Carbon emission intelligent monitoring and control platform

By employing multiple carbon emission detection devices and an independent gas delivery system in the intelligent carbon emission monitoring and control platform, the problem of inaccurate detection data in existing technologies has been solved, achieving accuracy and reliability in carbon emission detection.

CN224137258UActive Publication Date: 2026-04-17TAIZHOU QICHEN ENERGY SAVING & ENVIRONMENTAL PROTECTION TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
TAIZHOU QICHEN ENERGY SAVING & ENVIRONMENTAL PROTECTION TECH CO LTD
Filing Date
2025-01-14
Publication Date
2026-04-17

AI Technical Summary

Technical Problem

Existing carbon emission detection equipment often only detects a single unit of gas, leading to randomness and inaccuracy in the detection data.

Method used

Design a carbon emission intelligent monitoring and control platform. Employ multiple carbon emission detection devices to detect the gas in different working chambers. Air is delivered to these working chambers via a gas delivery device to achieve comparison and collection of multiple carbon content data. An independent delivery system is used to ensure the independence between each working chamber, and impurities are filtered through protective components to improve detection accuracy.

Benefits of technology

By working in tandem with multiple carbon emission detection devices, the accuracy and precision of carbon emission detection are improved, the randomness of detection data is reduced, and the reliability of detection results is ensured.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model belongs to the technical field of environmental protection, and particularly relates to a carbon emission intelligent monitoring and management and control platform, which is characterized by comprising a main body provided with an end cover; the mounting frame is arranged in the main body, and the interior of the main body is divided into a plurality of working cavities and a plurality of mounting cavities; the multiple pieces of carbon emission detection equipment are arranged in the mounting cavity and face the working cavity; the gas conveying device is used for conveying air into the plurality of working cavities; wherein the plurality of carbon emission detection devices are used for carrying out carbon content detection on air in the plurality of working cavities, and producing a plurality of carbon content data for comparison and collection.
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Description

Technical Field

[0001] This utility model belongs to the field of environmental protection technology, and in particular relates to an intelligent carbon emission monitoring and control platform. Background Technology

[0002] Currently, environmental pollution harms human health. Common environmental problems include smoke pollution and smog pollution. Environmental protection departments should strengthen the monitoring of pollution sources. Although carbon dioxide cannot directly harm human health, it is the most common greenhouse gas in the air.

[0003] Existing carbon emission detection equipment often only detects a single unit of gas, which leads to randomness in the detection data and consequently, insufficient accuracy. Therefore, we have specially designed an intelligent carbon emission monitoring and control platform. Utility Model Content

[0004] The purpose of this invention is to address the aforementioned technical problems by providing an intelligent carbon emission monitoring and control platform that achieves accurate detection.

[0005] In view of this, the present invention provides a carbon emission intelligent monitoring and control platform, characterized in that it includes:

[0006] The main body, with end caps on it;

[0007] The mounting frame is set inside the main body and is divided into multiple working cavities and multiple mounting cavities within the main body;

[0008] Carbon emission detection equipment, with multiple carbon emission detection devices installed inside the installation cavity and facing the working cavity;

[0009] A gas delivery device that delivers air into multiple working chambers;

[0010] Among them, multiple carbon emission detection devices detect the carbon content of the air in multiple working chambers and generate multiple carbon content data for comparison and collection.

[0011] In the above technical solution, the mounting frame further includes:

[0012] Fixture;

[0013] First isolation frame;

[0014] Second isolation frame;

[0015] Among them, multiple first isolation frames and second isolation frames are set on the contrasting surfaces on both sides of the fixed frame;

[0016] Among them, a working chamber is formed between multiple first isolation frames, and the multiple working chambers include a first working chamber, a second working chamber and a third working chamber. A first through hole is provided on the first isolation frame, and a gas conveying device is connected to the first through hole and assembled onto the multiple first isolation frames.

[0017] Among them, an installation cavity is formed between multiple second isolation frames, the carbon emission detection equipment is installed in the installation cavity, and the fixed frame is provided with a through groove corresponding to the installation cavity. The carbon emission detection equipment detects the working cavity through the through groove.

[0018] The main body is provided with a second through hole corresponding to the first through hole.

[0019] In the above technical solution, the gas conveying device further includes:

[0020] air pump;

[0021] First conveying system;

[0022] Second conveyor system;

[0023] Third conveying system;

[0024] The first delivery system includes a first air pipe and a second air pipe. The first air pipe is connected to an air pump and is connected to the first working chamber. The second air pipe is connected to the first working chamber and the outside.

[0025] The second delivery system includes a third air pipe and a fourth air pipe. The third air pipe is connected to the air pump and to the second working chamber, and the fourth air pipe is connected to the second working chamber and the outside.

[0026] The third delivery system includes a fifth air pipe and a sixth air pipe. The fifth air pipe is connected to the air pump and to the third working chamber, while the sixth air pipe connects the third working chamber to the outside.

[0027] The first working chamber, the second working chamber, and the third working chamber are independent of each other.

[0028] Furthermore, the above technical solution also includes:

[0029] The protective component is provided in the first working chamber, the second working chamber and the third working chamber, and is connected to the first isolation frame. The protective component separates a buffer chamber from the first working chamber, the second working chamber and the third working chamber.

[0030] The first conveying system, the second conveying system, and the third conveying system are disposed within the buffer chambers of the first working chamber, the second working chamber, and the third working chamber.

[0031] In the above technical solution, the protection component further includes:

[0032] A fixing frame is provided on the wall surface of the first isolation frame on both sides of the first working chamber, the second working chamber and the third working chamber;

[0033] The metal wire mesh is set on a fixed frame and has buffer chambers separated in the first working chamber, the second working chamber and the third working chamber.

[0034] Furthermore, the above technical solution also includes:

[0035] A sealing protrusion is provided on the inner wall of the end cap and extends into the first working cavity, the second working cavity and the third working cavity. A sealing patch is provided on the outer wall of the sealing protrusion.

[0036] Furthermore, the above technical solution also includes:

[0037] A sealing strip is provided on the main body port, and a first groove is provided on the main body port, and a second groove is formed on the end cap accordingly;

[0038] The sealing strip fits into the first and second grooves when the end cap is connected to the main body.

[0039] Furthermore, the above technical solution also includes:

[0040] An opening is provided on the end cap and corresponds to the carbon emission detection equipment.

[0041] Among them, the carbon emission detection equipment is exposed through an opening.

[0042] The beneficial effects of this invention are as follows: by setting up multiple carbon emission detection devices and performing carbon emission detection on gases from the same source that enter different working chambers, the accuracy of carbon emission detection can be effectively improved, thereby facilitating its use. Attached Figure Description

[0043] Figure 1 This is a perspective view of the present invention;

[0044] Figure 2 This is a schematic diagram of the internal structure of this utility model;

[0045] Figure 3 This is a schematic diagram of the assembly of the main body and the mounting frame of this utility model;

[0046] Figure 4 This is a schematic diagram of the assembly of the end cap and the mounting frame of this utility model;

[0047] Figure 5 yes Figure 1 Cross-sectional view;

[0048] The markings in the diagram represent: 1. Main body; 11. Working chamber; 111. First working chamber; 112. Second working chamber; 113. Third working chamber; 12. Mounting chamber; 13. Second through hole; 14. Buffer chamber; 15. First groove; 2. End cap; 21. Sealing protrusion; 22. Second groove; 3. Mounting frame; 31. Fixing frame; 311. Through groove; 32. First isolation frame; 321. First through hole; 33. Second isolation frame; 4. Carbon emission detection equipment; 5. Gas delivery device; 51. Air pump; 521. First air pipe; 522. Second air pipe; 531. Third air pipe; 532. Fourth air pipe; 541. Fifth air pipe; 542. Sixth air pipe; 6. Protective component; 61. Fixing frame; 62. Metal wire mesh; 7. Sealing patch; 8. Sealing strip; 9. Opening. Detailed Implementation

[0049] The technical solutions of the embodiments of this application will be clearly described below with reference to the accompanying drawings. Obviously, the described embodiments are only some, not all, of the embodiments of this application. All other embodiments obtained by those skilled in the art based on the embodiments of this application are within the scope of protection of this application.

[0050] Example 1:

[0051] This embodiment provides a smart carbon emission monitoring and control platform, characterized in that it includes:

[0052] Main body 1, with end cap 2 provided on the main body 1;

[0053] Mounting frame 3 is set inside the main body 1 and is divided into multiple working cavities 11 and multiple mounting cavities 12 within the main body 1;

[0054] Carbon emission detection device 4, multiple carbon emission detection devices 4 are installed in the mounting cavity 12 and face the working cavity 11;

[0055] Gas delivery device 5 delivers air into multiple working chambers 11;

[0056] Among them, multiple carbon emission detection devices 4 detect the carbon content of the air in multiple working chambers 11 and generate multiple carbon content data for comparison and collection.

[0057] As can be seen from this embodiment, a carbon emission intelligent monitoring and control platform includes a main body 1, an installation frame 3, a carbon emission detection device 4, and a gas delivery device 5. The carbon emission detection device 4 is an infrared carbon emission detector.

[0058] An end cap 2 is connected to the main body 1. An installation frame 3 is provided inside the main body 1. The installation frame 3 divides the space inside the main body 1 and separates multiple working chambers 11 and multiple installation chambers 12 inside the main body 1. The multiple working chambers 11 and multiple installation chambers 12 are arranged adjacent to each other. The carbon emission detection device 4 is installed in the installation chamber 12 and faces the working chamber 11. Furthermore, the multiple working chambers 11 are relatively independent. The carbon emission detection device 4 only detects the gas entering the working chamber 11 of the corresponding installation chamber 12. The gas delivery device 5 is installed inside the main body 1 and is connected to the multiple working chambers 11 separately.

[0059] In use, the gas delivery device 5 delivers outside air to multiple working chambers 11, and the carbon emission detection device 4 performs carbon emission detection on the gas entering the corresponding working chamber 11. The multiple carbon emission detection devices 4 are interconnected, and the carbon emission data of the gas in multiple working chambers 11 are compared and analyzed after each individual detection is completed.

[0060] By setting up multiple carbon emission detection devices 4 and performing carbon emission detection on gases from the same source that enter different working chambers 11, the accuracy of carbon emission detection can be effectively improved, thus facilitating use.

[0061] Example 2:

[0062] This embodiment provides a carbon emission intelligent monitoring and control platform, which, in addition to the technical solutions of the above embodiments, also has the following technical features.

[0063] The mounting frame includes:

[0064] Fixture 31;

[0065] First isolation frame 32;

[0066] Second isolation frame 33;

[0067] Among them, multiple first isolation frames 32 and second isolation frames 33 are arranged on the contrasting surfaces on both sides of the fixed frame 31;

[0068] Among them, a working chamber 11 is formed between multiple first isolation frames 32. The multiple working chambers 11 include a first working chamber 111, a second working chamber 112 and a third working chamber 113. A first through hole 321 is provided on the first isolation frame 32. The gas conveying device 5 is connected to the first through hole 321 and is assembled onto the multiple first isolation frames 32.

[0069] Among them, a mounting cavity 12 is formed between multiple second isolation frames 33, the carbon emission detection device 4 is installed in the mounting cavity 12, and a through groove 311 is provided on the fixing frame 31 corresponding to the mounting cavity 12. The carbon emission detection device 4 detects the working cavity 11 through the through groove 311.

[0070] The main body 1 is provided with a second through hole 13 corresponding to the first through hole 321.

[0071] As can be seen from this embodiment, the mounting frame includes a fixed frame 31, a first isolation frame 32, and a second isolation frame 33;

[0072] The first isolation frame 32 and the second isolation frame 33 are formed on both sides of the fixed frame 31. The entire frame is placed inside the main body 1 and the edge gaps are sealed with glass glue.

[0073] The first isolation frame 32 has four sections on one side of the fixed frame 31, forming three working chambers 11, namely the first working chamber 111, the second working chamber 112, and the third working chamber 113. Multiple first through holes 321 are formed on the wall surface of one end of the first isolation frame 32, and a second through hole 13 is provided on the wall surface of the main body 1 corresponding to the first through holes 321. The first through holes 321 and the second through holes 13 are used to connect the gas conveying device 5. Furthermore, after the gas conveying device 5 is connected to the first through holes 321 and the second through holes 13, it still ensures that the spaces between the first working chamber 111, the second working chamber 112, and the third working chamber 113 are relatively independent and that the gas does not flow between them. This ensures that multiple carbon emission detection devices 4 can independently detect independent data, thereby avoiding air pollution between adjacent working chambers 11 (i.e., air circulation leading to uniform air quality, which would affect the detection data).

[0074] Two second isolation frames 33 are provided on the other side of the fixed frame 31, forming three mounting cavities 12. The three mounting cavities 12 correspond to the first working cavity 111, the second working cavity 112, and the third working cavity 113. The fixed frame 31 has three through slots 311 on the fixed frame 31 corresponding to the first working cavity 111, the second working cavity 112, and the third working cavity 113, so that the carbon emission detection equipment 4 can detect the gas in the first working cavity 111, the second working cavity 112, and the third working cavity 113 through the through slots 311.

[0075] Example 3:

[0076] This embodiment provides a carbon emission intelligent monitoring and control platform, which, in addition to the technical solutions of the above embodiments, also has the following technical features.

[0077] Gas delivery device 5 includes:

[0078] Air pump 51;

[0079] First conveying system;

[0080] Second conveyor system;

[0081] Third conveying system;

[0082] The first delivery system includes a first air pipe 521 and a second air pipe 522. The first air pipe 521 is connected to the air pump 51 and is connected to the first working chamber 111. The second air pipe 522 is connected to the first working chamber 111 and the outside.

[0083] The second delivery system includes a third air pipe 531 and a fourth air pipe 532. The third air pipe 531 is connected to the air pump 51 and is connected to the second working chamber 112. The fourth air pipe 532 is connected to the second working chamber 112 and the outside.

[0084] The third delivery system includes a fifth air pipe 541 and a sixth air pipe 542. The fifth air pipe 541 is connected to the air pump 51 and is connected to the third working chamber 113. The sixth air pipe 542 is connected to the third working chamber 113 and the outside.

[0085] The first working chamber 111, the second working chamber 112, and the third working chamber 113 are independent of each other.

[0086] As can be seen from this embodiment, the gas conveying device 5 includes a gas pump 51, a first conveying system, a second conveying system, and a third conveying system;

[0087] The first delivery system includes a first air pipe 521 and a second air pipe 522. One end of the first air pipe 521 is connected to an air pump 51, and the other end is connected to the first working chamber 111 through a second through hole 13 on one side wall of the main body 1. One end of the second air pipe 522 is connected to the first working chamber 111, and the other end extends to the outside by passing through the first through hole 321 on the first isolation frame 32 on the adjacent second working chamber 112 and third working chamber 113 and the second through hole 13 on the other side wall of the main body 1.

[0088] The second delivery system includes a third air pipe 531 and a fourth air pipe 532. The first section of the third air pipe 531 is connected to the air pump 51, and the other end extends into the second working chamber 112 through the second through hole 13 on one side wall of the main body 1 and the first through hole 321 on the first isolation frame 32 on both sides of the first working chamber 111. One end of the fourth air pipe 532 is connected into the second working chamber 112, and the other end extends to the outside through the first through hole 321 on the first isolation frame 32 on the adjacent third working chamber 113 and the second through hole 13 on the other side wall of the main body 1.

[0089] The third delivery system includes a fifth air pipe 541 and a sixth air pipe 542. One end of the fifth air pipe 541 is connected to the air pump 51, and the other end passes through the second through hole 13 on one side wall of the main body 1 and the first through hole 321 on the first isolation frame 32 on both sides of the first working chamber 111 and the second working chamber 112 to extend into the third working chamber 113. The other end passes through the first through hole 321 on the first isolation frame 32 and the second through hole 13 on the other side wall of the main body 1 to extend to the outside.

[0090] By setting up a first conveying system, a second conveying system, and a third conveying system, the first working chamber 111, the second working chamber 112, and the third working chamber 113 are relatively independent, which helps to improve the accuracy of the carbon emission detection equipment's detection data.

[0091] Example 4:

[0092] This embodiment provides a carbon emission intelligent monitoring and control platform, which, in addition to the technical solutions of the above embodiments, also has the following technical features.

[0093] The protection component 6 is provided in the first working chamber 111, the second working chamber 112 and the third working chamber 113 and is connected to the first isolation frame 32. The protection component 6 separates the buffer chamber 14 from the first working chamber 111, the second working chamber 112 and the third working chamber 113.

[0094] The first conveying system, the second conveying system, and the third conveying system are disposed in the buffer cavity 14 of the first working cavity 111, the second working cavity 112, and the third working cavity 113.

[0095] As can be seen from this embodiment, by setting the protection component 6, impurities can be filtered from the gas that is pumped by the air pump 51 into the first working chamber 111, the second working chamber 112 and the third working chamber 113, thereby avoiding the situation where too many gas impurities affect the operation of the carbon emission detection equipment 4.

[0096] Example 5:

[0097] This embodiment provides a carbon emission intelligent monitoring and control platform, which, in addition to the technical solutions of the above embodiments, also has the following technical features.

[0098] Protection component 6 includes:

[0099] A fixing frame 61 is provided on the wall surface of the first isolation frame 32 on both sides of the first working chamber 111, the second working chamber 112 and the third working chamber 113;

[0100] Metal wire mesh 62 is set on the fixed frame 61, and buffer chambers 14 are separated from the first working chamber 111, the second working chamber 112 and the third working chamber 113.

[0101] As can be seen from this embodiment, the protective component 6 includes a fixing frame 61 and a metal wire mesh 62;

[0102] The fixed frame 61 is fixed to the wall of the first isolation frame 32 on both sides of the first working chamber 111, the second working chamber 112 and the third working chamber 113 by welding;

[0103] The metal wire mesh 62 is connected to the fixing frame 61 fixed on the first isolation frame 32 on both sides of the first working chamber 111, the second working chamber 112 and the third working chamber 113, and a buffer cavity 14 is formed at the front end of the first working chamber 111, the second working chamber 112 and the third working chamber 113. The first conveying system, the second conveying system and the third conveying system are installed in the buffer cavity 14.

[0104] When in use, the metal wire mesh 62 can block large impurities in the buffer chamber 14, thereby preventing impurities in the gas from affecting the detection of carbon emission detection equipment 4.

[0105] Example 6:

[0106] This embodiment provides a carbon emission intelligent monitoring and control platform, which, in addition to the technical solutions of the above embodiments, also has the following technical features.

[0107] A sealing protrusion 21 is provided on the inner wall of the end cover 2 and extends into the first working cavity 111, the second working cavity 112 and the third working cavity 113. A sealing patch 7 is provided on the outer wall of the sealing protrusion 21.

[0108] As can be seen from this embodiment, a sealing protrusion 21 is provided on the inner wall of the end cap 2. After the end cap 2 is fitted with the main body 1, the sealing protrusion 21 will fit into the upper port of the first working chamber 111, the second working chamber 112 and the third working chamber 113. A sealing patch 7 is provided on the outer wall of the sealing protrusion 21 that fits with the first isolation frame 32, thereby sealing the fitting gap between the end cap 2 and the first isolation frame 32, which helps to improve the detection accuracy of the carbon emission detection device 4.

[0109] Example 7:

[0110] This embodiment provides a carbon emission intelligent monitoring and control platform, which, in addition to the technical solutions of the above embodiments, also has the following technical features.

[0111] A sealing strip 8 is provided on the port of the main body 1, and a first groove 15 is provided on the port of the main body 1, and a second groove 22 is formed on the end cap 2.

[0112] Among them, the sealing strip 8 is fitted into the first groove 15 and the second groove 22 when the end cap 2 is connected to the main body 1.

[0113] As can be seen from this embodiment, a first groove 15 is provided on the end face of the main body 1, and a second groove 22 is provided on the end cover 2 corresponding to the first groove 15. A sealing strip 8 is installed between the first groove 15 and the second groove 22. In use, after the end cover 2 is assembled with the main body 1, the sealing strip 8 is interference-fitted into the first groove 15 and the second groove, thereby sealing the space inside the main body 1, which helps to improve the detection effect.

[0114] Example 8:

[0115] This embodiment provides a carbon emission intelligent monitoring and control platform, which, in addition to the technical solutions of the above embodiments, also has the following technical features.

[0116] Opening 9 is provided on end cap 2 and corresponds to carbon emission detection device 4.

[0117] Among them, the carbon emission detection device 4 is exposed through the opening 9.

[0118] As can be seen from this embodiment, by setting an opening 9 at the position of the end cap 2 corresponding to the carbon emission detection device 4, the display panel of the carbon emission detection device 4 can be exposed, thereby facilitating observation by the user.

[0119] The embodiments of this application have been described above with reference to the accompanying drawings. Unless otherwise specified, the embodiments and features in the embodiments of this application can be combined with each other. This application is not limited to the specific embodiments described above. The specific embodiments described above are merely illustrative and not restrictive. Those skilled in the art can make many other forms under the guidance of this application without departing from the spirit and scope of the claims, and all of these forms are within the protection scope of this application.

Claims

1. A carbon emission intelligent monitoring and control platform, characterized in that, include: The main body (1) is provided with an end cap (2); The mounting frame (3) is set inside the main body (1) and is divided into multiple working cavities (11) and multiple mounting cavities (12) within the main body (1). Carbon emission detection equipment (4), a plurality of the carbon emission detection equipment (4) are arranged in the mounting cavity (12) and facing the working cavity (11). A gas delivery device (5) delivers air into multiple working chambers (11); Among them, multiple carbon emission detection devices (4) detect the carbon content of the air in multiple working chambers (11) and generate multiple carbon content data for comparison and collection.

2. The carbon emission intelligent monitoring and management platform according to claim 1, characterized in that, The mounting frame includes: Fixture (31); First isolation frame (32); Second isolation frame (33); Among them, multiple first isolation frames (32) and second isolation frames (33) are arranged on the contrasting surfaces on both sides of the fixed frame (31); Among them, a working chamber (11) is formed between the plurality of first isolation frames (32), the plurality of working chambers (11) include a first working chamber (111), a second working chamber (112) and a third working chamber (113), and a first through hole (321) is provided on the first isolation frame (32). The gas conveying device (5) is connected to the first through hole (321) and is assembled onto the plurality of first isolation frames (32). Among them, an installation cavity (12) is formed between multiple second isolation frames (33), the carbon emission detection device (4) is installed in the installation cavity (12), and a through groove (311) is provided on the fixing frame (31) corresponding to the installation cavity (12). The carbon emission detection device (4) detects the working cavity (11) through the through groove (311). The main body (1) is provided with a second through hole (13) corresponding to the first through hole (321).

3. The carbon emission intelligent monitoring and management platform according to claim 2, characterized in that, The gas conveying device (5) includes: Air pump (51); First conveying system; Second conveyor system; Third conveying system; The first delivery system includes a first air pipe (521) and a second air pipe (522). The first air pipe (521) is connected to an air pump (51) and is connected to a first working chamber (111). The second air pipe (522) is connected to the first working chamber (111) and the outside. The second delivery system includes a third air pipe (531) and a fourth air pipe (532). The third air pipe (531) is connected to the air pump (51) and is connected to the second working chamber (112). The fourth air pipe (532) is connected to the second working chamber (112) and the outside. The third delivery system includes a fifth air pipe (541) and a sixth air pipe (542). The fifth air pipe (541) is connected to an air pump (51) and is connected to the third working chamber (113). The sixth air pipe (542) is connected to the third working chamber (113) and the outside. The first working chamber (111), the second working chamber (112), and the third working chamber (113) are independent of each other.

4. The carbon emission intelligent monitoring and management platform according to claim 3, further characterized in that include: The protective component (6) is provided in the first working chamber (111), the second working chamber (112) and the third working chamber (113), and is connected to the first isolation frame (32). The protective component (6) separates the buffer chamber (14) from the first working chamber (111), the second working chamber (112) and the third working chamber (113). The first conveying system, the second conveying system and the third conveying system are disposed in the buffer cavity (14) of the first working cavity (111), the second working cavity (112) and the third working cavity (113).

5. The carbon emission intelligent monitoring and management platform according to claim 4, characterized in that, Protection component (6) includes: The fixing frame (61) is set on the wall surface of the first isolation frame (32) on both sides of the first working chamber (111), the second working chamber (112) and the third working chamber (113); Metal wire mesh (62) is set on a fixed frame (61) and buffer chambers (14) are separated in the first working chamber (111), the second working chamber (112) and the third working chamber (113).

6. The carbon emission intelligent monitoring and management platform according to claim 5, further characterized in that include: A sealing protrusion (21) is provided on the inner wall of the end cap (2) and extends into the first working chamber (111), the second working chamber (112) and the third working chamber (113). A sealing patch (7) is provided on the outer wall of the sealing protrusion (21).

7. The carbon emission intelligent monitoring and management platform according to claim 6, further characterized in that include: A sealing strip (8) is provided on the port of the main body (1), and a first groove (15) is provided on the port of the main body (1), and a second groove (22) is formed on the end cap (2). The sealing strip (8) is fitted into the first groove (15) and the second groove (22) when the end cap (2) is connected to the main body (1).

8. The carbon emission intelligent monitoring and management platform according to claim 7, further characterized in that include: An opening (9) is provided on the end cap (2) and corresponds to the carbon emission detection device (4); The carbon emission detection device (4) is exposed through the opening (9).