Online monitoring device for industrial carbon dioxide emissions and monitoring method thereof
By designing support and reinforcement components, gas detectors, and alarm devices, the leakage and accuracy issues of industrial carbon dioxide emission monitoring devices were resolved, achieving stable connection, safe monitoring, and efficient maintenance.
Patent Information
- Application Number
- CN202311023005.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2023-08-15
- Publication Date
- 2025-10-24
- Estimated Expiration
- 2043-08-15
AI Technical Summary
Existing industrial carbon dioxide emissions monitoring devices lack support and reinforcement components, resulting in gas leakage and low monitoring accuracy, and fail to effectively protect worker safety.
An online monitoring device was designed, comprising a monitoring channel, a support component, a reinforcement component, and a gas detector. The device prevents debris from entering through a filter, the support component is height-adjustable, the arc-shaped block and the reinforcement block reinforce the connection, a buzzer and an alarm light provide an alarm, and the gas detector monitors toxicity.
It improves the stability and accuracy of the monitoring device, prevents blockage, protects the safety of personnel, facilitates maintenance and replacement of parts, and ensures stable connection under high-pressure gas conditions.
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Figure CN117346076B_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the field of carbon dioxide monitoring, in particular to an online monitoring device for industrial carbon dioxide emissions and a monitoring method thereof. BACKGROUND
[0002] Carbon dioxide is a carbon oxide with the chemical formula CO2, which is a colorless, odorless or colorless, odorless gas at room temperature and pressure, and its aqueous solution has a slight sour taste. It is also a common greenhouse gas and a component of air. Carbon dioxide is generally obtained by calcining limestone at high temperature or by reacting limestone with dilute hydrochloric acid, and is mainly used for refrigerating perishable food, as a refrigerant, for making carbonated soft drinks, and as a solvent for homogeneous reactions.
[0003] When monitoring the emissions of industrial carbon dioxide, most of the monitoring devices lack good support and reinforcement components. When the pressure of the emitted gas is high, leakage and disengagement from the device may occur, which will affect the accuracy of the monitoring. In addition, when monitoring the gas, there is a lack of monitoring device for toxic gas, which cannot effectively protect the workers of industrial equipment.
[0004] Therefore, it is necessary to propose an online monitoring device for industrial carbon dioxide emissions and a monitoring method thereof to solve the above problems. SUMMARY
[0005] The main purpose of the present application is to provide an online monitoring device for industrial carbon dioxide emissions and a monitoring method thereof, which can effectively solve the problems in the background art.
[0006] To achieve the above purpose, the technical scheme adopted by the present application is:
[0007] The online monitoring device for industrial carbon dioxide emissions comprises a monitoring channel, a carbon dioxide monitor fixedly connected to the center of the top of the monitoring channel, a buzzer fixedly connected to the front of the top of the monitoring channel, an alarm lamp fixedly connected to the top of the buzzer, and a monitoring head installed in the inner cavity of the monitoring channel.
[0008] The first connecting column is fixedly connected to the front of the bottom of the monitoring channel, the support assembly is movably connected to the bottom of the first connecting column, and the anti-skid pad is rotatably connected to the bottom of the support assembly.
[0009] The connecting channel is installed on the back of the monitoring channel, the reinforcement assembly is installed on the back of the connecting channel, the arc-shaped blocks are movably connected to the back of the reinforcement assembly, the second connecting columns are fixedly connected to the front of the top and the bottom of the two arc-shaped blocks, and the reinforcement blocks are fixedly connected to the center of the top and the bottom of the two arc-shaped blocks.
[0010] Preferably, the monitoring channel is a cavity structure with the front and back sides communicating with the outside world, a filter is fixedly connected to the back of the inner cavity of the monitoring head, a gas pipe is fixedly connected to the center of the top of the monitoring head, a gas detector is fixedly connected to the center of the back of the gas pipe, and the top of the gas pipe is fixedly connected to the bottom of the carbon dioxide monitor.
[0011] Preferably, the support assembly is a hollow structure with the top communicating with the outside world, a screw rod is fixedly connected to the center of the bottom of the inner cavity of the support assembly, the first connecting column is movably connected in the inner cavity of the support assembly, and the bottom of the inner cavity of the first connecting column is threadedly connected to the outer wall of the screw rod.
[0012] Preferably, the front and back sides of the outer wall of the connecting channel are symmetrically fixed with threads, a first through groove is opened in the middle of the inner cavity of the connecting channel, and the two ends of the connecting channel are connected to the back side of the inner cavity of the monitoring channel and the front side of the inner cavity of the reinforcement component through two threads.
[0013] Preferably, a second through groove is opened in the middle of the reinforcement component, and movable grooves are symmetrically opened on the top and bottom of the back of the reinforcement component. A bidirectional screw is rotatably connected in the inner cavity of the top movable groove, and a guide column is fixedly connected in the inner cavity of the bottom movable groove. A turning handle is fixedly connected to the right side of the bidirectional screw, and the turning handle is rotatably connected to the top of the right back side of the reinforcement component.
[0014] Preferably, the front faces of the second connecting columns are symmetrically and movably connected in the inner cavity of the movable groove, the front faces of the two top second connecting columns are threadedly connected to the two ends of the outer wall of the bidirectional screw rod, and the front faces of the two bottom second connecting columns are sleeved on the two ends of the outer wall of the guide column.
[0015] Preferably, a nut is provided on the right side of the reinforcement block on the right side, and a long bolt is threadedly connected to the left side of the reinforcement block on the left side, and the size of the long bolt is adapted to that of the nut.
[0016] A monitoring method for an online monitoring device for industrial carbon dioxide emissions includes the following steps:
[0017] S1: Adjust the positions of the two arc blocks according to the size of the CO2 emission pipeline of the industrial equipment. Slide the reinforcement assembly onto the outer wall of the CO2 emission pipeline through the second through slot. Turn the handle to drive the bidirectional screw to rotate within the inner cavity of the top movable slot, so that the two second connecting columns at the top can be threadedly connected to them. This drives the two arc blocks on both sides to move toward opposite sides until the two arc blocks are tightly attached to the outer wall of the CO2 emission pipeline.
[0018] S2: Reinforce the two arc-shaped blocks by turning the long bolt so that its right side is threadedly connected to the reinforcement block on the right. When the long bolt extends to the right side of the right reinforcement block, tighten the nut to thread it with the long bolt until the left side of the nut is tightly attached to the right side of the right reinforcement block.
[0019] S3: Rotate the support assembly according to the height of the anti-slip mat and the ground, driving the screw to be threadedly connected in the inner cavity of the first connecting column, thereby driving the support assembly to move on the outer wall of the first connecting column until the anti-slip mat is in contact with the ground, thereby completing the support work of the monitoring channel;
[0020] S4: When the industrial equipment is working, carbon dioxide will enter the inner cavity of the monitoring channel from the second slot and the first slot. At this time, the monitoring head will monitor it. It will first filter out impurities in the gas through the filter, and then input it into the carbon dioxide monitor through the gas pipe. At this time, the carbon dioxide monitor can monitor its emissions. At the same time, the gas detector can monitor the toxic gas flowing through. After the monitoring results are obtained, the buzzer and alarm light will be controlled to issue an alarm.
[0021] Beneficial effects
[0022] Compared with the prior art, the present invention provides an online monitoring device and method for industrial carbon dioxide emissions, which have the following beneficial effects:
[0023] 1. The online monitoring device and method for industrial carbon dioxide emissions can prevent large debris from entering the inner cavity of the monitoring head through the provided filter when monitoring carbon dioxide emissions, thereby increasing the service life and anti-clogging effect of the monitoring head. The provided gas detector can also monitor the toxicity of the gas, thereby ensuring the health and safety of workers in industrial facilities. The provided buzzer and alarm light can issue warnings based on the monitoring results.
[0024] 2. The online monitoring device for industrial carbon dioxide emissions and the monitoring method thereof can adjust the height of the monitoring channel through the provided support assembly, thereby providing support therefor. By rotating the provided support assembly, the screw rod can be driven to rotate, so that the first connecting column can be threadedly connected thereto, thereby driving the height adjustment of the monitoring channel.
[0025] 3、The industrial carbon dioxide emission on-line monitoring device and its monitoring method, through the detachable connecting channel, the various parts can be removed, so that the separated maintenance or replacement work can be carried out, through the rotation of the handle, the bidirectional screw rod can be driven to rotate, so that the second connecting column can drive the arc block to move, when the connection work with the carbon dioxide emission pipeline of the industrial equipment is carried out, the reinforcing effect can be achieved, and the separation from the arc block is facilitated, through the reinforcing block, the long bolt and the nut can be matched to achieve the reinforcing effect, when the gas pressure is large, the stability of the reinforcing assembly can be ensured, so that the precision of the carbon dioxide emission monitoring can be further improved. BRIEF DESCRIPTION OF DRAWINGS
[0026] Figure 1 is the structure diagram of the back of the monitoring head of the present application.
[0027] Figure 2 is the structure diagram of the back of the monitoring head of the present application.
[0028] Figure 3 is the structure diagram of the connecting channel of the present application.
[0029] Figure 4 is the structure diagram of the back of the reinforcing assembly of the present application.
[0030] Figure 5 is the structure diagram of the supporting assembly of the present application.
[0031] In the figure: 1, monitoring channel; 2, carbon dioxide monitor; 3, buzzer; 4, alarm lamp; 5, monitoring head; 6, filter screen; 7, gas conveying pipe; 8, gas detector; 9, supporting assembly; 10, non-slip pad; 11, screw rod; 12, first connecting column; 13, connecting channel; 14, screw thread; 15, first slot; 16, reinforcing assembly; 17, handle; 18, second slot; 19, arc block; 20, movable slot; 21, bidirectional screw rod; 22, second connecting column; 23, reinforcing block; 24, long bolt; 25, nut. DETAILED DESCRIPTION
[0032] In order to make the technical means, creative features, purposes and effects of the present application easy to understand, the present application is further described below in combination with specific embodiments. Embodiment one:
[0034] As Figures 1-2As shown, the online monitoring device for industrial carbon dioxide emissions includes a monitoring channel 1, a carbon dioxide monitor 2 is fixedly connected to the center of the top of the monitoring channel 1, a buzzer 3 is fixedly connected to the front of the top of the monitoring channel 1, an alarm light 4 is fixedly connected to the top of the buzzer 3, a monitoring head 5 is installed in the inner cavity of the monitoring channel 1, the monitoring channel 1 is a cavity structure with the front and back sides communicating with the outside world, a filter 6 is fixedly connected to the back side of the inner cavity of the monitoring head 5, a gas pipe 7 is fixedly connected to the center of the top of the monitoring head 5, a gas detector 8 is fixedly connected to the center of the back side of the gas pipe 7, and the top of the gas pipe 7 is fixedly connected to the bottom of the carbon dioxide monitor 2. The filter 6 can prevent large debris from entering the inner cavity of the monitoring head 5 when monitoring carbon dioxide emissions, thereby improving the service life and anti-clogging effect of the monitoring head 5. The gas detector 8 can also monitor the toxicity of the gas, thereby ensuring the health and safety of workers in the industrial facility. The buzzer 3 and the alarm light 4 can issue a warning based on the monitoring results.
[0035] like Figure 1 、 5 As shown, in the online monitoring device for industrial carbon dioxide emissions, a first connecting column 12 is fixedly connected to the front of the bottom of the monitoring channel 1, and the bottom of the first connecting column 12 is movably connected to the support component 9, and the bottom of the support component 9 is rotatably connected to the anti-slip pad 10. The support component 9 is a cavity structure with the top communicating with the outside world. A screw rod 11 is fixedly connected to the center of the bottom of the inner cavity of the support component 9, and the first connecting column 12 is movably connected in the inner cavity of the support component 9. The bottom of the inner cavity of the first connecting column 12 is threadedly connected to the outer wall of the screw rod 11. The height of the monitoring channel 1 can be adjusted by setting the support component 9, so as to provide a supporting effect thereon. By rotating the set support component 9, the screw rod 11 can be driven to rotate, so that the first connecting column 12 can be threadedly connected to it, so as to drive the monitoring channel 1 to adjust its height.
[0036] like Figure 1 、 3As shown in Figure 4, an online monitoring device for industrial carbon dioxide emissions has a connecting channel 13 installed on the back of the monitoring channel 1, a reinforcing assembly 16 installed on the back of the connecting channel 13, and arc blocks 19 symmetrically connected to the left and right sides of the back of the reinforcing assembly 16. The front of the top and bottom of the two arc blocks 19 are symmetrically fixedly connected to the second connecting column 22, and the middle of the top and bottom of the two arc blocks 19 are symmetrically fixedly connected to the reinforcing block 23. The front and back of the outer wall of the connecting channel 13 are symmetrically fixedly connected to the thread 14, and the middle of the inner cavity of the connecting channel 13 is fixedly connected to the thread 14. A first through slot 15 is provided, and the two ends of the connecting channel 13 are threadedly connected to the back of the inner cavity of the monitoring channel 1 and the front of the inner cavity of the reinforcement component 16 through two threads 14. A second through slot 18 is provided in the middle of the reinforcement component 16, and movable slots 20 are symmetrically provided at the top and bottom of the back of the reinforcement component 16. A bidirectional screw rod 21 is rotatably connected in the inner cavity of the top movable slot 20, and a guide column is fixedly connected in the inner cavity of the bottom movable slot 20. A rotating handle 17 is fixedly connected to the right side of the bidirectional screw rod 21, and the rotating handle 17 is rotatably connected to the right back of the reinforcement component 16. At the top, the front of the second connecting column 22 is symmetrically connected to the inner cavity of the movable groove 20. The front of the two second connecting columns 22 at the top is threadedly connected to the two ends of the outer wall of the bidirectional screw rod 21, and the front of the two second connecting columns 22 at the bottom is sleeved on the two ends of the outer wall of the guide column. A nut 25 is provided on the right side of the right reinforcing block 23, and a long bolt 24 is threadedly connected to the left side of the left reinforcing block 23. The size of the long bolt 24 is adapted to the size of the nut 25. The detachable connecting channel 13 facilitates the removal of each component, so that it can be separated for maintenance or replacement. By rotating the provided handle 17, the bidirectional screw rod 21 can be driven to rotate, so that the second connecting column 22 can drive the arc block 19 to move. When connecting to the carbon dioxide emission pipeline of the industrial equipment, it can play a reinforcing effect and facilitate separation from it. The provided reinforcement block 23, in conjunction with the long bolt 24 and the nut 25, can play a reinforcing effect. When the gas pressure is high, it can also ensure the stability of the reinforcement assembly 16, thereby further improving the accuracy of carbon dioxide emission monitoring. Specific embodiment two:
[0038] like Figures 1-5 As shown, the monitoring method of the online monitoring device for industrial carbon dioxide emissions includes the following operating steps:
[0039] S1: according to the size of the carbon dioxide emission pipeline of the industrial equipment, the positions of the two arc-shaped blocks 19 are adjusted, the reinforcing assembly 16 is sleeved on the outer wall of the carbon dioxide emission pipeline through the second through slot 18, the handle 17 is rotated, the bidirectional screw rod 21 is rotated in the inner cavity of the top movable slot 20, the two second connecting columns 22 at the top are screwed, the two arc-shaped blocks 19 on the two sides are moved to the opposite sides, and the two arc-shaped blocks 19 are tightly combined on the two sides of the outer wall of the carbon dioxide emission pipeline.
[0040] S2: the two arc-shaped blocks 19 are reinforced, the long bolt 24 is rotated, the right side of the long bolt 24 is screwed with the right reinforcing block 23, when the long bolt 24 extends to the right side of the right reinforcing block 23, the nut 25 is tightened and screwed with the long bolt 24, and the left side of the nut 25 is tightly combined on the right side of the right reinforcing block 23.
[0041] S3: according to the height of the anti-skid pad 10 and the ground, the supporting assembly 9 is rotated, the screw rod 11 is screwed in the inner cavity of the first connecting column 12, the supporting assembly 9 is moved on the outer wall of the first connecting column 12, the anti-skid pad 10 is combined on the ground, and the supporting work of the monitoring channel 1 is completed.
[0042] S4: when the industrial equipment works, the carbon dioxide enters the inner cavity of the monitoring channel 1 from the second through slot 18 and the first through slot 15, at this time, the monitoring head 5 monitors, first filters the impurities in the gas through the filter screen 6, then inputs the gas into the carbon dioxide monitor 2 through the gas inlet pipe 7, at this time, the carbon dioxide monitor 2 can monitor the emission amount, the gas detector 8 can monitor the toxic gas flowing through, and after the monitoring result is obtained, the buzzer 3 and the alarm lamp 4 can give an alarm.
[0043] The above shows and describes the basic principles and main features of the present application and the advantages of the present application. It should be understood by those skilled in the art that the present application is not limited to the above embodiments, and the above embodiments and the description in the specification are only to illustrate the principles of the present application, and various changes and improvements can be made to the present application without departing from the spirit and scope of the present application, and these changes and improvements all fall within the scope of the present application. The scope of protection of the present application is defined by the appended claims and their equivalents.
Claims
1. An on-line monitoring device of industrial carbon dioxide emissions, comprising a monitoring channel (1), characterized in that: The middle of the top of the monitoring channel (1) is fixedly connected with a carbon dioxide monitor (2), the front of the top of the monitoring channel (1) is fixedly connected with a buzzer (3), the top of the buzzer (3) is fixedly connected with an alarm lamp (4), and the inner cavity of the monitoring channel (1) is provided with a monitoring head (5); The front of the bottom of the monitoring channel (1) is fixedly connected with a first connecting column (12), the bottom of the first connecting column (12) is movably connected with a supporting assembly (9), and the bottom of the supporting assembly (9) is rotatably connected with an antiskid pad (10); The back of the monitoring channel (1) is provided with a connecting channel (13), the back of the connecting channel (13) is provided with a reinforcing assembly (16), the left and right sides of the back of the reinforcing assembly (16) are movably connected with arc-shaped blocks (19) in a symmetrical manner, the front of the top and the bottom of the two arc-shaped blocks (19) is fixedly connected with second connecting columns (22) in a symmetrical manner, and the front of the top and the bottom of the two arc-shaped blocks (19) is fixedly connected with reinforcing blocks (23) in a symmetrical manner. The supporting assembly (9) is a cavity structure with the top being communicated with the outside, the middle of the bottom of the inner cavity of the supporting assembly (9) is fixedly connected with a lead screw (11), the first connecting column (12) is movably connected in the inner cavity of the supporting assembly (9), and the bottom of the inner cavity of the first connecting column (12) is threadedly connected to the outer wall of the lead screw (11). The middle of the reinforcing assembly (16) is provided with a second slot (18), the top and the bottom of the back of the reinforcing assembly (16) are symmetrically provided with movable grooves (20), the inner cavity of the top movable groove (20) is rotatably connected with a bidirectional lead screw (21), the inner cavity of the bottom movable groove (20) is fixedly connected with a guide column, the right side of the bidirectional lead screw (21) is fixedly connected with a handle (17), and the handle (17) is rotatably connected to the top of the right back of the reinforcing assembly (16).
2. The apparatus for online monitoring of industrial carbon dioxide emissions as claimed in claim 1 wherein: The monitoring channel (1) is a cavity structure with the front and the back being communicated with the outside, the back of the inner cavity of the monitoring head (5) is fixedly connected with a filter screen (6), the middle of the top of the monitoring head (5) is fixedly connected with a gas delivery pipe (7), the middle of the back of the gas delivery pipe (7) is fixedly connected with a gas detector (8), and the top of the gas delivery pipe (7) is fixedly connected to the bottom of the carbon dioxide monitor (2).
3. The apparatus for online monitoring of industrial carbon dioxide emissions according to claim 2, characterized in that: The front and the back of the outer wall of the connecting channel (13) are fixedly connected with threads (14) in a symmetrical manner, the middle of the inner cavity of the connecting channel (13) is provided with a first slot (15), and the two ends of the connecting channel (13) are threadedly connected to the back of the inner cavity of the monitoring channel (1) and the front of the inner cavity of the reinforcing assembly (16) through the two threads (14).
4. The apparatus for online monitoring of industrial carbon dioxide emissions according to claim 3, characterized in that: The front of the second connecting column (22) is movably connected in the inner cavity of the movable groove (20), the front of the two second connecting columns (22) at the top is threadedly connected to the two ends of the outer wall of the bidirectional lead screw (21), and the front of the two second connecting columns (22) at the bottom is sleeved on the two ends of the outer wall of the guide column.
5. The apparatus for online monitoring of industrial carbon dioxide emissions as claimed in claim 4 wherein: The right side of the reinforcing block (23) is provided with a nut (25), and the left side of the reinforcing block (23) is threadedly connected with a long bolt (24), which is matched in size with the nut (25).
6. The monitoring method of the on-line monitoring device for industrial carbon dioxide emission according to claim 1, characterized in that: The method comprises the following steps: S1: According to the size of the carbon dioxide discharge pipeline of the industrial equipment, the positions of the two arc-shaped blocks (19) are adjusted, the reinforcing assembly (16) is sleeved on the outer wall of the carbon dioxide discharge pipeline through the second through slot (18), the handle (17) is rotated to drive the bidirectional screw rod (21) to rotate in the inner cavity of the top movable slot (20), so that the two second connecting columns (22) at the top can be threadedly connected, thereby driving the two arc-shaped blocks (19) on the two sides to move towards the opposite side until the two arc-shaped blocks (19) are tightly combined on the two sides of the outer wall of the carbon dioxide discharge pipeline; S2: The two arc-shaped blocks (19) are reinforced, the long bolt (24) is rotated to be threadedly connected with the right side of the reinforcing block (23), when the long bolt (24) extends to the right side of the reinforcing block (23), the nut (25) is tightened to be threadedly connected with the long bolt (24) until the left side of the nut (25) is tightly combined on the right side of the reinforcing block (23); S3: According to the height of the anti-skid pad (10) and the ground, the supporting assembly (9) is rotated to drive the screw rod (11) to be threadedly connected in the inner cavity of the first connecting column (12), thereby driving the supporting assembly (9) to move on the outer wall of the first connecting column (12) until the anti-skid pad (10) is combined on the ground, thereby completing the supporting work of the monitoring channel (1); S4: When the industrial equipment works, the carbon dioxide enters the inner cavity of the monitoring channel (1) through the second through slot (18) and the first through slot (15), at this time, the monitoring head (5) can monitor it, which first passes through the filter screen (6) to filter the impurities in the gas, and then enters the carbon dioxide monitor (2) through the gas conveying pipe (7), at this time, the carbon dioxide monitor (2) can monitor the discharge amount, and the gas detector (8) can monitor the toxic gas flowing through, and the buzzer (3) and the alarm lamp (4) will issue an alarm after the structure is monitored.
Citation Information
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