6, one side of the pre-cleaning mechanism 8 is slidably connected to the inner side of the vertical electric slide rail 6; The engaging mechanism 7 includes: A square concave plate 701, with first connecting blocks 702 provided on both sides of the square concave plate 701; A square sponge 703 is used for flexible extrusion contact with the side of the glass. An inner pressure plate 704 is provided on one side of the square sponge 703; One side of the first connecting block 702 is fixedly connected to one side of the square concave plate 701, and one side of the square sponge 703 is fixedly connected to one side of the inner pressure plate 704. There are multiple square sponges 703, and the multiple square sponges 703 are symmetrically arranged on the inner side of the square concave plate 701. The first connecting block 702 is slidably connected to the inner side of the vertical electric slide rail 6 on one side away from the square concave plate 701; An inner rod 705 is fixedly connected to the side of the inner pressure plate 704 away from the square sponge 703. An end of the inner rod 705 away from the inner pressure plate 704 is fixedly connected to a curved baffle 706. An inner pressure spring 707 is fixedly connected to the inner side of the curved baffle 706. One end of the inner penetrating rod 705 away from the inner pressure plate 704 passes through the square concave plate 701 and is slidably connected to the square concave plate 701. The top of the inner wall of the curved baffle 706 is fixedly connected to the top of the square concave plate 701. The top of the inner wall of the curved baffle 706 is fixedly connected to the top of the inner pressure plate 704, and the end of the inner pressure spring 707 away from the curved baffle 706 is fixedly connected to one side of the square concave plate 701; The plurality of inner pressure springs 707 are distributed on the inner side of the curved baffle 706, and the plurality of inner penetrating rods 705 are distributed on the inner side of the inner pressure springs 707. In use, the pre-cleaning mechanism 8 is driven by the vertical electric slide rail 6 to move downward to the bottom clamping mechanism 7, and then the glass to be plated is inserted into the pre-cleaning mechanism 8 and the bottom clamping mechanism 7 in sequence, and then the top clamping mechanism 7 is driven by the vertical electric slide rail 6 to clamp and fix the glass. After fixing, the pre-cleaning mechanism 8 can be used to pre-clean the particles on the two side surfaces of the glass. After cleaning, the glass can be plated. At the same time, the motor 2 drives the bottom support long plate 5 to rotate, so that the vertical electric slide rail 6 drives the clamped and fixed glass to rotate to plate both sides of the glass. After the glass is inserted between the two square sponges 703 in the concave plate, the inner pressure springs 707 push the curved baffle 706, the inner penetrating rod 705 and the inner pressure plate 704 to move inward by the contraction of the inner pressure. When the inner pressure plate 704 moves inward, it pushes the square sponge 703 on one side to extrude and contact the surface of the glass. The inner pressure plate 704 is driven by the inner pressure spring 707 to move inward to press and clamp the two sides of the glass. The square sponge 703 made of flexible material is arranged on one side of the inner pressure plate 704 to flexibly contact the surface of the glass and press it. The curved baffle 706 moves inward to cover and protect the top area of the square concave plate 701. Pulling the curved baffle 706 outward drives the inner pressure spring 707 to stretch, and at the same time drives the inner penetrating rod 705, the inner pressure plate 704 and the square sponge 703 to move. By adjusting the position of the inner pressure plate 704 and the square sponge 703 in the square concave plate 701, different thicknesses of glass can be clamped.
[0014] Please refer to Figures 1-8The application provides a vertical turnover device for glass coating, which comprises a pre-cleaning mechanism 8, the pre-cleaning mechanism 8 comprises a square frame plate 801, two sides of the square frame plate 801 are fixedly connected with second connecting blocks 802, the inner wall of the square frame plate 801 is fixedly connected with built-in brushes 803, one side of the square frame plate 801 is fixedly connected with retraction springs 804, one end of the retraction spring 804, which is far away from the square frame plate 801, is fixedly connected with zigzag long plates 805, one side of the zigzag long plate 805 is provided with square sliding holes 806, the inner wall of the square sliding hole 806 is slidably connected with cleaning assemblies 807, one side of the zigzag long plate 805 penetrates and is fixedly connected with side penetrating rods 808, the inner side of the zigzag long plate 805 is fixedly connected with arc long plates 809, the outer side of the arc long plate 809 is provided with arc surface through holes 810, one side of the second connecting block 802, which is far away from the square frame plate 801, is slidably connected with the inner side of a vertical electric slide rail 6, one side of the cleaning assembly 807 is fixedly connected with one side of the zigzag long plate 805, a plurality of arc surface through holes 810 are arranged on the arc long plate 809, a plurality of retraction springs 804 are arranged on the two sides of the square frame plate 801 and the second connecting block 802, a plurality of side penetrating rods 808 are arranged on the inner side of the retraction spring 804, and one end of the side penetrating rod 808 is fixedly connected with one side of the square frame plate 801. The cleaning assembly 807 comprises an inner sliding block 8071, one side of the inner sliding block 8071 is slidingly connected with a small electric sliding rail 8072, both sides of the inner sliding block 8071 are fixedly connected with side baffles 8073, one side of the inner sliding block 8071 away from the small electric sliding rail 8072 is fixedly connected with a triangular frame plate 8074, one side of the triangular frame plate 8074 is fixedly connected with an obliquely placed brush 8075, the inner wall of the triangular frame plate 8074 is fixedly connected with a dust catching net 8076, the outer side of the inner sliding block 8071 is slidingly connected with the inner wall of the square sliding hole 806, one side of the small electric sliding rail 8072 is fixedly connected with one side of the folded long plate 805, in use, after the glass is inserted into the square frame plate 801, the glass will be in contact with the arc-shaped long plate 809 and continue to move downward through the arc surface of the arc-shaped long plate 809 and push the arc-shaped long plate 809 to both sides, when the two arc-shaped long plates 809 are pushed to both sides, the folded long plate 805 at the bottom is also moved, the arc-shaped long plate 809 with an arc surface is arranged on the inner side of the folded long plate 805 to slide with the glass, after the glass passes between the square frame plate 801 and the two folded long plates 805, the glass enters the clamping mechanism 7, after the glass is clamped and fixed by the clamping mechanism 7, the square frame plate 801 on one side is moved together with the second connecting block 802 driven by the vertical electric sliding rail 6, when the square frame plate 801 moves, the inner wall of the inner sliding block 8071 is also moved, when the inner sliding block 8071 moves, the surface of the glass is pre-cleaned, the dust particles and impurities cleaned by the inner sliding block 8071 fall downward on the arc-shaped long plate 809 and continue to fall into the inner side of the folded long plate 805 through the arc surface through hole 810 for collection, a plurality of arc surface through holes 810 are arranged on the surface of the two arc-shaped long plates 809 to facilitate the passage of dust particles and impurities, the dust particles and impurities cleaned by the inner sliding block 8071 are collected and treated by arranging the folded long plate 805 at the bottom of the square frame plate 801, when the glass is not inserted into the square frame plate 801, the dust particles and impurities collected in the folded long plate 805 can be concentrated and cleaned out by the cleaning assembly 807, the inner sliding block 8071 is driven to move in the square sliding hole 806 by the small electric sliding rail 8072, when the inner sliding block 8071 moves, the triangular frame plate 8074 and the side baffles 8073 on one side are also moved, when the triangular frame plate 8074 moves, the dust particles and impurities collected in the inner side of the folded long plate 805 are scraped and cleaned, the side baffles 8073 on both sides of the inner sliding block 8071 move together with the inner sliding block 8071 and resist and protect the area of the square sliding hole 806 near the triangular frame plate 8074, when the triangular frame plate 8074 moves, the obliquely placed brush 8075 and the dust catching net 8076 on the inner wall move together, when the obliquely placed brush 8075 moves with the triangular frame plate 8074, the inner side of the arc-shaped long plate 809 and the arc surface through hole 810 are cleaned, when the dust catching net 8076 moves with the triangular frame plate 8074, the surrounding dust is captured and collected to suppress the flying dust.
[0015] When the present invention is in operation, the pre-cleaning mechanism 8 is driven by the vertical electric slide 6 to move down to the clamping mechanism 7 at the bottom, and then the glass to be coated is inserted into the pre-cleaning mechanism 8 and the clamping mechanism 7 at the bottom in turn, and then the vertical electric slide 6 drives the clamping mechanism 7 at the top to clamp and fix the glass. After fixation, the pre-cleaning mechanism 8 can be used to pre-clean particles and debris on both sides of the glass. After cleaning, the glass can be coated. At the same time, the motor 2 is started to drive the bottom support long plate 5 to rotate, so that the vertical electric slide 6 drives the clamped and fixed glass to rotate together to coat both sides of the glass. After the glass is inserted between the two square sponges 703 in the direction concave plate, the internal pressure spring 707 pushes the curved baffle 706 through the contracting internal pressure. The inner rod 705 and the inner pressure plate 704 move inward together. When the inner pressure plate 704 moves inward, it pushes the square sponge 703 on one side to squeeze and contact the glass surface. The inner pressure spring 707 drives the inner pressure plate 704 to move inward to press and fix the two sides of the glass. A square sponge 703 of flexible material is set on one side of the inner pressure plate 704 to flexibly contact the glass surface and press it to engage. The curved baffle 706 moving inward together covers the top area of the square concave plate 701 at all times. The curved baffle 706 is pulled outward to extend the inner pressure spring 707. At the same time, it drives the inner rod 705, the inner pressure plate 704 and the square sponge 703 to move together. By adjusting the inner pressure plate 704 and the square sponge 703 on the square concave plate 70 1 is positioned in the interior to adapt to the different thicknesses of glass, and after the glass is inserted into the square frame plate 801, it will contact the curved long plate 809 and continue to move downward through the curved surface of the curved long plate 809, passing between the two curved long plates 809 and pushing the curved long plate 809 to both sides. When the two curved long plates 809 are pushed to both sides, they drive the folding long plate 805 at the bottom to move together, and the curved long plate 809 with a curved surface is set on the inner side of the folding long plate 805 to slide in contact with the glass. After the glass passes between the square frame plate 801 and the two folding long plates 805, it enters the locking mechanism 7. After being locked and fixed by the locking mechanism 7, the second connecting block 802 is driven by the vertical electric slide rail 6 to drive the square frame plate 801 on one side to move together, and the square frame plate When 801 moves, it drives the built-in brush 803 on the inner wall to move together. When the built-in brush 803 moves, it pre-cleans the surface of the glass. The dust particles and impurities cleaned by the built-in brush 803 will fall downwards onto the curved long plate 809 and continue to fall through the curved through holes 810 to be collected on the inner side of the folded long plate 805. A plurality of staggered curved through holes 810 are provided on the surfaces of the two curved long plates 809 to facilitate the passage of dust particles and debris. A folded long plate 805 is provided at the bottom of the square frame plate 801 to collect and process the dust particles and impurities cleaned by the built-in brush 803. When the glass is not inserted into the square frame plate 801, the cleaning component 807 can be used to centrally clean and discharge the dust particles and impurities collected in the folded long plate 805.The built-in slider 8071 is driven to move in the square sliding hole 806 by the small electric sliding rail 8072, and when the built-in slider 8071 moves, the triangular frame plate 8074 on one side and the side baffle 8073 move together, the triangular frame plate 8074 moves to scrape and clean the dust particles collected on the inner side of the folded long plate 805, the side baffle 8073 on both sides of the built-in slider 8071 moves together with the built-in slider 8071 and resists and protects the area near the triangular frame plate 8074 of the square sliding hole 806, the triangular frame plate 8074 moves to drive the inclined brush 8075 and the dust catching net 8076 on the inner wall to move together, the inclined brush 8075 moves with the triangular frame plate 8074 to clean the inner side of the arc-shaped long plate 809 and the arc-shaped through hole 810, and the dust catching net 8076 moves with the triangular frame plate 8074 to capture and collect the flying dust to suppress the flying dust.
[0016] Obviously, the embodiments described are only a part of the embodiments of the present application, rather than all the embodiments. Based on the embodiments of the present application, all other embodiments obtained by those of ordinary skill in the art and related fields without creative work should belong to the protection scope of the present application. The structures, devices and operation methods not specifically described and explained in the present application are implemented according to the conventional means in the art, unless specifically described and limited.
Claims
1. A vertical turning device for glass coating, characterized in that: include: A circular base plate (1), wherein a motor (2) is provided on the top of the circular base plate (1); A top fixing plate (3), wherein a vertical connecting plate (4) is provided at the bottom of the top fixing plate (3); A bottom supporting long plate (5), wherein a vertical electric slide rail (6) is provided on the top of the bottom supporting long plate (5); A clamping mechanism (7), the clamping mechanism (7) is used to insert and clamp the glass to be coated up and down; A pre-cleaning mechanism (8), the pre-cleaning mechanism (8) is used to pre-clean the glass surface to be coated of particles and debris; The top of the circular bottom plate (1) is fixedly connected to the bottom of the motor (2), the output end of the motor (2) is fixedly connected to the bottom of the top fixed plate (3), the bottom of the top fixed plate (3) is fixedly connected to the top of the vertical connecting plate (4), the bottom of the vertical connecting plate (4) is fixedly connected to the top of the circular bottom plate (1), the drive shaft of the motor (2) passes through the top fixed plate (3) and is fixedly connected to the bottom of the bottom support long plate (5), the top of the bottom support long plate (5) is fixedly connected to the top of the vertical connecting plate (4). The part is fixedly connected to the bottom of the vertical electric slide rail (6), two vertical electric slide rails (6) are provided, and the two vertical electric slide rails (6) are symmetrically arranged on the bottom support long plate (5), one side of the clamping mechanism (7) is slidably connected to the inner side of the vertical electric slide rail (6), two clamping mechanisms (7) are provided, and the two clamping mechanisms (7) are symmetrically arranged on one side of the vertical electric slide rail (6), and one side of the pre-cleaning mechanism (8) is slidably connected to the inner side of the vertical electric slide rail (6); Wherein, the engaging mechanism (7) comprises: A square concave plate (701), wherein first connecting blocks (702) are provided on both sides of the square concave plate (701); A square sponge (703), the square sponge (703) being used for flexible extrusion contact with the side of the glass, and an inner pressure plate (704) being provided on one side of the square sponge (703); One side of the first connecting block (702) is fixedly connected to one side of the square concave plate (701), and one side of the square sponge (703) is fixedly connected to one side of the inner pressure plate (704). A plurality of square sponges (703) are provided, and the plurality of square sponges (703) are symmetrically arranged on the inner side of the square concave plate (701). The side of the first connecting block (702) away from the square concave plate (701) is slidably connected to the inner side of the vertical electric slide rail (6).
2. The vertical turning device for glass coating according to claim 1, characterized in that: The inner pressure plate (704) is fixedly connected to an inner penetration rod (705) on one side away from the square sponge (703), and the inner penetration rod (705) is fixedly connected to a curved baffle (706) on one end away from the inner pressure plate (704). The inner side of the curved baffle (706) is fixedly connected to an inner pressure spring (707).
3. The vertical turning device for glass coating according to claim 2, characterized in that: One end of the inner penetrating rod (705) away from the inner pressure plate (704) passes through the square concave plate (701) and is slidably connected to the square concave plate (701), and the top of the inner wall of the curved baffle (706) is fixedly connected to the top of the square concave plate (701).
4. The vertical turning device for glass coating according to claim 2, characterized in that: The top of the inner wall of the curved baffle (706) is fixedly connected to the top of the inner pressure plate (704), and one end of the inner pressure spring (707) away from the curved baffle (706) is fixedly connected to one side of the square concave plate (701).
5. The vertical turning device for glass coating according to claim 2, characterized in that: There are multiple internal pressure springs (707), and the multiple internal pressure springs (707) are respectively distributed on the inner side of the curved baffle (706); there are multiple internal penetration rods (705), and the multiple internal penetration rods (705) are respectively distributed on the inner side of the internal pressure springs (707).
6. The vertical turning device for glass coating according to claim 1, characterized in that: The pre-cleaning mechanism (8) comprises a square frame plate (801), both sides of the square frame plate (801) are fixedly connected to a second connecting block (802), the inner wall of the square frame plate (801) is fixedly connected to a built-in brush (803), one side of the square frame plate (801) is fixedly connected to a retraction spring (804), one end of the retraction spring (804) away from the square frame plate (801) is fixedly connected to a folding long plate (805), one side of the folding long plate (805) is provided with a square sliding hole (806), the inner wall of the square sliding hole (806) is slidably connected to a cleaning component (807), one side of the folding long plate (805) is penetrated and fixedly connected to a side penetration rod (808), the inner side of the folding long plate (805) is fixedly connected to an arcuate long plate (809), and the outer side of the arcuate long plate (809) is provided with an arcuate through hole (810).
7. The vertical turning device for glass coating according to claim 6, characterized in that: The side of the second connecting block (802) away from the square frame plate (801) is slidably connected to the inner side of the vertical electric slide rail (6), and one side of the cleaning component (807) is fixedly connected to one side of the folding long plate (805). A plurality of arc-shaped through holes (810) are provided, and the plurality of arc-shaped through holes (810) are distributed on the arc-shaped long plate (809).
8. The vertical turning device for glass coating according to claim 6, characterized in that: There are multiple retraction springs (804), and the multiple retraction springs (804) are respectively distributed on both sides adjacent to the square frame plate (801) and the second connecting block (802); there are multiple side penetration rods (808), and the multiple side penetration rods (808) are respectively distributed inside the retraction springs (804); one end of the side penetration rod (808) is fixedly connected to one side of the square frame plate (801).
9. The vertical turning device for glass coating according to claim 6, characterized in that: The cleaning component (807) comprises a built-in slider (8071), one side of the built-in slider (8071) is slidably connected to a small electric slide rail (8072), both sides of the built-in slider (8071) are fixedly connected to side baffles (8073), the side of the built-in slider (8071) away from the small electric slide rail (8072) is fixedly connected to a triangular frame plate (8074), one side of the triangular frame plate (8074) is fixedly connected to an inclined brush (8075), and the inner wall of the triangular frame plate (8074) is fixedly connected to a dust collecting net (8076).
10. The vertical turning device for glass coating according to claim 9, characterized in that: The outer side of the built-in slider (8071) is slidably connected to the inner wall of the square sliding hole (806), and one side of the small electric slide rail (8072) is fixedly connected to one side of the folding long plate (805).