Carbon neutralization and carbon reduction sealing device
By designing a carbon neutralization and carbon reduction storage device, which uses honeycomb adsorption plates and reaction liquid to treat carbon dioxide, and combines detectors and air pumps to achieve efficient storage, the problem of carbon dioxide capture in industrial production is solved, and the collection and monitoring efficiency is improved.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- GUANGZHOU VOCATIONAL COLLEGE OF TECH & BUSINESS
- Filing Date
- 2025-05-16
- Publication Date
- 2026-04-17
AI Technical Summary
Existing industrial production methods struggle to effectively capture and store carbon dioxide, leading to its release into the air and impacting net greenhouse gas emissions.
A carbon neutralization and carbon reduction storage device was designed, comprising a base, a first storage component, a second storage component, and a diversion component. It utilizes a honeycomb adsorption plate to adsorb carbon dioxide and converts it into a solid compound through a reaction liquid. Combined with a detector and an air pump, it performs real-time monitoring and secondary processing to achieve efficient collection and storage.
It improves the collection efficiency and monitoring flexibility of carbon dioxide, enhances the convenience and flexibility of the device, and achieves efficient carbon dioxide storage and emission reduction.
Smart Images

Figure CN224126960U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the technical field of carbon neutralization and carbon reduction storage devices, and more specifically, it relates to a carbon neutralization and carbon reduction storage device. Background Technology
[0002] Carbon neutrality refers to achieving net zero greenhouse gas emissions by reducing and offsetting greenhouse gas emissions such as carbon dioxide (CO2) from human activities. Its basic goal is to balance emissions and absorption to avoid the negative impact of greenhouse gases on the climate.
[0003] Because some industrial production processes cannot completely reduce carbon dioxide emissions through clean energy transitions, a significant amount of carbon dioxide is still released into the air during production, necessitating carbon dioxide capture and storage.
[0004] Therefore, in view of this, we will study and improve the existing structure and its shortcomings to provide a carbon neutralization and carbon reduction storage device, in order to achieve a more practical purpose. Utility Model Content
[0005] To solve the above-mentioned technical problems, this utility model provides a carbon neutralization and carbon reduction storage device, which is achieved by the following specific technical means:
[0006] A carbon neutralization and carbon reduction storage device includes a base. A first storage component, a second storage component, and a diversion component are sequentially mounted on the top of the base. The first storage component includes a first collection box, a first air inlet pipe, a plurality of honeycomb adsorption plates, and a first connecting pipe. The first collection box is installed on one side of the top of the base, the first air inlet pipe is installed on one side of the first collection box, the plurality of honeycomb adsorption plates are detachably installed inside the first collection box, and the first connecting pipe is installed on the other side of the first collection box. The second storage component includes a second collection bucket, a second air inlet pipe, and a second connecting pipe. The second collection bucket is installed on the top of the base and is filled with a reactive... The second air inlet pipe is installed on one side of the top of the second collection tank, and the second air inlet pipe is connected to the first connecting pipe through a flange. The second connecting pipe is installed on the other side of the top of the second collection tank. The diversion assembly includes a three-way valve, a third connecting pipe, a fourth connecting pipe, and an exhaust pipe. The three-way valve is installed on one side of the top of the base through a bracket. The third connecting pipe is installed on one side of the three-way valve and connected to the second connecting pipe through a flange. The fourth connecting pipe is installed on one side of the top of the base through a bracket, and both ends of the fourth connecting pipe are connected to the three-way valve and the first collection tank, respectively. The exhaust pipe is installed on one side of the three-way valve.
[0007] Furthermore, a first detector is installed inside the first connecting pipe.
[0008] Furthermore, a second detector is installed inside the third connecting pipe.
[0009] Furthermore, an air pump is installed on one side of the fourth connecting pipe.
[0010] Furthermore, the top of the first collection box is provided with several slots, and a pair of limiting slots are symmetrically provided on both sides of the slots.
[0011] Furthermore, the top of the honeycomb adsorption plate is provided with a pair of sliding grooves, and a pair of pressing plates are slidably installed in the pair of sliding grooves. A pair of limiting blocks matching the size of the limiting grooves are symmetrically installed at the bottom of the pair of pressing plates, and one end of the limiting block passes through one side of the honeycomb adsorption plate and is slidably connected to the honeycomb adsorption plate. Several compression springs are installed on the opposite side of the pair of honeycomb adsorption plates, and the other end of the compression springs is connected to one side of the sliding groove.
[0012] Furthermore, a controller is installed on one side of the top of the base.
[0013] Compared with the prior art, the present invention has the following beneficial effects:
[0014] The carbon neutralization and carbon reduction storage device of this utility model, through the coordinated use of a base, a first storage component, a first collection box, a first air inlet pipe, a honeycomb adsorption plate, a first connecting pipe, a second storage component, a second collection bucket, a second air inlet pipe, a second connecting pipe, a diversion component, a three-way valve, a third connecting pipe, a fourth connecting pipe, an exhaust pipe, a first detector, a second detector, an air pump, a slot, a limiting groove, a sliding groove, a pressing plate, a limiting block, a compression spring, and a controller, facilitates the adsorption and collection of greenhouse gases such as carbon dioxide through the first and second storage components, thereby achieving the purpose of reducing carbon emissions and improving the collection effect of the carbon neutralization and carbon reduction storage device.
[0015] The carbon neutralization and carbon reduction storage device of this utility model, through the coordinated use of a base, a diversion component, a first detector, a second detector, an air pump, a slot, a limiting groove, a sliding groove, a pressing plate, a limiting block, a compression spring, and a controller, facilitates real-time monitoring of the content of greenhouse gases such as carbon dioxide within the device, and enables monitoring of the collection capabilities of the first and second storage components. This improves the flexibility and convenience of the carbon neutralization and carbon reduction storage device, and enhances its effectiveness. Attached Figure Description
[0016] Figure 1 This is a three-dimensional schematic diagram of the present invention.
[0017] Figure 2 This is a three-dimensional sectional view of the internal structure of the first collection box of this utility model.
[0018] Figure 3 This is a three-dimensional sectional view of the internal structure of the second collection bucket of this utility model.
[0019] Figure 4 This is the utility model Figure 2 An enlarged schematic diagram of part A in the middle.
[0020] In the diagram, the correspondence between component names and drawing numbers is as follows:
[0021] 1. Base; 2. First sealing assembly; 201. First collection box; 202. First air intake pipe; 203. Honeycomb adsorption plate; 204. First connecting pipe; 3. Second sealing assembly; 301. Second collection bucket; 302. Second air intake pipe; 303. Second connecting pipe; 4. Diverting assembly; 401. Three-way valve; 402. Third connecting pipe; 403. Fourth connecting pipe; 404. Exhaust pipe; 5. First detector; 6. Second detector; 7. Air pump; 8. Slot; 9. Limiting slot; 10. Slide groove; 11. Pressing plate; 12. Limiting block; 13. Compression spring; 14. Controller. Detailed Implementation
[0022] The embodiments of this utility model will be described in further detail below with reference to the accompanying drawings and examples. The following examples are for illustrative purposes only and should not be construed as limiting the scope of this utility model.
[0023] In the description of this utility model, unless otherwise stated, "a plurality of" means two or more; the terms "upper," "lower," "left," "right," "inner," "outer," "front end," "rear end," "head," "tail," etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings, and 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, and therefore should not be construed as a limitation of this utility model. In addition, the terms "first," "second," "third," etc., are used for descriptive purposes only and should not be construed as indicating or implying relative importance.
[0024] In the description of this utility model, it should be noted that, unless otherwise explicitly specified and limited, the terms "connected" and "linked" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium. Those skilled in the art can understand the specific meaning of the above terms in this utility model based on the specific circumstances. Example
[0025] As attached Figure 1 To be continued Figure 4 As shown:
[0026] This utility model provides a carbon neutralization and carbon reduction storage device, including a base 1. A first storage component 2, a second storage component 3, and a diversion component 4 are sequentially installed on the top of the base 1. The first storage component 2 includes a first collection box 201, a first air inlet pipe 202, several honeycomb adsorption plates 203, and a first connecting pipe 204. The first collection box 201 is installed on one side of the top of the base 1. The first air inlet pipe 202 is installed on one side of the first collection box 201 and is used to connect to a pre-installed device to introduce greenhouse gases such as carbon dioxide into the first collection box 201. Several honeycomb adsorption plates 203 are detachably installed in the first collection box 201. The honeycomb adsorption plates 203 can be activated carbon plates, etc., and are used to absorb greenhouse gases such as carbon dioxide. The first connecting pipe 204 is installed on the other side of the first collection box 201 and is used to discharge the gas that has been stored once.
[0027] The second sealing assembly 3 includes a second collection tank 301, a second air inlet pipe 302, and a second connecting pipe 303. The second collection tank 301 is installed on the top of the base 1. An inlet and an outlet can be added to the second collection tank 301. If the second collection tank 301 needs to be directly recycled and buried after sealing, there is no need to add an inlet and an outlet, thus reducing the cost of use. The second collection tank 301 is filled with a reaction liquid, which can be an amine solution, etc. When carbon dioxide enters the reaction liquid, it reacts with the reaction liquid and produces solid compounds such as carbonates. The second air inlet pipe 302 is installed on one side of the top of the second collection tank 301. The bottom end of the second air inlet pipe 302 extends into the second collection tank 301 near the bottom. The second air inlet pipe 302 is connected to the first connecting pipe 204 through a flange. The second connecting pipe 303 is installed on the other side of the top of the second collection tank 301. The bottom end of the second connecting pipe 303 extends into the second collection tank 301 near the top and is used to discharge gas.
[0028] The diversion assembly 4 includes a three-way valve 401, a third connecting pipe 402, a fourth connecting pipe 403, and an exhaust pipe 404. The three-way valve 401 is mounted on one side of the top of the base 1 via a bracket. The three-way valve 401 is used to control the flow direction of the gas. Its input end is kept in communication with the second sealing assembly 3, and its output end is kept switching back and forth between the fourth connecting pipe 403 and the exhaust pipe 404. The third connecting pipe 402 is mounted on one side of the three-way valve 401 and is connected to the second connecting pipe 303 via a flange, which facilitates the separate separation of the second collection tank 301 from the device. The fourth connecting pipe 403 is mounted on one side of the top of the base 1 via a bracket, and its two ends are connected to the three-way valve 401 and the first collection box 201, respectively. The connection point between the fourth connecting pipe 403 and the first collection box 201 is located on one side of the first collection box 201 near the first inlet pipe 202, which facilitates secondary treatment of greenhouse gases such as carbon dioxide that have not been fully treated. The exhaust pipe 404 is mounted on one side of the three-way valve 401.
[0029] The first connecting pipe 204 is equipped with a first detector 5.
[0030] The first detector 5 is used to detect the content of greenhouse gases such as carbon dioxide in the gas after one treatment. When a significant increase in the content of greenhouse gases is detected in a short period of time, the first detector 5 transmits an electrical signal to the controller 14 to remind the staff that the honeycomb adsorption plate 203 is saturated and needs to be replaced.
[0031] The third connecting pipe 402 is equipped with a second detector 6.
[0032] The second detector 6 is used to detect the content of greenhouse gases such as carbon dioxide in the gas after two treatments. If the content of greenhouse gases in the gas after two treatments does not meet the emission standards, the three-way valve 401 closes the exhaust pipe 404. At this time, the gas can return to the first storage component 2 and the second storage component 3 through the fourth connecting pipe 403 for secondary treatment.
[0033] An air pump 7 is installed on one side of the fourth connecting pipe 403.
[0034] This facilitates the guidance of gas within the fourth connecting pipe 403, preventing backflow.
[0035] The top of the first collection box 201 is provided with several slots 8, and a pair of limiting slots 9 are symmetrically provided on both sides of the slots 8.
[0036] The bottom of the slot 8 extends to the bottom of the first collection box 201, which can improve the stability of the honeycomb adsorption plate 203 during insertion. The shape of the pair of limiting slots 9 is square.
[0037] The honeycomb adsorption plate 203 has a pair of sliding grooves 10 at its top. A pair of pressing plates 11 are slidably installed in the pair of sliding grooves 10. A pair of limiting blocks 12 matching the size of the limiting groove 9 are symmetrically installed at the bottom of the pair of pressing plates 11. One end of the limiting block 12 passes through one side of the honeycomb adsorption plate 203 and is slidably connected to the honeycomb adsorption plate 203. Several compression springs 13 are installed on the opposite side of the pair of honeycomb adsorption plates 203. The other end of the compression springs 13 is connected to one side of the sliding groove 10.
[0038] The honeycomb adsorption plate 203 is fixed by the engagement between the limiting block 12 and the limiting groove 9. When the staff presses the pair of pressing plates 11, the pair of limiting blocks 12 move and disengage from the pair of limiting grooves 9, so that the limiting blocks 12 release the limiting of the honeycomb adsorption plate 203, thereby making it easy to remove the honeycomb adsorption plate 203. The slot 8 and the position where the surface of the honeycomb adsorption plate 203 connects with the slot 8 are provided with sealing structures such as rubber sealing gaskets, which can improve the sealing performance of the first collection box 201.
[0039] The controller 14 is installed on one side of the top of the base 1.
[0040] The controller 14 is electrically connected to the first detector 5, the second detector 6 and the air pump 7 respectively, which facilitates the control of the overall circuit of the device.
[0041] The working principle of this embodiment is as follows: When using this carbon neutralization and carbon reduction storage device, the operator first connects the pre-installed device to the first air inlet pipe 202. After connection, the gas to be stored is introduced into the first air inlet pipe 202. The introduced gas first enters the first collection box 201, where several honeycomb adsorption plates 203 adsorb greenhouse gas components. When the adsorbed gas enters the first connecting pipe 204, the first detector 5 can detect the gas composition. When a significant increase in greenhouse gas content is detected in a short period of time, the first detector 5 transmits an electrical signal to the controller 14, reminding the operator that the honeycomb adsorption plates 203 are saturated and need to be replaced. The gas in the first connecting pipe 204... The gas enters the second collection tank 301 through the second intake pipe 302. The reaction liquid in the collection tank reacts with greenhouse gases such as carbon dioxide to produce solid compounds, achieving secondary collection of greenhouse gases. The remaining gas is discharged through the third connecting pipe 402. At this time, the second detector 6 detects the gas composition. When it is detected that the greenhouse gas content in the gas after two treatments does not meet the emission standards, the three-way valve 401 closes the exhaust pipe 404. At this time, the gas can return to the first storage component 2 and the second storage component 3 through the fourth connecting pipe 403 for secondary treatment. When it is detected that the emission standards are met, the three-way valve 401 closes the fourth connecting pipe 403. At this time, the gas can be directly discharged through the exhaust pipe 404.
[0042] The embodiments of this utility model are given for illustrative and descriptive purposes only, and are not intended to be exhaustive or to limit the utility model to the forms disclosed. Many modifications and variations will be apparent to those skilled in the art. The embodiments were chosen and described in order to better illustrate the principles and practical applications of this utility model, and to enable those skilled in the art to understand this utility model and design various embodiments with various modifications suitable for a particular purpose.
Claims
1. A carbon neutral carbon reduction and sequestration device comprising a base (1) characterised in that: The top of the base (1) is sequentially equipped with a first sealing assembly (2), a second sealing assembly (3), and a diversion assembly (4). The first sealing assembly (2) includes a first collection box (201), a first air inlet pipe (202), several honeycomb adsorption plates (203), and a first connecting pipe (204). The first collection box (201) is installed on one side of the top of the base (1), the first air inlet pipe (202) is installed on one side of the first collection box (201), several honeycomb adsorption plates (203) are detachably installed in the first collection box (201), and the first connecting pipe (204) is installed on the other side of the first collection box (201). The second sealing assembly (3) includes a second collection bucket (301), a second air inlet pipe (302), and a second connecting pipe (303). The second collection bucket (301) is installed on the top of the base (1), and the second collection bucket (301) is filled with reaction liquid. The second air inlet pipe (202) is installed on the other side of the base (1). 302) is installed on one side of the top of the second collection bucket (301), and the second air inlet pipe (302) is connected to the first connecting pipe (204) through a flange. The second connecting pipe (303) is installed on the other side of the top of the second collection bucket (301). The diversion assembly (4) includes a three-way valve (401), a third connecting pipe (402), a fourth connecting pipe (403) and an exhaust pipe (404). The three-way valve (401) is installed on one side of the top of the base (1) through a bracket. The third connecting pipe (402) is installed on one side of the three-way valve (401) and connected to the second connecting pipe (303) through a flange. The fourth connecting pipe (403) is installed on one side of the top of the base (1) through a bracket. The two ends of the fourth connecting pipe (403) are respectively connected to the three-way valve (401) and the first collection box (201). The exhaust pipe (404) is installed on one side of the three-way valve (401).
2. The carbon neutralization, reduction and storage device according to claim 1, wherein: The first detector (5) is installed inside the first connecting pipe (204).
3. The carbon neutralization and reduction and storage device according to claim 1, wherein: A second detector (6) is installed inside the third connecting pipe (402).
4. The carbon neutralization and reduction and storage device according to claim 1, wherein: An air pump (7) is installed on one side of the fourth connecting pipe (403).
5. The carbon neutralization and reduction and storage device according to claim 1, characterized by: The top of the first collection box (201) is provided with several slots (8), and a pair of limiting slots (9) are symmetrically provided on both sides of the slots (8).
6. The carbon neutralization and reduction and storage device according to claim 5, characterized by: The top of the honeycomb adsorption plate (203) is provided with a pair of sliding grooves (10), and a pair of pressing plates (11) are slidably installed in the pair of sliding grooves (10). A pair of limiting blocks (12) matching the size of the limiting groove (9) are symmetrically installed at the bottom of the pair of pressing plates (11). One end of the limiting block (12) passes through one side of the honeycomb adsorption plate (203) and is slidably connected to the honeycomb adsorption plate (203). Several compression springs (13) are installed on the opposite side of the pair of honeycomb adsorption plates (203), and the other end of the compression springs (13) is connected to one side of the sliding groove (10).
7. The carbon neutralization and reduction and storage device according to claim 1, wherein: A controller (14) is installed on one side of the top of the base (1).