Coating device for glass processing
By introducing a brush plate and guide roller structure into the glass coating device, combined with an automated cleaning and feeding system, the problem of dust affecting the uniformity of coating during glass conveying is solved, achieving a highly efficient glass coating effect.
Patent Information
- Application Number
- CN202423168339.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-23
- Publication Date
- 2026-01-06
- Estimated Expiration
- 2034-12-23
AI Technical Summary
Existing glass coating equipment does not clean the glass during the transport process, which causes dust to affect the uniformity of the coating and results in a high rate of coating defects.
A coating device for glass processing was designed. It uses a brush plate and guide roller structure to automatically clean and clamp the glass. Combined with a telescopic rod and gear transmission system, it realizes automatic feeding, ensuring the glass surface is clean and avoiding positional displacement.
It enables automatic cleaning and clamping of glass of different thicknesses and widths, reducing the coating defect rate and improving the uniformity and efficiency of coating.
Smart Images

Figure CN223766263U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to glass processing technical field especially relates to a glass processing is used film device. BACKGROUND
[0002] Glass is noncrystalline inorganic nonmetallic material, generally is with a variety of inorganic mineral (such as quartz sand, borax, boric acid, barite, barium carbonate, limestone, feldspar, soda ash etc.) as main raw material, additionally add a small amount of auxiliary raw material and make. Its main component is silica and other oxides. Main component is silicate complex salt, is a noncrystalline solid of irregular structure. It is widely used in buildings, to keep out the wind and let in the light, belongs to mixture. There are colored glass that mixed some metal oxides or salts and showed color, and toughened glass made by physical or chemical method etc. Sometimes some transparent plastics (such as polymethyl methacrylate) are also called organic glass.
[0003] Glass film plating is a kind of chemical polymer material, because it has high density of chemical properties, glass film plating, with high gloss, oxidation resistance, acid and alkali resistance, anti-ultraviolet characteristics, good protection to glass.
[0004] The existing glass film plating device mostly places glass in the conveying belt, then conveys the glass to the bottom of the film plating nozzle, does not clean the glass, and dust floats in the air of the production workshop, so when the surface of the glass placed on the conveying table is conveyed to the film plating bin, dust will be attached to the glass, and if it is not treated, it will cause uneven film plating, and the glass film plating defect rate is too high. UTILITY MODEL CONTENTS
[0005] The utility model aims at solving the shortcomings in the prior art and provides a film plating device for glass processing.
[0006] In order to achieve the above object, the utility model adopts the following technical scheme: a film plating device for glass processing, including the box, the bottom surface of the box is vertically fixed with support legs, the left and right sides of the box are respectively penetrated by the feeding port and the discharging port, the lower edge of the feeding port and the discharging port is equipped with a cushion block, the cushion block is fixedly connected with the box, the upper edge of the feeding port is vertically provided with two mirror image symmetrical first blind holes, one guide rod is axially slidably connected in each first blind hole, the distal ends of the two guide rods are fixedly connected with a base block, the bottom surface of the base block is provided with a brush plate, two groups of first guide rollers in vertical state are movably connected in the box, a group of second guide rollers in horizontal state are arranged between the two groups of first guide rollers, and the second guide rollers are movably connected in the box.
[0007] As a further description of the above technical solution: the box is movably connected with two pairs of mirror-symmetrical first support plates, between each of the two upper and lower symmetrical first support plates, a plurality of equidistant transversely distributed first guide rollers are vertically rotatably connected, the top surface of each first guide roller is fixedly sleeved with a first gear, each two first gears are jointly meshed with a second gear, the second gear is rotatably connected to the bottom surface of the upper first support plate, the top surface of the upper first support plate is vertically fixed with a driving motor, the output end of the driving motor is in transmission connection with the top surface of one of the first guide rollers, two mirror-symmetrical second sliding grooves are longitudinally formed in the bottom wall of the box, two front and rear mirror-symmetrical second springs are horizontally fixed in each second sliding groove, the distal end of each second spring is fixed with a second sliding block, two second sliding blocks are slidably connected in each second sliding groove, two second sliding blocks are fixed to the bottom surface of each lower first support plate, two left and right mirror-symmetrical telescopic rods are horizontally fixed to each first support plate.
[0008] As a further description of the above technical solution: two radially symmetrical first sliding grooves are axially formed in each first blind hole, a first sliding block is slidably connected in each first sliding groove, the first sliding block is fixedly connected with the guide rod, a first spring fixedly connected with the top surface of the guide rod is vertically fixed in each first blind hole.
[0009] As a further description of the above technical solution: a second blind hole is vertically formed in each corner of the bottom surface of the base block, a permanent magnet block is vertically fixed in each second blind hole, a metal block magnetically connected with the permanent magnet block is axially inserted into each second blind hole, and each metal block is vertically fixed to the top surface of the brush plate.
[0010] As a further description of the above technical solution: two front and rear mirror-symmetrical second support plates are transversely fixed to the inner wall bottom surface of the box, a plurality of equidistant transversely distributed second guide rollers are horizontally connected between the two second support plates, and the two second support plates are located between the two first support plates.
[0011] As a further description of the above technical solution: the top surface of the box is fixedly connected with a liquid storage tank, the bottom surface of the liquid storage tank is vertically connected with a water pipe, the water pipe penetrates through the box and extends into the box, and the water pipe is fixedly connected with an atomizing nozzle.
[0012] The utility model has the advantages that:
[0013] 1. Compared with the prior art, the film coating device for glass processing realizes dust cleaning on the glass before coating by vertically and telescopically connecting a brush plate at the feed inlet of the box body, avoids the influence of dust on the glass on the effect of glass coating, and enables the brush plate to clean dust on the surface of glass of different thicknesses without manually adjusting the distance between the brush plate and the glass.
[0014] 2. Compared with the prior art, the film coating device for glass processing realizes dust cleaning on the glass before coating by vertically and telescopically connecting a brush plate at the feed inlet of the box body, avoids the influence of dust on the glass on the effect of glass coating, and enables the brush plate to clean dust on the surface of glass of different thicknesses without manually adjusting the distance between the brush plate and the glass. BRIEF DESCRIPTION OF DRAWINGS
[0015] Figure 1 Figure 1 is a perspective view of the overall structure of the film coating device for glass processing according to the present application.
[0016] Figure 2 Figure 2 is a main sectional view of the overall structure of the film coating device for glass processing according to the present application.
[0017] Figure 3 Figure 3 is a right sectional view of the overall structure of the film coating device for glass processing according to the present application.
[0018] Figure 4 Figure 4 is an enlarged view of the structure at A in the film coating device for glass processing according to the present application. Figure 2
[0019] Figure 5 Figure 5 is an enlarged view of the structure at B in the film coating device for glass processing according to the present application. Figure 2
[0020] Figure 6 Figure 6 is an enlarged view of the structure at C in the film coating device for glass processing according to the present application. Figure 2 LEGEND
[0021]
[0022] 1, box; 2, discharge port; 3, cushion block; 4, liquid storage tank; 5, atomizing nozzle; 6, first support plate; 7, first guide roller; 8, feed inlet; 9, second guide roller; 10, second support plate; 11, drive motor; 12, telescopic rod; 13, first gear; 14, first blind hole; 15, first sliding groove; 16, first spring; 17, first sliding block; 18, guide rod; 19, base block; 20, second blind hole; 21, brush plate; 22, metal block; 23, permanent magnet block; 24, second sliding groove; 25, second sliding block; 26, second spring; 27, second gear. DETAILED DESCRIPTION
[0023] The technical solutions in the embodiments of the utility model will be clearly and completely described below with reference to the drawings in the embodiments of the utility model. Obviously, the described embodiments are only part of the embodiments of the utility model, rather than all the embodiments. Based on the embodiments in the utility model, all other embodiments obtained by those skilled in the art without creative labor fall within the protection scope of the utility model.
[0024] Referring to Figures 1 to 6 The film coating device for glass processing provided by the utility model comprises a box 1, vertical fixed support legs are arranged on the bottom surface of the box 1, a feed inlet 8 and a discharge port 2 are respectively arranged on the left side and the right side of the box 1, cushion blocks 3 are arranged on the lower edges of the feed inlet 8 and the discharge port 2, the cushion blocks 3 are fixedly connected with the box 1, two mirror-symmetrical first blind holes 14 are vertically arranged on the upper edge of the feed inlet 8, a guide rod 18 is axially and slidably connected in each first blind hole 14, two radially symmetrical first sliding grooves 15 are axially arranged in each first blind hole 14, a first sliding block 17 is slidably connected in each first sliding groove 15, the first sliding block 17 is fixedly connected with the guide rod 18, a first spring 16 is vertically fixed in each first blind hole 14 and fixed to the top surface of the guide rod 18, a base block 19 is fixedly arranged at the ends of the two guide rods 18, a brush plate 21 is arranged on the bottom surface of the base block 19, two groups of first guide rollers 7 in vertical state are movably connected in the box 1, a second guide roller 9 is arranged between the two groups of first guide rollers 7 and arranged in horizontal state, the second guide roller 9 is movably connected in the box 1, a second blind hole 20 is vertically arranged at each corner of the bottom surface of the base block 19, a permanent magnet block 23 is vertically fixed in each second blind hole 20, a metal block 22 is axially inserted in each second blind hole 20 and magnetically connected with the permanent magnet block 23, the metal blocks 22 are vertically fixed to the top surface of the brush plate 21, a liquid storage tank 4 is fixedly connected to the top surface of the box 1, a water pipe is vertically connected to the bottom surface of the liquid storage tank 4, the water pipe penetrates through the box 1 and extends into the box 1, the water pipe is fixedly connected with an atomizing nozzle 5;
[0025] The dust cleaning effect of the glass before coating is realized by vertically and telescopically connecting a brush plate 21 at the feed inlet 8 of the box body 1, the dust on the glass is avoided to affect the effect of glass coating, the brush plate 21 can clean the dust on the surface of glass with different thicknesses without manually adjusting the distance between the brush plate 21 and the glass, the brush plate 21 is installed at the feed inlet 8 through the base block 19, the metal block 22 and the permanent magnet block 23, so that the brush plate 21 is convenient to replace and the dust cleaning effect of the brush plate 21 on the glass is guaranteed.
[0026] With reference to Figure 2 、 Figure 3 、 Figure 5 and Figure 6 , in order to realize the purpose of clamping and guiding feeding of the glass, two pairs of mirror-symmetrical first supporting plates 6 are movably connected in the box body 1, a plurality of equidistant transversely distributed first guide rollers 7 are vertically rotatably connected between each of the two mirror-symmetrical first supporting plates 6, a first gear 13 is fixedly sleeved on the top surface of each of the first guide rollers 7, a second gear 27 is jointly meshed between each of the two first gears 13, the second gear 27 is rotatably connected to the bottom surface of the upper first supporting plate 6, a driving motor 11 is vertically fixed on the top surface of the upper first supporting plate 6, the output end of the driving motor 11 is in transmission connection with the top surface of one of the first guide rollers 7, two mirror-symmetrical second sliding grooves 24 are longitudinally formed in the bottom wall of the box body 1, two front and rear mirror-symmetrical second springs 26 are horizontally fixed in each of the second sliding grooves 24, a second sliding block 25 is fixed to the end of each of the second springs 26, two second sliding blocks 25 are slidably connected in each of the second sliding grooves 24, two second sliding blocks 25 are fixed to the bottom surface of each of the lower first supporting plates 6, two left and right mirror-symmetrical telescopic rods 12 are horizontally fixed to each of the first supporting plates 6, and the telescopic rods 12 are horizontally fixed to the inner wall of the box body 1; two front and rear mirror-symmetrical second supporting plates 10 are transversely fixed to the bottom surface of the inner wall of the box body 1, a plurality of equidistant transversely distributed second guide rollers 9 are horizontally connected between the two second supporting plates 10, and the two second supporting plates 10 are located between the two first supporting plates 6.
[0027] The four first supporting plates 6 are movably connected in the box body 1 by the telescopic rods 12, the first supporting plates 6, the second sliding grooves 24, the second sliding blocks 25 and the second springs 26, a plurality of first guide rollers 7 are drivingly connected between each of the two first supporting plates 6 by the gears and the driving motor 11, the glass is clamped and fed, the position deviation of the glass is avoided during automatic feeding of the glass, the effect of glass coating is affected, and the first guide rollers 7 can clamp and feed the glass with different widths without manually adjusting the distance between the two groups of first guide rollers 7.
[0028] Working principle: in use, first, the glass to be plated from the inlet 8 of the box 1 is put into the box 1, and when the glass is put in, the bottom of the glass is attached to the top surface of the cushion block 3 at the inlet 8, when the glass enters the inlet 8, the brush plate 21 rises, the guide rod 18 is retracted into the first blind hole 14, and the first spring 16 is compressed, so that the bottom surface of the brush plate 21 is attached to the top surface of the glass, and the side surface of the glass is clamped between the two groups of first guide rollers 7, the two groups of first guide rollers 7 are reversely displaced according to the width of the glass entering, and automatically adjust the distance, so that the two sides of the glass are clamped and fixed by the two groups of guide rollers, and the bottom surface of the glass is attached to the top surface of the second guide roller 9, and the driving motor 11 drives the plurality of first guide rollers 7 to rotate in the same direction through the first gear 13 and the second gear 27, the glass moves towards the inside of the box 1 under the traction of the rotating first guide rollers 7, and at the same time, the brush plate 21 is always attached to the top surface of the glass under the pushing of the compressed first spring 16, and the dust on the top surface of the glass is cleaned, when the glass moves to the position directly below the atomizing nozzle 5, the liquid in the liquid storage tank 4 enters the atomizing nozzle 5 through the water pipe, and the top surface of the glass is plated by the atomizing nozzle 5, and when the glass plating is completed, it leaves the box 1 from the discharge port 2, thereby completing the plating of the glass.
[0029] Finally, it should be pointed out that: the above only preferred embodiments of the present application, and not for limiting the present application, although the foregoing detailed description of the present application, for the person skilled in the art, it still can be modified, or part of the technical features of the equivalent replacement, within the spirit and principles of the present application, any modification, equivalent replacement, improvement, etc., should be included in the scope of protection of the present application.
Claims
1. A coating device for glass processing, comprising a box (1), the bottom surface of which is vertically fixed to support legs, characterized in that: The left and right sides of the box (1) are respectively penetrated by the feeding port (8) and the discharging port (2), the lower edges of the feeding port (8) and the discharging port (2) are provided with the cushion block (3), the cushion block (3) is fixedly connected with the box (1), the upper edge of the feeding port (8) is vertically provided with two mirror-symmetrical first blind holes (14), each of the first blind holes (14) is axially slidably connected with a guide rod (18), the two guide rods (18) are fixedly connected with a base block (19), the bottom surface of the base block (19) is provided with a brush plate (21), the inside of the box (1) is movably connected with two groups of vertical first guide rollers (7), between the two groups of first guide rollers (7), a group of horizontal second guide rollers (9) are arranged, and the second guide rollers (9) are movably connected in the box (1).
2. The coating apparatus for processing glass according to claim 1, wherein: The inside of the box (1) is movably connected with two pairs of mirror-symmetrical first support plates (6), between each of the two pairs of first support plates (6), a plurality of equidistant transversely distributed first guide rollers (7) are vertically rotatably connected, the top surface of each of the first guide rollers (7) is fixedly sleeved with a first gear (13), each of the two first gears (13) is jointly meshed with a second gear (27), the second gear (27) is rotatably connected to the bottom surface of the upper end first support plate (6), the top surface of the upper end first support plate (6) is vertically fixed with a driving motor (11), the output end of the driving motor (11) is in transmission connection with the top surface of one of the first guide rollers (7), the bottom wall of the box (1) is longitudinally provided with two mirror-symmetrical second sliding grooves (24), two front and rear mirror-symmetrical second springs (26) are horizontally fixed in each of the second sliding grooves (24), the end of each of the second springs (26) is fixed with a second sliding block (25), two second sliding blocks (25) are slidably connected in each of the second sliding grooves (24), the bottom surface of each of the lower end first support plates (6) is fixed with two second sliding blocks (25), each of the first support plates (6) is horizontally fixed with two left and right mirror-symmetrical telescopic rods (12), and the telescopic rods (12) are horizontally fixed on the inner wall of the box (1).
3. The apparatus according to claim 1, wherein: Each of the first blind holes (14) is axially provided with two radially symmetrical first sliding grooves (15), each of the first sliding grooves (15) is slidably connected with a first sliding block (17), the first sliding block (17) is fixedly connected with the guide rod (18), and each of the first blind holes (14) is vertically fixed with a first spring (16) fixed to the top surface of the guide rod (18).
4. The coating apparatus for processing glass according to claim 1, wherein: The bottom surface of the base block (19) is vertically provided with a second blind hole (20) at each corner, each of the second blind holes (20) is vertically fixed with a permanent magnet block (23), each of the second blind holes (20) is axially inserted with a metal block (22) magnetically connected with the permanent magnet block (23), and each of the metal blocks (22) is vertically fixed to the top surface of the brush plate (21).
5. The apparatus for coating glass according to claim 2, wherein: The inner wall bottom surface of the box (1) is fixed with two front and rear mirror-symmetrical second support plates (10), a plurality of equidistant transversely distributed second guide rollers (9) are connected horizontally between the two second support plates (10), and the two second support plates (10) are located between the two first support plates (6).
6. The apparatus for coating glass according to claim 1, wherein: The top surface of the box (1) is fixedly connected with a liquid storage tank (4), the bottom surface of the liquid storage tank (4) is vertically communicated with a water pipe, the water pipe penetrates through the box (1) and extends into the box (1), and the water pipe is fixedly communicated with an atomizing spray head (5).