A liftable microporous aerator

By designing a liftable microporous aerator, utilizing downwardly arranged aeration holes and high-pressure dredging technology, the problem of activated sludge sedimentation and blockage is solved, thereby improving sewage treatment efficiency and the service life of the aerator.

CN119977186BActive Publication Date: 2025-09-09TIANJIN HEAVY IND WATER TREATMENT CO LTD
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Patent Information

Application Number
CN202510203836.X
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-02-24
Publication Date
2025-09-09
Estimated Expiration
2045-02-24

AI Technical Summary

Technical Problem

In the prior art, when treating sewage using the activated sludge method, the aerator is easily clogged due to the precipitation of flocculent activated sludge, resulting in a decrease in aeration efficiency. In addition, the activated sludge is deposited at the bottom of the aeration tank, increasing cleaning time and manpower requirements.

Method used

A liftable microporous aerator is designed, including a lifting plate, an aeration unit, a microporous aerator and an aeration pump. The aeration holes are arranged downward to promote sewage fluctuations to prevent the activated sludge from sinking to the bottom. The aeration holes are unblocked by high pressure when blocked. The aeration range is adjusted in combination with the regulating unit and the lifting motor to ensure aeration uniformity.

Benefits of technology

It effectively prevents activated sludge from settling to the bottom, improves sewage treatment efficiency, reduces cleaning time and manpower requirements, increases the service life of aerators, and ensures uninterrupted sewage treatment.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention relates to the field of aeration technology, and specifically to a liftable microporous aerator, comprising a lifting plate, wherein the bottom of the lifting plate is fixedly connected to an air supply unit, and the end of the air supply unit away from the lifting plate is fixedly connected to multiple aeration units, and the air supply unit is used to supply air to the aeration unit; the lifting plate is fixedly connected to extension plates on both sides close to the air supply unit, and a sliding groove is provided at the bottom of the extension plate; because the microporous aerators of the present invention are arranged in a downward fan shape, when the microporous aerator aerates sewage, it also aerates water at the bottom of the aeration unit, because air flows out of the aeration holes, it pushes the surrounding sewage at the same time, causing the sewage to fluctuate, and when the sewage fluctuates, it drives the activated sludge to flow, which can prevent the activated sludge from sinking to the bottom, and at the same time, when the microporous aerator contacts the activated sludge and is blocked, the air pressure of the unblocked microporous aerator is increased, so that the activated sludge that has settled to the bottom can be cleaned more quickly.
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Description

Technical Field

[0001] The invention relates to the technical field of aeration, in particular to a liftable microporous aerator. Background Art

[0002] Aerators are usually installed at the bottom of sewage treatment tanks to increase the dissolved oxygen content in sewage by diffusing air or pure oxygen. They are often used in the activated sludge method to treat sewage. This method continuously mixes sewage and various microbial communities under conditions of artificial oxygenation and aeration to form activated sludge. The biological coagulation, adsorption and oxidation effects of the activated sludge are used to decompose and remove organic pollutants in the sewage. The sludge is then separated from the water. Most of the sludge is returned to the aeration tank, and the excess is discharged from the activated sludge system.

[0003] Considering that the activated sludge method is usually used to treat sewage in the existing technology, the existing technology often clogs the aerator due to gravity sedimentation of flocculent activated sludge before use, thereby affecting the efficiency of aeration. At the same time, since the activated sludge method will increase the activated sludge in the aeration tank, the existing technology usually discharges the excess activated sludge after sewage treatment. However, due to the long activated sludge treatment time, some activated sludge may sink to the bottom and adhere to the bottom of the aeration tank during this period, which will increase the time and manpower required to clean the aeration tank. After multiple treatments, the bottom of the aeration tank will be filled with activated sludge. If the aerator is at the bottom of the aeration tank at this time, it may also cause the aerator to be completely blocked. Summary of the Invention

[0004] The object of the present invention is to provide a liftable microporous aerator to solve the problems raised in the above background technology.

[0005] To solve the above technical problems, the present invention is achieved through the following technical solutions:

[0006] The present invention is a liftable microporous aerator, comprising a lifting plate, wherein the bottom of the lifting plate is fixedly connected to an air supply unit, and the end of the air supply unit away from the lifting plate is fixedly connected to multiple aeration units, and the air supply units are used to supply air into the aeration units; the lifting plate is fixedly connected to extension plates on both sides close to the air supply units, and the bottom of the extension plate is provided with a sliding groove, and the lifting unit is slidably connected in the sliding groove, and the lifting unit is fixedly connected to the two outermost aeration units;

[0007] The aeration unit includes two air guide blocks, with an air equalizing tube fixedly connected between the air guide blocks; a plurality of microporous aerators are fixedly connected to the bottom of the air equalizing tube; the aeration holes of the microporous aerators are arranged downward, and the side of the microporous aerator away from the air equalizing tube is made of flexible material. The microporous aerators are evenly arranged in a fan shape, and there are multiple groups of fan-shaped microporous aerators along the air equalizing tube array.

[0008] Furthermore, the gas delivery unit includes two aeration pumps, which are fixedly connected to both sides of the bottom of the lifting plate, and are fixedly connected to multiple gas delivery hoses; a gas delivery hole is opened on the side of the gas guide block away from the gas equalizing pipe, and the gas delivery hole is fixedly connected to the gas delivery hose.

[0009] Furthermore, both sides of the inner wall of the gas equalizing pipe are fixedly connected with limit rings, and the inner wall of the gas equalizing pipe is sealingly and slidably connected with a sliding block, and the sliding block is located between the limit rings.

[0010] Furthermore, the inner wall of the gas equalizing pipe is symmetrically fixedly connected with a guide rail, the guide rail is located between the limiting rings, the guide rail is sealingly and slidingly connected to the sliding block, and the guide rail is used to prevent the sliding block from flipping.

[0011] Furthermore, an adjustment unit is fixedly connected between adjacent aeration units; the adjustment unit includes a first adjustment block and a second adjustment block, and the first adjustment block is slidingly connected to the inner wall of the second adjustment block; installation grooves are provided on both sides of the air guide block, and the first adjustment block and the second adjustment block are fixedly connected in the installation grooves respectively, and the first adjustment block is located on the right side of the second adjustment block.

[0012] Furthermore, the interiors of the first adjustment block and the second adjustment block are both hollow and communicate with each other, and the first adjustment block and the second adjustment block are both communicated with the air guide block.

[0013] Furthermore, the lifting unit includes four support plates and four lifting motors, the lifting motors are slidably connected to the bottom of the extension plate, and the output ends of the lifting motors are fixedly connected to the rotating shaft; the support plates are slidably connected to the sliding grooves, and the surfaces of the support plates are provided with rotating holes, and the rotating holes are rotatably connected to the rotating shafts; the outer wall of the rotating shaft is fixedly connected to a steel cable, and the end of the steel cable away from the rotating shaft is fixedly connected to a fixing ring, and the inner wall of the fixing ring is slidably connected to a lifting block, and the lifting block is fixedly connected to the mounting groove of the outermost air guide block.

[0014] Furthermore, a plurality of buckets are evenly and fixedly connected to the bottom of the outer wall of the air equalizing pipe, and a plurality of dispersion plates are fixedly connected to the surface of the bucket on one side away from the air equalizing pipe.

[0015] The present invention has the following beneficial effects:

[0016] 1. In the present invention, the microporous aerators are arranged in a downward fan shape. When the microporous aerators aerate the sewage, they also aerate the water at the bottom of the aeration unit. As the air flows out of the aeration holes, it pushes the surrounding sewage, causing the sewage to fluctuate. When the sewage fluctuates, it drives the activated sludge to flow, which can prevent the activated sludge from sinking to the bottom. At the same time, when the microporous aerator contacts the activated sludge and becomes blocked, the air pressure in the unblocked microporous aerators increases, thereby allowing the activated sludge that has settled to the bottom to be cleared more quickly.

[0017] 2. In the present invention, when the aeration unit is sufficiently close to the bottom of the aeration tank, the flow of sewage is driven by aeration, causing the sewage to impact the bottom of the aeration tank. When the sewage impacts the bottom of the aeration tank, the activated sludge that has settled on the bottom can be refloated, and the activated sludge that adheres to the bottom can be broken up and refloated, thereby allowing the activated sludge to contact more sewage, thereby increasing the efficiency of sewage treatment and reducing the time and manpower required for cleaning the aeration tank.

[0018] 3. The present invention can enable the microporous aerator to dredge the blocked aeration holes through high pressure, thereby reducing the need to replace the microporous aerator and increasing economic benefits. At the same time, it can reduce the time required to replace the microporous aerator, so that the aeration process is not interrupted, and increase the sewage treatment efficiency. BRIEF DESCRIPTION OF THE DRAWINGS

[0019] In order to more clearly illustrate the technical solutions of the embodiments of the present invention, the following briefly introduces the drawings required for describing the embodiments. Obviously, the drawings described below are only some embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on these drawings without creative work.

[0020] Figure 1 It is a schematic diagram of the overall structure of the present invention;

[0021] Figure 2 For the present invention Figure 1 A partial enlarged view of the middle part;

[0022] Figure 3 This is a schematic diagram of the split structure of the aeration unit and the regulating unit of the present invention;

[0023] Figure 4 This is a transverse cross-sectional view of the aeration unit of the present invention;

[0024] Figure 5 It is a longitudinal cross-sectional view of the aeration unit of the present invention;

[0025] Figure 6 This is a cross-sectional view of the connection method of the air guide block of the present invention;

[0026] Figure 7This is an exploded view of the air guide block, the first adjustment block and the second adjustment block of the present invention;

[0027] Figure 8 It is a structural diagram of the bucket and the dispersion plate of the present invention.

[0028] In the accompanying drawings, the components represented by the reference numerals are as follows:

[0029] In the figure: 1. Lifting plate; 11. Aeration pump; 12. Gas hose; 2. Aeration unit; 21. Air equalizing pipe; 22. Air guide block; 221. Gas hole; 222. Mounting slot; 23. Limiting ring; 231. Guide rail; 24. Sliding block; 25. Microporous aerator; 3. Lifting unit; 31. Lifting motor; 32. Support plate; 33. Rotating shaft; 34. Steel cable; 35. Fixed ring; 36. Lifting block; 4. Adjusting unit; 41. First adjusting block; 42. Second adjusting block; 5. Bucket; 51. Dispersing plate. DETAILED DESCRIPTION

[0030] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.

[0031] See also Figures 1-8 As shown, the present invention is a liftable microporous aerator, comprising a lifting plate 1, wherein the bottom of the lifting plate 1 is fixedly connected to an air supply unit, and the end of the air supply unit away from the lifting plate 1 is fixedly connected to multiple aeration units 2, and the air supply units are used to supply air to the aeration units 2; the lifting plate 1 is fixedly connected to both sides of the air supply unit close to the air supply unit, and the bottom of the extension plate is provided with a sliding groove, and a lifting unit 3 is slidably connected to the sliding groove, and the lifting unit 3 is fixedly connected to the two outermost aeration units 2;

[0032] The aeration unit 2 includes two air guide blocks 22, and an air equalizing tube 21 is fixedly connected between the air guide blocks 22; a plurality of microporous aerators 25 are fixedly connected to the bottom of the air equalizing tube 21; the aeration holes of the microporous aerator 25 are arranged downward, and the side of the microporous aerator 25 away from the air equalizing tube 21 is made of elastic and flexible material. The microporous aerators 25 are evenly arranged in a fan shape, and there are multiple groups of fan-shaped microporous aerators 25 arrayed along the air equalizing tube 21.

[0033] In this embodiment, it is considered that the activated sludge method is generally used for treating sewage in the prior art. Before use, the prior art often causes the aerator to be clogged due to gravity sedimentation of flocculent activated sludge, thereby affecting the efficiency of aeration. At the same time, since the activated sludge method will increase the activated sludge in the aeration tank, the prior art usually discharges the excess activated sludge after sewage treatment. However, due to the long activated sludge treatment time, some activated sludge may sink to the bottom and adhere to the bottom of the aeration tank during this period, which increases the time and manpower required for cleaning the aeration tank. After multiple treatments, the bottom of the aeration tank will be filled with activated sludge. If the aerator is at the bottom of the aeration tank at this time, it may also cause complete blockage of the aerator.

[0034] When sewage needs to be aerated, the aeration unit 2 is placed into the sewage through the lifting unit 3. When the aeration unit 2 is placed in the designated position, air can be input into the air guide pipe through the air supply unit, and then the air is transferred to the air equalizing pipe 21 through the air guide pipe. When the air equalizing pipe 21 is full of air, the sewage is aerated through the microporous aerator 25.

[0035] Since the aeration holes of the microporous aerator 25 are arranged downward, when the microporous aerator 25 aerates the sewage, it also aerates the water at the bottom of the aeration unit 2. As the air flows out of the aeration holes, it pushes the surrounding sewage, causing the sewage to fluctuate. When the sewage fluctuates, it drives the activated sludge in the sewage to flow, which can prevent the activated sludge from sinking to the bottom.

[0036] When the aeration unit 2 is sufficiently close to the bottom of the aeration tank, the flow of sewage promoted by aeration can cause the sewage to impact the bottom of the aeration tank. When the sewage impacts the bottom of the aeration tank, the activated sludge that has settled on the bottom can be refloated, and the activated sludge adhering to the bottom can be broken up and refloated. This allows the activated sludge to contact more sewage, thereby increasing the efficiency of sewage treatment. In addition, because the aeration unit 2 breaks up the activated sludge adhering to the bottom of the aeration tank, the time and manpower required for cleaning the aeration tank can be reduced.

[0037] In existing bottom-up aeration equipment, due to the thickness of the aerator and the pipes themselves, and the fact that the aerator cannot completely prevent the activated sludge from sinking to the bottom, upward aeration prevents the activated sludge below the aerator and adhering to the bottom of the aeration tank from being aerated. This can also cause the activated sludge to accumulate over time, eventually covering the aerator and pipes. This sinking of the activated sludge not only reduces the efficiency of sewage treatment but also increases the manpower and time required for subsequent cleaning.

[0038] Since the microporous aerators 25 are arranged in a fan shape, a larger range of sewage can be oxygenated during sewage treatment, and a larger range of activated sludge can be pushed to prevent the activated sludge from sinking to the bottom; since the side of the microporous aerator 25 away from the air equalizing tube 21 is made of elastic and flexible material, when the microporous aerator 25 contacts the bottom of the aeration tank, the flexible material will be used for buffering to prevent deformation caused by rigid contact between the aeration unit 2 and the aeration tank; at the same time, when contacting the bottom, the microporous aerator 25 at the bottom may be blocked due to excessive deposition of activated sludge at the bottom of the aeration tank. At this time, the air pressure inside the air equalizing tube 21 will increase, and excess air will be ejected from the unblocked microporous aerator 25, which will push the activated sludge on the bottom of the aeration tank to be turned over, and the activated sludge that has settled to the bottom will float again, thereby making the sewage treatment more efficient, and the continuous aeration of the water flow at the bottom of the aeration tank can prevent the activated sludge from sinking to the bottom or adhering again.

[0039] Specifically, the air supply unit includes two aeration pumps 11, which are fixedly connected to both sides of the bottom of the lifting plate 1, and the aeration pumps 11 are fixedly connected to multiple air supply hoses 12; the air guide block 22 is provided with an air supply hole 221 on the side away from the air equalizing pipe 21, and the air supply hole 221 is fixedly connected to the air supply hose 12.

[0040] In this embodiment, considering that the aerator may be clogged during aeration, the existing equipment usually lifts the aeration unit 2 out of the water surface through the lifting unit 3 after the blockage, and manually inspects and handles the clogged aerator before re-aeration. Since some aerators are only clogged on the surface, it is only necessary to scrape off the activated sludge on the surface of the aerator. However, the manual inspection will take a certain amount of time, and during this period, the sewage in the aeration tank will not be aerated, which will reduce the treatment efficiency.

[0041] During aeration, the aeration pump 11 is started to allow air to enter the air guide block 22 through the air hose 12, and then the air is introduced into the air equalizing pipe 21 through the air guide pipe. When the air equalizing pipe 21 is full of air, the sewage is aerated through the microporous aerator 25.

[0042] When the microporous aerator 25 is clogged, the two aeration pumps 11 are started simultaneously to increase the aeration pressure. When the pressure increases, the activated sludge on the surface of the microporous aerator 25 is washed down, so that the microporous aerator 25 can be re-aerated. Since there are two aeration pumps 11, the two aeration pumps 11 can be turned on simultaneously after the activated sludge increases, thereby increasing the input air, allowing more activated sludge to come into contact with oxygen, and improving the sewage treatment efficiency.

[0043] Specifically, both sides of the inner wall of the gas equalizing pipe 21 are fixedly connected with limit rings 23 , and the inner wall of the gas equalizing pipe 21 is sealingly and slidably connected with sliding blocks 24 , and the sliding blocks 24 are located between the limit rings 23 .

[0044] In this embodiment, considering that the aerator may encounter blockage caused by activated sludge penetrating into the aeration holes, usually the air pressure is increased to try to flush out the sludge. If the sludge cannot be flushed out, the aerator needs to be replaced.

[0045] When the microporous aerator 25 is clogged, the aeration pump 11 on one side is started. Since the space in the air equalizing pipe 21 is small before the sliding block 24 moves, when air is input through the aeration pump 11, the sliding block 24 will rapidly increase the air pressure on the side close to the aeration pump 11, so that the local air pressure increases. At this time, the high-pressure air flows out of the microporous aerator 25 to dredge the clogged aeration holes, and the air input through the aeration pump 11 will cause the sliding block 24 to be pushed by the air. When the sliding block 24 moves, air is always entering the air equalizing pipe 21, so that the air pressure inside the air equalizing pipe 21 is always high, thereby making all the microporous aerators 25 able to dredge the clogged aeration holes through high pressure, thereby reducing the need to replace the microporous aerator 25, increasing economic benefits, and at the same time reducing the time required for replacing the microporous aerator 25, so that the aeration process is not interrupted, and increasing sewage treatment efficiency;

[0046] By cyclically using the aeration pumps 11 on both sides, the sliding block 24 can be made to slide back and forth. Since one side of the sliding block 24 is aerated while the other side is not aerated, the sewage will fluctuate back and forth. At this time, the activated sludge in the sewage will be more evenly distributed due to the fluctuation of the sewage, thereby making the sewage treatment efficiency higher.

[0047] Specifically, the inner wall of the gas equalizing pipe 21 is symmetrically fixedly connected with a guide rail 231, the guide rail 231 is located between the limiting rings 23, and the guide rail 231 is sealed and slidably connected to the sliding block 24. The guide rail 231 is used to prevent the sliding block 24 from flipping over.

[0048] In this embodiment, it is considered that when only one side of the sliding block 24 is pressurized, excessive pressure may cause the sliding block 24 to flip over, thereby making it impossible to treat the clogged aerator;

[0049] The guide rail 231 can be provided to enable the sliding block 24 to move according to the guide rail 231 , and can prevent the sliding block 24 from turning over due to excessive air pressure, thereby avoiding the microporous aerator 25 from being blocked and unable to be processed normally.

[0050] Specifically, an adjustment unit 4 is fixedly connected between adjacent aeration units 2; the adjustment unit 4 includes a first adjustment block 41 and a second adjustment block 42, and the first adjustment block 41 is slidably connected to the inner wall of the second adjustment block 42; installation grooves 222 are provided on both sides of the air guide block 22, and the first adjustment block 41 and the second adjustment block 42 are fixedly connected in the installation grooves 222, and the first adjustment block 41 is located on the right side of the second adjustment block 42.

[0051] In this embodiment, considering that the existing technology can only aerate sewage at a fixed location when in use, the efficiency of sewage treatment by activated sludge in the unaerated area may be low, and the activated sludge may sink to the bottom and adhere;

[0052] During aeration, the spacing between the aeration units 2 can be adjusted by setting the first adjustment block 41 and the second adjustment block 42, thereby achieving aeration of sewage at multiple locations, making the aeration range larger and increasing the efficiency of sewage treatment;

[0053] When the aeration pump 11 on one side is started to allow air to push the sliding block 24, the sliding block 24 will cause air to escape from one side of the air equalizing pipe 21 and not from the other side. This will cause the air blown out from both sides of the air equalizing pipe 21 to be uneven, and will move through the first adjustment block 41 and the second adjustment block 42 of the air guide block 22 on the same side, causing the air equalizing pipe 21 to tilt. When the sliding block 24 moves to the extreme position and the aeration pump 11 on the other side is started, the air equalizing pipe 21 will also be tilted. This will allow the air equalizing pipe 21 to swing back and forth in the sewage, which will not only expand the scope of sewage treatment, but also prevent activated sludge from sinking and adhering, thereby increasing sewage treatment efficiency while reducing the time and manpower required for subsequent cleaning.

[0054] Specifically, the first adjustment block 41 and the second adjustment block 42 are both hollow inside and communicate with each other. The first adjustment block 41 and the second adjustment block 42 are both communicated with the air guide block 22 .

[0055] In this embodiment, since the interiors of the first regulating block 41 and the second regulating block 42 are interconnected, when the pressure in some of the air equalizing pipes 21 is insufficient, the other air equalizing pipes 21 can introduce air through the first regulating block 41 and the second regulating block 42, so that the treatment efficiency of the aeration units 2 is the same, preventing the aeration efficiency from decreasing due to insufficient air pressure in some of the aeration units 2, and at the same time preventing the inability to normally break up the adhered activated sludge due to insufficient air pressure.

[0056] Specifically, the lifting unit 3 includes four support plates 32 and four lifting motors 31. The lifting motors 31 are slidably connected to the bottom of the extension plate, and the output ends of the lifting motors 31 are fixedly connected to the rotating shaft 33; the support plates 32 are slidably connected to the sliding grooves, and the surfaces of the support plates 32 are provided with rotating holes, and the rotating holes are rotatably connected to the rotating shaft 33; the outer wall of the rotating shaft 33 is fixedly connected to a steel cable 34, and the end of the steel cable 34 away from the rotating shaft 33 is fixedly connected to a fixing ring 35, and the inner wall of the fixing ring 35 is slidably connected to a lifting block 36, and the lifting block 36 is fixedly connected to the mounting groove 222 of the outermost air guide block 22.

[0057] In this embodiment, before aeration, the lifting motor 31 is started to drive the rotating shaft 33 to rotate, and the steel cable 34 on the rotating shaft 33 is dropped. The steel cable 34 pulls the fixing ring 35 to enable the lifting block 36 to drive the air guide tube to move, and the aeration unit 2 as a whole moves accordingly;

[0058] When the aeration tank is replaced, the position of the support plate 32 and the lifting motor 31 can be adjusted to adjust the distance between the aeration units 2. During the aeration process, aeration can be achieved in a wider range by adjusting the distance between the aeration units 2. At the same time, the lifting motor 31 on one side can be adjusted to make the aeration unit 2 vibrate up and down during use, thereby increasing the aeration area in the vertical direction, which can solve the problem of no aeration above the aeration unit 2.

[0059] Specifically, a plurality of buckets 5 are evenly and fixedly connected to the bottom of the outer wall of the air equalizing pipe 21 , and a plurality of dispersion plates 51 are fixedly connected to the surface of the bucket 5 on one side away from the air equalizing pipe 21 .

[0060] In this embodiment, the bucket 5 is set to remove the stubborn activated sludge at the bottom when the aeration pipe 21 is tilted or moved, and the activated sludge is broken up by the dispersion plate 51 and aeration, so that the activated sludge can be used for sewage purification again, while reducing the time and manpower for subsequent cleaning of the aeration tank.

[0061] When using,

[0062] First, before aeration, the lifting motor 31 is started to rotate the shaft 33, and the steel cable 34 on the shaft 33 is dropped. The steel cable 34 pulls the fixing ring 35 to enable the lifting block 36 to move the air guide tube, and the aeration unit 2 as a whole moves accordingly.

[0063] When the aeration tank is replaced, the position of the support plate 32 and the lifting motor 31 can be adjusted, and the spacing between the aeration units 2 can be adjusted by setting the first adjustment block 41 and the second adjustment block 42, so as to achieve aeration of sewage in multiple positions, making the aeration range larger and increasing the efficiency of sewage treatment; during the aeration process, aeration in a wider range can be achieved by adjusting the spacing between the aeration units 2.

[0064] Secondly, during aeration, by starting the aeration pump 11, air can enter the air guide block 22 through the air delivery hose 12, and then be introduced into the air equalizing pipe 21 through the air guide pipe. When the air equalizing pipe 21 is full of air, the sewage will be aerated through the microporous aerator 25.

[0065] Since the aeration holes of the microporous aerator 25 are arranged downward, when the microporous aerator 25 aerates the sewage, it also aerates the water at the bottom of the aeration unit 2. As the air flows out of the aeration holes, it pushes the surrounding sewage, causing the sewage to fluctuate. When the sewage fluctuates, it drives the activated sludge in the sewage to flow, which can prevent the activated sludge from sinking to the bottom.

[0066] When the aeration unit 2 is sufficiently close to the bottom of the aeration tank, the flow of sewage promoted by aeration can cause the sewage to impact the bottom of the aeration tank. When the sewage impacts the bottom of the aeration tank, the activated sludge that has settled on the bottom can be refloated, and the activated sludge adhering to the bottom can be broken up and refloated. This allows the activated sludge to contact more sewage, thereby increasing the efficiency of sewage treatment. In addition, because the aeration unit 2 breaks up the activated sludge adhering to the bottom of the aeration tank, the time and manpower required for cleaning the aeration tank can be reduced.

[0067] Since the microporous aerator 25 is arranged in a fan shape, a wider range of sewage can be oxygenated during sewage treatment, and a wider range of activated sludge can be pushed to prevent the activated sludge from settling to the bottom;

[0068] Then, during aeration, the aeration pump 11 is started to allow air to enter the air guide block 22 through the air delivery hose 12, and then the air is introduced into the air equalizing pipe 21 through the air guide pipe. When the air equalizing pipe 21 is full of air, the sewage is aerated through the microporous aerator 25.

[0069] When the microporous aerator 25 is clogged, the two aeration pumps 11 are started simultaneously to increase the aeration pressure. When the pressure increases, the activated sludge on the surface of the microporous aerator 25 is washed down, so that the microporous aerator 25 can be aerated again. Since there are two aeration pumps 11, when the activated sludge increases, the two aeration pumps 11 can be turned on simultaneously, thereby increasing the air input, allowing more activated sludge to come into contact with oxygen, and improving the sewage treatment efficiency.

[0070] During aeration,

[0071] By adjusting the lifting motor 31 on one side, the aeration unit 2 can be made to vibrate up and down during use, thereby increasing the aeration area in the vertical direction, and solving the problem of no aeration above the aeration unit 2.

[0072] Finally, when the microporous aerator 25 is clogged, by starting the aeration pump 11 on one side, since the space in the air equalizing pipe 21 is small before the sliding block 24 moves, when air is input through the aeration pump 11, the sliding block 24 will rapidly increase the air pressure on the side close to the aeration pump 11, so that the local air pressure increases. At this time, the high-pressure air flows out of the microporous aerator 25 to dredge the clogged aeration holes, and the air input through the aeration pump 11 will cause the sliding block 24 to be pushed by the air. When the sliding block 24 moves, air is always entering the air equalizing pipe 21, so that the air pressure inside the air equalizing pipe 21 is always high, thereby making all the microporous aerators 25 able to dredge the clogged aeration holes by high pressure, thereby reducing the need to replace the microporous aerator 25, increasing economic benefits, and at the same time reducing the time required for replacing the microporous aerator 25, so that the aeration process is not interrupted, and increasing sewage treatment efficiency;

[0073] By cyclically using the aeration pumps 11 on both sides, the sliding block 24 can be made to slide back and forth. Since aeration is performed on one side of the sliding block 24 while aeration is performed on the other side, the sewage will circulate back and forth. At this time, the activated sludge in the sewage will be more evenly distributed due to the fluctuation of the sewage, thereby improving the sewage treatment efficiency.

[0074] When the aeration pump 11 on one side is started to make the air push the sliding block 24, the sliding block 24 will make one side of the air equalizing pipe 21 release air, while the other side will not release air. Because the air blown out from both sides of the air equalizing pipe 21 is uneven, the air will move through the first adjustment block 41 and the second adjustment block 42 of the air guide block 22 on the same side, causing the air equalizing pipe 21 to tilt. When the sliding block 24 moves to the extreme position and the aeration pump 11 on the other side is started, the air equalizing pipe 21 will also be tilted. As a result, the air equalizing pipe 21 can swing back and forth in the sewage, which not only expands the scope of sewage treatment, but also prevents the activated sludge from settling and adhering to the bottom, thereby increasing the sewage treatment efficiency and reducing the time and manpower required for subsequent cleaning.

[0075] By setting the bucket 5, the stubborn activated sludge at the bottom can be shoveled away by the bucket 5 when the aeration pipe 21 is tilted or moved, and the activated sludge can be broken up by the dispersion plate 51 and aeration, so that the activated sludge can be used for sewage purification again, while reducing the time and manpower for subsequent cleaning of the aeration tank.

[0076] The preferred embodiments of the present invention disclosed above are intended only to help illustrate the present invention. These preferred embodiments do not exhaustively describe all details, nor do they limit the present invention to the specific embodiments described. Obviously, many modifications and variations are possible based on the content of this specification. These embodiments are selected and described in detail in this specification to better explain the principles and practical applications of the present invention, thereby enabling those skilled in the art to better understand and utilize the present invention. The present invention is limited only by the claims and their full scope and equivalents.

Claims

1. A liftable microporous aerator, comprising a lifting plate (1), characterized in that: The bottom of the lifting plate (1) is fixedly connected to an air supply unit, and one end of the air supply unit away from the lifting plate (1) is fixedly connected to a plurality of aeration units (2), and the air supply unit is used to supply air into the aeration units (2); both sides of the lifting plate (1) close to the air supply unit are fixedly connected to extension plates, and a sliding groove is provided at the bottom of the extension plate, and a lifting unit (3) is slidably connected in the sliding groove, and the lifting unit (3) is fixedly connected to the two outermost aeration units (2); The aeration unit (2) comprises two air guide blocks (22), an air equalizing tube (21) being fixedly connected between the air guide blocks (22); a plurality of microporous aerators (25) being fixedly connected to the bottom of the air equalizing tube (21); aeration holes of the microporous aerators (25) being arranged downward, a side of the microporous aerators (25) away from the air equalizing tube (21) being elastic and made of a flexible material, the microporous aerators (25) being evenly arranged in a fan shape, and a plurality of groups of the microporous aerators (25) arranged in a fan shape are arranged in an array along the air equalizing tube (21); Both sides of the inner wall of the gas equalizing pipe (21) are fixedly connected to limit rings (23), and the inner wall of the gas equalizing pipe (21) is sealed and slidably connected to a sliding block (24), and the sliding block (24) is located between the limit rings (23); Adjacent aeration units (2) are fixedly connected with adjustment units (4); the adjustment units (4) include a first adjustment block (41) and a second adjustment block (42); the first adjustment block (41) is slidably connected to the inner wall of the second adjustment block (42); both sides of the air guide block (22) are provided with mounting grooves (222); the mounting grooves (222) are respectively fixedly connected to the first adjustment block (41) and the second adjustment block (42), and the first adjustment block (41) is located on the right side of the second adjustment block (42).

2. The liftable microporous aerator according to claim 1, characterized in that: The air delivery unit comprises two aeration pumps (11), the aeration pumps (11) are fixedly connected to both sides of the bottom of the lifting plate (1), and the aeration pumps (11) are fixedly connected to a plurality of air delivery hoses (12); a side of the air guide block (22) away from the air equalizing pipe (21) is provided with an air delivery hole (221), and the air delivery hole (221) is fixedly connected to the air delivery hose (12).

3. The liftable microporous aerator according to claim 2, characterized in that: A guide rail (231) is symmetrically fixedly connected to the inner wall of the gas equalizing pipe (21), the guide rail (231) is located between the limiting rings (23), the guide rail (231) is sealed and slidably connected to the sliding block (24), and the guide rail (231) is used to prevent the sliding block (24) from turning over.

4. The liftable microporous aerator according to claim 3, characterized in that: The interiors of the first adjustment block (41) and the second adjustment block (42) are both hollow and communicate with each other. The first adjustment block (41) and the second adjustment block (42) are both communicated with the air guide block (22).

5. The liftable microporous aerator according to claim 1, characterized in that: The lifting unit (3) includes four support plates (32) and four lifting motors (31), the lifting motors (31) are slidably connected to the bottom of the extension plate, and the output ends of the lifting motors (31) are fixedly connected to the rotating shaft (33); the support plates (32) are slidably connected to the sliding grooves, and the surfaces of the support plates (32) are provided with rotating holes, and the rotating holes are rotatably connected to the rotating shaft (33); the outer wall of the rotating shaft (33) is fixedly connected to a steel cable (34), and the end of the steel cable (34) away from the rotating shaft (33) is fixedly connected to a fixing ring (35), and the inner wall of the fixing ring (35) is slidably connected to a lifting block (36), and the lifting block (36) is fixedly connected to the mounting groove (222) of the outermost air guide block (22).

6. The liftable microporous aerator according to claim 4, characterized in that: A plurality of buckets (5) are evenly and fixedly connected to the bottom of the outer wall of the air equalizing pipe (21), and a plurality of dispersion plates (51) are fixedly connected to the surface of the bucket (5) on one side away from the air equalizing pipe (21).

Citation Information

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