Graphite carbon calcination discharging water cooling device

Through the oscillating water-shrinking air-drying design combining grid-like placement cage and motor, the problem of incomplete removal of residual water in the water-cooling device in the prior art is solved, and efficient production and processing of graphite carbon is achieved.

CN223138372UActive Publication Date: 2025-07-22JIANGSU HENGCHENG SEMICON MATERIALS CO LTD
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Patent Information

Application Number
CN202422035052.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-21
Publication Date
2025-07-22
Estimated Expiration
2034-08-21

AI Technical Summary

Technical Problem

The existing graphite carbon calcined discharge water cooling device cannot effectively and quickly remove residual water during the use of air-drying components, affecting production and processing efficiency.

Method used

The grid-like cage is used to cooperate with the motor, and the air-drying component is combined with the air-drying component through oscillation and centrifugal force to achieve full contact and rapid air-drying. The tilting design of the telescopic cylinder and piston is used to facilitate the discharge of the coolant. Combined with the design of the air-drying component, it ensures the effective blowing of fresh air.

Benefits of technology

The cooling liquid is fully in contact with the material, avoiding uneven heat and heat, and quickly clearing residual water and improving the production and processing efficiency of graphite carbon.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of graphite carbon processing assistance, and particularly discloses a graphite carbon calcination discharging water cooling device which comprises a mounting cylinder, two annular limiting plates symmetrically arranged at the upper end of the interior of the mounting cylinder, a grating-shaped placing cage jointly rotatably arranged on the inner sides of the limiting plates, and a motor matched with the placing cage and arranged at the upper end of the mounting cylinder and corresponding to the placing cage. A sealing door is mounted on one side of the placement cage; according to the utility model, the output end of the telescopic cylinder moves up and down, so that the cooling liquid is in an oscillating state when being in contact with materials in the placing cage, and therefore, the cooling liquid can be in full contact with the materials, and the cooling liquid can be mixed to a certain extent, namely, the phenomenon of non-uniform cooling and heating is avoided; meanwhile, residual cooling liquid on the surfaces of the materials in the placing cage can be rapidly cleaned through the dual effects of water throwing and air blowing, so that the rapid air drying effect is achieved, and the production and processing efficiency of graphite carbon is improved.
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Description

Technical Field

[0001] The utility model relates to the technical field of graphite carbon processing aids, in particular to a water-cooling device for discharging calcined graphite carbon materials. Background Art

[0002] When graphite carbon is produced and processed, it needs to be cooled down. The existing Chinese patent with the application number 202323449531.2 discloses a water-cooling device for discharging calcined graphite carbon materials, including a device body. Symmetrically and fixedly connected to the front and rear parts of the lower end of the device body are support legs. A placement frame is movably installed on the inner surface of the device body. A sealing plug is movably installed at the lower part of the inner surface of the device body. An air-drying assembly is arranged at the front end of the device body. A filtering assembly is arranged at the middle part of the lower end of the device body.

[0003] When the above technology is used, after water cooling, the residual water of the material is simply removed by the air-drying assembly. However, in actual use, this method is limited by the stacking thickness and shape of the material and cannot achieve a more effective effect, thus affecting the production and processing efficiency of graphite carbon. Therefore, in order to solve the defect that the residual water cannot be fully and quickly removed after the use of the above water-cooling device, we propose a water-cooling device for discharging calcined graphite carbon materials. Summary of the Utility Model

[0004] The purpose of the utility model is to solve the shortcomings existing in the prior art and propose a water-cooling device for discharging calcined graphite carbon materials.

[0005] In order to achieve the above purpose, the utility model adopts the following technical scheme:

[0006] A water-cooling device for discharging calcined graphite carbon materials, including an installation cylinder. At the upper end inside the installation cylinder, two annular limiting plates are symmetrically arranged. Inside the limiting plates, a grid-shaped placement cage is rotatably arranged. At the upper end of the installation cylinder, a motor matched with the placement cage is provided. One side of the placement cage is provided with a sealing door. At the upper end of the installation cylinder, a hatch corresponding to the placement cage is provided. An air-drying assembly is jointly arranged on one side of the upper end of the installation cylinder and the plate body of the hatch. At the lower end inside the installation cylinder, a telescopic cylinder is provided. The output end of the telescopic cylinder faces upward and is installed with a piston. Inside the installation cylinder, cooling water is stored on the upper surface of the piston.

[0007] Preferably, a water inlet pipe and a water outlet pipe are arranged on the side surface of the piston, and the water inlet pipe and the water outlet pipe are far away from each other.

[0008] Preferably, the upper surface of the piston is an inclined surface. The end of the water outlet pipe is located at the high position of the upper surface of the piston, and the end of the water inlet pipe is located at the low position of the upper surface of the piston.

[0009] Preferably, the upper end of the installation cylinder is open and is equipped with a maintenance plate through bolts, and the motor is installed in the middle of the maintenance plate.

[0010] Preferably, the air drying assembly includes an air inlet pipe, an air outlet pipe and a pump. The pump is installed on both sides of the maintenance plate. The upper ends of the air outlet pipe and the air inlet pipe are respectively connected to the adjacent pumps. The lower end of the air inlet pipe is connected to the hatch door and extends into the installation cylinder. The lower end of the air outlet pipe extends into the installation cylinder and is on the side away from the hatch door.

[0011] Preferably, a plurality of partition sheets are provided on the outer ring surface of the placement cage, and the outer surface of the partition sheet is in contact with the inner ring surface of the installation cylinder.

[0012] Preferably, a plurality of water drainage grooves are provided on the plate body of the limiting plate located at the lower layer, and the water drainage grooves are in contact with the inner wall of the installation cylinder.

[0013] A water-cooling device for discharging calcined graphite carbon proposed by the present utility model has the beneficial effects as follows:

[0014] 1: In the present utility model, through the up and down movement of the output end of the telescopic cylinder, the coolant is in an oscillating state when contacting the materials inside the placement cage. Thus, not only can the coolant fully contact the materials, but also a certain degree of mixing effect of the coolant is achieved, that is, the phenomenon of uneven heating and cooling is avoided. When the motor rotates, it drives the placement cage to rotate synchronously. That is, when the placement cage rotates, it collides with the coolant, so that the coolant can more conveniently and fully cool down the materials. Furthermore, when the materials need to remove the residual water on the surface after cooling, control the motor to rotate at a high speed. That is, the residual coolant on the surface of the materials inside the placement cage is thrown to the surface of the installation cylinder by centrifugal force. At the same time, during this process, dry air is blown into the placement cage through the air inlet pipe and discharged through the air outlet pipe. Thus, through the dual actions of water throwing and blowing, the residual coolant on the surface of the materials inside the placement cage is quickly cleaned, so as to achieve the effect of rapid air drying, that is, the production and processing efficiency of graphite carbon is improved.

[0015] 2: In the present utility model, since the upper surface of the piston is an inclined surface, when the device discharges the used coolant, the coolant and the impurities deposited on the upper surface of the piston can smoothly flow along the inclined surface to the water inlet pipe and finally flow out through the water inlet pipe, that is, it is convenient to discharge the waste water. The setting of the maintenance plate facilitates the personnel to maintain the components inside the installation cylinder. The setting of the air drying assembly facilitates blowing fresh air into the placement cage, so as to air dry the materials placed inside the placement cage, so as to facilitate the subsequent production and processing quickly. The setting of the partition sheet facilitates blocking the gap between the placement cage and the installation cylinder, so that most of the gas blown into the installation cylinder at the air inlet pipe will enter the placement cage and flow out through the air outlet pipe on the other side. That is, it effectively ensures the air drying effect of the fresh air on the materials when this solution is used. Brief Description of the Drawings

[0016] Figure 1 Isometric schematic diagram of a water-cooling device for discharging graphite carbon calcined materials proposed by the present utility model;

[0017] Figure 2 Structural schematic diagram of a water-cooling device for discharging graphite carbon calcined materials proposed by the present utility model;

[0018] Figure 3 Is a Figure 2 Enlarged schematic diagram of part A in the water-cooling device for discharging graphite carbon calcined materials proposed by the present utility model;

[0019] Figure 4 Schematic diagram of the placement cage of a water-cooling device for discharging graphite carbon calcined materials proposed by the present utility model.

[0020] In the figure: 1, mounting cylinder; 2, limiting plate; 3, placement cage; 4, motor; 5, sealing door; 6, hatch door; 7, telescopic cylinder; 8, piston; 9, water inlet pipe; 10, water outlet pipe; 11, air inlet pipe; 12, air outlet pipe; 13, pump; 14, maintenance plate; 15, water trough; 16, partition piece. Detailed Description of the Preferred Embodiment

[0021] Next, the technical solutions in the embodiments of the present utility model will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present utility model. Obviously, the described embodiments are only a part of the embodiments of the present utility model, rather than all the embodiments.

[0022] Embodiment 1

[0023] Referring to Figures 1-4 , a water-cooling device for discharging graphite carbon calcined materials includes a mounting cylinder 1. Two annular limiting plates 2 are symmetrically arranged at the upper end inside the mounting cylinder 1. A grid-shaped placement cage 3 is rotatably arranged inside the limiting plates 2. A motor 4 is provided corresponding to the placement cage 3 at the upper end of the mounting cylinder 1. A sealing door 5 is installed on one side of the placement cage 3. A hatch door 6 is provided corresponding to the placement cage 3 at the upper end of the mounting cylinder 1. A drying component is jointly arranged on one side of the upper end of the mounting cylinder 1 and the plate body of the hatch door 6. A telescopic cylinder 7 is arranged at the lower end inside the mounting cylinder 1. The output end of the telescopic cylinder 7 faces upward and is provided with a piston 8. Cooling water is stored on the upper surface of the piston 8 inside the mounting cylinder 1.

[0024] Embodiment 2

[0025] Referring to Figures 1-4 , in the case where other parts are the same as those in Embodiment 1, the difference between this embodiment and Embodiment 1 is that:

[0026] The side of the piston 8 is provided with a water inlet pipe 9 and a water outlet pipe 10. The water inlet pipe 9 and the water outlet pipe 10 are far away from each other. The arrangement of the water inlet pipe 9 and the water outlet pipe 10 facilitates the replacement of the coolant stored on the bottom of the installation cylinder 1, that is, the upper surface of the piston 8. The upper surface of the piston 8 is an inclined surface. The end of the water outlet pipe 10 is located at the high position of the upper surface of the piston 8, and the end of the water inlet pipe 9 is located at the low position of the upper surface of the piston 8. Since the upper surface of the piston 8 is an inclined surface, when the device discharges the used coolant, the coolant and the impurities deposited on the upper surface of the piston 8 can smoothly flow along the inclined surface to the water inlet pipe 9 and finally flow out through the water inlet pipe 9, that is, it is convenient to discharge the waste water. The upper end of the installation cylinder 1 is in an open state and is installed with a maintenance plate 14 through bolts. The motor 4 is installed in the middle of the maintenance plate 14. The setting of the maintenance plate 14 facilitates the maintenance of the components inside the installation cylinder 1 by personnel.

[0027] The air drying assembly includes an air inlet pipe 11, an air outlet pipe 12 and a pump 13. The pump 13 is installed on both sides of the maintenance plate 14. The upper ends of the air outlet pipe 12 and the air inlet pipe 11 are respectively connected to the adjacent pumps 13. The lower end of the air inlet pipe 11 is connected to the hatch 6 and extends into the installation cylinder 1. The lower end of the air outlet pipe 12 extends into the installation cylinder 1 and is on the side far away from the hatch 6. The setting of the air drying assembly facilitates blowing fresh air into the placement cage 3, thereby drying the materials placed inside the placement cage 3, so as to facilitate the subsequent production and processing quickly. A plurality of partition plates 16 are provided on the outer ring surface of the placement cage 3. The outer surface of the partition plate 16 is in contact with the inner ring surface of the installation cylinder 1. The setting of the partition plate 16 facilitates blocking the gap between the placement cage 3 and the installation cylinder 1, so that most of the gas blown into the installation cylinder 1 at the air inlet pipe 11 will enter the placement cage 3 and flow out at the air outlet pipe 12 on the other side, that is, effectively ensuring the air drying effect of the fresh air on the materials when this solution is used. A plurality of water troughs 15 are provided on the plate body of the lower limiting plate 2. The water troughs 15 are in contact with the inner wall of the installation cylinder 1. The setting of the water troughs 15 causes the residual liquid on the inner wall of the installation cylinder 1, the liquid thrown out from the placement cage 3, etc. to smoothly flow back to the upper surface of the piston 8.

[0028] Principle and advantages of use: During the use of the utility model, when it is necessary to cool the graphite carbon material, the personnel open the sealing plate 5 and the hatch 6, and then place the material in the placement cage 3, and then start the telescopic cylinder 7. The output end of the telescopic cylinder 7 moves up and down to push the piston 8 to move synchronously, that is, when the piston 8 moves, it drives the coolant on its upper surface to move toward the placement cage 3, until the placement cage 3 is finally immersed in the coolant, thereby the graphite carbon material inside the placement cage 3 can be water-cooled and dissipated under the action of the coolant; then, through the setting of the motor 4, the motor 4 drives the placement cage 3 to rotate synchronously when it rotates, and the placement cage 3 collides with the coolant when it rotates, so that the coolant can be more convenient and sufficient to cool the material.

[0029] Then, when the material is cooled in the device and needs to be subsequently processed and manufactured, the output end of the telescopic cylinder 7 moves downward, so that the coolant at the lower end of the mounting tube 1 is gradually separated from the placement cage 3, and then the motor 4 is controlled to rotate at a high speed. At this time, due to the absence of the resistance of the coolant, the rotation speed of the placement cage 3 is increased, thereby achieving a water-throwing effect, that is, the coolant remaining on the surface of the material inside the placement cage 3 is thrown to the surface of the mounting tube 1 by centrifugal force. At the same time, in this process, air-drying gas is blown into the placement cage 3 through the air inlet pipe 11 and discharged through the air outlet pipe 12. Therefore, through the dual effects of water-throwing and air blowing, the coolant remaining on the surface of the material inside the placement cage 3 is quickly cleaned, thereby achieving the effect of rapid air drying, that is, improving the production and processing efficiency of graphite carbon.

[0030] It should be further explained that the setting of the water inlet pipe 9 and the water outlet pipe 10 facilitates the replacement of the coolant stored at the bottom of the installation cylinder 1, that is, the upper surface of the piston 8; since the upper surface of the piston 8 is an inclined surface, when the device discharges the used coolant, the coolant and the impurities precipitated on the upper surface of the piston 8 can flow smoothly along the inclined surface to the water inlet pipe 9, and finally flow out through the water inlet pipe 9, so as to facilitate the discharge of waste water; the setting of the inspection plate 14 facilitates the maintenance of the parts inside the installation cylinder 1 by personnel; the setting of the air-drying component facilitates the blowing of fresh air into the placement cage 3, thereby air-drying the materials placed inside the placement cage 3, so as to facilitate the subsequent production and processing; the setting of the partition 16 facilitates the blocking of the gap between the placement cage 3 and the installation cylinder 1, so that most of the gas blown into the installation cylinder 1 at the air inlet pipe 11 will enter the placement cage 3 and flow to the outlet pipe 12 on the other side, which effectively ensures the air-drying effect of fresh air on the materials when this scheme is used.

[0031] The above are only the preferred specific embodiments of the present utility model, but the protection scope of the present utility model is not limited thereto. Any person skilled in the art within the technical scope disclosed by the present utility model, according to the technical solution of the present utility model and its inventive concept, makes equivalent substitutions or changes, and should be covered by the protection scope of the present utility model.

Claims

1. A water-cooling device for discharging calcined graphite carbon, comprising an installation cylinder (1), characterized in that, At the upper end inside the installation cylinder (1), two annular limiting plates (2) are symmetrically provided. Inside the limiting plates (2), a grid-shaped placement cage (3) is rotatably arranged in common. At the upper end of the installation cylinder (1), a motor (4) that matches the placement cage (3) is provided. A sealing door (5) is installed on one side of the placement cage (3). At the upper end of the installation cylinder (1), a hatch (6) corresponding to the placement cage (3) is provided. An air-drying assembly is jointly provided on one side of the upper end of the installation cylinder (1) and on the plate body of the hatch (6). At the lower end inside the installation cylinder (1), a telescopic cylinder (7) is provided. The output end of the telescopic cylinder (7) faces upward and is provided with a piston (8). Inside the installation cylinder (1) and on the upper surface of the piston (8), cooling water is stored.

2. The water-cooling device for discharging calcined graphite carbon according to claim 1, characterized in that, A water inlet pipe (9) and a water outlet pipe (10) are provided on the side surface of the piston (8), and the water inlet pipe (9) and the water outlet pipe (10) are far away from each other.

3. The water-cooling device for discharging calcined graphite carbon according to claim 1, wherein , The upper surface of the piston (8) is an inclined surface. The end of the water outlet pipe (10) is located at the high position of the upper surface of the piston (8), and the end of the water inlet pipe (9) is located at the low position of the upper surface of the piston (8).

4. The water-cooling device for discharging calcined graphite carbon according to claim 1, characterized in that, The upper end of the installation cylinder (1) is in an open state and is provided with a maintenance plate (14) through bolts. The motor (4) is installed in the middle of the maintenance plate (14).

5. A graphite carbon calcination discharging water cooling device according to claim 4, characterized in that, The air-drying assembly includes an air inlet pipe (11), an air outlet pipe (12), and a pump (13). The pump (13) is installed on both sides of the maintenance plate (14). The upper ends of the air outlet pipe (12) and the air inlet pipe (11) are respectively connected to the adjacent pumps (13). The lower end of the air inlet pipe (11) is connected to the hatch (6) and extends into the installation cylinder (1) internally. The lower end of the air outlet pipe (12) extends into the installation cylinder (1) internally and is on the side far away from the hatch (6).

6. The water-cooling device for discharging calcined graphite carbon according to claim 1, wherein, A number of partition pieces (16) are provided on the outer ring surface of the placement cage (3), and the outer side surface of the partition pieces (16) is in contact with the inner ring surface of the installation cylinder (1).

7. A graphite carbon calcination discharging water cooling device according to claim 1, characterized in that, A number of water troughs (15) are provided on the plate body of the lower limiting plate (2), and the water troughs (15) are in contact with the inner wall of the installation cylinder (1).

Citation Information

Patent Citations

  • Graphite carbon calcination discharging water cooling device

    CN221403931U