Carbon emission monitoring device in new energy project green construction
By designing a carbon emission monitoring device that integrates a treatment chamber and multiple mechanisms, the problem of existing carbon dioxide monitors being unable to purify and process carbon dioxide has been solved, enabling real-time monitoring and efficient processing of carbon dioxide and improving the environmental protection effect of green construction in new energy projects.
Patent Information
- Application Number
- CN202511045840.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-07-29
- Publication Date
- 2025-12-12
AI Technical Summary
Existing carbon dioxide monitors only have monitoring functions in green construction of new energy projects and cannot participate in the purification or treatment of carbon emissions, resulting in limited functionality.
A carbon emission monitoring device was designed, comprising a treatment chamber, an air intake chamber, a mounting chamber, a monitoring mechanism, a treatment mechanism, an auxiliary mechanism, and a heating mechanism. It utilizes a dual-axis servo motor to drive a transmission rod and an active bevel gear to achieve the reaction of carbon dioxide with potassium hydroxide. Combined with components such as a carbon dioxide monitor, an air pump, a fan, an electric heating plate, and a water pump, it realizes the monitoring and treatment of carbon dioxide.
This technology enables effective carbon dioxide treatment while monitoring carbon dioxide levels, improving the purification efficiency and treatment speed of carbon emissions at construction sites.
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Figure CN121114331A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of construction carbon emission monitoring technology, specifically a carbon emission monitoring device for green construction in new energy projects. Background Technology
[0002] Green construction of new energy projects refers to integrating the concept of sustainable development into the entire construction process of new energy projects (such as solar, wind, hydro, and biomass energy projects). Its core points mainly include resource conservation, environmental protection, and energy utilization. Monitoring carbon dioxide emissions is one of the carbon emission monitoring projects at construction sites. Monitoring carbon dioxide emissions from construction sites can effectively ensure construction safety, assess emission reduction effects, and thus effectively monitor carbon emissions in green construction of new energy projects.
[0003] In existing technologies, when construction is carried out at green construction sites, carbon emission monitoring devices are often installed inside the site to ensure that the construction site can meet the standards of green construction. Carbon dioxide is one of the carbon emission monitoring methods. Generally, carbon dioxide monitors are used to monitor carbon dioxide at construction sites. However, most carbon dioxide monitors only have the function of monitoring construction sites and cannot participate in the purification or treatment of carbon emissions. This limits the functionality of some existing carbon dioxide monitors and prevents them from achieving a good auxiliary effect.
[0004] Combining the above issues, we find that existing devices on the market are difficult to simultaneously avoid these problems during use. Even if they can solve them, they require external tools, thus failing to achieve the desired results. Therefore, we propose a carbon emission monitoring device for green construction in new energy projects. Summary of the Invention
[0005] The purpose of this invention is to provide a carbon emission monitoring device for green construction in new energy projects, so as to solve the problems mentioned in the background art.
[0006] To achieve the above objectives, the present invention provides the following technical solution: a carbon emission monitoring device for green construction in new energy projects, comprising a processing box, an air inlet box fixedly connected to one side of the processing box, the inner cavity of the processing box and the inner cavity of the air inlet box being interconnected, an air outlet groove being provided on the top of the processing box, an installation box fixedly connected to one side of the processing box, the top of the installation box being fixedly connected to the bottom of the air inlet box, a fixing plate fixedly connected to the inner cavity of the air inlet box, a monitoring mechanism being provided in the inner cavities of the air inlet box and the installation box, a processing mechanism being provided in the inner cavity of the processing box, and an auxiliary mechanism and a heating mechanism being provided on one side of the processing box.
[0007] Preferably, the processing mechanism includes a dual-axis servo motor, one side of which is fixedly connected to one side of a fixed plate. The output end of the dual-axis servo motor passes through the fixed plate and is fixedly connected to a transmission rod. A driving bevel gear is fixedly connected to the surface of the transmission rod. A connecting rod is rotatably connected to the inner cavity of the processing box. A driven bevel gear, a mounting plate, and a fixed gear are fixedly connected to the surface of the connecting rod. The teeth of the driving bevel gear mesh with the teeth of the driven bevel gear. A rotating rod is rotatably connected to the inner cavity of the mounting plate. Several rotating rods are provided. A rotating gear is fixedly connected to the surface of each of the rotating rods. A stirring rod is fixedly connected to one end of each of the rotating rods. An internal gear ring is fixedly connected to the inner cavity of the processing box. The teeth of the rotating gears mesh with the teeth of the internal gear ring and the teeth of the fixed gear.
[0008] Preferably, the monitoring mechanism includes a carbon dioxide monitor body, the surface of which is fixedly connected to the inner cavity of the mounting box, a transparent glass is fixedly connected to the inner cavity of the mounting box, an air inlet pipe and an air outlet pipe are fixedly connected to the inner cavity of the mounting box, one end of the air inlet pipe passes through the air inlet box, a vacuum pump is fixedly connected to the surface of the air inlet pipe, the bottom of the vacuum pump is fixedly connected to the inner cavity of the air inlet box, and one end of the air outlet pipe passes through the processing box.
[0009] Preferably, the auxiliary mechanism includes a water pump pipe, the surface of which is fixedly connected to the inner cavity of the treatment tank, a water pump and an auxiliary tank are fixedly connected to the surface of the water pump pipe, a first filter screen is slidably connected to the inner cavity of the auxiliary tank, and a water outlet pipe is fixedly connected to the inner cavity of the auxiliary tank, with one end of the water outlet pipe penetrating through the treatment tank.
[0010] Preferably, the heating mechanism includes an electric heating plate, one side of which is fixedly connected to one side of the processing box, and an insulation plate is fixedly connected to one side of the processing box. The inner cavity of the insulation plate is fitted onto the surface of the electric heating plate. A PLC controller is fixedly connected to the top of the processing box, and a temperature detector is fixedly connected to the inner cavity of the processing box.
[0011] Preferably, a fan is fixedly connected to the inner cavity of the air intake box, the output end of the dual-axis servo motor is fixedly connected to one side of the fan, and a second filter screen is movably engaged in the inner cavity of the air intake box.
[0012] Preferably, a plug is fixedly connected to one side of the second filter screen, and a fixing block is fixedly connected to the inner cavity of the air intake box, with the surface of the plug engaging movably with the inner cavity of the fixing block.
[0013] Preferably, an L-shaped block is fixedly connected to the inner cavity of the processing box, and a reinforcing ring block is fixedly connected to one side of the L-shaped block. The inner cavity of the reinforcing ring block is rotatably connected to the surface of the connecting rod.
[0014] Preferably, a reinforcing pad is fixedly connected to one end of the connecting rod, the top of the reinforcing pad is fixedly connected to the bottom of the fixed gear, and an inclined plate is fixedly connected to the inner cavity of the processing box.
[0015] Preferably, a support plate is fixedly connected to one side of the processing box, the top of the support plate is fixedly connected to the bottom of the auxiliary box, a cover plate is movably inserted into the top of the auxiliary box, the cover plate is threadedly connected to the inner cavity of the auxiliary box with bolts, a limiting plate is fixedly connected to the inner cavity of the water pumping pipe, and one side of the limiting plate is slidably connected to one side of the first filter screen.
[0016] Compared with the prior art, the beneficial effects of the present invention are: 1. This invention utilizes a dual-axis servo motor to smoothly drive the transmission rod and the active bevel gear to rotate. The meshing of the active bevel gear with the connecting rod enables the rotation of the internal gear ring and the mounting plate. Simultaneously, the meshing of the rotating gear with the fixed gear and the internal gear ring allows the rotating gear and the stirring rod to smoothly revolve and rotate, thereby improving the reaction effect of potassium hydroxide and carbon dioxide inside the treatment chamber. This achieves the simultaneous monitoring and treatment of carbon dioxide content in carbon emissions from the construction site.
[0017] 2. This invention enables the fan to rotate smoothly through the operation of a dual-axis servo motor, and works in conjunction with an air pump to draw external air into the installation housing. At the same time, the carbon dioxide monitoring instrument monitors the carbon dioxide content in the air and performs subsequent carbon dioxide treatment.
[0018] 3. This invention uses a temperature detector to monitor the internal temperature of the processing chamber and connects the PLC controller with the electric heating plate and the temperature detector to control the electric heating plate. This allows the electric heating plate to heat the inside of the processing chamber, thereby accelerating the reaction between carbon dioxide and potassium hydroxide inside the chamber and improving the efficiency and speed of carbon dioxide treatment. At the same time, the operation of the water pump filters out the calcium carbonate in the reduced potassium hydroxide, reducing the impact of calcium carbonate on the use of the reduced potassium hydroxide. Attached Figure Description
[0019] Figure 1 This is a schematic diagram of the overall structure of the present invention; Figure 2 This is a side view of the structure of the present invention; Figure 3 This is a schematic cross-sectional view of the present invention; Figure 4 This is a schematic cross-sectional view of the inclined plate and insulation board of the present invention; Figure 5 This is a schematic diagram of the fixed gear and driven bevel gear structure of the present invention; Figure 6 This is a schematic diagram of the insert block and fixing block structure of the present invention; Figure 7 This is a schematic diagram of the internal toothed ring and reinforcing ring block structure of the present invention; Figure 8 This is a schematic diagram of the water pump and water pipe structure of the present invention; Figure 9 This is a schematic diagram of the first filter screen and the limiting plate structure of the present invention.
[0020] In the diagram: 1. Processing chamber; 2. Inlet chamber; 3. Mounting chamber; 4. Fixing plate; 5. Processing mechanism; 501. Dual-axis servo motor; 502. Transmission rod; 503. Driving bevel gear; 504. Connecting rod; 505. Driven bevel gear; 506. Internal gear ring; 507. Mounting plate; 508. Rotating rod; 509. Rotating gear; 510. Stirring rod; 511. Fixed gear; 6. Monitoring mechanism; 601. Carbon dioxide monitor body; 602. Transparent glass; 603. Inlet pipe; 604. Air pump; 605 7. Air outlet pipe; 7. Auxiliary mechanism; 701. Water pump pipe; 702. Water pump; 703. Auxiliary housing; 704. First filter screen; 705. Water outlet pipe; 8. Heating mechanism; 801. Electric heating plate; 802. Insulation plate; 803. PLC controller; 804. Temperature detector; 9. Air outlet trough; 10. Second filter screen; 11. Fan; 12. Fixing block; 13. Insert block; 14. Inclined plate; 15. L-shaped block; 16. Reinforcing ring block; 17. Cover plate; 18. Bolt; 19. Support plate; 20. Restriction plate; 21. Reinforcing pad block. Detailed Implementation
[0021] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0022] Example 1: Please refer to Figures 1-9 This invention provides a technical solution: a carbon emission monitoring device for green construction in a new energy project, comprising a processing box 1, an air intake box 2 fixedly connected to one side of the processing box 1, the inner cavity of the processing box 1 and the inner cavity of the air intake box 2 being interconnected, an air outlet groove 9 being provided on the top of the processing box 1, an installation box 3 fixedly connected to one side of the processing box 1, the top of the installation box 3 being fixedly connected to the bottom of the air intake box 2, a fixing plate 4 fixedly connected to the inner cavity of the air intake box 2, a monitoring mechanism 6 being provided in the inner cavities of the air intake box 2 and the installation box 3, a processing mechanism 5 being provided in the inner cavity of the processing box 1, and an auxiliary mechanism 7 and a heating mechanism 8 being provided on one side of the processing box 1.
[0023] Processing mechanism 5 includes a dual-axis servo motor 501. One side of the dual-axis servo motor 501 is fixedly connected to one side of the fixed plate 4. The output end of the dual-axis servo motor 501 passes through the fixed plate 4 and is fixedly connected to a transmission rod 502. A driving bevel gear 503 is fixedly connected to the surface of the transmission rod 502. A connecting rod 504 is rotatably connected to the inner cavity of the processing box 1. A driven bevel gear 505, a mounting plate 507, and a fixed gear 511 are fixedly connected to the surface of the connecting rod 504. The driving bevel gear 503... The teeth of the driven bevel gear 505 mesh with each other. A rotating rod 508 is rotatably connected to the inner cavity of the mounting plate 507. Several rotating rods 508 are provided. Rotating gears 509 are fixedly connected to the surface of each rotating rod 508. A stirring rod 510 is fixedly connected to one end of each rotating rod 508. An internal toothed ring 506 is fixedly connected to the inner cavity of the processing box 1. The teeth of the several rotating gears 509 mesh with the teeth of the internal toothed ring 506 and the teeth of the fixed gear 511.
[0024] As a further definition of the processing mechanism 5 of the present invention, an L-shaped block 15 is fixedly connected to the inner cavity of the processing box 1, and a reinforcing ring block 16 is fixedly connected to one side of the L-shaped block 15. The inner cavity of the reinforcing ring block 16 is rotatably connected to the surface of the connecting rod 504. A reinforcing pad 21 is fixedly connected to one end of the connecting rod 504, and the top of the reinforcing pad 21 is fixedly connected to the bottom of the fixed gear 511. An inclined plate 14 is fixedly connected to the inner cavity of the processing box 1. The processing box 1 can store potassium hydroxide that needs to be treated for carbon dioxide, while the air inlet box 2 can extract carbon dioxide through the monitoring mechanism 6, so that the carbon dioxide can be treated after being monitored, and the outlet... The opening of the gas trough 9 allows the treated gas to be smoothly discharged from the inside of the processing chamber 1. At the same time, the heating mechanism 8 can increase the temperature inside the processing chamber 1, thereby improving the reaction rate and effect of carbon dioxide and potassium hydroxide. The processing chamber 1 can be installed and fixed with the driven bevel gear 505, the internal gear ring 506 and the fixed gear 511 through the connecting rod 504. Meanwhile, the dual-axis servo motor 501 can effectively drive the transmission rod 502 and the driving bevel gear 503 to rotate. Then, through the meshing of the driving bevel gear 503 and the driven bevel gear 505, the rotation of the mounting plate 507 and the rotating rod 508 is realized.
[0025] When the mounting plate 507 rotates, the rotating gear 509 engages with the internal gear ring 506 and the fixed gear 511, allowing the rotating gear 509 to smoothly drive the stirring rod 510 to rotate on its own axis and revolve around the sun. This increases the reaction rate between carbon dioxide and potassium hydroxide inside the treatment chamber 1. The vacuum pump 604 draws external air into the mounting chamber 3, where the carbon dioxide content is monitored by the carbon dioxide monitor 601. This allows staff to monitor carbon emissions at the construction site through the transparent glass 602 and the carbon dioxide monitor 601. The treatment chamber 1 can also use the L-shaped block 15 to install and fix the reinforcing ring block 16, which in turn strengthens the connecting rod 504, preventing it from shaking or tilting during rotation and use.
[0026] The specific implementation method of this embodiment is as follows: The operator can add potassium hydroxide into the processing chamber 1. After adding the potassium hydroxide, the operator can start the dual-axis servo motor 501. When external air is drawn into the processing chamber 1 by the monitoring mechanism 6, the monitored air will enter the processing chamber 1 and combine with the potassium hydroxide inside the processing chamber 1 to generate potassium carbonate and water. At this time, due to the operation of the dual-axis servo motor 501, the dual-axis servo motor 501 can smoothly drive the active bevel gear 503 to mesh through the transmission rod 502, and utilize the active bevel gear 503 and the driven bevel gear... The meshing of wheels 505 enables the rotation of connecting rod 504, mounting plate 507, and fixed gear 511. At this time, the mounting plate 507 drives rotating rod 508 and rotating gear 509 to rotate synchronously. The meshing of rotating gear 509 with internal gear ring 506 and fixed gear 511 allows rotating gear 509 to smoothly drive stirring rod 510 to rotate on its own axis and revolve around the sun. This increases the reaction effect and reaction speed of potassium hydroxide and carbon dioxide combination inside treatment tank 1, enabling the treatment of carbon dioxide after monitoring the carbon dioxide content at the construction site.
[0027] Example 2: Please refer to Figures 1-9 The present invention provides a technical solution: a carbon emission monitoring device for green construction in new energy projects. The present invention makes corresponding improvements to the technical problems mentioned in the background art.
[0028] As a further definition of the monitoring mechanism 6 of the present invention, the surface of the carbon dioxide monitor body 601 is fixedly connected to the inner cavity of the mounting box 3. A transparent glass 602 is fixedly connected to the inner cavity of the mounting box 3. An air inlet pipe 603 and an air outlet pipe 605 are fixedly connected to the inner cavity of the mounting box 3. One end of the air inlet pipe 603 penetrates the air inlet box 2. An air pump 604 is fixedly connected to the surface of the air inlet pipe 603. The bottom of the air pump 604 is fixedly connected to the inner cavity of the air inlet box 2. One end of the air outlet pipe 605 penetrates the processing box 1.
[0029] A fan 11 is fixedly connected to the inner cavity of the air intake box 2. The output end of the dual-axis servo motor 501 is fixedly connected to one side of the fan 11. A second filter 10 is movably snapped into the inner cavity of the air intake box 2.
[0030] A plug 13 is fixedly connected to one side of the second filter 10, and a fixing block 12 is fixedly connected to the inner cavity of the air intake box 2. The surface of the plug 13 is movably engaged with the inner cavity of the fixing block 12. The second filter 10 can effectively reduce the particles and dust entering the air intake box 2, reducing the impact of dust and impurities on carbon dioxide monitoring. The fan 11 can increase the air entering the air intake box 2, thereby improving the efficiency of the air pump 604 in extracting air. At the same time, the mutual engagement between the fixing block 12 and the plug 13 makes it simple and convenient for staff to replace or disassemble the second filter 10 regularly. The carbon dioxide monitor body 601 usually monitors the concentration of carbon dioxide using devices such as infrared sensors and electrochemical sensors. It utilizes the absorption characteristics of carbon dioxide molecules to infrared light of a specific wavelength and calculates the concentration by measuring the degree of light intensity attenuation. Therefore, the carbon dioxide monitor body 601 is existing technology in this field, and will not be elaborated on here.
[0031] The specific implementation method of this embodiment is as follows: When the air pump 604 is in operation, it can smoothly draw external air into the interior of the mounting box 3 through the air inlet pipe 603, and monitor the carbon dioxide emission of the construction site in real time through the carbon dioxide monitor body 601. The monitored air will be smoothly introduced into the interior of the processing box 1 through the air outlet pipe 605, thereby smoothly realizing the subsequent processing of carbon dioxide. While driving the transmission rod 502, the dual-axis servo motor 501 can smoothly drive the fan 11 through another output end, so that the fan 11 can smoothly blow the external air into the interior of the air inlet box 2, thereby increasing the extraction effect of the air pump 604.
[0032] Example 3: Please refer to Figures 1-9 The present invention provides a technical solution: a carbon emission monitoring device for green construction in new energy projects. The present invention makes corresponding improvements to the technical problems mentioned in the background art.
[0033] As a further definition of the auxiliary mechanism 7 and the heating mechanism 8 of the present invention, the surface of the water pump 701 is fixedly connected to the inner cavity of the processing box 1, the surface of the water pump 701 is fixedly connected to the water pump 702 and the auxiliary box 703, the inner cavity of the auxiliary box 703 is slidably connected to the first filter screen 704, the inner cavity of the auxiliary box 703 is fixedly connected to the water outlet pipe 705, and one end of the water outlet pipe 705 penetrates through the processing box 1.
[0034] One side of the electric heating plate 801 is fixedly connected to one side of the processing box 1. A heat insulation plate 802 is fixedly connected to one side of the processing box 1. The inner cavity of the heat insulation plate 802 is fitted onto the surface of the electric heating plate 801. A PLC controller 803 is fixedly connected to the top of the processing box 1. A temperature detector 804 is fixedly connected to the inner cavity of the processing box 1.
[0035] A support plate 19 is fixedly connected to one side of the processing chamber 1. The top of the support plate 19 is fixedly connected to the bottom of the auxiliary chamber 703. A cover plate 17 is movably inserted into the top of the auxiliary chamber 703. A bolt 18 is threadedly connected to the inner cavity of the auxiliary chamber 703. A limiting plate 20 is fixedly connected to the inner cavity of the water pump 701. One side of the limiting plate 20 is slidably connected to one side of the first filter screen 704. The water pump 701 can process the potassium carbonate that has reacted and been processed inside the processing chamber 1 and extract the processed liquid. At the same time, the solid after the reaction is filtered through the first filter screen 704. Then, the filtered liquid can flow smoothly back into the interior of the processing chamber 1 through the water outlet pipe 705. At the same time, the temperature detector 804 can detect the heat inside the processing chamber 1.
[0036] Meanwhile, both the temperature detector 804 and the electric heating plate 801 are electrically connected to the PLC controller 803. This allows the temperature detector 804 to control the electric heating plate 801 through the PLC controller 803 when it detects that the temperature inside the processing chamber 1 is low, thereby heating the inside of the processing chamber 1 and increasing the temperature inside the processing chamber 1. This makes the reaction inside the processing chamber 1 faster and more effective. At the same time, when the temperature inside the processing chamber 1 is too high, the temperature detector 804 can also control the use of the electric heating plate 801. The support plate 19 can support and reinforce the auxiliary chamber 703, making it less likely to tilt or shake during long-term use. The bolts 18 can firmly connect the cover plate 17 to the auxiliary chamber 703, thus preventing liquid from flowing out when there is liquid flowing inside the auxiliary chamber 703. At the same time, the limiting plate 20 can connect to the first filter screen 704 and facilitate the subsequent disassembly or replacement of the first filter screen 704 by the staff.
[0037] The specific implementation method of this embodiment is as follows: After long-term use, the reaction effect of potassium hydroxide with carbon dioxide inside the treatment chamber 1 will decrease with the use of potassium hydroxide. At this time, the operator can add calcium hydroxide into the treatment chamber 1 through the gas outlet 9. The calcium hydroxide will react with the potassium carbonate inside the treatment chamber 1 after reacting with carbon dioxide, and generate calcium carbonate and potassium hydroxide, thereby realizing the reduction of potassium hydroxide. At this time, the treatment chamber 1 can continue to treat carbon dioxide. When a large amount of calcium carbonate is generated inside the treatment chamber 1, the operator can start the water pump 702. The operation of the water pump 702 will extract the potassium hydroxide and calcium carbonate inside the treatment chamber 1 and extract them into the auxiliary chamber 703. The calcium carbonate inside the potassium hydroxide will be filtered by the first filter screen 704, and the filtered potassium hydroxide will flow back into the treatment chamber 1 for reuse.
[0038] Temperature detector 804 can detect the temperature inside the processing chamber 1 and control the electric heating plate 801 through PLC controller 803, so that the electric heating plate 801 can smoothly increase the temperature inside the processing chamber 1. In turn, the increase in temperature accelerates the reaction of potassium hydroxide and carbon dioxide, as well as the reaction of potassium carbonate and calcium hydroxide, and enhances the reaction effect. The liquid inside the processing chamber 1 can also be extracted through the air outlet 9 using an external pump and water pipe when needed, so as to achieve the treatment and cleaning of the inside of the processing chamber 1.
[0039] It should be noted that, in this document, relational terms such as "first" and "second" are used only to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such process, method, article, or apparatus.
[0040] Although embodiments of the invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the invention, the scope of which is defined by the appended claims and their equivalents.
Claims
1. A carbon emission monitoring device in the green construction of a new energy project, comprising a processing box (1), characterized in that: An air intake box (2) is fixedly connected to one side of the processing box (1). The inner cavity of the processing box (1) is connected to the inner cavity of the air intake box (2). An air outlet groove (9) is opened on the top of the processing box (1). An installation box (3) is fixedly connected to one side of the processing box (1). The top of the installation box (3) is fixedly connected to the bottom of the air intake box (2). A fixing plate (4) is fixedly connected to the inner cavity of the air intake box (2). A monitoring mechanism (6) is provided in the inner cavities of the air intake box (2) and the installation box (3). A processing mechanism (5) is provided in the inner cavity of the processing box (1). An auxiliary mechanism (7) and a heating mechanism (8) are provided on one side of the processing box (1). 2. The carbon emission monitoring device in the green construction of a new energy project according to claim 1, characterized in that: The processing mechanism (5) includes a dual-axis servo motor (501), one side of which is fixedly connected to one side of the fixed plate (4). The output end of the dual-axis servo motor (501) passes through the fixed plate (4) and is fixedly connected to a transmission rod (502). A driving bevel gear (503) is fixedly connected to the surface of the transmission rod (502). A connecting rod (504) is rotatably connected to the inner cavity of the processing box (1). A driven bevel gear (505), a mounting plate (507), and a fixed gear (511) are fixedly connected to the surface of the connecting rod (504). The driving bevel gear (505) is fixedly connected to the surface of the connecting rod (504). The teeth of the 03) mesh with the teeth of the driven bevel gear (505). The inner cavity of the mounting plate (507) is rotatably connected to a rotating rod (508). Several rotating rods (508) are provided. The surfaces of several rotating rods (508) are fixedly connected to rotating gears (509). One end of several rotating rods (508) is fixedly connected to a stirring rod (510). The inner cavity of the processing box (1) is fixedly connected to an internal toothed ring (506). The teeth of several rotating gears (509) mesh with the teeth of the internal toothed ring (506) and the teeth of the fixed gear (511).
3. The carbon emission monitoring device for green construction of new energy projects according to claim 2, characterized in that: The monitoring mechanism (6) includes a carbon dioxide monitor body (601), the surface of which is fixedly connected to the inner cavity of the mounting box (3), the inner cavity of which is fixedly connected to a transparent glass (602), the inner cavity of which is fixedly connected to an air inlet pipe (603) and an air outlet pipe (605), one end of which penetrates the air inlet box (2), the surface of which is fixedly connected to a vacuum pump (604), the bottom of which is fixedly connected to the inner cavity of the air inlet box (2), and one end of which penetrates the processing box (1).
4. The carbon emission monitoring device for green construction of new energy projects according to claim 3, characterized in that: The auxiliary mechanism (7) includes a water pump (701), the surface of which is fixedly connected to the inner cavity of the treatment box (1), a water pump (702) and an auxiliary box (703) are fixedly connected to the surface of the water pump (701), a first filter screen (704) is slidably connected to the inner cavity of the auxiliary box (703), and an outlet pipe (705) is fixedly connected to the inner cavity of the auxiliary box (703), one end of which penetrates the treatment box (1).
5. A carbon emission monitoring device for green construction of a new energy project according to claim 4, characterized in that: The heating mechanism (8) includes an electric heating plate (801), one side of which is fixedly connected to one side of the processing box (1), and a heat insulation plate (802) is fixedly connected to one side of the processing box (1). The inner cavity of the heat insulation plate (802) is fitted onto the surface of the electric heating plate (801). A PLC controller (803) is fixedly connected to the top of the processing box (1), and a temperature detector (804) is fixedly connected to the inner cavity of the processing box (1).
6. A carbon emission monitoring device for green construction in a new energy project according to claim 3, characterized in that: A fan (11) is fixedly connected to the inner cavity of the air intake box (2), and the output end of the dual-axis servo motor (501) is fixedly connected to one side of the fan (11). A second filter (10) is movably snapped into the inner cavity of the air intake box (2).
7. A carbon emission monitoring device for green construction of a new energy project according to claim 6, characterized in that: A plug (13) is fixedly connected to one side of the second filter (10), and a fixing block (12) is fixedly connected to the inner cavity of the air intake box (2). The surface of the plug (13) is movably engaged with the inner cavity of the fixing block (12).
8. A carbon emission monitoring device for green construction of a new energy project according to claim 4, characterized in that: An L-shaped block (15) is fixedly connected to the inner cavity of the processing box (1), and a reinforcing ring block (16) is fixedly connected to one side of the L-shaped block (15). The inner cavity of the reinforcing ring block (16) is rotatably connected to the surface of the connecting rod (504).
9. A carbon emission monitoring device for green construction of a new energy project according to claim 5, characterized in that: One end of the connecting rod (504) is fixedly connected to a reinforcing pad (21), the top of the reinforcing pad (21) is fixedly connected to the bottom of the fixed gear (511), and the inner cavity of the processing box (1) is fixedly connected to an inclined plate (14).
10. A carbon emission monitoring device for green construction of a new energy project according to claim 4, characterized in that: A support plate (19) is fixedly connected to one side of the processing box (1). The top of the support plate (19) is fixedly connected to the bottom of the auxiliary box (703). A cover plate (17) is movably inserted into the top of the auxiliary box (703). A bolt (18) is threadedly connected to the inner cavity of the auxiliary box (703). A limiting plate (20) is fixedly connected to the inner cavity of the water pump (701). One side of the limiting plate (20) is slidably connected to one side of the first filter screen (704).
Citation Information
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