Activated carbon adsorption and desorption waste gas treatment box
By designing an activated carbon adsorption-desorption waste gas treatment box and optimizing the adsorption and desorption operations of activated carbon using hydraulic expansion joints and multiple connecting pipes, the problems of poor treatment effect and high operation difficulty of traditional methods are solved, and efficient waste gas treatment is achieved.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-24
- Publication Date
- 2026-03-31
AI Technical Summary
Traditional methods for treating toxic or volatile organic compound gases often result in poor gas treatment efficiency, as they are unable to effectively perform adsorption and desorption operations. These methods are difficult to operate, and the equipment is not adjustable, making it hard to meet treatment standards.
An activated carbon adsorption-desorption waste gas treatment box was designed, comprising a waste gas treatment box body, a hydraulic expansion joint, a disc gas box, an outlet pipe, and a transfer connection pipe. The hydraulic expansion joint enables the adsorption and desorption of activated carbon, supports quick installation and removal of the processor, and optimizes the treatment process.
It improves gas treatment efficiency, reduces operational difficulty, and achieves a refined waste gas treatment process, enabling higher treatment standards.
Smart Images

Figure CN224057035U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of waste gas treatment boxes, specifically an activated carbon adsorption-desorption waste gas treatment box. Background Technology
[0002] Toxic gases, such as ammonia: The porous structure of activated carbon allows it to capture and fix ammonia molecules, effectively reducing the concentration of ammonia in the air. Formaldehyde: Newly renovated houses and furniture often contain harmful gases such as formaldehyde; activated carbon can adsorb these gases and improve indoor air quality. Benzene-related gases: Benzene, toluene, xylene, and other benzene compounds are common industrial organic waste gases; activated carbon has a strong adsorption capacity for them.
[0003] In modern industry, many manufacturing and processing processes generate VOCs. The release of these gases not only affects environmental quality but also poses a threat to human health. Activated carbon, due to its excellent adsorption properties, has become the preferred material for treating VOCs. Activated carbon adsorption systems can effectively capture and purify these gases, reducing air pollution.
[0004] Traditional methods for treating toxic or volatile organic compound gases result in poor overall gas treatment efficiency. Activated carbon cannot effectively perform adsorption and desorption operations, leading to poor overall performance and failing to meet usage requirements. Furthermore, the installation of adsorption and desorption processors is difficult, and the overall device is not adjustable, making it inconvenient to remove and install the processors. The overall operation is complex, and the simple process of activated carbon adsorption and desorption in gas treatment fails to meet gas treatment standards.
[0005] Therefore, those skilled in the art have provided an activated carbon adsorption-desorption waste gas treatment box to solve the problems mentioned in the background art. Utility Model Content
[0006] The purpose of this utility model is to provide an activated carbon adsorption-desorption waste gas treatment box to solve the problems mentioned in the background art, such as poor overall gas treatment effect when treating toxic or volatile organic compound gases, ineffective adsorption and desorption operations by activated carbon, poor overall operation effect, difficulty in meeting overall usage requirements, difficulty in rapid installation of adsorption and desorption processors, inability to adjust the overall device, inconvenience in removing and installing adsorption and desorption processors, high overall operation difficulty, and simple overall treatment process in activated carbon adsorption-desorption gas treatment, which cannot meet the gas treatment standards.
[0007] To achieve the above objectives, this utility model provides the following technical solution:
[0008] An activated carbon adsorption-desorption waste gas treatment box includes a waste gas treatment box body, a hydraulic expansion joint A, a disc gas box, an outlet pipe, and a transfer connecting pipe. The waste gas treatment box body internally houses a telescopic mounting support frame, an adsorption treatment box, and a desorption treatment box. The bottom of the telescopic mounting support frame is fitted with the adsorption treatment box, and one end of the adsorption treatment box is fixedly connected to the desorption treatment box. The top surface of the waste gas treatment box body is equipped with the hydraulic expansion joint A. The top of the hydraulic expansion joint A has a horizontal top plate, and the bottom surface of the horizontal top plate has an mounting ring. The bottom surface of the mounting ring is fitted with a connecting ring, and the outer wall of the connecting ring is fitted with the disc gas box. The bottom surface of the disc gas box is fixedly connected to the hydraulic expansion joint B and a connecting pipe. The bottom of the hydraulic expansion joint B... A fixed outer shell is fixedly connected to one end of the connecting pipe. An adsorption processor is installed inside the fixed outer shell. An adsorption processor is fixedly connected to one end of the connecting pipe. An air inlet pipe is inserted into the outer wall of the fixed outer shell. A connecting pipe is provided on the outer wall of the disc-shaped gas box. A transfer box A is fixedly connected to one end of the connecting pipe. A transfer connecting pipe is fixedly connected to one end of the transfer box A. A transfer connecting pipe is fixedly connected to one end of the transfer connecting pipe. A transfer box B is fixedly connected to one side of the transfer box B. A hydraulic expansion joint C is provided on the bottom surface of the gas collection box. A side gas box is provided on the top surface of the gas collection box. A filter is provided on one side of the side gas box. A desorption processor is fixedly connected to one end of the filter. An air outlet pipe is provided on the top surface of the desorption processor.
[0009] As a preferred embodiment of the present invention: the telescopic mounting support frame includes a hydraulic telescopic device A, a transverse top plate, a mounting ring, and a sleeve ring.
[0010] As a preferred embodiment of the present invention: the hydraulic expansion joint A is provided in two sets, symmetrically arranged at both ends of the transverse top plate, and the mounting ring and the sleeve ring are both located in the middle of the transverse top plate.
[0011] As a preferred embodiment of the present invention: the adsorption treatment box includes a disc gas box, a hydraulic expansion joint B, a fixed outer shell, a connecting pipe, a transfer box A, a connecting pipe, an adsorption processor, and an air inlet pipe.
[0012] In a preferred embodiment of this utility model: several connecting pipes are provided and located between the disc gas box and the adsorption processor; several hydraulic expansion joints B are provided and located between the disc gas box and the fixed outer shell.
[0013] As a preferred embodiment of this utility model: the desorption treatment box includes an outlet pipe, a desorption processor, a filter, a side gas box, a gas collection box, a hydraulic expansion joint C, a transfer connecting pipe, and a transfer box body B.
[0014] In a preferred embodiment of this utility model, the filter and the side gas box are provided with several groups, the top surface of the side gas box is provided with several filters, and the filters and the side gas box are symmetrically distributed on the outer wall of the desorption processor.
[0015] In a preferred embodiment of this utility model, the filter and the side gas box are arranged vertically, and the filter and the desorption processor are arranged vertically. The filter is provided with a filter screen, and the desorption processor and the adsorption processor are provided with activated carbon.
[0016] Compared with the prior art, the beneficial effects of this utility model are:
[0017] This utility model discloses an activated carbon adsorption-desorption waste gas treatment box, which overcomes the shortcomings of traditional waste gas treatment boxes, which generally have poor overall waste gas treatment effects. It effectively utilizes activated carbon for adsorption and desorption, resulting in better overall performance and meeting general usage requirements. Furthermore, it allows for rapid installation of the adsorption and desorption processors. The non-adjustable design facilitates the removal and installation of the processors, reducing operational complexity. The activated carbon adsorption-desorption process for waste gas treatment is also more refined, better meeting waste gas treatment standards. Attached Figure Description
[0018] Other features, objects, and advantages of this invention will become more apparent from the following detailed description of non-limiting embodiments with reference to the accompanying drawings:
[0019] Figure 1 This is a three-dimensional structural diagram of an activated carbon adsorption-desorption waste gas treatment box.
[0020] Figure 2 This is a three-dimensional structural diagram of the adsorption treatment box and the desorption treatment box in the connected state of an activated carbon adsorption-desorption waste gas treatment box.
[0021] Figure 3 This is a three-dimensional structural diagram of an activated carbon adsorption-desorption waste gas treatment box in a connected state, viewed from an isometric side view.
[0022] Figure 4 This is a three-dimensional structural diagram of the desorption treatment box in an activated carbon adsorption-desorption waste gas treatment box.
[0023] Figure 5 This is a three-dimensional structural diagram of the adsorption treatment box in an activated carbon adsorption-desorption waste gas treatment box.
[0024] In the diagram: 1. Exhaust gas treatment box; 2. Telescopic mounting support frame; 201. Hydraulic expansion joint A; 202. Horizontal top plate; 203. Mounting ring; 204. Sleeve ring; 3. Adsorption treatment box; 301. Disc gas box; 302. Hydraulic expansion joint B; 303. Fixed outer shell; 304. Connecting pipe; 305. Transfer box A; 306. Connecting pipe; 307. Adsorption processor; 308. Inlet pipe; 4. Desorption treatment box; 401. Outlet pipe; 402. Desorption processor; 403. Filter; 404. Side gas box; 405. Gas collection box; 406. Hydraulic expansion joint C; 407. Transfer connecting pipe; 408. Transfer box B. Detailed Implementation
[0025] Please see Figure 1-5In this embodiment of the invention, an activated carbon adsorption-desorption waste gas treatment box includes a waste gas treatment box body 1, a hydraulic telescopic device A201, a disc gas box 301, an outlet pipe 401, and a transfer connecting pipe 407. The waste gas treatment box body 1 is internally equipped with a telescopic mounting support frame 2, an adsorption treatment box 3, and a desorption treatment box 4. The bottom of the telescopic mounting support frame 2 is fitted with the adsorption treatment box 3, and one end of the adsorption treatment box 3 is fixedly connected to the desorption treatment box 4. This design overcomes the shortcomings of traditional waste gas treatment boxes, which often have poor overall waste gas treatment performance, and effectively utilizes activated carbon for adsorption and desorption. The desorption operation improves the overall operational efficiency and meets the overall usage requirements. The internal top surface of the exhaust gas treatment chamber 1 is equipped with a hydraulic expansion joint A201. A horizontal top plate 202 is located at the top of the hydraulic expansion joint A201. A mounting ring 203 is located on the bottom surface of the horizontal top plate 202. A connecting ring 204 is sleeved on the bottom surface of the mounting ring 203. A disc gas box 301 is sleeved on the outer wall of the connecting ring 204. During operation, exhaust gas is introduced through the intake pipe 308, and the exhaust gas is adsorbed and treated by the adsorption processor 307 before entering the disc gas box 301 through the connecting pipe 306. In section 1, the gas enters through connecting pipe 304 and transfer box A305 into transfer connecting pipe 407 and transfer box B408 to complete the adsorption process. A hydraulic expansion joint B302 and a connecting pipe 306 are fixedly connected to the bottom surface of the disc gas box 301. A fixed outer shell 303 is fixedly connected to the bottom end of the hydraulic expansion joint B302. An adsorption processor 307 is installed inside the fixed outer shell 303. One end of the connecting pipe 306 is fixedly connected to the adsorption processor 307. An air inlet pipe 308 is inserted into the outer wall of the fixed outer shell 303. A connecting pipe 304 is provided on the outer wall of the disc gas box 301. One end of 4 is fixedly connected to a transfer box A305, one end of transfer box A305 is fixedly connected to a transfer connecting pipe 407, one end of transfer connecting pipe 407 is fixedly connected to a transfer box B408, one side of transfer box B408 is fixedly connected to a gas collecting box 405, the bottom surface of gas collecting box 405 is provided with a hydraulic expansion joint C406, the top surface of gas collecting box 405 is provided with a side gas box 404, one side of side gas box 404 is provided with a filter 403, one end of filter 403 is fixedly connected to a desorption processor 402, the top surface of desorption processor 402 is provided with an outlet pipe 401.
[0026] Please see Figure 1 and Figure 5The telescopic mounting support frame 2 includes a hydraulic telescopic device A201, a transverse top plate 202, a mounting ring 203, and a sleeve ring 204. Two sets of hydraulic telescopic devices A201 are symmetrically arranged at both ends of the transverse top plate 202, and the mounting ring 203 and sleeve ring 204 are both located in the middle of the transverse top plate 202. The gas in the transfer box B408 enters the gas collection box 405 through the hydraulic telescopic device C406, then expands and contracts through the filter 403, undergoes filtration through the desorption processor 402, and finally exits through the outlet pipe 401. The adsorption treatment box 3 includes a disc gas box 301, a hydraulic telescopic device B302, a fixed outer shell 303, a connecting pipe 304, a transfer box A305, a connecting pipe 306, an adsorption processor 307, and an inlet pipe 308. Several connecting pipes 306 are provided and located between the disc gas box 301 and the adsorption processor 307. Several hydraulic expansion joints B302 are provided and located between the disc gas box 301 and the fixed housing 303. The desorption treatment box 4 includes an outlet pipe 401, a desorption processor 402, a filter 403, a side gas box 404, a gas collection box 405, a hydraulic expansion joint C406, a transfer connecting pipe 407, and a transfer box B408. During use, the adsorption processor and desorption processor can be installed quickly. The overall device is not adjustable, which facilitates the removal and installation of the adsorption processor and desorption processor, reducing the overall operational difficulty. Furthermore, during the activated carbon adsorption and desorption of waste gas treatment, the overall treatment process is more refined, better meeting waste gas treatment standards. Both the filter 403 and the side gas chamber 404 are provided with several sets. The top surface of the side gas chamber 404 is provided with several filters 403, and the filters 403 and the side gas chamber 404 are symmetrically distributed on the outer wall of the desorption processor 402. The filters 403 and the side gas chamber 404 are arranged vertically, and the filters 403 and the desorption processor 402 are arranged vertically. The filters 403 are provided with filter screens, and the desorption processor 402 and the adsorption processor 307 are provided with activated carbon.
[0027] It should be noted that this utility model is an activated carbon adsorption-desorption waste gas treatment box, including: 1. a waste gas treatment box body; 2. a telescopic mounting support frame; 201. a hydraulic telescopic device A; 202. a transverse top plate; 203. a mounting ring; 204. a sleeve ring; 3. an adsorption treatment box; 301. a disc-shaped gas box; 302. a hydraulic telescopic device B; 303. a fixed outer shell; 304. a connecting pipe; 305. a transfer box A; 306. a connecting pipe; 307. an adsorption... The following components are included: processor; 308, inlet pipe; 4, desorption treatment box; 401, outlet pipe; 402, desorption processor; 403, filter; 404, side gas box; 405, gas collection box; 406, hydraulic expansion joint C; 407, transfer connecting pipe; 408, transfer box B. All components are general standard parts or parts known to those skilled in the art, and their structure and principle can be learned by those skilled in the art through technical manuals or conventional experimental methods.
[0028] The working principle of this utility model is as follows: It overcomes the shortcomings of traditional gas treatment boxes, which have poor overall gas treatment effects. It effectively utilizes activated carbon for adsorption and desorption, resulting in better overall performance and meeting overall usage requirements. During operation, gas is introduced through the inlet pipe 308, undergoes adsorption treatment by the adsorption processor 307, and then enters the disc gas box 301 through the connecting pipe 306. From there, it connects to the transfer connecting pipe 407 and the transfer box B408 via the connecting pipe 304 and transfer box A305, completing the adsorption process. The hydraulic telescopic device B302 allows for expansion and contraction. The gas in the transfer box B408 enters the gas collection box 405, and then expands and contracts via the hydraulic expansion joint C406. It is then filtered by the filter 403, desorbed by the desorption processor 402, and finally discharged through the outlet pipe 401. During use, the adsorption and desorption processors can be installed quickly. The overall device is non-adjustable, facilitating the removal and installation of the adsorption and desorption processors, reducing overall operational difficulty. Furthermore, the gas treatment process using activated carbon for adsorption and desorption is more refined, better meeting gas treatment standards.
[0029] The above description is only a preferred embodiment of the present utility model, but the protection scope of the present utility model is not limited thereto. Any equivalent substitutions or changes made by those skilled in the art within the technical scope disclosed in the present utility model, based on the technical solution and the inventive concept of the present utility model, should be included within the protection scope of the present utility model.
Claims
1. An activated carbon adsorption and desorption waste gas treatment box, comprising a waste gas treatment box body (1), a hydraulic telescopic device A (201), a disc gas box (301), an air outlet pipeline (401) and a transfer connecting pipeline (407), characterized in that, The inside of the waste gas treatment box (1) is provided with a telescopic mounting support frame (2), an adsorption treatment box (3) and a desorption treatment box (4), the bottom of the telescopic mounting support frame (2) is sleeved with the adsorption treatment box (3), one end of the adsorption treatment box (3) is fixedly connected with the desorption treatment box (4), the inside top surface of the waste gas treatment box (1) is provided with a hydraulic telescopic device A (201), the top end of the hydraulic telescopic device A (201) is provided with a transverse top plate (202), the bottom surface of the transverse top plate (202) is provided with a mounting ring body (203), the bottom surface of the mounting ring body (203) is sleeved with a sleeved ring body (204), the outer wall of the sleeved ring body (204) is sleeved with a disc gas box (301), the bottom surface of the disc gas box (301) is fixedly connected with a hydraulic telescopic device B (302) and a through connecting pipeline (306), the bottom end of the hydraulic telescopic device B (302) is fixedly connected with a fixed shell (303), the fixed shell (303) is provided with an adsorption processor (307), one end of the through connecting pipeline (306) is fixedly connected with the adsorption processor (307), the outer wall of the fixed shell (303) is inserted with an air inlet pipeline (308), the outer wall of the disc gas box (301) is provided with a connecting pipeline (304), one end of the connecting pipeline (304) is fixedly connected with a transfer box body A (305), one end of the transfer box body A (305) is fixedly connected with a transfer connecting pipe (407), one end of the transfer connecting pipe (407) is fixedly connected with a transfer box body B (408), one side of the transfer box body B (408) is fixedly connected with a gas gathering box (405), the bottom surface of the gas gathering box (405) is provided with a hydraulic telescopic device C (406), the top surface of the gas gathering box (405) is provided with a side gas box (404), one side of the side gas box (404) is provided with a filter (403), one end of the filter (403) is fixedly connected with a desorption processor (402), the top surface of the desorption processor (402) is provided with an air outlet pipeline (401).
2. The active carbon adsorption and desorption exhaust gas treatment box according to claim 1, characterized in that, The telescopic mounting support frame (2) comprises the hydraulic telescopic device A (201), the transverse top plate (202), the mounting ring body (203) and the sleeved ring body (204).
3. The active carbon adsorption and desorption exhaust gas treatment box according to claim 1, characterized in that, The hydraulic telescopic device A (201) is provided with two groups, which are symmetrically arranged at the two ends of the transverse top plate (202), and the mounting ring body (203) and the sleeved ring body (204) are both arranged at the middle part of the transverse top plate (202).
4. The active carbon adsorption and desorption exhaust gas treatment box according to claim 1, characterized in that, The adsorption treatment box (3) comprises the disc gas box (301), the hydraulic telescopic device B (302), the fixed shell (303), the connecting pipeline (304), the transfer box body A (305), the through connecting pipeline (306), the adsorption processor (307) and the air inlet pipeline (308).
5. The active carbon adsorption and desorption exhaust gas treatment box according to claim 1, characterized in that, The through connecting pipeline (306) is provided with a plurality of through connecting pipelines, which are located between the disc gas box (301) and the adsorption processor (307), and the hydraulic telescopic device B (302) is provided with a plurality of hydraulic telescopic devices, which are located between the disc gas box (301) and the fixed shell (303).
6. The active carbon adsorption and desorption exhaust gas treatment box according to claim 1, characterized in that, The desorption treatment box (4) comprises an air outlet pipeline (401), a desorption treatment device (402), a filter (403), a side gas box (404), a gas gathering box (405), a hydraulic telescopic device C (406), a transfer connecting pipeline (407) and a transfer box body B (408).
7. The active carbon adsorption and desorption exhaust gas treatment box according to claim 1, characterized in that, The filter (403) and the side gas box (404) are each provided with a plurality of groups, the top surface of the side gas box (404) is provided with a plurality of filters (403), and the filter (403) and the side gas box (404) are symmetrically distributed on the outer wall of the desorption treatment device (402).
8. The active carbon adsorption and desorption exhaust treatment box according to claim 1, characterized in that, The filter (403) and the side gas box (404) are vertically arranged, the filter (403) and the desorption treatment device (402) are vertically arranged, the filter (403) is provided with a filter screen, and the desorption treatment device (402) and the adsorption treatment device (307) are provided with activated carbon.