Energy-saving charging structure for low-carbon roasting of graphite plate

By designing an energy-saving charging structure, the problem of inconvenient charging during the graphite plate calcination process was solved, achieving efficient graphite plate collection and transfer, and ensuring the stability and efficiency of the calcination process.

CN223976467UActive Publication Date: 2026-03-06ZHONGNENG CONSTRUCTION (TIANJIN) ENERGY SAVING TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202520696844.8
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-04-14
Publication Date
2026-03-06
Estimated Expiration
2035-04-14

AI Technical Summary

Technical Problem

In the low-carbon calcination process of graphite plates, the existing technology makes the centralized collection and loading of graphite plates cumbersome, which affects processing efficiency.

Method used

An energy-saving loading structure was designed, including an installation frame, a material frame, a support mechanism, and a vent. Through the cooperation of multiple loading mechanisms, the graphite plates are collected and transported in a unified manner, and a good air duct is formed during the calcination process to ensure uniform processing.

Benefits of technology

It enables efficient centralized loading and transfer of graphite plates, ensuring processing efficiency during the calcination process, and provides safety through a support mechanism to prevent damage from impacts.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides an energy-saving charging structure for graphite plate low-carbon roasting, which comprises a mounting mechanism, a charging mechanism and a supporting mechanism, two bottom plates are symmetrically bolted on the bottom surface of a mounting frame, a cross beam is bolted on the top surface of the mounting frame, the two side surfaces of a material frame are respectively bolted on the inner wall of the mounting frame, and the supporting mechanism is arranged on the mounting frame. First ventilation openings are evenly formed in the top of each material frame in sequence, second ventilation openings are formed in the surfaces of the two sides of each material frame respectively, openings are formed in the two ends of each material frame respectively, the upper support is bolted to the bottom surface of one material frame, the lower support is bolted to the top surface of the other material frame, a damping rod is installed in the lower support, and the top of the damping rod is connected with the upper support. The graphite plate collecting structure is optimized, so that a charging structure can be conveniently adjusted at any time, a good charging effect is further realized, and the processing efficiency is guaranteed.
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Description

Technical Field

[0001] This utility model relates to the field of loading structure technology, specifically to an energy-saving loading structure for low-carbon calcination of graphite plates. Background Technology

[0002] Graphite plates are sheets made from graphite materials through various processes, possessing excellent properties such as high temperature resistance, good electrical conductivity, and corrosion resistance. They play a vital role in industry, widely used in semiconductors, solar cells, sensors, nanoelectronics, metallurgy, and chemicals. The production process requires a low-carbon calcination treatment, which necessitates the use of loading equipment for storage.

[0003] Chinese Patent Application No. CN202222973882.2 discloses a material filling and sealing structure for a graphite molding die. The structure is located at the feed inlet of the die body and includes a telescopic plate with the same shape as the feed inlet. The telescopic plate is laterally slidable at the feed inlet. A straight feed groove is provided along the length of the telescopic plate. A feed plate is slidably and sealed within the feed groove. Multiple sealing plates are provided on both sides of the feed plate. Sealing plates adjacent to the feed plate are slidably mounted on it, and adjacent sealing plates are slidably connected. Sealing plates at both ends are fixedly connected to both ends of the feed groove. All sealing plates are slidably and sealed to the telescopic plate. The purpose of this invention is to solve or at least mitigate the problem of dust splashing out of the die during the filling process, providing a material filling and sealing structure for a graphite molding die.

[0004] However, the following problems still exist: the centralized collection and loading of graphite plates during the calcination process is quite troublesome, which may affect processing efficiency during continuous operation. Utility Model Content

[0005] The present invention aims to solve the problems mentioned in the background art by providing an energy-saving charging structure for low-carbon calcination of graphite plates.

[0006] The specific technical solution is as follows:

[0007] Energy-saving charging structures for low-carbon calcination of graphite plates include:

[0008] The mounting mechanism includes a mounting frame, a base plate, and a crossbeam. Two base plates are symmetrically bolted to the bottom surface of the mounting frame, and a crossbeam is bolted to the top surface of the mounting frame.

[0009] The loading mechanism includes a material frame, a protrusion, a first ventilation opening, a second ventilation opening, and a mounting hole. The two sides of the material frame are respectively bolted to the inner wall of the mounting frame. The top of the material frame is provided with a first ventilation opening in sequence and evenly. The two sides of the material frame are respectively provided with a second ventilation opening, and the two ends of the material frame are respectively provided with openings.

[0010] The support mechanism includes an upper bracket, a lower bracket, a damping rod, a pressure spring, and a mounting edge. The upper bracket is bolted to the bottom surface of the material frame, and the lower bracket is bolted to the top surface of another material frame. A damping rod is installed inside the lower bracket, and the top of the damping rod is connected to the upper bracket.

[0011] In the above-mentioned energy-saving loading structure, the surface of the crossbeam is provided with an opening groove, and a guide rod is installed in the opening groove. A slider is slidably installed on the guide rod, and a hook is assembled on the surface of the slider.

[0012] In the above-mentioned energy-saving loading structure, the inner wall surface of the material frame is provided with protrusions evenly in sequence, and the protrusions are an integrally formed structure of the material frame surface.

[0013] In the above-mentioned energy-saving loading structure, mounting holes are evenly provided at the openings on both sides of the material frame, and a retaining edge is integrally formed on the surface of one of the openings of the material frame.

[0014] In the above-mentioned energy-saving loading structure: a pressure spring is sleeved on the surface of the damping rod, an insert block is integrally formed at the bottom of the upper bracket, and one end of the pressure spring is fixedly connected to the insert block.

[0015] In the above-mentioned energy-saving loading structure, the bottom of the lower support is integrally formed with an installation edge, and the installation edge is bolted and fixed to the surface of the material frame.

[0016] This utility model has the following beneficial effects:

[0017] This utility model optimizes the graphite plate collection structure by using multiple assembly mechanisms to collect the graphite plates uniformly. Combined with an external mounting frame structure, the overall structure forms a relatively stable centralized loading structure. This allows for overall transfer as needed, and the loading mechanism can be disassembled at specific locations to facilitate adjustments to the loading structure at any time, thereby achieving good loading results and ensuring processing efficiency. Attached Figure Description

[0018] Figure 1 A schematic diagram of the energy-saving loading structure provided in this embodiment of the utility model;

[0019] Figure 2 This is a schematic diagram of the loading mechanism provided in an embodiment of the present utility model;

[0020] Figure 3 A schematic diagram of the support mechanism provided in an embodiment of this utility model.

[0021] In the attached diagram: 1. Mounting frame; 2. Base plate; 3. Crossbeam; 4. Guide rod; 5. Slider; 6. Hook; 7. Loading mechanism; 701. Material frame; 702. Protrusion block; 703. First ventilation opening; 704. Second ventilation opening; 705. Mounting hole; 8. Support mechanism; 801. Upper bracket; 802. Insert block; 803. Lower bracket; 804. Damping rod; 805. Compression spring; 806. Mounting edge. Detailed Implementation

[0022] The technical solution of this utility model will be further described below with reference to the accompanying drawings and specific embodiments.

[0023] The accompanying drawings are for illustrative purposes only and are schematic diagrams, not actual images. They should not be construed as limiting the scope of this patent. To better illustrate the embodiments of this utility model, some components in the drawings may be omitted, enlarged, or reduced, and do not represent the actual dimensions of the product. It is understandable to those skilled in the art that some well-known structures and their descriptions may be omitted in the drawings.

[0024] In the accompanying drawings of this utility model, the same or similar reference numerals correspond to the same or similar components. In the description of this utility model, it should be understood that if terms such as "upper," "lower," "left," "right," "inner," and "outer" indicate the orientation or positional relationship based on the orientation or positional relationship shown in the drawings, they are only for the convenience of describing this utility model and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, the terms used to describe positional relationships in the drawings are only for illustrative purposes and should not be construed as limiting this patent. For those skilled in the art, the specific meaning of the above terms can be understood according to the specific circumstances.

[0025] In the description of this utility model, unless otherwise explicitly specified and limited, the term "connection" or similar designation indicating the connection relationship between components should be interpreted broadly. For example, it can refer to a fixed connection, a detachable connection, or an integral part; it can be a mechanical connection or an electrical connection; it can be a direct connection or an indirect connection through an intermediate medium; it can refer to the internal communication of two components or the interaction between two components. Those skilled in the art can understand the specific meaning of the above terms in this utility model based on the specific circumstances.

[0026] Example

[0027] The energy-saving loading structure provided in this embodiment, such as Figures 1-3As shown, it includes: an installation mechanism, a loading mechanism 7, and a support mechanism 8.

[0028] The installation mechanism includes an installation frame 1, a base plate 2, and a crossbeam 3. Two base plates 2 are symmetrically bolted to the bottom surface of the installation frame 1, and a crossbeam 3 is bolted to the top surface of the installation frame 1.

[0029] The surface of the crossbeam 3 has an opening groove, and a guide rod 4 is installed in the opening groove. A slider 5 is slidably installed on the guide rod 4, and a hook 6 is fitted on the surface of the slider 5. This structure allows the entire mounting frame 1 to be transported in different ways according to needs. The top hook 6 structure facilitates hoisting, and the structure of the bottom plate 2 also facilitates transportation by vehicle.

[0030] The loading mechanism 7 includes a material frame 701, a protrusion 702, a first ventilation opening 703, a second ventilation opening 704, and a mounting hole 705. The two sides of the material frame 701 are respectively bolted to the inner wall of the mounting frame 1. The top of the material frame 701 is provided with the first ventilation opening 703 in sequence and evenly. The two sides of the material frame 701 are respectively provided with the second ventilation opening 704, and the two ends of the material frame 701 are respectively provided with openings.

[0031] The inner wall surface of the material frame 701 is uniformly provided with protrusions 702, and the protrusions 702 are integrally formed on the surface of the material frame 701. This supports the graphite plate to be processed, allowing for adequate ventilation space at the bottom of the graphite plate. During the actual roasting process, this ventilation space, combined with other vents, forms a good airflow channel, thereby achieving a fully uniform roasting effect.

[0032] The support mechanism 8 includes an upper bracket 801, a lower bracket 803, a damping rod 804, a pressure spring 805, and a mounting edge 806. The upper bracket 801 is bolted to the bottom surface of the material frame 701, and the lower bracket 803 is bolted to the top surface of another material frame 701. The damping rod 804 is installed inside the lower bracket 803, and the top of the damping rod 804 is connected to the upper bracket 801.

[0033] In the energy-saving loading structure using the above technical solution, mounting holes 705 are evenly and sequentially opened on both sides of the material frame 701, and a retaining edge is integrally formed on the surface of one side of the material frame 701. The mounting holes 705 are reserved to facilitate the installation of other equipment for stabilizing the overall structure, and the retaining edge, when multiple material frames 701 are bolted together, allows the retaining edge to face outwards, providing protection and preventing the graphite plate from easily falling off.

[0034] Specifically, in this embodiment, a pressure spring 805 is sleeved on the surface of the damping rod 804, and an insert block 802 is integrally formed at the bottom of the upper bracket 801. One end of the pressure spring 805 is fixedly connected to the insert block 802. The insert block 802 structure better accommodates the damping rod 804 and the pressure spring 805 for installation. The insert block 802 is partially inserted into the lower bracket 803, which also better reinforces the connection between the upper bracket 801 and the lower bracket 803.

[0035] The bottom of the lower bracket 803 is integrally formed with a mounting edge 806, which is bolted to the surface of the material frame 701. The mounting edge 806 is designed for easy bolt-fitting and embedding into the material frame 701, facilitating easy assembly and disassembly.

[0036] In summary, the energy-saving loading structure provided in this embodiment has the following advantages:

[0037] In practical use, each material frame 701 is first installed between the inner walls of the mounting frame 1. Then, the material frames 701 are secured together using bolts and the support mechanism 8. During this process, the specific number of material frames 701 can be selected according to requirements, and they can be directly disassembled and installed as needed. After this step, the overall assembly of the mounting frame 1 forms a centralized storage structure, allowing for loading via hoisting or other transportation methods as needed. Graphite plates are placed sequentially inside each material frame 701 and then sent into specific equipment for low-carbon calcination. During the low-carbon calcination process, the openings on the material frames 701, the first ventilation port 703, and the second ventilation port 704 work together to create good ventilation, ensuring the graphite plates are treated more evenly and guaranteeing overall processing efficiency. In this process, the support mechanism 8 assists in the overall structural safety. When subjected to potential impacts or vibrations, the upper support 801 and lower support 803 are stressed, causing the damping rod 804 in the middle section to be compressed in conjunction with the pressure spring 805, providing a certain support effect and creating a certain deformation space to prevent direct damage.

[0038] The above are merely preferred embodiments of the present utility model and are not intended to limit the implementation methods and protection scope of the present utility model. Those skilled in the art should realize that any equivalent substitutions and obvious changes made based on the description and illustrations of the present utility model should be included within the protection scope of the present utility model.

Claims

1. Energy-saving type charging structure for low-carbon roasting of graphite plates, characterized in that, Include: The installation mechanism, including the installation frame (1), the bottom plate (2) and the crossbeam (3), the bottom surface of the installation frame (1) is symmetrically bolted with two bottom plates (2), and the top surface of the installation frame (1) is bolted with a crossbeam (3); The charging mechanism (7) includes a material frame (701), a protruding block (702), a first vent (703), a second vent (704) and a mounting hole (705), the two side surfaces of the material frame (701) are bolted to the inner walls of the installation frame (1) respectively, the top of the material frame (701) is uniformly provided with a first vent (703) in sequence, the two side surfaces of the material frame (701) are provided with a second vent (704) respectively, and the two ends of the material frame (701) are provided with openings respectively; The support mechanism (8) includes an upper support (801), a lower support (803), a damping rod (804), a pressure spring (805) and a mounting edge (806), the upper support (801) is bolted to the bottom surface of the material frame (701), the lower support (803) is bolted to the top surface of the other material frame (701), the damping rod (804) is installed in the lower support (803), and the top of the damping rod (804) is connected with the upper support (801).

2. The energy saving type charging structure according to claim 1, wherein The surface of the crossbeam (3) is provided with an open slot, and a guide rod (4) is installed in the open slot, a sliding block (5) is slidably installed on the guide rod (4), and a hook (6) is assembled on the surface of the sliding block (5).

3. The energy saving type charging structure according to claim 1, wherein The inner wall surface of the material frame (701) is uniformly provided with a protruding block (702) in sequence, and the protruding block (702) is an integrated forming structure on the surface of the material frame (701).

4. The energy saving type charging structure according to claim 3, wherein The two side openings of the material frame (701) are uniformly provided with mounting holes (705) in sequence, and the surface of one of the side openings of the material frame (701) is integrally formed with a retaining edge.

5. The energy saving type charging structure according to claim 1, wherein The surface of the damping rod (804) is sleeved with a pressure spring (805), the bottom of the upper support (801) is integrally formed with an insertion block (802), and one end of the pressure spring (805) is fixedly connected with the insertion block (802).

6. The energy-saving charging structure according to any one of claims 1 to 5, wherein The bottom of the lower support (803) is integrally formed with a mounting edge (806), and the mounting edge (806) is bolted and fixed with the surface of the material frame (701).

Citation Information

Patent Citations

  • Charging sealing structure for graphite forming die

    CN218640409U