Carbon reduction real-time monitoring device
By designing air capture and height adjustment components, the problem of inaccurate detection in dynamic environments by existing devices has been solved, enabling real-time and accurate monitoring and analysis of carbon emissions, adapting to changing environments, and providing comprehensive data support.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- SHAANXI COALFIELD GEOLOGICAL EXPLORATION RES INST CO LTD
- Filing Date
- 2025-08-01
- Publication Date
- 2026-07-31
AI Technical Summary
Existing real-time carbon reduction and emission reduction monitoring devices cannot fully reflect the dynamic environment during the detection process, resulting in inaccurate detection results.
The device employs an air capture component and a height adjustment component. The air capture component dynamically monitors carbon emissions through an electric rotating shaft and tube structure, while the height adjustment component adjusts the device height through a worm gear and worm wheel mechanism, ensuring that the monitor can be flexibly adjusted in different environments.
It enables timely monitoring and precise analysis of changes in greenhouse gas concentrations, identifies emission sources and assesses the effectiveness of emission reduction technologies, adapts to changing environments, and provides comprehensive data support.
Smart Images

Figure CN224580024U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the technical field of environmental protection monitoring equipment, and in particular to a real-time monitoring device for carbon reduction and emission reduction. Background Technology
[0002] Real-time carbon reduction and emission control monitoring devices use sensors, data acquisition and processing systems, and communication modules to monitor and record greenhouse gas (such as carbon dioxide) emissions in real time, helping businesses and governments track their carbon emissions. It can accurately measure gas concentration and flow rate, transmit data to a cloud platform for analysis in real time, and support timely responses to anomalies through visualization and alarm systems. It is widely used in industries such as manufacturing, transportation, energy, and urban management.
[0003] A search revealed an existing patent (publication number: CN220016830U) that discloses a real-time monitoring device for industrial carbon emission reduction. This invention adjusts the position of the limiting telescopic tube and the air intake hood through an adjustment mechanism. The gas above and below are mixed through a balanced air intake mechanism to reach a balanced state. Then, the gas enters the real-time monitoring instrument through the air intake pipe for real-time monitoring. The gas will be obtained as an average value for the region, thus providing the real-time monitoring instrument with more accurate data.
[0004] However, in the above scheme, since the pipe is stationary during the testing process, some test results may not fully reflect the performance of the pipe in the dynamic environment in actual use. Utility Model Content
[0005] In view of the problem that the existing technology cannot fully reflect the performance in a dynamic environment, this utility model is proposed.
[0006] Therefore, the purpose of this utility model is to provide a real-time monitoring device for carbon reduction and emission reduction. Its purpose is to effectively monitor the dynamics through the air capture component, and to collect and analyze carbon emission data in the air in a timely manner, which helps to monitor changes in the concentration of greenhouse gases.
[0007] To solve the above technical problems, the present invention provides the following technical solution: a real-time carbon reduction and emission reduction monitoring device, including a base, a height adjustment component above the base, a monitor body above the height adjustment component, air capture components symmetrically arranged on both sides of the monitor body, a support column fixed to the top of the monitor body, and a baffle fixed to the end of the support column away from the monitor body.
[0008] The inner walls on both sides of the monitor body are provided with circular grooves.
[0009] As a preferred embodiment of the real-time carbon reduction and emission reduction monitoring device of this utility model, the air capture component includes an electric rotating shaft, which is installed inside a circular groove. A first tube is fixed inside the electric rotating shaft, a second tube is fixed at one end of the first tube, and collection buckets are fixed at both ends of the second tube. An air hole is opened on one side surface of the collection bucket, and rubber blocks are symmetrically fixed at the end of the first tube away from the monitor body.
[0010] In a preferred embodiment of the real-time carbon reduction and emission reduction monitoring device of this utility model, the lateral width of the electric rotating shaft is the same as the inner width of the circular groove, and the electric rotating shaft is rotatably connected to the inner side of the circular groove.
[0011] As a preferred embodiment of the real-time monitoring device for carbon reduction and emission reduction described in this utility model, the collecting hopper is semi-elliptical in shape, and the collecting hopper is connected to the first pipe body through the second pipe body.
[0012] As a preferred embodiment of the real-time carbon reduction and emission reduction monitoring device of this utility model, a conical cylinder is provided on the inner side of the first tube body near the monitor body, and the end of the conical cylinder with a smaller diameter is close to the monitor body.
[0013] As a preferred embodiment of the real-time carbon reduction and emission reduction monitoring device of this utility model, the height adjustment component includes a worm gear body, which is rotatably connected to the inner wall of one side of the base. The two ends of the worm gear body are provided with diamond-shaped holes. A worm wheel body that meshes and drives with the worm gear body is provided on one side of the worm gear body. A connecting rod is fixed to the top of the worm wheel body. One end of the connecting rod extends to the top of the base and is fixed with a threaded column. A column body is threadedly connected to the surface of the threaded column. Limiting rods are provided at equal angles at the four corners of the inner wall of the column body.
[0014] As a preferred embodiment of the real-time carbon reduction and emission reduction monitoring device of this utility model, a limiting groove is formed at the position corresponding to the limiting rod on the inner side of the column, the diameter of one end of the limiting rod is the same as the inner diameter of the limiting groove, and the limiting rod is slidably connected to the inner side of the limiting groove.
[0015] Compared with the prior art, the present invention has at least the following beneficial effects:
[0016] 1. This utility model, through an air capture component, can effectively perform dynamic monitoring, and can collect and analyze carbon emission data in the air in a timely manner. This helps to monitor changes in greenhouse gas concentrations, providing data support for taking timely emission reduction measures. It can accurately capture subtle air changes, help identify emission sources and pollution sources, and evaluate the effectiveness of various emission reduction technologies. At the same time, it can monitor various dynamic changes in real time, including changes in environmental factors such as temperature, humidity, and airflow, thereby providing comprehensive information for optimizing emission reduction measures.
[0017] 2. This utility model, through the height adjustment component, allows for easy adjustment of the monitoring height of the equipment, enabling the equipment to be flexibly adjusted according to environmental changes, covering a wider monitoring area, and more accurately capturing the distribution and changes of emission sources. It can be adjusted according to the needs of different scenarios. In highly polluted areas, the equipment can be adjusted to a lower height to obtain more accurate pollution source data; while in vast open areas, adjusting to a higher height helps to comprehensively understand the carbon emission status of the area. Attached Figure Description
[0018] Figure 1 This is a schematic diagram of the overall structure of the real-time carbon reduction and emission reduction monitoring device of this utility model;
[0019] Figure 2 This is a schematic diagram of the air capture component structure of the real-time carbon reduction and emission reduction monitoring device of this utility model;
[0020] Figure 3 This is a schematic diagram of the height adjustment component of the real-time carbon reduction and emission reduction monitoring device of this utility model;
[0021] Figure 4 This is a schematic diagram of the overall external structure of the real-time carbon reduction and emission reduction monitoring device of this utility model.
[0022] Explanation of reference numerals in the attached figures:
[0023] 1. Base; 2. Height adjustment assembly; 201. Worm gear body; 202. Diamond-shaped hole; 203. Worm gear body; 204. Connecting rod; 205. Threaded column; 206. Column; 207. Limiting rod; 208. Limiting groove; 3. Monitor body; 301. Circular groove; 4. Air capture assembly; 401. Electric rotating shaft; 402. First tube; 403. Second tube; 404. Collection hopper; 405. Air hole; 406. Rubber block; 407. Conical cylinder; 5. Support column; 6. Baffle. Detailed Implementation
[0024] To make the above-mentioned objectives, features and advantages of this utility model more apparent and understandable, the specific embodiments of this utility model will be described in detail below with reference to the accompanying drawings.
[0025] Example 1
[0026] Reference Figures 1-2 This is the first embodiment of the present invention, which provides a real-time carbon reduction and emission reduction monitoring device. The real-time carbon reduction and emission reduction monitoring device includes a base 1, and a height adjustment component 2 is provided above the base 1. The base provides stable support, and the height adjustment component 2 realizes the vertical position adjustment of the monitor body 3 to adapt to the monitoring needs in different environments. The monitor body 3 is installed above the height adjustment component 2. Air capture components 4 are symmetrically arranged on both sides of the monitor body 3. The dual-sided design enhances air sampling efficiency, avoids interference from airflow on one side, and improves data accuracy. A support column 5 is fixed at the top of the monitor body 3. A baffle 6 is fixed at the end of the support column 5 away from the monitor body 3. The baffle can prevent rainwater, fallen leaves and other debris from directly covering the top of the monitor, protect the sensor and extend its service life.
[0027] The inner walls on both sides of the monitor body 3 are provided with circular grooves 301.
[0028] The air capture assembly 4 includes an electric rotating shaft 401, which is installed inside the circular groove 301. This provides installation space for the electric rotating shaft 401, ensuring its rotational stability while maintaining the structural seal of the monitor body 3. The tight fit prevents airflow leakage and ensures that the sampling direction is controllable during rotation. A first tube 402 is fixed inside the electric rotating shaft 401, and a second tube 403 is fixed to one end of the first tube 402, forming an airflow channel to guide the captured air into the monitor for analysis. Collection buckets 404 are fixed to both ends of the second tube 403. A vent 405 is opened on one side surface of the collection bucket 404 to increase the windward area and improve the air capture efficiency. The vent 405 filters large particulate impurities. Rubber blocks 406 are symmetrically fixed to the end of the first tube 402 away from the monitor body 3 to buffer the vibration of the first tube 402 during rotation, reduce wear, and lower noise.
[0029] The lateral width of the electric rotating shaft 401 is the same as the inner width of the circular groove 301, and the electric rotating shaft 401 is rotatably connected to the inner side of the circular groove 301.
[0030] The collecting hopper 404 is semi-elliptical in shape and is connected to the first tube 402 through the second tube 403.
[0031] A conical tube 407 is provided on the inner side of the first tube 402 near the monitor body 3. The end of the conical tube 407 with a smaller diameter is close to the monitor body 3, which accelerates the directional flow of airflow, avoids backflow interference, and improves the accuracy of sampling concentration detection.
[0032] Example 2
[0033] Reference Figures 1-4This is the second embodiment of the present invention. This embodiment differs from the first embodiment in that the height adjustment component 2 includes a worm gear body 201, which is rotatably connected to the inner wall of one side of the base 1. Diamond-shaped holes 202 are provided at both ends of the worm gear body 201 to accommodate tool rotation, facilitating manual adjustment and enhancing operational convenience. A worm wheel body 203 is provided on one side of the worm gear body 201 for meshing and transmission. Through mechanical self-locking characteristics, stable fixation is achieved after height adjustment, preventing the monitor from shifting due to external forces. A connecting rod 204 is fixed to the top of the worm wheel body 203. One end of the connecting rod 204 extends to the top of the base 1 and is fixed with a threaded post 205. A column body 206 is threadedly connected to the surface of the threaded post 205, converting the worm wheel's rotational motion into linear lifting and lowering, achieving precise height control. Limiting rods 207 are provided at equal angles at the four corners of the inner wall of the column body 206, restricting the column body 206 to move only in the vertical direction, avoiding pipe entanglement or structural displacement caused by rotation.
[0034] A limiting groove 208 is provided on the inner side of the column 206 at the position corresponding to the limiting rod 207. The diameter of one end of the limiting rod 207 is the same as the inner diameter of the limiting groove 208, and the limiting rod 207 is slidably connected to the inner side of the limiting groove 208.
[0035] The remaining structure is the same as that in Example 1.
[0036] It should be noted that the above embodiments are only used to illustrate the technical solution of this utility model and are not intended to limit it. Although this utility model has been described in detail with reference to preferred embodiments, those skilled in the art should understand that modifications or equivalent substitutions can be made to the technical solution of this utility model without departing from the spirit and scope of the technical solution of this utility model, and all such modifications or substitutions should be covered within the scope of the claims of this utility model.
Claims
1. A carbon reduction emission real-time monitoring device, comprising a base (1), characterized in that: A height adjustment component (2) is provided above the base (1), and a monitor body (3) is installed above the height adjustment component (2). Air capture components (4) are symmetrically provided on both sides of the monitor body (3). A support column (5) is fixed at the top of the monitor body (3), and a baffle (6) is fixed at the end of the support column (5) away from the monitor body (3). The inner walls on both sides of the monitor body (3) are provided with circular grooves (301).
2. The device for real-time monitoring of carbon reduction and emission reduction according to claim 1, characterized in that: The air capture assembly (4) includes an electric rotating shaft (401), which is installed inside the circular groove (301). A first tube (402) is fixed inside the electric rotating shaft (401). A second tube (403) is fixed at one end of the first tube (402). A collection hopper (404) is fixed at both ends of the second tube (403). An air hole (405) is opened on one side surface of the collection hopper (404). Rubber blocks (406) are symmetrically fixed at the end of the first tube (402) away from the monitor body (3).
3. The device for real-time monitoring of carbon reduction and emission reduction according to claim 2, characterized in that: The lateral width of the electric rotating shaft (401) is the same as the inner width of the circular groove (301), and the electric rotating shaft (401) is rotatably connected to the inner side of the circular groove (301).
4. The device for real-time monitoring of carbon reduction and emission reduction according to claim 3, characterized in that: The collecting hopper (404) is semi-elliptical in shape and is connected to the first tube (402) through the second tube (403).
5. The device for real-time monitoring of carbon reduction and emission reduction according to claim 4, characterized in that: The first tube (402) has a conical tube (407) on the inner side of the end near the monitor body (3), and the end of the conical tube (407) with a smaller diameter is close to the monitor body (3).
6. The device for real-time monitoring of carbon reduction and emission reduction according to claim 1, characterized in that: The height adjustment assembly (2) includes a worm gear body (201), which is rotatably connected to the inner wall of one side of the base (1). The two ends of the worm gear body (201) are provided with diamond-shaped holes (202). A worm wheel body (203) is provided on one side of the worm gear body (201) for meshing and transmission. A connecting rod (204) is fixed to the top of the worm wheel body (203). One end of the connecting rod (204) extends to the top of the base (1) and is fixed with a threaded column (205). A column body (206) is threadedly connected to the surface of the threaded column (205). Limiting rods (207) are provided at equal angles at the four corners of the inner wall of the column body (206).
7. The device for real-time monitoring of carbon reduction and emission reduction according to claim 6, characterized in that: A limiting groove (208) is provided on the inner side of the column (206) at the position corresponding to the limiting rod (207). The diameter of one end of the limiting rod (207) is the same as the inner diameter of the limiting groove (208). The limiting rod (207) is slidably connected to the inner side of the limiting groove (208).