Carbon emission intelligent monitor

By employing a lead screw adjustment assembly, an air intake filter assembly, and an air outlet pipe, combined with blockchain technology for real-time monitoring and precise calculation, the monitor achieves high adjustability and accuracy of monitoring results in different environments or application scenarios.

CN223740488UActive Publication Date: 2025-12-30ZHEJIANG COMM CONSTR GRP CO LTD
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Patent Information

Application Number
CN202520320520.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-02-26
Publication Date
2025-12-30
Estimated Expiration
2035-02-26

AI Technical Summary

Technical Problem

The current carbon emission smart monitors have a fixed monitoring height, which makes it impossible to adjust them in different environments or application scenarios, affecting the accuracy of the monitoring results.

Method used

By employing a lead screw adjustment assembly and a movable seat design, combined with an air intake filter assembly and an air outlet pipe, the carbon emission monitoring module achieves a high degree of adjustability. It also utilizes blockchain technology for real-time monitoring and precise calculation to ensure the accuracy of the monitoring results.

Benefits of technology

It achieves the optimal monitoring position for the monitor in different environments or application scenarios, ensuring the stability of equipment installation and the accuracy of monitoring results, and improving detection efficiency and precision.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The utility model relates to an intelligent carbon emission monitor. The carbon emission monitoring device comprises a fixed base, a lead screw adjusting assembly arranged on the fixed base, a moving seat arranged at the moving end of the lead screw adjusting assembly, a carbon emission monitoring module arranged on the moving seat and an air inlet filtering assembly arranged at the air inlet end of the carbon emission monitoring module. And the gas outlet pipe is arranged at the gas outlet end of the carbon emission monitoring module. The utility model has the advantages that the installation stability of equipment is ensured, the monitoring height is convenient to adjust, and the accuracy of monitoring results is ensured.
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Description

TECHNICAL FIELD

[0001] The utility model relates to the technical field of carbon emission monitoring equipment, especially to a carbon emission intelligent monitor. BACKGROUND

[0002] The carbon emission real-time monitor based on the block chain is an innovative carbon emission monitoring solution, which combines the tamper-proof, transparent and secure nature of the block chain technology, and provides strong technical support for real-time monitoring of carbon emissions. The carbon emission real-time monitor based on the block chain is suitable for multiple fields, especially for carbon emission key industries such as power generation, petrochemical industry, chemical industry, building materials industry, steel industry, non-ferrous metal industry and papermaking industry. These industries need to accurately and timely monitor the carbon emission situation in order to take effective emission reduction measures, reduce carbon emissions and achieve sustainable development.

[0003] The Chinese patent with the authorization announcement number CN218473621U discloses a carbon emission intelligent monitor, which comprises a monitor body. One of the side walls of the monitor body is provided with an opening, and two baffles are oppositely arranged at the opening. The baffles are connected with a translation mechanism, which is used to drive the relative movement of the baffles. A detection module is arranged inside the monitor body, and the detection module is connected with a driving mechanism. The driving mechanism is used to drive the movement of the detection module so that the detection module can pass through the opening.

[0004] The existing technical solution in the above has the following defects: the carbon emission intelligent monitor in the above uses a fixed installation structure, such as a wall-mounted type or a fixed support type, during design, which makes it difficult to adjust the height once it is determined. Although the fixed design helps to ensure the stability of the equipment, it limits its adaptability in different environments or application scenarios. The installation position of the carbon emission intelligent monitor is often limited by environmental conditions, such as wall structure and ground condition. In some cases, due to the limitation of the installation position, the monitor may not be adjusted to the optimal height, thereby affecting the accuracy of the monitoring results. Therefore, we need a carbon emission real-time monitor based on the block chain. UTILITY MODEL CONTENT

[0005] The utility model solves the problem of the existing technology, that is, the monitoring height of the existing monitor is limited, which affects the accuracy of the monitoring results. The carbon emission intelligent monitor has the advantages of ensuring the stability of equipment installation, facilitating the adjustment of monitoring height and ensuring the accuracy of monitoring results.

[0006] The above utility model of the utility model is realized through the following technical solutions:

[0007] The utility model provides a kind of carbon emission intelligent monitor, including fixed base, setting on the fixed base screw adjusting assembly, the mobile seat of the mobile end of screw adjusting assembly, setting on the carbon emission monitoring module of the mobile seat, setting on the air inlet filter assembly of the carbon emission monitoring module's air inlet end, and setting on the air outlet pipe of the carbon emission monitoring module's air outlet end.

[0008] By adopting the above technical scheme, in the actual monitoring process, by starting the carbon emission monitoring module, the external air can enter and be detected by the air inlet filter assembly. The carbon emission monitoring module is used to capture carbon dioxide molecules in the air and convert them into electrical signals. The signal processor is used to process the electrical signals captured by the probe and convert them into carbon emission data. The carbon emission data is displayed to enable users to intuitively understand the carbon emission situation. The carbon emission monitoring module based on blockchain can capture carbon emission information in the production process of enterprises in real time by integrating modern sensing technology, internet of things transmission technology and big data analysis function. The intangible greenhouse gas emission is converted into quantifiable indicators through accurate measurement and scientific calculation. This real-time monitoring and accurate calculation greatly improves the accuracy of carbon emission data. After detection, the gas is discharged through the air outlet pipe. In addition, the carbon emission intelligent monitor not only ensures the stability of the equipment installation, but also greatly improves the adjustability of the monitoring height. The design of the screw adjusting assembly enables the mobile seat to move up and down smoothly along the screw. Users can easily adjust the height of the carbon emission monitoring module according to actual needs, so that the monitor can reach the best monitoring position in different environments or application scenarios. The setting of the air inlet filter assembly effectively prevents foreign matter from entering the carbon emission monitoring module, ensuring the accuracy of the monitoring results. The air outlet pipe is responsible for discharging the monitored gas, ensuring the smooth progress of the monitoring process. Through the above structure, the utility model truly realizes the adjustment of the monitoring height while ensuring the stability of the equipment installation, thereby ensuring the accuracy of the monitoring results.

[0009] The utility model further sets up: the fixed base is opened in accommodating chamber, the screw adjusting assembly is arranged in the accommodating chamber, and the mobile seat is gap jointed on the accommodating chamber.

[0010] By adopting the above technical scheme, the screw adjusting assembly can be stably adjusted in the accommodating chamber, avoiding interference from external factors during the adjustment process, further improving the accuracy and stability of the adjustment. At the same time, the gap joint design between the mobile seat and the accommodating chamber not only ensures the smoothness of the mobile seat during the up-and-down movement, but also effectively prevents dust and debris from entering the interior of the accommodating chamber, thereby prolonging the service life of the screw adjusting assembly. In addition, this gap joint method also facilitates the cleaning and maintenance of the mobile seat, improving the reliability and durability of the overall equipment.

[0011] The utility model further sets up: the fixed base is provided with the blocking strip that blocks the gap between the containing cavity and the mobile seat.

[0012] By adopting the above technical scheme, the external dust, moisture and other impurities are effectively prevented from entering the containing cavity, the screw adjusting assembly is further protected from pollution and damage, the operation stability and service life of the whole monitor are improved, meanwhile, the setting of the blocking strip can also enhance the overall appearance of the equipment to some extent, so that it is more in line with the aesthetic requirements of modern industrial equipment, in addition, the installation and dismounting process of the blocking strip is simple and fast, which is convenient for users to carry out daily maintenance and maintenance work, and further improves the practicality and convenience of the equipment.

[0013] The utility model further sets up: the screw adjusting assembly includes the screw motor and at least two lift sliding slots of setting in the fixed base, and the transmission nut is screwed on the screw rod axle of screw motor, the transmission nut is arranged on the mobile seat, the mobile seat is connected on the at least two lift sliding slots.

[0014] By adopting the above technical scheme, the screw motor is used as the power source, the screw rod axle of the screw motor and the transmission nut are screwed, the rotary motion is converted into linear motion, so as to drive the mobile seat to move up and down stably on the lift sliding groove, this design not only improves the precision and stability of the adjustment, but also can ensure that the mobile seat does not deviate or shake during lifting, further improves the operation effect of the whole monitor, meanwhile, the setting of the at least two lift sliding grooves increases the support point of the mobile seat, so that it is more stable and reliable, can bear greater load, and is suitable for more complex working conditions.

[0015] The utility model further sets up: at least two groups of guide rollers are arranged on the mobile seat, the at least two groups of guide rollers and the at least two lift sliding grooves are one-to-one correspondence arrangement, and the guide roller is rolled and embedded on the lift sliding groove and can slide away along the opening of the lift sliding groove.

[0016] By adopting the technical scheme, the guide rollers are arranged to further enhance the smoothness and stability of the moving seat in the lifting chute; the rolling and embedding structure of the guide rollers and the lifting chute reduces the frictional resistance of the moving seat in the lifting process, so that the movement of the moving seat is more relaxed and efficient, and the energy consumption is also reduced; in addition, the guide rollers can slide away from the opening of the lifting chute, which provides great convenience for the installation, disassembly and maintenance of the moving seat, and users can easily take out or reinstall the moving seat from the lifting chute according to actual needs without complex operation process, thereby greatly improving the work efficiency; this design not only improves the overall performance of the monitor, but also enhances the practicality and flexibility, so that the monitor is more suitable for various complex working environments.

[0017] The utility model further sets up: each group of guide rollers includes a plurality of along the length direction of lifting chute equal interval's arrangement guide roller.

[0018] By adopting the technical scheme, the guide rollers are arranged to further enhance the smoothness and stability of the moving seat in the lifting chute; the rolling and embedding structure of the guide rollers and the lifting chute reduces the frictional resistance of the moving seat in the lifting process, so that the movement of the moving seat is more relaxed and efficient, and the energy consumption is also reduced; in addition, the guide rollers can slide away from the opening of the lifting chute, which provides great convenience for the installation, disassembly and maintenance of the moving seat, and users can easily take out or reinstall the moving seat from the lifting chute according to actual needs without complex operation process, thereby greatly improving the work efficiency; this design not only improves the overall performance of the monitor, but also enhances the practicality and flexibility, so that the monitor is more suitable for various complex working environments.

[0019] The utility model further sets up: carbon emission monitoring module is set up as pump suction type gas detection appearance.

[0020] By adopting the technical scheme, the pump suction type gas detection appearance can actively extract the gas sample in the surrounding environment for detection, and has higher detection efficiency and precision compared with the traditional diffusion type detection appearance; this arrangement enables the carbon emission intelligent monitor to obtain the carbon emission data in the environment more quickly and accurately, so as to provide more reliable monitoring results for users; in addition, the pump suction type gas detection appearance also has stronger adaptability and flexibility, and can cope with various complex working environments, thereby further improving the practicality and application range of the carbon emission intelligent monitor.

[0021] The utility model further sets up: air inlet filter component includes the internal thread sleeve of setting in the air inlet end of carbon emission monitoring module, the external thread sleeve of screwing on the internal thread sleeve, the gas filter core of setting in the external thread sleeve, the air inlet pipe of screwing on the external thread sleeve, and a plurality of strip air inlets are opened on the air inlet pipe.

[0022] By adopting the above technical scheme, the design of the air inlet filtering assembly can effectively prevent foreign impurities and particulate matters from entering the carbon emission monitoring module, thereby ensuring the purity and accuracy of the detected gas; the threaded connection mode of the inner threaded sleeve and the outer threaded sleeve not only facilitates installation and disassembly, but also ensures the sealing of the connection part to prevent gas leakage; the gas filter element can further filter out the tiny particles and pollutants in the gas, thereby improving the reliability of the detection data; the plurality of strip-shaped air inlets on the air inlet pipe increases the air inlet area, so that the extraction of the gas sample is more rapid and uniform, thereby further improving the detection efficiency and accuracy of the carbon emission intelligent monitor.

[0023] In summary, the beneficial technical effects of the present application are that the monitor realizes the fixed-point lifting of the carbon emission monitoring module through the lead screw adjusting assembly, and the purity and accuracy of the detected gas are ensured by the air inlet filtering assembly, thereby solving the problem of limited monitoring height of the existing monitor, which affects the accuracy of the monitoring result, and having the advantages of ensuring the stability of equipment installation, facilitating the adjustment of monitoring height, and ensuring the accuracy of the monitoring result. BRIEF DESCRIPTION OF DRAWINGS

[0024] Figure 1 is a structural schematic view of the carbon emission intelligent monitor of the present application.

[0025] Figure 2 is a sectional view of the carbon emission intelligent monitor of the present application.

[0026] Figure 3 is a connection relationship between the lead screw adjusting assembly and the moving seat of the present application.

[0027] Figure 4 is a connection relationship between the carbon emission monitoring module and the air inlet filtering assembly of the present application.

[0028] In the figure, 1 is a fixed base, 11 is a containing cavity, 12 is a blocking strip, 2 is a lead screw adjusting assembly, 21 is a lead screw motor, 22 is a lifting sliding groove, 23 is a transmission nut, 3 is a moving seat, 31 is a guide roller, 4 is a carbon emission monitoring module, 5 is an air inlet filtering assembly, 51 is an inner threaded sleeve, 52 is an outer threaded sleeve, 53 is a gas filter element, 54 is an air inlet pipe, 55 is a strip-shaped air inlet, and 6 is an air outlet pipe. DETAILED DESCRIPTION

[0029] In order to make the technical means, creative features, purposes and effects of the present application more clear and easy to understand, the present application is further described below in combination with the drawings and specific embodiments.

[0030] REFERENCE Figure 1The utility model discloses a carbon emission intelligent monitor, including fixed base 1, set up on fixed base 1's lead screw adjusting assembly 2, set up in the mobile end of lead screw adjusting assembly 2's mobile seat 3, set up on mobile seat 3's carbon emission monitoring module 4, set up in the air inlet end of carbon emission monitoring module 4's air inlet filter assembly 5 and set up in the air outlet end of carbon emission monitoring module 4's air outlet pipe 6. Among them, carbon emission monitoring module 4 is set up as pump suction type gas detector.

[0031] With reference to Figure 2 , the fixed base 1 is provided with a containing cavity 11, and the lead screw adjusting assembly 2 is arranged in the containing cavity 11. Meanwhile, the mobile seat 3 is gap-inserted on the containing cavity 11, and the fixed base 1 is provided with a blocking strip 12 for blocking the gap between the containing cavity 11 and the mobile seat 3. The above structure enables the lead screw adjusting assembly 2 to be stably adjusted in the containing cavity 11, avoids the interference of external factors on the adjustment process, and further improves the accuracy and stability of the adjustment. The gap-inserted design between the mobile seat 3 and the containing cavity 11 not only ensures the smoothness of the mobile seat 3 during the up-and-down movement, but also effectively prevents dust and sundries from entering the inside of the containing cavity 11, thereby prolonging the service life of the lead screw adjusting assembly 2. In addition, this gap-inserted mode also facilitates the cleaning and maintenance of the mobile seat 3, and improves the reliability and durability of the overall equipment. The blocking strip 12 effectively prevents external dust, moisture and other impurities from entering the inside of the containing cavity 11 through the gap, further protects the lead screw adjusting assembly 2 from pollution and damage, thereby improving the operation stability and service life of the entire monitor. At the same time, the setting of the blocking strip 12 can also enhance the overall aesthetics of the equipment to some extent, making it more in line with the aesthetic requirements of modern industrial equipment. In addition, the installation and disassembly process of the blocking strip 12 is simple and fast, which is convenient for users to carry out daily maintenance and maintenance work, and further improves the practicality and convenience of the equipment.

[0032] With reference to Figure 2 and Figure 3, the screw rod adjusting assembly 2 includes a screw rod motor 21 arranged on the fixed base 1, two lifting sliding grooves 22, and a transmission nut 23 threadedly connected to a screw rod shaft of the screw rod motor 21, the transmission nut 23 being arranged on the moving seat 3. The moving seat 3 is provided with two groups of guide rollers 31, the two groups of guide rollers 31 and the two lifting sliding grooves 22 are arranged in one-to-one correspondence, each group of guide rollers 31 includes a plurality of guide rollers 31 arranged at equal intervals along the length direction of the lifting sliding groove 22, and the guide rollers 31 are rollingly embedded on the lifting sliding groove 22 and can slide away from the opening of the lifting sliding groove 22. The screw rod motor 21 is used as a power source, and through the thread cooperation between the screw rod shaft of the screw rod motor 21 and the transmission nut 23, the rotary motion is converted into linear motion, so as to drive the moving seat 3 to move up and down on the lifting sliding groove 22 stably. This design not only improves the accuracy and stability of the adjustment, but also ensures that the moving seat 3 will not deviate or shake during the lifting process, further improving the operation effect of the entire monitor. At the same time, the arrangement of at least two lifting sliding grooves 22 increases the support points of the moving seat 3, making it more stable and reliable, and being able to withstand greater load, suitable for more complex working conditions.

[0033] In addition, the arrangement of the guide rollers 31 further enhances the sliding smoothness and stability of the moving seat 3 in the lifting sliding groove 22; the rolling embedding structure of the guide rollers 31 and the lifting sliding groove 22 reduces the frictional resistance of the moving seat 3 during the lifting process, making the movement of the moving seat 3 more relaxed and efficient, while also reducing energy consumption; in addition, the design that the guide rollers 31 can slide away from the opening of the lifting sliding groove 22 provides great convenience for the installation, disassembly and maintenance of the moving seat 3, and users can easily take out or reinstall the moving seat 3 from the lifting sliding groove 22 according to actual needs, without the need for complex operation process, greatly improving the work efficiency; this design not only improves the overall performance of the monitor, but also enhances its practicality and flexibility, making it more adaptable to various complex working environments. The plurality of guide rollers 31 in each group of guide rollers 31 can more evenly share the weight of the moving seat 3 during the lifting process, thereby further improving the stability and smoothness of the sliding; in addition, the equal-interval arrangement of the plurality of guide rollers 31 makes the movement of the moving seat 3 in the lifting sliding groove 22 more stable, reduces the shaking and noise caused by uneven stress, and improves the overall operation effect; at the same time, this design also enhances the contact area between the guide rollers 31 and the lifting sliding groove 22, making the moving seat 3 more stable during the lifting process and less likely to deviate or jam, further improving the stability and reliability of the carbon emission intelligent monitor.

[0034] Referring to Figure 4The air inlet filtering assembly 5 comprises an inner threaded sleeve 51 arranged at the air inlet end of the carbon emission monitoring module 4, an outer threaded sleeve 52 threadedly connected to the inner threaded sleeve 51, a gas filter element 53 arranged in the outer threaded sleeve 52, an air inlet pipe 54 threadedly connected to the outer threaded sleeve 52, and a plurality of strip-shaped air inlets 55 formed in the air inlet pipe 54. The design of the air inlet filtering assembly 5 can effectively prevent external impurities and particulate matters from entering the carbon emission monitoring module 4, thereby ensuring the purity and accuracy of the detected gas; the threaded connection of the inner threaded sleeve 51 and the outer threaded sleeve 52 not only facilitates the installation and disassembly, but also ensures the sealing of the connection to prevent gas leakage; the arrangement of the gas filter element 53 can further filter out the tiny particles and pollutants in the gas, thereby improving the reliability of the detection data; and the plurality of strip-shaped air inlets 55 on the air inlet pipe 54 increase the air inlet area, so that the extraction of the gas sample is more rapid and uniform, thereby further improving the detection efficiency and accuracy of the carbon emission intelligent monitor.

[0035] The implementation principle of the embodiment is that, in the actual monitoring process, by starting the carbon emission monitoring module 4, external air can enter and be detected by relying on the air inlet filtering assembly 5. The carbon emission monitoring module 4 is used for capturing carbon dioxide molecules in the air and converting them into an electric signal. The signal processor arranged is used for processing the electric signal captured by the probe, converting it into carbon emission data, and displaying the carbon emission data, so that the user can intuitively understand the carbon emission situation. The carbon emission monitoring module 4 based on the blockchain can capture the carbon emission information in the production process of an enterprise in real time by integrating modern sensing technology, Internet of Things transmission technology and big data analysis function, and can convert intangible greenhouse gas emissions into quantifiable indicators through accurate measurement and scientific calculation. This real-time monitoring and accurate calculation greatly improves the accuracy of the carbon emission data. After detection, the gas is discharged by relying on the air outlet pipe 6. In addition, the carbon emission intelligent monitor not only ensures the installation stability of the equipment, but also greatly improves the adjustability of the monitoring height. The design of the lead screw adjusting assembly 2 enables the moving seat 3 to move up and down along the lead screw stably. The user can easily adjust the height of the carbon emission monitoring module 4 according to actual needs, so as to ensure that the monitor can reach the best monitoring position in different environments or application scenarios. At the same time, the arrangement of the air inlet filtering assembly 5 effectively prevents external impurities from entering the carbon emission monitoring module 4, thereby ensuring the accuracy of the monitoring result. The air outlet pipe 6 is responsible for discharging the monitored gas, thereby ensuring the smooth progress of the monitoring process. Through the above structure, the carbon emission intelligent monitor truly realizes the adjustment of the monitoring height while ensuring the installation stability of the equipment, thereby ensuring the accuracy of the monitoring result.

[0036] Finally, it is explained that the above embodiments are only used to illustrate the technical solutions of the present application and are not limited. Although the present application has been described in detail with reference to the preferred embodiments, it should be understood by those skilled in the art that the technical solutions of the present application can be modified or replaced by equivalents without departing from the purpose and scope of the present application. The technical solutions of the present application should be covered in the scope of the claims of the present application.

Claims

1. A carbon emission intelligent monitor characterized in that: The device comprises a fixed base (1), a screw adjusting assembly (2) arranged on the fixed base (1), a moving base (3) arranged at the moving end of the screw adjusting assembly (2), a carbon emission monitoring module (4) arranged on the moving base (3), an air inlet filtering assembly (5) arranged at the air inlet end of the carbon emission monitoring module (4), and an air outlet pipe (6) arranged at the air outlet end of the carbon emission monitoring module (4).

2. The carbon emission intelligent monitor according to claim 1, wherein: The fixed base (1) is provided with a containing cavity (11), the screw adjusting assembly (2) is arranged in the containing cavity (11), and the moving base (3) is gap-inserted on the containing cavity (11).

3. The carbon emission intelligent monitor according to claim 2, wherein: The fixed base (1) is provided with a blocking strip (12) for blocking the gap between the containing cavity (11) and the moving base (3).

4. The carbon emission intelligent monitor according to claim 2, wherein: The screw adjusting assembly (2) comprises a lead screw motor (21) arranged on the fixed base (1), at least two lifting sliding grooves (22), and a transmission nut (23) threadedly connected to the lead screw shaft of the lead screw motor (21), the transmission nut (23) is arranged on the moving base (3), and the moving base (3) is slidingly connected to the at least two lifting sliding grooves (22).

5. The carbon emission intelligent monitor according to claim 4, wherein: The moving base (3) is provided with at least two groups of guide rollers (31), the at least two groups of guide rollers (31) and the at least two lifting sliding grooves (22) are one-to-one correspondingly arranged, and the guide rollers (31) are rollingly embedded on the lifting sliding grooves (22) and can slide away from the openings of the lifting sliding grooves (22).

6. The carbon emission intelligent monitor according to claim 5, wherein: Each group of guide rollers (31) comprises a plurality of guide rollers (31) arranged at equal intervals along the length direction of the lifting sliding groove (22).

7. The carbon emission intelligent monitor of claim 1, wherein: The carbon emission monitoring module (4) is arranged as a pump suction type gas detector.

8. The carbon emission intelligent monitor of claim 1, wherein: The air inlet filtering assembly (5) comprises an inner threaded sleeve (51) arranged at the air inlet end of the carbon emission monitoring module (4), an outer threaded sleeve (52) threadedly connected to the inner threaded sleeve (51), a gas filter element (53) arranged in the outer threaded sleeve (52), an air inlet pipe (54) threadedly connected to the outer threaded sleeve (52), and a plurality of strip-shaped air inlets (55) formed on the air inlet pipe (54).

Citation Information

Patent Citations

  • Carbon emission intelligent monitor

    CN218473621U