Carbon emission monitoring device for comprehensive energy
By setting up a first circular ring, a first filter plate, a second circular ring, a second filter plate, a multi-functional composite sensor, and a driving component that works in coordination, full-coverage monitoring is achieved, ensuring the accuracy and completeness of comprehensive energy carbon emission data, reducing pollutant interference, and improving monitoring effectiveness and stability.
Patent Information
- Application Number
- CN202423117267.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-17
- Publication Date
- 2025-12-02
- Estimated Expiration
- 2034-12-17
AI Technical Summary
Existing carbon emission monitoring devices lack flexibility within pipelines, making it difficult to achieve full coverage monitoring. Furthermore, the sensors are susceptible to interference from pollutants, affecting the accuracy and reliability of the data.
The design employs a first and second filter plate in conjunction with a multifunctional composite sensor and driving components. Driven by a motor, the active and driven wheels rotate, achieving 360-degree full-coverage monitoring of integrated energy carbon emissions within the pipeline. This ensures the accuracy and completeness of integrated energy carbon emission data and effectively reduces interference from pollutants on the monitoring results. The coordinated operation of the second filter plate and scraper structure achieves highly efficient monitoring, ensuring the stability and reliability of integrated energy emissions.
It has achieved full-coverage monitoring, ensuring the stability and reliability of integrated energy.
Smart Images

Figure CN223624217U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the field of monitoring equipment technology, and in particular relates to a carbon emission monitoring device for integrated energy. Background Technology
[0002] Integrated energy is an energy supply model that integrates and synergistically utilizes multiple different types of energy. It can improve energy utilization efficiency and enhance the stability and reliability of energy supply. The carbon emission monitoring device for integrated energy is a device used to monitor the carbon emissions of integrated energy systems during operation. By collecting energy consumption data and analyzing energy conversion processes, the device calculates the carbon emissions generated by the integrated energy system, providing data support for the optimized management of integrated energy and helping to achieve the goals of energy conservation, emission reduction and sustainable development.
[0003] Coal-fired power plants are major consumers of energy, emitters of gaseous pollutants, and emitters of carbon dioxide. Carbon dioxide emission reduction relies on an accurate carbon emission monitoring system. According to the patent document CN217634807U, entitled "A Carbon Emission Monitoring Device," the specification describes a clamp assembly comprising a wrench frame with a ring sleeve at its top and a fixed clamp handle at its bottom. A guide groove is provided through the end face of the wrench frame, and a knob sleeve is engaged in the middle of the guide groove. A lifting gear is screwed through the inner side of the knob sleeve, and a lifting slide rod is provided through the bottom end of the lifting gear. A movable clamp handle is located at the bottom end of the lifting slide rod, directly below the fixed clamp handle. However, this design still has the following drawbacks: it requires manual and continuous rotation of the knob sleeve to move the movable clamp handle upwards and fix it to the support, which can easily lead to hand fatigue for the user, making the installation of the monitoring device inconvenient.
[0004] Chinese patent document CN202223382639.X discloses a carbon emission monitoring device. Through the cooperation of a sliding plate, an inner rod, and springs, the sliding plate can move upwards. Simultaneously, two springs are compressed, and through the cooperation of a rotating rod, clamping plates, and side rods, the two clamping plates move away from each other. When the two springs return to their original position, the two clamping plates move closer together to clamp and fix the fixing components, thus facilitating the installation of the entire monitoring device. Through the cooperation of a screw and nut, the fixing of the mounting ring to the monitoring pipe can be released, allowing filter screens one and two to be removed from the inside of the monitoring pipe. This facilitates cleaning the dust on filter screens one and two, improving the filtration effect.
[0005] To address the aforementioned issues, existing technologies have provided solutions. However, in practical applications, most existing carbon emission monitoring devices are fixedly installed at a certain point in the pipeline, lacking flexibility. Due to the uneven distribution of emitted gases within the pipeline, it is difficult to comprehensively monitor carbon emissions within the pipeline. Furthermore, sensors are susceptible to interference from pollutants in the gas, which may lead to deviations in monitoring results, affecting the accuracy and reliability of the data. Utility Model Content
[0006] The purpose of this invention is to provide a carbon emission monitoring device for integrated energy, in order to solve the problems mentioned in the background art.
[0007] To achieve the above objectives, the present invention adopts the following technical solution:
[0008] A carbon emission monitoring device for integrated energy includes a first ring, a first filter plate fixedly mounted on the first ring, a second ring disposed on the side of the first ring, a second filter plate rotatably disposed on the second ring, a multifunctional composite sensor disposed on the side of the second filter plate, and a driving component for monitoring the rotation of the multifunctional composite sensor disposed on the second ring and the second filter plate.
[0009] The driving component includes a motor fixedly mounted on the side of the second ring, a drive wheel rotatably mounted on the side of the second ring, a driven wheel fixedly mounted in the middle of the second filter plate, and belts sleeved on the drive wheel and the driven wheel. The end of the motor output shaft is fixedly mounted to the drive wheel, and the belt is connected to the drive wheel and the driven wheel respectively.
[0010] As a further description of the above scheme: When the integrated energy gas is emitted and circulated in the pipeline, the gas first passes through the first filter plate to filter out impurities. Then, the motor on the second ring is started. The motor output shaft rotates, driving the drive wheel to rotate. The drive wheel drives the driven wheel to rotate via a belt. The driven wheel rotates, causing the second filter plate to rotate on the second ring. The rotation of the second filter plate causes the multi-functional composite sensor to rotate along the circumference, realizing 360-degree full coverage monitoring of integrated energy carbon emission gas in the pipeline. This ensures the accuracy and completeness of integrated energy carbon emission data, and can effectively reduce the interference of pollutants on the monitoring results, further improving the monitoring effect and demonstrating strong practicality.
[0011] Preferably, a crossbar is fixedly installed in the middle of the second filter plate, the end of the crossbar passes through the middle of the first filter plate, and the end of the crossbar is rotatably disposed in the middle of the first filter plate. A scraper is fixedly installed at the end of the crossbar near the first filter plate.
[0012] In this way, as the second filter plate rotates, the crossbar fixedly installed in the middle of the second filter plate also rotates. When the crossbar rotates, it can scrape off the impurities on the surface of the first filter plate, ensuring the stability of the flow of integrated energy gas in the pipeline, thereby further improving the stability of the monitoring results.
[0013] Preferably, an adhesive strip is laid on the side of the scraper near the first filter plate, and the adhesive strip is in contact with the surface of the first filter plate.
[0014] In this way, the rubber strips on the scraper can improve the removal effect of impurities on the surface of the first filter plate, which is highly practical.
[0015] Preferably, an annular collection box is fixedly installed on the side of the second ring away from the first ring.
[0016] In this way, the scraped-off impurities will fall into the ring-shaped collection box under the push of the scraper for collection, making it easier for subsequent cleaning.
[0017] Preferably, the second filter plate has at least two sets of symmetrical multifunctional composite sensors.
[0018] In this way, multiple sets of sensors work simultaneously when the second filter plate rotates, monitoring the carbon emissions of comprehensive energy from different angles, increasing the diversity and accuracy of monitoring data, and further improving the reliability of monitoring results by cross-validating and supplementing the monitoring data from multiple angles.
[0019] Preferably, the second filter plate is fixedly mounted with evenly distributed connecting seats, and the multifunctional composite sensor is disposed on the connecting seats.
[0020] In this way, the connector is positioned to provide a mounting location for the multifunctional composite sensor.
[0021] Preferably, the connector has a socket, the multifunctional composite sensor is slidably disposed on the socket, the connector has an installation port on the side of the socket, a spring is fixedly installed in the installation port, and a limit block is slidably disposed on the installation port.
[0022] In this way, the multifunctional composite sensor is set inside the socket. The multifunctional composite sensor is locked inside the socket by the force of the spring and the limiting block. The multifunctional composite sensor is slidably set on the socket, and the snap-fit connection makes it convenient to install and remove the sensor, and facilitates the maintenance and replacement of the sensor.
[0023] Preferably, a controller is provided on the first ring, and the controller is electrically connected to the multifunctional composite sensor and the motor respectively.
[0024] In this way, the controller can be set up to automatically control the components of the device.
[0025] In summary, the technical solutions conceived by this utility model have the following beneficial effects compared with the prior art:
[0026] (1) The monitoring device of this utility model, through the coordinated operation of the first ring, the first filter plate, the second ring, the second filter plate, the multi-functional composite sensor, and the driving components, firstly filters the gas through the first filter plate to remove impurities in the gas when the integrated energy gas is discharged and circulated in the pipeline. Then, the motor on the second ring is started, and the output shaft of the motor rotates to drive the drive wheel to rotate. The drive wheel drives the driven wheel to rotate through the belt. The driven wheel rotates to drive the second filter plate to rotate on the second ring. The rotation of the second filter plate drives the multi-functional composite sensor to rotate in the circumferential direction, thereby realizing 360-degree full coverage monitoring of the integrated energy carbon emission gas in the pipeline, ensuring the accuracy and integrity of the integrated energy carbon emission data, and effectively reducing the interference of pollutants on the monitoring results, further improving the monitoring effect, and making it highly practical.
[0027] (2) The monitoring device of this utility model works in coordination with the second filter plate, the crossbar, the scraper, the rubber strip and the annular collection box. During the rotation of the second filter plate, the crossbar fixedly installed in the middle of the second filter plate also rotates. When the crossbar rotates, the rubber strip on the scraper scrapes off the impurities on the surface of the first filter plate, avoiding the accumulation of impurities on the surface of the first filter plate, ensuring the stability of the flow of comprehensive energy gas in the pipeline, thereby further improving the stability of the monitoring results. Attached Figure Description
[0028] Figure 1 This is a three-dimensional structural diagram of the present invention;
[0029] Figure 2 This is a side view of the present invention.
[0030] Figure 3 This is a top view of the structural structure of this utility model;
[0031] Figure 4 This is a structural diagram of the second ring and the second filter plate of this utility model;
[0032] Figure 5 This is a diagram showing the connection structure between the connector and the multifunctional composite sensor of this utility model.
[0033] Legend:
[0034] 1. First ring; 2. First filter plate; 3. Second ring; 4. Second filter plate; 5. Multifunctional composite sensor; 6. Driving component; 61. Motor; 62. Drive wheel; 63. Driven wheel; 64. Belt; 7. Crossbar; 8. Scraper; 9. Annular collection box; 10. Connecting seat; 11. Insert; 12. Mounting port; 13. Spring; 14. Limiting block. Detailed Implementation
[0035] To make the objectives, technical solutions, and advantages of this utility model clearer, the present utility model will be further described in detail below with reference to the accompanying drawings and embodiments. Furthermore, the technical features involved in the various embodiments of this utility model described below can be combined with each other as long as they do not conflict with each other.
[0036] Please see Figure 1-5 A preferred embodiment of the present invention provides a carbon emission monitoring device for integrated energy, comprising a first ring 1, a first filter plate 2 fixedly mounted on the first ring 1, a second ring 3 disposed on the side of the first ring 1, a second filter plate 4 rotatably mounted on the second ring 3, a multifunctional composite sensor 5 disposed on the side of the second filter plate 4, and a driving component 6 for monitoring the rotation of the multifunctional composite sensor 5 disposed on the second ring 3 and the second filter plate 4. The driving component 6 includes a motor 61 fixedly mounted on the side of the second ring 3, a driving wheel 62 rotatably mounted on the side of the second ring 3, a driven wheel 63 fixedly mounted on the middle of the second filter plate 4, and a belt 64 sleeved on the driving wheel 62 and the driven wheel 63. The output shaft end of the motor 61 is fixedly mounted to the driving wheel 62, and the belt 64 is connected to the driving wheel 62 and the driven wheel 63 respectively.
[0037] During installation, the first ring 1 and the second ring 3 are fixedly installed on the inner wall of the integrated energy carbon emission gas pipeline, with the first ring 1 and the first filter plate 2 in front, and the second ring 3 and the second filter plate 4 behind. When the integrated energy gas flows through the pipeline, the gas first passes through the first filter plate 2 to filter out impurities. Then, the motor 61 on the second ring 3 is started. The output shaft of the motor 61 rotates, driving the drive wheel 62 to rotate. The drive wheel 62 drives the driven wheel 63 to rotate through the belt 64. The driven wheel 63 rotates, driving the second filter plate 4 to rotate on the second ring 3. The rotation of the second filter plate 4 drives the multi-functional composite sensor 5 to rotate in the circumferential direction, realizing 360-degree full coverage monitoring of the integrated energy carbon emission gas in the pipeline. This ensures the accuracy and completeness of the integrated energy carbon emission data and effectively reduces the interference of pollutants on the monitoring results, further improving the monitoring effect and making it highly practical.
[0038] A crossbar 7 is fixedly installed in the middle of the second filter plate 4. The end of the crossbar 7 passes through the middle of the first filter plate 2, and the end of the crossbar 7 is rotatably set in the middle of the first filter plate 2. A scraper 8 is fixedly installed on the end of the crossbar 7 near the first filter plate 2. An adhesive strip is laid on the side of the scraper 8 near the first filter plate 2, and the adhesive strip is in contact with the surface of the first filter plate 2.
[0039] During the rotation of the second filter plate 4, the crossbar 7 fixedly installed in the middle of the second filter plate 4 also rotates. When the crossbar 7 rotates, the rubber strip on the scraper 8 scrapes away the impurities on the surface of the first filter plate 2, preventing the accumulation of impurities on the surface of the first filter plate 2, ensuring the stability of the flow of integrated energy gas in the pipeline, and thus further improving the stability of the monitoring results.
[0040] A ring-shaped collection box 9 is fixedly installed on the side of the second ring 3 away from the first ring 1;
[0041] The scraped-off impurities will fall into the annular collection box 9 under the push of the scraper 8 for collection, making it easier to clean later.
[0042] The second filter plate 4 has at least two sets of multifunctional composite sensors 5 that are relatively symmetrical.
[0043] When the second filter plate 4 rotates, multiple sets of sensors work simultaneously to monitor the carbon emissions of comprehensive energy from different angles, increasing the diversity and accuracy of the monitoring data. By verifying and supplementing the monitoring data from multiple angles, the reliability of the monitoring results is further improved.
[0044] The second filter plate 4 is fixedly installed with evenly distributed connecting seats 10, and the multifunctional composite sensor 5 is set on the connecting seats 10.
[0045] The connector 10 is positioned to provide a mounting location for the multifunctional composite sensor 5.
[0046] The connector 10 has a socket 11, the multifunctional composite sensor 5 is slidably disposed on the socket 11, the connector 10 has an installation port 12 on the side of the socket 11, a spring 13 is fixedly installed in the installation port 12, and a limit block 14 is slidably disposed on the installation port 12.
[0047] The multifunctional composite sensor 5 is installed in the socket 11. The multifunctional composite sensor 5 is locked in the socket 11 by the force of the spring 13 and the limiting block 14. The multifunctional composite sensor 5 is slidably installed on the socket 11 and is connected by a snap-fit method to facilitate the installation and disassembly of the sensor, and to facilitate the maintenance and replacement of the sensor.
[0048] A controller is provided on the first ring 1, and the controller is electrically connected to the multifunctional composite sensor 5 and the motor 61 respectively;
[0049] Setting up a controller enables automatic control of various components of the device.
[0050] During installation, the first ring 1 and the second ring 3 are fixedly installed on the inner wall of the integrated energy carbon emission gas pipeline, with the first ring 1 and the first filter plate 2 in front and the second ring 3 and the second filter plate 4 behind. When the integrated energy gas flows through the pipeline, the gas first passes through the first filter plate 2 to filter out impurities. Then, the motor 61 on the second ring 3 is started. The output shaft of the motor 61 rotates, driving the drive wheel 62 to rotate. The drive wheel 62 drives the driven wheel 63 to rotate through the belt 64. The driven wheel 63 rotates, driving the second filter plate 4 to rotate on the second ring 3. The rotation of the second filter plate 4 drives the multi-functional composite sensor 5 to rotate in the circumferential direction, realizing 360-degree full coverage monitoring of the integrated energy carbon emission gas in the pipeline. This ensures the accuracy and completeness of the integrated energy carbon emission data and can effectively reduce the interference of pollutants on the monitoring results, further improving the monitoring effect. It is highly practical.
[0051] During the rotation of the second filter plate 4, the crossbar 7 fixedly installed in the middle of the second filter plate 4 also rotates. When the crossbar 7 rotates, the rubber strip on the scraper 8 scrapes away the impurities on the surface of the first filter plate 2, preventing the accumulation of impurities on the surface of the first filter plate 2, ensuring the stability of the flow of integrated energy gas in the pipeline, and thus further improving the stability of the monitoring results.
[0052] The scraped-off impurities will fall into the annular collection box 9 under the push of the scraper 8 for collection, making it easier to clean later;
[0053] The second filter plate 4 is equipped with at least two sets of multifunctional composite sensors 5 that are relatively symmetrical. When the second filter plate 4 rotates, multiple sets of sensors work simultaneously to monitor the comprehensive energy carbon emissions from different angles, increasing the diversity and accuracy of monitoring data. By verifying and supplementing the monitoring data from multiple angles, the reliability of the monitoring results is further improved.
[0054] The connector 10 provides a mounting position for the multifunctional composite sensor 5. The multifunctional composite sensor 5 is installed in the socket 11. The multifunctional composite sensor 5 is locked in the socket 11 by the force of the spring 13 and the limiting block 14. The multifunctional composite sensor 5 is slidably installed on the socket 11 and is connected by a snap-fit method to facilitate the installation and removal of the sensor, and to facilitate the maintenance and replacement of the sensor.
[0055] Those skilled in the art will readily understand that the above description is merely a preferred embodiment of the present invention and is not intended to limit the present invention. Any modifications, equivalent substitutions, and improvements made within the spirit and principles of the present invention should be included within the protection scope of the present invention.
Claims
1. A carbon emission monitoring device for integrated energy, characterized in that, The system includes a first ring (1), on which a first filter plate (2) is fixedly mounted; a second ring (3) is provided on the side of the first ring (1); a second filter plate (4) is rotatably mounted on the second ring (3); a multifunctional composite sensor (5) is provided on the side of the second filter plate (4); and a driving component (6) for monitoring the rotation of the multifunctional composite sensor (5) is provided on the second ring (3) and the second filter plate (4); wherein, The driving component (6) includes a motor (61) fixedly mounted on the side of the second ring (3), a drive wheel (62) rotatably mounted on the side of the second ring (3), a driven wheel (63) fixedly mounted in the middle of the second filter plate (4), and a belt (64) sleeved on the drive wheel (62) and the driven wheel (63). The output shaft end of the motor (61) is fixedly mounted to the drive wheel (62), and the belt (64) is connected to the drive wheel (62) and the driven wheel (63) respectively. A crossbar (7) is fixedly installed in the middle of the second filter plate (4). The end of the crossbar (7) passes through the middle of the first filter plate (2), and the end of the crossbar (7) is rotatably set in the middle of the first filter plate (2). A scraper (8) is fixedly installed at the end of the crossbar (7) near the first filter plate (2).
2. The carbon emission monitoring device for integrated energy according to claim 1, wherein, The scraper (8) is covered with a rubber strip on the side near the first filter plate (2), and the rubber strip is in contact with the surface of the first filter plate (2).
3. A carbon emission monitoring device for integrated energy as described in claim 1, wherein, A ring-shaped collection box (9) is fixedly installed on the side of the second ring (3) away from the first ring (1).
4. A carbon emission monitoring device for integrated energy as described in claim 1, wherein, The second filter plate (4) has at least two sets of multifunctional composite sensors (5) that are relatively symmetrical.
5. A carbon emission monitoring device for integrated energy as described in claim 1, wherein, The second filter plate (4) is fixedly installed with evenly distributed connecting seats (10), and the multifunctional composite sensor (5) is set on the connecting seats (10).
6. A carbon emission monitoring device for integrated energy according to claim 5, wherein, The connector (10) has an opening (11), the multifunctional composite sensor (5) is slidably disposed on the opening (11), the connector (10) has an installation port (12) on the side of the opening (11), a spring (13) is fixedly installed in the installation port (12), and a limit block (14) is slidably disposed on the installation port (12).
7. A carbon emission monitoring device for integrated energy according to claim 1, wherein, A controller is provided on the first ring (1), and the controller is electrically connected to the multifunctional composite sensor (5) and the motor (61).
Citation Information
Patent Citations
Carbon emission monitoring device
CN217634807U
Carbon emission monitoring device
CN219266220U