A waste gas treatment device for textile production waste gas treatment

Through a multi-stage collaborative treatment system, including dust removal, spraying, sterilization and heat exchange mechanisms, several problems in the treatment of textile production waste gas in existing technologies have been solved, achieving efficient, low-cost and safe waste gas treatment, adapting to air volume fluctuations and extending the service life of activated carbon.

CN122141393APending Publication Date: 2026-06-05SHAANXI CONGXIN ENVIRONMENTAL PROTECTION TECHNOLOGY CO LTD

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
SHAANXI CONGXIN ENVIRONMENTAL PROTECTION TECHNOLOGY CO LTD
Filing Date
2026-03-23
Publication Date
2026-06-05

AI Technical Summary

Technical Problem

Existing waste gas processors have several drawbacks when treating waste gas from textile production, including ineffectiveness against gaseous VOCs, easy oxidation and grease buildup on oil collection plates, failure of activated carbon adsorbents under high humidity, high replacement costs, high energy consumption of combustion methods and potential generation of dioxins, and insufficient adaptive airflow control.

Method used

The system employs a multi-stage synergistic treatment system, including dust removal, spraying, sterilization, and heat exchange mechanisms. The dust removal mechanism intercepts large particles, the spraying mechanism dissolves water-soluble pollutants, the sterilization mechanism decomposes organic matter, and the heat exchange mechanism heats up and adsorbs residual VOCs. Finally, the exhaust mechanism regulates emissions. Combining physical, chemical, and biological purification methods, the system utilizes UV photolysis to decompose pollutants at low temperatures, recovering waste heat and extending the lifespan of activated carbon.

Benefits of technology

It achieves multi-stage synergistic treatment of textile production waste gas, improves the overall removal rate, saves fuel costs, reduces energy consumption and hazardous waste production, reduces safety risks, extends the service life of activated carbon, adapts to air volume fluctuations, and reduces the risk of exceeding emission standards.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application discloses a kind of textile production waste gas treatment waste gas processor, belong to waste gas treatment technical field.The processor includes the communication of intake mechanism, spraying mechanism, filter mechanism, sterilization mechanism, heat exchange mechanism and exhaust mechanism in turn;The air inlet end of intake mechanism is also provided with dust removal mechanism.The present application is intercepted by dust removal mechanism Large particulate, spraying mechanism dissolves water-soluble pollutants, filter mechanism collects solid, sterilization mechanism decomposes organic matter, heat exchange mechanism carries out heat exchange and adsorbs residual VOCs, finally by exhaust mechanism adjustment emission, realizes the multistage, efficient collaborative purification of textile production waste gas, with the advantages of high purification efficiency, can realize self-cleaning, low maintenance cost, energy saving and environmental protection.
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Description

Technical Field

[0001] This invention relates to the field of waste gas treatment technology, and more specifically, to a waste gas processor for treating waste gas from textile production. Background Technology

[0002] my country is a major textile and dyeing country with numerous textile and dyeing enterprises. The main sources of waste gas generated in textile and dyeing processes are the spinning process of chemical fibers and the pretreatment and functional finishing processes of textiles. Taking the spinning process of viscose fiber as an example, the raw materials need to be processed into a spinning solution. During the manufacturing of the spinning solution, a large amount of carbon disulfide is added, so the spinning process produces harmful gases with hydrogen sulfide, carbon disulfide, and sulfur dioxide as the main gaseous components.

[0003] Existing waste gas treatments commonly employ technologies such as electrostatic precipitator, activated carbon adsorption, or combustion. Electrostatic precipitator technology is primarily designed for particulate matter treatment and is ineffective against gaseous VOCs. Furthermore, the oil collection plates are prone to oxidation and grease buildup, requiring frequent cleaning. Activated carbon adsorption technology is suitable for treating low-concentration VOCs, but high humidity in waste gas leads to adsorbent failure and high replacement costs. Combustion methods typically have high energy consumption, and chlorine-containing waste gas may generate dioxins. The catalyst is also susceptible to sulfur and phosphorus poisoning. Some traditional equipment has room for improvement in adaptive airflow control, as fluctuations in airflow can easily lead to emissions exceeding standards. Manual dust removal designs increase the workload for operators. Summary of the Invention

[0004] In view of the problems existing in the prior art, the purpose of the present invention is to provide a waste gas processor for treating waste gas in textile production. The present invention can not only treat waste gas, but also perform diversified treatment and self-cleaning.

[0005] To solve the above problems, the present invention adopts the following technical solution: A waste gas processor for treating waste gas from textile production includes: an air intake mechanism for drawing in waste gas; characterized in that the air intake mechanism is fixedly connected to a spraying mechanism for spraying the waste gas; a filter mechanism for collecting solids generated by spraying is fixedly connected to the air intake mechanism; a dust removal mechanism is fixedly connected to one end of the air intake mechanism; a sterilization mechanism is fixedly connected to one end of the air intake mechanism; the sterilization mechanism is fixedly connected to a heat exchange mechanism; and the heat exchange mechanism is fixedly connected to an exhaust mechanism.

[0006] In a preferred embodiment of the present invention, the air intake mechanism includes a liquid collection tank, a support frame fixedly connected to the liquid collection tank, an air intake box fixedly connected to the support frame, an air intake barrel at the bottom of the air intake box, a first blower fan fixedly connected to the inner wall of the air intake barrel, an air guide pipe fixedly connected to the air intake barrel, and a drain valve and an overflow valve fixedly connected to the liquid collection tank, with the overflow valve located above the drain valve and communicating with the drain valve.

[0007] As a preferred embodiment of the present invention, the spraying mechanism includes a mounting plate fixedly connected to the liquid collection tank and a plurality of spray pipes fixedly connected to the inside of the air inlet box. A booster water pump is fixedly connected to the mounting plate, and a plurality of spray heads are fixedly connected to the spray pipes. The liquid outlet of the booster water pump is connected to the spray pipes through a liquid delivery pipe.

[0008] In a preferred embodiment of the present invention, the filtration mechanism includes a waste liquid tank fixedly connected to a collection tank, a drain hopper fixedly connected to the waste liquid tank, a snap-fit ​​tray fixedly connected to the waste liquid tank, a filter frame snapped onto the snap-fit ​​tray, and a guide hopper provided on the filter frame.

[0009] In a preferred embodiment of the present invention, the dust removal mechanism includes a dust removal frame fixedly connected to the air inlet end of the air inlet box. A filter screen is fixedly connected to the inner wall of the dust removal frame. A first reciprocating screw is rotatably connected to the inner wall of the dust removal frame and to one side of the filter screen. A first internal thread block is threadedly connected to the first reciprocating screw. A cleaning scraper that contacts the filter screen is fixedly connected to the first internal thread block. A first guide rod is provided on both sides of the inner wall of the dust removal frame and to both sides of the first reciprocating screw. The first internal thread block is slidably connected to the first guide rod.

[0010] As a preferred embodiment of the present invention, a second reciprocating screw is rotatably connected to the inner wall of the dust removal frame and on the other side of the filter screen. A second internal thread block is threaded onto the second reciprocating screw. Wave grooves are provided on both sides of the inner wall of the dust removal frame. A beater plate is slidably connected to the wave groove and is slidably connected to the second internal thread block. The beater plate is provided with a plurality of beater protrusions.

[0011] In a preferred embodiment of the present invention, a first gear is fixedly connected to the first reciprocating lead screw, a first servo motor is fixedly connected to the dust removal frame, and the output shaft of the first servo motor is fixedly connected to the second reciprocating lead screw. A second gear is fixedly connected to the second reciprocating lead screw, and the second gear meshes with the first gear.

[0012] As a preferred embodiment of the present invention, the sterilization mechanism includes a sterilization chamber fixedly connected to one end of the air duct, two honeycomb photocatalysts fixedly connected inside the sterilization chamber, a plurality of mounting seats arranged intersecting with the honeycomb photocatalysts inside the sterilization chamber, a UV sterilization lamp fixedly connected to the mounting seat, and a plurality of electronic ballasts fixedly connected to the sterilization chamber.

[0013] As a preferred embodiment of the present invention, the heat exchange mechanism includes a cooling rack fixedly connected to the outside of the sterilization chamber, a second blower fixedly connected inside the cooling rack, a regenerative heat exchanger fixedly connected inside the cooling rack, two heat exchangers fixedly connected to the regenerative heat exchanger, an activated carbon filter fixedly connected inside the cooling rack, and two maintenance doors rotatably connected to the cooling rack.

[0014] In a preferred embodiment of the present invention, the exhaust mechanism includes an exhaust frame fixedly connected to a cooling rack. Multiple adjustable louvers are rotatably connected inside the exhaust frame. Connecting rods are fixedly connected to the adjustable louvers, and the multiple connecting rods are synchronously adjusted via an adjusting plate. An adjusting protrusion is rotatably connected to the adjusting plate. A folded seat is fixedly connected to the exhaust frame. An arc-shaped groove is formed on the folded seat, and the adjusting protrusion is slidably connected to the arc-shaped groove. A second servo motor is fixedly connected to the folded seat. A threaded rod is fixedly connected to the output shaft of the second servo motor. A third internal threaded plate is threadedly connected to the threaded rod, and the adjusting protrusion is slidably connected to the third internal threaded plate.

[0015] Compared with the prior art, the advantages of this invention are: (1) In this invention, the exhaust gas is sequentially intercepted by the dust removal mechanism to remove large particles, sucked in by the air intake mechanism, dissolved by the spray mechanism to dissolve water-soluble pollutants, collected by the filtration mechanism to collect solid particles, decomposed by the sterilization mechanism to decompose organic matter, heated by the heat exchange mechanism to adsorb residual VOCs, and finally regulated by the exhaust mechanism to achieve multi-level synergistic treatment, covering physical, chemical and biological purification methods, and improving the overall removal rate.

[0016] (2) This invention recovers the waste heat of the stenter exhaust gas through a heat exchanger, saving fuel costs. The exhaust mechanism is adjusted to reduce wind resistance and energy consumption. The spray liquid is recycled, the filtered grease can be recovered, and the activated carbon is placed at the end to extend its lifespan and reduce the production of hazardous waste. The UV photolysis decomposes pollutants at low temperatures through the setting of the heat exchange mechanism, which helps to reduce the safety risks that may be brought about by high-temperature treatment processes such as RTO. Attached Figure Description

[0017] Figure 1 This is a schematic diagram of a waste gas processor for treating waste gas from textile production according to the present invention. Figure 2 This is a cross-sectional view of the air intake mechanism in a waste gas processor for treating textile production waste gas according to the present invention. Figure 3 This is a schematic diagram of the spraying mechanism in a waste gas processor for treating textile production waste gas according to the present invention; Figure 4 This is an exploded view of the filtration mechanism in a waste gas processor for treating textile production waste gas according to the present invention. Figure 5 This is a first-view exploded view of the dust removal mechanism in a waste gas processor for treating textile production waste gas according to the present invention. Figure 6 This is a second-view exploded view of the dust removal mechanism in a waste gas processor for treating textile production waste gas according to the present invention. Figure 7 This is a cross-sectional view of the sterilization mechanism in a waste gas processor for treating textile production waste gas according to the present invention. Figure 8 This is a schematic diagram of the heat exchange mechanism in a waste gas processor for treating textile production waste gas according to the present invention. Figure 9 This is a schematic diagram of the exhaust mechanism in a waste gas processor for treating waste gas from textile production according to the present invention.

[0018] Explanation of the labels in the diagram: 1. Air intake mechanism; 101. Liquid collection tank; 102. Support frame; 103. Air intake box; 104. Air intake barrel; 105. First blower fan; 106. Air guide pipe; 107. Drain valve; 108. Overflow valve; 2. Spraying mechanism; 201. Mounting plate; 202. Booster water pump; 203. Spray pipe; 204. Spray head; 205. Infusion pipe; 3. Filtration mechanism; 301. Waste liquid tank; 302. Drain hopper; 303. Snap-on support plate; 304. Filter frame; 305. Guide hopper; 4. Dust removal mechanism; 401. Dust removal frame; 402. Filter screen; 403. First reciprocating screw; 404. First internal thread block; 405. Cleaning scraper; 406. First guide rod; 407. First gear; 408. Second reciprocating screw; 409. Second internal thread block 410. Threaded block; 411. Corrugated groove; 412. Beating plate; 413. Beating protrusion; 414. First servo motor; 415. Second gear; 5. Sterilization mechanism; 501. Sterilization chamber; 502. Honeycomb photocatalyst; 503. Mounting base; 504. UV sterilization lamp; 505. Electronic ballast; 6. Heat exchange mechanism; 601. Cooling rack; 602. Second blower; 603. Regenerative heat exchanger; 604. Heat exchanger; 605. Activated carbon filter rack; 606. Inspection door; 7. Exhaust mechanism; 701. Exhaust frame; 702. Adjustable louver; 703. Connecting rod; 704. Adjusting plate; 705. Adjusting protrusion; 706. Folded seat; 707. Arc groove; 708. Second servo motor; 709. Threaded rod; 710. Third internal threaded plate. Detailed Implementation

[0019] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only a part of the embodiments of the present invention, and not all of them. All other embodiments obtained by those skilled in the art based on the embodiments of the present invention without creative effort are within the scope of protection of the present invention.

[0020] Example

[0021] Please see Figure 1-9 A waste gas processor for treating waste gas from textile production includes: an air intake mechanism 1 for drawing in waste gas; characterized in that the air intake mechanism 1 is fixedly connected to a spraying mechanism 2 for spraying the waste gas; a filter mechanism 3 for collecting solids generated by spraying is fixedly connected to the air intake mechanism 1; a dust removal mechanism 4 is fixedly connected to one end of the air intake mechanism 1; a sterilization mechanism 5 is fixedly connected to one end of the air intake mechanism 1; the sterilization mechanism 5 is fixedly connected to a heat exchange mechanism 6; and the heat exchange mechanism 6 is fixedly connected to an exhaust mechanism 7.

[0022] In a specific embodiment of the present invention, the exhaust gas sequentially passes through a dust removal mechanism 4 to intercept large particles, an air intake mechanism 1 to draw in pollutants, a spray mechanism 2 to dissolve water-soluble pollutants, a filtration mechanism 3 to collect solid particles, a sterilization mechanism 5 to decompose organic matter, a heat exchange mechanism 6 to heat up and adsorb residual VOCs, and finally an exhaust mechanism 7 to regulate emissions, achieving multi-stage synergistic treatment, covering physical, chemical, and biological purification methods, improving the overall removal rate, recovering waste heat from the stenter exhaust gas through a heat exchanger 604 to save fuel costs, adjusting the exhaust mechanism 7 to reduce wind resistance and energy consumption, recycling the spray liquid, recovering the filtered grease, placing activated carbon at the end to extend its lifespan and reduce hazardous waste production, and using UV photolysis in the heat exchange mechanism 6 to decompose pollutants at low temperatures, which helps to reduce the safety risks that may be brought about by high-temperature treatment processes such as RTO.

[0023] Preferably, a regenerative heat exchanger (603) is fixedly connected inside the cooling rack (601), and two heat exchangers (604) are connected in series through a pipeline at the outlet end of the regenerative heat exchanger (603).

[0024] Specifically, the air intake mechanism 1 includes a liquid collection tank 101, a support frame 102 fixedly connected to the liquid collection tank 101, an air intake box 103 fixedly connected to the support frame 102, an air intake barrel 104 at the bottom of the air intake box 103, a first blower fan 105 fixedly connected to the inner wall of the air intake barrel 104, an air guide pipe 106 fixedly connected to the air intake barrel 104, and a drain valve 107 and an overflow valve 108 fixedly connected to the liquid collection tank 101. The overflow valve 108 is located above the drain valve 107 and communicates with the drain valve 107.

[0025] In a specific embodiment of the present invention, the liquid collection tank 101 collects waste liquid, the support frame 102 fixes the air inlet box 103, the first blower fan 105 drives the waste gas to be transported through the air guide pipe 106; the overflow valve 108 and the drain valve 107 are linked to control the liquid level, integrate the waste liquid recovery function, prevent equipment blockage, and the blower system enhances the waste gas transport efficiency to adapt to large air volume conditions.

[0026] Specifically, the spraying mechanism 2 includes a mounting plate 201 fixedly connected to the liquid collection tank 101, and multiple spray pipes 203 fixedly connected to the air inlet box 103. A booster water pump 202 is fixedly connected to the mounting plate 201, and multiple spray heads 204 are fixedly connected to the spray pipes 203. The liquid outlet of the booster water pump 202 is connected to the spray pipes 203 through a liquid delivery pipe 205.

[0027] In a specific embodiment of the present invention, the booster pump 202 delivers the spray liquid to the spray pipe 203, which is then atomized and sprayed out through the spray head 204. The spray liquid comes into countercurrent contact with the exhaust gas to dissolve acidic gases and some VOCs, effectively removing water-soluble pollutants, reducing the load on subsequent treatment, and the spray liquid can be recycled, resulting in low operating costs.

[0028] Specifically, the filtration mechanism 3 includes a waste liquid tank 301 fixedly connected to the collection tank 101, a drain hopper 302 fixedly connected to the waste liquid tank 301, a snap-fit ​​bracket 303 fixedly connected to the waste liquid tank 301, a filter frame 304 snapped onto the snap-fit ​​bracket 303, and a guide hopper 305 provided on the filter frame 304.

[0029] In a specific embodiment of the present invention, the waste liquid flows into the waste liquid tank 301 through the guide bucket 305, the filter frame 304 intercepts grease and solid particles, and the snap-fit ​​tray 303 facilitates disassembly and cleaning, thus solving the problem of grease oxidation and caking in electrostatic dust removal.

[0030] Specifically, the dust removal mechanism 4 includes a dust removal frame 401 fixedly connected to the air inlet end of the air inlet box 103. A filter screen 402 is fixedly connected to the inner wall of the dust removal frame 401. A first reciprocating screw 403 is rotatably connected to the inner wall of the dust removal frame 401 and to one side of the filter screen 402. A first internal thread block 404 is threaded onto the first reciprocating screw 403. A cleaning scraper 405 that contacts the filter screen 402 is fixedly connected to the first internal thread block 404. Both sides of the dust collector frame 401 are provided with first guide rods 406, and first internal threaded blocks 404 are slidably connected to the first guide rods 406. The inner wall of the dust collector frame 401 and the other side of the filter screen 402 are rotatably connected with a second reciprocating screw 408. A second internal threaded block 409 is threadedly connected to the second reciprocating screw 408. Both sides of the inner wall of the dust collector frame 401 are provided with wave grooves 410. A beater plate 411 is slidably connected to the wave grooves 410, and the beater plate 411 is slidably connected to the second internal threaded block 409.

[0031] Preferably, one end of the striking plate (411) is connected to the second internal thread block (409), and its two sides are slidably embedded in the wave groove (410); when the second reciprocating screw (408) rotates, it drives the second internal thread block (409) to move back and forth, thereby driving the striking plate (411) to move along the trajectory of the wave groove (410) to strike the filter screen (402).

[0032] The tapping plate 411 is provided with multiple tapping protrusions 412. A first gear 407 is fixedly connected to the first reciprocating lead screw 403. A first servo motor 413 is fixedly connected to the dust removal frame 401, and the output shaft of the first servo motor 413 is fixedly connected to the second reciprocating lead screw 408. A second gear 414 is fixedly connected to the second reciprocating lead screw 408, and the second gear 414 meshes with the first gear 407.

[0033] In a specific embodiment of the present invention, the first reciprocating screw 403 drives the cleaning scraper 405 to clean the filter screen 402, and the second reciprocating screw 408 drives the beating protrusions 412 of the beating plate 411 to shake off particulate matter. The first gear 407 and the second gear 414 synchronize with the first servo motor 413 to achieve automatic dust removal, avoid clogging of the filter screen 402, improve dust removal efficiency, and the wave groove 410 design enhances the beating force, which is suitable for high dust exhaust gas.

[0034] Specifically, the sterilization mechanism 5 includes a sterilization chamber 501 fixedly connected to one end of the air duct 106. Two honeycomb photocatalysts 502 are fixedly connected inside the sterilization chamber 501. Multiple mounting seats 503 are arranged intersectingly with the honeycomb photocatalysts 502 inside the sterilization chamber 501. UV sterilization lamps 504 are fixedly connected to the mounting seats 503. Multiple electronic ballasts 505 are fixedly connected to the sterilization chamber 501.

[0035] In a specific embodiment of the present invention, the UV sterilization lamp 504 irradiates the honeycomb photocatalyst 502 to generate free radicals that decompose benzene series compounds and other recalcitrant VOCs. The electronic ballast 505 stabilizes the voltage, increases the removal rate of low-concentration malodorous gases, and eliminates secondary pollution.

[0036] Specifically, the heat exchange mechanism 6 includes a cooling rack 601 fixedly connected to the outside of the sterilization chamber 501, a second blower 602 fixedly connected inside the cooling rack 601, a regenerative heat exchanger 603 fixedly connected inside the cooling rack 601, two heat exchangers 604 fixedly connected to the regenerative heat exchanger 603, an activated carbon filter rack 605 fixedly connected inside the cooling rack 601, activated carbon for adsorption is provided in the activated carbon filter rack 605, and two inspection doors 606 are rotatably connected to the cooling rack 601.

[0037] In a specific embodiment of the present invention, the regenerative heat exchanger 603 and the heat exchanger 604 use a refrigerant to reduce the temperature of the exhaust gas; the activated carbon filter 605 adsorbs residual organic matter; and the second blower 602 accelerates heat exchange.

[0038] Specifically, the exhaust mechanism 7 includes an exhaust frame 701 fixedly connected to the cooling rack 601. Multiple adjustable louvers 702 are rotatably connected inside the exhaust frame 701. Connecting rods 703 are fixedly connected to the adjustable louvers 702, and the multiple connecting rods 703 are synchronously adjusted by an adjusting plate 704. An adjusting protrusion 705 is rotatably connected to the adjusting plate 704. A folding seat 706 is fixedly connected to the exhaust frame 701. An arc-shaped groove 707 is opened on the folding seat 706, and the adjusting protrusion 705 is slidably connected to the arc-shaped groove 707. A second servo motor 708 is fixedly connected to the folding seat 706. A threaded rod 709 is fixedly connected to the output shaft of the second servo motor 708. A third internal thread plate 710 is threadedly connected to the threaded rod 709, and the adjusting protrusion 705 is slidably connected to the third internal thread plate 710.

[0039] In a specific embodiment of the present invention, the second servo motor 708 adjusts the connecting rod 703 via the third internal thread plate 710 to control the opening and closing angle of the louver 702, adapting to changes in wind pressure.

[0040] A method for using a waste gas processor for treating waste gas from textile production includes the following steps: The exhaust gas is first drawn in by the negative pressure of the collection tank 101 and the first blower fan 105 of the intake mechanism 1. The exhaust gas passes through the dual dust removal system of the dust removal mechanism 4. The filter screen 402 intercepts large particles. The first reciprocating screw 403 drives the cleaning scraper 405 to clean the filter screen periodically. The first gear 407 and the second gear 414 are linked to the second reciprocating screw 408, which drives the striking protrusions 412 of the striking plate 411 to vibrate at high frequency, peeling off the adhering particles and significantly reducing the dust load. The exhaust gas is then transported to the spraying mechanism 2 through the air guide pipe 106. The booster water pump 202 atomizes and sprays alkaline or oxidizing spray liquid through the spray head 204 to dissolve the acidic gases and water-soluble VOCs in the exhaust gas. At the same time, it cools and humidifies the exhaust gas, creating conditions for subsequent treatment. The sprayed exhaust gas carries liquid droplets into the filtration mechanism 3, and the waste liquid flows into the waste liquid tank 301 through the guide bucket 305. The filter frame 304 intercepts grease and fiber particles. The pre-purified exhaust gas enters the core sterilization unit 5. The UV sterilization lamp 504 irradiates the honeycomb photocatalyst 502, which stimulates hydroxyl radicals and superoxide ions to completely oxidize and decompose benzene, toluene and other difficult-to-degrade organic compounds. The electronic ballast 505 ensures stable output of ultraviolet light. Subsequently, the heat exchange unit (6) heats and dries the exhaust gas through the regenerative heat exchanger (603) to reduce the humidity of the exhaust gas. The residual VOCs are then adsorbed by the activated carbon filter (605) to make up for the limitations of a single technology. The exhaust mechanism 7 intelligently adjusts the opening and closing degree of the louvers 702 through the second servo motor 708 to balance the system air pressure and ensure that the purified gas is discharged in compliance with standards.

[0041] The above description is only a preferred embodiment of the present invention, but the scope of protection of the present invention is not limited thereto. Any equivalent substitutions or modifications made by those skilled in the art within the scope of the technology disclosed in the present invention, based on the technical solution and its improved concept, should be covered within the scope of protection of the present invention.

Claims

1. A waste gas processor for treating waste gas from textile production, comprising: An air intake mechanism (1) for drawing in exhaust gas is characterized in that the air intake mechanism (1) is fixedly connected to a spraying mechanism (2) for spraying exhaust gas, a filter mechanism (3) for collecting solids generated by spraying is fixedly connected to the air intake mechanism (1), a dust removal mechanism (4) is fixedly connected to one end of the air intake mechanism (1), a sterilization mechanism (5) is fixedly connected to one end of the air intake mechanism (1), a heat exchange mechanism (6) is fixedly connected to the sterilization mechanism (5), and an exhaust mechanism (7) is fixedly connected to the heat exchange mechanism (6).

2. The waste gas processor for treating textile production waste gas according to claim 1, characterized in that, The air intake mechanism (1) includes a liquid collection tank (101), a support frame (102) is fixedly connected to the liquid collection tank (101), an air intake box (103) is fixedly connected to the support frame (102), an air intake barrel (104) is provided at the bottom of the air intake box (103), a first blower fan (105) is fixedly connected to the inner wall of the air intake barrel (104), an air guide pipe (106) is fixedly connected to the air intake barrel (104), a drain valve (107) and an overflow valve (108) are fixedly connected to the liquid collection tank (101), and the overflow valve (108) is located above the drain valve (107) and communicates with the drain valve (107).

3. The waste gas processor for treating textile production waste gas according to claim 2, characterized in that, The spraying mechanism (2) includes a mounting plate (201) fixedly connected to the liquid collection tank (101) and a plurality of spray pipes (203) fixedly connected to the air inlet box (103). A booster water pump (202) is fixedly connected to the mounting plate (201), and a plurality of spray heads (204) are fixedly connected to the spray pipes (203). The outlet end of the booster water pump (202) is connected to the spray pipes (203) through a delivery pipe (205).

4. A waste gas processor for treating textile production waste gas according to claim 3, characterized in that, The filtration mechanism (3) includes a waste liquid tank (301) fixedly connected to the collection tank (101), a drain hopper (302) fixedly connected to the waste liquid tank (301), a snap-fit ​​tray (303) fixedly connected to the waste liquid tank (301), a filter frame (304) snapped onto the snap-fit ​​tray (303), and a guide hopper (305) provided on the filter frame (304).

5. A waste gas processor for treating textile production waste gas according to claim 4, characterized in that, The dust removal mechanism (4) includes a dust removal frame (401) fixedly connected to the air inlet end of the air inlet box (103). A filter screen (402) is fixedly connected to the inner wall of the dust removal frame (401). A first reciprocating screw (403) is rotatably connected to the inner wall of the dust removal frame (401) and to one side of the filter screen (402). A first internal thread block (404) is threadedly connected to the first reciprocating screw (403). A cleaning scraper (405) that contacts the filter screen (402) is fixedly connected to the first internal thread block (404). A first guide rod (406) is provided on both sides of the inner wall of the dust removal frame (401) and to both sides of the first reciprocating screw (403). The first internal thread block (404) is slidably connected to the first guide rod (406).

6. A waste gas processor for treating textile production waste gas according to claim 5, characterized in that, The inner wall of the dust collector frame (401) and the other side of the filter screen (402) are rotatably connected to a second reciprocating screw (408). A second internal thread block (409) is threaded onto the second reciprocating screw (408). Both sides of the inner wall of the dust collector frame (401) are provided with wave grooves (410). A slidable striking plate (411) is slidably connected onto the wave groove (410), and the striking plate (411) is slidably connected onto the second internal thread block (409). The striking plate (411) is provided with multiple striking protrusions (412).

7. A waste gas processor for treating textile production waste gas according to claim 6, characterized in that, A first gear (407) is fixedly connected to the first reciprocating screw (403), a first servo motor (413) is fixedly connected to the dust removal frame (401), and the output shaft of the first servo motor (413) is fixedly connected to the second reciprocating screw (408). A second gear (414) is fixedly connected to the second reciprocating screw (408), and the second gear (414) meshes with the first gear (407).

8. A waste gas processor for treating textile production waste gas according to claim 7, characterized in that, The sterilization mechanism (5) includes a sterilization chamber (501) fixedly connected to one end of the air duct (106). Two honeycomb photocatalysts (502) are fixedly connected inside the sterilization chamber (501). Multiple mounting seats (503) are arranged crosswise with the honeycomb photocatalysts (502) inside the sterilization chamber (501). A UV sterilization lamp (504) is fixedly connected to the mounting seat (503). Multiple electronic ballasts (505) are fixedly connected to the sterilization chamber (501).

9. A waste gas processor for treating textile production waste gas according to claim 8, characterized in that, The heat exchange mechanism (6) includes a cooling rack (601) fixedly connected to the outside of the sterilization chamber (501), a second blower (602) fixedly connected inside the cooling rack (601), a regenerative heat exchanger (603) fixedly connected inside the cooling rack (601), two heat exchangers (604) fixedly connected to the regenerative heat exchanger (603), an activated carbon filter rack (605) fixedly connected inside the cooling rack (601), and two maintenance doors (606) rotatably connected to the cooling rack (601).

10. A waste gas processor for treating textile production waste gas according to claim 9, characterized in that, The exhaust mechanism (7) includes an exhaust frame (701) fixedly connected to the cooling rack (601). Multiple adjustable louvers (702) are rotatably connected inside the exhaust frame (701). Connecting rods (703) are fixedly connected to the adjustable louvers (702), and the multiple connecting rods (703) are synchronously adjusted via an adjusting plate (704). Adjusting protrusions (705) are rotatably connected to the adjusting plate (704). A folding seat (705) is fixedly connected to the exhaust frame (701). 6) An arc-shaped groove (707) is provided on the folded seat (706), and the adjusting protrusion (705) is slidably connected in the arc-shaped groove (707). A second servo motor (708) is fixedly connected to the folded seat (706). A threaded rod (709) is fixedly connected to the output shaft of the second servo motor (708). A third internal thread plate (710) is threadedly connected to the threaded rod (709), and the adjusting protrusion (705) is slidably connected in the third internal thread plate (710).