Carbon monitoring online data acquisition terminal

By using the motor drive blade rotation and filter vibration combined with cleaning brush cleaning structure in the carbon monitoring online data acquisition terminal, the problem of degradation of heat dissipation performance under no wind or low air volume is solved, and efficient heat dissipation and cleaning of the terminal is achieved, ensuring the stability of the equipment.

CN223246944UActive Publication Date: 2025-08-19NANJING POAO ENVIRONMENTAL PROTECTION TECH CO LTD

Patent Information

Application Number
CN202422696660.X
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-11-06
Publication Date
2025-08-19
Estimated Expiration
2034-11-06

AI Technical Summary

Technical Problem

The existing carbon monitoring online data acquisition terminal has degraded heat dissipation performance in the absence of wind or low air volume, and metal heat dissipation parts cannot dissipate heat in time.

Method used

A carbon monitoring online data acquisition terminal is designed, using a motor to drive the blade to rotate to enhance air flow, and through a combined structure of the filter and cleaning brush, the vibration and impurities of the filter are realized to ensure air flowability.

Benefits of technology

It improves the heat dissipation performance and cleanliness of the data acquisition terminal, avoids impurities blockage, and ensures the stable operation of the terminal in harsh environments.

✦ Generated by Eureka AI based on patent content.

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    Figure CN223246944U_ABST
Patent Text Reader

Abstract

The utility model discloses a carbon monitoring on-line data acquisition terminal which comprises a data acquisition terminal body, and the outer end of the data acquisition terminal body is provided with heat dissipation holes. A motor is fixed in the heat dissipation hole, the outer end of the motor is in key connection with a blade, the blade rotates in the heat dissipation hole, a filter screen is slidably connected in the heat dissipation hole, and the filter screen is located on the outer side of the blade; the inner ends of the blades are connected with the bottom of a rotating rod through a first bevel gear set, and the top of the rotating rod penetrates through the interior of the heat dissipation hole to form a rotating mechanism. The carbon monitoring on-line data acquisition terminal is provided with the filter screen, the filter screen is jacked by the cam to move, then the filter screen moves to generate vibration, and impurities adsorbed on the filter screen can be cleaned through vibration, so that the phenomenon that the impurities block the filter screen to affect air circulation is avoided, and the service life of the filter screen is prolonged. And therefore, the data acquisition terminal body has relatively good heat dissipation performance.
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Description

Technical Field

[0001] The utility model relates to the technical field of carbon monitoring, in particular to a carbon monitoring online data acquisition terminal. Background Art

[0002] Carbon monitoring online data collection terminals are widely used in energy, transportation, industry, construction, and other fields. In industrial production processes, such as petrochemicals and steel smelting, real-time monitoring of carbon dioxide emissions helps companies optimize production processes, reduce energy consumption, and minimize environmental pollution. Furthermore, the system can also be used for greenhouse gas monitoring, providing data support for government emission reduction policies and contributing to global climate governance.

[0003] Existing carbon monitoring online data collection terminals are all installed in relatively harsh environments. The carbon monitoring online data collection terminals generate heat during use. In order to prevent the carbon monitoring online data collection terminals from being damaged by high temperatures, the carbon monitoring online data collection terminals need to be cooled. However, the harsh environment will affect the heat dissipation performance of the carbon monitoring online data collection terminals.

[0004] To address the above-mentioned shortcomings, the IoT data acquisition system and IoT data acquisition terminal, disclosed in publication number CN218183437U, feature a metal heat sink disposed on at least one outer side surface of a plastic housing. The metal heat sink comprises a base plate and a plurality of heat dissipation fins. The base plate is connected to the at least one outer side surface, and the plurality of heat dissipation fins are spaced apart on the surface of the base plate facing away from the at least one outer side surface. The IoT data acquisition terminal has a simple structure and is provided with a metal heat sink, which can promptly dissipate heat generated by the IoT data acquisition terminal, thereby extending its service life and ensuring its operational stability. The use of a metal heat sink is less expensive than the all-metal housing used in related technologies, reducing production costs while meeting heat dissipation requirements.

[0005] In the actual use of the above-mentioned device, although the heat dissipation effect of the data acquisition terminal is improved by using a metal heat sink, the metal heat sink requires air circulation to achieve the purpose of heat dissipation. In the case of no wind or low air volume, the heat on the metal heat sink cannot be carried away by the air in time, which will lead to a decrease in heat dissipation performance.

[0006] Therefore, we proposed a carbon monitoring online data collection terminal that can well solve the above problems. Utility Model Content

[0007] The purpose of the present utility model is to provide a carbon monitoring online data acquisition terminal to solve the problem raised in the above background technology that metal heat sinks on the current market require air circulation to achieve the purpose of heat dissipation, but in the case of no wind or low air volume, the heat on the metal heat sink cannot be carried away by the air in time, which will lead to a decrease in heat dissipation performance.

[0008] To achieve the above object, the present invention provides the following technical solutions: a carbon monitoring online data acquisition terminal, comprising a data acquisition terminal body, wherein a heat dissipation hole is provided at the outer end of the data acquisition terminal body;

[0009] Also includes:

[0010] A motor is fixed inside the heat dissipation hole, and a blade is keyed to the outer end of the motor, and the blade rotates inside the heat dissipation hole. A filter is slidably connected to the inside of the heat dissipation hole, and the filter is located on the outside of the blade.

[0011] Preferably, the inner end of the blade is connected to the bottom of the rotating rod through a first bevel gear set, and the top of the rotating rod passes through the interior of the heat dissipation hole to form a rotating mechanism.

[0012] Preferably, the top end of the rotating rod is connected to the top end of the driven rod through a pulley set, and the driven rod is rotatably connected to the outer end of the heat dissipation hole.

[0013] Preferably, the upper and lower ends of the driven rod are connected to cams, and the inner end of the cam is fitted with a push rod, and the inner end of the push rod extends into the interior of the heat dissipation hole to form a sliding mechanism, and the inner end of the push rod is connected to the outer side of the outer end of the filter.

[0014] Preferably, a spring is connected to the inner side of the outer end of the filter, and the inner end of the spring is connected to the inside of the heat dissipation hole.

[0015] Preferably, the middle portion of the driven rod is connected to the outer end of the cleaning brush through a second bevel gear set, and the middle portion of the cleaning brush is rotatably connected to the bracket, and the front and rear ends of the bracket are fixed inside the heat dissipation hole.

[0016] Preferably, the inner end of the cleaning brush is attached to the outer wall of the filter to form a cleaning mechanism, and the cleaning brush is arranged in an "I" shape.

[0017] Compared with the prior art, the present invention has the following beneficial effects: the carbon monitoring online data acquisition terminal has better heat dissipation and cleaning performance. The rotation of the blades can improve the fluidity of the air, thereby improving the heat dissipation effect. The rotation of the cleaning brush can then clean the stubborn impurities adsorbed on the filter, thereby having better cleaning performance. The specific contents are as follows:

[0018] (1) A filter is provided, and the filter is moved by a cam, which causes the filter to vibrate, and the vibration can clean the impurities adsorbed on the filter, thereby preventing the impurities from clogging the filter and affecting the air circulation, and thus making the data acquisition terminal body have better heat dissipation;

[0019] (2) A cleaning brush is provided, and the rotation of the cleaning brush can scrape the stubborn impurities on the filter screen, thereby cleaning the stubborn impurities adsorbed on the filter screen, thereby improving the cleaning effect;

[0020] (3) Blades are provided, and the blades are driven to rotate by a motor, so that the rotation of the blades can draw air into the interior of the data acquisition terminal body, and then dissipate heat for the components inside the data acquisition terminal body, thereby improving the heat dissipation effect;

[0021] (4) A spring is provided, and the spring is connected to the inner side of the outer end of the filter, and the inner end of the spring is connected to the inside of the heat dissipation hole, and then the filter can be pushed and moved by the spring, so that the filter can be shaken;

[0022] (5) A second bevel gear set is provided, which is connected to the outer end of the cleaning brush through the middle part of the driven rod through the second bevel gear set, and the middle part of the cleaning brush is rotatably connected to the bracket, and the front and rear ends of the bracket are fixed inside the heat dissipation hole, so that the rotation of the driven rod can drive the cleaning brush to rotate through the second bevel gear set, so that the cleaning brush can play a cleaning role. BRIEF DESCRIPTION OF THE DRAWINGS

[0023] Figure 1 This is a schematic diagram of the front view structure of the utility model;

[0024] Figure 2 This is a schematic diagram of the front view structure of the heat dissipation hole of the utility model;

[0025] Figure 3 This is a side view structural diagram of the heat dissipation hole of the utility model;

[0026] Figure 4 This is a schematic diagram of the front cross-section structure of the heat dissipation hole of the utility model;

[0027] Figure 5 For this utility model Figure 4 A in the middle is an enlarged structural diagram;

[0028] Figure 6 This is a front view structural diagram of the cam of the present utility model.

[0029] In the figure: 1. Data acquisition terminal body; 2. Heat dissipation hole; 3. Motor; 4. Blade; 5. Filter; 6. First bevel gear set; 7. Rotating rod; 8. Pulley set; 9. Driven rod; 10. Second bevel gear set; 11. Bracket; 12. Cleaning brush; 13. Cam; 14. Push rod; 15. Spring. DETAILED DESCRIPTION

[0030] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the embodiments described are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.

[0031] Embodiment 1: The present invention solves the problem that existing metal heat sinks require air circulation to achieve heat dissipation. In the absence of wind or low air volume, the heat on the metal heat sink cannot be promptly carried away by the air, which in turn leads to a decrease in heat dissipation performance. The rotation of the blades 4 can improve the heat dissipation performance.

[0032] The data acquisition terminal body 1 has a heat dissipation hole 2 at its outer end. The data acquisition terminal body 1 also includes: a motor 3 fixed inside the heat dissipation hole 2, and a blade 4 is keyed to the outer end of the motor 3, and the blade 4 rotates inside the heat dissipation hole 2. A filter 5 is slidably connected to the inside of the heat dissipation hole 2, and the filter 5 is located on the outside of the blade 4;

[0033] refer to Figures 1 to 4 The data acquisition terminal body 1 obtains parameters such as greenhouse gas concentration and flow rate of carbon emission sources in real time by connecting with sensors and sampling devices, and converts these data into transmittable digital signals, which are finally uploaded to the data center or cloud server for further analysis and processing, thereby achieving online monitoring of carbon. The data acquisition terminal body 1 will generate high temperature during operation, and then the motor 3 drives the blades 4 to rotate, and then the rotation of the blades 4 can transport air to the interior of the data acquisition terminal body 1 for cooling, and the impurities in the air will be filtered by the filter 5, and then the cleaner air will enter the interior of the data acquisition terminal body 1 for heat dissipation, thereby improving the heat dissipation effect;

[0034] Embodiment 2: The present invention solves the problem that the filter screen 5 may be blocked due to long-term use in embodiment 1. The filter screen 5 can be prevented from being blocked by rotating the cam 13.

[0035] The inner end of the blade 4 is connected to the bottom of the rotating rod 7 through the first bevel gear set 6, and the top of the rotating rod 7 passes through the interior of the heat dissipation hole 2 to form a rotating mechanism. The top of the rotating rod 7 is connected to the top of the driven rod 9 through the pulley set 8, and the driven rod 9 is rotatably connected to the outer end of the heat dissipation hole 2. The upper and lower ends of the driven rod 9 are connected with cams 13, and the inner end of the cam 13 is affixed to the push rod 14, and the inner end of the push rod 14 extends into the interior of the heat dissipation hole 2 to form a sliding mechanism, and the inner end of the push rod 14 is connected to the outer side of the outer end of the filter 5. The inner side of the outer end of the filter 5 is connected to a spring 15, and the inner end of the spring 15 is connected to the inside of the heat dissipation hole 2;

[0036] refer to Figures 1 to 6 , the rotation of the blade 4 drives the first bevel gear set 6 to rotate, and then the first bevel gear set 6 rotates to drive the rotating rod 7 to rotate, so that the rotating rod 7 rotates and drives the driven rod 9 to rotate through the pulley set 8, and then the driven rod 9 rotates to drive the cam 13 to rotate, and then the cam 13 rotates to squeeze the filter 5 through the push rod 14, and then the filter 5 is squeezed and moved inside the heat dissipation hole 2, so that the filter 5 moves and squeezes the spring 15, and then the spring 15 is squeezed and compressed, and then after the cam 13 is released from the squeezing of the push rod 14, the force of the spring 15 pushes the filter 5 to reset, and so on and so forth, so that the filter 5 can shake, so that the impurities adsorbed on the filter 5 are cleaned, thereby preventing the impurities from being adsorbed on the filter 5 and affecting the air permeability;

[0037] Example 3: This utility model solves the problem that stubborn impurities may be adsorbed on the filter screen 5 in Example 2. The stubborn impurities can be cleaned by rotating the cleaning brush 12.

[0038] The middle portion of the driven rod 9 is connected to the outer end of the cleaning brush 12 through the second bevel gear set 10, and the middle portion of the cleaning brush 12 is rotatably connected to the bracket 11, and the front and rear ends of the bracket 11 are fixed inside the heat dissipation hole 2, and the inner end of the cleaning brush 12 is attached to the outer wall of the filter 5 to form a cleaning mechanism, and the cleaning brush 12 is arranged in an "I" shape;

[0039] refer to Figures 1 to 4 The rotation of the driven rod 9 can drive the second bevel gear set 10 to rotate, and then the second bevel gear set 10 rotates to drive the cleaning brush 12 to rotate on the bracket 11, so that the rotation of the cleaning brush 12 can clean the stubborn impurities adsorbed on the filter 5, thereby preventing the stubborn impurities from being adsorbed on the filter 5 and affecting the air permeability, thereby improving the cleaning effect.

[0040] Working principle: When using this carbon monitoring online data collection terminal, first, refer to Figures 1 to 4The motor 3 drives the blades 4 to rotate, and the rotation of the blades 4 can transport air to the interior of the data acquisition terminal body 1 for cooling, and impurities in the air will be filtered by the filter 5, and then the relatively clean air will enter the interior of the data acquisition terminal body 1 for heat dissipation, thereby improving the heat dissipation effect;

[0041] refer to Figures 1 to 6 The rotation of the blade 4 drives the first bevel gear set 6 to rotate, which in turn causes the first bevel gear set 6 to rotate and drive the rotating rod 7 to rotate, which in turn causes the driven rod 9 to rotate and drive the cam 13 to rotate, which in turn causes the cam 13 to rotate and squeeze the filter 5 through the push rod 14, thereby causing the filter 5 to move and squeeze the spring 15, and then after the cam 13 is released from squeezing the push rod 14, the force of the spring 15 will push the filter 5 to reset, and so on and so forth, thereby causing the filter 5 to shake, thereby preventing impurities from being adsorbed on the filter 5 and affecting the air permeability;

[0042] refer to Figures 1 to 4 The rotation of the driven rod 9 can drive the second bevel gear set 10 to rotate, and then the second bevel gear set 10 rotates to drive the cleaning brush 12 to rotate on the bracket 11, thereby preventing stubborn impurities from being adsorbed on the filter 5 and affecting the air permeability, thereby improving the cleaning effect.

[0043] The contents not described in detail in this specification belong to the prior art known to those skilled in the art.

[0044] Although the present invention has been described in detail with reference to the aforementioned embodiments, those skilled in the art can still modify the technical solutions described in the aforementioned embodiments, or make equivalent substitutions for some of the technical features therein. Any modifications, equivalent substitutions, improvements, etc. made within the spirit and principles of the present invention should be included in the scope of protection of the present invention.

Claims

1. A carbon monitoring online data acquisition terminal, comprising a data acquisition terminal body (1), wherein a heat dissipation hole (2) is provided at the outer end of the data acquisition terminal body (1); It is characterized by: Also includes: A motor (3) is fixed inside the heat dissipation hole (2), and a blade (4) is keyed to the outer end of the motor (3), and the blade (4) rotates inside the heat dissipation hole (2). A filter (5) is slidably connected to the inside of the heat dissipation hole (2), and the filter (5) is located outside the blade (4).

2. The carbon monitoring online data acquisition terminal according to claim 1, characterized in that: The inner end of the blade (4) is connected to the bottom of the rotating rod (7) through the first bevel gear set (6), and the top of the rotating rod (7) passes through the interior of the heat dissipation hole (2) to form a rotating mechanism.

3. The carbon monitoring online data acquisition terminal according to claim 2, characterized in that: The top end of the rotating rod (7) is connected to the top of the driven rod (9) through a pulley group (8), and the driven rod (9) is rotatably connected to the outer end of the heat dissipation hole (2).

4. The carbon monitoring online data acquisition terminal according to claim 3, characterized in that: The upper and lower ends of the driven rod (9) are both connected to cams (13), and the inner end of the cam (13) is fitted with a push rod (14), and the inner end of the push rod (14) extends into the interior of the heat dissipation hole (2) to form a sliding mechanism, and the inner end of the push rod (14) is connected to the outer side of the outer end of the filter (5).

5. The carbon monitoring online data acquisition terminal according to claim 4, characterized in that: The inner side of the outer end of the filter (5) is connected to a spring (15), and the inner end of the spring (15) is connected to the inside of the heat dissipation hole (2).

6. The carbon monitoring online data acquisition terminal according to claim 3, characterized in that: The middle portion of the driven rod (9) is connected to the outer end of the cleaning brush (12) via a second bevel gear set (10), and the middle portion of the cleaning brush (12) is rotatably connected to the bracket (11), and the front and rear ends of the bracket (11) are fixed inside the heat dissipation hole (2).

7. The carbon monitoring online data collection terminal according to claim 6, characterized in that: The inner end of the cleaning brush (12) is attached to the outer wall of the filter (5) to form a cleaning mechanism, and the cleaning brush (12) is arranged in an "I" shape.

Citation Information

Patent Citations

  • Internet of Things data acquisition system and Internet of Things data acquisition terminal thereof

    CN218183437U

Cited By

  • Carbon emission monitoring device

    CN121347752A