Turning plate type graphite carburant energy-saving drying device

By introducing waste heat storage tanks and sectional combined screen plates into the flip-type dryer, the problems of material plugging and uneven heat are solved, and energy-saving and efficient drying effect is achieved, and it is suitable for a variety of materials.

CN223179232UActive Publication Date: 2025-08-01CHANGXING XINYUE NEW MATERIAL TECH CO LTD
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Patent Information

Application Number
CN202422300185.X
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-20
Publication Date
2025-08-01
Estimated Expiration
2034-09-20

AI Technical Summary

Technical Problem

The existing flip-flop dryers are prone to material plugging when using stainless steel chain mesh belts, resulting in material loss and ventilation resistance, affecting hot air dissipation and drying efficiency, and are only suitable for vegetable drying, and uneven heat leads to high energy consumption.

Method used

The energy-saving drying device of the flip-plate graphite carbon enhancer is adopted, which includes a drying structure and a transmission structure. It uses waste heat storage tank to store and reuse the heat generated by drying. Combined with a segmented screen plate and an electric heating plate, the conveyor belt design is optimized and energy consumption is reduced.

Benefits of technology

Through waste heat storage and reuse, energy saving is significantly saved, drying efficiency and heat distribution uniformity are improved, material loss is reduced, and it is suitable for a wider range of material drying.

✦ Generated by Eureka AI based on patent content.

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    Figure CN223179232U_ABST
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Abstract

The utility model relates to the technical field of turning plate drying devices, in particular to a turning plate type graphite carburant energy-saving drying device which is characterized in that an inserting groove is formed in the position, below a transparent window, of the outer side of a drying device body, a drawing plate is installed in the inserting groove, a plurality of turning plate drying transmission plates are installed in the drying device body, and a plurality of turning plate drying transmission plates are installed in the drying device body. Screen plates are mounted at the top and the bottom of the interior of the turning plate drying transmission plate correspondingly, an electric heating plate is mounted between the two screen plates, material baffles are mounted on the side walls of the two sides of the interior of the drying device body correspondingly, and a material collecting frame is mounted at the bottom of the interior of the drying device body. A waste heat storage tank is installed at the top of the drying device body, a connecting base is installed on one side of the waste heat storage tank, a communicating pipe is installed on the connecting base, and a plurality of waste heat absorption pipes are installed on the peripheral wall in the waste heat storage tank. The device is simple in structure and convenient to use, and a large amount of energy is saved.
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Description

Technical Field

[0001] The utility model relates to the technical field of flap drying devices, in particular to an energy-saving drying device for flap-type graphite carburizer. Background Technique

[0002] The flap-type automatic dryer is a continuous automatic dryer with the widest use and the strongest adaptability. The flap-type automatic dryer is developed and designed by absorbing the advanced design combinations of foreign advanced dryers. It is a continuous automatic dryer with the widest use and the strongest adaptability. It has the advantages of small floor area and high drying efficiency.

[0003] After retrieval, the Chinese patent publication number: CN207201990U discloses a flap drying device, including a drying box. Five flap conveyors are arranged in the drying box from top to bottom. Each flap conveyor is composed of a driving roller, a driven roller and a conveyor belt; the conveyor belt is composed of stainless steel mesh plates that are sequentially lapped between two "]"-shaped groove chains; the driving rollers of the first, third and fifth flap conveyors are arranged on one side of the drying box, and the driving rollers of the second and fourth flap conveyors are arranged on the other side of the drying box; the driving roller of the lower-layer flap conveyor extends beyond the driven roller of the upper-layer flap conveyor; the driving roller of the first flap conveyor is arranged at the lower part outside the drying box; a feeding table is arranged at the front end of the first flap conveyor and lapped at the front end of its upper conveyor belt. The utility model realizes automatic turning of materials, saves labor, and improves the drying effect; is conducive to ventilation and improves the drying efficiency; will not cause the problem of material loss. Although this application can solve the problems that the track of the track-type dryer uses a stainless steel chain mesh belt, because there are many gaps in the chain mesh belt itself, material jamming often occurs, resulting in material loss, and the chain mesh belt will generate a certain resistance to ventilation when returning, affecting the spread of hot air and the drying efficiency, but this application can only dry vegetables, and the heat is uneven during the drying process, resulting in low drying efficiency and consuming more energy at the same time. Content of the Utility Model

[0004] Aiming at the deficiencies of the prior art, the purpose of the utility model is to provide an energy-saving drying device for flap-type graphite carburizer, aiming to solve the problems that although the prior art can solve the problems that the track of the track-type dryer uses a stainless steel chain mesh belt, because there are many gaps in the chain mesh belt itself, material jamming often occurs, resulting in material loss, and the chain mesh belt will generate a certain resistance to ventilation when returning, affecting the spread of hot air and the drying efficiency, but this application can only dry vegetables, and the heat is uneven during the drying process, resulting in low drying efficiency and consuming more energy at the same time.

[0005] To achieve the above purpose, the utility model provides the following technical solutions:

[0006] A flip - type graphite recarburizer energy - saving drying device, comprising a drying structure and a transmission structure, wherein the transmission structure is installed on one side of the drying structure;

[0007] The drying structure is composed of a drying device body and a waste heat storage tank. Both sides of the bottom of the drying device body are installed with support feet. A transparent window is installed on the outer side of the drying device body. An insertion slot is opened below the transparent window on the outer side of the drying device body. A pull - out plate is installed inside the insertion slot. Several flip - type drying drive plates are installed inside the drying device body. Screen plates are installed at the top and bottom inside the flip - type drying drive plates. An electric heating plate is installed between the two screen plates. Baffle plates are installed on the side walls of both sides inside the drying device body. A material receiving frame is installed at the bottom inside the drying device body. A waste heat storage tank is installed on the top of the drying device body. A connection seat is installed on one side of the waste heat storage tank. A communicating pipe is installed on the connection seat. Several waste heat absorption pipes are installed on the surrounding walls inside the waste heat storage tank.

[0008] Preferably, the transmission structure is composed of an installation frame and a feeding seat. A feeding seat is installed at the top of one side of the installation frame. A feeding slot is opened at the top of the feeding seat. A support frame is installed at the bottom of the installation frame on the side of the feeding seat. A conveyor belt is installed inside the installation frame.

[0009] Preferably, the pull - out plate is inserted inside the insertion slot and is integrally formed with the material receiving frame. The material receiving frame is designed with an inclined structure.

[0010] Preferably, both the screen plate and the electric heating plate are inserted inside the flip - type drying drive plate, and both the screen plate and the electric heating plate are of a segmented combined structure.

[0011] Preferably, one end of the communicating pipe penetrates through the connection seat and is connected to the inside of the waste heat storage tank, and the other end of the communicating pipe penetrates through the top of the drying device body and is connected to the inside of the drying device body.

[0012] Preferably, one end of the installation frame away from the feeding seat is connected to the top of the side wall of one side of the drying device body, and the conveyor belt inside the installation frame is connected to the flip - type drying drive plate.

[0013] Preferably, a transmission shaft is installed at the connection between the side of the installation frame where the feeding seat is located and the conveyor belt.

[0014] Compared with the prior art, the beneficial effects of the present utility model are:

[0015] Through the waste heat storage tank provided in the utility model, the heat generated during drying inside the drying device body can be transmitted into the waste heat storage tank through the connecting pipe on the connecting seat on one side of the waste heat storage tank and stored in the waste heat absorption pipes on the surrounding walls of the waste heat storage tank. When drying is carried out again in the drying device body, the waste heat stored in the waste heat storage tank can be transmitted into the drying device body for waste heat utilization, thus saving a large amount of energy. BRIEF DESCRIPTION OF THE DRAWINGS

[0016] Figure 1 is a schematic diagram of the overall structure of the utility model;

[0017] Figure 2 is a schematic diagram of the internal structure of the drying device body of the utility model;

[0018] Figure 3 is a schematic diagram of the overall structure of the flap drying transmission plate of the utility model;

[0019] Figure 4 is a schematic diagram of the internal structure of the waste heat storage tank of the utility model.

[0020] In the figure: 1, drying structure; 11, drying device body; 111, transparent window; 12, plug-in slot; 13, pull-out plate; 131, material receiving frame; 14, support feet; 15, waste heat storage tank; 151, connecting seat; 152, connecting pipe; 153, waste heat absorption pipe; 16, baffle plate; 17, flap drying transmission plate; 171, screen plate; 172, electric heating plate; 2, transmission structure; 21, mounting rack; 211, transmission shaft; 22, conveyor belt; 23, feeding seat; 231, feeding groove; 24, support frame. SPECIFIC EMBODIMENTS

[0021] The following will clearly and completely describe the technical solutions in the embodiments of the present utility model with reference to 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. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present utility model.

[0022] Embodiment:

[0023] Please refer to Figures 1-4, A flip - type graphite recarburizer energy - saving drying device, which includes a drying structure 1 and a transmission structure 2. The transmission structure 2 is installed on one side of the drying structure 1; the drying structure 1 is composed of a drying device body 11 and a waste heat storage tank 15. Support feet 14 are installed on both sides of the bottom of the drying device body 11. A transparent window 111 is installed on the outer side of the drying device body 11. An insertion slot 12 is opened below the transparent window 111 on the outer side of the drying device body 11. A pull - out plate 13 is installed inside the insertion slot 12. A number of flip - type drying drive plates 17 are installed inside the drying device body 11. Screen plates 171 are installed at the top and bottom inside the flip - type drying drive plate 17. An electric heating plate 172 is installed between the two screen plates 171. Baffle plates 16 are installed on the side walls of both sides inside the drying device body 11. A receiving frame 131 is installed at the bottom inside the drying device body 11. A waste heat storage tank 15 is installed on the top of the drying device body 11. A connection seat 151 is installed on one side of the waste heat storage tank 15. A connecting pipe 152 is installed on the connection seat 151. A number of waste heat absorption pipes 153 are installed on the surrounding walls inside the waste heat storage tank 15, which can transfer the heat generated during drying inside the drying device body 11 to the waste heat storage tank 15 through the connecting pipe 152 on the connection seat 151 on one side of the waste heat storage tank 15 and store it through the waste heat absorption pipes 153 on the surrounding walls of the waste heat storage tank 15. When drying is carried out again in the drying device body 11, the waste heat stored in the waste heat storage tank 15 can be transferred to the drying device body 11 for waste heat utilization, thus saving a large amount of energy.

[0024] Please refer to Figure 1 , The transmission structure 2 is composed of an installation frame 21 and a feeding seat 23. The feeding seat 23 is installed at the top of one side of the installation frame 21. A feeding groove 231 is opened at the top of the feeding seat 23. A support frame 24 is installed at the bottom of the installation frame 21 on the side of the feeding seat 23. A conveyor belt 22 is installed inside the installation frame 21, which can pour the graphite recarburizer from the feeding groove 231 at the top of the feeding seat 23 and drive the conveyor belt to operate through the transmission shaft 211, transporting the graphite recarburizer into the drying device body 11 for drying.

[0025] Please refer to Figures 1-2 , The pull - out plate 13 is inserted inside the insertion slot 12 and is integrally formed with the receiving frame 131. The receiving frame 131 is designed with an inclined structure. The dried graphite recarburizer will fall into the receiving frame 131. The inclined design of the receiving frame 131 can prevent the graphite recarburizer from piling up at one end. The receiving frame 131 is pulled out from the insertion slot 12 through the pull - out plate 13, thereby collecting the graphite recarburizer.

[0026] Please refer to Figures 2-3, both the screen plate 171 and the electric heating plate 172 are plugged into the inside of the flap drying drive plate 17, and both the screen plate 171 and the electric heating plate 172 are of a segmented combined structure. The segmented combined design can facilitate the flipping of the plate and enable more convenient replacement in case of damage.

[0027] Please refer to Figure 1 and Figure 4 , one end of the connecting pipe 152 penetrates through the connecting seat 151 and is connected to the waste heat storage tank 15, and the other end of the connecting pipe 152 penetrates through the top of the drying device body 11 and is connected to the inside of the drying device body 11. It can transfer the heat generated during drying inside the drying device body 11 to the waste heat storage tank 15 through the connecting pipe 152 on the connecting seat 151 on one side of the waste heat storage tank 15 and store it in the waste heat absorption pipes 153 on the peripheral walls of the waste heat storage tank 15.

[0028] Please refer to Figures 1-2 , one end of the mounting frame 21 away from the feeding seat 23 is connected to the top of the side wall of one side of the drying device body 11, and the conveyor belt 22 inside the mounting frame 21 is connected to the flap drying drive plate 17. It can transport the graphite carburizer to the inside of the drying device body 11 for drying through the conveyor belt.

[0029] Please refer to Figure 1 , a transmission shaft 211 is installed at the connection between the mounting frame 21 on one side of the feeding seat 23 and the conveyor belt 22. It can control the operation of the conveyor belt through the transmission shaft 211, making it more convenient for control and maintenance.

[0030] Working principle: Pour the graphite carburizer from the feeding groove 231 at the top of the feeding seat 23, and drive the conveyor belt to operate through the transmission shaft 211 to transport the graphite carburizer to the inside of the drying device body 11 for drying. The graphite carburizer will be sent to the screen plate 171 on the flap drying drive plate 17 and dried by the heating electric heating plate. The heat generated during drying inside the drying device body 11 is transferred to the waste heat storage tank 15 through the connecting pipe 152 on the connecting seat 151 on one side of the waste heat storage tank 15 and stored in the waste heat absorption pipes 153 on the peripheral walls of the waste heat storage tank 15. When drying is carried out again in the drying device body 11, the waste heat stored in the waste heat storage tank 15 can be transferred to the drying device body 11 for waste heat utilization, thus saving a large amount of energy. The dried graphite carburizer will fall into the receiving frame 131. The inclined design of the receiving frame 131 can prevent the graphite carburizer from accumulating at one end. The receiving frame 131 is pulled out from the insertion slot 12 through the pull-out plate 13 to collect the graphite carburizer. This device has a simple structure, is easy to use and saves a large amount of energy.

[0031] All technical features in this embodiment can be freely combined according to actual needs.

[0032] The above embodiments are preferred implementation solutions of the present utility model. In addition, the present utility model can also be implemented in other ways. Any obvious replacement without departing from the concept of the technical solution is within the protection scope of the present utility model.

Claims

1. A flip-type graphite carburizer energy-saving drying device, comprising a drying structure (1) and a transmission structure (2), characterized in that: On one side of the drying structure (1), a transmission structure (2) is installed; The drying structure (1) consists of a drying device body (11) and a waste heat storage tank (15). On both sides of the bottom of the drying device body (11), support feet (14) are installed. A transparent window (111) is installed on the outer side of the drying device body (11). Below the transparent window (111) on the outer side of the drying device body (11), a plug-in slot (12) is opened. Inside the plug-in slot (12), a pull-out plate (13) is installed. Inside the drying device body (11), a number of flap drying drive plates (17) are installed. At the top and bottom inside the flap drying drive plate (17), screen plates (171) are installed. Between the two screen plates (171), an electric heating plate (172) is installed. On the side walls on both sides inside the drying device body (11), baffle plates (16) are installed. At the bottom inside the drying device body (11), a material receiving frame (131) is installed. At the top of the drying device body (11), a waste heat storage tank (15) is installed. On one side of the waste heat storage tank (15), a connection seat (151) is installed. On the connection seat (151), a connecting pipe (152) is installed. On the surrounding walls inside the waste heat storage tank (15), a number of waste heat absorption pipes (153) are installed.

2. The energy-saving drying device for flip-type graphite carburizer according to claim 1, characterized in that: The transmission structure (2) consists of a mounting frame (21) and a feeding seat (23). At the top on one side of the mounting frame (21), a feeding seat (23) is installed. On the top of the feeding seat (23), a feeding groove (231) is opened. At the bottom on one side of the mounting frame (21) where the feeding seat (23) is located, a support frame (24) is installed. Inside the mounting frame (21), a conveyor belt (22) is installed.

3. The energy-saving drying device for the tipping graphite recarburizer according to claim 1, characterized in that: The pull-out plate (13) is inserted inside the plug-in slot (12), and the pull-out plate (13) is integrally formed with the material receiving frame (131). The material receiving frame (131) is designed with an inclined structure.

4. The energy-saving drying device for flip-type graphite carburizer according to claim 1, characterized in that: Both the screen plate (171) and the electric heating plate (172) are inserted inside the flap drying drive plate (17), and both the screen plate (171) and the electric heating plate (172) are of a segmented combined structure.

5. The energy-saving drying device for turnover plate type graphite recarburizer according to claim 1, characterized in that: One end of the connecting pipe (152) penetrates the connection seat (151) and is connected to the inside of the waste heat storage tank (15). The other end of the connecting pipe (152) penetrates the top of the drying device body (11) and is connected to the inside of the drying device body (11).

6. The energy-saving drying device for flip-type graphite carburizer according to claim 2, characterized in that: One end of the mounting frame (21) away from the feeding seat (23) is connected to the top of the side wall on one side of the drying device body (11), and the conveyor belt (22) inside the mounting frame (21) is connected to the flap drying drive plate (17).

7. The energy-saving drying device for turnover type graphite recarburizer according to claim 2, characterized in that: A transmission shaft (211) is installed at the connection between the side of the mounting frame (21) where the feeding seat (23) is located and the conveyor belt (22).

Citation Information

Patent Citations

  • Board -like drying device turns over

    CN207201990U