Waste gas treatment system for laminating production and processing based on environmental protection engineering

Through the combined treatment of activated carbon particles and chemical agents, the problem of insufficient waste gas treatment for the coating production is solved, and the sufficient adsorption and reaction of waste gas is achieved to ensure environmental protection.

CN120285736AInactive Publication Date: 2025-07-11JIANGSU JIASHIKE NEW MATERIAL TECH CO LTD
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Patent Information

Application Number
CN202510501305.9
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-04-21
Publication Date
2025-07-11
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

During the treatment process of the existing waste gas treatment system for membrane production and processing, the waste gas cannot fully adsorb chemical reactions, resulting in the direct discharge of residual substances to the surrounding environment and causing pollution.

Method used

The combination of activated carbon particles and chemical treatment agents is adopted, and the piston slides to drive the rotating gear to rotate and perform preliminary adsorption. The high-temperature-resistant inflatable airbag drives the chemical agent to roll for secondary treatment to ensure that the exhaust gas is fully reacted.

Benefits of technology

It improves the adsorption and treatment effect of waste gas, avoids direct discharge of unreacted waste gas, and protects the environment.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention is applicable to the technical field of environmental protection engineering, and provides an environmental protection engineering-based waste gas treatment system for lamination production and processing, which comprises a treatment assembly, and the treatment assembly is fixedly connected with a support assembly; and the treatment assembly comprises a gas inlet piece, a primary treatment piece fixedly connected to the interior of the gas inlet piece, a spherical shell piece in threaded connection to the bottom of the gas inlet piece and a secondary treatment piece fixedly inserted into the spherical shell piece. The technical problems that waste gas generated in the film spraying production process cannot be fully subjected to an adsorption chemical treatment reaction, residual waste substances in the waste gas are directly discharged to the surrounding environment, and the surrounding environment is affected in the prior art are solved, the waste gas to be treated in the system can be effectively and fully subjected to an adsorption chemical reaction, and the waste gas treatment efficiency is improved. Therefore, the adsorption chemical treatment effect of the waste gas to be treated in the film spraying production process is improved.
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Description

Technical Field

[0001] The present invention relates to the technical field of environmental protection engineering, and more specifically, it relates to an exhaust gas treatment system for lamination film production and processing based on environmental protection engineering. Background Art

[0002] Lamination film production is a main step in the production of release paper. The release paper is usually made of paper or film coated with an anti-sticking substance, which can prevent the adhesion of prepregs, protect the prepregs from contamination, facilitate storage and use. The release paper is generally used together with sticky materials, especially tapes and stickers. The release paper usually includes a base paper layer and a lamination film layer. During lamination film production, oil fumes are usually generated. If the exhaust gas is directly discharged, it will pollute the surrounding air. Therefore, the exhaust gas needs to be purified.

[0003] Currently, the exhaust gas treatment systems for lamination film production and processing based on environmental protection engineering in the market generally have the following technical problems during the production and processing process:

[0004] During the existing exhaust gas treatment process for lamination film production and processing, continuously passing through the exhaust gas treatment equipment easily causes the exhaust gas in the lamination film production process to not be fully subjected to adsorption chemical treatment reactions, resulting in the direct discharge of the remaining waste substances in the exhaust gas into the surrounding environment, which has an impact on the surrounding environment. Summary of the Invention

[0005] Aiming at the deficiencies of the existing technology, the purpose of the present invention is to provide an exhaust gas treatment system for lamination film production and processing based on environmental protection engineering, which can fully perform adsorption chemical reactions on the exhaust gas to be treated inside the system, thereby improving the adsorption chemical treatment effect of the exhaust gas to be treated during the lamination film production process.

[0006] To achieve the above purpose, the present invention provides the following technical solutions:

[0007] An exhaust gas treatment system for lamination film production and processing based on environmental protection engineering includes a treatment component, and a support component is fixedly connected to the treatment component.

[0008] The treatment component includes an air inlet part, a primary treatment part fixedly connected inside the air inlet part, a spherical shell part threadedly connected to the bottom of the air inlet part, and a secondary treatment part inserted and fixed inside the spherical shell part.

[0009] The air inlet part includes a treatment cylinder, a rotating shaft cylinder is communicated with one end of the treatment cylinder, and a connector is communicated with the outer peripheral side of the treatment cylinder.

[0010] The primary processing part includes a rotating shaft rotatably fitted inside the processing cylinder. At the end of the rotating shaft inside the processing cylinder, there is a perforated processing cylinder fixed. Activated carbon particles are placed inside the perforated processing cylinder. At the end of the perforated processing cylinder, a rotating shaft is fixed. The outer circumferential surface of the rotating shaft is rotatably and sealingly fitted with an end sealing cover that fits against the processing cylinder through a bearing. A rotating gear is fixed at the end of the rotating shaft.

[0011] The support assembly includes an outer shell box fixedly connected to the air inlet part. Inside the outer shell box, a T-shaped track groove is fixed. A sliding plate is slidably fitted inside the T-shaped track groove. A rack bar meshing with the rotating gear is fixed to the side of the sliding plate. A support spring is fixed between the bottom of the sliding plate and the outer shell box. An inclined chute slidably fitted with the spherical shell part is penetrated and opened on the side of the sliding plate.

[0012] The present invention is further arranged as follows: Two baffles distributed up and down are fixed to the side of the sliding plate.

[0013] The spherical shell part includes two hemispherical shells fixedly connected to each other. On the opposite end faces of the two hemispherical shells, first connection flanges connected and fixed to each other are fixed.

[0014] One of the hemispherical shells is communicated with a piston cylinder on its outer circumferential side. The end of the piston cylinder is communicated with a guide cylinder. A piston is slidably fitted inside the piston cylinder. A sliding rod slidably fitted inside the guide cylinder is fixed to the top of the piston. A moving plate is fixed to the end of the sliding rod. An L-shaped lever slidably fitted with the inclined chute is fixed to the side of the moving plate. An extension plate is fixed to the outer circumferential side of the piston cylinder.

[0015] A guide rod slidably penetrated and fitted on the extension plate is fixed to the bottom of the moving plate. A limit nut is threadedly connected to the end of the guide rod.

[0016] The present invention is further arranged as follows: One of the hemispherical shells is communicated with a first transition pipe on its outer circumferential side. An annular groove extending downward is opened at the top of the first transition pipe. A plurality of threaded columns are fixed to the inner bottom of the annular groove. The outer circumferential side of the other hemispherical shell is communicated with a second transition pipe.

[0017] The present invention is further arranged as follows: The secondary processing part includes a fixed pipe inserted and fixed inside the first transition pipe. A second connection flange clamped and fitted inside the annular groove is fixed to the end of the fixed pipe. The second connection flange is inserted and fitted with the plurality of threaded columns.

[0018] A third connection flange is fixed to the bottom of the fixed pipe. A fourth connection flange is fixedly connected to the bottom of the third connection flange. A high-temperature resistant inflatable airbag is communicated with the inner wall of the fourth connection flange.

[0019] The present invention is further configured such that a sliding tube is connected to the end of the high-temperature resistant inflatable airbag, a perforated secondary treatment spherical shell is installed inside the high-temperature resistant inflatable airbag, a chemical treatment agent is placed inside the perforated secondary treatment spherical shell, the bottom of the sliding tube is sealed, and two symmetric air outlets are penetrated through the peripheral side of the sliding tube.

[0020] The present invention is further configured such that an air outlet pipe extending towards both ends is connected to the inner bottom of the outer shell box, the top end of the air outlet pipe is connected to a conical cover inside the outer shell box, and a third transition pipe thread-sealed with the second transition pipe is connected to the end of the conical cover.

[0021] A first timing solenoid valve is provided on the outer peripheral side of the air outlet pipe.

[0022] The present invention is further configured such that a plurality of vertically distributed intake pipes are connected to the outer peripheral side of the treatment cylinder, and second timing solenoid valves are provided on the outer peripheral sides of the plurality of intake pipes.

[0023] Installation grooves are provided on the outer peripheral sides of the plurality of intake pipes, a top sealing frame is connected to the ends of the plurality of intake pipes, and a first annular plate is fixed to the outer bottom of the top sealing frame.

[0024] A second annular plate is fixed to the outer top of the outer shell box, and the second annular plate and the first annular plate are fixedly connected by an external bolt.

[0025] The present invention is further configured such that a plurality of intake pipes are connected to the outer top of the top sealing frame, filter meshes are fixed to the inner walls of the plurality of intake pipes, fifth connection flanges are fixed to the ends of the plurality of intake pipes, the plurality of intake pipes are respectively connected to the plurality of intake pipes, and a plurality of heat dissipation grooves are penetrated through the opposite side surfaces of the top sealing frame.

[0026] A drive installation frame is fixed inside the installation groove inside the top sealing frame, transverse plates are fixed inside the plurality of intake pipes, and a bottom cover plate is sealingly connected to the bottom of the drive installation frame.

[0027] The present invention is further configured such that drive shafts are rotatably fitted through the plurality of transverse plates by bearings, suction fans are fixed to the peripheral sides of the plurality of drive shafts, a double-shaft motor is fixed to the bottom of one of the transverse plates on the side, one output shaft of the double-shaft motor is fixed to one of the drive shafts on the side, a main sprocket is fixed to the other output shaft of the double-shaft motor, and a first driven sprocket is fixed to the bottom of the drive shaft on the other side, and the first driven sprocket and the main sprocket have the same diameter.

[0028] A second driven sprocket is fixed to the bottom of the middle drive shaft. The diameter of the second driven sprocket is larger than that of the first driven sprocket and the main sprocket. A drive chain is connected between the main sprocket, the first driven sprocket, and the second driven sprocket.

[0029] The advantages of the present invention are as follows: 1. Through the sliding process of the piston inside the piston cylinder, the present invention drives the rack fixed to the side of the slide plate to move, causing the meshing rotating gear to rotate, and driving the perforated treatment cylinder to rotate circumferentially inside the treatment cylinder synchronously. In this way, the activated carbon particles located inside the perforated treatment cylinder can fully carry out an adsorption reaction with the waste gas to be treated inside the system as the perforated treatment cylinder rotates circumferentially, thereby preliminarily carrying out an adsorption treatment reaction on the waste gas to be treated during the film laminating production process, and improving the adsorption treatment effect of the waste gas to be treated during the film laminating production process.

[0030] 2. Through the inflation operation of the high-temperature resistant inflatable airbag, the perforated secondary treatment spherical shell inside the high-temperature resistant inflatable airbag tumbles and floats to a certain extent under the flow of the waste gas itself, and synchronously drives the chemical treatment agent inside the perforated secondary treatment spherical shell to tumble and shake. In this way, the waste gas entering the high-temperature resistant inflatable airbag can fully react with the chemical treatment agent inside the perforated secondary treatment spherical shell, improving the treatment effect of the waste gas and preventing the direct discharge of the waste gas that has not been fully reacted into the surrounding working environment. BRIEF DESCRIPTION OF THE DRAWINGS

[0031] Figure 1 It is a schematic structural diagram of an exhaust gas treatment system for film laminating production and processing based on environmental protection engineering according to the present invention.

[0032] Figure 2 It is a schematic structural diagram of the treatment component of the present invention.

[0033] Figure 3 It is a schematic structural diagram of the support component of the present invention.

[0034] Figure 4 It is a front view of the cross-sectional structure of the support component of the present invention.

[0035] Figure 5 It is a schematic structural diagram of the air intake component of the present invention.

[0036] Figure 6 It is a front view of the air intake component of the present invention.

[0037] Figure 7 It is a schematic cross-sectional structural diagram of the air intake component of the present invention.

[0038] Figure 8 For the present invention Figure 7 front view of the structure.

[0039] Figure 9 For the present invention Figure 7 is a top view of the cross-sectional structure.

[0040] Figure 10 is a schematic structural diagram of the primary processing part of the present invention.

[0041] Figure 11 is a front view of the primary processing part of the present invention.

[0042] Figure 12 is a schematic structural diagram of the spherical shell part of the present invention.

[0043] Figure 13 is a schematic cross-sectional structure diagram of the spherical shell part of the present invention.

[0044] Figure 14 is a schematic structural diagram of the secondary processing part of the present invention.

[0045] Figure 15 is a schematic cross-sectional structure diagram of the secondary processing part of the present invention.

[0046] In the figure: 1, processing component; 2, support component; 3, air inlet component; 4, primary processing part; 5, spherical shell part; 6, secondary processing part; 201, outer shell box; 202, T-shaped track groove; 203, sliding plate; 204, gear rack; 205, support spring; 206, inclined chute; 207, baffle; 208, air outlet pipe; 209, conical cover; 210, third transition pipe; 211, first timing solenoid valve; 212, second annular plate; 301, processing cylinder; 302, rotating shaft cylinder; 303, connector; 304, intake pipe; 305, installation groove; 306, top cover frame; 307, first annular plate; 308, intake pipeline; 309, filter screen; 310, fifth connection flange; 311, bottom cover plate; 312, heat dissipation groove; 313, drive installation frame; 314, horizontal plate; 315, drive shaft; 316, suction fan; 317, double-shaft motor; 318, main sprocket; 319, first driven sprocket; 320, second driven sprocket; 321, drive chain; 401, rotating shaft; 402, perforated processing cylinder; 403, rotating shaft; 404, end seal cover; 405, rotating gear; 501, hemispherical shell; 502, first connection flange; 503, piston cylinder; 504, guide cylinder; 505, piston; 506, sliding rod; 507, moving plate; 508, L-shaped lever; 509, extension plate; 510, guide rod; 511, first transition pipe; 512, annular groove; 513, threaded column; 514, second transition pipe; 601, fixed pipe; 602, second connection flange; 603, third connection flange; 604, fourth connection flange; 605, high-temperature inflatable airbag; 606, sliding pipe; 607, air outlet; 608, perforated secondary processing spherical shell. Detailed implementation manners

[0047] It should be noted that, without conflict, the embodiments in this application and the features in the embodiments may be combined with each other. The present invention will be described in detail below with reference to the accompanying drawings and in combination with the embodiments.

[0048] It should be pointed out that unless otherwise specified, all technical and scientific terms used in this application have the same meaning as commonly understood by those of ordinary skill in the technical field to which this application belongs.

[0049] In the present invention, unless otherwise stated, the orientations such as "upper, lower" are generally in the directions shown in the accompanying drawings, or in the vertical, perpendicular or gravitational directions; similarly, for the convenience of understanding and description, "left, right" are generally left and right as shown in the accompanying drawings; "inside, outside" refer to the inside and outside relative to the contour of each component itself, but the above orientation terms are not used to limit the present invention.

[0050] Example 1, please refer to Figures 1-15 , the present invention provides the following technical solutions:

[0051] An exhaust gas treatment system for laminating production and processing based on environmental protection engineering. Specifically, it includes a processing component 1, and a support component 2 is fixedly connected to the processing component 1; the processing component 1 includes an air inlet part 3, a primary processing part 4 fixedly connected inside the air inlet part 3, a spherical shell part 5 threadedly connected to the bottom of the air inlet part 3, and a secondary processing part 6 inserted and fixed inside the spherical shell part 5; the air inlet part 3 includes a processing cylinder 301, a rotating shaft cylinder 302 is communicated with the end of the processing cylinder 301, and a communicating device 303 is communicated with the outer peripheral side of the processing cylinder 301; the primary processing part 4 includes a rotating shaft 401 rotatably fitted inside the processing cylinder 301, a perforated processing cylinder 402 is fixed at the end of the rotating shaft 401 inside the processing cylinder 301, activated carbon particles are placed inside the perforated processing cylinder 402, a rotating shaft 403 is fixed at the end of the perforated processing cylinder 402, the peripheral side of the rotating shaft 403 is rotationally and sealingly fitted with an end sealing cover 404 that fits with the processing cylinder 301 through a bearing, and a rotating gear 405 is fixed at the end of the rotating shaft 403; the support component 2 includes an outer shell box 201 fixedly connected to the air inlet part 3, a T-shaped track groove 202 is fixed inside the outer shell box 201, a sliding plate 203 is slidably fitted inside the T-shaped track groove 202, a gear bar 204 meshing with the rotating gear 405 is fixed on the side of the sliding plate 203, a support spring 205 is fixed between the bottom of the sliding plate 203 and the outer shell box 201, and an inclined sliding groove 206 slidably fitted with the spherical shell part 5 is formed through the side of the sliding plate 203;

[0052] On the side of the skateboard 203, there are two baffles 207 distributed vertically (the function of the two baffles 207 is to prevent the gear bar 204 from disengaging from the rotating gear 405 when the gear bar 204 meshes with the rotating gear 405); the spherical shell part 5 includes two hemispherical shells 501 fixedly connected to each other, and on the opposite end faces of the two hemispherical shells 501, there are first connecting flanges 502 fixedly connected to each other; on the outer peripheral side of one hemispherical shell 501, there is a piston cylinder 503 connected in communication, the end of the piston cylinder 503 is connected in communication with a guide cylinder 504, a piston 505 is slidably fitted inside the piston cylinder 503, a sliding rod 506 slidably fitted inside the guide cylinder 504 is fixed to the top of the piston 505, a moving plate 507 is fixed to the end of the sliding rod 506, an L-shaped lever 508 slidably fitted with the inclined chute 206 is fixed to the side of the moving plate 507, and an extension plate 509 is fixed to the outer peripheral side of the piston cylinder 503; a guide rod 510 is fixed to the bottom of the moving plate 507 and is slidably fitted through the extension plate 509, and a limit nut is threadedly connected to the end of the guide rod 510; on the outer peripheral side of one hemispherical shell 501, there is a first transition pipe 511 connected in communication, a downward-extending annular groove 512 is opened at the top of the first transition pipe 511, and a number of threaded posts 513 are fixed to the inner bottom of the annular groove 512; on the outer peripheral side of the other hemispherical shell 501, there is a second transition pipe 514 connected in communication; the secondary treatment part 6 includes a fixed pipe 601 inserted and fixed inside the first transition pipe 511, a second connecting flange 602 clamped and fitted inside the annular groove 512 is fixed to the end of the fixed pipe 601, and the second connecting flange 602 is inserted and fitted with a number of threaded posts 513; a third connecting flange 603 is fixed to the bottom of the fixed pipe 601, a fourth connecting flange 604 is fixedly connected to the bottom of the third connecting flange 603, and a high-temperature resistant inflatable airbag 605 is connected in communication with the inner wall of the fourth connecting flange 604; a sliding pipe 606 is connected in communication with the end of the high-temperature resistant inflatable airbag 605, a perforated secondary treatment spherical shell 608 is installed inside the high-temperature resistant inflatable airbag 605, chemical treatment agents are placed inside the perforated secondary treatment spherical shell 608, the bottom of the sliding pipe 606 is sealed, and two symmetric air outlets 607 are opened through the peripheral side of the sliding pipe 606.

[0053] The specific application of the first embodiment is as follows: During the inflation process of the high-temperature resistant inflatable airbag 605, the expansion effect of the high-temperature resistant inflatable airbag 605 (the high-temperature resistant inflatable airbag 605 is made of silica gel material and can withstand temperatures above 300 °C) compresses the gas inside the two hemispherical shells 501 that are hermetically connected and fixed to each other, causing the piston 505 slidingly fitted inside the piston cylinder 503 to gradually move outward. This drives the sliding rod 506 to slide outward, and further drives the moving plate 507 to move away from the outer peripheral side of the two hemispherical shells 501. As a result, the L-shaped lever 508 fixed to the side of the moving plate 507 slides obliquely inside the inclined chute 206 synchronously (the sliding part of the L-shaped lever 508 inside the inclined chute 206 is long enough to ensure that when it slides obliquely, the sliding part of the L-shaped lever 508 does not disengage from the inclined chute 206 when it slides left and right perpendicular to the inclined chute 206 inside the inclined chute 206). This drives the sliding plate 203 to slide upward inside the T-shaped track groove 202, and finally drives the toothed bar 204 fixed to the side of the sliding plate 203 to move upward, causing the support spring 205 connected and fixed between the sliding plate 203 and the outer shell box 201 to be gradually stretched (the stretching of the support spring 205 facilitates its elastic reset later and drives the sliding plate 203 to move downward inside the T-shaped track groove 202, and finally causes the piston 505 to return to its initial position inside the piston cylinder 503). Then, it drives the toothed bar 204 meshing with the rotating gear 405 to perform meshing transmission synchronously, causing the perforated treatment cylinder 402 to rotate circumferentially inside the treatment cylinder 301. As a result, the activated carbon particles located inside the perforated treatment cylinder 402 (the activated carbon particles can adsorb the oil stains in the waste gas and undergo certain chemical reactions) can fully perform adsorption reactions with the waste gas to be treated inside the system as the perforated treatment cylinder 402 rotates circumferentially. Thus, the waste gas to be treated during the film laminating production process is preliminarily subjected to adsorption treatment reactions, thereby improving the adsorption treatment effect of the waste gas to be treated during the film laminating production process.

[0054] Embodiment 2. Please refer to Figures 1-15, in the second embodiment, the following improvements are made on the basis of the first embodiment. Specifically, an air outlet pipe 208 extending towards both ends is communicated and arranged at the inner bottom of the outer shell box 201. The top end of the air outlet pipe 208 is communicated with a conical cover 209 inside the outer shell box 201. The end of the conical cover 209 is communicated with a third transition pipe 210 that is threadedly sealed with the second transition pipe 514. A first timing solenoid valve 211 is arranged on the outer peripheral side of the air outlet pipe 208. A plurality of vertically distributed air inlet pipes 304 are communicated and arranged on the outer peripheral side of the treatment cylinder 301. Second timing solenoid valves are arranged on the outer peripheral sides of the plurality of air inlet pipes 304. Installation grooves 305 are arranged on the outer peripheral sides of the plurality of air inlet pipes 304. The ends of the plurality of air inlet pipes 304 are communicated and arranged with a top cover frame 306. A first annular plate 307 is fixed to the outer bottom of the top cover frame 306. A second annular plate 212 is fixed to the outer top of the outer shell box 201. The second annular plate 212 and the first annular plate 307 are fixedly connected by an external bolt. A plurality of air inlet pipes 308 are communicated and arranged on the outer top of the top cover frame 306. Filter meshes 309 are fixed to the inner walls of the plurality of air inlet pipes 308. Fifth connection flanges 310 are fixed to the ends of the plurality of air inlet pipes 308. The plurality of air inlet pipes 308 are respectively communicated with the plurality of air inlet pipes 304. A plurality of heat dissipation grooves 312 are respectively formed through the opposite side surfaces of the top cover frame 306. A driving installation frame 313 is fixed inside the installation groove 305 inside the top cover frame 306. Transverse plates 314 are fixed to the inside of the plurality of air inlet pipes 308. A bottom cover plate 311 is hermetically connected to the bottom of the driving installation frame 313. Driving shafts 315 are rotatably fitted through the plurality of transverse plates 314 by bearings. Suction fans 316 are fixed to the peripheral sides of the plurality of driving shafts 315. A double-shaft motor 317 is fixed to the bottom of a transverse plate 314 on the side. One output shaft of the double-shaft motor 317 is fixedly connected to a driving shaft 315 on the side. A main sprocket 318 is fixed to the other output shaft of the double-shaft motor 317. A first driven sprocket 319 is fixed to the bottom of the driving shaft 315 on the other side. The first driven sprocket 319 and the main sprocket 318 have the same diameter. A second driven sprocket 320 is fixed to the bottom of the driving shaft 315 in the middle. The diameter of the second driven sprocket 320 is larger than that of the first driven sprocket 319 and the main sprocket 318. A transmission chain 321 is connected between the main sprocket 318, the first driven sprocket 319, and the second driven sprocket 320 (the diameter of the second driven sprocket 320 is larger than that of the first driven sprocket 319 and the main sprocket 318, so as to adjust different rotation speeds through the transmission chain 321 and ensure the synchronous operation of multiple groups of suction fans 316).

[0055] The specific application of the second embodiment is as follows:

[0056] When performing the preliminary adsorption treatment, the second timing solenoid valves provided on the outer peripheral sides of several intake pipes 304 are opened. At this time, the waste gas in the film laminating production process continuously enters the interior of the treatment cylinder 301 through the several intake pipes 304, and the heat-resistant inflatable airbag 605 is inflated accordingly. During the inflation operation, with the gas flow of the waste gas, the perforated secondary treatment spherical shell 608 placed inside the heat-resistant inflatable airbag 605 tumbles and floats to a certain extent under the flow of the waste gas itself, so that the chemical treatment agent inside the perforated secondary treatment spherical shell 608 can tumble and shake synchronously under the action of the tumbling and floating of the perforated secondary treatment spherical shell 608, so that the waste gas entering the interior of the heat-resistant inflatable airbag 605 can fully react with the chemical treatment agent inside the perforated secondary treatment spherical shell 608, thereby improving the treatment effect of the waste gas and preventing the waste gas that has not been fully treated from being directly discharged into the surrounding working environment;

[0057] During the above process, with the inflation process of the heat-resistant inflatable airbag 605, the sliding tube 606 slidably fitted inside the second transition pipe 514 moves downward synchronously. At this time, the two air outlets 607 penetrating through the peripheral side of the sliding tube 606 gradually expose from the bottom of the third transition pipe 210 as the sliding tube 606 moves downward. During the process when the two air outlets 607 penetrating through the peripheral side of the sliding tube 606 slide out of the interior of the second transition pipe 514, the second timing solenoid valve is opened, and the first timing solenoid valve 211 is in the closed state, so as to ensure that the waste gas to be treated entering the system can be fully treated and reacted. And when the heat-resistant inflatable airbag 605 is inflated and expanded to a certain extent, the second timing solenoid valve is closed, and the first timing solenoid valve 211 is also in the closed state, to avoid the continuous entry of waste gas, resulting in the phenomenon of insufficient waste gas treatment. After the waste gas in the system has been treated and reacted for a period of time, the second timing solenoid valve is closed, and the first timing solenoid valve 211 is in the open state, so that the fully treated waste gas can be safely discharged into the peripheral environment (the settings of the first timing solenoid valve 211 and the second timing solenoid valve can ensure that the waste gas entering the interior of the several intake pipes 304 can enter the interior of the several intake pipes 304 under periodic conditions, preventing the continuous entry of waste gas and affecting the subsequent treatment and discharge processes. And the specific control process of the first timing solenoid valve 211 and the second timing solenoid valve is carried out by an external controller, and the external controller is a prior art and will not be elaborated here);

[0058] Before the system device is used, it is first sealed and connected to the fifth connecting flange 310 fixed to the end of the exhaust pipe of the laminating processing production equipment and the intake pipe 308 through a plurality of external connecting pipes, so as to facilitate the subsequent exhaust gas treatment. In the later exhaust gas treatment process, the exhaust gas entering the several intake pipes 308 is firstly filtered, and then under the suction effect of the suction fan 316, the exhaust gas entering the intake pipe 308 passes through the treatment cylinder 301, and the exhaust gas is initially adsorbed. After the initial adsorption treatment is completed, the exhaust gas after the initial treatment continues to enter the subsequent treatment structure for the later exhaust gas treatment. After the later exhaust gas treatment is completed, the exhaust gas that has been treated is discharged from the outlet end of the exhaust pipe 208;

[0059] During the air intake operation, the dual-axis motor 317 is started (the specific control process of the dual-axis motor 317 is performed by an external controller, which is a prior art and will not be elaborated on here), so that the two output shafts of the dual-axis motor 317 are driven to rotate synchronously, so that the transmission chain 321 connected between the main sprocket 318, the first slave sprocket 319, and the second slave sprocket 320 is transmitted synchronously, so that a number of drive shafts 315 respectively connected to the number of transverse plates 314 rotate synchronously, thereby driving the suction fans 316 fixed on the side surfaces of the number of drive shafts 315 to perform the air intake operation, so that the exhaust gas entering the interior of the number of intake pipes 308 passes through the preliminary filtration of the filter net 309 and enters the interior of the number of intake pipes 304 for subsequent exhaust gas treatment.

[0060] Obviously, the above-described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without creative work should fall within the scope of protection of the present invention.

[0061] It should be noted that the terms used herein are only for describing specific embodiments and are not intended to limit the exemplary embodiments according to the present application. As used herein, unless the context clearly indicates otherwise, the singular form is also intended to include the plural form. In addition, it should be understood that when the terms "comprise" and / or "include" are used in this specification, it indicates the presence of features, steps, operations, devices, components and / or combinations thereof.

[0062] It should be noted that the terms "first", "second", etc. in the specification and claims of the present application and the above-mentioned drawings are used to distinguish similar objects, and are not necessarily used to describe a specific order or sequence. It should be understood that the numbers used in this way can be interchanged where appropriate, so that the embodiments of the present application described herein can be implemented in an order other than those illustrated or described herein.

[0063] The above are only the preferred embodiments of the present invention and are not intended to limit the present invention. For those skilled in the art, the present invention may have various modifications and variations. Any modification, equivalent replacement, improvement, etc. made within the spirit and principle of the present invention shall be included within the protection scope of the present invention.

[0064] The above is only the preferred implementation manner of the present invention. The protection scope of the present invention is not limited to the above embodiments. All technical solutions falling within the idea of the present invention belong to the protection scope of the present invention. It should be noted that for those of ordinary skill in the art, several improvements and refinements made without departing from the principle of the present invention should also be regarded as within the protection scope of the present invention.

Claims

1. An exhaust gas treatment system for the production and processing of laminating film based on environmental protection engineering, including a treatment component, characterized in that: A support assembly is fixedly connected to the processing assembly; The processing assembly includes an air inlet part, a primary processing part fixedly connected inside the air inlet part, a spherical shell part threadedly connected to the bottom of the air inlet part, and a secondary processing part inserted and fixed inside the spherical shell part; The air inlet part includes a processing cylinder, a rotating shaft cylinder communicated with the end of the processing cylinder, and a connector communicated with the outer peripheral side of the processing cylinder; The primary processing part includes a rotating shaft rotatably fitted inside the processing cylinder. A perforated processing cylinder is fixed to the end of the rotating shaft inside the processing cylinder. Activated carbon particles are placed inside the perforated processing cylinder. A rotating shaft is fixed to the end of the perforated processing cylinder. The outer peripheral side of the rotating shaft is rotatably and sealingly fitted with an end sealing cover that fits against the processing cylinder through a bearing. A rotating gear is fixed to the end of the rotating shaft; The support assembly includes an outer shell box fixedly connected to the air inlet part. A T-shaped track groove is fixed inside the outer shell box. A sliding plate is slidably fitted inside the T-shaped track groove. A gear bar meshing with the rotating gear is fixed to the side of the sliding plate. A support spring is fixed between the bottom of the sliding plate and the outer shell box. An inclined chute slidably fitted with the spherical shell part is formed through the side of the sliding plate.

2. The waste gas treatment system for lamination production and processing based on environmental protection engineering according to claim 1, characterized in that: Two baffles are fixedly connected to the side of the sliding plate and are distributed up and down; The spherical shell part includes two hemispherical shells fixedly connected to each other. First connecting flanges connected and fixed to each other are fixed to the opposite end faces of the two hemispherical shells; A piston cylinder is communicated with the outer peripheral side of one of the hemispherical shells. A guide cylinder is communicated with the end of the piston cylinder. A piston is slidably fitted inside the piston cylinder. A sliding rod slidably fitted inside the guide cylinder is fixed to the top of the piston. A moving plate is fixed to the end of the sliding rod. An L-shaped lever slidably fitted with the inclined chute is fixed to the side of the moving plate. An extension plate is fixed to the outer peripheral side of the piston cylinder; A guide rod is fixedly connected to the bottom of the moving plate and is slidably fitted through the extension plate. A limit nut is threadedly connected to the end of the guide rod.

3. An exhaust gas treatment system for the production and processing of laminating films based on environmental protection engineering according to claim 2, characterized in that: A first transition pipe is communicated with the outer peripheral side of one of the hemispherical shells. An annular groove extending downward is formed at the top of the first transition pipe. A plurality of threaded posts are fixed to the inner bottom of the annular groove. A second transition pipe is communicated with the outer peripheral side of the other hemispherical shell.

4. An exhaust gas treatment system for the production and processing of laminated films based on environmental protection engineering according to claim 3, characterized in that: The secondary processing part includes a fixed pipe inserted and fixed inside the first transition pipe. A second connecting flange clamped and fitted inside the annular groove is fixed to the end of the fixed pipe. The second connecting flange is inserted and fitted with a plurality of threaded posts; A third connecting flange is fixed to the bottom of the fixed pipe. A fourth connecting flange is fixed to the bottom of the third connecting flange. A high-temperature resistant inflatable airbag is communicated with the inner wall of the fourth connecting flange.

5. An exhaust gas treatment system for the production and processing of laminated films based on environmental protection engineering according to claim 4, characterized in that: The end of the high-temperature resistant inflatable airbag is communicated with a sliding pipe. A perforated secondary processing spherical shell is installed inside the high-temperature resistant inflatable airbag. Chemical treatment agents are placed inside the perforated secondary processing spherical shell. The bottom of the sliding pipe is sealed. Two symmetric air outlets are formed through the outer peripheral side of the sliding pipe.

6. An exhaust gas treatment system for the production and processing of laminated films based on environmental protection engineering according to claim 5, characterized in that: An air outlet pipe extending towards both ends is communicated with the inner bottom of the outer shell box. The top end of the air outlet pipe is communicated with a conical cover inside the outer shell box. A third transition pipe threadedly sealed with the second transition pipe is communicated with the end of the conical cover; A first timing solenoid valve is arranged on the outer peripheral side of the air outlet pipe.

7. An exhaust gas treatment system for the production and processing of lamination films based on environmental protection engineering according to claim 6, characterized in that: A plurality of vertically distributed air inlet pipes are communicated and arranged on the outer peripheral side of the treatment cylinder, and second timing solenoid valves are arranged on the outer peripheral sides of the plurality of air inlet pipes; Mounting grooves are arranged on the outer peripheral sides of the plurality of air inlet pipes, a top cover frame is communicated and arranged at the ends of the plurality of air inlet pipes, and a first annular plate is fixed to the outer bottom of the top cover frame; A second annular plate is fixed to the outer top of the outer shell box, and the second annular plate and the first annular plate are fixedly connected by external bolts.

8. An exhaust gas treatment system for the production and processing of laminated films based on environmental protection engineering according to claim 7, characterized in that: A plurality of air inlet pipes are communicated and arranged on the outer top of the top cover frame, filter nets are fixed to the inner walls of the plurality of air inlet pipes, fifth connecting flanges are fixed to the ends of the plurality of air inlet pipes, the plurality of air inlet pipes are respectively communicated with the plurality of air inlet pipes, and a plurality of heat dissipation grooves are respectively formed in the opposite side surfaces of the top cover frame; A driving installation frame is fixed inside the top cover frame and located inside the installation groove, transverse plates are fixed inside the plurality of air inlet pipes, and a bottom cover plate is hermetically connected to the bottom of the driving installation frame.

9. An exhaust gas treatment system for the production and processing of laminated films based on environmental protection engineering according to claim 8, characterized in that: Driving shafts are rotatably and cooperatively penetrated through the plurality of transverse plates by means of bearings, suction fans are fixed to the circumferential sides of the plurality of driving shafts, a double-shaft motor is fixed to the bottom of one of the transverse plates located on the side, an output shaft of the double-shaft motor is fixedly connected to one of the driving shafts located on the side, a main sprocket is fixed to the other output shaft of the double-shaft motor, a first driven sprocket is fixed to the bottom of the driving shaft located on the other side, and the first driven sprocket and the main sprocket have the same diameter; A second driven sprocket is fixed to the bottom of the driving shaft located in the middle, the diameter of the second driven sprocket is larger than that of the first driven sprocket and the main sprocket, and a transmission chain is connected between the main sprocket, the first driven sprocket and the second driven sprocket.