Carbon emission gasification device for distributed combined cooling heating and power system
By designing a carbon emission quantification device in a combined cooling, heating, and power system, and utilizing a combination of a carbon emission measurement and analysis instrument, filter screen, and activated carbon screen, efficient carbon emission quantification and flue gas purification were achieved for multiple flue gas emission pipelines, solving the problems of low efficiency and environmental pollution in existing technologies.
Patent Information
- Application Number
- CN202423117258.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-17
- Publication Date
- 2025-12-02
- Estimated Expiration
- 2034-12-17
AI Technical Summary
In existing combined cooling, heating and power (CCHP) systems, carbon emission quantification can only be performed on one flue gas emission pipe, which is inefficient and directly emits particulate matter and odors from the flue gas, impacting the environment.
A carbon emission quantification device for a distributed combined cooling, heating and power (CCHP) system was designed. It uses a carbon emission measurement and analysis instrument in conjunction with multiple signal transmission lines and carbon emission measuring heads to achieve simultaneous measurement of multiple flue gas emission pipes. The device filters particulate matter and adsorbs odors through a filter screen and activated carbon screen inside the treatment box. A reciprocating screw and cleaning brush are used to prevent the filter screen from clogging, and a ash collection hopper is set up for easy cleaning.
It improves the efficiency of carbon emission quantification measurement, filters particulate matter in flue gas, adsorbs odors, prevents mesh clogging, and enables smooth flue gas flow and convenient cleaning.
Smart Images

Figure CN223624216U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the technical field of combined cooling, heating and power (CCHP) systems, specifically relating to a carbon emission quantification device for a distributed CCHP system. Background Technology
[0002] Combined cooling, heating, and power (CCHP) refers to a system that uses natural gas as the primary fuel to drive gas turbines, microturbines, or internal combustion engine generators to produce electricity to meet user needs. The waste heat generated after power generation is recovered and used to provide heating and cooling to users. This significantly improves the primary energy utilization rate of the entire system, achieving cascaded energy utilization. It can also provide grid-connected power for energy complementarity, thus increasing the overall economic benefits and efficiency of the system.
[0003] The carbon content in the flue gas emitted during the normal operation of a combined cooling, heating, and power (CCHP) system directly affects carbon emission indicators. When quantifying the carbon content in flue gas, emission factor method, mass balance method, and actual measurement method are used. Among these, the actual measurement method provides the highest accuracy. This method utilizes a carbon emission measurement and analysis instrument with a carbon emission measuring head for precise measurement. However, existing measurement methods can only measure the carbon content in one flue gas emission pipe at a time, resulting in slow measurement efficiency and the inability to measure multiple flue gas emission pipes simultaneously. Furthermore, the direct emission of particulate matter and odors mixed in the flue gas can have a certain impact on the environment. Therefore, we propose a distributed carbon emission quantification device for CCHP systems. Utility Model Content
[0004] The purpose of this invention is to provide a carbon emission quantification device for a distributed combined cooling, heating and power (CCHP) system, in order to solve the problems mentioned in the background art, which are that the existing measurement methods can only measure the carbon content in one flue gas emission pipe at a time, resulting in slow measurement efficiency, inability to measure multiple flue gas emission pipes at once, and the direct emission of particulate matter and odors mixed in the flue gas will have a certain impact on the environment.
[0005] To achieve the above objectives, this utility model provides the following technical solution:
[0006] A carbon emission quantification device for a distributed combined cooling, heating, and power (CCHP) system includes a base plate. Several first fixed plates, a carbon emission measuring and analyzing instrument, several fixed frames, and a second fixed plate are fixedly mounted on the upper surface of the base plate. Input pipes are installed through the first fixed plates. A common processing chamber is fixedly mounted between the several fixed frames. A multi-inlet connecting pipe is provided on one side of the processing chamber, each having multiple inlets and one outlet. The input pipes are respectively connected to the inlets at corresponding positions, and the outlet is connected to the processing chamber. An output pipe is installed through the second fixed plate, with one end of the output pipe connected to the other side of the processing chamber. The carbon emission measuring and analyzing instrument is equipped with multiple signal transmission lines. One end of each signal transmission line is electrically connected to the processor inside the instrument, and the other end is electrically connected to a carbon emission measuring head. The measuring terminal of the carbon emission measuring head extends into the input tube at a corresponding position. An upper cover is movably mounted on the upper surface of the processing chamber. A filter screen and an activated carbon screen are movably mounted inside the processing chamber. A cleaning brush is movably mounted on the side of the filter screen, with the bristles of the cleaning brush fitting snugly against the side of the filter screen. A slag receiving hopper is installed on the lower surface of the processing chamber, and a lower movable cover is rotatably mounted on the lower surface of the slag receiving hopper.
[0007] The above-described solution of this utility model, by setting up a carbon emission measurement and analysis instrument in conjunction with multiple signal transmission lines and multiple carbon emission measuring heads, allows for simultaneous quantitative measurement and analysis of carbon emissions from multiple flue gas emission pipelines, improving the efficiency of quantitative measurement. Furthermore, the processing chamber and the filter screen installed inside it can filter particulate matter in the flue gas, while the activated carbon mesh can adsorb and remove odors from the flue gas. Both the filter screen and the activated carbon mesh are easily detachable for convenient cleaning. The solution utilizes a reciprocating screw in conjunction with a threaded seat and a cleaning brush. The reciprocating screw rotation drives the threaded seat to move the cleaning brush horizontally back and forth, cleaning the filter screen and preventing clogging of the screen's mesh. This ensures smooth flue gas flow. The cleaning brush and threaded seat can be easily disassembled and reassembled using assembly screws and nuts, facilitating brush replacement and maintenance. A slag collection hopper is used in conjunction with a lower movable cover, which can be locked and unlocked via a locking plate. The slag collection hopper effectively removes particulate matter from the filter screen, facilitating centralized and unified processing.
[0008] In the above scheme, it should be noted that both the carbon emission measuring and analyzing instrument and the motor are electrically connected to an external power supply.
[0009] In a preferred embodiment, mounting bolts are provided at the four corners of the upper cover, and a mounting thread groove is provided on the upper surface of the processing box directly opposite the mounting bolts. The mounting bolts are used in conjunction with the mounting thread groove.
[0010] By using the above solution, the mounting bolts are passed through the upper cover and screwed into the mounting thread groove, which can effectively lock and assemble the casing and the upper cover. The assembly structure is simple, the threaded connection is stable, and it is not easy for loosening to occur.
[0011] In a preferred embodiment, insert holders are fixedly installed on the outer surfaces of the filter screen and the activated carbon screen, and insert slots are provided on the inner wall of the processing box, with the insert holders inserted into the inner wall of the insert slots at corresponding positions.
[0012] By adopting the above solution, and by setting the insert seat to be inserted into the insert groove, the filter cake screen and activated carbon screen can be effectively limited and supported, avoiding the phenomenon of the filter cake screen and activated carbon screen shaking and moving inside the processing box, improving the stability of use, and facilitating the insertion operation.
[0013] In a preferred embodiment, a motor is fixedly mounted on the side of the processing box, a reciprocating screw is rotatably mounted inside the processing box, the output shaft of the motor is fixedly connected to one end of the reciprocating screw, a threaded seat is threaded onto the outer surface of the reciprocating screw, and the cleaning brush is detachably mounted on the side of the threaded seat.
[0014] By adopting the above scheme, a motor is set up to work with a reciprocating screw. The motor drives the reciprocating screw to rotate, which in turn drives the threaded seat to drive the cleaning brush to perform horizontal reciprocating motion. The movement of the cleaning brush is used to clean the surface of the filter screen, effectively preventing the mesh of the filter screen from becoming clogged and ensuring the smooth flow of flue gas.
[0015] In a preferred embodiment, a number of assembly screws are fixedly installed on the side of the cleaning brush. A through hole is provided on the threaded seat opposite the position of the assembly screw. The assembly screw passes through the through hole and is threaded with an assembly nut. The assembly nut is fitted and arranged on the side of the threaded seat.
[0016] By using the above method, after the assembly screw passes through the through hole and the assembly nut is screwed on, the threaded seat and the cleaning brush can be assembled and locked, which makes it convenient to disassemble and use the cleaning brush and facilitates operation.
[0017] In a preferred embodiment, guide rods are provided on both the upper and lower sides of the reciprocating screw. The guide rods are fixedly installed on the inner wall of the processing box, and the threaded seat is slidably installed on the outer surface of the guide rods.
[0018] With the above solution, when the reciprocating screw rotates to drive the threaded seat to move, the threaded seat will slide on the surface of the guide rod. The use of the guide rod can support and guide the movement of the threaded seat, making the movement of the cleaning brush driven by the threaded seat more stable and less prone to tilting or shaking.
[0019] In a preferred embodiment, the cleaning brush is specifically a high-temperature resistant brush.
[0020] By adopting the above solution and setting high-temperature resistant brushes as cleaning brushes, damage to the cleaning brushes caused by high-temperature fumes can be prevented, effectively extending their service life.
[0021] In a preferred embodiment, a plurality of guide seats are fixedly installed on the side of the lower movable cover, and a plurality of sliding rods are slidably installed on the guide seats. A locking plate is fixedly installed at one end of each sliding rod, and the same operating plate is fixedly installed at the other end of each sliding rod. A locking groove for the locking plate to be inserted is provided on the side of the slag receiving hopper.
[0022] Using the above scheme, the guide seat can be set to allow the sliding rod to slide stably. The movement of the operating plate can realize the movement of the sliding rod, and then the sliding rod can drive the locking plate to move, so that the locking plate can disengage from or engage with the locking groove, thereby achieving the unlocking and locking operation of the lower movable cover.
[0023] In a preferred embodiment, a spring is fitted on the outer surface of the sliding rod, and the two ends of the spring abut against the opposite surfaces of the locking plate and the guide seat, respectively.
[0024] By adopting the above solution, a spring is set so that when the locking plate is separated from the locking slot, the spring is in a deformed state. Therefore, the elastic force of the spring can be used to drive the locking plate to be quickly inserted into the locking slot, thus achieving a convenient locking operation.
[0025] In a preferred embodiment, the upper surface of the card slot plate has an inclined surface.
[0026] By adopting the above solution, by setting an inclined surface on the positioning plate, when the lower movable cover is rotated and closed, the inclined surface on the positioning plate will first contact the slag receiving hopper. Therefore, when the lower movable cover continues to rotate and close, the positioning plate will move through the sliding rod, thereby driving the spring to deform. After the lower movable cover is completely rotated and closed, the spring force is used to lock the positioning plate and the positioning slot, improving the ease of operation.
[0027] In summary, the technical solutions conceived by this utility model have the following beneficial effects compared with the prior art:
[0028] (1) The carbon emission quantification device of the distributed combined cooling, heating and power system of this utility model is used by setting up a carbon emission measurement and analysis instrument in conjunction with multiple signal transmission lines and multiple carbon emission measurement heads. It can simultaneously perform carbon emission quantification measurement and analysis on multiple flue gas emission pipelines, thereby improving the quantification measurement efficiency. The particulate matter in the flue gas can be filtered by the processing box and the filter screen set inside the processing box. The odor in the flue gas can be adsorbed and removed by the activated carbon screen. Both the filter screen and the activated carbon screen can be easily disassembled and installed, making it easier to clean.
[0029] (2) The carbon emission quantification device of the distributed combined cooling, heating and power system of this utility model is used by setting a reciprocating screw in conjunction with a threaded seat and a cleaning brush. The rotation of the reciprocating screw can drive the threaded seat to drive the cleaning brush to move horizontally back and forth, thereby cleaning the filter screen and preventing the mesh of the filter screen from becoming clogged. This ensures the smooth flow of flue gas. The cleaning brush and the threaded seat can be easily disassembled and assembled by assembly screws and assembly nuts, making it convenient to replace the cleaning brush and easy to clean and maintain.
[0030] (3) The carbon emission quantification device of the distributed combined cooling, heating and power system of this utility model is used in conjunction with the lower movable cover by setting a slag receiving hopper. The lower movable cover and the slag receiving hopper can be locked and unlocked by a locking plate. The slag receiving hopper can collect particulate matter filtered out by the filter screen, which is convenient for centralized and unified treatment. Attached Figure Description
[0031] Figure 1 This is a schematic diagram of the overall structure of one embodiment of the present utility model;
[0032] Figure 2 This is a schematic diagram of the structure of the processing box according to one embodiment of the present invention;
[0033] Figure 3 This is an exploded schematic diagram of the processing box, filter screen, and activated carbon screen according to one embodiment of the present invention.
[0034] Figure 4 This is a schematic diagram of the reciprocating lead screw according to an embodiment of the present invention;
[0035] Figure 5 This is a schematic diagram of the slag receiving hopper according to one embodiment of the present invention;
[0036] Figure 6 This is one embodiment of the present utility model. Figure 5 An enlarged structural diagram of point A in the diagram.
[0037] In the diagram: 1. Base plate; 2. First fixing plate; 3. Carbon emission measuring and analyzing instrument; 4. Fixing frame; 5. Second fixing plate; 6. Input pipe; 7. Multi-inlet connecting pipe; 8. Processing box; 9. Output pipe; 10. Signal transmission line; 11. Carbon emission measuring head; 12. Upper box cover; 13. Filter screen; 14. Activated carbon screen; 15. Motor; 16. Reciprocating screw; 17. Threaded seat; 18. Cleaning brush; 19. Slag receiving hopper; 20. Lower movable cover; 21. Mounting bolt; 22. Insertion strip seat; 23. Assembly nut; 24. Assembly screw; 25. Guide rod; 26. Guide seat; 27. Sliding rod; 28. Positioning plate; 29. Operation panel; 30. Spring. Detailed Implementation
[0038] To make the objectives, technical solutions, and advantages of this utility model clearer, the present utility model will be further described in detail below with reference to the accompanying drawings and embodiments. Furthermore, the technical features involved in the various embodiments of this utility model described below can be combined with each other as long as they do not conflict with each other.
[0039] like Figure 1 One embodiment of this utility model provides a carbon emission quantification device for a distributed combined cooling, heating and power system, including a base plate 1, and a plurality of first fixing plates 2, a carbon emission measuring and analyzing instrument 3, a plurality of fixing frames 4 and a second fixing plate 5 are fixedly installed on the upper surface of the base plate 1.
[0040] An input pipe 6 is installed through the first fixed plate 2. A processing box 8 is fixedly installed between several fixed brackets 4. A multi-inlet connecting pipe 7 is provided on one side of the processing box 8. The multi-inlet connecting pipe 7 has multiple inlets and one outlet. Several input pipes 6 are respectively connected to the inlets at corresponding positions, and the outlet is connected to the processing box 8. An output pipe 9 is installed through the second fixed plate 5. One end of the output pipe 9 is connected to the other side of the processing box 8.
[0041] The carbon emission measuring and analyzing instrument 3 is equipped with multiple signal transmission lines 10. One end of the signal transmission line 10 is electrically connected to the processor inside the carbon emission measuring and analyzing instrument 3, and the other end of the signal transmission line 10 is electrically connected to the carbon emission measuring head 11. The measuring terminal of the carbon emission measuring head 11 extends into the input tube 6 at the corresponding position. The upper surface of the processing box 8 is movably equipped with an upper box cover 12. The processing box 8 is movably equipped with a filter screen 13 and an activated carbon screen 14. The side of the filter screen 13 is movably equipped with a cleaning brush 18, and the bristles of the cleaning brush 18 are attached to the side of the filter screen 13. The lower surface of the processing box 8 is equipped with a slag receiving hopper 19, and the lower surface of the slag receiving hopper 19 is rotatably equipped with a lower movable cover 20.
[0042] In this embodiment, by using a carbon emission measurement and analysis instrument 3 in conjunction with multiple signal transmission lines 10 and multiple carbon emission measuring heads 11, carbon emission quantitative measurement and analysis can be performed simultaneously on multiple flue gas emission pipelines, improving the efficiency of quantitative measurement. Furthermore, the processing box 8 and the filter screen 13 installed inside the processing box 8 can filter particulate matter in the flue gas, and the activated carbon mesh 14 can adsorb and remove odors from the flue gas. Both the filter screen 13 and the activated carbon mesh 14 are easily disassembled and installed for convenient cleaning. A reciprocating screw 16 is used in conjunction with a threaded seat 17 and a cleaning brush 18 to utilize the reciprocating screw 16... Rotation drives the threaded seat 17 to move the cleaning brush 18 horizontally back and forth, cleaning the filter screen 13 and preventing clogging of the mesh, thus ensuring smooth flow of flue gas. The cleaning brush 18 and the threaded seat 17 can be easily disassembled and assembled using the assembly screws 24 and assembly nuts 23, making it convenient to replace the cleaning brush 18 and easy to clean and maintain. The slag hopper 19 is used in conjunction with the lower movable cover 20. The lower movable cover 20 and the slag hopper 19 can be locked and unlocked by the locking plate 28. The slag hopper 19 collects the particulate matter filtered out by the filter screen 13, facilitating centralized and unified processing.
[0043] like Figure 1-6 As shown, mounting bolts 21 are installed at the four corners of the upper cover 12. The upper surface of the processing box 8 is provided with mounting thread grooves at the positions of the mounting bolts 21. The mounting bolts 21 are used in conjunction with the mounting thread grooves. By passing the mounting bolts 21 through the upper cover 12 and screwing them into the interior of the mounting thread grooves, the processing box 8 and the upper cover 12 can be effectively locked and assembled. The assembly structure is simple, the threaded connection is stable, and it is not easy for loosening to occur.
[0044] Insertion strip seats 22 are fixedly installed on the outer surface of the filter screen 13 and the outer surface of the activated carbon screen 14. Insertion strip grooves are opened on the inner wall of the processing box 8. The insertion strip seats 22 are inserted into the inner wall of the insertion strip grooves at the corresponding positions. By setting the insertion strip seats 22 to be inserted into the insertion strip grooves, the filter screen 13 and the activated carbon screen 14 can be effectively limited and supported, avoiding the phenomenon of shaking and moving inside the processing box 8, improving the stability of use, and facilitating the insertion operation.
[0045] like Figure 1-6As shown, a motor 15 is fixedly installed on the side of the processing box 8, and a reciprocating screw 16 is rotatably installed inside the processing box 8. The output shaft of the motor 15 is fixedly connected to one end of the reciprocating screw 16. A threaded seat 17 is threaded on the outer surface of the reciprocating screw 16. A cleaning brush 18 is detachably installed on the side of the threaded seat 17. By setting the motor 15 to work with the reciprocating screw 16, the operation of the motor 15 drives the reciprocating screw 16 to rotate, which in turn drives the threaded seat 17 to drive the cleaning brush 18 to perform horizontal reciprocating motion. Thus, the movement of the cleaning brush 18 achieves surface cleaning of the filter screen 13, effectively preventing the mesh of the filter screen 13 from becoming clogged and ensuring smooth flow of flue gas.
[0046] Several assembly screws 24 are fixedly installed on the side of the cleaning brush 18. The threaded seat 17 has through holes at the positions of the assembly screws 24. The assembly screws 24 pass through the through holes and are threaded with assembly nuts 23. The assembly nuts 23 are attached to the side of the threaded seat 17. After the assembly screws 24 pass through the through holes, the assembly nuts 23 are screwed on, which can realize the assembly and locking of the threaded seat 17 and the cleaning brush 18, making it convenient to disassemble and use the cleaning brush 18 and making it easy to operate.
[0047] like Figure 4 As shown, guide rods 25 are provided on both the upper and lower sides of the reciprocating screw 16. The guide rods 25 are fixedly installed on the inner wall of the processing box 8. The threaded seat 17 is slidably installed on the outer surface of the guide rods 25. When the reciprocating screw 16 rotates to drive the threaded seat 17 to move, the threaded seat 17 will slide on the surface of the guide rod 25. The use of the guide rods 25 can support and guide the movement of the threaded seat 17, so that the movement of the threaded seat 17 driving the cleaning brush 18 is more stable and less prone to tilting and shaking.
[0048] The cleaning brush 18 is specifically a high-temperature resistant brush. By setting a high-temperature resistant brush as the cleaning brush 18, damage to the cleaning brush 18 caused by high-temperature flue gas can be prevented, effectively extending its service life.
[0049] like Figure 5 As shown, several guide seats 26 are fixedly installed on the side of the lower movable cover 20. Several sliding rods 27 are slidably installed on the guide seats 26. A locking plate 28 is fixedly installed at one end of the sliding rod 27, and the same operating plate 29 is fixedly installed at the other end of the several sliding rods 27. The side of the slag receiving hopper 19 is provided with a locking groove for the locking plate 28 to be inserted. The guide seats 26 are designed to allow the sliding rods 27 to slide stably. The movement of the operating plate 29 can realize the movement of the sliding rods 27, and then the sliding rods 27 can drive the locking plate 28 to move, so that the locking plate 28 can disengage from or be inserted into the locking groove, thereby achieving the unlocking and locking operation of the lower movable cover 20.
[0050] like Figure 6As shown, a spring 30 is sleeved on the outer surface of the sliding rod 27. The two ends of the spring 30 abut against the opposite surfaces of the locking plate 28 and the guide seat 26, respectively. By setting the spring 30, the spring 30 is in a deformed state when the locking plate 28 is separated from the locking groove. Therefore, the elastic force of the spring 30 can be used to drive the locking plate 28 to be quickly inserted into the locking groove, realizing the convenient operation of locking.
[0051] The upper surface of the positioning plate 28 has an inclined surface. By setting an inclined surface on the positioning plate 28, when the lower movable cover 20 is rotated and closed, the inclined surface on the positioning plate 28 will first contact the slag receiving hopper 19. Therefore, when the lower movable cover 20 continues to rotate and close, the positioning plate 28 will move through the sliding rod 27, thereby driving the spring 30 to deform. After the lower movable cover 20 is completely rotated and closed, the elastic force of the spring 30 is used to lock the positioning plate 28 and the positioning slot, improving the ease of operation.
[0052] In this embodiment, the device connects multiple flue gas emission ports of the combined cooling, heating, and power (CCHP) system to corresponding input pipes 6, and the output pipe 9 to the inlet of the flue gas heat exchange system. During the operation of the CCHP system, the generated flue gas is input into the multi-inlet connecting pipe 7 through the input pipe 6. Simultaneously, the carbon emission measuring head 11 on the input pipe 6 measures the carbon content in the flue gas and transmits the measured data to the carbon emission measuring and analyzing instrument 3 via the signal transmission line 10. The carbon emission measuring and analyzing instrument 3 quantifies the carbon emissions. The flue gas input into the multi-inlet connecting pipe 7 is then input into the processing chamber 8, where particulate matter is filtered out by the filter screen 13, and odors are adsorbed and removed by the activated carbon screen 14. Finally, it is discharged from the output pipe 9 into the flue gas heat exchange system for heat exchange. During the flue gas transport process, the motor 15 starts, driving the reciprocating screw 16 to rotate, which in turn drives the threaded seat 17 to move the cleaning... The brush 18 reciprocates, cleaning the filter screen 13 by its movement, preventing clogging of the screen's mesh. The particulate matter filtered by the filter screen 13 falls into the slag hopper 19. After the operation is completed, the upper cover 12 can be removed by unscrewing the mounting bolt 21. Pulling the filter screen 13 and activated carbon mesh 14 upwards causes the insert seat 22 to disengage from the insert groove, thus disassembling the filter screen 13 and activated carbon mesh 14. When installing the filter screen 13 and activated carbon mesh 14, simply insert the insert seat 22 into the insert groove. Unscrewing the assembly nut 23 unlocks the threaded seat 17 and the cleaning brush 18. Horizontally operating the cleaning brush 18 disengages the assembly screw 24 from the threaded seat 17, thus assembling and disassembling the cleaning brush 18. Pulling the operating plate 29 drives the sliding rod 27 to move the locking plate 28, causing the locking plate 28 to disengage from the locking groove. At this time, the lower movable cover 20 is unlocked and can be rotated open, allowing the particulate matter in the slag hopper 19 to be discharged.
[0053] Those skilled in the art will readily understand that the above description is merely a preferred embodiment of the present invention and is not intended to limit the present invention. Any modifications, equivalent substitutions, and improvements made within the spirit and principles of the present invention should be included within the protection scope of the present invention.
Claims
1. A carbon emission quantification device for a distributed combined cooling, heating, and power (CCHP) system, characterized in that, Includes a base plate (1), on the upper surface of which a carbon emission measuring and analyzing instrument (3), several first fixing plates (2), several fixing frames (4), and a second fixing plate (5) are fixedly mounted. An input pipe (6) is installed through the first fixing plate (2). The same processing box (8) is fixedly installed between several fixing frames (4). A multi-inlet connecting pipe (7) is provided on one side of the processing box (8). The multi-inlet connecting pipe (7) has multiple inlets and one outlet. Several input pipes (6) are respectively connected to the inlets at corresponding positions. The outlet is connected to the processing box (8). An output pipe (9) is installed through the second fixing plate (5). One end of the output pipe (9) is connected to the other side of the processing box (8). The carbon emission measuring and analyzing instrument (3) is provided with multiple signal transmission lines (10). One end of the signal transmission line (10) is electrically connected to the processor inside the carbon emission measuring and analyzing instrument (3), and the other end of the signal transmission line (10) is electrically connected to a carbon emission measuring head (11). The measuring terminal of the carbon emission measuring head (11) extends into the input tube (6) at the corresponding position. The upper surface of the processing box (8) is movably provided with an upper box cover (12). Inside the processing box (8), a filter screen (13) and an activated carbon screen (14) are movably provided. A cleaning brush (18) is movably provided on the side of the filter screen (13). The bristles of the cleaning brush (18) are attached to the side of the filter screen (13). A slag receiving hopper (19) is installed on the lower surface of the processing box (8). A lower movable cover (20) is rotatably installed on the lower surface of the slag receiving hopper (19).
2. The carbon emission quantification device for a distributed combined cooling, heating, and power system according to claim 1, wherein, Mounting bolts (21) are installed at the four corners of the upper cover (12). The upper surface of the processing box (8) is provided with mounting thread grooves at the positions of the mounting bolts (21). The mounting bolts (21) are used in conjunction with the mounting thread grooves.
3. The carbon emission quantification device for a distributed combined cooling, heating, and power system according to claim 1, wherein, Insertion slots (22) are fixedly installed on the outer surface of the filter screen (13) and the outer surface of the activated carbon screen (14). Insertion slots are provided on the inner wall of the processing box (8), and the insertion slots (22) are inserted into the inner wall of the insertion slots at the corresponding positions.
4. The carbon emission quantification device for a distributed combined cooling, heating, and power system according to claim 1, wherein, A motor (15) is fixedly installed on the side of the processing box (8), and a reciprocating screw (16) is rotatably installed inside the processing box (8). The output shaft of the motor (15) is fixedly connected to one end of the reciprocating screw (16). A threaded seat (17) is threaded on the outer surface of the reciprocating screw (16), and the cleaning brush (18) is detachably installed on the side of the threaded seat (17).
5. The carbon emission quantification device for a distributed combined cooling, heating, and power system according to claim 4, wherein, The cleaning brush (18) has several assembly screws (24) fixedly installed on its side. The threaded seat (17) has through holes at the positions of the assembly screws (24) directly opposite each other. The assembly screws (24) pass through the through holes and are threaded with assembly nuts (23). The assembly nuts (23) are fitted and arranged on the side of the threaded seat (17).
6. The carbon emission quantification device for a distributed combined cooling, heating, and power system according to claim 4, wherein, Guide rods (25) are provided on both the upper and lower sides of the reciprocating screw (16). The guide rods (25) are fixedly installed on the inner wall of the processing box (8), and the threaded seat (17) is slidably installed on the outer surface of the guide rods (25).
7. The carbon emission quantification device for a distributed combined cooling, heating, and power system according to claim 1, wherein, The lower movable cover (20) has several guide seats (26) fixedly installed on its side. Several sliding rods (27) are slidably installed on the guide seats (26). One end of the sliding rod (27) is fixedly installed with a positioning plate (28). The other end of the several sliding rods (27) is fixedly installed with the same operating plate (29). The side of the slag receiving hopper (19) is provided with a positioning groove for the positioning plate (28) to be inserted.
8. The carbon emission quantification device for a distributed combined cooling, heating, and power system according to claim 7, wherein, A spring (30) is fitted on the outer surface of the sliding rod (27), and the two ends of the spring (30) abut against the opposite surfaces of the locking plate (28) and the guide seat (26), respectively.
9. The carbon emission quantification device for a distributed combined cooling, heating, and power system according to claim 7, wherein, The upper surface of the card plate (28) has an inclined surface.