Floating photovoltaic water oxygenation intelligent control and treatment system

By designing a floating photovoltaic water oxygenation intelligent regulation and treatment system, using mobile components, balloons, aeration components and sunshade components, the problems of low oxygenation efficiency and ineffective sunshade regulation in traditional water control systems are solved, and efficient water oxygenation and intelligent temperature regulation are achieved.

CN119797626BActive Publication Date: 2025-05-16INNER MONGOLIA AGRICULTURAL UNIVERSITY
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Patent Information

Application Number
CN202510295616.4
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-03-13
Publication Date
2025-05-16
Estimated Expiration
2045-03-13

AI Technical Summary

Technical Problem

Traditional water body regulation systems are inefficient when oxygenated, making it difficult to effectively oxygenate other locations of the water body. Moreover, the sunshade device cannot adjust the sunshade area according to changes in the water body temperature, resulting in poor control of water body temperature and water storage.

Method used

A floating photovoltaic water body oxygenation intelligent control and processing system is designed, including mobile components, balloons, aeration components, sunshade components and bubble crushing rods. The moving component drives the system to move on the surface of the water body, the aeration component increases the contact area between air and water through the bubble crushing rod, and the shading component adjusts the shading area according to the temperature of the water body.

Benefits of technology

The oxygenation efficiency in other locations of the water body is improved, the generation rate of dissolved oxygen is enhanced, and the shading area is intelligently adjusted according to the temperature of the water body, thereby effectively preventing water evaporation and regulating the temperature of the water body.

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Abstract

The present invention discloses a floating photovoltaic water oxygenation intelligent control and treatment system, comprising a central column, a sunshade component for preventing the water temperature from being too high is arranged at the upper end of the central column, a bracket is fixedly connected to the lower end of the central column, a mobile component for driving the treatment system to move is arranged at the lower end of the bracket, a number of balloons are fixedly connected around the bracket, the balloons are hollow structures, and the inside of the balloons is filled with gas, and a number of aeration components for delivering oxygen to the water are also arranged on the bracket, and two rope winding components for storing the aeration components are arranged next to each aeration component, and the rope winding components are installed on the bracket. The present invention can crush the air bubbles discharged into the water by the oxygenation device, thereby improving the efficiency of dissolved oxygen in the water; at the same time, the present invention is provided with a mobile component, which can drive the water body control system to oxygenate other positions in the water body; at the same time, the present invention is provided with a solar panel deployment component, which can control the sunshade area according to the temperature of the water body.
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Description

Technical Field

[0001] The present invention relates to the field of water treatment, and in particular to a floating photovoltaic water oxygenation intelligent control and treatment system. Background Art

[0002] Dissolved oxygen is an important indicator for monitoring and considering the health of the ecological environment of water bodies. Lake water bodies, especially the isothermal layer at the bottom of the lake, are prone to dissolved oxygen depletion during summer stratification, which may cause soluble chemicals and nutrients in the sediment to precipitate, triggering blue algae blooms and having a negative impact on water quality. The oxygenation system becomes an effective means to replenish reservoir oxygen and reduce the concentration of reducing substances and nutrients in the water during thermal stratification. At the same time, water bodies such as reservoirs are continuously exposed to sunlight in the high temperature environment in summer, which will cause the water temperature to rise. At the same time, the evaporation of water in the water body will increase significantly, resulting in a decrease in the water storage capacity of reservoirs and other water bodies. Using shading equipment to shade reservoirs and other water bodies can effectively prevent the evaporation of water in the water body.

[0003] When oxygenating the water, traditional water control systems usually discharge air directly into the water. The discharged air forms large bubbles in the water, resulting in less air that can come into contact with the water, leading to lower efficiency in oxygenating the water. At the same time, the oxygenation device of the traditional water control system is often set at a fixed position on the shore or in the water. After a long period of oxygenation, the oxygen content at that water position has approached saturation, but the oxygen content at other positions in the water remains unchanged. The water only flows by itself to oxygenate other positions in the water, resulting in poor oxygenation effect at other positions in the water. At the same time, the sunshade device in the traditional water control system cannot change the sunshade area according to changes in the water temperature when in use, resulting in the inability to achieve the expected effect in regulating the water temperature and water storage capacity. Summary of the invention

[0004] The purpose of the present invention is to provide a floating photovoltaic water oxygenation intelligent control and treatment system to solve the problems raised in the above background technology.

[0005] To achieve the above-mentioned purpose, the present invention provides the following technical solutions: a floating photovoltaic water oxygenation intelligent control treatment system, comprising a central column, the upper end of which is provided with a sunshade component for preventing the water temperature from being too high, the lower end of the central column is fixedly connected to a bracket, the lower end of the bracket is provided with a moving component for driving the treatment system to move, a plurality of balloons are fixedly connected around the bracket, the balloons are hollow structures, and the inside of the balloons is filled with gas, and a plurality of aeration components for delivering oxygen to the water are also provided on the bracket, and two rope winding components for storing the aeration components are provided next to each aeration component, and the rope winding components are installed on the bracket;

[0006] The sunshade assembly includes a plurality of solar panel deployment assemblies, the solar panel deployment assemblies are arranged outside the central column, a protective ring is arranged outside the solar panel deployment assemblies, a solar panel drive motor is fixedly connected above the central column, an output shaft of the solar panel drive motor is fixedly connected to a solar panel drive block, and a cleaning assembly for cleaning the solar panel is arranged above the sunshade assembly;

[0007] The solar panel deployment assembly includes a plurality of solar panels, the solar panel at the bottom is fixedly connected to the central column and the protection ring, the inner side of each of the remaining solar panels is slidably connected to the central column, the outer side of the solar panel is slidably connected in the protection ring, and the plurality of solar panels are arranged overlapping in sequence, the outer side of the solar panel at the bottom is provided with a sliding groove, the outer side of the solar panel at the top is fixedly connected to a sliding block, the outer side of the solar panel in the middle is provided with a sliding groove and fixedly connected to the sliding block, the sliding block is arranged below the sliding groove, every two adjacent solar panels are slidably connected by inserting the sliding block into the sliding groove, and the solar panels at the top of the plurality of solar panel deployment assemblies are all fixedly connected to the solar panel driving block;

[0008] The lower end of the bracket is fixedly connected to a thermometer.

[0009] Preferably, the cleaning assembly includes a cleaning scraper, a cleaning motor fixedly connected inside the central column, an output shaft of the cleaning motor fixedly connected to a cleaning screw, an external threaded connection of the cleaning screw to a cleaning sleeve, a limiting groove is provided on the central column at the position of the cleaning screw, the limiting groove is provided below the sunshade assembly, one end of the cleaning sleeve is fixedly connected to the outer side of a connecting rod, the connecting rod is slidably connected in the limiting groove, the other end of the connecting rod is fixedly connected to a connecting frame, the connecting frame is slidably connected to the outer side of the central column, a number of cleaning scrapers are fixedly connected to the connecting frame, and the number of cleaning scrapers is the same as the number of solar panel unfolding assemblies.

[0010] Preferably, the moving assembly includes a paddle board, the lower end of the bracket is fixedly connected to the paddle board motor via a rod, and the output shaft of the paddle board motor is fixedly connected to the paddle board.

[0011] Preferably, the aeration assembly includes a hose, and several hard tubes are fixedly connected to the outside of the bracket, the upper end of the hard tube is fixedly connected to the air inlet pipe, the air inlet pipe is U-shaped, the middle part of the air inlet pipe is fixedly connected to one end of the drain pipe, the other end of the drain pipe extends to the lower end of the bracket, the lower end of the hard tube is connected to a pipe fixing frame assembly, the lower end of the pipe fixing frame assembly is connected to the hose, and several pipe fixing frame assemblies are also provided on the hose, the hose is provided with an exhaust port at the lower end of the pipe fixing frame assembly, the hose is fixedly connected to an air valve at the position of the exhaust port, the air valve is connected to the pipe fixing frame assembly, the air inlet pipe is fixedly connected to a filter screen near the middle of a section of the hard tube, the filter screen is provided with a plurality of holes, and the middle part of the hard tube is fixedly connected to an air pump.

[0012] Preferably, the air inlet pipe, the hard pipe and the soft pipe are internally connected to each other.

[0013] Preferably, the pipe fixing frame assembly includes a pipe fixing frame, a hard pipe lower end fixedly connected to a hose, a plurality of pipe fixing frames fixedly connected to the hose, an upper end of the pipe fixing frame at the uppermost end of the hose is fixedly connected to the hard pipe, a counterweight, a bubble crushing rod motor and two rope rings are fixedly connected to the outer side of the pipe fixing frame, an air valve is fixedly connected to the inner side of the pipe fixing frame, an output shaft of the bubble crushing rod motor is fixedly connected to the bubble crushing rod, the bubble crushing rod is rotatably connected to the pipe fixing frame, a plurality of needles for crushing bubbles are fixedly connected to the bubble crushing rod, the bubble crushing rod is arranged at the position of the exhaust port, and the two rope rings are symmetrically arranged on the pipe fixing frame.

[0014] Preferably, the rope winding assembly includes a rope, a rope winding rod motor is fixedly connected to the bracket, the output shaft of the rope winding rod motor is fixedly connected to the rope winding rod, the rope winding rod is rotatably connected to the bracket, one end of the rope is fixedly connected to the rope winding rod, the rope first passes through the rope ring on the pipe fixing frame at the lower end of the hard pipe, and the rope then passes through several rope rings on the hose in turn, and the other end of the rope is fixedly connected to the rope ring on the pipe fixing frame at the lower end of the hose, and the above rope rings are all rope rings on the same side.

[0015] Compared with the prior art, the beneficial effects of the present invention are as follows: the present invention is provided with a bubble crushing rod, which can crush the air bubbles discharged into the water body by the oxygenation device, thereby increasing the contact area between the air and the water body and improving the efficiency of dissolved oxygen in the water; at the same time, the present invention is provided with a moving component, and the moving device can drive the water body control system to move on the surface of the water body, and then perform oxygenation again after moving to other positions in the water body, which can effectively improve the efficiency of oxygenation of other positions of the water body; at the same time, the present invention is provided with a solar panel deployment component, which can control the shading area according to the temperature of the water body, thereby being able to intelligently control the water body temperature and water storage capacity. BRIEF DESCRIPTION OF THE DRAWINGS

[0016] Figure 1 It is a schematic diagram of the overall structure of the present invention;

[0017] Figure 2 It is the front view of the overall structure of the present invention;

[0018] Figure 3 is a cross-sectional view of the present invention at the position of the sliding block;

[0019] Figure 4 It is a cross-sectional view of the present invention at the center column position;

[0020] Figure 5 is a cross-sectional view of the present invention at the hose position;

[0021] Figure 6A schematic diagram of the sunshade assembly of the present invention in an unfolded state;

[0022] Figure 7 for Figure 6 A partial enlarged view of point A in the middle;

[0023] Figure 8 for Figure 3 A partial enlarged view of point B in the middle;

[0024] Fig. 9 for Figure 5 A partial enlarged view of point C in the middle;

[0025] Fig.10 It is a structural schematic diagram of the central column of the present invention;

[0026] Fig.11 A cross-sectional view of the position of the rope winding shaft of the present invention;

[0027] Fig.12 for Figure 5 A partial enlarged view of point D in the middle;

[0028] Fig.13 for Figure 4 A partial enlarged view of point E in the middle;

[0029] Fig.14 for Figure 5 A partial enlarged view of point F in the middle;

[0030] Fig.15 for Figure 4 A magnified partial view of point G in the middle.

[0031] In the figure: 101, center column, 102, protection ring, 103, bracket, 104, thermometer, 201, paddle board, 202, paddle board motor, 301, balloon, 401, solar panel, 402, sliding groove, 403, sliding block, 404, solar panel drive motor, 405, solar panel drive block, 501, cleaning motor, 502, cleaning screw, 503, cleaning screw sleeve, 504, connecting rod, 505, connecting frame , 506, cleaning scraper, 507, limiting groove, 601, air inlet pipe, 602, hard pipe, 603, hose, 604, drain pipe, 605, pipe fixing bracket, 606, filter screen, 607, air pump, 608, exhaust port, 609, air valve, 610, counterweight, 611, bubble crushing rod, 612, bubble crushing rod motor, 613, rope ring, 614, rope, 615, rope winding rod, 616, rope winding rod motor. DETAILED DESCRIPTION

[0032] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. 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 creative work are within the scope of protection of the present invention.

[0033] See also Figure 1-15 In order to solve the problem that the traditional water body regulation system has low efficiency in oxygenating water bodies, is difficult to oxygenate other positions of the water body, and cannot change the shading area according to the change of water body temperature, the water body oxygenation efficiency is improved, and the water body regulation system is driven by a mobile component to oxygenate other positions in the water body, and the shading area is changed according to the change of water body temperature. The present invention provides a technical solution: a floating photovoltaic water body oxygenation intelligent regulation and processing system, including a central column 101, and a shading group for preventing the water body temperature from being too high is arranged on the upper end of the central column 101 The lower end of the central column 101 is fixedly connected to the bracket 103, and the lower end of the bracket 103 is provided with a moving component for driving the treatment system to move. A plurality of balloons 301 are fixedly connected around the bracket 103. The balloons 301 are made of elastic materials including but not limited to rubber. The balloons 301 are hollow structures and are filled with gas. The bracket 103 is also provided with a plurality of aeration components for delivering oxygen to the water. Two rope winding components for storing the aeration components are provided next to each aeration component, and the rope winding components are installed on the bracket 103;

[0034] The sunshade assembly includes a plurality of solar panel deployment assemblies, which are arranged on the outside of the central column 101, and a protective ring 102 is arranged on the outside of the solar panel deployment assembly. A solar panel drive motor 404 is fixedly connected to the top of the central column 101, and the output shaft of the solar panel drive motor 404 is fixedly connected to the solar panel drive block 405. A cleaning assembly for cleaning the solar panel 401 is arranged on the top of the sunshade assembly;

[0035] The solar panel deployment assembly includes several solar panels 401, the solar panel 401 at the bottom is fixedly connected to the central column 101 and the protective ring 102, the inner side of each of the remaining solar panels 401 is slidably connected to the central column 101, and the outer side of the solar panel 401 is slidably connected in the protective ring 102, and several solar panels 401 are overlapped in sequence, the outer side of the solar panel 401 at the bottom is provided with a sliding groove 402, the outer side of the solar panel 401 at the top is fixedly connected to a sliding block 403, the outer side of the solar panel 401 in the middle is provided with a sliding groove 402 and fixedly connected to the sliding block 403, the sliding block 403 is arranged below the sliding groove 402, every two adjacent solar panels 401 are slidably connected by inserting the sliding block 403 into the sliding groove 402, and the uppermost solar panels 401 of several solar panel deployment assemblies are all fixedly connected to the solar panel driving block 405; the lower end of the bracket 103 is fixedly connected to the thermometer 104. In the present application, the thermometer 104, the paddle motor 202, the solar panel 401, the solar panel drive motor 404, the cleaning motor 501, the air pump 607, the air valve 609, the bubble crushing rod motor 612 and the rope winding rod motor 616 are all of existing models.

[0036] When in use, first start the moving component, and the moving component drives the water control system to move to the designated position of the water body. During the movement, the balloon 301 is used to float on the water surface. At the same time, the water control system may be hit by the wind and collide with the shore. The elastic force of the balloon 301 is used to prevent the water control system from contacting the shore and being damaged. When the balloon 301 contacts the shore, the water control system will be bounced back, effectively protecting the water control system. When the water body needs to be shaded, first observe the data of the thermometer 104 to determine the area of ​​the water body that needs to be shaded, and then start the sunshade component to provide shade, thereby reducing the water temperature and evaporation. When the water body needs to be shaded, first observe the data of the thermometer 104 to determine the area of ​​the water body that needs to be shaded, and then start the sunshade component to provide shade, thereby reducing the water temperature and evaporation. When the water body is oxygenated, the aeration component is started, and the aeration component releases air into the water body to increase the oxygen content of the water body. When the dissolved oxygen content at that position rises to a specified value, the moving component is started again, and the moving component drives the water body control system to move to other positions, and then the aeration component is started again to oxygenate other positions of the water body; after the oxygenation is completed, the rope winding component is used to control the recovery of the hose 603 to reduce the volume of the water body control system, thereby facilitating storage; when too much dust and dirt accumulate on the surface of the solar panel 401, the cleaning component is started at this time, and the cleaning component cleans the dust on the surface of the solar panel 401 so that the solar panel 401 can continue to work.

[0037] When it is necessary to shade the water body, the solar panel driving motor 404 is first started, and the solar panel driving motor 404 drives the solar panel driving block 405 to rotate, and the solar panel driving block 405 drives the solar panel 401 at the uppermost end of the several solar panel deployment assemblies to rotate, and the sliding block 403 on the uppermost solar panel 401 starts to move, and the sliding block 403 contacts the sliding groove 402 of the solar panel 401 adjacent to the solar panel 401, and the sliding block 403 drives the sliding groove 402 to move, and the sliding groove 402 drives the solar panel 401 to move, and the solar panel driving block 405 continues to rotate, and the solar panels 401 in the middle are unfolded in turn. When the solar panels 401 are unfolded, the sliding block 403 in the sliding groove 402 of the solar panel 401 at the lowermost end is fixed, resulting in the solar panel 401 adjacent to the solar panel 401 at the lowermost end cannot continue to unfold, and the solar panel unfolding assembly is fixed, and all the solar panels 401 in the sunshade assembly can form a complete circle after unfolding.

[0038] In order to clean the surface of the solar panel 401 and prevent the solar panel 401 from failing to work due to excessive dust accumulation, a cleaning component is provided, which includes a cleaning scraper 506. The cleaning motor 501 is fixedly connected to the inside of the central column 101, and the output shaft of the cleaning motor 501 is fixedly connected to the cleaning screw 502. The cleaning screw 502 is externally threadedly connected to the cleaning screw sleeve 503. The central column 101 is provided with a limiting groove 507 at the position of the cleaning screw 502. The limiting groove 507 is arranged below the sunshade component. The outer side of the cleaning screw sleeve 503 is fixedly connected to one end of the connecting rod 504, and the connecting rod 504 is slidably connected in the limiting groove 507. The other end of the connecting rod 504 is fixedly connected to the connecting frame 505, and the connecting frame 505 is slidably connected to the outer side of the central column 101. A number of cleaning scrapers 506 are fixedly connected to the connecting frame 505, and the number of cleaning scrapers 506 is the same as the number of solar panel unfolding components.

[0039] When the surface of the solar panel 401 needs to be cleaned, the cleaning motor 501 is first started, the cleaning motor 501 drives the cleaning screw 502 to rotate, the cleaning screw 502 drives the cleaning screw sleeve 503 to rotate, and the cleaning screw sleeve 503 drives the connecting rod 504 to move in the limit groove 507. Fig.10The shape of the limiting groove 507 is that a plurality of horizontal grooves and vertical grooves are connected end to end to form a complete groove, wherein the number of horizontal grooves is the same as the number of solar panels 401 in a solar panel deployment assembly, and the positions are arranged correspondingly. When the connecting rod 504 is located in the horizontal groove of the limiting groove 507, the cleaning screw 502 rotates to drive the cleaning screw sleeve 503 to rotate. At this time, the cleaning screw 502 and the cleaning screw sleeve 503 remain relatively stationary. When the connecting rod 504 is located in the vertical groove of the limiting groove 507, When the cleaning screw 502 drives the cleaning screw sleeve 503 to move along the direction of the vertical groove through the thread, the connecting rod 504 drives the connecting frame 505 to move, and the connecting frame 505 drives the cleaning scraper 506 to move. When the connecting rod 504 is located in the horizontal groove of the limiting groove 507, the cleaning scraper 506 cleans the surface of the solar panel 401. When the connecting rod 504 is located in the vertical groove of the limiting groove 507, the cleaning scraper 506 passes over the previous solar panel 401 and reaches the surface of the next solar panel 401 that needs to be cleaned.

[0040] In order to solve the problem that the traditional water body control system is difficult to oxygenate other positions of the water body, and to achieve the effect of driving the water body control system to oxygenate other positions in the water body through the mobile component, a mobile component and an aeration component are provided, the mobile component includes a paddle board 201, the lower end of the bracket 103 is fixedly connected to the paddle board motor 202 through a rod, and the output shaft of the paddle board motor 202 is fixedly connected to the paddle board 201; the aeration component includes a hose 603, the outer side of the bracket 103 is fixedly connected to a plurality of hard pipes 602, the upper end of the hard pipe 602 is fixedly connected to the air inlet pipe 601, and the air inlet pipe The shape of 601 is U-shaped, the middle part of the air inlet pipe 601 is fixedly connected to one end of the drain pipe 604, the other end of the drain pipe 604 extends to the lower end of the bracket 103, the lower end of the hard pipe 602 is connected to a pipe fixing frame assembly, the lower end of the pipe fixing frame assembly is connected to the hose 603, and the hose 603 is also provided with a plurality of pipe fixing frame assemblies, the hose 603 is provided with an exhaust port 608 at the lower end of the pipe fixing frame assembly, and the hose 603 is fixedly connected with an air valve 609 at the position of the exhaust port 608, and the air valve 609 uses a device capable of unidirectionally conveying gas, and the gas The valve 609 is connected to the pipe fixing frame assembly, the middle of the air inlet pipe 601 near the hard pipe 602 is fixedly connected to the filter screen 606, and a plurality of holes are arranged on the filter screen 606. The middle of the hard pipe 602 is fixedly connected to the air pump 607; the air inlet pipe 601, the hard pipe 602 and the hose 603 are internally connected to each other; the pipe fixing frame assembly includes a pipe fixing frame 605, the lower end of the hard pipe 602 is fixedly connected to the hose 603, and the hose 603 is fixedly connected to a plurality of pipe fixing frames 605, and the upper end of the pipe fixing frame 605 at the uppermost end of the hose 603 is fixedly connected to the hard pipe. Tube 602, the outer side of the pipe fixing frame 605 is fixedly connected to the counterweight block 610, the bubble crushing rod motor 612 and two rope rings 613, the inner side of the pipe fixing frame 605 is fixedly connected to the air valve 609, the output shaft of the bubble crushing rod motor 612 is fixedly connected to the bubble crushing rod 611, the bubble crushing rod 611 is rotatably connected to the pipe fixing frame 605, a number of needles for crushing bubbles are fixedly connected to the bubble crushing rod 611, the bubble crushing rod 611 is arranged at the position of the exhaust port 608, and two rope rings 613 are symmetrically arranged on the pipe fixing frame 605.

[0041] When the water control system needs to be moved, the paddle motor 202 is first started, the paddle motor 202 drives the paddle 201 to move, and the paddle 201 moves the water, thereby driving the water control system to move; when the water needs to be oxygenated, the air pump 607 is first started, the air pump 607 sucks air from the air inlet pipe 601, and then releases the air into the hose 603. When the air pump 607 sucks air, a small amount of water and impurities may be sucked into the air inlet pipe 601, but because the shape of the air inlet pipe 601 is U-shaped, the water slides from the air inlet pipe 601 to the drain pipe 604 due to gravity, preventing damage to the air pump 607, and at the same time, the impurities are filtered out by the filter 60 6 is blocked to prevent impurities from entering the hard tube 602. When air enters the hose 603, the air pushes the air valve 609 to open, and the air is discharged from the exhaust port 608. The air forms bubbles, and then the bubble crushing rod motor 612 is started. The bubble crushing rod motor 612 drives the bubble crushing rod 611 to rotate, and the bubble crushing rod 611 drives the needle to crush the bubbles. The bubbles are crushed into several small bubbles, which increases the contact area between air and water and increases the rate of oxygen dissolved in the water. When the oxygenation is completed, the air pump 607 is turned off, and the water in the water body cannot enter the hose 603 from the water body through the air valve 609, which can effectively prevent the air pump 607 and other devices from being damaged.

[0042] In order to achieve the effect of storing the hose 603, a rope winding assembly is provided, which includes a rope 614. A rope winding rod motor 616 is fixedly connected to the bracket 103. The output shaft of the rope winding rod motor 616 is fixedly connected to the rope winding rod 615. The rope winding rod 615 is rotatably connected to the bracket 103. One end of the rope 614 is fixedly connected to the rope winding rod 615. The rope 614 first passes through the rope ring 613 on the pipe fixing frame 605 at the lower end of the hard tube 602, and the rope 614 then passes through several rope rings 613 on the hose 603 in turn. The other end of the rope 614 is fixedly connected to the rope ring 613 on the pipe fixing frame 605 at the lower end of the hose 603. The above rope rings 613 are all rope rings 613 on the same side.

[0043] When the hose 603 needs to be stored, the rope winding rod motor 616 is first started, and the rope winding rod motor 616 drives the rope winding rod 615 to rotate, and the rope winding rod 615 drives the rope 614 to be wound around the rope winding rod 615, and the rope 614 pulls the rope ring 613 at the lower end of the hose 603 to start rising, and the rope ring 613 drives the pipeline fixing frame 605 to rise, and the distance between the lowermost pipeline fixing frame 605 and other pipeline fixing frames 605 becomes shorter, and the lowermost pipeline fixing frame 605 drives other pipeline fixing frames 605 to start rising. In the process of the pipeline fixing frame 605 rising, the hose 603 is folded, and the volume of the hose 603 is reduced, which is convenient for storage; when the hose 603 needs to be released, the rope winding rod motor 616 is first started, and the rope winding rod motor 616 releases the rope 614, and the counterweight blocks 610 on several pipeline fixing frames 605 drive the pipeline fixing frames 605 to descend, and the hose 603 is unfolded, and oxygenation work can be carried out at this time.

[0044] Although embodiments of the present invention have been shown and described, it will be appreciated by those skilled in the art that various changes, modifications, substitutions and variations may be made to the embodiments without departing from the principles and spirit of the present invention, and that the scope of the present invention is defined by the appended claims and their equivalents.

Claims

1. A floating photovoltaic water oxygenation intelligent control and treatment system, comprising a central column (101), characterized in that: The upper end of the central column (101) is provided with a sunshade component for preventing the water body from being too hot, the lower end of the central column (101) is fixedly connected to a bracket (103), the lower end of the bracket (103) is provided with a moving component for driving the treatment system to move, a plurality of balloons (301) are fixedly connected around the bracket (103), the balloons (301) are hollow structures, and the inside of the balloons (301) is filled with gas, and a plurality of aeration components for transporting oxygen into the water are also provided on the bracket (103), and two rope winding components for storing the aeration components are provided next to each aeration component, and the rope winding components are installed on the bracket (103); The sunshade assembly comprises a plurality of solar panel deployment assemblies, wherein the solar panel deployment assemblies are arranged outside the central column (101), a protective ring (102) is arranged outside the solar panel deployment assemblies, a solar panel drive motor (404) is fixedly connected above the central column (101), an output shaft of the solar panel drive motor (404) is fixedly connected to a solar panel drive block (405), and a cleaning assembly for cleaning the solar panel (401) is arranged above the sunshade assembly; The solar panel deployment assembly comprises a plurality of solar panels (401), wherein the bottom solar panel (401) is fixedly connected to the central column (101) and the protective ring (102), the inner side of each of the remaining solar panels (401) is slidably connected to the central column (101), and the outer side of each of the solar panels (401) is slidably connected to the protective ring (102), and the plurality of solar panels (401) are arranged in an overlapping manner, the outer side of the bottom solar panel (401) is provided with a sliding groove (402), and the outer side of the top solar panel (401) is provided with a sliding groove (402). The outer side of the solar panel (401) is fixedly connected to a sliding block (403); the outer side of the central solar panel (401) is provided with a sliding groove (402) and is fixedly connected to the sliding block (403); the sliding block (403) is arranged below the sliding groove (402); every two adjacent solar panels (401) are slidably connected by inserting the sliding block (403) into the sliding groove (402); the solar panels (401) at the top of the plurality of solar panel deployment assemblies are all fixedly connected to the solar panel driving block (405); The lower end of the bracket (103) is fixedly connected to a thermometer (104).

2. The floating photovoltaic water oxygenation intelligent control and treatment system according to claim 1 is characterized by: The cleaning assembly comprises a cleaning scraper (506); the cleaning motor (501) is fixedly connected inside the central column (101); the output shaft of the cleaning motor (501) is fixedly connected to the cleaning screw (502); the cleaning screw (502) is externally threadedly connected to the cleaning screw sleeve (503); a limiting groove (507) is provided at the position of the cleaning screw (502) on the central column (101); the limiting groove (507) is provided below the sunshade assembly; the outer side of the cleaning screw sleeve (503) is fixedly connected to one end of a connecting rod (504); the connecting rod (504) is slidably connected in the limiting groove (507); the other end of the connecting rod (504) is fixedly connected to a connecting frame (505); the connecting frame (505) is slidably connected to the outer side of the central column (101); a plurality of cleaning scrapers (506) are fixedly connected to the connecting frame (505); the number of cleaning scrapers (506) is the same as the number of solar panel unfolding assemblies.

3. The floating photovoltaic water oxygenation intelligent control and treatment system according to claim 1 is characterized by: The moving assembly comprises a paddle board (201); the lower end of the bracket (103) is fixedly connected to the paddle board motor (202) via a rod; and the output shaft of the paddle board motor (202) is fixedly connected to the paddle board (201).

4. The floating photovoltaic water oxygenation intelligent control and treatment system according to claim 1 is characterized by: The aeration assembly comprises a hose (603), a plurality of hard tubes (602) are fixedly connected to the outside of the bracket (103), the upper end of the hard tube (602) is fixedly connected to the air inlet pipe (601), the air inlet pipe (601) is in a U-shape, the middle of the air inlet pipe (601) is fixedly connected to one end of a drainage pipe (604), the other end of the drainage pipe (604) extends to the lower end of the bracket (103), the lower end of the hard tube (602) is connected to a pipe fixing frame assembly, the lower end of the pipe fixing frame assembly is connected to the hose (603), and the hose (60 3) is also provided with a plurality of pipe fixing frame assemblies, the hose (603) is provided with an exhaust port (608) at the lower end of the pipe fixing frame assembly, the hose (603) is fixedly connected with an air valve (609) at the position of the exhaust port (608), the air valve (609) is connected to the pipe fixing frame assembly, the air inlet pipe (601) is fixedly connected with a filter screen (606) in the middle of a section near the hard pipe (602), the filter screen (606) is provided with a plurality of holes, and the hard pipe (602) is fixedly connected with an air pump (607) in the middle.

5. The floating photovoltaic water oxygenation intelligent control and treatment system according to claim 4 is characterized by: The air inlet pipe (601), the hard pipe (602) and the soft pipe (603) are internally connected to each other.

6. The floating photovoltaic water oxygenation intelligent control and treatment system according to claim 4 is characterized by: The pipe fixing frame assembly comprises a pipe fixing frame (605), the lower end of the hard pipe (602) is fixedly connected to the soft pipe (603), a plurality of pipe fixing frames (605) are fixedly connected to the soft pipe (603), the upper end of the pipe fixing frame (605) at the uppermost end of the soft pipe (603) is fixedly connected to the hard pipe (602), the outer side of the pipe fixing frame (605) is fixedly connected to a counterweight block (610), a bubble crushing rod motor (612) and two rope rings (613), the inner side of the pipe fixing frame (605) is fixedly connected to an air valve (609), the output shaft of the bubble crushing rod motor (612) is fixedly connected to a bubble crushing rod (611), the bubble crushing rod (611) is rotatably connected to the pipe fixing frame (605), a plurality of needles for crushing bubbles are fixedly connected to the bubble crushing rod (611), the bubble crushing rod (611) is arranged at the position of the exhaust port (608), and the two rope rings (613) are symmetrically arranged on the pipe fixing frame (605).

7. The floating photovoltaic water oxygenation intelligent control and treatment system according to claim 6 is characterized by: The rope winding assembly comprises a rope (614). A rope winding rod motor (616) is fixedly connected to the bracket (103). The output shaft of the rope winding rod motor (616) is fixedly connected to the rope winding rod (615). The rope winding rod (615) is rotatably connected to the bracket (103). One end of the rope (614) is fixedly connected to the rope winding rod (615). The rope (614) first passes through a rope ring (613) on a pipe fixing frame (605) at the lower end of the hard pipe (602). The rope (614) then passes through a plurality of rope rings (613) on the hose (603) in sequence. The other end of the rope (614) is fixedly connected to a rope ring (613) on the pipe fixing frame (605) at the lower end of the hose (603). The rope rings (613) are all rope rings (613) on the same side.

Citation Information

Patent Citations

  • Floating type solar aeration device based on wireless control

    CN113683210A