LOW-E glass vacuum coating device

By designing the dewatering structure and drying chamber of the LOW-E glass vacuum coating device, the production cost and damage problems caused by residual moisture and temperature changes in traditional devices were solved, and an efficient and stable coating process was achieved.

CN120757312APending Publication Date: 2025-10-10河北金石信远新材料科技有限公司
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Patent Information

Application Number
CN202511022306.1
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-07-24
Publication Date
2025-10-10

AI Technical Summary

Technical Problem

Traditional coating devices leave residual moisture on the glass surface after cleaning, resulting in an excessively long drying channel, increasing production costs and time, and causing damage to the glass surface due to rapid temperature changes.

Method used

A LOW-E glass vacuum coating device was designed, which includes a water removal structure, a cleaning component, a drying chamber and a transmission mechanism. The device uses a water absorption plate to remove moisture, sprays detergent, dries with hot air and adopts a heat insulation design to prevent damage to the glass.

Benefits of technology

It can quickly remove moisture from the glass surface, shorten the drying channel, improve work efficiency, ensure the stability of the glass surface temperature, avoid damage, and improve the coating quality.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses a LOW-E glass vacuum coating device, and relates to the technical field of glass coating, the LOW-E glass vacuum coating device comprises a base, the top of the base is provided with a water removal structure, the water removal structure comprises a coating mechanism, a transmission mechanism I, a transmission mechanism II, a drying chamber, a water removal chamber, two protection plates, a guide rod, a reciprocating screw rod and a motor I, a transverse plate is fixedly arranged on the inner side of the water removal chamber, two first electric push rods are arranged at the top of the transverse plate, one ends of the first electric push rods penetrate through the transverse plate, one ends of the two first electric push rods are fixedly connected through a water absorption plate, and a sliding block is slidably connected between the exteriors of a guide rod and a reciprocating lead screw in a penetrating mode. According to the vacuum coating device for the LOW-E glass, moisture on the surface of a glass material can be rapidly removed through the water absorption plate, subsequent rapid drying work is facilitated, meanwhile, the water absorption plate can be extruded, and the situation that the water removal effect is weaker and weaker due to long-time use of the water absorption plate is avoided.
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Description

TECHNICAL FIELD

[0001] The present application relates to the technical field of glass coating, in particular to a LOW-E glass vacuum coating device. BACKGROUND

[0002] Glass is an essential material for modern buildings, Low-E glass, also known as low-emissivity glass, is a film system product coated with multiple layers of metal or other compounds on the surface of the glass, which has excellent heat insulation effect and good light transmission. Low-E glass is therefore widely used. Before coating, it generally needs to be specially cleaned to ensure the later coating work.

[0003] However, the traditional coating device usually uses cleaning agent to clean and then heats and blows dry before transmission for coating when cleaning the glass. However, there is still a lot of water on the surface of the glass after cleaning. If the surface is to be dried, the length of the drying channel of the production line needs to be lengthened, which not only increases the production cost and time, but also requires the surface temperature of the glass to be moderate before coating. The temperature of the surface of the glass is increased after a long time of drying, and then the glass is cooled. The alternating hot and cold air in this process will cause the glass to be damaged due to rapid temperature change, thereby affecting its use. Therefore, the present application provides a LOW-E glass vacuum coating device. SUMMARY

[0004] The main purpose of the present application is to provide a LOW-E glass vacuum coating device which can effectively solve the technical problems in the background art.

[0005] To achieve the above-mentioned purpose, the technical scheme adopted by the present application is as follows:

[0006] A LOW-E glass vacuum coating device, comprising a base, wherein the top of the base is provided with a water removal structure;

[0007] The water removal structure comprises a coating mechanism, a transmission mechanism one, a transmission mechanism two, a drying chamber, a water removal chamber, two protective plates, a guide rod, a reciprocating screw rod, and a motor one, the inner side of the water removal chamber is fixedly provided with a horizontal plate, the top of the horizontal plate is provided with two electric push rods one, one end of the electric push rod one penetrates through the horizontal plate, and the two electric push rods one are fixedly connected through a water absorption plate at one end, the guide rod and the reciprocating screw rod are slidably connected through a sliding block between the outer portions thereof, the top of the sliding block is fixedly provided with a fixed block on both sides, the outer portion of the fixed block is provided with an electric push rod two, and one end of the electric push rod two is fixedly connected with a storage rack, the inner side of the storage rack is rotatably provided with two water pressing rollers.

[0008] As a preferred technical scheme of the present application, the water removal structure further comprises a cleaning assembly, the cleaning assembly comprising a hydraulic cylinder, a cross pipe, the hydraulic cylinder being arranged at the top of the water removal chamber, one end of the hydraulic cylinder being fixedly connected with a storage frame penetrating through the water removal chamber, the inner side of the storage frame being provided with a plurality of motor twos, a plurality of mounting plates, and the output shaft of the motor two being fixedly connected with a cleaning disc penetrating through the storage frame, the cross pipe and the mounting plate being fixedly connected penetratingly, the outer side of the cross pipe being provided with a plurality of spray heads, and one end of the cross pipe being provided with a connecting head.

[0009] As a preferred technical scheme of the present application, the top of the water removal chamber is fixedly provided with a water tank, the top of the water tank is provided with a water pump and a water inlet, the outer side of the water pump is fixedly provided with a water outlet pipe, one end of the water outlet pipe penetrates through the water removal chamber, and an external water pipe is connected between the connecting head and the water outlet pipe before use.

[0010] As a preferred technical scheme of the present application, the inner side of the drying chamber is fixedly provided with a partition plate and a plurality of blowing mechanisms, the outer side of the drying chamber is provided with a heating box, one end of the blowing mechanism penetrates through the drying chamber, and the other end of the heating box penetrates through and is fixedly connected.

[0011] As a preferred technical scheme of the present application, the film coating mechanism, the first transmission mechanism and the second transmission mechanism are fixedly connected with the base, and the drying chamber and the water removal chamber are fixedly connected with the first transmission mechanism.

[0012] As a preferred technical scheme of the present application, the protective plate and the first transmission mechanism are fixedly connected, the guide rod and the first transmission mechanism are fixedly connected penetratingly, the reciprocating screw rod and the first transmission mechanism are rotatably connected penetratingly, and one end of the reciprocating screw rod is fixedly connected with the output shaft of the motor one.

[0013] As a preferred technical scheme of the present application, the outer sides of the first transmission mechanism and the second transmission mechanism are both provided with a taking and placing structure, the taking and placing structure comprising two mounting frames, a storage plate, the mounting frame and the corresponding first transmission mechanism and second transmission mechanism being fixedly connected, the outer side of the mounting frame being provided with an electric push rod three, one end of the electric push rod three penetrating through the mounting frame and being fixedly connected with the storage plate, the top of the storage plate being provided with two multi-stage electric telescopic rods, and one end of the multi-stage electric telescopic rod being fixedly connected with a suction disc penetrating through the storage plate.

[0014] As a preferred technical scheme of the present application, one of the taking and placing structures further comprises a linkage assembly, the linkage assembly comprising a fixed plate, a baffle, two linkage plates and two sliding groove plates, the outer side of the fixed plate being provided with two movable rods penetratingly, the two ends of the two movable rods being fixedly connected through the baffle and the connecting plate respectively, two springs being arranged between the fixed plate and the baffle, the two ends of the connecting plate being fixedly provided with connecting rods, one end of the connecting rod being fixedly provided with a fixed frame, and one end of the fixed frame being rotatably provided with a guide roller.

[0015] As a preferred technical scheme of the present application, the fixed plate is fixedly connected with the water removal chamber, the outer portion of the baffle is fixedly provided with a soft plate, the linkage plate is fixedly connected with the corresponding position of the storage plate, the guide roller is adaptively matched with the linkage plate, the spring is located at the periphery of the corresponding movable rod, the chute plate is fixedly connected with the transmission mechanism, and the linkage plate is adaptively matched with the chute plate, and the water absorption plate and the soft plate are both made of sponge material.

[0016] As a preferred technical scheme of the present application, the top of the base is provided with a collection structure, the collection structure comprises a collection plate and a liquid storage tank, the collection plate is fixedly connected with the transmission mechanism, the liquid storage tank is fixedly connected with the base and the transmission mechanism, the liquid storage tank is fixedly connected with a drain pipe, the transmission mechanism is penetrated by the drain pipe, and the liquid storage tank is provided with a notch at the outer portion, the collection plate is arranged in an inclined manner, and the collection plate is adaptively matched with the notch of the liquid storage tank.

[0017] Compared with the prior art, the present application has the following beneficial effects:

[0018] 1. By arranging the water removal structure, the device can quickly scrape off the water on the surface of the glass material, facilitating the subsequent drying work. Since most of the water on the surface of the glass material is scraped off, the subsequent drying channel does not need to be too long, and the glass surface can be dried, improving the working efficiency of the device. After the water on the surface of the glass material is scraped off by the water absorption plate, the water is squeezed out by the water roller reciprocatingly moved by the motor, avoiding the situation that the water absorption effect of the water absorption plate decreases with time.

[0019] 2. By arranging the cleaning assembly in cooperation with the water removal structure, the surface of the glass material can be sprayed with cleaning agent, and the dust on the surface of the glass material can be cleaned by the cleaning agent cooperating with the cleaning disc, ensuring the quality of the subsequent film plating.

[0020] 3. By arranging the taking and placing structure in cooperation with the water removal structure, the glass material to be plated can be taken and placed on the transmission mechanism one for conveying work, and the glass material after plating can be unloaded, so that the glass material after plating is taken off from the transmission mechanism two and placed on the external receiving device.

[0021] 4. By arranging the linkage assembly in cooperation with the taking and placing structure, the up and down movement of the baffle can be controlled during the movement of the storage plate, the baffle can be moved up when the storage plate moves for taking work, the obstruction of the transmission mechanism one is removed, the transmission mechanism one can work normally, the baffle can be moved down to block the glass material when the storage plate returns to the initial position, the contact and collision between adjacent two glass materials can be avoided, and the squeezing work of the water roller on the water absorption plate is facilitated.

[0022] 5、By setting the collection structure matches the water removal structure, it is beneficial to collect the cleaning agent sprayed by the nozzle and the cleaning agent scraped by the water absorption plate, avoids the influence of the cleaning agent on the normal work of the device, and cooperates with the external wastewater treatment equipment to treat the collected cleaning agent. BRIEF DESCRIPTION OF DRAWINGS

[0023] Figure 1 It is a whole three-dimensional structure schematic view of the LOW-E glass vacuum coating device;

[0024] Figure 2 It is a sectional three-dimensional structure schematic view of the water removal chamber of the LOW-E glass vacuum coating device;

[0025] Figure 3 It is a three-dimensional structure schematic view of the protection plate of the LOW-E glass vacuum coating device;

[0026] Figure 4 It is a sectional three-dimensional structure schematic view of the water removal chamber of the LOW-E glass vacuum coating device; Figure 3 It is an enlarged view of A in the middle;

[0027] Figure 5 It is a three-dimensional structure schematic view of the storage frame of the LOW-E glass vacuum coating device;

[0028] Figure 6 It is a sectional side view structure schematic view of the water removal chamber of the LOW-E glass vacuum coating device;

[0029] Figure 7 It is a sectional three-dimensional structure schematic view of the drying chamber of the LOW-E glass vacuum coating device;

[0030] Figure 8 It is a three-dimensional structure schematic view of the storage plate of the LOW-E glass vacuum coating device;

[0031] Figure 9 It is a three-dimensional structure schematic view of the soft body plate of the LOW-E glass vacuum coating device;

[0032] Figure 10 It is a three-dimensional structure schematic view of the sliding groove plate of the LOW-E glass vacuum coating device;

[0033] Figure 11 It is a three-dimensional structure schematic view of the liquid storage tank of the LOW-E glass vacuum coating device;

[0034] Figure 12 It is a sectional front view structure schematic view of part of the structure of the LOW-E glass vacuum coating device;

[0035] Figure 13 It is a schematic diagram of the overall front view structure of the LOW-E glass vacuum coating device of the present application.

[0036] Figure 14 It is a schematic diagram of the overall side view structure of the LOW-E glass vacuum coating device of the present application.

[0037] In the figure: 1, base; 2, water removal structure; 3, taking and placing structure; 4, collection structure; 5, coating mechanism; 6, transmission mechanism one; 7, transmission mechanism two; 8, drying chamber; 9, water removal chamber; 10, cross plate; 11, electric push rod one; 12, water absorption plate; 13, protective plate; 14, guide rod; 15, reciprocating screw rod; 16, motor one; 17, sliding block; 18, fixed block; 19, electric push rod two; 20, storage rack; 21, water pressing roller; 22, hydraulic cylinder; 23, storage frame; 24, motor two; 25, cleaning disc; 26, cross pipe; 27, mounting plate; 28, spray head; 29, connecting head; 30, water tank; 31, water pump; 32, water inlet; 33, water outlet pipe; 34, partition plate; 35, heating box; 36, blowing mechanism; 37, mounting bracket; 38, electric push rod three; 39, storage plate; 40, multi-stage electric telescopic rod; 41, suction cup; 42, fixed plate; 43, baffle; 44, linkage plate; 45, movable rod; 46, connecting plate; 47, spring; 48, connecting rod; 49, fixed bracket; 50, guide roller; 51, sliding chute plate; 52, collection plate; 53, liquid storage tank; 54, drain pipe. DETAILED DESCRIPTION

[0038] In order to make the technical means, creative features, purposes and effects realized by the present application easy to understand, the present application is further described below in combination with specific embodiments.

[0039] As Figures 1-14 shown, a LOW-E glass vacuum coating device, comprising a base 1, the top of the base 1 is provided with a water removal structure 2;

[0040] The water removing structure 2 comprises a coating mechanism 5, a conveying mechanism one 6, a conveying mechanism two 7, a drying chamber 8, a water removing chamber 9, two protective plates 13, a guide rod 14, a reciprocating wire rod 15, a motor one 16, the inner side of the water removing chamber 9 is fixedly provided with a horizontal plate 10, the top of the horizontal plate 10 is provided with two electric push rods one 11, one end of the electric push rod one 11 penetrates through the horizontal plate 10, and the two electric push rods one 11 are fixedly connected through the water absorbing plates 12, the guide rod 14 and the reciprocating wire rod 15 are slidably connected through the sliding block 17, the top of the sliding block 17 is fixedly provided with the fixed block 18, the outer side of the fixed block 18 is provided with the electric push rod two 19, and one end of the electric push rod two 19 penetrates through the fixed block 18 and is fixedly connected with the storage rack 20, and the inner side of the storage rack 20 is rotatably provided with two water pressing rollers 21.

[0041] The water removing structure 2 can quickly remove the water on the surface of the glass material, which facilitates the subsequent drying work. Since most of the water on the surface of the glass material is removed, the subsequent drying channel does not need to be too long, and the glass surface can be dried, thereby improving the working efficiency of the device. After the water on the surface of the glass material is removed by the water absorbing plates 12, the water is pressed by the water pressing rollers 21. The water pressing rollers 21 are moved back and forth by the motor one 16 to press out the water on the water absorbing plates 12, thereby avoiding the situation that the water absorbing effect of the water absorbing plates 12 decreases with time.

[0042] In the embodiment, the water removing structure 2 further comprises a cleaning assembly. The cleaning assembly comprises a hydraulic cylinder 22 and a horizontal pipe 26. The hydraulic cylinder 22 is arranged at the top of the water removing chamber 9. One end of the hydraulic cylinder 22 penetrates through the water removing chamber 9 and is fixedly connected with a storage frame 23. The inner side of the storage frame 23 is provided with a plurality of motors two 24 and a plurality of mounting plates 27. The output shaft of the motor two 24 penetrates through the storage frame 23 and is fixedly connected with a cleaning disc 25. The horizontal pipe 26 and the mounting plate 27 are fixedly connected. The outer side of the horizontal pipe 26 is provided with a plurality of nozzles 28. One end of the horizontal pipe 26 is provided with a connector 29.

[0043] The cleaning assembly cooperates with the water removing structure 2 to spray the cleaning agent on the surface of the glass material. The cleaning agent cooperates with the cleaning disc 25 to clean the dust on the surface of the glass material, thereby ensuring the quality of the subsequent coating.

[0044] In the embodiment, the top of the water removing chamber 9 is fixedly provided with a water tank 30. The top of the water tank 30 is provided with a water pump 31 and a water inlet 32. The outer side of the water pump 31 is fixedly provided with a water outlet pipe 33. One end of the water outlet pipe 33 penetrates through the water removing chamber 9. Before use, an external water pipe is connected between the connector 29 and the water outlet pipe 33.

[0045] The external water pipe connected with the water pump 31 and the water outlet pipe 33 cooperates with the connector 29 to pump the cleaning agent in the water tank 30 into the horizontal pipe 26 and spray it out through the nozzles 28.

[0046] In this embodiment, a partition 34 and several air blowing mechanisms 36 are fixedly installed on the inner side of the drying chamber 8, and a heating box 35 is installed outside the drying chamber 8. One end of the air blowing mechanism 36 passes through the drying chamber 8 and one end of the heating box 35 and is fixedly connected.

[0047] The partition 34 divides the inner space of the drying chamber 8 into two parts, one part is used for drying the glass material, and the other part has a natural cooling work after drying.

[0048] In this embodiment, the coating mechanism 5 , the transmission mechanism 1 6 , and the transmission mechanism 2 7 are all fixedly connected to the base 1 , and the drying chamber 8 and the dewatering chamber 9 are all fixedly connected to the transmission mechanism 1 6 .

[0049] The first transmission mechanism 6 and the second transmission mechanism 7 are used to transmit the glass material.

[0050] In this embodiment, the protective plate 13 is fixedly connected to the transmission mechanism 6, the guide rod 14 is fixedly connected to the transmission mechanism 6 through it, the reciprocating screw rod 15 is rotatably connected to the transmission mechanism 6 through it, and one end of the reciprocating screw rod 15 is fixedly connected to the output shaft of the motor 16.

[0051] The protective plate 13 can protect the reciprocating screw 15 and the guide rod 14 to prevent the detergent from directly contacting the reciprocating screw 15 and corroding it, and a reserved hole is opened in the middle of the slider 17 for drainage.

[0052] In this embodiment, a pick-and-place structure 3 is provided on the outside of the transmission mechanism 1 6 and the transmission mechanism 2 7. The pick-and-place structure 3 includes two mounting frames 37 and a storage plate 39. The mounting frames 37 are fixedly connected to the transmission mechanism 1 6 and the transmission mechanism 2 7 at the corresponding positions. An electric push rod 38 is provided on the outside of the mounting frame 37, and one end of the electric push rod 38 passes through the mounting frame 37 and is fixedly connected to the storage plate 39. Two multi-stage electric telescopic rods 40 are provided on the top of the storage plate 39, and one end of the multi-stage electric telescopic rod 40 passes through the storage plate 39 and is fixedly connected to a suction cup 41.

[0053] The pick-and-place structure 3 cooperates with the water removal structure 2 to pick up the glass material that needs to be coated and place it on the transmission mechanism 1 6 for transmission, and can unload the glass material that has completed the coating, so that the glass material that has completed the coating is taken off from the transmission mechanism 2 7 and placed on the receiving device of the peripheral device.

[0054] In the embodiment, the one of the taking and placing structure 3 further comprises a linkage assembly, the linkage assembly comprises a fixed plate 42, a baffle plate 43, two linkage plates 44, and two sliding groove plates 51, two movable rods 45 are arranged through the outside of the fixed plate 42, the two ends of the two movable rods 45 are fixedly connected through the baffle plate 43 and the connecting plate 46 respectively, two springs 47 are arranged between the fixed plate 42 and the baffle plate 43, the two ends of the connecting plate 46 are fixedly provided with connecting rods 48, one end of the connecting rod 48 is fixedly provided with a fixed frame 49, and the fixed frame 49 is rotatably provided with a guide roller 50.

[0055] The linkage assembly cooperates with the taking and placing structure 3 to control the up-down movement of the baffle plate 43 during the movement of the storage plate 39, can move upwards when the storage plate 39 moves to take, remove the obstruction of the transmission mechanism one 6, so that the transmission mechanism one 6 can work normally, and can move downwards to block the glass material when the storage plate 39 returns to the initial position, so as to avoid the collision of the adjacent two glass materials, and facilitate the extrusion work of the water pressing roller 21 on the water absorbing plate 12.

[0056] In the embodiment, the fixed plate 42 is fixedly connected with the water removing chamber 9, the outside of the baffle plate 43 is fixedly provided with a soft plate, the linkage plate 44 is fixedly connected with the storage plate 39 at the corresponding position, the guide roller 50 is adaptively matched with the linkage plate 44, the spring 47 is located at the periphery of the corresponding movable rod 45, the sliding groove plate 51 is fixedly connected with the transmission mechanism one 6, and the linkage plate 44 and the sliding groove plate 51 are adaptively matched, and the water absorbing plate 12 and the soft plate are both made of sponge material.

[0057] Since the soft plate made of sponge material is arranged outside the baffle plate 43, the contact part will not be damaged when the glass material is blocked.

[0058] In the embodiment, the top of the base 1 is provided with a collecting structure 4, the collecting structure 4 comprises a collecting plate 52 and a liquid storage tank 53, the collecting plate 52 is fixedly connected with the transmission mechanism one 6, the liquid storage tank 53 is fixedly connected with the base 1 and the transmission mechanism one 6, the liquid storage tank 53 is fixedly connected with a drain pipe 54, the transmission mechanism one 6 is penetrated by the drain pipe 54, and the outside of the liquid storage tank 53 is provided with a notch, the collecting plate 52 is arranged in an inclined manner, and the collecting plate 52 and the notch of the liquid storage tank 53 are adaptively matched.

[0059] The collecting structure 4 cooperates with the water removing structure 2 to collect the cleaning agent sprayed by the spray head 28 and the cleaning agent scraped by the water absorbing plate 12, so as to avoid the influence of the cleaning agent on the normal work of the device, and cooperates with the external wastewater treatment equipment to treat the collected cleaning agent.

[0060] It needs to be explained that the present application is a kind of LOW-E glass vacuum coating device, before use, the device is placed in the required place, between the connector 29 and the water outlet pipe 33, the water pipe is connected, through the water inlet 32, the cleaning agent is poured into the water tank 30, the wastewater treatment equipment is connected outside the drain pipe 54, so that it can reach the working condition, Figure 1 The initial state of the device;

[0061] In the initial state of the device, according to the thickness of the glass material, the hydraulic cylinder 22 is started to make the cleaning disc 25 descend to the predetermined position and stop, the electric push rod one 11 is started to make the water absorption plate 12 descend to the predetermined position and stop, at the same time, the motor two 24 is started to rotate the cleaning disc 25, and the water pump 31 is started to work, so that the cleaning agent is sprayed from the nozzle 28, the heating box 35 is started to make the air blowing mechanism 36 work, the glass material is placed on the base 1 at the position of the transmission mechanism one 6, the transmission mechanism one 6 and the transmission mechanism two 7 are started, and the electric push rod three 38 on the transmission mechanism one 6 is started to make the placing plate 39 move towards the direction of the placed glass material until it stops at the predetermined position, the placing plate 39 moves while the linkage plate 44 moves synchronously, the linkage plate 44 acts on the guide roller 50 to move on the fixed frame 49, and then the fixed frame 49 moves synchronously with the connecting plate 46 and the movable rod 45, finally the baffle 43 moves upwards with the movement of the placing plate 39, the baffle 43 moves out of the gap of the transmission mechanism one 6, at this time, the baffle 43 does not hinder the transmission work of the transmission mechanism one 6, the multi-stage electric telescopic rod 40 is started to make the suction cup 41 descend, and when the suction cup 41 adsorbs the glass material, it moves upwards to the predetermined position through the multi-stage electric telescopic rod 40 and stops, then the electric push rod three 38 is started to make the placing plate 39 move towards the initial position until it stops when the placing plate 39 returns to the initial position, during the movement of the placing plate 39 towards the initial position, the linkage plate 44 and the spring 47 act on the baffle 43 to gradually descend and return to the initial position, when the placing plate 39 returns to the initial position, the baffle 43 also returns to the initial position to block the transmission work of the transmission mechanism one 6;

[0062] After the placing plate 39 returns to the initial position, the multi-stage electric telescopic rod 40 is started to make the suction cup 41 descend with the glass material until it is placed on the transmission mechanism one 6 and stops, then the multi-stage electric telescopic rod 40 is started to make the suction cup 41 return to the initial position and stop, under the action of the transmission mechanism one 6, the glass material is transmitted and blocked when passing through the baffle 43, because the soft plate outside the baffle 43 is made of sponge material, the edge contact position of the glass material will not be damaged;

[0063] When the electric push rod three 38 is started to make the placing plate 39 move to take the next glass material, the baffle 43 moves up to contact the previous glass material to block it from entering the water removal chamber 9 for cleaning and water removal work. When the glass material passes through the nozzle 28, it is sprayed with cleaning agent, and when it passes through the cleaning disc 25, it is cleaned by the cleaning disc 25 with cleaning agent to clean the dust on its surface. When the glass material passes through the water absorption plate 12, the water absorption plate 12 presses on the surface of the glass material to block and absorb the water on its surface. The water sprayed by the nozzle 28 and the blocked water flows onto the collection plate 52. Since the collection plate 52 is inclined, the water will flow directly into the inside of the storage tank 53. The waste water in the storage tank 53 will be discharged by the drain pipe 54 into the external waste water treatment equipment for treatment. After the glass material passes through the water absorption plate 12, most of the water on its surface is scraped off, and when it passes through the drying chamber 8, it is dried by the hot air blown by the blowing mechanism 36. Since the partition plate 34 divides the inside of the drying chamber 8 into two parts, the glass material dried by the blowing mechanism 36 will pass through a natural cooling area to cool down, and then enter the coating mechanism 5 to be coated. After coating is completed, it is conveyed by the transmission mechanism two 7. Due to the setting of the baffle 43, the device can achieve the effect of intermittent transmission, ensuring that each glass material does not contact during the transmission process before and after coating, avoiding collision between adjacent two glass materials during the transmission process, which may cause damage and affect use;

[0064] The multi-stage electric telescopic rod 40 on the transmission mechanism two 7 is started to make the suction cup 41 move down to adsorb the glass material after coating, then move up, and then move to the predetermined position by the electric push rod three 38 and stop. Then the multi-stage electric telescopic rod 40 makes the glass material after coating move down to the external receiving equipment, and finally the electric push rod three 38 and the multi-stage electric telescopic rod 40 make the placing plate 39 return to the initial position to unload the next glass material after coating;

[0065] Furthermore, due to the time interval of the moving stroke of the electric push rod three 38 and the multi-stage electric telescopic rod 40 on the transmission mechanism 6, and due to the setting of the baffle 43, the adjacent two pieces of glass materials have a certain time interval during the transmission. When a piece of glass material passes through the working range of the water absorption plate 12, the electric push rod one 11 is started to make the water absorption plate 12 move downward to a predetermined position and then stop. At this time, the horizontal positions of the water absorption plate 12 and the water pressing roller 21 are matched. The electric push rod two 19 is started to make the water pressing roller 21 move towards the water absorption plate 12. Since the water absorption plate 12 is made of sponge material, when the water pressing roller 21 extrudes the water absorption plate 12 to a predetermined position and then stops, the motor one 16 is started to make the reciprocating screw rod 15 rotate, and then make the sliding block 17 with the water pressing roller 21 slide back and forth on the outside of the reciprocating screw rod 15 and the guide rod 14 until the water on the water absorption plate 12 is extruded out and then stops. Through the electric push rod one 11 and the electric push rod two 19, the water absorption plate 12 and the water pressing roller 21 return to the initial position and then stop.

Claims

1. A Low-E glass vacuum coating device, comprising a base (1), characterized in that: A water removal structure (2) is provided on the top of the base (1); The dewatering structure (2) includes a coating mechanism (5), a transmission mechanism 1 (6), a transmission mechanism 2 (7), a drying chamber (8), a dewatering chamber (9), two protective plates (13), a guide rod (14), a reciprocating screw rod (15), and a motor 1 (16). A horizontal plate (10) is fixedly provided on the inner side of the dewatering chamber (9). Two electric push rods 1 (11) are provided on the top of the horizontal plate (10). One end of the electric push rod 1 (11) passes through the horizontal plate (10), and the two electric push rods One end of the first (11) is fixedly connected through a water absorption plate (12), a slider (17) is slidably connected between the outside of the guide rod (14) and the reciprocating screw rod (15), and a fixed block (18) is fixedly provided on both sides of the top of the slider (17), and an electric push rod (19) is provided on the outside of the fixed block (18), and one end of the electric push rod (19) passes through the fixed block (18) and is fixedly connected to a storage rack (20), and two water pressure rollers (21) are rotatably provided on the inner side of the storage rack (20).

2. The Low-E glass vacuum coating device according to claim 1, characterized in that: The dewatering structure (2) further includes a cleaning assembly, which includes a hydraulic cylinder (22) and a transverse pipe (26). The hydraulic cylinder (22) is arranged at the top of the dewatering chamber (9), one end of the hydraulic cylinder (22) passes through the dewatering chamber (9) and is fixedly connected to a storage frame (23), a plurality of motors (24) and a plurality of mounting plates (27) are arranged on the inner side of the storage frame (23), and the output shaft of the motor (24) passes through the storage frame (23) and is fixedly connected to a cleaning disc (25), the transverse pipe (26) and the mounting plate (27) are fixedly connected, a plurality of nozzles (28) are arranged on the outside of the transverse pipe (26), and a connector (29) is arranged at one end of the transverse pipe (26).

3. The Low-E glass vacuum coating device according to claim 2, characterized in that: A water tank (30) is fixedly provided on the top of the dewatering chamber (9), a water pump (31) and a water inlet (32) are provided on the top of the water tank (30), a water outlet pipe (33) is fixedly provided on the outside of the water pump (31), and one end of the water outlet pipe (33) passes through the dewatering chamber (9), and an external water pipe is connected between the connector (29) and the water outlet pipe (33) before use.

4. The Low-E glass vacuum coating device according to claim 1, characterized in that: A partition (34) and a plurality of air blowing mechanisms (36) are fixedly provided on the inner side of the drying chamber (8), a heating box (35) is provided on the outside of the drying chamber (8), and one end of the air blowing mechanism (36) passes through the drying chamber (8) and one end of the heating box (35) and is fixedly connected.

5. The Low-E glass vacuum coating device according to claim 1, characterized in that: The coating mechanism (5), the transmission mechanism 1 (6), and the transmission mechanism 2 (7) are all fixedly connected to the base (1), and the drying chamber (8) and the dewatering chamber (9) are all fixedly connected to the transmission mechanism 1 (6).

6. The Low-E glass vacuum coating device according to claim 1, characterized in that: The protective plate (13) is fixedly connected to the transmission mechanism (6), the guide rod (14) is fixedly connected to the transmission mechanism (6), the reciprocating screw (15) is rotatably connected to the transmission mechanism (6), and one end of the reciprocating screw (15) is fixedly connected to the output shaft of the motor (16).

7. The Low-E glass vacuum coating device according to claim 1, characterized in that: The outside of the transmission mechanism 1 (6) and the transmission mechanism 2 (7) are both provided with a pick-and-place structure (3), and the pick-and-place structure (3) includes two mounting frames (37) and a storage plate (39). The mounting frames (37) are fixedly connected to the transmission mechanism 1 (6) and the transmission mechanism 2 (7) at corresponding positions. The outside of the mounting frames (37) is provided with an electric push rod 3 (38), and one end of the electric push rod 3 (38) passes through the mounting frame (37) and is fixedly connected to the storage plate (39). The top of the storage plate (39) is provided with two multi-stage electric telescopic rods (40), and one end of the multi-stage electric telescopic rod (40) passes through the storage plate (39) and is fixedly connected to a suction cup (41).

8. The Low-E glass vacuum coating device according to claim 7, characterized in that: One of the pick-and-place structures (3) further includes a linkage assembly, which includes a fixed plate (42), a baffle (43), two linkage plates (44), and two slide plates (51). Two movable rods (45) are provided on the outside of the fixed plate (42), and the two ends of the two movable rods (45) are fixedly connected by the baffle (43) and the connecting plate (46). Two springs (47) are provided between the fixed plate (42) and the baffle (43). Connecting rods (48) are fixedly provided at both ends of the connecting plate (46). A fixing frame (49) is fixedly provided at one end of the connecting rod (48), and a guide roller (50) is rotatably provided at one end of the fixing frame (49).

9. The Low-E glass vacuum coating device according to claim 8, characterized in that: The fixed plate (42) is fixedly connected to the dewatering chamber (9), a soft plate is fixedly provided on the outside of the baffle (43), the linkage plate (44) is fixedly connected to the storage plate (39) at the corresponding position, the guide roller (50) and the linkage plate (44) are adaptively matched, the spring (47) is located on the periphery of the corresponding movable rod (45), the chute plate (51) is fixedly connected to the transmission mechanism (6), and the linkage plate (44) and the chute plate (51) are adaptively matched, and the water absorption plate (12) and the soft plate are both made of sponge material.

10. The Low-E glass vacuum coating device according to claim 1, characterized in that: A collecting structure (4) is provided on the top of the base (1), and the collecting structure (4) includes a collecting plate (52) and a liquid storage tank (53). The collecting plate (52) is fixedly connected to a transmission mechanism (6). The liquid storage tank (53) is fixedly connected to the base (1) and the transmission mechanism (6). A drainage pipe (54) is fixedly connected to the liquid storage tank (53). The transmission mechanism (6) is penetrated by the drainage pipe (54), and a notch is provided on the outside of the liquid storage tank (53). The collecting plate (52) is arranged in an inclined shape, and the notches of the collecting plate (52) and the liquid storage tank (53) are adaptively matched.