A reservoir cyanobacteria treatment device for water pollution control

The reservoir cyanobacteria treatment equipment, which combines a floating platform and a nanobubble generator, has solved the problems of water layer structure damage and device surface impurity coverage, thus achieving water quality improvement and ecological restoration.

CN120698622BActive Publication Date: 2026-02-06TAICANG BAINUO NANO TECH CO LTD
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Patent Information

Application Number
CN202511133336.X
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-08-13
Publication Date
2026-02-06
Estimated Expiration
2045-08-13

AI Technical Summary

Technical Problem

Existing cyanobacteria treatment equipment damages the water layer structure during the extraction process, making it difficult to improve the oxygen-deficient state at the bottom layer. Furthermore, the surface of the equipment is easily covered by impurities, affecting its effectiveness.

Method used

A floating platform and nanobubble generator are used, combined with an oxygenation device and a winch. The nanobubbles are used to treat underwater pollutants, and the transmission components, cleaning brushes and auxiliary cleaning components are used to clean the surface impurities of the device.

Benefits of technology

It effectively improved the oxygen conditions at the bottom of the water body, reduced the adhesion of impurities on the surface of the device, improved the cleaning efficiency and ease of use of the equipment, and promoted water quality improvement and ecological restoration.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application discloses a reservoir cyanobacteria treatment equipment for water pollution treatment, and relates to the technical field of water pollution treatment. The reservoir cyanobacteria treatment equipment for water pollution treatment comprises a floating platform, the top of the floating platform is respectively equipped with an oxygen generator and a winch main body, the top of a nano-bubble generator is connected with the winch main body through a cable, and the top of the nano-bubble generator is connected with the oxygen generator through an air pipe. The reservoir cyanobacteria treatment equipment for water pollution treatment starts the nano-bubble generator, so that the nano-bubbles are quickly discharged through a discharge port, and the cleaning brush rod one reciprocally moves in the vertical direction by cooperating with a fixing table, an impeller, a transmission rod one, a bevel gear one, a reciprocating screw rod, a bevel gear two and a sliding seat, so that the outer wall of the nano-bubble generator is cleaned to a certain extent, the possibility of a large amount of impurities adhering to the surface of the equipment is reduced, and the device is more easy to use.
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Description

TECHNICAL FIELD

[0001] The present application relates to the technical field of water pollution treatment, in particular to a reservoir cyanobacteria treatment equipment for water pollution treatment. BACKGROUND

[0002] Reservoir cyanobacteria is a common algae in water bodies, especially in warm seasons, their reproduction rate is faster, and they may form algal blooms. The overgrowth of these cyanobacteria not only affects water quality, but also produces toxins, posing a threat to aquatic life and human health. In order to effectively treat the cyanobacteria problem in the reservoir, a series of cyanobacteria treatment equipment for water pollution treatment has been developed. The development of cyanobacteria treatment equipment is constantly developing in order to achieve efficient, environmentally friendly and sustainable treatment effect. In terms of technical background, in addition to traditional physical and chemical methods, ecological and intelligent equipment have gradually become a trend. Future equipment will not only focus on treatment effect, but also pay more attention to environmental friendliness and energy efficiency improvement.

[0003] A reservoir integrated cyanobacteria treatment equipment is disclosed in Chinese patent CN219194713U granted and announced on June 16, 2023, which comprises a treatment box, a first water pump connected to the left side of the treatment box, a three-way joint connected to the water inlet pipe of the first water pump, and a vertical cylinder connected to the other side of the three-way joint; a lower filter screen is fixedly connected to the lower end of the vertical cylinder, a conical head is fixedly connected to the upper end of the vertical cylinder, a connecting block is fixedly connected to the upper end of the conical head, a floating plate is fixedly connected to the upper end of the connecting block, and an upper filter screen is fixedly connected to the middle of the floating plate; a group of electromagnetic field devices are arranged on the inner walls of the front and rear of the treatment box, and a filter screen and a baffle are fixedly connected to the inner wall of the treatment box.

[0004] In the above application file, the water pump is used to extract cyanobacteria and other substances, which are then filtered and treated. However, the full water layer is forced to mix during extraction, destroying the stratification structure. When using the shallow aeration method for treatment, it is difficult to improve the anoxic state of the bottom layer, and there is a possibility that the surface of the treatment equipment placed in the water will be covered with a large amount of impurities during the use of the device, thereby affecting the normal use of the device. SUMMARY

[0005] In view of the deficiencies of the prior art, the present application provides a reservoir cyanobacteria treatment equipment for water pollution treatment, which solves the problems raised in the background art. To achieve the above purpose, the present application is realized by the following technical scheme: a reservoir cyanobacteria treatment equipment for water pollution treatment, comprising:

[0006] The floating platform is provided with an oxygen generating device and a winch main body on the top respectively;

[0007] The top of the nanobubble generator is connected with the winch body through the setting cable, the top of the nanobubble generator is connected with the oxygen generator through the setting air pipe, and the side of the nanobubble generator is provided with the exhaust port.

[0008] The side of the nanobubble generator is equipped with the fixing table, the side of the fixing table is rotatably connected with the impeller, the outer side of the nanobubble generator is slidably connected with the sliding seat, a transmission member is arranged between the impeller and the sliding seat, the side of the sliding seat is equipped with the cleaning brush rod one, the side of the nanobubble generator is equipped with the compression assembly for improving the cleaning effect, and the side of the nanobubble generator is equipped with the auxiliary cleaning assembly.

[0009] Preferably, the transmission member comprises a transmission rod one fixed to the side of the impeller, the side of the transmission rod one is fixedly connected with a bevel gear one, the inside of the fixing table is rotatably connected with a penetrating reciprocating screw rod, and the bottom of the reciprocating screw rod is fixedly connected with a bevel gear two. Through the arrangement of the device, the outer wall of the nanobubble generator can be cleaned to a certain extent, the possibility of a large amount of impurities adhering to the surface of the equipment is reduced, and the device is more easy to use.

[0010] Preferably, the reciprocating screw rod penetrates the sliding seat and is connected with the sliding seat through the setting thread.

[0011] Preferably, the bevel gear two is located at the side of the bevel gear one and is in meshing state with the bevel gear one.

[0012] Preferably, the compression assembly comprises a hydraulic chamber arranged on the side of the sliding seat, one end of the hydraulic chamber is slidably connected with a stress rod one through the setting piston, the other end of the hydraulic chamber is slidably connected with a transmission rod two through the setting piston, the side of the stress rod one is equipped with a spring, the side of the sliding seat is rotatably connected with a torsional spring block, and the outer side of the torsional spring block is fixedly connected with a compression plate. Through the setting of the compression assembly, the compression plate can compress the cleaning brush rod one to a certain extent, and the cleaning effect of the cleaning brush rod one is improved.

[0013] Preferably, the spring is arranged on the inner wall of the hydraulic chamber away from the one end of the stress rod one.

[0014] Preferably, the compression plate is located at the side of the transmission rod two and is in fixed state with the transmission rod two.

[0015] Preferably, the auxiliary cleaning assembly comprises a cam, a torsional spring rod is rotationally connected to the side of the fixing table, one end of the torsional spring rod is fixedly connected with a stress plate, the other end of the torsional spring rod is fixedly connected with an elastic telescopic rod, and the elastic telescopic rod is hingedly connected with a cleaning brush rod two at the end away from the torsional spring rod. Through the arrangement of the auxiliary cleaning assembly, the cleaning effect of the device is further improved.

[0016] Preferably, the cam is located at the side of the transmission rod one and is in a fixed state with the transmission rod one.

[0017] Preferably, the stress plate is located at the top of the cam and is in mutual contact with the cam.

[0018] The present application provides a water reservoir cyanobacteria treatment equipment for water pollution control. It has the following advantages:

[0019] (1) The water reservoir cyanobacteria treatment equipment for water pollution control uses a nano bubble generator to make nano bubbles quickly discharge through the discharge port, and cooperates with the fixing table, impeller, transmission rod one, bevel gear one, reciprocating screw rod, bevel gear two and sliding seat to make the cleaning brush rod one reciprocate in the vertical direction to clean the outer wall of the nano bubble generator to some extent, reduce the possibility of a large amount of impurities adhering to the surface of the equipment, and make the device more easy to use.

[0020] (2) When the sliding seat moves upward to drive the cleaning brush rod one to clean the outer wall of the nano bubble generator, the hydraulic bin assembled on the sliding seat moves together, cooperates with the stress rod one, transmission rod two, spring and torsional spring block to make the pressing plate press the cleaning brush rod one to some extent, and improves the cleaning effect of the cleaning brush rod one.

[0021] (3) When the transmission rod one is in a rotating state, it can drive the cam assembled on the side to rotate, cooperates with the torsional spring rod, stress plate and elastic telescopic rod to make the cleaning brush rod two reciprocate in the vertical direction to clean the outer wall of the nano bubble generator to some extent, and further improves the cleaning effect of the device. BRIEF DESCRIPTION OF DRAWINGS

[0022] Figure 1 It is a three-dimensional structure schematic view of part of the present application;

[0023] Figure 2 It is a three-dimensional structure schematic view of the overall section of the present application;

[0024] Figure 3 It is a three-dimensional structure schematic view of the overall section of the present application from another perspective;

[0025] Figure 4 A structure diagram of the application is shown in Figure 1 A structure diagram of the application is shown in

[0026] Figure 5 A structure diagram of the application is shown in

[0027] Figure 6 A structure diagram of the application is shown in Figure 5 A structure diagram of the application is shown in

[0028] Figure 7 A structure diagram of the application is shown in

[0029] Figure 8 A structure diagram of the application is shown in Figure 7 A structure diagram of the application is shown in

[0030] In the figure:

[0031] 100, floating platform; 200, oxygen generator; 300, winch main body; 400, nano bubble generator; 500, discharge port; 601, fixed table; 602, impeller; 603, transmission rod one; 604, bevel gear one; 605, reciprocating screw rod; 606, bevel gear two; 607, sliding seat; 608, cleaning brush rod one;

[0032] 700, compression assembly; 701, hydraulic bin; 702, force rod one; 703, transmission rod two; 704, spring; 705, torsional spring block; 706, compression plate;

[0033] 800, auxiliary cleaning assembly; 801, cam; 802, torsional spring rod; 803, force plate; 804, elastic telescopic rod; 805, cleaning brush rod two. DETAILED DESCRIPTION

[0034] The technical solutions in the embodiments of the application will be clearly and completely described below with reference to the drawings in the embodiments of the application. Obviously, the described embodiments are only part of the embodiments of the application, not all embodiments of the application.

[0035] Embodiment one, please refer to Figures 1-4 A reservoir cyanobacteria treatment device for water pollution treatment, comprising:

[0036] The floating platform 100 is provided with an oxygen generator 200 and a winch main body 300 on the top thereof;

[0037] The nanobubble generator 400 is connected to the winch body 300 through a cable arranged at the top of the nanobubble generator 400, and is connected to the oxygen generator 200 through an air pipe arranged at the top of the nanobubble generator 400. An exhaust port 500 is arranged on the side of the nanobubble generator 400. The nanobubble generator 400 is placed on and off the floating platform 100 to the deep bottom of the water under the action of the counterweight at the bottom of the nanobubble generator 400 by starting the winch body 300. The nanobubble generator 400 is started to make the nanobubbles quickly discharged through the exhaust port 500. The nanobubbles enter the bottom of the water body and fully contact and react with the bottom mud and pollutants in the water body, improve the water quality, remove the organic bottom mud, activate the indigenous microorganisms, improve the habitat of the bottom mud, and kill algae by superoxygen nanobubble cavitation to prevent large-scale outbreak of algae.

[0038] The water inlet and outlet of the device are in the same water depth layer, which can increase the dissolved oxygen in the deep water body, remove the organic bottom mud, activate the indigenous microorganisms, improve the habitat of the bottom mud, control the release of pollutants in the bottom mud, and reduce the content of iron, manganese, ammonia nitrogen, total phosphorus and the like in the water body.

[0039] The nanobubbles can quickly increase the dissolved oxygen in the water, meet the oxygen consumption needs of the microbial degradation of organic pollutants, create necessary conditions for activating and strengthening the ecological chain of the water body. After the ecological chain is activated, the nitrogen, phosphorus, organic matter, inorganic salt and the like in the water body are strengthened to convert and decompose, so as to convert the eutrophic water body into an aerobic ecological system, provide oxygen for the respiration of various aquatic animals in the water body, promote the recovery and reconstruction of the new aquatic ecological system, and finally improve the self-purification ability of the water body.

[0040] The nanobubbles have a large specific surface area and a super strong gas dissolving capacity. The dissolved oxygen concentration in the water can reach more than the saturated concentration, and the oxygen can be fully utilized in the water to ensure the necessary reaction time of the active oxygen. The nanobubbles have a small diameter, high surface energy and negative charge, and other unique physicochemical properties, so that they have a strong adsorption capacity and can effectively adsorb pollutants, suspended matters and blue algae in the water. The nanobubbles can generate a large amount of hydroxyl radicals, have a strong oxidation capacity, and have a purification capacity much higher than the self-purification capacity under natural conditions, so as to effectively reduce the organic matter, nitrogen, phosphorus and other pollutants in the water, improve the water quality, and oxidize and decompose the organic sludge, so as to realize the in-situ synchronous treatment of the mud, water and algae.

[0041] The side of the nanobubble generator 400 is equipped with a fixing table 601, the side of the fixing table 601 is rotationally connected with an impeller 602, the outer side of the nanobubble generator 400 is slidingly connected with a sliding seat 607, a transmission member for transmission is equipped between the impeller 602 and the sliding seat 607, the transmission member comprises a transmission rod one 603 fixed on the side of the impeller 602, and the side of the transmission rod one 603 is fixedly connected with a bevel gear one 604. When the nanobubbles are rapidly discharged, the impeller 602 is driven to rotate, so that the impeller 602 drives the transmission rod one 603 fixedly connected with the impeller 602 to rotate, and the transmission rod one 603 drives the bevel gear one 604 fixedly connected with the transmission rod one 603 to rotate.

[0042] The inside of the fixing table 601 is rotationally connected with a reciprocating screw rod 605 penetrating through the sliding seat 607, the reciprocating screw rod 605 penetrates through the sliding seat 607 and is connected with the sliding seat 607 through setting threads, the bottom of the reciprocating screw rod 605 is fixedly connected with a bevel gear two 606, the bevel gear two 606 is located at the side of the bevel gear one 604 and is in meshing state with the bevel gear one 604, and the side of the sliding seat 607 is equipped with a cleaning brush rod one 608. When the bevel gear one 604 rotates, the bevel gear one 604 drives the bevel gear two 606 meshing with the bevel gear one 604 to rotate, and the bevel gear two 606 drives the reciprocating screw rod 605 fixedly connected with the bevel gear two 606 to rotate, and because the sliding seat 607 equipped with threads on the outer side of the reciprocating screw rod 605 is limited by the nanobubble generator 400 slidingly connected with the sliding seat 607, the reciprocating screw rod 605 can drive the sliding seat 607 to reciprocate in the vertical direction during rotation, and the sliding seat 607 drives the cleaning brush rod one 608 equipped on the side of the sliding seat 607 to move together, so that the outer wall of the nanobubble generator 400 is cleaned to a certain extent, the possibility of a large amount of impurities adhering to the surface of the equipment is reduced, and the device is more easy to use.

[0043] In use, by enabling the winch body 300, the nanobubble generator 400 is placed on the water bottom deep from the floating platform 100 under the action of the bottom counterweight, the nanobubble generator 400 is enabled, the nanobubbles are quickly discharged through the discharge port 500, the nanobubbles enter the water bottom and fully contact and react with the bottom mud and pollutants in the water body, the water quality is improved, the organic bottom mud is removed, the indigenous microorganisms are activated, the bottom mud habitat is improved, and the superoxygen nanobubble cavitation can kill algae and prevent large-scale outbreak of algae; and the nanobubbles discharged quickly can drive the impeller 602 to rotate, the impeller 602 drives the transmission rod one 603 fixedly connected thereto to rotate, the transmission rod one 603 drives the bevel gear one 604 fixedly connected thereto to rotate, the bevel gear one 604 drives the bevel gear two 606 engaged therewith to rotate, and the bevel gear two 606 drives the reciprocating screw rod 605 fixedly connected thereto to rotate; and because the sliding seat 607 assembled on the outer side of the reciprocating screw rod 605 is limited by the nanobubble generator 400 slidably connected thereto, the reciprocating screw rod 605 can drive the sliding seat 607 to reciprocate in the vertical direction in the process of rotating, and the sliding seat 607 drives the cleaning brush rod one 608 assembled on the side thereof to move together, so as to clean the outer wall of the nanobubble generator 400 to a certain extent.

[0044] Embodiment two, please refer to Figures 1-6 On the basis of embodiment one, the nanobubble generator 400 is provided with the pressing assembly 700 for improving the cleaning effect on the side thereof, the pressing assembly 700 comprises the hydraulic bin 701 assembled on the side of the sliding seat 607, and one end of the hydraulic bin 701 is slidably connected with the force rod one 702 through the setting of a piston.

[0045] The other end of the hydraulic bin 701 is slidably connected with the transmission rod two 703 through the setting of a piston, the side of the force rod one 702 is provided with the spring 704, one end of the spring 704 away from the force rod one 702 is assembled on the inner wall of the hydraulic bin 701. When the force rod one 702 is away from the fixed table 601, it can lose the limitation of the fixed table 601, and under the action of the spring 704, it slides to the inside of the hydraulic bin 701, so as to extrude the oil originally stored in the hydraulic bin 701, the oil flows to the side close to the transmission rod two 703 under the extrusion of the force rod one 702, and drives the transmission rod two 703 slidably connected between the hydraulic bins 701 to move out of the hydraulic bin 701.

[0046] The side of the sliding seat 607 is rotationally connected with a torsion spring block 705, the outer side of the torsion spring block 705 is fixedly connected with a pressing plate 706, the pressing plate 706 is located at the side of the transmission rod two 703 and is in a fixed state with the transmission rod two 703. When the transmission rod two 703 is moved out of the hydraulic chamber 701, the pressing plate 706 can be driven to rotate towards the end of the cleaning brush rod one 608 by extruding the pressing plate 706, so as to press the cleaning brush rod one 608 to a certain extent, thereby improving the cleaning effect of the cleaning brush rod one 608.

[0047] When the force rod one 702 moves to the fixed table 601 again along with the sliding seat 607, the force rod one 702 can slide away from the hydraulic chamber 701, and the transmission rod two 703 returns to the initial state, and the pressing plate 706 loses the limitation of the transmission rod two 703, so as to reset under the action of the torsion spring block 705.

[0048] In use, on the basis of the first embodiment, when the sliding seat 607 moves upwards and drives the cleaning brush rod one 608 to clean the outer wall of the nano bubble generator 400, the hydraulic chamber 701 assembled on the sliding seat 607 moves together, and the force rod one 702 connected with the hydraulic chamber 701 through the piston slides, and when the force rod one 702 moves away from the fixed table 601, the force rod one 702 loses the limitation of the fixed table 601 and slides into the hydraulic chamber 701 under the action of the spring 704, so as to extrude the oil originally stored in the hydraulic chamber 701. The oil flows to the side of the transmission rod two 703 under the extrusion of the force rod one 702, drives the transmission rod two 703 connected with the hydraulic chamber 701 through the piston to move out of the hydraulic chamber 701, and drives the pressing plate 706 to rotate towards the end of the cleaning brush rod one 608 by extruding the pressing plate 706, so as to press the cleaning brush rod one 608 to a certain extent. When the force rod one 702 moves to the fixed table 601 again along with the sliding seat 607, the force rod one 702 can slide away from the hydraulic chamber 701, and the transmission rod two 703 returns to the initial state, and the pressing plate 706 loses the limitation of the transmission rod two 703, so as to reset under the action of the torsion spring block 705.

[0049] Example three, please refer to Figures 1-8On the basis of embodiment one and embodiment two, the side of the nanobubble generator 400 is equipped with an auxiliary cleaning assembly 800 for auxiliary cleaning, the auxiliary cleaning assembly 800 comprises a cam 801, the cam 801 is located at the side of the transmission rod one 603 and is in a fixed state with the transmission rod one 603, the side of the fixed table 601 is rotatably connected with a torsional spring rod 802, one end of the torsional spring rod 802 is fixedly connected with a stress plate 803, the stress plate 803 is located at the top of the cam 801 and is in contact with the cam 801. When the transmission rod one 603 is in a rotating state, the cam 801 assembled on the side thereof can be driven to rotate, and when the protruding part of the cam 801 rotates to the stress plate 803, the stress plate 803 can be extruded, so that the stress plate 803 is extruded to drive the torsional spring rod 802 fixedly connected therewith to rotate counterclockwise by a certain angle. Figure 8 As shown in the middle, the stress plate 803 is extruded to drive the torsional spring rod 802 fixedly connected therewith to rotate counterclockwise by a certain angle.

[0050] The other end of the torsional spring rod 802 is fixedly connected with an elastic telescopic rod 804, and the end away from the torsional spring rod 802 of the elastic telescopic rod 804 is hingedly connected with a cleaning brush rod two 805. When the torsional spring rod 802 rotates counterclockwise by a certain angle, the elastic telescopic rod 804 fixedly connected with the torsional spring rod 802 is driven to rotate counterclockwise by a certain angle synchronously, and the end away from the torsional spring rod 802 of the elastic telescopic rod 804 is hingedly connected with the cleaning brush rod two 805, so that the cleaning brush rod two 805 moves downward by a certain distance on the outer wall of the nanobubble generator 400 in the process of counterclockwise rotation of the elastic telescopic rod 804, and when the protruding part of the cam 801 rotates away from the stress plate 803, the cleaning brush rod two 805, the elastic telescopic rod 804 and the stress plate 803 can be reset under the action of the torsional spring rod 802, and the cleaning brush rod two 805 is simultaneously subjected to a certain pressure from the elastic telescopic rod 804, so that the cleaning brush rod two 805 reciprocates in the vertical direction to clean the outer wall of the nanobubble generator 400 to a certain extent, further improving the cleaning effect of the device.

[0051] In use, on the basis of embodiment one and embodiment two, when the transmission rod one 603 is in a rotating state, the cam 801 assembled on the side thereof can be driven to rotate, and when the protruding part of the cam 801 rotates to the stress plate 803, the stress plate 803 can be extruded, so that the stress plate 803 is extruded to drive the torsional spring rod 802 fixedly connected therewith to rotate counterclockwise by a certain angle. Figure 8As shown in the figure, the force plate 803 is extruded, and drives the torsion spring rod 802 fixedly connected therewith to rotate counterclockwise by a certain angle, so that the torsion spring rod 802 drives the elastic telescopic rod 804 fixedly connected therewith to rotate counterclockwise by a certain angle synchronously, and the elastic telescopic rod 804 is hinged with the cleaning brush rod two 805 at one end away from the torsion spring rod 802, so that the elastic telescopic rod 804 moves a certain distance downward on the outer wall of the nanometer bubble generator 400 in the process of counterclockwise rotation, when the convex part of the cam 801 is away from the force plate 803 with rotation, the cleaning brush rod two 805, the elastic telescopic rod 804 and the force plate 803 can be reset under the action of the torsion spring rod 802, and the cleaning brush rod two 805 is subjected to a certain pressure from the elastic telescopic rod 804 at the same time, so that the cleaning brush rod two 805 reciprocates in the vertical direction, and the outer wall of the nanometer bubble generator 400 is cleaned to a certain extent.

[0052] The above merely describes the preferred embodiments of the present application, but the protection scope of the present application is not limited to this. Any person skilled in the art can make equivalent replacements or changes to the technical scheme and the inventive concept of the present application within the technical scope disclosed by the present application, and all of the above should be covered within the protection scope of the present application.

Claims

1. A blue-green algae treatment device for water pollution control of a reservoir, characterized by, Include: Floating platform, the top of the floating platform is equipped with oxygen device and winch body respectively; The top of the nanobubble generator is connected with the winch body by setting the cable, the top of the nanobubble generator is connected with the oxygen device by setting the air pipe, and the side of the nanobubble generator is provided with the exhaust port; The side of the nanobubble generator is equipped with a fixing table, the side of the fixing table is rotatably connected with an impeller, the outside of the nanobubble generator is slidably connected with a sliding seat, a transmission member for transmission is arranged between the impeller and the sliding seat, a cleaning brush rod one is arranged on the side of the sliding seat, a pressing assembly for improving cleaning effect is arranged on the side of the nanobubble generator, and an auxiliary cleaning assembly for auxiliary cleaning is arranged on the side of the nanobubble generator; The pressing assembly comprises a hydraulic chamber arranged on the side of the sliding seat, one end of the hydraulic chamber is slidably connected with a stress rod one through the setting of the piston, the other end of the hydraulic chamber is slidably connected with a transmission rod two through the setting of the piston, the side of the stress rod one is provided with a spring, the side of the sliding seat is rotatably connected with a torsion spring block, and the outside of the torsion spring block is fixedly connected with a pressing plate.

2. The water reservoir cyanobacteria treatment apparatus for water pollution treatment according to claim 1, characterized in that: The transmission member comprises a transmission rod one fixed on the side of the impeller, the side of the transmission rod one is fixedly connected with a bevel gear one, the inside of the fixing table is rotatably connected with a penetrating reciprocating screw rod, and the bottom of the reciprocating screw rod is fixedly connected with a bevel gear two.

3. The water reservoir cyanobacteria treatment apparatus for water pollution treatment according to claim 2, characterized in that: The reciprocating screw rod penetrates the sliding seat and is connected with the sliding seat through the setting of threads.

4. The water reservoir cyanobacteria treatment apparatus for water pollution treatment according to claim 2, characterized in that: The bevel gear two is located on the side of the bevel gear one and is in meshing state with the bevel gear one.

5. The water reservoir cyanobacteria treatment apparatus for water pollution treatment according to claim 4, characterized in that: The spring is away from the end of the stress rod one and is arranged on the inner wall of the hydraulic chamber.

6. The water reservoir cyanobacteria treatment apparatus for water pollution treatment according to claim 5, characterized in that: The pressing plate is located on the side of the transmission rod two and is in fixed state with the transmission rod two.

7. The water reservoir cyanobacteria treatment apparatus for water pollution treatment according to claim 6, characterized in that: The auxiliary cleaning assembly comprises a cam, the side of the fixing table is rotatably connected with a torsion spring rod, one end of the torsion spring rod is fixedly connected with a stress plate, the other end of the torsion spring rod is fixedly connected with an elastic telescopic rod, and the end away from the torsion spring rod of the elastic telescopic rod is hingedly connected with a cleaning brush rod two.

8. The water reservoir cyanobacteria treatment apparatus for water pollution treatment according to claim 7, characterized in that: The cam is located on the side of the transmission rod one and is in fixed state with the transmission rod one.

9. The water reservoir cyanobacteria treatment apparatus for water pollution treatment of claim 8, characterized in that: The stress plate is located on the top of the cam and is in contact with the cam.

Citation Information

Patent Citations

  • Integrated blue-green algae treatment equipment for reservoir

    CN219194713U

  • Micro-nano bubble cleaning device

    CN110586566A

  • Nanometer bubble deepwater equipment and movable deepwater environment treatment method

    CN116477777A