Efficient micro-nano reoxygenation device
By designing a high-efficiency micro-nano reoxygenation device including floating plates, micro-nano reoxygenation machines, dispersing pipes, discharge pipes and controls, the problems of limited oxygen delivery distance and low efficiency of existing devices are solved, and uniform reoxygenation is achieved at different depths in the pool, improving the efficiency and uniformity of reoxygenation work.
Patent Information
- Application Number
- CN202421572268.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-04
- Publication Date
- 2025-06-10
- Estimated Expiration
- 2034-07-04
AI Technical Summary
When the existing micro-nano reoxygenation device is working, the oxygen delivery distance is limited, the conveying period is long at the position on the edge of the pond, and the direction of the release head is single, which affects the efficiency of reoxygenation work.
A high-efficiency micro-nano reoxygenation device is designed, including floating plates, micro-nano reoxygenation machines, dispersing tubes, discharge tubes and operating controls. By setting up a dispersion pipe and a discharge pipe, it is possible to reoxygenate at different depths in the pool to improve the uniformity and efficiency of reoxygenation. The controls drive the floating plate and micro-nano reoxygenation machine to rotate and move, forming a mosquito coil-shaped trajectory, expanding the oxygen coverage range, and improving the uniformity of oxygen distribution.
The device can evenly increase the dissolved oxygen content at different depths in the pool, improve the efficiency and uniformity of reoxygenation work, expand the oxygen coverage range, and stabilize and evenly increase oxygen in the water.
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Figure CN222961261U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of micro-nano oxygenation devices, and particularly relates to an efficient micro-nano oxygenation device. Background Technique
[0002] The micro-nano oxygenation technology is an efficient water body oxygenation technology. It uses special equipment to dissolve oxygen in water in the form of extremely tiny bubbles, forming supersaturated concentration of dissolved oxygen water. These extremely tiny bubbles have a large specific surface area and a long residence time, which can not only improve the dissolved oxygen content in the water body, but also achieve the maximum oxygen utilization efficiency. The micro-nano oxygenation technology is particularly suitable for maintaining the oxygen-rich environment necessary during the restoration and maintenance of lake and reservoir water ecosystems, and can improve water quality by directly dissolving supersaturated concentration of oxygen into the water body.
[0003] In the prior art, the existing micro-nano oxygenation device is mainly installed in the middle of the pond through a floating plate. Then, the output head of the micro-nano oxygenation device is placed in the water, and then the device is started to carry out oxygenation work by inputting oxygen in the form of bubbles into the water. However, during the work, the oxygen delivery distance of the oxygenation device is limited, and the delivery period is longer at the side of the pond. At the same time, the direction of the connected release head is single, which affects the work efficiency during the oxygenation work. Summary of the Utility Model
[0004] Aiming at the deficiencies existing in the prior art, the purpose of the utility model is to provide an efficient micro-nano oxygenation device to solve the technical problems mentioned in the above background technique.
[0005] The above technical purpose of the utility model is achieved through the following technical solutions:
[0006] An efficient micro-nano oxygenation device includes a floating plate and a micro-nano oxygenation machine. Two support pieces are fixedly installed on the top side of the floating plate, and the micro-nano oxygenation machine is fixedly installed on the top sides of the two support pieces. An avoidance through groove is opened on the top side of the floating plate. The output end of the micro-nano oxygenation machine is connected with two release heads. The bottom end of the release head is fixedly connected with a dispersion pipe. A number of transfer pipes are communicated with the side of the dispersion pipe. The bottom end of the transfer pipe is connected with a discharge pipe. A control member is connected to the side of the floating plate.
[0007] In a preferred example of the utility model, it can be further configured as follows: The control member includes a connecting plate, the connecting plate is fixedly connected with the side of the floating plate, a connecting rod is fixedly connected to the side of the connecting plate, and a support sleeve is threadedly connected to the end of the connecting rod.
[0008] In a preferred example, the present utility model can be further configured as follows: One end of the support sleeve away from the connecting plate is rotatably connected with an installation cavity tube, a driving motor is arranged below the installation cavity tube, and the output end of the driving motor is fixedly connected with the outer peripheral wall of the installation cavity tube.
[0009] In a preferred example, the present utility model can be further configured as follows: A column is arranged below the driving motor, the top end of the column is fixedly connected with an installation top plate, and the driving motor is embedded in the installation top plate and fixedly connected with the installation top plate.
[0010] In a preferred example, the present utility model can be further configured as follows: A driving ring is fixedly installed at the top end of the installation top plate, a gear groove is formed on the inner side wall of the driving ring, a bevel gear is fixedly connected to one end of the support sleeve close to the connecting plate, and the bevel gear meshes with the gear groove.
[0011] In a preferred example, the present utility model can be further configured as follows: A rectangular mesh cover is fixedly connected to the bottom side of the floating plate, and the release head, the dispersion tube, the transfer tube and the discharge tube are all located inside the rectangular mesh cover.
[0012] In summary, the present utility model includes at least one of the following beneficial technical effects:
[0013] 1. When the high-efficiency micro-nano reoxygenation device is in use, the cooperation of the arranged dispersion tube and the discharge tube can carry out reoxygenation work at different depths in the pool, improving the uniformity and efficiency during reoxygenation. In addition, the arranged operating part can increase the scope of the reoxygenation work, and can stably and evenly oxygenate the water, improving the efficiency and uniformity of the oxygenation work;
[0014] 2. For the high-efficiency micro-nano reoxygenation device, a connecting plate is connected to the floating plate, then a connecting rod is connected to the side of the connecting plate, and at the same time, a support sleeve is threadedly connected to the other end of the connecting rod, so that the support sleeve serves as the connecting part inside the operating part. By driving the support sleeve to rotate, the connecting rod and the connecting plate are driven to rotate, thereby driving the micro-nano reoxygenator to move;
[0015] 3. For the high-efficiency micro-nano reoxygenation device, the bevel gear rotates by itself and drives the support sleeve to rotate. The arranged support sleeve is threadedly connected with the arranged connecting rod, and the connecting rod is fixedly connected with the arranged connecting plate. Therefore, the connecting rod threadedly connected with the support sleeve will expand and contract in the threaded sleeve, and at the same time, the moving path of the micro-nano reoxygenator during movement will be in the shape of a mosquito coil, so as to increase the coverage range of the oxygen injection work and stably move to improve the uniformity of oxygen injection. Description of the Drawings
[0016] To more clearly illustrate the technical solutions of the embodiments of the present utility model, the following will briefly introduce the attached drawings required for the description of the embodiments. Obviously, the attached drawings in the following description are only some embodiments of the present utility model. For those of ordinary skill in the art, without creative efforts, other attached drawings can also be obtained based on these drawings.
[0017] Figure 1 It is a schematic diagram of the overall structure of an efficient micro-nano oxygenation device of the present utility model.
[0018] Figure 2 It is a schematic diagram of the structure at the floating plate of an efficient micro-nano oxygenation device of the present utility model.
[0019] Figure 3 It is a schematic diagram of the control member structure of an efficient micro-nano oxygenation device of the present utility model.
[0020] In the figure, 1. floating plate; 2. micro-nano oxygenator; 3. support piece; 4. avoidance through groove; 5. release head; 6. dispersion tube; 7. transfer tube; 8. discharge tube; 9. control member; 10. connecting plate; 11. connecting rod; 12. support sleeve; 13. installation cavity tube; 14. driving motor; 15. column; 16. installation top plate; 17. driving ring; 18. gear groove; 19. bevel gear; 20. rectangular mesh cover. Specific embodiments
[0021] The following will further elaborate on the present utility model in conjunction with the attached drawings.
[0022] Embodiment:
[0023] Referring to Figures 1-3 , an efficient micro-nano oxygenation device disclosed by the present utility model includes a floating plate 1 and a micro-nano oxygenator 2. Two support pieces 3 are fixedly installed on the top side of the floating plate 1, the micro-nano oxygenator 2 is fixedly installed on the top sides of the two support pieces 3, an avoidance through groove 4 is opened on the top side of the floating plate 1, the output end of the micro-nano oxygenator 2 is connected to two release heads 5, the bottom end of the release head 5 is fixedly connected to a dispersion tube 6, a number of transfer tubes 7 are communicated with the side of the dispersion tube 6, the bottom end of the transfer tube 7 is connected to a discharge tube 8, and a control member 9 is connected to the side of the floating plate 1.
[0024] In this embodiment, when in use, the control member 9 is fixed in the middle of the pond, and then the control member 9 is connected to the floating board 1. The floating board 1 is used to drive the micro-nano aerator 2 to float on the water surface. When working, a number of transfer pipes 7 are connected to the dispersion pipe 6. Each transfer pipe 7 is connected to an upper discharge pipe 8, and the lengths of each discharge pipe 8 are different. The discharge ends of each discharge pipe 8 are respectively located at the bottom, middle, top and water surface in the pool, so that when the micro-nano aerator 2 outputs oxygen, the oxygen can be at multiple heights in the water. When the floating board 1 is driven to rotate and move by the set control member 9, sufficient oxygen can be more comprehensively input into the water. When the control member 9 drives the floating board 1 and the micro-nano aeration device to rotate, its rotation trajectory is the same as the shape of mosquito coils, so that when transporting tiny oxygen bubbles into the water in the pool, the range of oxygen transportation is increased by rotating the micro-nano aerator 2 along the mosquito coil trajectory. At the same time, the stable rotation speed can make the transported oxygen distribution more uniform, improving the working efficiency of the micro-nano aerator 2.
[0025] In a further preferred embodiment of the present utility model, as Figures 2-3 shown, the control member 9 includes a connecting plate 10, the connecting plate 10 is fixedly connected to the side of the floating board 1, a connecting rod 11 is fixedly connected to the side of the connecting plate 10, and a support sleeve 12 is threadedly connected to the end of the connecting rod 11.
[0026] In this embodiment, the connecting plate 10 is arranged to be connected to the floating board 1, and then a connecting rod 11 is connected to the side of the connecting plate 10. At the same time, a support sleeve 12 is threadedly connected to the other end of the connecting rod 11, so that the support sleeve 12 serves as the connecting part inside the operating member. By driving the support sleeve 12 to rotate, the connecting rod 11 and the connecting plate 10 are driven to rotate, thereby driving the micro-nano aerator 2 to move.
[0027] In a further preferred embodiment of the present utility model, as Figures 1-3 shown, a mounting cavity pipe 13 is rotatably connected to the end of the support sleeve 12 away from the connecting plate 10. A driving motor 14 is arranged below the mounting cavity pipe 13, and the output end of the driving motor 14 is fixedly connected to the outer peripheral wall of the mounting cavity pipe 13.
[0028] In this embodiment, a speed reducer needs to be installed at the output end of the driving motor 14, and then it is connected to the installed cavity pipe 13. The driving motor 14 is a reversible motor, which is equivalent to the two-way motor in the prior art. The driving motor 14 drives the installed cavity pipe 13 to rotate, thereby driving the support sleeve 12 to rotate through the installed cavity pipe 13, so that the support sleeve 12 drives the connecting rod 11 and the connecting plate 10 to rotate. Finally, the floating plate 1 rotates and moves on the water surface, thereby driving the micro-nano aerator 2 to move, and improving the efficiency of oxygen injection into the water.
[0029] In a further preferred embodiment of the present invention, as Figure 3 shown, a column 15 is provided below the driving motor 14. The top end of the column 15 is fixedly connected to an installation top plate 16. The driving motor 14 is embedded in the installation top plate 16 and fixedly connected to the installation top plate 16.
[0030] In this embodiment, the provided column 15 is inserted into the middle of the pool and installed vertically. Then the installation top plate 16 is used to install the driving motor 14, so that the driving motor 14 has support, thereby facilitating the driving motor 14 to drive the installed cavity pipe 13 to rotate, and finally driving the micro-nano aerator 2 to rotate.
[0031] In a further preferred embodiment of the present invention, as Figure 3 shown, a driving ring 17 is fixedly installed at the top end of the installation top plate 16. A gear groove 18 is provided on the inner side wall of the driving ring 17. One end of the support sleeve 12 close to the connecting plate 10 is fixedly connected to a bevel gear 19. The bevel gear 19 meshes with the gear groove 18.
[0032] In this embodiment, when the driving motor 14 drives the installed cavity pipe 13 to drive the support sleeve 12 to rotate, at this time the support sleeve 12 will drive the bevel gear 19 to rotate. The bevel gear 19 is fixedly connected to the provided support sleeve 12, and the bevel gear 19 meshes with the gear groove 18 provided on the driving ring 17. Therefore, the bevel gear 19 will rotate itself and drive the support sleeve 12 to rotate. The provided support sleeve 12 is threadedly connected to the provided connecting rod 11, and the connecting rod 11 is fixedly connected to the provided connecting plate 10. Therefore, the connecting rod 11 threadedly connected to the support sleeve 12 will expand and contract in the threaded sleeve. At the same time, the moving path when the micro-nano aerator 2 moves will be in the shape of a mosquito coil, so as to increase the coverage range of the oxygen injection work and improve the uniformity of oxygen injection by stable movement.
[0033] In a further preferred embodiment of the present invention, as Figure 1As shown, a rectangular mesh cover 20 is fixedly connected to the bottom side of the floating board 1, and the release head 5, the dispersion pipe 6, the transfer pipe 7, and the discharge pipe 8 are all located inside the rectangular mesh cover 20.
[0034] In this embodiment, the provided mesh cover prevents sundries and garbage in the pool from blocking the discharge pipe 8 in the column of water, thus affecting the operation of the micro-nano reoxygenation device.
[0035] The embodiments of this specific implementation manner are all preferred embodiments of the present invention, and do not limit the protection scope of the present invention accordingly. Therefore, all equivalent changes made according to the structure, shape, and principle of the present invention should be covered within the protection scope of the present invention.
Claims
1. A high-efficiency micro-nano reoxygenation device, comprising a floating plate (1) and a micro-nano reoxygenator (2), characterized in that: Two support sheets (3) are fixedly mounted on the top side of the floating plate (1); the micro-nano reoxygenator (2) is fixedly mounted on the top sides of the two support sheets (3); an avoidance slot (4) is provided on the top side of the floating plate (1); two release heads (5) are connected to the output end of the micro-nano reoxygenator (2); a dispersion pipe (6) is fixedly connected to the bottom end of the release head (5); a plurality of transfer pipes (7) are connected to the side of the dispersion pipe (6); a discharge pipe (8) is connected to the bottom end of the transfer pipe (7); and a control member (9) is connected to the side of the floating plate (1).
2. A high-efficiency micro-nano reoxygenation device according to claim 1, characterized in that: The control member (9) comprises a connecting plate (10), the connecting plate (10) being fixedly connected to the side of the floating plate (1), the side of the connecting plate (10) being fixedly connected to a connecting rod (11), the end of the connecting rod (11) being threadedly connected to a support sleeve (12).
3. A high-efficiency micro-nano reoxygenation device according to claim 2, characterized in that: One end of the support sleeve (12) away from the connecting plate (10) is rotatably connected to a mounting cavity tube (13), a driving motor (14) is arranged below the mounting cavity tube (13), and an output end of the driving motor (14) is fixedly connected to the outer peripheral wall of the mounting cavity tube (13).
4. A high-efficiency micro-nano reoxygenation device according to claim 3, characterized in that: A column (15) is provided below the driving motor (14), the top end of the column (15) is fixedly connected to a mounting top plate (16), and the driving motor (14) is embedded in the mounting top plate (16) and fixedly connected to the mounting top plate (16).
5. A high-efficiency micro-nano reoxygenation device according to claim 4, characterized in that: A driving ring (17) is fixedly mounted on the top of the mounting top plate (16), a gear groove (18) is provided on the inner side wall of the driving ring (17), and a bevel gear (19) is fixedly connected to one end of the support sleeve (12) close to the connecting plate (10), and the bevel gear (19) is meshed with the gear groove (18).
6. A high-efficiency micro-nano reoxygenation device according to claim 5, characterized in that: A rectangular mesh cover (20) is fixedly connected to the bottom side of the floating plate (1), and the release head (5), the dispersion pipe (6), the transfer pipe (7) and the discharge pipe (8) are all located inside the rectangular mesh cover (20).