Activated carbon industrial waste gas treatment device
By designing a cleaning mechanism and sealing structure, the activated carbon industrial waste gas treatment device solves the problems of filter plate saturation and leakage, and achieves efficient and automated cleaning of filter plates and safe waste gas treatment.
Patent Information
- Application Number
- CN202520517050.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-24
- Publication Date
- 2026-03-03
- Estimated Expiration
- 2035-03-24
AI Technical Summary
The filter plates of existing industrial waste gas treatment devices are prone to saturation, which leads to reduced filtration efficiency. The replacement of filter plates is cumbersome and frequent, and there is a lack of effective cleaning mechanisms, which may result in air leakage and affect the working environment and health.
An activated carbon industrial waste gas treatment device with a cleaning mechanism was designed, comprising a top box, motor barrel, screw, screw block, cleaning plate, cleaning brush and slag storage mechanism. The cleaning plate is driven by a motor to automatically clean the filter plate. Combined with sealing strip and sealing gasket to prevent waste gas leakage, impurities are collected by the slag storage plate and discharged through the slag discharge door.
It achieves efficient and automated cleaning of filter plates, improves cleaning efficiency, reduces manual operation, prevents exhaust gas leakage, and ensures the safety and health of the working environment.
Smart Images

Figure CN223959365U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of waste gas treatment technology, specifically to an activated carbon industrial waste gas treatment device. Background Technology
[0002] Industrial waste gas refers to the general term for various pollutant-containing gases emitted into the air during fuel combustion and production processes within a factory area. These gases are characterized by particulate dust, pungent odors, and are harmful to health. Furthermore, waste gas is a major culprit in causing air pollution, global warming, and smog, which can seriously endanger human health.
[0003] Existing industrial waste gas treatment devices will gradually become saturated with internal filter plates after prolonged use, resulting in a significant reduction in filtration efficiency. Replacing the filter plates is a cumbersome and frequent process, which will reduce overall work efficiency in the long run. Furthermore, the devices lack effective cleaning mechanisms, and some devices may even experience air leaks during the cleaning process, affecting the working environment and the health of the staff.
[0004] Therefore, a solution is needed. Utility Model Content
[0005] (a) Technical problems to be solved
[0006] To address the shortcomings of existing technologies, this invention provides an activated carbon industrial waste gas treatment device to solve the problems mentioned in the background section.
[0007] (II) Technical Solution
[0008] To achieve the above objectives, this utility model provides the following technical solution:
[0009] An activated carbon industrial waste gas treatment device, characterized in that it includes a treatment box, an air inlet, a fan box, an air outlet, several outer plates, a sealing gasket, a filter plate, a handle, and a cleaning mechanism. The air inlet is located at the right rear end of the treatment box, the fan box and the air outlet are respectively located at the right and left ends of the treatment box, several outer plates are evenly arranged at the front end of the treatment box, the sealing gasket is located at the front end of each outer plate, the filter plate is located on each sealing gasket, the handle is located at the front end of each filter plate, and the cleaning mechanism is located inside and outside the treatment box.
[0010] The cleaning mechanism includes several top boxes, a motor cylinder, a limiting groove, a screw, a screw block, a cleaning plate, a cleaning brush, a fixing mechanism, and a slag storage mechanism. The top boxes are positioned on the top of the processing box corresponding to the position of each outer plate. The motor cylinder is located at the front end of each top box. The limiting groove is located at the bottom of each top box. The screw is located inside the limiting groove. The screw block is located on the screw. The cleaning plate is located at the bottom of the screw block. The cleaning brush is located inside the cleaning plate. The fixing mechanism is located at the rear end inside the processing box. The slag storage mechanism is located at the bottom of the processing box.
[0011] Preferably, a sealing strip is provided between the screw block and the limiting groove, and both the cleaning plate and the cleaning brush are U-shaped structures, with the screw block and the cleaning plate integrally formed.
[0012] Preferably, the fixing mechanism includes a side plate, a bottom plate, and a fixing groove. The side plate has a cuboid structure, the bottom plate is located at the bottom of the side plate, the fixing groove is located at the front end of the side plate and the top of the bottom plate, and the left and right ends of the upper half of the bottom plate have an inclined structure.
[0013] Preferably, the slag storage mechanism includes a slag storage plate, a guide plate, a slag discharge door, a hinge, and a second handle. The slag storage plate is T-shaped and is positioned at the bottom of the processing box corresponding to the position of each outer plate. The guide plate is positioned at the bottom of each slag storage plate. The slag discharge door is positioned at the bottom of the guide plate. The hinge is positioned at the rear end of the slag discharge door. The second handle is positioned at the bottom of the front end of the slag discharge door.
[0014] (III) Beneficial Effects
[0015] This invention provides an activated carbon industrial waste gas treatment device. It has the following beneficial effects:
[0016] 1. This solution uses a motor-driven cleaning plate to clean the filter plates. Each filter plate is cleaned individually, and the entire process is controlled by an external controller, making cleaning fully automatic, convenient, and fast. Furthermore, the fixing mechanism's structure securely holds the filter plates while maximizing the cleanable area, significantly improving cleaning efficiency.
[0017] 2. In addition, a sealing strip is provided between the top box and the screw block to prevent exhaust gas from entering when the screw block moves. The sealing gasket, together with the outer plate, facilitates the disassembly and assembly of the filter plate and also prevents exhaust gas leakage.
[0018] 3. Impurities removed from each filter plate are collected by a corresponding slag storage plate and discharged through the slag discharge door, achieving efficient and quick filter plate cleaning. Attached Figure Description
[0019] Figure 1This is a schematic diagram of the overall structure of this utility model;
[0020] Figure 2 This is a schematic diagram of the cross-sectional structure of the present invention;
[0021] Figure 3 This is a schematic diagram of the internal structure of the top box and the bottom of this utility model;
[0022] Figure 4 This is a schematic diagram of the fixing mechanism of this utility model;
[0023] Figure 5 This is a schematic diagram of the bottom structure of the slag storage mechanism of this utility model.
[0024] In the diagram, 1-processing box; 2-air inlet; 3-fan box; 4-air outlet; 5-several outer panels; 6-sealing gasket; 7-filter plate; 8-handle one; 9-cleaning mechanism; 91-several top boxes; 92-motor cylinder; 93-limiting groove; 931-sealing strip; 94-screw; 95-screw block; 96-cleaning plate; 97-cleaning brush; 98-fixing mechanism; 981-side plate; 982-bottom plate; 983-fixing groove; 99-slag storage mechanism; 991-slag storage plate; 992-guide plate; 993-slag discharge door; 994-hinge; 995-handle two. Detailed Implementation
[0025] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0026] Please see Figure 1-5 This utility model provides a technical solution to achieve this: an activated carbon industrial waste gas treatment device, characterized in that it includes a treatment box 1, an air inlet 2, a fan box 3, an air outlet 4, several outer plates 5, a sealing gasket 6, a filter plate 7, a handle 8, and a cleaning mechanism 9. The air inlet 2 is located at the right end of the back of the treatment box 1, the fan box 3 and the air outlet 4 are respectively located at the right end and the left end of the treatment box 1, several outer plates 5 are evenly arranged at the front end of the treatment box 1, the sealing gasket 6 is located at the front end of each outer plate 5, the filter plate 7 is located on each sealing gasket 6, the handle 8 is located at the front end of each filter plate 7, and the cleaning mechanism 9 is located inside and outside the treatment box 1.
[0027] The core cleaning mechanism 9 includes several top boxes 91, a motor cylinder 92, a limiting groove 93, a screw 94, a screw block 95, a cleaning plate 96, a cleaning brush 97, a fixing mechanism 98, and a slag storage mechanism 99. The top boxes 91 are positioned on the top of the processing box 1, corresponding to the position of each outer plate 5. The motor cylinder 92 is positioned at the front end of each top box 91. The limiting groove 93 is positioned at the bottom of the top box 91. The screw 94 is positioned inside the limiting groove 93. The screw block 95 is positioned on the screw 94. The cleaning plate 96 is positioned at the bottom of the screw block 95. The cleaning brush 97 is positioned inside the cleaning plate 96. The fixing mechanism 98 is positioned at the rear end of the processing box 1. The slag storage mechanism 99 is positioned at the bottom of the processing box 1.
[0028] Specifically, a sealing strip 931 is provided between the screw block 95 and the limiting groove 93, and the cleaning plate 96 and the cleaning brush 97 are both U-shaped structures, with the screw block 95 and the cleaning plate 96 integrally formed.
[0029] In detail, the fixing mechanism 98 includes a side plate 981, a bottom plate 982 and a fixing groove 983. The side plate 981 has a cuboid structure, the bottom plate 982 is located at the bottom of the side plate 981, and the fixing groove 983 is located at the front end of the side plate 981 and the top of the bottom plate 982. The left and right ends of the upper part of the bottom plate 982 have an inclined structure.
[0030] The slag storage mechanism 99 includes a slag storage plate 991, a guide plate 992, a slag discharge door 993, a hinge 994, and a second handle 995. The slag storage plate 991 is T-shaped and is located at the bottom of the processing box 1 corresponding to the position of each outer plate 5. The guide plate 992 is located at the bottom of each slag storage plate 991. The slag discharge door 993 is located at the bottom of the guide plate 992. The hinge 994 is located at the rear end of the slag discharge door 993. The second handle 995 is located at the bottom of the front end of the slag discharge door 993.
[0031] This solution uses a motor barrel 92 to drive a cleaning plate 96 to clean the filter plates 7. Each filter plate 7 is cleaned individually, and all cleaning is controlled by an external controller, making the fully automatic cleaning process convenient and fast. Furthermore, the structure of the fixing mechanism 98 can stably fix the filter plates 7 while maximizing the cleanable area of the filter plates 7, significantly improving the cleaning efficiency. In addition, a sealing strip 931 is provided between the top box 91 and the screw block 95 to prevent exhaust gas from entering when the screw block 95 moves. The sealing gasket 6, in conjunction with the outer plate 5, facilitates the disassembly and assembly of the filter plates 7 and also prevents exhaust gas leakage. Impurities cleaned from each filter plate 7 are collected by a corresponding slag storage plate 991 and discharged through a slag discharge door 993, achieving efficient and rapid cleaning of the filter plates 7.
[0032] Working principle: When the filter plates 7 need cleaning, the fan box 3 is stopped by the external control unit. Then, the motor barrel 92 drives the screw 94 to rotate, so that the cleaning plate 96, with the cleaning brush 97, cleans each filter plate 7. The impurities swept off during cleaning fall onto the slag storage plate 991 and are collected by the guide plate 992. After cleaning, the slag discharge door 993 is opened to release the impurities. Then the operation of the device can be resumed.
[0033] This utility model comprises: 1-processing box; 2-air inlet; 3-fan box; 4-air outlet; 5-several outer plates; 6-sealing gasket; 7-filter plate; 8-handle one; 9-cleaning mechanism; 91-several top boxes; 92-motor cylinder; 93-limiting groove; 931-sealing strip; 94-screw; 95-screw block; 96-cleaning plate; 97-cleaning brush; 98-fixing mechanism; 981-side plate; 982-bottom plate; 983-fixing groove; 99-slag storage mechanism; 991-slag storage plate; 992-guide plate; 993-slag discharge door; 994-hinge; 995-handle two. These components are all general standard parts or parts known to those skilled in the art. Their structure and principles can be learned by those skilled in the art through technical manuals or conventional experimental methods. The problem solved by this utility model is that the filter plates inside existing industrial waste gas treatment devices gradually become saturated after prolonged use, leading to a significant reduction in filtration efficiency. Replacing the filter plates is cumbersome and frequent, which reduces overall work efficiency in the long run. Furthermore, the devices lack a powerful cleaning mechanism, and some devices may experience air leaks during cleaning, affecting the working environment and the health of workers. This utility model significantly improves the cleaning efficiency of the filter plates, and the automated cleaning saves time and labor, making it suitable for market entry.
[0034] The foregoing has shown and described the basic principles, main features, and advantages of this utility model. It will be apparent to those skilled in the art that this utility model is not limited to the details of the exemplary embodiments described above, and that it can be implemented in other specific forms without departing from the spirit or basic characteristics of this utility model. Therefore, the embodiments should be considered exemplary and non-limiting in all respects. The scope of this utility model is defined by the appended claims rather than the foregoing description, and thus all variations falling within the meaning and scope of equivalents of the claims are intended to be included within this utility model. No reference numerals in the claims should be construed as limiting the scope of the claims.
[0035] Furthermore, it should be understood that although this specification describes embodiments, not every embodiment contains only one independent technical solution. This narrative style is merely for clarity. Those skilled in the art should consider 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. An activated carbon industrial waste gas treatment device, characterized in that: The device includes a processing box (1), an air inlet (2), a fan box (3), an air outlet (4), several outer plates (5), a sealing gasket (6), a filter plate (7), a handle (8), and a cleaning mechanism (9). The air inlet (2) is located at the right end of the back of the processing box (1). The fan box (3) and the air outlet (4) are located at the right and left ends of the processing box (1), respectively. Several outer plates (5) are evenly arranged at the front end of the processing box (1). The sealing gasket (6) is located at the front end of each outer plate (5). The filter plate (7) is located on each sealing gasket (6). The handle (8) is located at the front end of each filter plate (7). The cleaning mechanism (9) is located inside and outside the processing box (1). The cleaning mechanism (9) includes several top boxes (91), a motor cylinder (92), a limiting groove (93), a screw (94), a screw block (95), a cleaning plate (96), a cleaning brush (97), a fixing mechanism (98), and a slag storage mechanism (99). The several top boxes (91) are positioned at the top of the processing box (1) corresponding to the position of each outer plate (5). The motor cylinder (92) is positioned at the front end of each top box (91). The limiting groove (93) is positioned at the bottom of the top box (91). The screw (94) is positioned inside the limiting groove (93). The screw block (95) is positioned on the screw (94). The cleaning plate (96) is positioned at the bottom of the screw block (95). The cleaning brush (97) is positioned inside the cleaning plate (96). The fixing mechanism (98) is positioned at the rear end inside the processing box (1). The slag storage mechanism (99) is positioned at the bottom of the processing box (1).
2. The activated carbon industrial waste gas treatment device according to claim 1, characterized in that: A sealing strip (931) is provided between the screw block (95) and the limiting groove (93). The cleaning plate (96) and the cleaning brush (97) are both U-shaped structures. The screw block (95) and the cleaning plate (96) are integrally formed.
3. The activated carbon industrial waste gas treatment device according to claim 1, characterized in that: The fixing mechanism (98) includes a side plate (981), a bottom plate (982), and a fixing groove (983). The side plate (981) has a cuboid structure. The bottom plate (982) is located at the bottom of the side plate (981). The fixing groove (983) is located at the front end of the side plate (981) and the top of the bottom plate (982). The left and right ends of the upper half of the bottom plate (982) have an inclined structure.
4. The activated carbon industrial waste gas treatment device according to claim 1, characterized in that: The slag storage mechanism (99) includes a slag storage plate (991), a guide plate (992), a slag discharge door (993), a hinge (994), and a second handle (995). The slag storage plate (991) is T-shaped and is positioned at the bottom of the processing box (1) corresponding to the position of each outer plate (5). The guide plate (992) is located at the bottom of each slag storage plate (991). The slag discharge door (993) is located at the bottom of the guide plate (992). The hinge (994) is located at the rear end of the slag discharge door (993). The second handle (995) is located at the bottom front end of the slag discharge door (993).