Solar aerator
By using the pole and rope structure of the solar-powered aerator, combined with a one-way valve design, oxygenation of deep water is achieved, solving the problem of deep water oxygenation in existing technologies and improving the applicability and ecological restoration capabilities of the equipment.
Patent Information
- Application Number
- CN202520505042.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-21
- Publication Date
- 2026-03-17
- Estimated Expiration
- 2035-03-21
AI Technical Summary
Existing aerators are not effective at oxygenating deep water, especially water deeper than 3 meters.
A solar-powered aerator was designed, employing a rod and rope structure to suspend the aeration components in deep water. A one-way valve ensures that the gas is discharged into the water in one direction, and a counterweight ball increases stability. Multiple aeration components can be connected to cover a large area of water.
It enables direct oxygenation of deep water, improves the hypoxia of bottom water, enhances the applicability and flexibility of the equipment, extends its service life, and is suitable for the ecological restoration of large ponds or lakes.
Smart Images

Figure CN223994212U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of oxygenation technology, and in particular to a solar-powered oxygenation machine. Background Technology
[0002] A fishpond aerator is a machine commonly used in aquaculture. Its main function is to increase the oxygen content in the water to ensure that the fish do not lack oxygen, while also inhibiting the growth of anaerobic bacteria in the water and preventing the pond water from deteriorating and threatening the fish's living environment.
[0003] There are many types of aerators available, but most of them are only effective for oxygenating shallow water (about 1-3 meters) in fish ponds. It is more difficult to oxygenate deep water (below 3 meters). Therefore, this application proposes a solar aerator that can be used for oxygenating deep water. Utility Model Content
[0004] In order to overcome the shortcomings of existing technology, this utility model provides a solar-powered aerator that can directly oxygenate deep water and improve the oxygen deficiency of bottom water.
[0005] To achieve the above objectives, the technical solution adopted by this utility model is as follows:
[0006] A solar-powered aerator includes: a float, on the top of which an air pump and a solar power generation component are installed; an air supply pipe is installed on the air pump; an air outlet component is installed at the end of the air supply pipe away from the air pump; the solar-powered aerator also includes a pole, the pole being longer than 3 meters; a top plate is fixed to the top of the pole; a rope is installed at the bottom of the top plate; and the bottom end of the rope is fixed to the air outlet component.
[0007] Preferably, the air outlet assembly includes an air reservoir connected to the air supply pipe. The air reservoir is equipped with multiple installation pipes that communicate with the air reservoir. A one-way valve is installed at the end of the installation pipe away from the air reservoir, and an air nozzle or connecting pipe is installed at the end of the one-way valve away from the installation pipe.
[0008] Preferably, the one-way valve includes a valve body, the mounting pipe and the air nozzle or connecting pipe are all threadedly sealed to the valve body, a fixing plate is fixed inside the valve body, a spring is fixed to one side of the fixing plate, a blocking plate is provided at the end of the spring away from the fixing plate, the blocking plate is slidably sealed to the inner wall of the valve body, and multiple grooves are provided on the inner wall of the valve body.
[0009] Preferably, a baffle is provided between the blocking plate and the air nozzle, the baffle being used to block the blocking plate.
[0010] Preferably, a rotating plate is rotatably mounted on the top of the air bag, and the insert rod passes through the rotating plate and is movably connected to the rotating plate.
[0011] Preferably, a counterweight ball is fixedly installed at the bottom of the air bag.
[0012] Preferably, there are multiple air outlet components, and two connected air outlet components are connected by a connecting pipe.
[0013] Compared with the prior art, the present invention has the following beneficial effects:
[0014] (1) Through the design of the rod and rope, the air outlet component can be suspended in the deep water layer, directly oxygenating the deep water, improving the hypoxia of the bottom water, and helping to promote the overall health and ecological balance of the water.
[0015] (2) By changing the length of the rope, the depth of the air outlet component in the water can be easily adjusted to meet the needs of different water depths, thus improving the applicability and flexibility of the equipment.
[0016] (3) By connecting multiple air outlet components, oxygenation can be achieved for a large water area, which is especially suitable for ecological restoration and water quality improvement of large ponds or lakes.
[0017] (4) The design of the one-way valve ensures that the gas can only flow from the gas bag to the gas nozzle and be discharged into the water, avoiding water backflow into the gas bag, protecting the equipment from damage and extending its service life.
[0018] (5) The counterweight ball increases the weight of the air outlet component, enabling it to sink stably to the designated position. At the same time, the design of the rotating plate facilitates the installation and fixation of the plug rod, ensuring the stability and reliability of the equipment. Attached Figure Description
[0019] Figure 1 This is a schematic diagram of the structure of the solar-powered aerator provided by this utility model;
[0020] Figure 2 for Figure 1 Enlarged view of section A;
[0021] Figure 3 for Figure 1 The diagram shows a cross-sectional view of the one-way valve in the solar-powered aerator.
[0022] The corresponding names of the attached figures are as follows: 1-float, 2-air pump, 3-solar power generation component, 4-air supply pipe, 5-air bag, 6-installation pipe, 7-one-way valve, 71-valve body, 72-fixed plate, 73-spring, 74-blocking plate, 75-groove, 76-baffle, 8-air nozzle, 9-insertion rod, 10-top plate, 11-rope, 12-rotating plate, 13-counterweight ball. Detailed Implementation
[0023] The present invention will be further described below with reference to the accompanying drawings and embodiments. The embodiments of the present invention include, but are not limited to, the following embodiments.
[0024] Example 1
[0025] like Figure 1 As shown, the solar-powered aerator provided by this utility model includes: a float 1, an air pump 2 and a solar power generation component 3 installed on the top of the float 1, the solar power generation component 3 generating and storing electrical energy to power the air pump 2, an air supply pipe 4 installed on the air pump 2, and an air outlet component installed at the end of the air supply pipe 4 away from the air pump 2. In use, when the air pump 2 compresses air to a certain pressure and delivers it to the air outlet component through the air supply pipe 4, and when the air pressure inside the air outlet component reaches a certain value... The solar aerator discharges high-pressure air into the water, thereby increasing the oxygen content in the water. The solar aerator also includes a pole 9, which is longer than 3 meters. A top plate 10 is fixed to the top of the pole 9, and a rope 11 is installed at the bottom of the top plate 10. The rope 11 is longer than 3 meters and its bottom end is fixed to the air outlet component. When in use, the air outlet component can be suspended in the deep water layer of the pond by the rope 11, thereby directly delivering high-pressure air into the deep water and increasing the oxygen content of the deep water.
[0026] Example 2
[0027] like Figure 2 As shown, the air outlet assembly includes an air reservoir 5, which is connected to the air supply pipe 4. Multiple installation pipes 6 are installed on the air reservoir 5, and the installation pipes 6 are connected to the air reservoir 5. A one-way valve 7 is installed at the end of the installation pipe 6 away from the air reservoir 5, and an air nozzle 8 or a connecting pipe 14 is installed at the end of the one-way valve 7 away from the installation pipe 6. The air pump 2 delivers high-pressure air to the air reservoir 5 through the air supply pipe 4. When the pressure in the air reservoir 5 reaches a certain value, the high-pressure gas in the air reservoir 5 will enter the air nozzle 8 through the one-way valve 7 and be discharged into the water.
[0028] Furthermore, the one-way valve 7 includes a valve body 71. The mounting pipe 6 and the air nozzle 8 or connecting pipe 14 are all threadedly sealed to the valve body 71. A fixing plate 72 is fixed inside the valve body 71. A spring 73 is fixed to one side of the fixing plate 72. A blocking plate 74 is provided at the end of the spring 73 away from the fixing plate 72. The blocking plate 74 is slidably sealed to the inner wall of the valve body 71. Multiple grooves 75 are provided on the inner wall of the valve body 71. As the air pressure in the air chamber 5 gradually increases, the blocking plate 74 is pushed by the air pressure and gradually moves away from the mounting pipe 6, thereby stretching the spring 73. When the blocking plate 74 moves to the groove 75, the high-pressure air will enter the air nozzle 8 through the groove 75 and be discharged into the water. When the air pressure in the air chamber 5 decreases to a certain value, the spring 73 contracts and pulls the blocking plate 74 back to its original position. This can prevent water from entering the air chamber 5 through the air nozzle 8.
[0029] Furthermore, a baffle 76 is provided between the blocking plate 74 and the air nozzle 8. The baffle 76 is used to block the blocking plate 74 and limit the blocking plate 74. During the exhaust process, even if the pressure in the air bag 5 is high, the blocking plate 74 will not come into contact with the air nozzle 8, thereby ensuring that the air is discharged normally.
[0030] Example 3
[0031] like Figure 2 As shown, a rotating plate 12 is rotatably mounted on the top of the air bag 5. The insertion rod 9 passes through the rotating plate 12 and is movably connected to the rotating plate 12. The rotating plate 12 serves to limit the position of the air bag 5, preventing the air bag 5 from floating in the water. At the same time, the rotating plate 12 can rotate, which also facilitates the insertion rod 9 to pass through the rotating plate 12.
[0032] Example 4
[0033] like Figure 2 As shown, a counterweight ball 13 is fixedly installed at the bottom of the air bag 5. The counterweight ball 13 increases the weight of the air outlet component, enabling the air outlet component to sink to the designated position.
[0034] Example 5
[0035] like Figure 1 As shown, there are multiple air outlet components. Two connected air outlet components are connected by a connecting pipe 14. Specifically, both ends of the connecting pipe 14 are respectively threaded and sealed to the corresponding one-way valve 7. The reason for setting up this embodiment is that some ponds are relatively large, and a single aerator can only aerate a small area of water. If you want to increase the water area aerated by a single aerator, you can achieve the above purpose by connecting multiple connecting pipes 14 and air outlet components.
[0036] This device can be used in both deep and shallow water. The height of the air outlet component can be changed simply by altering the length of the rope 11, which makes this application more widely applicable.
[0037] Working principle: When in use, place an appropriate number of air outlet components in the water, while ensuring that the length of the rope 11 meets the requirements and that the insertion rod 9 is stably inserted into the pond. Then, start the high-pressure air pump 2, so that high-pressure gas enters one of the air bags 5 through the delivery pipe 4. Then, the high-pressure air in this air bag 5 enters the corresponding air bag 5 through the connecting pipe 14. As the air pressure in each air bag 5 increases, the blocking plate 74 will be pushed by the air pressure and gradually move away from the installation pipe 6, thereby stretching the spring 73. When the blocking plate 74 moves to the groove 75, the high-pressure air will enter the air nozzle 8 through the groove 75 and be discharged into the water, thereby achieving the purpose of oxygenation of the deep water layer.
Claims
1. A solar oxygen booster comprising: The buoy (1) is characterized in that the air pump (2) is installed on the top of the buoy (1), and the air pump (2) is provided with the air conveying pipe (4), the air conveying pipe (4) is provided with the air outlet assembly at the end away from the air pump (2), the solar oxygenator further comprises the inserting rod (9), the length of the inserting rod (9) is greater than 3 meters, the top end of the inserting rod (9) is fixedly provided with the top plate (10), the bottom of the top plate (10) is provided with the rear rope (11), and the bottom end of the rope (11) is fixedly connected with the air outlet assembly.
2. A solar energy oxygen enhancer according to claim 1, characterized in that, The air outlet assembly comprises the air bag (5), the air bag (5) is connected with the air conveying pipe (4), a plurality of installation pipes (6) are installed on the air bag (5), the installation pipes (6) are communicated with the air bag (5), the installation pipes (6) are provided with the one-way valve (7) at the end away from the air bag (5), and the one-way valve (7) is provided with the air nozzle (8) or the connecting pipe (14) at the end away from the installation pipe (6).
3. A solar energy oxygen generator as claimed in claim 2, wherein The one-way valve (7) comprises the valve body (71), the installation pipe (6) and the air nozzle (8) or the connecting pipe (14) are in threaded sealing connection with the valve body (71), the valve body (71) is fixedly provided with the fixed plate (72) in the inside, one side of the fixed plate (72) is fixedly provided with the spring (73), the spring (73) is provided with the blocking plate (74) at the end away from the fixed plate (72), the blocking plate (74) is in sliding sealing connection with the inner wall of the valve body (71), and a plurality of grooves (75) are formed in the inner wall of the valve body (71).
4. A solar energy oxygen enhancer according to claim 3, characterized in that, The blocking plate (74) and the air nozzle (8) are further provided with the baffle (76), and the baffle (76) is used for blocking the blocking plate (74).
5. A solar energy oxygen enhancer as claimed in claim 2, wherein, The air bag (5) is rotatably provided with the rotating plate (12) at the top, the inserting rod (9) penetrates through the rotating plate (12) and is movably connected with the rotating plate (12).
6. A solar energy oxygen enhancer as claimed in claim 2, wherein, The air bag (5) is fixedly provided with the counterweight ball (13) at the bottom.
7. A solar energy oxygen enhancer as claimed in claim 2, wherein The air outlet assembly is provided with a plurality of air outlet assemblies, and two connected air outlet assemblies are connected through the connecting pipe (14).