Reciprocating type glassy carbon graphite coating coating device

By designing a reciprocating glass carbon graphite coating device, which uses a sliding structure and infrared sensors to control the movement of the nozzle and combines it with a scraper to clean the material surface, the problem of existing devices being unable to perform reciprocating spraying and impurity removal is solved. This achieves complete spraying and impurity cleaning of the material surface and improves the practicality of the device.

CN223642088UActive Publication Date: 2025-12-09JIANGXI XINRONG LITHIUM ELECTRIC MATERIALS CO LTD
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Patent Information

Application Number
CN202520269617.7
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-02-20
Publication Date
2025-12-09
Estimated Expiration
2035-02-20

AI Technical Summary

Technical Problem

Existing coating equipment cannot perform reciprocating spraying, resulting in incomplete coating of the material surface and difficulty in removing impurities from the material surface, making it inconvenient to use.

Method used

A reciprocating glass carbon graphite coating device was designed, which includes a sliding structure and a moving mechanism. The device uses an infrared sensor to control the movement of the nozzle and combines a scraper to clean the material surface, thereby realizing reciprocating spraying and positioning of the material.

Benefits of technology

It achieves complete coating and impurity removal on the material surface, improves the practicality of the coating device and the coating effect, and reduces paint waste.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of coating devices, and particularly discloses a reciprocating type glassy carbon graphite coating coating device which comprises a base, an air cylinder I is mounted on the surface of the base, and a shell is mounted on the surface of the base; a sliding structure is arranged in the shell, and the sliding structure is characterized in that a coating material box is installed on the surface of the shell, a pump body is connected to the surface of the shell, one end of the pump body is connected with the coating material box, one side of the pump body is connected with a pipeline, and a second air cylinder is embedded in the inner wall of the coating material box. According to the reciprocating type glassy carbon graphite coating coating device, a sliding structure is arranged, an infrared sensor is used for detecting materials, the infrared sensor controls a second air cylinder to move, the second air cylinder drives a spray head to move, the moving distance of the spray head can be controlled according to the size of the materials, and coating waste is reduced; and reciprocating spraying is conducted on the materials, and the practicability of the device is improved.
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Description

Technical Field

[0001] This utility model relates to the field of coating device technology, specifically a reciprocating glass carbon graphite coating device. Background Technology

[0002] Glassy carbon graphite coating is a coating formed by impregnating or coating a glassy carbon-like material onto a graphite substrate. This coating has many additional functions, possessing both the excellent electrical and thermal conductivity and high-temperature resistance of graphite itself, and the high hardness, strong chemical stability, low adsorption and release of impurity gases, and low dust generation of the glassy carbon-like coating. Compared with ordinary graphite materials, it has better wear resistance, thus providing a high-purity and low-pollution environment and effectively controlling the generation of graphite powder. Glassy carbon graphite coating can be widely used in the protection of graphite components such as single-crystal silicon pulling equipment parts and epitaxial growth parts, as well as graphite components such as high-temperature furnace linings and electrodes, improving the practicality of the items. In the application of glassy carbon graphite coating, it is usually applied through a coating device. However, existing coating devices cannot perform reciprocating spraying, which easily leads to incomplete coating on the material surface and is inconvenient to remove, making it relatively inconvenient to use. Utility Model Content

[0003] The purpose of this invention is to provide a reciprocating glass carbon graphite coating device to solve the problems mentioned in the background art, such as the inability to perform reciprocating spraying, which easily leads to incomplete coating on the material surface and inconvenience in removal, making it difficult to use.

[0004] To achieve the above objectives, this utility model provides the following technical solution: a reciprocating glass carbon graphite coating device, comprising a base, a cylinder mounted on the surface of the base, and a shell mounted on the surface of the base;

[0005] The housing has an internal sliding structure, which includes: a coating material box installed on the surface of the housing, a pump body connected to the surface of the housing, one end of the pump body connected to the coating material box, a pipe connected to one side of the pump body, a cylinder two embedded in the inner wall of the coating material box, a slide rod connected to the output shaft end of the cylinder two, both ends of the slide rod inserted into the inner wall of the coating material box, and the end of the pipe connected to the slide rod, a nozzle installed at the bottom of the pipe, and an infrared sensor installed inside the housing.

[0006] The base surface is provided with a moving mechanism, which includes: a baffle is installed on the base surface, and the end of cylinder one is connected to the baffle surface; a sliding groove is embedded in the base surface; a placement plate is installed on the base surface; the bottom of the placement plate is embedded in the sliding groove; one side of the placement plate is connected to the baffle; one side of the outer shell surface is open, and an electromagnet is connected to the opening; and a scraper is connected to the end of the electromagnet.

[0007] Preferably, the placement plate is positioned corresponding to the opening, and the baffle is positioned corresponding to the opening, with the baffle and the placement plate being slidably connected.

[0008] By adopting the above technical solution, the baffle can be moved to the opening to block the opening and prevent glass carbon graphite from overflowing during spraying.

[0009] Preferably, the groove is disposed inside the housing, and the housing and the placement plate are slidably connected.

[0010] Using the above technical solution, the cylinder pushes the placement plate to move, causing the placement plate to move along the inside of the slide groove, and causing the material on the surface of the placement plate to move into the inside of the outer shell.

[0011] Preferably, the slid groove and the placement plate are slidably connected, and the base and the placement plate are slidably connected.

[0012] Using the above technical solution, cylinder one is activated, causing airbag one to move the placement plate, which then slides inside the groove.

[0013] Preferably, the scraper is positioned corresponding to the placement plate, and the bottom of the scraper is set as an inclined plane.

[0014] Using the above technical solution, the scraper can clean the material surface and reduce the amount of residue adhering to the material surface.

[0015] Preferably, the inner wall of the coating material box is provided with a guide groove, and the end of the slide rod is located inside the guide groove of the coating material box, and the slide rod and the coating material box are slidably connected.

[0016] Using the above technical solution, cylinder two drives the scraper to move, causing the slide bar to slide within the inner wall of the coating material box.

[0017] Compared with the prior art, the beneficial effects of this utility model are: the reciprocating glass carbon graphite coating device:

[0018] 1. A sliding structure is set up, and an infrared sensor detects the material. The infrared sensor controls the movement of cylinder two, which in turn drives the nozzle to move. The distance the nozzle moves can be controlled according to the size of the material, reducing paint waste. Cylinder two drives the nozzle to move back and forth to spray the material repeatedly, improving the practicality of the device.

[0019] 2. A moving mechanism is provided for convenient material handling and placement. The material is placed on the placement plate, and a cylinder pushes the material into the housing through the placement plate to prevent paint from overflowing during spraying. At the same time, the scraper can scrape the surface of the material to remove impurities and improve the spraying effect. Attached Figure Description

[0020] Figure 1 This is a three-dimensional structural diagram of the present invention;

[0021] Figure 2 This is a three-dimensional structural diagram of the mounting plate of this utility model;

[0022] Figure 3 This is a three-dimensional structural diagram of the internal installation of the outer shell of this utility model;

[0023] Figure 4 This is a three-dimensional structural diagram of the slide rail installation of this utility model;

[0024] Figure 5 This is a three-dimensional structural diagram of the scraper installation of this utility model.

[0025] In the diagram: 10. Base; 20. Cylinder 1;

[0026] 30. Baffle; 301. Placement plate; 302. Slide groove; 303. Opening; 304. Scraper; 305. Electromagnet;

[0027] 40. Outer shell;

[0028] 50. Coating material box; 501. Pump body; 502. Pipeline; 503. Cylinder II; 504. Slide rod; 505. Nozzle; 506. Infrared sensor. Detailed Implementation

[0029] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.

[0030] Please see Figure 1-5This utility model provides a technical solution: a reciprocating glass carbon graphite coating device, including a base 10, a first cylinder 20, a baffle 30, a placement plate 301, a slide 302, an opening 303, a scraper 304, an electromagnet 305, a shell 40, a coating material box 50, a pump body 501, a pipe 502, a second cylinder 503, a slide bar 504, a nozzle 505, and an infrared sensor 506;

[0031] This glass-carbon-graphite coating device facilitates material placement. The specific implementation method is as follows:

[0032] A moving mechanism is provided on the surface of the base 10, and the moving mechanism includes: a baffle 30 installed on the surface of the base 10, and the end of the cylinder 20 connected to the surface of the baffle 30; a sliding groove 302 embedded in the surface of the base 10; a placement plate 301 installed on the surface of the base 10; the bottom of the placement plate 301 embedded in the sliding groove 302; and one side of the placement plate 301 connected to the baffle 30; an opening 303 on one side of the surface of the outer casing 40; an electromagnet 305 connected to the opening 303; and the end of the electromagnet 305 connected to... A scraper 304 is attached, the placement plate 301 is positioned corresponding to the opening 303, and the baffle 30 is positioned corresponding to the opening 303. The baffle 30 and the placement plate 301 are slidably connected. The slide groove 302 is located inside the housing 40, and the housing 40 and the placement plate 301 are slidably connected. The slide groove 302 and the placement plate 301 are slidably connected. The base 10 and the placement plate 301 are slidably connected. The scraper 304 is positioned corresponding to the placement plate 301, and the bottom of the scraper 304 is set as an inclined plane.

[0033] The material is placed on the surface of the placement plate 301. Cylinder 20 is activated, causing it to push the baffle 30 to move. The baffle 30 then pushes the placement plate 301, causing its bottom to slide within the groove 302. This allows the placement plate 301 to move on the surface of the base 10, moving the material along with it. When the material reaches the opening 303, the infrared sensor 506 detects that the material has entered the opening 303. The infrared sensor 506 then activates the control device. When the electromagnet 305 is energized, its end pushes the scraper 304 downward, causing the end of the scraper 304 to move to the surface of the material. The placement plate 301 continues to move the material, and at this time, the placement plate 301 causes the material to slide at the bottom of the scraper 304, so that the scraper 304 cleans the surface of the material and removes impurities. At the same time, the placement plate 301 moves the material into the interior of the housing 40. At this time, the baffle 30 moves to the outside of the opening 303 to block the opening 303 and prevent the material from overflowing during spraying.

[0034] This glass carbon graphite coating device facilitates reciprocating spraying of materials. The specific implementation method is as follows:

[0035] A cylinder 20 is mounted on the surface of the base 10, and a housing 40 is mounted on the surface of the base 10. The housing 40 has a sliding structure inside, which includes: a coating material box 50 mounted on the surface of the housing 40, a pump body 501 connected to the surface of the housing 40, one end of the pump body 501 connected to the coating material box 50, a pipe 502 connected to one side of the pump body 501, a cylinder 503 embedded in the inner wall of the coating material box 50, a slide rod 504 connected to the end of the output shaft of the cylinder 503, both ends of the slide rod 504 inserted into the inner wall of the coating material box 50, the end of the pipe 502 connected to the slide rod 504, a nozzle 505 mounted at the bottom of the pipe 502, an infrared sensor 506 mounted inside the housing 40, a guide groove embedded in the inner wall of the coating material box 50, the end of the slide rod 504 located inside the guide groove of the coating material box 50, and the slide rod 504 and the coating material box 50 are slidably connected.

[0036] After the infrared sensor 506 detects that the material has entered the housing 40, it activates the pump 501 and cylinder 503 via the control device. The pump 501 absorbs the 000 inside the coating material box 50 and transmits it to the nozzle 505 through the pipe 502. The nozzle 505 sprays the 000 onto the surface of the material. At this time, the cylinder 503 retracts, causing the slide bar 504 to move. The two ends of the slide bar 504 slide within the inner wall of the housing 40. The slide bar 504 then moves the nozzle 505, allowing it to move above the material for multi-position spraying. The infrared sensor 506 detects the size of the material and controls the cylinder 503 to extend. The cylinder 503 then moves the nozzle 505 in the opposite direction, spraying the material back and forth on the surface.

[0037] Working principle: When using this reciprocating glass carbon graphite coating device, an opening 303, a scraper 304 and an electromagnet 305 are provided to facilitate the placement of materials. A cylinder 503, a slide bar 504, a nozzle 505 and an infrared sensor 506 are provided to facilitate the reciprocating spraying of materials, increasing the overall practicality.

[0038] Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the appended claims and their equivalents.

Claims

1. A reciprocating glass carbon graphite coating device, comprising a base (10), wherein a cylinder (20) is mounted on the surface of the base (10), and a housing (40) is mounted on the surface of the base (10). Its features are: The shell (40) is provided with a sliding structure inside, and the sliding structure includes: a coating material box (50) is installed on the surface of the shell (40), and a pump body (501) is connected to the surface of the shell (40), and one end of the pump body (501) is connected to the coating material box (50), and a pipe (502) is connected to one side of the pump body (501). A cylinder (503) is embedded in the inner wall of the coating material box (50), and a slide rod (504) is connected to the end of the output shaft of the cylinder (503). Both ends of the slide rod (504) are inserted into the inner wall of the coating material box (50), and the end of the pipe (502) is connected to the slide rod (504). A nozzle (505) is installed at the bottom of the pipe (502), and an infrared sensor (506) is installed inside the shell (40). The base (10) is provided with a moving mechanism, which includes: a baffle (30) is installed on the surface of the base (10), and the end of cylinder (20) is connected to the surface of the baffle (30); a sliding groove (302) is embedded in the surface of the base (10); a placement plate (301) is installed on the surface of the base (10); the bottom of the placement plate (301) is embedded in the sliding groove (302); one side of the placement plate (301) is connected to the baffle (30); one side of the surface of the outer shell (40) has an opening (303); an electromagnet (305) is connected to the opening (303); and a scraper (304) is connected to the end of the electromagnet (305).

2. The reciprocating glass carbon graphite coating device according to claim 1, characterized in that: The placement plate (301) is positioned corresponding to the opening (303), and the baffle (30) is positioned corresponding to the opening (303). The baffle (30) and the placement plate (301) are slidably connected.

3. The reciprocating glass carbon graphite coating device according to claim 1, characterized in that: The slide groove (302) is located inside the outer shell (40), and the outer shell (40) and the placement plate (301) are slidably connected.

4. The reciprocating glass carbon graphite coating device according to claim 1, characterized in that: The slide groove (302) and the placement plate (301) are slidably connected, and the base (10) and the placement plate (301) are also slidably connected.

5. The reciprocating glass carbon graphite coating device according to claim 1, characterized in that: The scraper (304) is positioned corresponding to the placement plate (301), and the bottom of the scraper (304) is set as an inclined plane.

6. The reciprocating glass carbon graphite coating device according to claim 1, characterized in that: The inner wall of the coating material box (50) is provided with a guide groove, and the end of the slide rod (504) is located inside the guide groove of the coating material box (50), and the slide rod (504) and the coating material box (50) are slidably connected.