Dust and gas purification device of flame laminating machine

By using a bidirectional threaded rod to drive the push plate in the dust gas purification device of the flame composite machine to remove filter plate particles and agitate the activated carbon structure, the problems of filter plate clogging and low activated carbon efficiency are solved, and a highly efficient gas purification effect is achieved.

CN121731883APending Publication Date: 2026-03-27JIANGSU KUNTAI MACHINERY
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-11-19
Publication Date
2026-03-27

AI Technical Summary

Technical Problem

In existing flame-assisted gas treatment systems, the filter plates are easily clogged by large particles, leading to reduced filtration efficiency and limited activated carbon adsorption efficiency, thus failing to efficiently treat gases.

Method used

A dust gas purification device for a flame-combining machine was designed. It uses a bidirectional threaded rod to drive a pusher plate to remove particles from the filter plate. Combined with an activated carbon stirring structure, it improves filtration efficiency and adsorption rate. The bidirectional threaded rod is driven by a motor to move the sleeve and connecting rod, so that the pusher plate moves back and forth on the surface of the filter plate to prevent clogging. In the second processor, the activated carbon is stirred by a stirring plate to ensure that the gas and activated carbon are in full contact.

Benefits of technology

This allows for smooth airflow through the filter plate, improving filtration efficiency and completing gas purification in a short time. The activated carbon adsorption rate is also increased, making the gas treatment process more efficient.

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Abstract

The invention belongs to the technical field of gas purification treatment, and discloses a flame laminating machine dust gas purification device which comprises a first treatment device, a box body and a bidirectional threaded rod fixedly arranged on one side of the first treatment device and arranged on the inner wall of the box body through a bearing. When the device is used, an external power switch of a motor is turned on, an output shaft of the motor can rotate forwards and backwards, the output shaft of the motor is controlled to rotate back and forth, two sleeves move back and forth on the outer surface of a bidirectional threaded rod in opposite or opposite directions, and a push plate moves back and forth on the outer surface of a filter plate through a plurality of L-shaped rods; through back-and-forth pushing of the push plate, particles on the upper layer of the filter plate are removed and prevented from blocking leakage holes of the filter plate, so that airflow can pass through the filter plate more smoothly, and therefore, when the device is used, it is ensured that gas can pass through the filter plate smoothly, and the practicability of the device is improved.
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Description

Technical Field

[0001] This invention belongs to the field of gas purification and treatment technology, specifically a dust gas purification device for a flame composite machine. Background Technology

[0002] Flame laminating machines generate dust during production. To protect the atmospheric environment, companies need to remove harmful substances from the dusty gases using treatment equipment before emission, thus reducing pollution. Existing gas treatment technologies mainly include physical filtration and chemical adsorption to remove pollutants from the gases.

[0003] Currently, in physical filtration processes, the filter pores of the filter plate are easily blocked by large particles of impurities, leading to reduced filtration efficiency and increased airflow resistance through the filter plate, which in turn affects the overall treatment effect. In addition, existing activated carbon adsorption devices usually use static activated carbon materials. Although they can adsorb pollutants in the gas, the activated carbon is not effectively agitated, resulting in its surface not coming into contact with the pollutants in the gas, which limits the adsorption efficiency and makes it impossible to efficiently complete gas treatment in a short time. Summary of the Invention

[0004] To address the problems mentioned in the background section, the present invention provides a dust and gas purification device for a flame composite machine.

[0005] To achieve the above objectives, the present invention provides the following technical solution: a dust gas purification device for a flame composite machine, the device comprising: a housing, fixedly disposed on one side of the first processor, wherein a bidirectional threaded rod is provided on the inner wall of the housing via a bearing, the bidirectional threaded rod being rotatable via the bearing, and two threaded grooves with different directions of rotation on the outer surface of the bidirectional threaded rod; two sleeves, respectively threaded onto the outer surface of the housing, and each sleeve having a connecting rod movably disposed on its inner wall, the two sleeves being connected to the two threaded grooves with different directions of rotation on the outer surface of the bidirectional threaded rod, the two connecting rods being rotatable about the connection point of the two sleeves; a support plate, movably disposed on one side of the two connecting rods, and a plurality of L-shaped rods fixedly disposed on one side of the support plate, the two connecting rods being rotatable about the connection point of the support plate; and a push plate, fixedly disposed on one side of the plurality of L-shaped rods, the push plate being moved back and forth on the outer surface of the filter plate by the plurality of L-shaped rods, the back and forth pushing of the push plate removing particles on the upper layer of the filter plate, preventing them from blocking the perforations of the filter plate, and allowing airflow to pass through the filter plate more smoothly.

[0006] In the above technical solution, preferably, a motor is installed on one side of the housing, the output shaft of the motor is fixedly installed at one end of the housing, a filter plate is movably installed on the inner wall of the first processor, one side of the push plate is installed on one side of the filter plate, an air inlet pipe is installed on one side of the first processor, a slot is opened on one side of the air inlet pipe, and two connecting rods are movably installed on the inner wall of the slot. Large particulate impurities in the gas are filtered by the filter plate. When the external power switch of the motor is turned on, the output shaft of the motor can rotate in both directions, thereby driving the bidirectional threaded rod to rotate in different directions, and the gas to be processed is discharged into the interior of the first processor through the air inlet pipe.

[0007] In the above technical solution, preferably, a first delivery pipe is installed on the side of the first processor away from the air inlet pipe, a delivery pump is installed on one side of the first delivery pipe, a second delivery pipe is fixedly installed at the output end of the delivery pump, a cylinder is fixedly installed at one end of the second delivery pipe, and a second processor is threadedly embedded in the inner wall of the cylinder. By turning on the delivery pump, the gas inside the first processor is drawn in through the first delivery pipe, discharged into the inside of the second delivery pipe under the action of the delivery pump, and further discharged into the inside of the second processor through the cylinder. After the gas treatment is completed, the second processor can be removed from the inside of the cylinder by rotating it, at which time the activated carbon inside the second processor can be replaced.

[0008] In the above technical solution, preferably, the second processor has multiple exhaust holes on one side, and a first rotating rod is provided on the outer surface of the cylinder through a bearing. The processed gas is discharged through the exhaust holes on the second processor, and the first rotating rod can rotate through the bearing.

[0009] In the above technical solution, preferably, a spur gear is fixedly sleeved on the outer surface of the first rotating rod, and a rack is meshed on the outer surface of the spur gear. A transmission plate is fixedly installed on one side of the support plate, and one side of the transmission plate is fixedly installed on one side of the rack. The transmission plate is slidably installed on the inner wall of the first processor. When the gas is processed inside the first processor, the support plate moves back and forth, which further drives the transmission plate to move back and forth, so that the rack drives the spur gear to rotate back and forth. When the spur gear rotates back and forth, it will drive the first rotating rod to rotate back and forth. The transmission plate can slide on the inner wall of the first processor.

[0010] In the above technical solution, preferably, a support plate is fixedly provided on the inner wall of the cylinder, and a second rotating rod is provided on the support plate through a bearing. A first bevel gear is fixedly sleeved on the outer surface of the second rotating rod, and a second bevel gear is meshed on the outer surface of the first bevel gear. One side of the second bevel gear is fixedly provided at one end of the first rotating rod. The second bevel gear drives the first bevel gear to rotate back and forth. The support plate supports the second rotating rod, and the second rotating rod can rotate through the bearing. At this time, the first bevel gear drives the second rotating rod to rotate back and forth.

[0011] In the above technical solution, preferably, a partition is fixedly embedded in the inner wall of the cylinder, the second rotating rod is movably embedded in the center of one side of the partition, and multiple stirring plates are fixedly installed on the outer surface of the second rotating rod. Gas enters the interior of the second processor through the through holes on the partition. The interior of the second processor is filled with activated carbon, an adsorbent. When the second rotating rod rotates, it drives the multiple stirring plates to rotate back and forth. The multiple stirring plates rotating back and forth agitate the activated carbon inside the second processor, so that the activated carbon and gas come into full contact. Pollutants in the gas can be evenly distributed on the surface of the activated carbon in a short time and undergo an adsorption reaction with the activated carbon, thereby improving the gas treatment efficiency. The partition can prevent the activated carbon from being discharged into the interior of the cylinder.

[0012] In the above technical solution, preferably, guide plates are fixedly provided on both sides of the inner wall of the first processor, and sliding plates are slidably provided on the inner walls of the two guide plates, and the two sliding plates can slide inside the two guide plates respectively.

[0013] In the above technical solution, preferably, the two slide plates are fixedly disposed on one side of the filter plate, a mounting plate is fixedly disposed on one side of the filter plate, and a handle is fixedly disposed on one side of the mounting plate. By pulling the handle, the mounting plate is moved, and the filter plate is further pulled to be removed from the inside of the first processor. At this time, the impurities accumulated on the filter plate can be processed.

[0014] In the above technical solution, preferably, a plurality of fixing nails are fixedly provided on the side of the mounting plate away from the handle, and a plurality of through-hole positioning holes are provided on one side of the first processor. Any fixing nail matches any one of the through-hole positioning holes, so that the plurality of fixing nails are inserted into the interior of the plurality of through-hole positioning holes, thereby locking the position of the filter plate and preventing the position of the filter plate from shifting.

[0015] Compared with the prior art, the beneficial effects of the present invention are as follows:

[0016] 1. In the gas processing of this invention, the gas to be processed is discharged into the interior of the first processor through the air inlet pipe. Large particulate impurities in the gas are filtered through a filter plate. At this time, the external power switch of the motor is turned on, and the motor's output shaft can rotate in both directions. This, in turn, drives the bidirectional threaded rod to rotate in different directions. Since the two connecting rods can slide on the inner wall of the groove, and the outer surface of the bidirectional threaded rod has two threaded grooves with different helical directions, the two sleeves are connected to these two threaded grooves respectively. Therefore, when the bidirectional threaded rod rotates in different directions, the two sleeves move in relative or opposite directions on the bidirectional threaded rod. By controlling the back-and-forth rotation of the motor output shaft, further... The two sleeves move back and forth in opposite directions on the outer surface of the bidirectional threaded rod. The two connecting rods can rotate around the connection point of the two sleeves or the support plate. When the two sleeves move relative to each other, the two connecting rods push the support plate forward. When the two sleeves move in opposite directions, the two connecting rods pull the support plate backward. Furthermore, multiple L-shaped rods cause the push plate to move back and forth on the outer surface of the filter plate. The back and forth pushing of the push plate removes the particles on the upper layer of the filter plate, preventing them from blocking the holes of the filter plate. This allows the airflow to pass through the filter plate more smoothly, ensuring that the gas can pass through the filter plate smoothly when using the device, thus improving the practicality of the device.

[0017] 2. After the gas undergoes the first stage of treatment, the gas inside the first processor is drawn in through the first delivery pipe by turning on the delivery pump. Under the action of the delivery pump, the gas is discharged into the second delivery pipe and further discharged into the second processor through a cylinder. While the gas is being processed inside the first processor, the support plate moves back and forth, further driving the transmission plate to move back and forth. This causes the rack to drive the spur gear to rotate back and forth. As the spur gear rotates back and forth, it drives the first rotating rod to rotate back and forth, which in turn drives the first bevel gear to rotate back and forth. The support plate supports the second rotating rod, and the second rotating rod can rotate via bearings. At this time, the first bevel gear drives the second rotating rod to rotate back and forth, and the gas passes through the partition. The through-hole leads to the interior of the second processor, which is filled with activated carbon. When the second rotating rod rotates, it drives multiple stirring plates to rotate back and forth. These plates agitate the activated carbon inside the processor, ensuring thorough contact between the activated carbon and the gas. Pollutants in the gas can be evenly distributed onto the surface of the activated carbon in a short time and undergo an adsorption reaction. The treated gas is then discharged through the exhaust port on the second processor. After gas treatment is complete, the second processor can be removed from the cylinder by rotating it. The activated carbon inside the second processor can then be replaced, thereby increasing the adsorption rate of the activated carbon and making the gas treatment process more efficient.

[0018] 3. After the gas treatment is completed, the two sliding plates can slide inside the two guide plates respectively. By pulling the handle, the mounting plate is moved, and the filter plate is further pulled out from the inside of the first processor. At this time, the impurities accumulated on the filter plate can be treated. After treatment, by inserting the two sliding plates into the inside of the two guide plates and pushing the handle, the filter plate is installed inside the first processor and contacts one side of the push plate. This allows multiple fixing nails to be inserted into the inside of multiple through-hole positioning holes, locking the position of the filter plate. Thus, when using the device, the installation method of the filter plate is simple and it is convenient to treat the accumulated impurities. Attached Figure Description

[0019] Figure 1 This invention provides a frontal three-dimensional structural schematic diagram of a dust gas purification device for a flame composite machine.

[0020] Figure 2 This invention provides a side-view three-dimensional structural diagram of a dust gas purification device for a flame composite machine.

[0021] Figure 3 This invention provides a cross-sectional three-dimensional structural diagram of the first processor in a flame-combining machine dust gas purification device.

[0022] Figure 4 This invention provides a cross-sectional three-dimensional structural diagram of the housing in a dust gas purification device for a flame multifunction machine.

[0023] Figure 5 This invention presents a three-dimensional structural diagram of a filter plate pulled out of a flame-combining machine dust gas purification device.

[0024] Figure 6 This invention presents a three-dimensional structural diagram of the second processor in a flame-combining machine dust gas purification device.

[0025] Figure 7 This invention provides a cross-sectional three-dimensional structural diagram of the cylinder in a dust gas purification device for a flame composite machine.

[0026] Figure 8 This invention proposes a dust and gas purification device for a flame-assisted composite machine. Figure 2 Enlarged view of point A in the middle.

[0027] Figure 9 This invention proposes a dust and gas purification device for a flame-assisted composite machine. Figure 3 Enlarged view of section B in the middle.

[0028] Figure 10 This invention proposes a dust and gas purification device for a flame-assisted composite machine. Figure 4 Enlarged view of point C.

[0029] Legend: 1. First processor; 2. Air inlet pipe; 201. Housing; 202. Bidirectional threaded rod; 203. Sleeve; 204. Motor; 205. Connecting rod; 206. Groove; 207. Support plate; 208. L-shaped rod; 209. Push plate; 210. Filter plate; 3. First conveying pipe; 301. Conveying pump; 302. Second conveying pipe; 303. Cylinder; 304. Second processor; 305. First rotating rod; 306. Spur gear; 307. Transmission plate; 308. Rack; 309. Support plate; 310. Second rotating rod; 311. First bevel gear; 312. Second bevel gear; 313. Partition plate; 314. Stirring plate; 4. Guide plate; 401. Slide plate; 402. Mounting plate; 403. Handle; 404. Fixing pin; 405. Through hole positioning hole. Detailed Implementation

[0030] 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 some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0031] like Figures 1 to 10 As shown, a dust gas purification device for a flame composite machine includes a first processor 1; a housing 201 fixedly mounted on one side of the first processor 1, with a bidirectional threaded rod 202 mounted on the inner wall of the housing 201 via a bearing; two sleeves 203 threadedly fitted onto the outer surface of the housing 201, with connecting rods 205 movably mounted on the inner walls of both sleeves 203; and a support plate 207 movably mounted on one side of the two connecting rods 205, with multiple L-shaped rods 2 fixedly mounted on one side of the support plate 207. 08; Push plate 209, fixedly set on one side of multiple L-shaped rods 208, and a motor 204 is installed on one side of the housing 201. The output shaft of the motor 204 is fixedly set at one end of the housing 201. A filter plate 210 is movably set on the inner wall of the first processor 1. One side of the push plate 209 is set on one side of the filter plate 210. An air inlet pipe 2 is installed on one side of the first processor 1. A slot 206 is opened on one side of the air inlet pipe 2. Two connecting rods 205 are movably set on the inner wall of the slot 206.

[0032] In operation, the gas to be processed is discharged into the first processor 1 through the air inlet pipe 2. Large particulate impurities in the gas are filtered through the filter plate 210. At this time, the external power switch of the motor 204 is turned on, and the output shaft of the motor 204 can rotate in both directions. In turn, the output shaft of the motor 204 drives the bidirectional threaded rod 202 to rotate in different directions. Since the two connecting rods 205 can slide on the inner wall of the slot 206, and the outer surface of the bidirectional threaded rod 202 has two threaded grooves with different helical directions, the two sleeves 203 are connected to the two threaded grooves with different helical directions respectively. Thus, when the bidirectional threaded rod 202 rotates in different directions, the two sleeves 203 move in relative or opposite directions on the bidirectional threaded rod 202. This is controlled by the output shaft of the motor 204. The rotation further causes the two sleeves 203 to move back and forth in opposite directions on the outer surface of the bidirectional threaded rod 202. The two connecting rods 205 can rotate around the connection point of the two sleeves 203 or the support plate 207. When the two sleeves 203 move relative to each other, the two connecting rods 205 push the support plate 207 forward. When the two sleeves 203 move in opposite directions, the two connecting rods 205 pull the support plate 207 backward. Furthermore, the push plate 209 moves back and forth on the outer surface of the filter plate 210 through multiple L-shaped rods 208. The back and forth pushing of the push plate 209 removes the particles on the upper layer of the filter plate 210, preventing them from blocking the holes of the filter plate 210, so that the airflow can pass through the filter plate 210 more smoothly.

[0033] Please see Figures 1 to 10 In one embodiment, a first delivery pipe 3 is installed on the side of the first processor 1 away from the air inlet pipe 2, and a delivery pump 301 is installed on one side of the first delivery pipe 3. A second delivery pipe 302 is fixedly installed at the output end of the delivery pump 301. A cylinder 303 is fixedly installed at one end of the second delivery pipe 302. A second processor 304 is threadedly embedded in the inner wall of the cylinder 303. By turning on the switch of the delivery pump 301, the gas inside the first processor 1 is drawn in through the first delivery pipe 3 and discharged into the interior of the second delivery pipe 302 under the action of the delivery pump 301. It is further discharged into the interior of the second processor 304 through the cylinder 303. After the gas treatment is completed, the second processor 304 can be removed from the interior of the cylinder 303 by rotating it. At this time, the activated carbon inside the second processor 304 can be replaced.

[0034] Please see Figures 1 to 10 In one embodiment, a plurality of exhaust holes are provided on one side of the second processor 304, and a first rotating rod 305 is provided on the outer surface of the cylinder 303 via a bearing. The processed gas is discharged through the exhaust holes on the second processor 304, and the first rotating rod 305 can rotate via the bearing.

[0035] Please see Figures 1 to 10In one embodiment, a spur gear 306 is fixedly sleeved on the outer surface of the first rotating rod 305, and a rack 308 is meshed on the outer surface of the spur gear 306. A transmission plate 307 is fixedly installed on one side of the support plate 207, and one side of the transmission plate 307 is fixedly installed on one side of the rack 308. The transmission plate 307 is slidably installed on the inner wall of the first processor 1. When the gas is processed inside the first processor 1, the support plate 207 moves back and forth, which further drives the transmission plate 307 to move back and forth, so that the rack 308 drives the spur gear 306 to rotate back and forth. When the spur gear 306 rotates back and forth, it will drive the first rotating rod 305 to rotate back and forth. The transmission plate 307 can slide on the inner wall of the first processor 1.

[0036] Please see Figures 1 to 10 In one embodiment, a support plate 309 is fixedly provided on the inner wall of the cylinder 303. A second rotating rod 310 is provided on the support plate 309 via a bearing. A first bevel gear 311 is fixedly sleeved on the outer surface of the second rotating rod 310. A second bevel gear 312 is meshed on the outer surface of the first bevel gear 311. One side of the second bevel gear 312 is fixedly provided on one end of the first rotating rod 305. The first bevel gear 311 is driven to rotate back and forth by the second bevel gear 312. The support plate 309 provides support for the second rotating rod 310, and the second rotating rod 310 can rotate via the bearing. At this time, the first bevel gear 311 drives the second rotating rod 310 to rotate back and forth.

[0037] Please see Figures 1 to 10 In one embodiment, a partition 313 is fixedly embedded in the inner wall of the cylinder 303, and a second rotating rod 310 is movably embedded in the center of one side of the partition 313. A plurality of stirring plates 314 are fixedly disposed on the outer surface of the second rotating rod 310. Gas enters the interior of the second processor 304 through the through hole on the partition 313. The interior of the second processor 304 is filled with activated carbon adsorbent. When the second rotating rod 310 rotates, it drives the plurality of stirring plates 314 to rotate back and forth. The plurality of stirring plates 314 rotating back and forth agitate the activated carbon material inside the second processor 304, so that the activated carbon and the gas come into full contact. The pollutants in the gas can be evenly distributed on the surface of the activated carbon in a short time and undergo an adsorption reaction with the activated carbon, thereby improving the gas treatment efficiency. The partition 313 can prevent the activated carbon from being discharged into the interior of the cylinder 303.

[0038] Please see Figures 1 to 10 In one embodiment, guide plates 4 are fixedly provided on both sides of the inner wall of the first processor 1, and sliding plates 401 are slidably provided on the inner walls of the two guide plates 4, and the two sliding plates 401 can slide inside the two guide plates 4 respectively.

[0039] Please see Figures 1 to 10In one embodiment, two slide plates 401 are fixedly disposed on one side of the filter plate 210. A mounting plate 402 is fixedly disposed on one side of the filter plate 210. A handle 403 is fixedly disposed on one side of the mounting plate 402. By pulling the handle 403, the mounting plate 402 is moved, and the filter plate 210 is further pulled to remove it from the inside of the first processor 1. At this time, the impurities accumulated on the filter plate 210 can be processed.

[0040] Please see Figures 1 to 10 In one embodiment, a plurality of fixing pins 404 are fixedly provided on the side of the mounting plate 402 away from the handle 403, and a plurality of through-hole positioning holes 405 are provided on one side of the first processor 1. Any fixing pin 404 matches any through-hole positioning hole 405, so that the plurality of fixing pins 404 are inserted into the interior of the plurality of through-hole positioning holes 405, thereby locking the position of the filter plate 210 and preventing the position of the filter plate 210 from shifting.

[0041] The working principle and usage process of this invention are as follows: During gas processing, the gas to be processed is discharged into the first processor 1 through the inlet pipe 2. Large particulate impurities in the gas are filtered by the filter plate 210. At this time, the external power switch of the motor 204 is turned on, allowing the output shaft of the motor 204 to rotate in both directions. This, in turn, drives the bidirectional threaded rod 202 to rotate in different directions. Since the two connecting rods 205 can slide on the inner wall of the slot 206, and the outer surface of the bidirectional threaded rod 202 has two threaded grooves with different helical directions, the two sleeves 203 are connected to these two threaded grooves respectively. Therefore, when the bidirectional threaded rod 202 rotates in different directions, the two sleeves 203 move relative to or in opposite directions within the bidirectional threaded rod 202. By controlling the back-and-forth rotation of the output shaft of the motor 204, further... Two sleeves 203 move back and forth in opposite directions on the outer surface of the bidirectional threaded rod 202. Two connecting rods 205 can rotate around the connection point of the two sleeves 203 or the support plate 207. When the two sleeves 203 move relative to each other, the two connecting rods 205 push the support plate 207 forward. When the two sleeves 203 move in opposite directions, the two connecting rods 205 pull the support plate 207 backward. Furthermore, multiple L-shaped rods 208 cause the push plate 209 to move back and forth on the outer surface of the filter plate 210. The back and forth pushing of the push plate 209 removes the particles on the upper layer of the filter plate 210, preventing them from blocking the holes of the filter plate 210. This allows the airflow to pass through the filter plate 210 more smoothly, thus ensuring that the gas can pass through the filter plate 210 smoothly when using the device and improving the practicality of the device.

[0042] After the gas undergoes the first stage of processing, the gas inside the first processor 1 is drawn in through the first delivery pipe 3 by turning on the delivery pump 301. Under the action of the delivery pump 301, the gas is discharged into the second delivery pipe 302, and further discharged into the second processor 304 through the cylinder 303. While the gas is being processed inside the first processor 1, the support plate 207 moves back and forth, further driving the transmission plate 307 to move back and forth. This causes the rack 308 to drive the spur gear 306 to rotate back and forth. As the spur gear 306 rotates back and forth, it drives the first rotating rod 305 to rotate back and forth, which in turn drives the first bevel gear 311 to rotate back and forth via the second bevel gear 312. The support plate 309 supports the second rotating rod 310, and the second rotating rod 310 can rotate via bearings. At this time, the first bevel gear 311 drives the second rotating rod 310 to rotate... As the device rotates, the gas enters the second processor 304 through the through-hole on the partition 313. The second processor 304 is filled with activated carbon, an adsorbent. When the second rotating rod 310 rotates, it drives multiple stirring plates 314 to rotate back and forth. The multiple stirring plates 314 agitate the activated carbon inside the second processor 304, so that the activated carbon and the gas come into full contact. The pollutants in the gas can be evenly distributed on the surface of the activated carbon in a short time and undergo an adsorption reaction with the activated carbon. The treated gas is discharged through the exhaust port on the second processor 304. After the gas treatment is completed, the second processor 304 can be removed from the inside of the cylinder 303 by rotating it. At this time, the activated carbon inside the second processor 304 can be replaced, thereby improving the adsorption rate of the activated carbon when using the device and making the gas treatment process more efficient.

[0043] After the gas treatment is completed, the two slide plates 401 can slide inside the two guide plates 4 respectively. By pulling the handle 403, the mounting plate 402 is moved, further pulling the filter plate 210 and removing it from the inside of the first processor 1. At this time, the impurities accumulated on the filter plate 210 can be treated. After treatment, by inserting the two slide plates 401 into the inside of the two guide plates 4 and pushing the handle 403, the filter plate 210 is installed inside the first processor 1 and contacts one side of the push plate 209. This causes multiple fixing nails 404 to be inserted into the inside of multiple through-hole positioning holes 405, locking the filter plate 210 in place. Thus, when using the device, the installation method of the filter plate 210 is simple and it is easy to treat the accumulated impurities.

[0044] All standard parts used in this invention can be purchased from the market, and irregular parts can be customized according to the description and drawings. The specific connection methods of each part adopt conventional methods such as bolts, rivets, and welding that are mature in the prior art. The machinery, parts and equipment adopt conventional models in the prior art, and the circuit connection adopts conventional connection methods in the prior art. The contents not described in detail in this specification are existing technologies known to those skilled in the art.

[0045] It should be noted that, in this document, relational terms such as "first" and "second" are used only to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such process, method, article, or apparatus.

[0046] Although embodiments of the invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the invention, the scope of which is defined by the appended claims and their equivalents.

Claims

1. A dust gas purification device for a flame-assisted composite machine, characterized in that, The device includes a first processor (1): a housing (201) fixedly disposed on one side of the first processor (1), and a bidirectional threaded rod (202) provided on the inner wall of the housing (201) via a bearing; two sleeves (203) respectively threadedly sleeved on the outer surface of the housing (201), and a connecting rod (205) movably disposed on the inner wall of each of the two sleeves (203); a support plate (207) movably disposed on one side of the two connecting rods (205), and a plurality of L-shaped rods (208) fixedly disposed on one side of the support plate (207); and a push plate (209) fixedly disposed on one side of the plurality of L-shaped rods (208).

2. The dust gas purification device for a flame composite machine according to claim 1, characterized in that: A motor (204) is installed on one side of the housing (201), and the output shaft of the motor (204) is fixedly set at one end of the housing (201). A filter plate (210) is movably arranged on the inner wall of the first processor (1). One side of the push plate (209) is set on one side of the filter plate (210). An air inlet pipe (2) is installed on one side of the first processor (1), and a slot (206) is opened on one side of the air inlet pipe (2). Two connecting rods (205) are movably arranged on the inner wall of the slot (206).

3. The dust gas purification device for a flame composite machine according to claim 2, characterized in that: The first processor (1) is equipped with a first delivery pipe (3) on the side away from the air intake pipe (2). A delivery pump (301) is installed on one side of the first delivery pipe (3). A second delivery pipe (302) is fixedly provided at the output end of the delivery pump (301). A cylinder (303) is fixedly provided at one end of the second delivery pipe (302). A second processor (304) is threadedly embedded in the inner wall of the cylinder (303).

4. The dust gas purification device for a flame composite machine according to claim 3, characterized in that: The second processor (304) has multiple exhaust holes on one side, and a first rotating rod (305) is provided on the outer surface of the cylinder (303) via a bearing.

5. The dust gas purification device for a flame composite machine according to claim 4, characterized in that: A spur gear (306) is fixedly sleeved on the outer surface of the first rotating rod (305), and a rack (308) is meshed on the outer surface of the spur gear (306). A transmission plate (307) is fixedly installed on one side of the support plate (207), and one side of the transmission plate (307) is fixedly installed on one side of the rack (308). The transmission plate (307) is slidably installed on the inner wall of the first processor (1).

6. The dust gas purification device for a flame composite machine according to claim 5, characterized in that: A support plate (309) is fixedly installed on the inner wall of the cylinder (303). A second rotating rod (310) is installed on the support plate (309) via a bearing. A first bevel gear (311) is fixedly sleeved on the outer surface of the second rotating rod (310). A second bevel gear (312) is meshed on the outer surface of the first bevel gear (311). One side of the second bevel gear (312) is fixedly installed at one end of the first rotating rod (305).

7. The dust gas purification device for a flame composite machine according to claim 6, characterized in that: A partition plate (313) is fixedly embedded in the inner wall of the cylinder (303), and the second rotating rod (310) is movably embedded in the center of one side of the partition plate (313). Multiple stirring plates (314) are fixedly provided on the outer surface of the second rotating rod (310).

8. The dust gas purification device for a flame composite machine according to claim 2, characterized in that: Guide plates (4) are fixedly provided on both sides of the inner wall of the first processor (1), and sliding plates (401) are slidably provided on the inner walls of the two guide plates (4).

9. The dust gas purification device for a flame composite machine according to claim 8, characterized in that: Two slide plates (401) are fixedly disposed on one side of the filter plate (210), and a mounting plate (402) is fixedly disposed on one side of the filter plate (210), and a handle (403) is fixedly disposed on one side of the mounting plate (402).

10. The dust gas purification device for a flame composite machine according to claim 9, characterized in that: The mounting plate (402) is fixedly provided with a plurality of fixing nails (404) on the side away from the handle (403), and the first processor (1) is provided with a plurality of through-hole positioning holes (405) on one side, and any fixing nail (404) matches any through-hole positioning hole (405).