A carbon emission environmental monitoring electric carbon table for a park
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-26
- Publication Date
- 2026-08-11
AI Technical Summary
一方面,高温会导致电容、电阻等元件参数漂移,影响计量芯片精度与通信模块稳定性,缩短电子元件使用寿命;另一方面,热量累积易造成焊点脱落、电路板碳化,在复杂工业环境中,更易引发短路等故障
[0021] The carbon meter disclosed in this application utilizes three independent mounting cavities within the outer casing to partition the functional expansion module, core control module, and power module. Each mounting cavity has its own air inlet and outlet, and is connected to the external space of the casing via an air inlet channel and a cooling fan. An electrically operated louver controls the airflow into each cavity. During operation, the cooling fan draws in cool outside air and delivers it into each mounting cavity through the air inlet channel, carrying away the heat generated by the modules within the cavity. The hot air is then discharged from the outlet, forming an independent cooling cycle. Its advantages include: partitioned installation avoids heat accumulation from different heat-generating components, reducing the temperature load on a single cavity; the independent cooling cycle allows for adjustment of the heat dissipation intensity according to the heat generation characteristics of each module, preventing parameter drift in components such as capacitors and resistors due to high temperatures, ensuring the accuracy of the metering chip and the stability of the communication module, and extending the lifespan of electronic components; simultaneously, it reduces the risk of failures such as solder joint detachment, circuit board carbonization, and short circuits caused by heat accumulation, improving the reliability and stability of the carbon meter in complex industrial environments.
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Figure CN224624630U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of electric carbon meter technology, and more specifically, to an electric carbon meter for monitoring carbon emissions in industrial parks. Background Technology
[0002] With the advancement of the "dual carbon" goals, the park's need for carbon emission monitoring is becoming increasingly urgent. The park uses carbon emission monitoring electric carbon meters as key equipment, which can collect electricity consumption data in real time, calculate carbon emissions by combining carbon emission factors, and transmit the data to the management platform, providing data support for the park's carbon footprint tracking, carbon trading, and energy conservation and emission reduction strategy formulation.
[0003] Currently, to achieve compact design, carbon dioxide meters typically integrate various electronic components such as metering chips, communication modules, and power circuits into a single chamber, employing a uniform heat dissipation structure, such as built-in heat sinks or relying on natural heat dissipation from the outer casing. This design causes the heat generated by different heat-generating components to accumulate within the chamber, leading to a rapid increase in temperature, especially during prolonged operation or in high-temperature environments.
[0004] The aforementioned centralized heat dissipation method has obvious drawbacks. On the one hand, high temperatures can cause the parameters of components such as capacitors and resistors to drift, affecting the accuracy of metering chips and the stability of communication modules, and shortening the lifespan of electronic components. On the other hand, heat accumulation can easily cause solder joints to fall off and circuit boards to carbonize, making them more prone to short circuits and other malfunctions in complex industrial environments. Utility Model Content
[0005] The purpose of this utility model is to provide an electric carbon meter for environmental monitoring of carbon emissions in industrial parks, aiming to solve the technical problems mentioned in the background art.
[0006] The embodiments of this utility model are implemented as follows:
[0007] This application provides a carbon emission environmental monitoring electric carbon meter for industrial parks, comprising: a housing, inside which are arranged from top to bottom an independent first mounting cavity, a second mounting cavity, and a third mounting cavity, each of which has an air inlet and an air outlet; a core main control module, including a circuit board, a main control chip, a communication module, a display module, and a power metering module that cooperate with each other, wherein the circuit board, the main control chip, the communication module, and the power metering module are all disposed in the second mounting cavity, and the display module is disposed on the outer wall of the housing; and a function expansion module, including a carbon emission calculation module and an environmental... The system includes an environmental parameter monitoring module, with both the carbon emission accounting module and the environmental parameter monitoring module electrically connected to the main control chip; a power supply module, located in the third mounting cavity, for supplying power to the circuit board; and a heat dissipation structure, including an air inlet channel, a cooling fan, and three motorized louvers. One end of the air inlet channel covers the air inlets of the first mounting cavity, the second mounting cavity, and the third mounting cavity, while the other end connects to the external space of the outer casing. The cooling fan is located within the air inlet channel, and the three motorized louvers are respectively located at the air inlets of the first mounting cavity, the second mounting cavity, and the third mounting cavity.
[0008] Furthermore, based on the aforementioned scheme, the air intake channel is equipped with a first air filter, which is located at the air intake end of the cooling fan.
[0009] Furthermore, based on the aforementioned scheme, it also includes a second air filter that simultaneously covers the air outlet of the first mounting cavity, the air outlet of the second mounting cavity, and the air outlet of the third mounting cavity.
[0010] Furthermore, based on the aforementioned solution, the display module is disposed on the front sidewall of the aforementioned housing;
[0011] The display module is covered with a transparent protective cover, which is detachably connected to the outer shell.
[0012] Furthermore, based on the aforementioned scheme, slots are provided on the left and right sides of the outer side wall of the outer casing, and the insertion port of any of the aforementioned slots is located at the top of the outer casing.
[0013] Specifically, the aforementioned transparent protective cover is used to engage with the two aforementioned slots.
[0014] Furthermore, based on the aforementioned scheme, temperature and humidity sensors are installed in the first mounting cavity, the second mounting cavity, and the third mounting cavity.
[0015] Furthermore, based on the aforementioned scheme, heating elements are provided in the first mounting cavity, the second mounting cavity, and the third mounting cavity.
[0016] Furthermore, based on the aforementioned solution, the back side of the outer casing is provided with a first opening, a second opening, and a third opening, which respectively connect to the first mounting cavity, the second mounting cavity, and the third mounting cavity.
[0017] The first opening, the second opening, and the third opening are all hinged with sealing covers.
[0018] Furthermore, based on the aforementioned scheme, one end of any of the aforementioned sealing covers is hinged to the aforementioned outer casing via a hinge, and the other end is detachably connected to the aforementioned outer casing.
[0019] Furthermore, based on the aforementioned scheme, any of the aforementioned air inlets is located on the left side of the aforementioned housing, and any of the aforementioned air outlets is located on the right side of the aforementioned housing.
[0020] Compared with the prior art, the embodiments of this utility model have at least the following advantages or beneficial effects:
[0021] The carbon meter disclosed in this application utilizes three independent mounting cavities within the outer casing to partition the functional expansion module, core control module, and power module. Each mounting cavity has its own air inlet and outlet, and is connected to the external space of the casing via an air inlet channel and a cooling fan. An electrically operated louver controls the airflow into each cavity. During operation, the cooling fan draws in cool outside air and delivers it into each mounting cavity through the air inlet channel, carrying away the heat generated by the modules within the cavity. The hot air is then discharged from the outlet, forming an independent cooling cycle. Its advantages include: partitioned installation avoids heat accumulation from different heat-generating components, reducing the temperature load on a single cavity; the independent cooling cycle allows for adjustment of the heat dissipation intensity according to the heat generation characteristics of each module, preventing parameter drift in components such as capacitors and resistors due to high temperatures, ensuring the accuracy of the metering chip and the stability of the communication module, and extending the lifespan of electronic components; simultaneously, it reduces the risk of failures such as solder joint detachment, circuit board carbonization, and short circuits caused by heat accumulation, improving the reliability and stability of the carbon meter in complex industrial environments. Attached Figure Description
[0022] To more clearly illustrate the technical solutions of the embodiments of this utility model, the drawings used in the embodiments will be briefly introduced below. It should be understood that the following drawings only show some embodiments of this utility model and should not be regarded as a limitation on the scope. For those skilled in the art, other related drawings can be obtained based on these drawings without creative effort.
[0023] Figure 1An isometric measurement method for an electric carbon meter used in industrial parks for carbon emission monitoring, as described in this embodiment of the present invention. Figure 1 ;
[0024] Figure 2 An isometric measurement method for an electric carbon meter used in industrial parks for carbon emission monitoring, as described in this embodiment of the present invention. Figure 2 ;
[0025] Figure 3 This is a cross-sectional view of an electric carbon meter for environmental monitoring of carbon emissions in a park, according to an embodiment of the present invention.
[0026] Figure 4 This invention relates to a partial isometric measurement of an electric carbon meter for monitoring carbon emissions in a park, as described in an embodiment of the present invention. Figure 1 ;
[0027] Figure 5 This invention relates to a partial isometric measurement of an electric carbon meter for monitoring carbon emissions in a park, as described in an embodiment of the present invention. Figure 2 ;
[0028] Figure 6 This invention relates to a partial isometric measurement of an electric carbon meter for monitoring carbon emissions in a park, as described in an embodiment of the present invention. Figure 3 .
[0029] Icons: 1-Outer shell, 101-First mounting cavity, 102-Second mounting cavity, 103-Third mounting cavity, 2-Display module, 3-Transparent protective cover, 4-First air filter, 5-Second air filter, 6-Air inlet channel, 7-Slot, 8-Heating element, 9-Carbon emission accounting module, 10-Environmental parameter monitoring module, 11-Communication module, 12-Main control chip, 13-Circuit board, 14-Power module, 15-Cooling fan, 16-Air outlet, 17-Power metering module, 18-Electric louver, 19-Temperature and humidity sensor, 20-Sealing cover. Detailed Implementation
[0030] The embodiments of this application will now be described in detail with reference to the accompanying drawings.
[0031] Example
[0032] Please refer to Figures 1-6This application provides a carbon emission monitoring meter for industrial parks, comprising: a housing 1, inside which are arranged, from top to bottom, independent first mounting cavity 101, second mounting cavity 102, and third mounting cavity 103, each with an air inlet and an air outlet 16; a core control module, including a circuit board 13, a main control chip 12, a communication module 11, a display module 2, and a power metering module 17, all of which are disposed in the second mounting cavity 102, and the display module 2 is disposed on the outer wall of the housing 1; and a function expansion module, including carbon emission calculation modules 9, all disposed in the first mounting cavity 101. The system includes an environmental parameter monitoring module 10, which is electrically connected to the main control chip 12; a power module 14, which is located in the third mounting cavity 103 and is used to supply power to the circuit board 13; and a heat dissipation structure, including an air inlet channel 6, a cooling fan 15, and three motorized louvers 18. One end of the air inlet channel 6 covers the air inlets of the first mounting cavity 101, the second mounting cavity 102, and the third mounting cavity 103, while the other end is used to connect to the external space of the outer casing 1. The cooling fan 15 is located in the air inlet channel 6, and the three motorized louvers 18 are respectively located in the air inlets of the first mounting cavity 101, the second mounting cavity 102, and the third mounting cavity 103.
[0033] The carbon meter of this application utilizes three independent mounting cavities within the outer casing 1: a first mounting cavity 101, a second mounting cavity 102, and a third mounting cavity 103. These cavities are used to partition the functional expansion module, the core main control module, and the power module 14. Each mounting cavity has an air inlet and an air outlet 16, and is connected to the external space of the outer casing 1 via an air inlet channel 6 and a cooling fan 15. An electric louver 18 controls the airflow into each cavity. During operation, the cooling fan 15 draws in cool outside air and sends it into each mounting cavity through the air inlet channel 6, carrying away the heat generated by the modules within the cavity. The hot air is then discharged from the air outlet 16, forming an independent cooling cycle. Its advantages are that partitioned installation avoids the superposition of heat from different heat-generating components, reducing the temperature load of a single chamber; independent heat dissipation circulation can adjust the heat dissipation intensity according to the heat-generating characteristics of each module, preventing the drift of component parameters such as capacitors and resistors caused by high temperature, ensuring the accuracy of the metering chip and the stability of the communication module 11, and extending the service life of electronic components; at the same time, it reduces the risk of failures such as solder joint detachment, carbonization of circuit board 13 and short circuit caused by heat accumulation, and improves the reliability and stability of the carbon meter in complex industrial environments.
[0034] In a preferred embodiment, the air inlet channel 6 is provided with a first air filter 4, which is located at the air inlet end of the cooling fan 15.
[0035] In the above embodiment, the air inlet channel 6 is provided with a first air filter 4 at the air inlet end of the cooling fan 15. This filter can effectively intercept dust, particles, lint and other impurities in the air before the outside air enters the carbon meter, preventing them from entering the first, second and third mounting cavities 103. This avoids dust accumulation on the surface of electronic components such as the carbon emission accounting module 9 and the main control chip 12, reducing the risk of component short circuits, poor contact and other failures caused by impurities. At the same time, the filter can protect the blades of the cooling fan 15 from wear by impurities, extend the service life of the fan, maintain a stable cooling airflow, ensure that the inside of the carbon meter maintains a good heat dissipation environment, and improve the overall reliability and stability of the equipment.
[0036] In a preferred embodiment, a second air filter 5 is also included, which simultaneously covers the air outlet 16 of the first mounting cavity 101, the air outlet 16 of the second mounting cavity 102, and the air outlet 16 of the third mounting cavity 103.
[0037] In the above embodiments, a second air filter 5 is provided that simultaneously covers the air outlets 16 of the first mounting cavity 101, the second mounting cavity 102, and the third mounting cavity 103. This prevents external debris from entering the interior of the carbon meter through the air outlets 16, ensuring that the electronic components in each mounting cavity are in a clean environment, reducing the risk of component failure due to dust accumulation, maintaining the stable operation of the core main control module, the function expansion module, and other modules, and improving the overall dustproof performance and service life of the carbon meter.
[0038] In a preferred embodiment, the display module 2 is disposed on the front sidewall of the housing 1;
[0039] The display module 2 is covered with a transparent protective cover 3, which is detachably connected to the outer shell 1.
[0040] In the above embodiment, the display module 2 is disposed on the front side wall of the housing 1, making it convenient for operators to intuitively view the data of the carbon meter and improving the ease of data reading. The display module 2 is covered with a detachable transparent protective cover 3. On the one hand, the transparent material does not affect the display and viewing of the data, ensuring that operators can clearly obtain the monitoring data; on the other hand, the protective cover can effectively protect the display module 2 from damage caused by dust, moisture, oil, external impacts, etc., avoiding problems such as blurred display and screen damage caused by external factors, and extending the service life of the display module 2. In addition, the detachable design allows for quick removal of the protective cover when needed for cleaning, maintenance or replacement of the display module 2 without affecting the overall structural stability of the carbon meter, improving the convenience of equipment maintenance.
[0041] In a preferred embodiment, slots 7 are provided on the left and right sides of the outer side wall of the outer casing 1, and the insertion port of any of the slots 7 is located at the top of the outer casing 1.
[0042] Specifically, the aforementioned transparent protective cover 3 is used to be inserted into and engaged with the two aforementioned slots 7.
[0043] In the above embodiment, slots 7 are provided on the left and right sides of the outer wall of the outer shell 1, with the insertion port located at the top. The transparent protective cover 3 is inserted and matched with the slots 7, which has many advantages. This design makes the installation and removal of the transparent protective cover 3 simple and convenient, without the need for additional tools, and can be completed simply by plugging and unplugging. This facilitates quick maintenance, cleaning, or replacement of the display module 2. The structure of the slots 7 can provide a stable support for the transparent protective cover 3, ensuring that it fits tightly with the outer shell 1, effectively preventing the protective cover from loosening or shifting, thereby reliably protecting the display module 2 from dust, moisture, and external impacts.
[0044] In a preferred embodiment, temperature and humidity sensors 19 are provided in the first mounting cavity 101, the second mounting cavity 102 and the third mounting cavity 103.
[0045] In the above embodiments, temperature and humidity sensors 19 are installed in the first mounting cavity 101, the second mounting cavity 102, and the third mounting cavity 103, which can monitor the temperature and humidity data in each cavity in real time and accurately. By acquiring the temperature and humidity information, the operating environment status of components such as the core main control module, the function expansion module, and the power module 14 can be monitored in a timely manner. If abnormal conditions such as excessively high temperature or humidity occur, the corresponding electric louvers 18 can be adjusted to regulate the air intake of the corresponding mounting cavity, ensuring the stable operation of each module of the carbon meter and extending the service life of the equipment.
[0046] In a preferred embodiment, heating elements 8 are provided in the first mounting cavity 101, the second mounting cavity 102 and the third mounting cavity 103.
[0047] In the above embodiment, the temperature and humidity sensor 19 monitors the temperature and humidity data inside the chamber in real time. When it detects that the ambient temperature is too low, which may affect the performance of electronic components or pose a risk of condensation, it activates the heating element 8 to raise the temperature, preventing the performance of components such as capacitors and batteries from deteriorating due to low temperatures, and preventing short circuits caused by water vapor condensation. When the temperature reaches a suitable range, the heating element 8 stops working to avoid energy waste. The combination of these two mechanisms can effectively maintain a stable temperature and humidity environment in each chamber, ensuring that each module of the carbon meter can operate continuously and reliably under complex climatic conditions, and improving the environmental adaptability and operational stability of the equipment.
[0048] In a preferred embodiment, the back side of the outer casing 1 is provided with a first opening, a second opening and a third opening, which are respectively connected to the first mounting cavity 101, the second mounting cavity 102 and the third mounting cavity 103.
[0049] The first opening, the second opening, and the third opening are all hinged with sealing cover plates 20.
[0050] In the above embodiments, the hinged sealing cover 20 allows for convenient installation, debugging, repair, or replacement of components such as the functional expansion module, core main control module, and power module 14 within each mounting cavity through opening and closing operations, without disassembling the overall structure of the outer shell 1, thus improving maintenance efficiency. When closed, the sealing cover 20 effectively prevents dust, moisture, and foreign objects from entering the mounting cavity, ensuring the cleanliness and safety of electronic components. It also enhances the sealing performance of the outer shell 1, preventing external environmental interference with the operation of the carbon meter. The design of corresponding independent openings allows for independent maintenance operations in each chamber. The cover of the target chamber can be opened individually according to actual needs, reducing the impact on the normal operation of other modules and ensuring the stability and reliability of the carbon meter during maintenance.
[0051] In a preferred embodiment, one end of any of the sealing cover plates 20 is hinged to the outer casing 1 via a hinge, and the other end is detachably connected to the outer casing 1.
[0052] In the above embodiments, one end of any sealing cover 20 is hinged to the outer casing 1 via a hinge, and the other end is detachably connected to the outer casing 1, enabling flexible opening and closing and reliable sealing. The hinge structure ensures that the cover can rotate freely, facilitating quick opening of the corresponding mounting cavity for component maintenance or replacement; the detachable connection method (such as snap-fit, bolts, etc.) provides a stable seal when closed, preventing dust, moisture, and other external impurities from entering the mounting cavity, ensuring the safe operation of electronic components such as the core main control module and function expansion module. Simultaneously, this design allows maintenance operations to be completed without completely disassembling the cover, simplifying the inspection process, shortening maintenance time, and ensuring that when a particular cover needs individual repair or replacement, it does not affect the normal use of other covers, improving the convenience and structural stability of the carbon meter maintenance.
[0053] In a preferred embodiment, any of the above-mentioned air inlets is located on the left side of the above-mentioned housing 1, and any of the above-mentioned air outlets 16 is located on the right side of the above-mentioned housing 1.
[0054] In the above embodiment, any air inlet is located on the left side of the housing 1 and the air outlet 16 is located on the right side, which can form a stable horizontal airflow path inside the housing 1. When the cooling fan 15 is running, cold air from the outside enters each mounting cavity from the left air inlet, flows horizontally through the electronic components in the cavity and carries away the heat, and is discharged from the right air outlet 16, so that the heat generated by each module can be discharged in an orderly manner in the same direction, avoiding the decrease in heat dissipation efficiency caused by airflow turbulence; this symmetrical layout of the left and right air inlets and outlets 16 can make full use of the space of the housing 1 to achieve a combination of natural convection and forced heat dissipation, enhance the rationality of the heat dissipation system, effectively reduce the temperature in each mounting cavity, prevent high temperature from affecting components such as the metering chip and communication module 11, and improve the stability and reliability of the carbon meter under long-term operation or high-temperature environment.
[0055] Furthermore, unless otherwise explicitly specified or limited, the terms "installation" and "connection" in this application embodiment should be interpreted broadly. For example, "connection" can be a detachable connection or a non-detachable connection; it can be a direct connection or an indirect connection through an intermediate medium. The terms "upper," "lower," "left," "right," "inner," "outer," and "side," etc., are merely for reference to the direction in the accompanying drawings or the usual placement of the product during use. They are only for clearly describing this application and do not indicate or imply that the device or component referred to must have a specific orientation, or be constructed and operated in a specific orientation. They should not be construed as limitations on this application. The terms "first," "second," etc., are only used for distinguishing descriptions and should not be construed as indicating or implying relative importance; "multiple" refers to at least two. In this application embodiment, the limitations on relative positional relationships such as parallel, perpendicular, and aligned are all relative to the current technological level and are not absolutely strict limitations. Slight deviations are allowed; approximations of parallel, perpendicular, and aligned are all acceptable. For example, "A and B are parallel" means that A and B are parallel or approximately parallel, and the angle between A and B can be between 0 degrees and 10 degrees.
[0056] The above are only some embodiments and implementation methods of this application. The protection scope of this application is not limited thereto. In the absence of conflict, the embodiments and features in the embodiments of this application can be combined with each other. Any combination of features in different embodiments is also within the protection scope of this application. Any changes or substitutions that can be easily conceived by those skilled in the art within the scope of the technology disclosed in this application should be included within the protection scope of this application.
Claims
1. A carbon emission monitoring meter for industrial parks, characterized in that, include: The outer shell (1) has a first mounting cavity (101), a second mounting cavity (102) and a third mounting cavity (103) arranged from top to bottom. Each of the first mounting cavity (101), the second mounting cavity (102) and the third mounting cavity (103) is provided with an air inlet and an air outlet (16). The core main control module includes a circuit board (13), a main control chip (12), a communication module (11), a display module (2), and a power metering module (17) that cooperate with each other. The circuit board (13), the main control chip (12), the communication module (11), and the power metering module (17) are all disposed in the second mounting cavity (102), and the display module (2) is disposed on the outer side wall of the outer shell (1). The functional expansion module includes a carbon emission accounting module (9) and an environmental parameter monitoring module (10), both of which are located in the first mounting cavity (101). The carbon emission accounting module (9) and the environmental parameter monitoring module (10) are both electrically connected to the main control chip (12). A power module (14) is disposed in the third mounting cavity (103) and is used to supply power to the circuit board (13); as well as The heat dissipation structure includes an air inlet channel (6), a heat dissipation fan (15), and three motorized louvers (18). One end of the air inlet channel (6) covers the air inlet of the first mounting cavity (101), the air inlet of the second mounting cavity (102), and the air inlet of the third mounting cavity (103). The other end is used to connect to the external space of the outer shell (1). The heat dissipation fan (15) is disposed in the air inlet channel (6). The three motorized louvers (18) are respectively disposed in the air inlet of the first mounting cavity (101), the air inlet of the second mounting cavity (102), and the air inlet of the third mounting cavity (103).
2. The carbon emission monitoring meter for industrial parks according to claim 1, characterized in that, The air inlet channel (6) is provided with a first air filter (4), which is located at the air inlet end of the cooling fan (15).
3. The carbon emission monitoring meter for industrial parks according to claim 2, characterized in that, It also includes a second air filter (5) that simultaneously covers the air outlet (16) of the first mounting cavity (101), the air outlet (16) of the second mounting cavity (102), and the air outlet (16) of the third mounting cavity (103).
4. The carbon emission monitoring meter for industrial parks according to claim 1, characterized in that, The display module (2) is disposed on the front side wall of the housing (1); The display module (2) is covered with a transparent protective cover (3), and the transparent protective cover (3) is detachably connected to the outer shell (1).
5. A carbon emission monitoring meter for industrial parks according to claim 4, characterized in that, Slots (7) are provided on the left and right sides of the outer side wall of the outer casing (1), and the insertion port of any of the slots (7) is located on the top of the outer casing (1); The transparent protective cover (3) is used to engage with the two slots (7).
6. A carbon emission monitoring meter for industrial parks according to claim 1, characterized in that, Temperature and humidity sensors (19) are provided in the first mounting cavity (101), the second mounting cavity (102) and the third mounting cavity (103).
7. A carbon emission monitoring meter for industrial parks according to claim 6, characterized in that, Heating elements (8) are provided in the first mounting cavity (101), the second mounting cavity (102) and the third mounting cavity (103).
8. A carbon emission monitoring meter for industrial parks according to claim 1, characterized in that, The back side of the outer shell (1) is provided with a first opening, a second opening and a third opening, which are respectively connected to the first mounting cavity (101), the second mounting cavity (102) and the third mounting cavity (103); The first opening, the second opening, and the third opening are all hinged with sealing cover plates (20).
9. A carbon emission monitoring meter for industrial parks according to claim 8, characterized in that, One end of any of the sealing covers (20) is hinged to the outer shell (1) via a hinge, and the other end is detachably connected to the outer shell (1).
10. A carbon emission monitoring meter for industrial parks according to claim 9, characterized in that, Any of the air inlets is located on the left side of the housing (1), and any of the air outlets (16) is located on the right side of the housing (1).