Carbon emission monitoring device

By designing a carbon emission monitoring device including electric push rods, adjustment plates, sealing plates, air guide frames and scrapers, the corrosion and dust problems caused by the exposed driving structure of the existing device are solved, and stable operation and efficient detection effects are achieved.

CN222913604UActive Publication Date: 2025-05-27BEIJING YUANJIU ENERGY TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202421451900.3
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-06-25
Publication Date
2025-05-27
Estimated Expiration
2034-06-25

AI Technical Summary

Technical Problem

The protective driving structure of the existing carbon emission monitoring device is exposed to the outside world and is susceptible to wind, rain, and sun-drying, which leads to rust of gears and racks or dust adhesion on the surface, affecting the normal opening and closing of the waterproof cover.

Method used

A carbon emission monitoring device was designed, and a greenhouse gas analyzer, an IoT controller and a blower were installed inside the chassis. Air guide ports were opened at both ends, and the blower was connected to an air guide port. Protective devices are installed on the outside, including electric push rods, adjustment plates, sealing plates, air guide frames and scrapers. The filter screen is fixedly connected at the bottom of the sealing plate. The air guide frames and scrapers are used to block rainwater and dust.

Benefits of technology

By remotely controlling the opening and closing of the air guide port, the probability of the internal structure of the chassis being damaged due to water inlet is reduced, and the detection effect of the device is ensured. The electric push rod, adjustment plate and sealing plate are all inside the chassis, avoiding external interference and ensuring the stable operation of the protective device. The filter plate and scraper effectively filter and remove dust, keeping the inside of the chassis clean and reducing the impact on the greenhouse gas analyzer.

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Abstract

The utility model relates to the technical field of carbon emission monitoring, in particular to a carbon emission monitoring device which comprises a case, a greenhouse gas analyzer, an Internet of Things controller and an air blower, the greenhouse gas analyzer, the Internet of Things controller and the air blower are all installed in the case, gas guide ports are formed in the two ends of the case, and the air guide ports are communicated with the case. The air blower is communicated with one of the air guide ports; the protection device is arranged outside the case; related personnel can remotely open and close the air guide port, the probability that the internal structure of the machine box is damaged due to water inflow is reduced, the detection effect of the device is guaranteed to a certain degree, compared with an existing driving structure exposed to the outside, the electric push rod, the adjusting plate and the sealing plate are all located in the machine box and cannot be interfered by the outside, and the detection efficiency is improved. And therefore, the stable operation of the protection device is ensured.
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Description

Technical Field

[0001] The utility model relates to the technical field of carbon emission monitoring, in particular to a carbon emission monitoring device. Background Art

[0002] Carbon emissions refer to the greenhouse gas emissions generated during the production, transportation, use and recycling of a product. Currently, greenhouse gas analyzers are common carbon emission monitoring devices.

[0003] At present, a Chinese patent discloses a building energy carbon emission monitoring device based on the Internet of Things (publication number CN216350601U). The utility model drives the No. 2 rotating connection component on the waterproof cover through the stretch rope on the slider and the slide groove driven by the motor, and drives one side of the waterproof cover to rotate and move through repeated lateral movement, which can protect the inside of the device from water ingress, solve the problem of water damage to the monitoring equipment as much as possible, and also ensure the detection effect of the device to a certain extent.

[0004] Since the gears and racks used for opening and closing the waterproof cover in the above-mentioned device are exposed to the outside, and the above-mentioned device is generally monitored for a long time in an open-air venue, the gears and racks will be affected by the external wind, rain, sun and aging. Over time, it is easy to rust or dust will adhere to the surface, affecting the normal opening and closing of the waterproof cover.

[0005] Therefore, a carbon emission monitoring device is proposed to solve the above problems. Utility Model Content

[0006] The purpose of the utility model is to provide a carbon emission monitoring device in order to solve the above-mentioned problem, thereby improving the problem that the existing carbon emission monitoring device with protection function has its protection driving structure exposed to the outside and is easily affected by external wind, rain and sun aging.

[0007] The utility model achieves the above-mentioned purpose through the following technical scheme, a carbon emission monitoring device, including: a chassis, a greenhouse gas analyzer, an Internet of Things controller and a blower, wherein the greenhouse gas analyzer, the Internet of Things controller and the blower are all installed inside the chassis, and air guide ports are provided at both ends of the chassis, and the blower is connected to one of the air guide ports; a protective device, wherein the protective device is arranged outside the chassis, and the end of the protective device passes through the two air guide ports in sequence and extends to the inside of the chassis.

[0008] Preferably, two relatively vertical inner walls of the chassis are provided with adjustment cavities connected to the adjacent air guide ports, and the protective device includes an electric push rod fixedly connected to the interior of the chassis, and the output end of the electric push rod is fixedly connected to an adjustment plate, and both ends of the adjustment plate are fixedly connected to sealing plates slidably connected to the interior of the adjacent adjustment cavity. The sealing plate is arranged above the air guide port at this time, and the size of the sealing plate is larger than the size of the air guide port. Relevant personnel can remotely open and close the air guide port, which not only reduces the probability of damage to the internal structure of the chassis due to water ingress, but also guarantees the detection effect of the device to a certain extent. Compared with the existing driving structure exposed to the outside world, the electric push rod, the adjustment plate and the sealing plate are all inside the chassis and will not be affected by external interference, thereby ensuring the stable operation of the protective device.

[0009] Preferably, the protective device also includes two air guide frames, which are respectively fixedly connected to the two ends of the chassis, and the upper openings of the air guide frames are connected to the adjacent air guide ports; the vertical cross-sectional shape of the inner side of the air guide frame is an isosceles trapezoid, the upper opening of the air guide frame is parallel to the vertical plane, and the lower opening of the air guide frame is parallel to the horizontal plane, which can prevent rainwater from falling into the air guide port and reduce the probability of rainwater penetrating into the regulating cavity.

[0010] Preferably, the bottom of the sealing plate is fixedly connected to a filter screen plate which is slidably connected to the inside of the regulating chamber. The two openings of the air guide port are separated by the filter screen plate. The filter screen plate can filter out dust mixed in the passing airflow and block it outside the chassis, so that the interior of the chassis always remains clean, thereby reducing the impact on the operation of the greenhouse gas analyzer.

[0011] Preferably, the height ratio between the air guide port, the sealing plate, the filter screen plate and the adjustment chamber is 1:1.2:1.2:4. The height difference between the bottom of the filter screen plate and the bottom wall of the adjustment chamber is greater than the height of the sealing plate. This can ensure that the sealing plate and the filter screen plate have enough space to rise and fall, thereby ensuring that the sealing plate and the filter screen plate can function normally.

[0012] Preferably, the protective device also includes two scrapers, which are not only fixedly connected to the inner bottom walls of the two air guide ports, but also simultaneously arranged at the opposite ends of the two filter screens, and the opposite ends of the two scrapers are in contact with the adjacent filter screens, and in the process of the sealing plate moving downward, the sealing plate synchronously drives the filter screen to move downward, at which time the scraper can scrape off the dust adhered to the surface of the filter screen, which can not only ensure the cleanliness of the filter screen and enable the filter screen to always filter dust, but also prevent dust from entering the interior of the adjustment chamber, so as to reduce the impact on the lifting and lowering of the sealing plate and the filter screen.

[0013] Preferably, the highest point of the scraper contacts the adjacent filter screen, and the lowest point of the scraper contacts the lowest point of the opening on the adjacent air guide frame, which can guide the scraped dust to the outside of the air guide frame to reduce the probability of dust remaining near the air guide port.

[0014] The beneficial effects of the utility model are:

[0015] 1. Relevant personnel can remotely open and close the air guide port, which not only reduces the probability of damage to the internal structure of the chassis due to water ingress, but also guarantees the detection effect of the device to a certain extent. Compared with the existing drive structure exposed to the outside world, the electric push rod, adjustment plate and sealing plate are all inside the chassis and will not be disturbed by the outside world, thereby ensuring the stable operation of the protective device;

[0016] 2. A filter screen is provided at the bottom of the sealing plate. The filter screen can filter out dust mixed in the passing airflow and block it outside the chassis, so that the inside of the chassis always remains clean, thereby reducing the impact on the operation of the greenhouse gas analyzer. BRIEF DESCRIPTION OF THE DRAWINGS

[0017] Figure 1 It is a closed schematic diagram of the chassis in the utility model;

[0018] Figure 2 This is a schematic diagram of opening the chassis in the utility model;

[0019] Figure 3 It is a cross-sectional schematic diagram of the utility model in a closed state of the chassis;

[0020] Figure 4 for Figure 3 A magnified view of middle;

[0021] Figure 5 It is a schematic diagram of the explosion of the protective device in the utility model.

[0022] In the figure: 1. chassis; 11. air guide port; 12. adjustment chamber; 2. greenhouse gas analyzer; 3. Internet of Things controller; 4. blower; 5. protective device; 51. electric push rod; 52. adjustment plate; 53. sealing plate; 54. air guide frame; 55. filter screen plate; 56. scraper. DETAILED DESCRIPTION

[0023] The following will be combined with the drawings in the embodiments of the utility model to clearly and completely describe the technical solutions in the embodiments of the utility model. Obviously, the described embodiments are only part of the embodiments of the utility model, not all of the embodiments. Based on the embodiments in the utility model, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the utility model.

[0024] When implementing: Figure 1-5 As shown, a carbon emission monitoring device includes: a chassis 1, a greenhouse gas analyzer 2, an Internet of Things controller 3 and a blower 4, the greenhouse gas analyzer 2, the Internet of Things controller 3 and the blower 4 are all installed inside the chassis 1, and air guide ports 11 are opened at both ends of the chassis 1, and the blower 4 is connected to one of the air guide ports 11; a protective device 5, the protective device 5 is arranged on the outside of the chassis 1, and the end of the protective device 5 passes through the two air guide ports 11 in sequence and extends to the inside of the chassis 1.

[0025] like Figure 3 , Figure 4 and Figure 5 As shown, two relatively vertical inner walls of the chassis 1 are provided with adjustment cavities 12 connected with the adjacent air guide ports 11, and the protective device 5 includes an electric push rod 51 fixedly connected to the inside of the chassis 1, and the output end of the electric push rod 51 is fixedly connected to an adjustment plate 52, and both ends of the adjustment plate 52 are fixedly connected to sealing plates 53 slidably connected to the inside of the adjacent adjustment cavity 12, and the sealing plate 53 is arranged above the air guide port 11 at this time, and the size of the sealing plate 53 is larger than the size of the air guide port 11; the protective device 5 also includes two air guide frames 54, and the two air guide frames 54 are respectively fixedly connected to the two ends of the chassis 1, and the upper opening of the air guide frame 54 is connected with the adjacent air guide port 11; the vertical cross-section of the inner side of the air guide frame 54 is an isosceles trapezoid, the upper opening of the air guide frame 54 is parallel to the vertical plane, and the lower opening of the air guide frame 54 is parallel to the horizontal plane.

[0026] like Figure 4 and Figure 5 As shown, a filter screen plate 55 slidably connected to the inside of the regulating chamber 12 is fixedly connected to the bottom of the sealing plate 53, and the two openings of the air guide port 11 are separated by the filter screen plate 55; the height ratio between the air guide port 11, the sealing plate 53, the filter screen plate 55 and the regulating chamber 12 is 1:1.2:1.2:4, and the height difference between the bottom of the filter screen plate 55 and the inner bottom wall of the regulating chamber 12 is greater than the height of the sealing plate 53; the protective device 5 also includes two scrapers 56, which are not only fixedly connected to the inner bottom walls of the two air guide ports 11 respectively, but also arranged at the opposite ends of the two filter screen plates 55 at the same time, and the opposite ends of the two scrapers 56 are in contact with the adjacent filter screen plates 55 respectively; the highest point of the scraper 56 is in contact with the adjacent filter screen plate 55, and the lowest point of the scraper 56 is in contact with the lowest point of the opening on the adjacent air guide frame 54;

[0027] When the blower 4 operates normally, the filter plate 55 can filter out the dust mixed in the passing airflow and block it outside the chassis 1, so that the interior of the chassis 1 is always kept clean, thereby reducing the impact on the operation of the greenhouse gas analyzer 2; in the process of the sealing plate 53 moving downward, the sealing plate 53 simultaneously drives the filter plate 55 to move downward, and at this time the scraper 56 can scrape off the dust adhering to the surface of the filter plate 55, which can not only ensure the cleanliness of the filter plate 55, so that the filter plate 55 can always play the role of filtering dust, but also prevent dust from entering the interior of the adjustment chamber 12, so as to reduce the impact on the lifting and lowering of the sealing plate 53 and the filter plate 55.

[0028] Working principle:

[0029] When the carbon emission monitoring device operates normally, the blower 4 stirs the air and guides it to one side, so that the gas inside and outside the chassis 1 is quickly replaced through the two air guide ports 11. At this time, the greenhouse gas analyzer 2 monitors the carbon dioxide content in the passing gas in real time and transmits the detection data to the Internet of Things controller 3. The Internet of Things controller 3 transmits the data to the Internet of Things database matched with it. At this time, relevant personnel can effectively know the carbon emission situation in the monitoring area through the Internet of Things terminal matched with the Internet of Things database.

[0030] When relevant personnel learn that there is thunderstorm weather for the carbon emission monitoring device, relevant personnel can control the greenhouse gas analyzer 2 and the blower 4 to stop running through the Internet of Things terminal matched with the Internet of Things controller 3, and then control the electric push rod 51 to retract, and the electric push rod 51 drives the adjustment plate 52 to descend, and the adjustment plate 52 drives the two sealing plates 53 to descend at the same time, and the sealing plate 53 enters the corresponding air guide port 11 during the descent process. When the electric push rod 51 is dropped into place, the sealing plate 53 just blocks the corresponding air guide port 11. At this time, both air guide ports 11 are blocked, and external moisture and rainwater cannot enter the inside of the chassis 1 through the chassis 1. At this time, the inside of the chassis 1 can be kept clean and dry, which not only reduces the probability of damage to the internal structure of the chassis 1 due to water ingress, but also guarantees the detection effect of the device to a certain extent. Compared with the existing driving structure exposed to the outside world, the electric push rod 51, the adjustment plate 52 and the sealing plate 53 are all inside the chassis 1 and will not be disturbed by the outside world, thereby ensuring that the protective device 5 can operate stably.

[0031] It should be noted that the greenhouse gas analyzer 2, Internet of Things controller 3, blower 4, electric push rod 51, Internet of Things database and Internet of Things terminal in the above description are all devices with relatively mature application of existing technologies. The specific models can be selected according to actual needs. At the same time, the greenhouse gas analyzer 2, Internet of Things controller 3, blower 4, electric push rod 51, Internet of Things database and Internet of Things terminal can be powered by a built-in power supply or by AC power. The specific power supply method is selected according to the situation and will not be elaborated here.

[0032] In addition, it should be understood that although the present specification is described according to implementation modes, not every implementation mode contains only one independent technical solution. This description of the specification is only for the sake of clarity. Those skilled in the art should regard the specification as a whole. The technical solutions in each embodiment may also be appropriately combined to form other implementation modes that can be understood by those skilled in the art.

Claims

1. A carbon emission monitoring device, characterized in that: include: A chassis (1), a greenhouse gas analyzer (2), an Internet of Things controller (3) and a blower (4), wherein the greenhouse gas analyzer (2), the Internet of Things controller (3) and the blower (4) are all installed inside the chassis (1), and air guide ports (11) are provided at both ends of the chassis (1), and the blower (4) is connected to one of the air guide ports (11); A protective device (5), the protective device (5) being arranged outside the chassis (1), and the end of the protective device (5) sequentially passing through the two air guide ports (11) and extending into the interior of the chassis (1); Wherein, two relatively vertical inner walls of the chassis (1) are each provided with an adjustment cavity (12) connected to the adjacent air guide port (11); the protective device (5) comprises an electric push rod (51) fixedly connected to the inside of the chassis (1); the output end of the electric push rod (51) is fixedly connected to an adjustment plate (52); both ends of the adjustment plate (52) are fixedly connected to a sealing plate (53) slidably connected to the inside of the adjacent adjustment cavity (12); the sealing plate (53) is arranged above the air guide port (11) at this time; and the size of the sealing plate (53) is larger than the size of the air guide port (11).

2. A carbon emission monitoring device according to claim 1, characterized in that: The protective device (5) further comprises two air guide frames (54), the two air guide frames (54) being respectively fixedly connected to two ends of the chassis (1), and the upper openings of the air guide frames (54) being in communication with the adjacent air guide ports (11).

3. A carbon emission monitoring device according to claim 2, characterized in that: The vertical cross-section of the inner side of the air guide frame (54) is in the shape of an isosceles trapezoid, the upper opening of the air guide frame (54) is parallel to the vertical plane, and the lower opening of the air guide frame (54) is parallel to the horizontal plane.

4. A carbon emission monitoring device according to claim 2, characterized in that: The bottom of the sealing plate (53) is fixedly connected to a filter screen plate (55) which is slidably connected to the inside of the regulating chamber (12), and the two openings of the air guide port (11) are separated by the filter screen plate (55).

5. A carbon emission monitoring device according to claim 4, characterized in that: The height ratio between the air guide port (11), the sealing plate (53), the filter screen plate (55) and the regulating chamber (12) is 1:1.2:1.2:4, and the height difference between the bottom of the filter screen plate (55) and the inner bottom wall of the regulating chamber (12) is greater than the height of the sealing plate (53).

6. A carbon emission monitoring device according to claim 4, characterized in that: The protective device (5) further comprises two scrapers (56), wherein the two scrapers (56) are not only respectively fixedly connected to the inner bottom walls of the two air guide ports (11), but also are simultaneously arranged at opposite ends of the two filter screens (55), and the opposite ends of the two scrapers (56) are respectively in contact with the adjacent filter screens (55).

7. A carbon emission monitoring device according to claim 6, characterized in that: The highest point of the scraper (56) contacts the adjacent filter screen plate (55), and the lowest point of the scraper (56) contacts the lowest point of the opening on the adjacent air guide frame (54).