An electromechanical composite wet dust and fog eliminator

By designing a mechanical and electrical composite wet dust removal dedustor, the reciprocating movement of the box and the sealing module control, the problem of short contact time of spray liquid when the flue gas flows quickly is solved, efficient smoke treatment and spray utilization are achieved, and the dust removal and mist removal effect is improved.

CN119869129BActive Publication Date: 2025-07-25ANHUI DEYUAN ENVIRONMENTAL TECH CO LTD
View PDF 3 Cites 0 Cited by

Patent Information

Application Number
CN202510047921.1
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-01-13
Publication Date
2025-07-25
Estimated Expiration
2045-01-13

AI Technical Summary

Technical Problem

In the prior art, when the flue gas flow rate is too fast, the contact time between the spray liquid and the flue gas is short, resulting in poor dust reduction effect.

Method used

An electromechanical composite wet dust collector is designed, using a symmetrically distributed dust collector. By adjusting the module to drive the reciprocating movement of the box, alternate air intake and spraying liquid are realized. The sealing module is used to control the opening and closing of the air intake port. The baffle cooperates with the elastic module to ensure that the smoke and dust fully contact the spray liquid in the box.

Benefits of technology

It improves the contact time between smoke and spray liquid, enhances the dust removal efficiency, reduces the waste of spray liquid, improves the processing efficiency, and realizes automatic smoke and dust cleaning.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN119869129B_ABST
    Figure CN119869129B_ABST
Patent Text Reader

Abstract

The present invention discloses an electromechanical composite wet dust and fog eliminator, which relates to the technical field of dust and fog elimination. It includes a treatment box body, and an air inlet pipe for conveying smoke and dust is arranged on one side of the treatment box body; a first dust removal module and a second dust removal module are symmetrically arranged in the treatment box body. Both the first dust removal module and the second dust removal module include a dust removal box body. The dust removal box body is a hollow structure with openings at both ends. Its end close to the air inlet pipe is the air inlet. A spraying module is arranged in the dust removal box body for spraying spraying liquid into the dust removal box body; wherein, a sealing module is arranged at the air inlet. The sealing module is used to adjust the opening or closing of the air inlet. A baffle is slidably arranged in the dust removal box body. The outer edge surface of the baffle is slidably attached to the inner edge surface of the dust removal box body. The baffle is connected to an elastic module arranged outside the dust removal box body; the present invention only needs to drive the dust removal box bodies on both sides to reciprocate through the adjustment module to achieve the effects of alternating air intake and wet dust and fog elimination.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The present invention relates to the technical field of dust removal and fog removal, and particularly relates to an electromechanical composite wet dust and fog remover. Background Art

[0002] An electromechanical composite wet dust and fog remover is a device that removes particulate matter and haze in industrial waste gas through liquid adsorption, flushing, and electrostatic action. It combines the advantages of wet dust removal and electrostatic dust removal technologies to achieve efficient purification of waste gas.

[0003] During the wet dust removal process, when the waste gas passes through the dust and fog remover, it will come into contact with the liquid (such as water, alkali solution, etc.) sprayed in the device. The particulate matter and haze in the waste gas will be adsorbed by the liquid. The liquid will be sprayed through nozzles to flush the particulate matter and haze adsorbed in the liquid, washing them into the liquid. The washed liquid will be separated from the waste gas and flow back into the device for reuse.

[0004] In the prior art, for example, the application document with the publication number CN110548359A discloses a wet dust and fog removal device and its wet dust and fog removal method, and also discloses a tower body; a chimney, arranged at the top of the tower body and communicating with the tower body; an intake flue for the flue gas to be treated to enter; a primary treatment system and a secondary treatment system; the primary treatment system includes a scrubber and a high-pressure water pump. The scrubber includes a plurality of scrubbing pipes and a plurality of high-pressure scrubbing nozzles arranged on one side of the plurality of scrubbing pipes corresponding to them. The secondary treatment system includes a baffle plate, a packing layer, and a spray layer stacked at intervals from bottom to top in the middle of the tower body;

[0005] However, in actual application, during the process of the flue gas entering the tower body for spraying, due to the limited size of the tower body, when the flue gas volume is large and the flow rate in the tower body is too fast, the contact time between the flue gas and the spraying liquid will be shorter, resulting in the dust particles and fog in the flue gas being difficult to achieve a sufficient dust removal effect and unable to meet the actual dust and fog removal requirements. Summary of the Invention

[0006] The purpose of the present invention is to provide an electromechanical composite wet dust and fog remover to solve the following technical problems:

[0007] When the flow rate of the soot is too fast, the contact time with the spraying liquid is shorter, resulting in a worse dust removal effect of the soot.

[0008] The purpose of the present invention can be achieved through the following technical solutions:

[0009] An electromechanical composite wet dust and fog remover includes a treatment box body, and an intake pipe for conveying soot is arranged on one side of the treatment box body;

[0010] The first dust removal module and the second dust removal module are symmetrically distributed in the processing box body. Both the first dust removal module and the second dust removal module include a dust removal box body, which is a hollow structure with openings at both ends. The end close to the intake pipe is the air inlet. A spraying module is arranged in the dust removal box body for spraying spraying liquid into the dust removal box body.

[0011] Wherein, a sealing module is arranged at the air inlet, and the sealing module is used to adjust the opening or closing of the air inlet. A baffle is slidably arranged in the dust removal box body, and the outer edge surface of the baffle is slidably attached to the inner edge surface of the dust removal box body. The baffle is connected to an elastic module arranged outside the dust removal box body.

[0012] An adjusting module is also arranged in the processing box body, and the adjusting module is used to drive the dust removal box bodies on both sides to reciprocate in the processing box body.

[0013] Preferably, the spraying module includes a number of rows of spraying holes opened on the top wall of the dust removal box body. A number of groups of spraying boxes corresponding to each row of spraying holes are arranged on the dust removal box body. The other end of the spraying box is connected to a liquid storage tank through a liquid delivery pipe, and a liquid delivery hole communicating with the liquid delivery pipe is opened at the bottom of the liquid storage tank.

[0014] Preferably, a partition board is fixedly arranged on one side of the top of the baffle away from the air inlet, and the partition board is slidably attached to the top wall of the dust removal box body.

[0015] Preferably, a limiting plate is fixedly arranged at the bottom of the pipe orifice on the side of the intake pipe close to the air inlet.

[0016] Preferably, liquid level sensors are respectively arranged on both sides of the liquid storage tank;

[0017] Wherein, a liquid supplement pipe is arranged on the processing box body, and the other end of the liquid supplement pipe is connected to a water pump.

[0018] Preferably, the elastic module includes a support fixedly arranged on the partition board, and the support is arranged at one end of the partition board away from the baffle;

[0019] Wherein, a support rod is fixedly arranged on the side of the bottom of the dust removal box body away from the air inlet. The other end of the support rod is fixed to a T-shaped frame. A guide rod is fixedly arranged at one end of the T-shaped frame facing the dust removal box body. The support is slidably penetrated on the guide rod, and a first spring is arranged on the guide rod.

[0020] Preferably, the sealing module includes a sealing plate slidably arranged outside the air inlet. A limiting rod is fixedly arranged on the processing box body. An L-shaped support fixedly connected to the sealing plate is slidably arranged on the limiting rod, and a second spring is also arranged on the limiting rod.

[0021] Preferably, positioning plates are fixedly arranged on the sides of the two dust removal box bodies close to the intake pipe, and the positioning plates are slidably attached to the pipe orifice on the side of the intake pipe facing the dust removal box body.

[0022] Preferably, the sealing module further includes positioning frames symmetrically and fixedly arranged on both sides of the bottom of the treatment box body.

[0023] Preferably, discharge grooves are formed on both sides of the bottom in the treatment box body and close to the positioning frames, and the bottom of the discharge grooves is communicated with a collection box fixedly arranged at the bottom of the treatment box body.

[0024] Advantages of the present invention:

[0025] (1) When the present invention treats the soot conveyed into the treatment box body through the air inlet pipe, first, the adjustment module drives one side of the dust removal box body to move towards the air inlet pipe, and then the sealing module adjusts the opening of the air inlet, so that the air inlet is attached to and communicated with the pipe orifice of the air inlet pipe. The soot in the air inlet pipe can enter the dust removal box body through the air inlet. Furthermore, under the pressure of the soot, the baffle can be pushed to move away from the air inlet, so that the soot can be stored in the air cavity formed by the enclosure of the baffle and the inner wall of the dust removal box body. When the baffle moves to the end position of the dust removal box body, the air intake stops. Then, the adjustment module drives this side of the dust removal box body to move away from the air inlet pipe. During this process, the sealing module adjusts the air inlet to be resealed. Secondly, the spraying module sprays spraying liquid into the dust removal box body. After spraying for a period of time, the sealing module adjusts the air inlet to open again, so that the gas in the dust removal box body can be discharged through the air inlet. Correspondingly, due to the decrease in pressure in the dust removal box body, the elastic module can push the baffle to slide towards the air inlet in the dust removal box body to discharge all the treated gas. During the sliding process of the baffle, the sewage after spraying can also be completely scraped off through the air inlet, without manual cleaning, and the treatment efficiency is higher;

[0026] (2) In the present invention, during the process that the adjustment module drives this side of the dust removal box body to move away from the air inlet pipe, the adjustment module can also synchronously drive the other side of the dust removal box body to move towards the air inlet pipe for communicating with the air inlet pipe and conducting gas transmission. The present invention only needs to drive the dust removal box bodies on both sides to reciprocate through the adjustment module to achieve the effects of alternating air intake and wet dust removal and fog removal. It can not only improve the dust removal and fog removal efficiency, but also make the spraying time of the soot in the dust removal box body meet the requirements of sufficient dust removal and fog removal, and the effect is better;

[0027] (3) In the present invention, since sufficient air pressure is required to push the baffle to move to the end of the dust removal box body when the baffle slides in the dust removal box body, the amount of soot stored in the dust removal box body during each spraying is more, further improving the dust removal and fog removal efficiency;

[0028] (4) In the present invention, when the baffle is located on one side of the air inlet, based on the arrangement of the partition plate, each row of spray holes can be blocked to prevent the spray liquid from discharging through the spray holes. As the baffle moves away from the air inlet, the partition plate will gradually lose the blockage of each row of spray holes, allowing the spray liquid to fall through the unblocked spray holes to perform dust and fog removal treatment on the soot. When the elastic module drives the baffle to reset, the partition plate can automatically block each row of spray holes again, effectively avoiding the waste of the spray liquid. Brief Description of the Drawings

[0029] The present invention will be further described below with reference to the accompanying drawings.

[0030] Figure 1 is a schematic structural view of an electromechanical composite wet dust and fog remover of the present invention;

[0031] Figure 2 is a schematic internal structural view of a treatment box body in an electromechanical composite wet dust and fog remover of the present invention;

[0032] Figure 3 is a schematic sectional view of a dust removal box body in an electromechanical composite wet dust and fog remover of the present invention;

[0033] Figure 4 is a schematic structural view of spray holes in an electromechanical composite wet dust and fog remover of the present invention;

[0034] Figure 5 is a schematic structural view of a partition plate in an electromechanical composite wet dust and fog remover of the present invention;

[0035] Figure 6 is a schematic structural view when an air inlet pipe is communicated with an air inlet in an electromechanical composite wet dust and fog remover of the present invention;

[0036] Figure 7 is a schematic structural view when the spray holes are spraying in an electromechanical composite wet dust and fog remover of the present invention;

[0037] Figure 8 is a schematic structural view when the air inlet pipe is admitting air in an electromechanical composite wet dust and fog remover of the present invention.

[0038] In the figure: 1, processing box body; 2, intake pipe; 3, first dust removal module; 4, second dust removal module; 5, T-shaped frame; 101, exhaust pipe; 102, liquid supplement pipe; 103, discharge chute; 104, collection box; 105, drive mechanism; 106, connecting plate; 201, limiting plate; 301, dust removal box body; 302, sealing plate; 303, L-shaped support; 304, limiting rod; 305, second spring; 306, positioning frame; 307, air inlet; 308, positioning plate; 401, liquid storage tank; 402, liquid level sensor; 403, liquid injection hole; 404, baffle; 405, partition plate; 406, liquid injection pipe; 407, support; 408, guide rod; 409, first spring; 410, spray hole; 411, spray box; 501, support rod. Detailed implementation mode

[0039] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the 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 those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.

[0040] Embodiment 1

[0041] Please refer to Figure 1 As shown, the present invention is an electromechanical composite wet dust and fog remover, including a processing box body 1, and an intake pipe 2 for transporting soot is arranged on one side of the processing box body 1; specifically, the other end of the intake pipe 2 is connected to a soot transport device for transporting the gas to be dust and fog removed into the processing box body 1 for processing.

[0042] Please refer to Figure 2 , in this embodiment, the first dust removal module 3 and the second dust removal module 4 are symmetrically distributed in the processing box body 1. Both the first dust removal module 3 and the second dust removal module 4 include a dust removal box body 301. The dust removal box body 301 is a hollow structure with openings at both ends. Its end close to the intake pipe 2 is an air inlet 307. Among them, a spray module is arranged in the dust removal box body 301 for spraying spray liquid into the dust removal box body 301;

[0043] Please refer to Figure 2 - Figure 3, a sealing module is arranged at the air inlet 307. The sealing module is used to adjust the opening or closing of the air inlet 307. A baffle 404 is slidably arranged in the dust removal box body 301. The outer edge surface of the baffle 404 is slidably attached to the inner edge surface of the dust removal box body 301. The baffle 404 is connected to an elastic module arranged outside the dust removal box body 301. Specifically, in the initial state, based on the setting of the elastic module, the baffle 404 is located on the side close to the air inlet 307. When gas is transported into the dust removal box body 301 through the air inlet 307, the baffle 404 can slide in the direction away from the air inlet 307, so that the gas can be stored in the air cavity formed by the enclosure of the baffle 404 and the box wall of the dust removal box body 301. At this time, the elastic module can contract to generate elastic force. After the gas in this air cavity is discharged, the elastic module is used to drive the baffle 404 to reset to the initial position.

[0044] An adjustment module is also arranged in the treatment box body 1. The adjustment module is used to drive the two dust removal box bodies 301 to reciprocate in the treatment box body 1.

[0045] It should be noted that when treating the soot transported by the intake pipe 2 into the treatment box body 1 in this embodiment, first, the adjustment module is used to drive one dust removal box body 301 to move towards the intake pipe 2. Then, the sealing module is used to adjust the opening of the air inlet 307, so that the air inlet 307 is attached to and communicated with the pipe orifice of the intake pipe 2. The soot in the intake pipe 2 can enter the dust removal box body 301 through the air inlet 307. Then, under the pressure of the soot, the baffle 404 can be pushed to move in the direction away from the air inlet 307, so that the soot can be stored in the air cavity formed by the enclosure of the baffle 404 and the box wall of the dust removal box body 301. When the baffle 404 moves to the end position of the dust removal box body 301, the air intake stops. Then, the adjustment module drives this side of the dust removal box body 301 to move away from the intake pipe 2. During this process, the sealing module is used to adjust the air inlet 307 to be resealed. Secondly, the spraying module sprays spraying liquid into the dust removal box body 301. The spraying liquid in this embodiment is water to perform dust removal and fog removal treatment on the soot. After spraying for a period of time, the sealing module is used to adjust the air inlet 307 to open again, so that the gas in the dust removal box body 301 can be discharged through the air inlet 307. Correspondingly, due to the decrease in the pressure inside the dust removal box body 301, the elastic module can push the baffle 404 to slide in the dust removal box body 301 towards the air inlet 307 to discharge all the treated gas. During the sliding process of the baffle 404, the sewage after spraying can also be scraped off completely through the air inlet 307, without the need for manual cleaning, and the treatment efficiency is higher.

[0046] It should also be noted that when the adjustment module drives the dust removal box body 301 on this side to move away from the intake pipe 2, the adjustment module can also synchronously drive the dust removal box body 301 on the other side to move towards the intake pipe 2 for connection with the intake pipe 2 and gas transmission. In this embodiment, only by driving the dust removal box bodies 301 on both sides to reciprocate through the adjustment module can the effects of alternate air intake and wet dust removal and fog removal be achieved, which can not only improve the dust removal and fog removal efficiency, but also make the spraying time of the soot in the dust removal box body 301 meet the requirements of sufficient dust removal and fog removal, and the effect is better;

[0047] In addition, since sufficient air pressure is required to push the baffle 404 to move to the end of the dust removal box body 301 when it slides in the dust removal box body 301, the amount of soot stored in the dust removal box body 301 during each spraying is also more, further improving the dust removal and fog removal efficiency.

[0048] Embodiment 2

[0049] On the basis of Embodiment 1, please refer to Figure 2 - Figure 3 and Figure 6 , the dust removal box bodies 301 on both sides are fixed by a connecting plate 106. Among them, a driving mechanism 105 is fixedly arranged at the bottom of the dust removal box body 301, and the driving end of the driving mechanism 105 is fixed to the connecting plate 106;

[0050] Specifically, the driving mechanism 105 in this embodiment can adopt a screw-nut transmission mechanism or a synchronous belt transmission mechanism to drive the dust removal box bodies 301 on both sides to reciprocate linearly, and this embodiment does not limit this.

[0051] Please refer to Figure 2 - Figure 4 , the spraying module includes a number of columns of spraying holes 410 opened on the top wall of the dust removal box body 301, and each column of spraying holes 410 is arranged at equal intervals and uniformly. A number of groups of spraying boxes 411 connected to each column of spraying holes 410 are correspondingly arranged on the dust removal box body 301. The other end of the spraying box 411 is connected to the liquid storage tank 401 through a liquid delivery pipe 406, and a liquid delivery hole 403 communicating with the liquid delivery pipe 406 is opened at the bottom of the liquid storage tank 401; it can be explained that in this embodiment, the spraying liquid can be first stored in the liquid storage tank 401, and the spraying liquid can pass through the liquid delivery hole 403, the liquid delivery pipe 406 and the spraying holes 410 in sequence under the action of gravity and be sprayed into the dust removal box body 301, so as to spray and treat the soot in the dust removal box body 301.

[0052] In this embodiment, when the soot does not enter the dust removal box body 301, in order to avoid the phenomenon of automatic spraying of the spraying holes 410 and waste, please refer to Figure 3 - Figure 4, on one side of the top of the baffle 404 away from the air inlet 307, a partition plate 405 is fixedly arranged. The partition plate 405 is in sliding fit with the top wall of the dust removal box body 301. It can be explained that when the baffle 404 is on one side of the air inlet 307, based on the setting of the partition plate 405, each row of spray holes 410 can be blocked to prevent the spray liquid from being discharged from the spray holes 410. As the baffle 404 moves away from the air inlet 307, the partition plate 405 will gradually lose the block of each row of spray holes 410, so that the spray liquid can fall through the unblocked spray holes 410 to perform dust and fog removal treatment on the smoke and dust. When the elastic module drives the baffle 404 to reset, the partition plate 405 can automatically block each row of spray holes 410, effectively avoiding the waste of the spray liquid.

[0053] In addition, please refer to Figure 8 , when the air inlet 307 is in a communicating state with the air inlet pipe 2, as the baffle 404 moves away from the air inlet 307, at this time, the unblocked spray holes 410 have started to spray. In order to prevent these liquids from flowing back into the air inlet pipe 2, in this embodiment, a limit plate 201 is fixedly arranged at the bottom of the pipe orifice on the side of the air inlet pipe 2 close to the air inlet 307. Specifically, by setting the limit plate 201, the bottom of the air inlet 307 can be blocked to separate the bottom of the dust removal box body 301 from the air inlet pipe 2, preventing the spray liquid from flowing back into the air inlet pipe 2.

[0054] Please refer to Figure 1 - Figure 2 , when the spray liquid in the liquid storage tank 401 is insufficient, in order to replenish it in time; in this embodiment, liquid level sensors 402 are arranged on both sides of the liquid storage tank 401. Among them, a liquid replenishing pipe 102 is arranged on the processing box body 1, and the other end of the liquid replenishing pipe 102 is connected to a water pump for replenishing the spray liquid into the liquid storage tank 401. Specifically, in this embodiment, the liquid level sensors 402 on both sides are used to monitor the amount of the spray liquid in the liquid storage tank 401 in real time. When the detected value is less than the preset threshold, the water pump can be started to transport the spray liquid into the liquid storage tank 401 through the liquid replenishing pipe 102.

[0055] Please refer to Figure 2 - Figure 3, the elastic module includes a support 407 fixedly arranged on the partition plate 405. The support 407 is arranged at one end of the partition plate 405 away from the baffle 404. Among them, a support rod 501 is fixedly arranged on one side of the bottom of the dust removal box body 301 away from the air inlet 307. The other end of the support rod 501 is fixed to the T-shaped frame 5. A guide rod 408 is fixedly arranged at the end of the T-shaped frame 5 facing the dust removal box body 301. The support 407 is slidably penetrated through the guide rod 408, and a first spring 409 is arranged on the guide rod 408; specifically, one end of the first spring 409 is fixed to the support 407, and the other end is fixed to the T-shaped frame 5; it can be explained that when the baffle 404 slides in the dust removal box body 301 in the direction away from the air inlet 307, the partition plate 405 synchronously drives the support 407 to slide on the guide rod 408, thereby compressing the first spring 409 and generating an elastic force, so as to drive each component to reset subsequently.

[0056] Please refer to Figure 2 - Figure 3 and Figure 5 - Figure 6 , the sealing module includes a sealing plate 302 slidably arranged outside the air inlet 307. A limiting rod 304 is fixedly arranged on the dust removal box body 301. An L-shaped support 303 fixed to the sealing plate 302 is slidably arranged on the limiting rod 304. A second spring 305 is also arranged on the limiting rod 304. One end of the second spring 305 is fixed to the L-shaped support 303, and the other end is fixed to the limiting rod 304; it can be explained that when the adjustment module drives the dust removal box body 301 to move towards the intake pipe 2, the sealing plate 302 first abuts against the pipe wall of the intake pipe 2 towards the dust removal box body 301. At this time, as the dust removal box body 301 continues to move, under the abutting action of the pipe wall, the sealing plate 302 stops moving, and then a relative movement is generated between the sealing plate 302 and the dust removal box body 301. At this time, the L-shaped support 303 slides on the limiting rod 304 and stretches or compresses the second spring 305 to generate an elastic force. Correspondingly, when the dust removal box body 301 moves in the direction away from the intake pipe 2, the second spring 305 can drive the sealing plate 302 to reset to seal the air inlet 307.

[0057] It should also be noted that when both sides of the dust removal box body 301 are in a separated state from the intake pipe 2, in order to prevent the dust in the intake pipe 2 from being directly discharged, in this embodiment, please refer to Figure 2, on the side of the two dust removal boxes 301 close to the intake pipe 2, positioning plates 308 are fixedly arranged. The positioning plates 308 are in sliding fit with the pipe orifice of the intake pipe 2 on the side close to the dust removal box 301. It can be explained that when the dust removal box 301 moves away from the intake pipe 2, the positioning plates 308 always remain in a state of being in contact with the pipe orifice of the intake pipe 2, thereby avoiding the leakage of soot. At the same time, when neither of the two intake ports 307 is connected to the intake pipe 2, as the soot in the intake pipe 2 increases, the pressure inside the pipe also increases. When any one of the intake ports 307 is connected to the intake pipe 2, under the action of the pressure, it is more convenient to push the baffle 404 to slide in the dust removal box 301, and the sliding speed is faster, achieving the effect of rapid gas transmission.

[0058] Please refer to Figure 2 and Figure 6 , the sealing module further includes positioning frames 306 symmetrically and fixedly arranged on both sides of the bottom of the processing box 1. It can be explained that after the spraying is completed, the adjustment module continues to drive the dust removal box 301 to move away from the intake pipe 2. The sealing plate 302 first abuts against the positioning frame 306. As the dust removal box 301 continues to move, the sealing plate 302 stops moving, and then relative movement is generated between the sealing plate 302 and the dust removal box 301. The processed gas in the dust removal box 301 can be discharged through the intake port 307, thereby achieving the effect of automatic exhaust.

[0059] In addition, discharge slots 103 are opened on both sides of the bottom of the processing box 1 and close to the positioning frames 306. The bottom of the discharge slots 103 is communicated with a collection box 104 fixedly arranged at the bottom of the processing box 1. Specifically, the collection box 104 is detachably and fixedly connected to the processing box 1. After the spraying is completed, as the baffle 404 resets towards the intake port 307, the sewage in the dust removal box 301 can be scraped out and discharged to the collection box 104 through the discharge slots 103 for collection. When a certain amount is collected, the collection box 104 can be replaced manually.

[0060] Please refer to Figure 1 , an exhaust pipe 101 communicating with the inside of the box is also correspondingly arranged on the side wall of the processing box 1 for discharging the processed gas.

[0061] A processing method of an electromechanical composite wet dust removal and demisting device includes the following steps:

[0062] Please refer to Figure 2 - Figure 4 , S1. The adjustment module drives one of the dust removal boxes 301 to move towards the intake pipe 2, and the sealing module adjusts the intake port 307 to open, so that the intake port 307 is in contact with and communicated with the pipe orifice of the intake pipe 2, and the soot in the intake pipe 2 enters the dust removal box 301 through the intake port 307;

[0063] S2. Under the pressure of the soot, the baffle 404 is pushed to move away from the air inlet 307 until the baffle 404 moves to the end position of the dust removal box body 301 and the air intake stops.

[0064] S3. The adjustment module drives the dust removal box body 301 on this side to move away from the intake pipe 2. During this process, the sealing module adjusts the air inlet 307 to be resealed.

[0065] S4. The spraying module sprays the spraying liquid into the dust removal box body 301. After spraying for a period of time, the sealing module adjusts the air inlet 307 to open, so that the gas in the dust removal box body 301 is discharged from the air inlet 307, and the elastic module can push the baffle 404 to slide in the dust removal box body 301 towards the air inlet 307.

[0066] S5. During the process that the adjustment module drives the dust removal box body 301 on this side to move away from the intake pipe 2, the adjustment module can also synchronously drive the dust removal box body 301 on the other side to move towards the intake pipe 2, so as to achieve the effects of alternating air intake and wet dust removal and de - misting.

[0067] In the description of the present invention, it should be understood that the terms "upper", "lower", "left", "right", etc. indicating the orientation or position relationship are based on the orientation or position relationship shown in the drawings. It is only for the convenience of describing the present invention and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, as well as a specific orientation structure and operation. Therefore, it cannot be understood as a limitation to the present invention. In addition, "first" and "second" are only for the purpose of description, and cannot be understood as indicating or implying relative importance or implicitly indicating the quantity of the indicated technical features. Therefore, the features defined with "first" and "second" may explicitly or implicitly include one or more of such features. In the description of the present invention, unless otherwise stated, the meaning of "a plurality" is two or more.

[0068] In the description of the present invention, it should be noted that unless otherwise clearly specified and limited, the terms "installation", "connection", "connection", etc. should be understood in a broad sense. For example, it can be a fixed connection, a detachable connection, or an integral connection; it can be a mechanical connection or an electrical connection; it can be directly connected or indirectly connected through an intermediate medium, and it can be the communication inside two elements. For those of ordinary skill in the art, the specific meanings of the above terms in the present invention can be understood according to specific situations.

[0069] The above has described a detailed description of an embodiment of the present invention, but the content described is only the preferred embodiment of the present invention and cannot be considered as used to limit the scope of implementation of the present invention. All equivalent changes and improvements made according to the scope of the application of the present invention should still fall within the scope covered by the patent of the present invention.

Claims

1. An electromechanical composite wet dust and fog eliminator, comprising a treatment box body (1), and an air inlet pipe (2) for conveying soot is arranged on one side of the treatment box body (1); It is characterized in that A first dust removal module (3) and a second dust removal module (4) are symmetrically distributed in the treatment box body (1). Both the first dust removal module (3) and the second dust removal module (4) include a dust removal box body (301). The dust removal box body (301) is a hollow structure with openings at both ends. Its end close to the air inlet pipe (2) is an air inlet (307). A spraying module is arranged in the dust removal box body (301) for spraying spraying liquid into the dust removal box body (301); Among them, a sealing module is arranged at the air inlet (307). The sealing module is used to adjust the opening or closing of the air inlet (307). A baffle (404) is slidably arranged in the dust removal box body (301). The outer edge surface of the baffle (404) is slidably attached to the inner edge surface of the dust removal box body (301). The baffle (404) is connected to an elastic module arranged outside the dust removal box body (301); An adjusting module is also arranged in the treatment box body (1). The adjusting module is used to drive the dust removal box bodies (301) on both sides to reciprocate in the treatment box body (1); The sealing module includes a sealing plate (302) slidably arranged outside the air inlet (307). A limiting rod (304) is fixedly arranged on the dust removal box body (301). An L-shaped support (303) fixed to the sealing plate (302) is slidably arranged on the limiting rod (304). A second spring (305) is also arranged on the limiting rod (304); Positioning plates (308) are fixedly arranged on one side of the dust removal box bodies (301) on both sides close to the air inlet pipe (2). The positioning plates (308) are slidably attached to the pipe orifice on one side of the air inlet pipe (2) close to the dust removal box body (301); The sealing module also includes positioning frames (306) symmetrically and fixedly arranged on both sides of the bottom of the treatment box body (1).

2. The electro-mechanical composite wet dust and fog eliminator according to claim 1, characterized in that The spraying module includes a number of rows of spraying holes (410) opened on the top wall of the dust removal box body (301). A number of groups of spraying boxes (411) corresponding to each row of spraying holes (410) are arranged on the dust removal box body (301). The other end of the spraying box (411) is connected to a liquid storage tank (401) through a liquid delivery pipe (406). A liquid delivery hole (403) communicating with the liquid delivery pipe (406) is opened at the bottom of the liquid storage tank (401).

3. The electro-mechanical composite wet dust and fog eliminator according to claim 2, characterized in that, A partition plate (405) is fixedly arranged on one side of the top of the baffle (404) away from the air inlet (307). The partition plate (405) is slidably attached to the top wall of the dust removal box body (301).

4. An electro-mechanical composite wet dust and fog remover according to claim 1, characterized in that, A limiting plate (201) is fixedly arranged at the bottom of the pipe orifice on one side of the air inlet pipe (2) close to the air inlet (307).

5. The electromechanical composite wet dust and fog eliminator according to claim 2, characterized in that, Liquid level sensors (402) are arranged on both sides of the liquid storage tank (401); Among them, a liquid supplement pipe (102) is arranged on the treatment box body (1). The other end of the liquid supplement pipe (102) is connected to a water pump.

6. The electromechanical composite wet dust and fog eliminator according to claim 1, characterized in that, The elastic module includes a support (407) fixedly arranged on the partition plate (405). The support (407) is arranged at one end of the partition plate (405) away from the baffle (404); Among them, a support rod (501) is fixedly arranged on one side of the bottom of the dust removal box body (301) far away from the air inlet (307). The other end of the support rod (501) is fixed to the T-shaped frame (5). A guide rod (408) is fixedly arranged at one end of the T-shaped frame (5) facing the dust removal box body (301). The support (407) is slidably penetrated on the guide rod (408), and a first spring (409) is arranged on the guide rod (408).

7. The electromechanical composite wet dust and fog eliminator according to claim 1, characterized in that, Discharge grooves (103) are formed on both sides of the bottom in the processing box body (1) and close to the positioning frame (306). The bottom of the discharge grooves (103) communicates with the collection box (104) fixedly arranged at the bottom of the processing box body (1).

Citation Information

Patent Citations

  • Wet dust removing and defogging device and method

    CN110548359A

  • Time-to-space conversion type dust remover

    CN103877814A

  • Energy-saving and environment-friendly dust-removing cover

    CN109926426A