Carbonization device for magnesium slag standard brick

By designing an automated magnesium slag standard brick carbonization device, and using a material lifting device to automatically feed the standard brick carbonization support plate, the problems of high labor intensity and low production efficiency of manual push bricks in the existing technology are solved, and efficient and automated carbonization production is achieved.

CN223029996UActive Publication Date: 2025-06-27HENAN XIAN NEW BUILDING MATERIALS
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Patent Information

Application Number
CN202421934411.3
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-09
Publication Date
2025-06-27
Estimated Expiration
2034-08-09

AI Technical Summary

Technical Problem

During the production process of existing magnesium slag standard bricks, the carbonization device requires manual push of the bricks, which has high labor intensity and low production efficiency.

Method used

A carbonization device for magnesium slag standard bricks is designed, and the material lifting device is used to automatically send the carbonization support plate of the standard bricks into the carbonization box, including lifting cylinders, sliding support plates, sliding guide rails, L-shaped support plates, feeding cylinders and clamping devices to achieve automatic operation.

Benefits of technology

Through automated operations, the carbonization production efficiency of magnesium slag bricks is improved, the labor intensity is reduced, and the carbonization efficiency is improved.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of magnesium slag standard bricks, in particular to a magnesium slag standard brick carbonization device, which comprises a carbonization box body, a material lifting device is arranged in the carbonization box body, the material lifting device comprises a lifting cylinder, and the lifting cylinder is vertically and upwards fixed at the bottom of the carbonization box body; a sliding supporting plate is fixed to a piston rod of the lifting air cylinder, a sliding guide rail is laid on the sliding supporting plate, and a standard brick carbonization supporting plate is arranged on the sliding guide rail in a sliding mode. According to the carbonization device for the magnesium slag standard bricks, the standard brick carbonization supporting plate can be automatically fed into the carbonization box body, so that the production efficiency is improved.
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Description

Technical Field

[0001] The utility model relates to the technical field of magnesium slag standard bricks, and particularly relates to a carbonization device for magnesium slag standard bricks. Background Art

[0002] Magnesium slag standard bricks are a type of refractory bricks, mainly composed of magnesium oxide, with a high melting point, good fire resistance and good chemical stability, and are widely used in high-temperature industrial fields. During the production of magnesium slag standard bricks, carbonization can improve the stability and strength of the products. In the existing carbonization device, during the carbonization process, workers need to manually push the bricks to be carbonized into the carbonization box body, which has a large labor intensity and low production efficiency. Content of the Utility Model

[0003] The purpose of the utility model: The utility model provides a carbonization device for magnesium slag standard bricks, which can automatically send the standard brick carbonization support plate into the carbonization box body, improving the production efficiency.

[0004] To achieve the above purpose, the technical solution of the utility model is as follows:

[0005] A carbonization device for magnesium slag standard bricks includes a carbonization box body. Inside the carbonization box body, there is a material lifting device, and the material lifting device includes a lifting cylinder, and the lifting cylinder is vertically fixed at the bottom of the carbonization box body;

[0006] On the piston rod of the lifting cylinder, there is a sliding support plate fixed. On the sliding support plate, there is a sliding guide rail laid, and on the sliding guide rail, there is a standard brick carbonization support plate that can slide;

[0007] On the sliding support plate, there is an L-shaped support plate fixed. Vertically upward on the L-shaped support plate, there is a height adjustment cylinder fixed. Horizontally on the piston rod of the height adjustment cylinder, there is a feeding cylinder, and on the piston rod of the feeding cylinder, there is a docking block fixed.

[0008] As an improvement: On the standard brick carbonization support plate, there are several air permeable through holes opened.

[0009] As an improvement: The standard brick carbonization support plate can be slidably clamped onto the sliding guide rail through a sliding card slot.

[0010] As an improvement: On the top of the standard brick carbonization support plate, there are several support columns.

[0011] As an improvement: Below the standard brick carbonization support plate, there is a docking groove adapted to the docking block.

[0012] As an improvement: At the bottom of the carbonization box body, there is an air inlet pipe, and at the top of it, there is an exhaust pipe. On the exhaust pipe, there is an electric valve;

[0013] Inside the carbonization box body, a carbon dioxide sensor is provided, and a heating plate is provided on the inner wall of the carbonization box body.

[0014] As an improvement: several clamping devices are provided on the carbonization box body, and the clamping devices include a first clamping cylinder and a second clamping cylinder symmetrically arranged with the first clamping cylinder;

[0015] A first clamping groove is fixed on the piston rod of the first clamping cylinder, and a second clamping groove is fixed on the piston rod of the second clamping cylinder.

[0016] In summary, the utility model has the following beneficial effects:

[0017] 1. Through the material lifting device, the standard brick carbonization support plate can be clamped inside the clamping device, improving production efficiency and reducing the labor intensity of workers;

[0018] 2. Several support columns are provided on the top of the standard brick carbonization support plate. When the standard brick is placed on the support columns, the bottom of the standard brick can be fully contacted with carbon dioxide gas, thereby improving the carbonization efficiency. BRIEF DESCRIPTION OF THE DRAWINGS

[0019] In order to more clearly illustrate the technical solutions in the embodiments of the present utility model, the following will briefly introduce the drawings required for use in the embodiments or the description of the prior art.

[0020] Figure 1 It is a schematic diagram of the overall structure of a carbonization device for magnesium slag standard bricks;

[0021] Figure 2 It is a schematic sectional structure diagram of a carbonization device for magnesium slag standard bricks;

[0022] Figure 3 It is a front view of a carbonization device for magnesium slag standard bricks;

[0023] Among them: 1. Carbonization box body; 2. Lifting cylinder; 3. Sliding support plate; 4. Sliding guide rail; 5. Standard brick carbonization support plate; 6. L-shaped support plate; 7. Height adjustment cylinder; 8. Feeding cylinder; 9. Docking block; 10. Ventilation through hole; 11. Sliding clamping groove; 12. Support column; 13. Docking groove; 14. Inlet pipe; 15. Exhaust pipe; 16. Electric valve; 17. Carbon dioxide sensor; 18. Heating plate; 19. First clamping cylinder; 20. Second clamping cylinder; 21. First clamping groove; 22. Second clamping groove. DETAILED DESCRIPTION OF THE EMBODIMENTS

[0024] The following will further describe the present utility model in detail with reference to the drawings.

[0025] Please refer toFigure 1 - Figure 3, a carbonization device for magnesium slag standard bricks, including a carbonization box body 1, inside which there is a material lifting device. The material lifting device includes a lifting cylinder 2, and the lifting cylinder 2 is vertically and upwardly fixed at the bottom of the carbonization box body 1;

[0026] A sliding support plate 3 is fixed on the piston rod of the lifting cylinder 2. A sliding guide rail 4 is laid on the sliding support plate 3, and a standard brick carbonization support plate 5 is slidably arranged on the sliding guide rail 4;

[0027] An L-shaped support plate 6 is fixed on the sliding support plate 3. A height adjustment cylinder 7 is vertically and upwardly fixed on the L-shaped support plate 6. A feeding cylinder 8 is horizontally arranged on the piston rod of the height adjustment cylinder 7, and a docking block 9 is fixed on the piston rod of the feeding cylinder 8. In this embodiment, the standard brick carbonization support plate 5 can be clamped into the internal part of the clamping device through the material lifting device, improving the production efficiency and reducing the manual labor intensity.

[0028] A number of air permeable through holes 10 are opened on the standard brick carbonization support plate 5. The setting of the air permeable through holes 10 enables carbon dioxide gas to directly act on the bottom of the standard brick. The standard brick carbonization support plate 5 can be slidably clamped onto the sliding guide rail 4 through a sliding card slot 11. A number of support columns 12 are arranged on the top of the standard brick carbonization support plate 5. In this embodiment, when the standard brick is placed on the support columns 12, the bottom of the standard brick can be fully contacted with carbon dioxide gas, thereby improving the carbonization efficiency.

[0029] A docking groove 13 adapted to the docking block 9 is arranged below the standard brick carbonization support plate 5. By inserting the docking block 9 into the docking groove 13, the standard brick carbonization support plate 5 can be pushed out of or pulled into the carbonization box body 1.

[0030] An air inlet pipe 14 is arranged at the bottom of the carbonization box body 1, and an exhaust pipe 15 is arranged at its top. An electric valve 16 is arranged on the exhaust pipe 15;

[0031] A carbon dioxide sensor 17 is arranged inside the carbonization box body 1, and a heating plate 18 is arranged on the inner wall of the carbonization box body 1.

[0032] A number of clamping devices are arranged on the carbonization box body 1. The clamping device includes a first clamping cylinder 19 and a second clamping cylinder 20 symmetrically arranged with the first clamping cylinder 19;

[0033] A first clamping groove 21 is fixed on the piston rod of the first clamping cylinder 19, and a second clamping groove 22 is fixed on the piston rod of the second clamping cylinder 20. In this embodiment, the first clamping groove 21 and the second clamping groove 22 are used to clamp the standard brick carbonization support plate 5.

[0034] Working principle: Place the magnesium slag standard bricks to be carbonized on the standard brick carbonization support plate 5, and convey them to the opening of the carbonization box body 1 by means of an external conveying device. Start the feeding cylinder 8 to move the docking block 9 below the docking groove 13 of the standard brick carbonization support plate 5. Then start the height adjustment cylinder 7 to insert the docking block 9 into the inside of the docking groove 13. Start the feeding cylinder 8 again to pull the standard brick carbonization support plate 5 onto the sliding support plate 3. Then start the lifting cylinder 2 to lift the standard brick carbonization support plate 5 to a position opposite to the first clamping groove 21 and the second clamping groove 22. Start the first clamping cylinder 19 and the second clamping cylinder 20 to clamp the standard brick carbonization support plate 5 between the first clamping groove 21 and the second clamping groove 22. Repeat the above actions so that the corresponding clamping devices are all clamped with the standard brick carbonization support plate 5.

[0035] Then close the box door, and convey carbon dioxide gas into the inside of the carbonization box body 1 through the air inlet pipe 14. Detect the carbon dioxide concentration in the carbonization box body 1 through the carbon dioxide sensor 17, and keep the carbon dioxide concentration within a certain range. Ensure the temperature in the carbonization box body 1 within a certain range through the heating plate 18 to realize the carbonization operation of the magnesium slag standard bricks.

[0036] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention and not to limit them; although the present invention has been described in detail with reference to the preferred embodiments, those of ordinary skill in the art should understand that; it is still possible to modify the specific implementation manners of the present invention or perform equivalent replacements on some technical features; without departing from the spirit of the technical solutions of the present invention, they should all be covered within the scope of the technical solutions claimed by the present invention.

Claims

1. A carbonization device for magnesium slag standard bricks, characterized in that: It comprises a carbonization box, a material lifting device is arranged inside the carbonization box, and the material lifting device comprises a lifting cylinder, and the lifting cylinder is vertically fixed upward at the bottom of the carbonization box; A sliding support plate is fixed on the piston rod of the lifting cylinder, a sliding guide rail is laid on the sliding support plate, and a standard brick carbonized support plate is slidably arranged on the sliding guide rail; An L-shaped support plate is fixed on the sliding support plate, a height adjustment cylinder is vertically fixed on the L-shaped support plate, a feeding cylinder is horizontally arranged on the piston rod of the height adjustment cylinder, and a docking block is fixed on the piston rod of the feeding cylinder.

2. The carbonization device for magnesium slag standard bricks according to claim 1 is characterized in that: A plurality of ventilation holes are provided on the carbonized support plate of the standard brick.

3. The carbonization device for magnesium slag standard bricks according to claim 1 is characterized in that: The standard brick carbonization support plate can be slidably mounted on the sliding guide rail through a sliding slot.

4. The carbonization device for magnesium slag standard bricks according to claim 1 is characterized in that: A plurality of support columns are arranged on the top of the standard brick carbonization support plate.

5. The carbonization device for magnesium slag standard bricks according to claim 1 is characterized in that: A docking groove matched with the docking block is provided below the carbonized support plate of the standard brick.

6. The carbonization device for magnesium slag standard bricks according to claim 1 is characterized in that: An air inlet pipe is provided at the bottom of the carbonization box, an exhaust pipe is provided at the top, and an electric valve is provided on the exhaust pipe; A carbon dioxide sensor is arranged inside the carbonization box, and a heating plate is arranged on the inner wall of the carbonization box.

7. The carbonization device for magnesium slag standard bricks according to claim 1 is characterized in that: A plurality of clamping devices are provided on the carbonization box, and the clamping devices include a first clamping cylinder and a second clamping cylinder symmetrically arranged with the first clamping cylinder; A first clamping groove is fixed on the piston rod of the first clamping cylinder, and a second clamping groove is fixed on the piston rod of the second clamping cylinder.