Purification device for carbon emission reduction

By using the circumferential arrangement of the filter arc plates and the automatic cleaning mechanism in the purification device, the problems of low filtration efficiency and difficulty in cleaning and maintenance of existing devices are solved, and the effects of efficient carbon emission reduction and automatic cleaning are achieved.

CN120268140AActive Publication Date: 2025-07-08SHANXI SHANGYUN TIMES ECOLOGICAL ENVIRONMENT TECH CO LTD
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Patent Information

Application Number
CN202510749778.0
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-06-06
Publication Date
2025-07-08
Estimated Expiration
2045-06-06

AI Technical Summary

Technical Problem

The existing gas purification devices have low filtration efficiency, difficulty in cleaning and maintenance, and are difficult to meet the needs of efficient carbon emission reduction.

Method used

A purification device for carbon emission reduction is designed, using the circumferential arrangement of the filter arc plate and an automatic cleaning mechanism to efficiently filter the dust in the gas through the filter arc plate, and the automatic cleaning of the filter arc plate is achieved through the cleaning mechanism to reduce manual maintenance.

Benefits of technology

It significantly improves purification efficiency, reduces manual maintenance workload, improves the operating efficiency of the device, and ensures that the equipment can still be used normally during the cleaning process.

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Abstract

The invention discloses a purification device for carbon emission reduction, which relates to the technical field of gas purification, and comprises a purification chamber, a gas inlet pipe, a gas outlet pipe, a fixing plate, a filtering arc plate, a fixing mechanism and a cleaning mechanism, the cleaning mechanism comprises a telescopic part, an intermittent rotating assembly, a reciprocating rotating assembly, a dust collecting arc plate, a positioning shielding assembly, a reciprocating swinging assembly and a cleaning scrubbing brush. Due to the circumferential arrangement design of the filtering arc plates, dust in gas can be efficiently filtered, the purification efficiency is remarkably improved, the gas inlet pipe is rotationally arranged, the airflow turbulence degree can be improved, and the filtering effect is further improved; the cleaning mechanism is arranged, so that the function of automatically cleaning the filtering arc plates is achieved, the workload of manual maintenance is reduced, the operation efficiency of the device is improved, only one filtering arc plate is cleaned each time in the cleaning process of the filtering arc plates, and it is guaranteed that the device can still be used in the cleaning process.
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Description

Technical Field

[0001] The present invention relates to the technical field of gas purification, and particularly to a purification device for carbon emission reduction. Background Art

[0002] With the acceleration of the industrialization process, the problem of air pollution has become increasingly serious. In particular, the emissions of greenhouse gases such as carbon dioxide have exerted great pressure on the environment. To achieve the goal of carbon emission reduction, it is necessary to effectively purify industrial exhaust gases. Existing gas purification devices mostly adopt filtration or adsorption methods, but there are problems such as low filtration efficiency and difficult cleaning and maintenance, which are difficult to meet the requirements of high-efficiency carbon emission reduction. Therefore, there is an urgent need for a purification device for carbon emission reduction to solve the above problems. Summary of the Invention

[0003] The purpose of the embodiments of the present invention is to provide a purification device for carbon emission reduction to solve the problems raised in the above background art.

[0004] To achieve the above purpose, the present invention provides the following technical solutions: A purification device for carbon emission reduction, including a purification chamber, the front of the purification chamber is connected by a hinge with a sealing door, and further includes: An intake pipe, penetrating through the back of the purification chamber and rotatably connected thereto, and a plurality of groups of air holes are provided on the intake pipe; An outlet pipe, connected to the purification chamber and communicating with its interior; A fixing plate, rotatably connected to the intake pipe, the fixing plate is located inside the purification chamber and connected thereto; Filter arc plates, located inside the purification chamber, there are a plurality of groups of filter arc plates, and they are arranged at equal intervals in a circular pattern, and the filter arc plates are used to filter dust in the gas; A fixing mechanism, one end connected to the purification chamber and the other end connected to the filter arc plates, for fixing the filter arc plates; A cleaning mechanism, for cleaning the filter arc plates, the cleaning mechanism includes: A telescopic member, one end connected to the purification chamber; An intermittent rotation assembly, one end connected to the other end of the telescopic member and the other end connected to the fixing mechanism, for driving the filter arc plates to rotate intermittently; A reciprocating rotation assembly, one end connected to the telescopic member and the other end connected to the intake pipe, for driving the intake pipe to rotate reciprocally; Ash collecting arc plates, connected to the fixing mechanism, the ash collecting arc plates are located at the bottom of the top filter arc plates, and the arc angle of the ash collecting arc plates is greater than the arc angle of the filter arc plates; A positioning and shielding assembly, one end connected to the intake pipe and the other end connected to the ash collecting arc plates, for shielding the filter arc plates during cleaning; A reciprocating swing assembly, one end is connected to the positioning and shielding assembly, and the other end is connected to the fixing plate; A cleaning brush plate, connected to the reciprocating swing assembly, the cleaning brush plate is located between the dust collecting arc plate and the top filter arc plate, several groups of the cleaning brush plates are provided, and they are arranged in a circular pattern at equal intervals.

[0005] As a further solution of the present invention: The fixing mechanism includes: A positioning ring, connected to the inner wall of the purification chamber; A fixing strip, rotatably connected to the positioning ring, several groups of the fixing strips are provided, and they are arranged in a circular pattern at equal intervals, and the fixing strip is slidably clamped with the filter arc plate; A fixing ring, connected to one end of the fixing strip; A rotating plate, rotatably connected to the other end of the fixing strip and connected to the purification chamber; A fixing arc plate, rotatably connected to the fixing strip and abutted against the filter arc plate.

[0006] As a further solution of the present invention: The intermittent rotation assembly includes: A connecting plate, connected to the telescopic member; A folding rod, connected to the connecting plate; A sleeve plate, rotatably connected to the folding rod; A volute spring, one end is connected to the sleeve plate, and the other end is connected to the folding rod; A first toothed ring, connected to the fixing ring and clamped with the sleeve plate; A right-angle plate, one end is connected to the connecting plate, and the other end abuts against the top of the sleeve plate.

[0007] As a further solution of the present invention: The reciprocating rotation assembly includes: A toothed plate, connected to the telescopic member; A second toothed ring, connected to the intake pipe and meshed with the toothed plate.

[0008] As a further solution of the present invention: The positioning and shielding assembly includes: A fixing frame, connected to the intake pipe; A first rotating ring, rotatably connected to the side of the fixing frame close to the fixing plate; A first folding pipe, one end penetrates through the first rotating ring and is communicated with the inside of the fixing frame, and the other end is communicated with the inside of the dust collecting arc plate; A positioning arc plate, slidably connected to the dust collecting arc plate and abutted against the fixing strip at the top; A power assembly, one end is connected to the first rotating ring, and the other end is connected to the fixing ring, and is used to drive the positioning arc plate to move along the dust collecting arc plate.

[0009] As a further solution of the present invention: The power assembly includes: A second folding pipe, penetrating through the first rotating ring and communicated with the inside of the fixing frame; A sliding rod, which is slidably connected to the second corrugated pipe; An elastic member, one end of which is connected to the second corrugated pipe and the other end is connected to one end of the sliding rod; A roller, which is rotatably connected to the other end of the sliding rod; An inclined arc block, which is connected to the fixed ring. There are several groups of the inclined arc blocks, and they are arranged in a circular pattern at equal intervals. The number of the inclined arc blocks is equal to the number of the filter arc plates, and both ends of the inclined arc block are of bevel structures.

[0010] As a further scheme of the present invention: The reciprocating swing assembly includes: A second rotating ring, which is rotatably connected to the fixed plate and the fixed ring; A third corrugated pipe, one end of which is internally communicated with the fixed frame; A rotating cylinder, which penetrates through the second rotating ring and is rotatably connected thereto. The rotating cylinder is rotatably connected to the other end of the third corrugated pipe and is internally communicated with it; A gear, which is connected to the rotating cylinder; A tooth arc, which is connected to the fixed plate and meshes with the gear; A telescopic cylinder, one end of which is internally communicated with the rotating cylinder and the other end is connected to the cleaning brush plate.

[0011] Compared with the prior art, the beneficial effects of the present invention are: Efficient filtration: Through the circumferential arrangement design of the filter arc plates, the dust in the gas can be efficiently filtered, significantly improving the purification efficiency. The intake pipe is rotatably arranged, which can increase the degree of air flow disorder and further improve the filtration effect; Automatic cleaning: The setting of the cleaning mechanism realizes the automatic cleaning function of the filter arc plates, reduces the workload of manual maintenance, improves the operation efficiency of the device, and during the cleaning process of the filter arc plates, only one filter arc plate is cleaned each time, ensuring that the device can still be used during the cleaning process. Description of the drawings

[0012] Figure 1 It is a schematic structural diagram of a purification device for carbon emission reduction in an embodiment of the present invention.

[0013] Figure 2 It is a schematic internal structure diagram of a purification device for carbon emission reduction in an embodiment of the present invention at one angle.

[0014] Figure 3 It is a schematic internal structure diagram of a purification device for carbon emission reduction in an embodiment of the present invention at another angle.

[0015] Figure 4 It is a schematic diagram of the internal structure disassembly of a purification device for carbon emission reduction in an embodiment of the present invention.

[0016] Figure 5Schematic diagram of the fixing mechanism in the embodiment of the present invention.

[0017] Figure 6 Cross-sectional view of the cleaning mechanism in the embodiment of the present invention.

[0018] Figure 7 Is Figure 6 Partial structural schematic diagram of.

[0019] Figure 8 Partial structural schematic diagram of the positioning and shielding component and the reciprocating swing component in the embodiment of the present invention.

[0020] Figure 9 Is Figure 8 Partial structural cross-sectional view of.

[0021] Figure 10 Is Figure 9 Enlarged schematic diagram of the structure at position A in.

[0022] Figure 11 Schematic diagram of the intermittent rotation component and the reciprocating rotation component in the embodiment of the present invention.

[0023] Figure 12 Cross-sectional view of the sleeve plate in the embodiment of the present invention.

[0024] In the figure: 1, purification chamber; 2, intake pipe; 3, exhaust pipe; 4, fixing plate; 5, filter arc plate; 6, fixing mechanism; 61, positioning ring; 62, fixing strip; 63, fixing ring; 64, rotating plate; 65, fixing arc plate; 7, cleaning mechanism; 71, telescopic member; 72, intermittent rotation component; 73, reciprocating rotation component; 74, dust collecting arc plate; 75, positioning and shielding component; 76, reciprocating swing component; 77, cleaning brush; 721, connecting plate; 722, folding rod; 723, sleeve plate; 724, scroll spring; 725, first toothed ring; 726, right-angle plate; 731, toothed plate; 732, second toothed ring; 751, fixing frame; 752, first rotating ring; 753, first folding pipe; 754, positioning arc plate; 755, power component; 7551, second folding pipe; 7552, sliding rod; 7553, elastic member; 7554, roller; 7555, inclined arc block; 761, second rotating ring; 762, third folding pipe; 763, gear; 764, toothed arc; 765, rotating cylinder; 766, telescopic cylinder; 8, cover plate. Detailed implementation manners

[0025] The following will clearly and completely describe the technical solutions in the embodiments of the present invention with reference to the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without creative efforts shall fall within the protection scope of the present invention.

[0026] In the embodiments of the present invention, please refer to Figures 1 to 12 , a purification device for carbon emission reduction, including a purification chamber 1, the front of the purification chamber 1 is connected by a hinge with a sealing door, and further includes: An intake pipe 2, passing through the back of the purification chamber 1 and rotatably connected thereto, and a plurality of groups of air holes are provided on the intake pipe 2; An outlet pipe 3, connected to the purification chamber 1 and communicating with its interior; A fixing plate 4, rotatably connected to the intake pipe 2, the fixing plate 4 is located inside the purification chamber 1 and connected thereto; Filter arc plates 5, located inside the purification chamber 1, there are a plurality of groups of the filter arc plates 5, and they are arranged in a circular pattern at equal intervals, and the filter arc plates 5 are used to filter dust in the gas; A fixing mechanism 6, one end connected to the purification chamber 1 and the other end connected to the filter arc plate 5, for fixing the filter arc plate 5; A cleaning mechanism 7, for cleaning the filter arc plate 5, and the cleaning mechanism 7 includes: A telescopic member 71, one end connected to the purification chamber 1; An intermittent rotation assembly 72, one end connected to the other end of the telescopic member 71 and the other end connected to the fixing mechanism 6, for driving the filter arc plate 5 to rotate intermittently; A reciprocating rotation assembly 73, one end connected to the telescopic member 71 and the other end connected to the intake pipe 2, for driving the intake pipe 2 to rotate reciprocally; A dust collection arc plate 74, connected to the fixing mechanism 6, the dust collection arc plate 74 is located at the bottom of the top filter arc plate 5, and the arc angle of the dust collection arc plate 74 is larger than the arc angle of the filter arc plate 5; A positioning and shielding assembly 75, one end connected to the intake pipe 2 and the other end connected to the dust collection arc plate 74, for shielding the filter arc plate 5 during cleaning; A reciprocating swing assembly 76, one end connected to the positioning and shielding assembly 75 and the other end connected to the fixing plate 4; Cleaning brushes 77, connected to the reciprocating swing assembly 76, the cleaning brushes 77 are located between the dust collection arc plate 74 and the top filter arc plate 5, there are a plurality of groups of the cleaning brushes 77, and they are arranged in a circular pattern at equal intervals.

[0027] The fixing mechanism 6 fixes the filter arc plate 5. The air flow enters the air inlet pipe 2 and flows out from the air holes. The filter arc plate 5 filters the solid impurities in the air flow. The filtered air flow flows out from the air outlet pipe 3 for subsequent processing. The telescopic member 71 drives the intermittent rotation assembly 72 and the reciprocating rotation assembly 73 to move. The intermittent rotation assembly 72 drives the fixing mechanism 6 to rotate intermittently, thereby driving the filter arc plate 5 to rotate intermittently at equal angles. The reciprocating rotation assembly 73 drives the air inlet pipe 2 to rotate reciprocally, increasing the degree of air flow disorder. When the filter arc plate 5 is rotating, the positioning and shielding assembly 75 and the cleaning brush 77 are away from the filter arc plate 5. When the rotation of the filter arc plate 5 stops, the cleaning brush 77 abuts against the filter arc plate 5, and the positioning and shielding assembly 75 shields the filter arc plate 5 being cleaned. The air inlet pipe 2 drives the reciprocating swing assembly 76 to rotate, and the reciprocating swing assembly 76 drives the cleaning brush 77 to swing reciprocally to clean the filter arc plate 5. The impurities cleaned off accumulate on the dust collecting arc plate 74. The telescopic member 71 can be an electric telescopic rod, a cylinder, etc.

[0028] As an embodiment of the present invention, please refer to Figures 2 to 11 , the fixing mechanism 6 includes: The positioning ring 61 is connected to the inner wall of the purification chamber 1; The fixing strip 62 is rotatably connected to the positioning ring 61. There are several groups of the fixing strips 62, and they are arranged in a circular pattern at equal intervals. The fixing strip 62 is slidably clamped with the filter arc plate 5; The fixing ring 63 is connected to one end of the fixing strip 62; The rotating plate 64 is rotatably connected to the other end of the fixing strip 62 and is connected to the purification chamber 1; The fixing arc plate 65 is rotatably connected to the fixing strip 62 and abuts against the filter arc plate 5.

[0029] Slide the filter arc plate 5 and clamp it between two adjacent fixing strips 62, rotate the fixing arc plate 65 so that the fixing arc plate 65 abuts against the filter arc plate 5, thereby fixing the filter arc plate 5.

[0030] In this embodiment, a strip groove is formed on the fixing strip 62, and a strip block matching the strip groove is provided on the filter arc plate 5. The strip block is slidably clamped with the strip groove to fix the filter arc plate 5.

[0031] In this embodiment, the contact surface between the fixing arc plate 65 and the filter arc plate 5 has a relatively large friction force to prevent the fixing arc plate 65 from rotating by itself without external force.

[0032] As an embodiment of the present invention, please refer to Figures 2 to 4 , Figures 6 to 9 , Figure 11 and Figure 12 , the intermittent rotation assembly 72 includes: Connecting plate 721, connected to the telescopic member 71; Folding rod 722, connected to the connecting plate 721; Sleeve plate 723, rotatably connected to the folding rod 722; Volute spring 724, one end connected to the sleeve plate 723 and the other end connected to the folding rod 722; First toothed ring 725, connected to the fixed ring 63 and snap - connected to the sleeve plate 723; Right - angled plate 726, one end connected to the connecting plate 721 and the other end abutted against the top of the sleeve plate 723.

[0033] In the initial state, the sleeve plate 723 is in a horizontal state. When the telescopic member 71 drives the connecting plate 721 to move downward, the sleeve plate 723 is snap - connected to the first toothed ring 725, and the right - angled plate 726 limits the sleeve plate 723, causing the first toothed ring 725 to drive the fixed ring 63 to rotate. When the sleeve plate 723 moves to disengage from the first toothed ring 725, the fixed ring 63 stops rotating. At this time, the next set of filtering arc plates 5 moves to the top; when the telescopic member 71 drives the connecting plate 721 to move upward, the connecting plate 721 drives the sleeve plate 723 to move upward. When the sleeve plate 723 abuts against the first toothed ring 725, due to the positioning effect of the positioning arc plate 754, the fixed ring 63 cannot rotate, and the sleeve plate 723 rotates, ensuring that the connecting plate 721 can continue to move upward. The setting of the volute spring 724 ensures that the sleeve plate 723 can return to the horizontal state after disengaging from the first toothed ring 725.

[0034] As an embodiment of the present invention, please refer to Figure 2 、 Figure 4 、 Figures 6 to 9 、 Figure 11 , the reciprocating rotation assembly 73 includes: Toothed plate 731, connected to the telescopic member 71; Second toothed ring 732, connected to the intake pipe 2 and meshed with the toothed plate 731.

[0035] The telescopic member 71 drives the toothed plate 731 to move longitudinally back and forth. The toothed plate 731 meshes with the second toothed ring 732, driving the second toothed ring 732 to rotate back and forth, and then driving the intake pipe 2 to rotate back and forth, increasing the degree of air flow disorder, thereby improving the filtering effect.

[0036] As an embodiment of the present invention, please refer to Figure 2 、 Figure 4 、 Figures 6 to 10 , the positioning and shielding assembly 75 includes: Fixed frame 751, connected to the intake pipe 2; First rotating ring 752, rotatably connected to the side of the fixed frame 751 close to the fixed plate 4; The folding pipe 1 (753) has one end passing through the rotating ring 1 (752) and communicating with the inside of the fixed frame (751), and the other end communicating with the inside of the dust collecting arc plate (74). The positioning arc plate (754) is slidably connected to the dust collecting arc plate (74) and abuts against the fixed strip (62) at the top. The power assembly (755) has one end connected to the rotating ring 1 (752) and the other end connected to the fixed ring (63), and is used to drive the positioning arc plate (754) to move along the dust collecting arc plate (74). The power assembly (755) includes: The folding pipe 2 (7551) passes through the rotating ring 1 (752) and communicates with the inside of the fixed frame (751). The sliding rod (7552) is slidably connected to the folding pipe 2 (7551). The elastic member (7553) has one end connected to the folding pipe 2 (7551) and the other end connected to one end of the sliding rod (7552). The roller (7554) is rotatably connected to the other end of the sliding rod (7552). The inclined arc block (7555) is connected to the fixed ring (63). There are several groups of the inclined arc blocks (7555), and they are arranged in a circular pattern at equal intervals. The number of the inclined arc blocks (7555) is equal to the number of the filter arc plates (5). Both ends of the inclined arc block (7555) are bevel structures.

[0037] During the process of the fixed ring (63) driving the filter arc plate (5) to rotate, the inclined arc block (7555) is synchronously driven to rotate. During the rotation of the inclined arc block (7555), it abuts against the roller (7554), so that the roller (7554) drives the sliding rod (7552) to move, and the elastic member (7553) undergoes elastic deformation. The movement of the sliding rod (7552) pumps the air inside the fixed frame (751) into the folding pipe 2 (7551), thereby changing the air pressure inside the dust collecting arc plate (74) and the telescopic cylinder (766), and the positioning arc plate (754) moves away from the fixed strip (62), and the cleaning brush (77) moves away from the filter arc plate (5). When the roller (7554) moves to abut against the other end bevel of the inclined arc block (7555), under the reaction force of the elastic member (7553), the sliding rod (7552) moves in the reverse direction, the positioning arc plate (754) moves towards the side close to the fixed strip (62), and the cleaning brush (77) moves towards the side close to the filter arc plate (5). When the fixed ring (63) stops rotating, the positioning arc plate (754) abuts against the fixed strip (62) again, and the cleaning brush (77) abuts against the filter arc plate (5) again. The positioning arc plate (754) abuts against the fixed strip (62) to position the fixed strip (62), and to prevent the fixed ring (63) from rotating when the telescopic member (71) moves upward. The elastic member (7553) can be a spring, a spring piece, etc.

[0038] As an embodiment of the present invention, please refer to Figure 2 、 Figure 4 、 Figures 6 to 9 、 Figure 11 , the reciprocating swing assembly (76) includes: The rotating ring II 761 is rotatably connected to the fixed plate 4 and the fixed ring 63; The folded pipe III 762 has one end internally connected to the inside of the fixed frame 751; The rotating cylinder 765 passes through the rotating ring II 761 and is rotatably connected thereto. The rotating cylinder 765 is rotatably connected to the other end of the folded pipe III 762 and is internally connected thereto; The gear 763 is connected to the rotating cylinder 765; The tooth arc 764 is connected to the fixed plate 4 and meshes with the gear 763; The telescopic cylinder 766 has one end internally connected to the rotating cylinder 765 and the other end connected to the cleaning brush plate 77.

[0039] The fixed frame 751 drives the folded pipe III 762 to rotate reciprocally. The folded pipe III 762 drives the rotating cylinder 765 to rotate reciprocally. The rotating cylinder 765 drives the gear 763 to rotate reciprocally. The gear 763 meshes with the tooth arc 764, causing the gear 763 to rotate simultaneously about its own axis. The gear 763 drives the rotating cylinder 765 to rotate about its own axis, and further drives the cleaning brush plate 77 to rotate. The cleaning brush plate 77 rotates while reciprocally swinging, comprehensively cleaning the filter arc plate 5; Moreover, during the rotation of the filter arc plate 5, the telescopic cylinder 766 contracts, causing the cleaning brush plate 77 to move away from the filter arc plate 5, preventing dust from scattering during the cleaning of the filter arc plate 5 at this time. During the positioning of the filter arc plate 5, the telescopic cylinder 766 extends, causing the cleaning brush plate 77 to abut against the filter arc plate 5 and cleaning the filter arc plate 5.

[0040] As an embodiment of the present invention, please refer to Figures 3 to 5 , and further includes: The cover plate 8 is detachably connected to the top of the rotating plate 64.

[0041] The cover plate 8 is detachably connected. When it is necessary to clean the dust on the dust collecting arc plate 74, the cover plate 8 is opened, facilitating the cleaning of the dust.

[0042] The working principle of the present invention is as follows: The filter arc plate 5 is slid and clamped between two adjacent fixing strips 62. The fixed arc plate 65 is rotated so that the fixed arc plate 65 abuts against the filter arc plate 5, thereby fixing the filter arc plate 5. The air flow enters the intake pipe 2 and flows out from the air holes. The filter arc plate 5 filters the solid impurities in the air flow. The filtered air flow flows out from the outlet pipe 3 for subsequent processing; The telescopic member 71 drives the toothed plate 731 to move longitudinally reciprocally. The toothed plate 731 meshes with the second toothed ring 732, driving the second toothed ring 732 to rotate reciprocally, and further driving the intake pipe 2 to rotate reciprocally, increasing the degree of air flow disorder, thereby improving the filtering effect; In the initial state, the sleeve plate 723 is in a horizontal state. When the telescopic member 71 drives the connecting plate 721 to move downward, the sleeve plate 723 is engaged with the first gear ring 725, and the right-angle plate 726 limits the sleeve plate 723, causing the first gear ring 725 to drive the fixed ring 63 to rotate. When the sleeve plate 723 moves away from the first gear ring 725, the fixed ring 63 stops rotating. At this time, the next set of filter arc plates 5 moves to the top; During the rotation of the fixed ring 63 driving the filter arc plate 5, the inclined arc block 7555 is synchronously driven to rotate. During the rotation of the inclined arc block 7555, it abuts against the roller 7554, causing the roller 7554 to drive the sliding rod 7552 to move, and the elastic member 7553 undergoes elastic deformation. The movement of the sliding rod 7552 pumps the air inside the fixed frame 751 into the second corrugated pipe 7551, thereby changing the air pressure inside the dust collection arc plate 74 and the telescopic cylinder 766. The positioning arc plate 754 moves away from the fixed strip 62, and the cleaning brush 77 moves away from the filter arc plate 5. When the roller 7554 moves to abut against the other inclined side of the inclined arc block 7555, under the reaction force of the elastic member 7553, the sliding rod 7552 moves in the reverse direction, the positioning arc plate 754 moves towards the side close to the fixed strip 62, and the cleaning brush 77 moves towards the side close to the filter arc plate 5. After the fixed ring 63 stops rotating, the positioning arc plate 754 abuts against the fixed strip 62 again, and the cleaning brush 77 abuts against the filter arc plate 5 again. The positioning arc plate 754 abuts against the fixed strip 62 to position the fixed strip 62, preventing the fixed ring 63 from rotating when the telescopic member 71 moves upward; The fixed frame 751 drives the third corrugated pipe 762 to rotate reciprocally. The third corrugated pipe 762 drives the rotating cylinder 765 to rotate reciprocally. The rotating cylinder 765 drives the gear 763 to rotate reciprocally. The gear 763 meshes with the tooth arc 764, causing the gear 763 to rotate simultaneously. The gear 763 drives the rotating cylinder 765 to rotate, and then drives the cleaning brush 77 to rotate. The cleaning brush 77 rotates while swinging reciprocally to clean the filter arc plate 5 comprehensively, and the impurities cleaned accumulate on the dust collection arc plate 74.

[0043] For those skilled in the art, it is obvious that the present invention is not limited to the details of the above exemplary embodiments, and without departing from the spirit or basic characteristics of the present invention, the present invention can be implemented in other specific forms. Therefore, from any point of view, the embodiments should be regarded as exemplary and non-limiting. The scope of the present invention is defined by the appended claims rather than the above description. Therefore, it is intended to encompass all changes falling within the meaning and scope of the equivalent elements of the claims in the present invention. Any reference signs in the claims should not be regarded as limiting the claimed rights.

[0044] In addition, it should be understood that although this specification is described in terms of embodiments, not every embodiment contains only one independent technical solution. This narrative style of the specification is only for clarity. Those skilled in the art should regard the specification as a whole, and the technical solutions in each embodiment can also be appropriately combined to form other embodiments that can be understood by those skilled in the art.

Claims

1. A purification device for carbon emission reduction, comprising a purification chamber, wherein a sealing door is connected to the front of the purification chamber through a hinge, and is characterized in that, It also includes: An intake pipe that penetrates the back of the purification chamber and is rotatably connected thereto. A number of groups of air holes are provided on the intake pipe; An outlet pipe that is connected to the purification chamber and is internally communicated therewith; A fixing plate that is rotatably connected to the intake pipe. The fixing plate is located inside the purification chamber and is connected thereto; Filter arc plates that are located inside the purification chamber. There are a number of groups of the filter arc plates, which are arranged in a circumferential pattern at equal intervals. The filter arc plates are used to filter dust in the gas; A fixing mechanism, one end of which is connected to the purification chamber and the other end is connected to the filter arc plates, for fixing the filter arc plates; A cleaning mechanism for cleaning the filter arc plates. The cleaning mechanism includes: A telescopic member, one end of which is connected to the purification chamber; An intermittent rotation assembly, one end of which is connected to the other end of the telescopic member and the other end is connected to the fixing mechanism, for driving the filter arc plates to rotate intermittently; A reciprocating rotation assembly, one end of which is connected to the telescopic member and the other end is connected to the intake pipe, for driving the intake pipe to rotate reciprocally; A dust collecting arc plate that is connected to the fixing mechanism. The dust collecting arc plate is located at the bottom of the top filter arc plate. The arc angle of the dust collecting arc plate is greater than the arc angle of the filter arc plate; A positioning and shielding assembly, one end of which is connected to the intake pipe and the other end is connected to the dust collecting arc plate, for shielding the filter arc plates being cleaned; A reciprocating swing assembly, one end of which is connected to the positioning and shielding assembly and the other end is connected to the fixing plate; Cleaning brushes, which are connected to the reciprocating swing assembly. The cleaning brushes are located between the dust collecting arc plate and the top filter arc plate. There are a number of groups of the cleaning brushes, which are arranged in a circumferential pattern at equal intervals.

2. The purification device for carbon emission reduction according to claim 1, wherein, The fixing mechanism includes: A positioning ring that is connected to the inner wall of the purification chamber; Fixing strips that are rotatably connected to the positioning ring. There are a number of groups of the fixing strips, which are arranged in a circumferential pattern at equal intervals. The fixing strips are slidably clamped with the filter arc plates; A fixing ring that is connected to one end of the fixing strip; A rotating plate that is rotatably connected to the other end of the fixing strip and is connected to the purification chamber; A fixing arc plate that is rotatably connected to the fixing strip and abuts against the filter arc plate.

3. The purification device for carbon emission reduction according to claim 2, wherein, The intermittent rotation assembly includes: A connecting plate that is connected to the telescopic member; A folding rod that is connected to the connecting plate; A sleeve plate that is rotatably connected to the folding rod; A volute spring, one end of which is connected to the sleeve plate and the other end is connected to the folding rod; A first toothed ring that is connected to the fixing ring and is clamped with the sleeve plate; A right-angle plate, one end of which is connected to the connecting plate and the other end abuts against the top of the sleeve plate.

4. A purification device for carbon emission reduction according to claim 1, characterized in that, The reciprocating rotation assembly includes: A toothed plate that is connected to the telescopic member; A second toothed ring that is connected to the intake pipe and is meshed with the toothed plate.

5. The purification device for carbon emission reduction according to claim 2, characterized in that, The positioning and shielding assembly includes: A fixing frame that is connected to the intake pipe; A first rotating ring that is rotatably connected to the side of the fixing frame close to the fixing plate; A first folding pipe, one end of which penetrates the first rotating ring and is internally communicated with the fixing frame, and the other end is internally communicated with the dust collecting arc plate; A positioning arc plate that is slidably connected to the dust collecting arc plate and abuts against the top fixing strip; A power assembly, one end of which is connected to the first rotating ring and the other end is connected to the fixing ring, for driving the positioning arc plate to move along the dust collecting arc plate.

6. The purification device for carbon emission reduction according to claim 5, wherein, The power assembly includes: A second folding pipe that penetrates the first rotating ring and is internally communicated with the fixing frame; A sliding rod that is slidably connected to the second folding pipe; An elastic member, one end of which is connected to the second folding pipe and the other end is connected to one end of the sliding rod; A roller that is rotatably connected to the other end of the sliding rod; The inclined arc blocks are connected to the fixed ring. There are several groups of the inclined arc blocks, which are arranged circumferentially at equal intervals. The number of the inclined arc blocks is equal to the number of the filtering arc plates. Both ends of the inclined arc blocks are of bevel structures.

7. The purification device for carbon emission reduction according to claim 5, characterized in that, The reciprocating swing assembly includes: The second rotating ring, which is rotationally connected to the fixed plate and the fixed ring; The third folding pipe, one end of which is communicated with the inside of the fixed frame; The rotating cylinder, which penetrates through the second rotating ring and is rotationally connected thereto. The rotating cylinder is rotationally connected to the other end of the third folding pipe and is communicated with its inside; The gear, which is connected to the rotating cylinder; The tooth arc, which is connected to the fixed plate and meshes with the gear; The telescopic cylinder, one end of which is communicated with the inside of the rotating cylinder, and the other end of which is connected to the cleaning brush plate.

8. A purification device for carbon emission reduction according to claim 2, characterized in that, It further includes: The cover plate, which is detachably connected to the top of the rotating plate.

Citation Information

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