Water body aeration equipment

Through the combined design of floating components, swing components and aeration components, the problem of small aeration range of existing water aeration equipment is solved, large-scale aeration and water stirring are achieved, and the oxygen dissolution efficiency is improved.

CN223357494UActive Publication Date: 2025-09-19THE SECOND CONSTRUCTION CO LTD OF CHINA CONSTRUCTION THIRD ENGINEERING BUREAU
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Patent Information

Application Number
CN202422474443.6
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-10-12
Publication Date
2025-09-19
Estimated Expiration
2034-10-12

AI Technical Summary

Technical Problem

The existing water aeration equipment has a small aeration range and poor aeration effect because the impeller is restricted by the rotation resistance under water.

Method used

The combined design of floating components, swing components and aeration components is adopted. The driving assembly drives the aeration components to swing up and down and diffuse and gather with the center as the center of the circle. Combined with the oxygen supply component to provide oxygen, large-scale aeration and stirring are achieved.

Benefits of technology

It expands the aeration influence range, improves the aeration effect, enhances the water stirring ability, and improves the dissolution efficiency of oxygen in the water.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses water body aeration equipment which comprises a floating component and a water body aeration component, the swinging component comprises a first connecting ring arranged below the floating component, a second connecting ring is arranged below the first connecting ring, a folding joint plate is further arranged between the first connecting ring and the second connecting ring, the folding joint plate comprises a first joint plate and a second joint plate, and a driving assembly is further arranged between the first connecting ring and the second connecting ring; the aeration component is arranged on the first joint plate; the oxygen supply component is arranged in the floating component, and one end of the oxygen supply component is connected with each aeration component; according to the utility model, when each aeration component supplies oxygen to a water body, the swinging component drives each aeration component to swing up and down and diffuse towards the periphery and gather towards the inner side by taking the center of the first connecting ring as a circle center, so that the influence range of the aeration components during oxygen supply is expanded, and meanwhile, the aeration component stirs the water body during swinging, so that the aeration effect is improved.
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Description

Technical Field

[0001] The utility model relates to the technical field of water body aeration repair, in particular to a water body aeration device. Background Art

[0002] Water aeration remediation, that is, oxygenating the lower layer of water within a certain range near the water intake to increase its dissolved oxygen concentration, destroying the suspended state of algae by mixing the upper and lower water layers, causing them to migrate downward, thereby inhibiting their growth. In the prior art, publication number CN206173105U discloses a water aeration remediation device; the water aeration remediation device includes: a float floating on the water surface, a motor arranged on the float, a destratified aeration impeller located below the water surface, a self-priming aeration impeller located below the destratified aeration impeller, a control system arranged on the float, and a power supply system; the destratified aeration impeller and the self-priming aeration impeller are connected to the motor output shaft via a hollow shaft; the utility model has a simple structure and is easy to use. It adopts a dual-impeller design and can aerate both shallow and deep layers of the water body at the same time, with an aeration effect twice that of a single impeller.

[0003] In actual use, the above scheme adopts a double-impeller aeration method. Since the impeller is restricted by the rotational resistance underwater, its diameter cannot be made very large, resulting in a smaller aeration range and poor aeration effect, which needs further improvement. Utility Model Content

[0004] The main purpose of the utility model is to provide a water aeration device that can improve the aeration effect.

[0005] To achieve the above-mentioned purpose, the present invention provides a water aeration device, comprising:

[0006] A floating component, wherein the floating component floats on the surface of the water body to be repaired;

[0007] The swing component includes a first connecting ring arranged below the floating component, a second connecting ring is provided below the first connecting ring, and the first connecting ring and the second connecting ring are arranged concentrically, and a plurality of folding joint plates are further provided between the first connecting ring and the second connecting ring, each of the folding joint plates is distributed in a ring array with the center of the first connecting ring as the center, and the folding joint plates include a first joint plate and a second joint plate, the first joint plate and the second joint plate are rotatably connected, the top end of the first joint plate is rotatably connected to the first connecting ring, and the bottom end of the second joint plate is rotatably connected to the second connecting ring, and also includes a driving assembly arranged between the first connecting ring and the second connecting ring, the driving assembly is used to drive the second connecting ring to move back and forth in a direction close to or away from the first connecting ring;

[0008] a plurality of aeration components, each of the aeration components being arranged on a corresponding first joint plate, and the aeration components being used to add oxygen to the water;

[0009] The oxygen supply component is arranged in the floating component, one end of which is connected to each of the aeration components, and the oxygen supply component is used to provide oxygen to each of the aeration components.

[0010] Furthermore, a connecting component is provided between the floating component and the swinging component, and the connecting component is used to connect the floating component and the swinging component, so that the floating component drives the swinging component to suspend in the water. The connecting component includes a mounting seat arranged at the bottom of the floating component, and a first guide rod is provided at the bottom of the mounting seat. A second guide rod is also vertically provided at the bottom end of the first connecting ring. The driving assembly and the second connecting ring are both vertically slidably arranged on the second guide rod. When the driving assembly is working, the driving assembly drives the second connecting ring to move vertically back and forth on the second guide rod.

[0011] Furthermore, the driving assembly includes a driving cylinder vertically arranged between the first connecting ring and the second connecting ring, and the driving cylinder is connected to the bottom of the first connecting ring. A first power unit is arranged in the driving cylinder, and an eccentric wheel is provided on the moving end of the first power unit. The eccentric wheel is also provided with a connecting rod, one end of the connecting rod is rotatably connected to the eccentric wheel, and the other end is rotatably connected to the second connecting ring. When the first power unit drives the eccentric wheel to rotate, the eccentric wheel drives the second connecting ring to move back and forth up and down through the connecting rod.

[0012] Furthermore, the aeration component includes a connecting sleeve arranged on the first joint plate, a hollow air-guiding tube is inserted in the connecting sleeve, the hollow air-guiding tube is connected to the oxygen supply component through a hose, and an aeration head is provided at one end of the hollow air-guiding tube away from the connecting sleeve, and the hollow air-guiding tube is used to transport oxygen to the aeration head so that the aeration head can inject air into the water.

[0013] Furthermore, the floating component includes an annular airbag, which is arranged above the first guide rod. A chassis is provided on the airbag, and the airbag is used to provide buoyancy for the chassis to float on the water surface. The oxygen supply component is arranged on the chassis, and the bottom of the chassis is connected to the mounting seat. A semicircular transparent dome is also provided on the chassis, and the transparent dome covers the top of the oxygen supply component to protect the oxygen supply component.

[0014] Furthermore, the oxygen supply component includes an air pump arranged on the chassis, and the air pump is connected to each of the air-conducting hollow tubes through a hose. The air pump is used to transport oxygen to each of the air-conducting hollow tubes. The chassis is also provided with a plurality of solar photovoltaic panels, and each of the solar photovoltaic panels is arranged in a circular array on the lower side of the transparent dome with the center of the chassis as the center. A battery is also provided on the chassis, and the input end of the battery is connected to each of the solar photovoltaic panels, and the output end of the battery is connected to the air pump and the first power unit. The solar photovoltaic panel is used to charge the battery, so that the battery provides power to the air pump and the first power unit.

[0015] Furthermore, the air pump and the first power unit are both signal-connected to the control console;

[0016] A connection plate is provided on the top of the transparent dome, a plurality of air holes are opened on the connection plate, and a signal antenna is provided on the connection plate. The signal antenna is used to increase the signal strength between the air pump and the first power unit.

[0017] Furthermore, an anchoring component is provided under the second connecting ring, and the anchoring component includes a positioning plate arranged at the bottom end of the second guide rod, a shell is provided at the bottom of the positioning plate, a second power unit is provided inside the shell, and a winding rod is provided on the moving end of the second power unit, a traction rope is wound on the winding rod, one end of the traction rope extends out of the shell and is provided with a positioning anchor, and the traction rope extends out of the shell and is dynamically sealed with the shell, the positioning anchor is used to constrain the movement of the airbag, and a constraint component is also provided on the shell, and when the constraint component is connected to the winding rod, the constraint component is used to constrain the rotation of the winding rod.

[0018] Furthermore, one end of the winding rod away from the second power unit extends out of the housing and is provided with a first limiting hole, and the connection between the winding rod and the housing is a dynamic sealing connection;

[0019] The constraint assembly includes a limit plate arranged at one end of the shell away from the second power unit, and a second limit hole corresponding to the first limit hole is opened on the limit plate. A limit pin is also provided in the second limit hole. When the limit pin passes through the second limit hole and is inserted into the first limit hole, the limit pin is used to prevent the winding rod from rotating.

[0020] The beneficial effects of the present invention are as follows:

[0021] The utility model cooperates with the aeration components through the swing component. When the aeration components supply oxygen to the water body, the swing component drives the aeration components to swing up and down and spreads to the surroundings and gathers inwards with the center of the first connecting ring as the center of the circle, thereby expanding the influence range of the aeration components when supplying oxygen. At the same time, the aeration components stir the water body when swinging, thereby improving the aeration effect. BRIEF DESCRIPTION OF THE DRAWINGS

[0022] Figure 1 This is a three-dimensional view of the front of the water aeration device of the utility model;

[0023] Figure 2 It is a cross-sectional view of the water aeration device of the utility model;

[0024] Figure 3 It is a structural view of the driver component;

[0025] Figure 4 yes Figure 3 Magnified view at point A in the middle;

[0026] Figure 5 is a cross-sectional view of the anchoring component;

[0027] Figure 6 It is a structural view of the anchor component.

[0028] Description of reference numerals:

[0029] 1. Floating component; 11. Airbag; 12. Chassis; 13. Transparent dome; 2. Swinging component; 21. First connecting ring; 22. Second connecting ring; 23. Folding joint plate; 231. First joint plate; 232. Second joint plate; 24. Driving assembly; 241. Driving cylinder; 242. First power unit; 243. Eccentric wheel; 244. Connecting rod; 3. Connecting component; 31. Mounting seat; 32. First guide rod; 33. Second guide rod; 4. Aeration component; 41. Connecting sleeve; 42. Air-guiding hollow tube; 43. Aeration head; 5. Oxygen supply component; 51. Air pump; 52. Solar photovoltaic panel; 53. Battery; 6. Connecting plate; 61. Air vent; 7. Signal antenna; 8. Anchoring component; 81. Positioning plate; 82. Shell; 83. Second power unit; 84. Winding rod; 841. First limiting hole; 85. Towing rope; 86. Positioning anchor; 87. Constraint assembly; 871. Limiting plate; 8711. Second limiting hole; 872. Limiting pin. Specific implementation plan

[0030] The following will be combined with the accompanying 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 embodiments described are only part of the embodiments of the present invention, not all of the embodiments. In the absence of conflict, the embodiments and features in the embodiments of the present application can be combined with each other.

[0031] See also Figures 1-6 .

[0032] The utility model discloses a water aeration device, comprising:

[0033] A floating component 1, wherein the floating component 1 floats on the surface of the water body;

[0034] The swinging component 2 includes a first connecting ring 21 arranged below the floating component 1, a second connecting ring 22 is provided below the first connecting ring 21, and the first connecting ring 21 and the second connecting ring 22 are concentrically arranged, and a plurality of folding joint plates 23 are further provided between the first connecting ring 21 and the second connecting ring 22, each folding joint plate 23 is distributed in a ring array with the center of the first connecting ring 21 as the center, and the folding joint plate 23 includes a first joint plate 231 and a second joint plate 232, the first joint plate 231 and the second joint plate 232 are rotatably connected, the top end of the first joint plate 231 is rotatably connected to the first connecting ring 21, and the bottom end of the second joint plate 232 is rotatably connected to the second connecting ring 22, and also includes a driving component 24 arranged between the first connecting ring 21 and the second connecting ring 22, the driving component 24 is used to drive the second connecting ring 22 to move back and forth in a direction close to or away from the first connecting ring 21;

[0035] A plurality of aeration components 4, each aeration component 4 is arranged on a corresponding first joint plate 231, and the aeration component 4 is used to add oxygen to the water;

[0036] The oxygen supply component 5 is disposed in the floating component 1 , and one end of the oxygen supply component 5 is connected to each aeration component 4 . The oxygen supply component 5 is used to provide oxygen to each aeration component 4 .

[0037] In a specific implementation, when aerating the water body, the floating component 1 is first placed in the water body, and the swing component 2 is suspended in the water body. When the floating component 1 is placed, the driving component 24 is started to drive the second connecting ring 22 to move back and forth in the direction of approaching or moving away from the first connecting ring 21. When the second connecting ring 22 moves, the distance between the first connecting ring 21 and the second connecting ring 22 changes, causing the first joint plate 231 and the second joint plate 232 to flip and fold, so that each aeration component 4 swings up and down with the rotation connection point between the first joint plate 231 and the first connecting ring 21 as the center of the circle, and then causes each aeration component 4 to spread outward and converge inward with the center of the first connecting ring 21 as the center of the circle. When each aeration component 4 moves, it will stir the water body. At this time, the supply component provides oxygen to each aeration component 4, so that each aeration component 4 adds oxygen to the water while swinging, thereby improving the aeration efficiency.

[0038] In the present invention, the swinging component 2 cooperates with each aeration component 4. When each aeration component 4 supplies oxygen to the water body, the swinging component 2 drives each aeration component 4 to swing up and down and spreads to the surroundings and gathers inward with the center of the first connecting ring 21 as the center of the circle, thereby expanding the influence range of the aeration component 4 when supplying oxygen. At the same time, the aeration component 4 stirs the water body when swinging, thereby improving the aeration effect.

[0039] In one embodiment, a connecting component 3 is provided between the floating component 1 and the swinging component 2. The connecting component 3 is used to connect the floating component 1 and the swinging component 2, so that the floating component 1 drives the swinging component 2 to be suspended in the water. The connecting component 3 includes a mounting seat 31 arranged at the bottom end of the floating component 1, and a first guide rod 32 is provided at the bottom of the mounting seat 31. A second guide rod 33 is also vertically provided at the bottom end of the first connecting ring 21. The second connecting ring 22 is vertically slidably set on the second guide rod 33. When the driving component 24 is working, the driving component 24 drives the second connecting ring 22 to move vertically back and forth on the second guide rod 33.

[0040] With this design, when the aeration component 4 supplies oxygen to the water body, the drive assembly 24 drives the second connecting ring 22 to move vertically back and forth on the second guide rod 33, so that the second connecting ring 22 moves toward and away from the first connecting ring 21, thereby causing each first joint plate 231 and the corresponding second joint plate 232 to flip and fold, and then drive each aeration component 4 to swing up and down with the rotation point of the first joint plate 231 and the first connecting ring 21 as the center of the circle, so that the aeration component 4 can stir the water body when supplying oxygen.

[0041] It should be noted that when the water body is deep, the second guide rod 33 can be telescopically arranged in the first guide rod 32, so that the position of the aeration component 4 in the water body can be adjusted according to the water body depth, thereby enabling the aeration component 4 to perform aeration operations at the optimal position.

[0042] In one embodiment, the drive assembly 24 includes a drive cylinder 241 vertically arranged between the first connecting ring 21 and the second connecting ring 22, and the drive cylinder 241 is connected to the bottom of the first connecting ring 21, the second guide rod 33 slides through the drive cylinder 241, and a first power unit 242 is provided in the drive cylinder 241. An eccentric wheel 243 is provided on the moving end of the first power unit 242, and a connecting rod 244 is also provided on the eccentric wheel 243. One end of the connecting rod 244 is rotatably connected to the eccentric wheel 243, and the other end is rotatably connected to the second connecting ring 22. When the first power unit 242 drives the eccentric wheel 243 to rotate, the eccentric wheel 243 drives the second connecting ring 22 to move back and forth up and down through the connecting rod 244.

[0043] With this design, when it is necessary to drive each aeration component 4 to swing, the first power unit 242 drives the eccentric wheel 243 to rotate, and drives the second connecting ring 22 to slide vertically back and forth on the second guide rod 33 through the connecting rod 244, and then drives each second joint plate 232 and the corresponding first joint plate 231 to flip and fold through the second connecting ring 22.

[0044] Preferably, the first power unit 242 can adopt a waterproof motor in the prior art.

[0045] In one embodiment, the aeration component 4 includes a connecting sleeve 41 arranged on the first joint plate 231, and a gas-guiding hollow tube 42 is inserted into the connecting sleeve 41. The gas-guiding hollow tube 42 is connected to the oxygen supply component 5 through a hose (not shown in the figure). An aeration head 43 is provided at one end of the gas-guiding hollow tube 42 away from the connecting sleeve 41. The gas-guiding hollow tube 42 is used to transport oxygen to the aeration head 43, so that the aeration head 43 injects air into the water.

[0046] With this design, when the aeration component 4 needs to work, the oxygen supply component 5 transports oxygen to each air-guiding hollow tube 42, and the oxygen is injected into the water body through the aeration head 43. When each first joint plate 231 moves, it drives the corresponding air-guiding hollow tube 42 and the aeration head 43 to move in the water together, so that each air-guiding hollow tube 42 and the aeration head 43 can stir the water body while working.

[0047] In one embodiment, the floating component 1 includes an annular airbag 11, which is arranged above the first guide rod 32. A chassis 12 is provided on the airbag 11, and the airbag 11 is used to provide buoyancy for the chassis 12 to float on the water surface. The above-mentioned oxygen supply component 5 is arranged on the chassis 12, and the bottom of the chassis 12 is connected to the above-mentioned mounting seat 31. A semicircular transparent dome cover 13 is also provided on the chassis 12, and the transparent dome cover 13 covers the top of the oxygen supply component 5 to protect the oxygen supply component 5.

[0048] With this design, when aerating the water body, the air bag 11 provides sufficient buoyancy to make the chassis 12 float on the water surface, and then the first guide rod 32 and the second guide rod 33 enable the swing component 2 to float in the water body, thereby ensuring that the aeration component 4 can work normally.

[0049] In one embodiment, the oxygen supply component 5 includes an air pump 51 arranged on the chassis 12, and the air pump 51 is connected to each air-conducting hollow tube 42 through a hose (not shown in the figure). The air pump 51 is used to deliver oxygen to each air-conducting hollow tube 42. The chassis 12 is also provided with a plurality of solar photovoltaic panels 52, and each solar photovoltaic panel 52 is arranged in a circular array on the lower side of the transparent dome 13 with the center of the chassis 12 as the center. A battery 53 is also provided on the chassis 12, and the input end of the battery 53 is connected to each solar photovoltaic panel 52, and the output end of the battery 53 is connected to the air pump 51 and the first power unit 242. The solar photovoltaic panel 52 is used to charge the battery 53, so that the battery 53 provides power to the air pump 51 and the first power unit 242.

[0050] With this design, when aerating the water body, the solar photovoltaic panel 52 absorbs solar energy to charge the battery 53, so that the battery 53 provides electricity to the air pump 51 and the first power unit 242. The air pump 51 generates oxygen and transports it to the corresponding air-conducting hollow tubes 42 through each hose, and injects air into each aeration head 43.

[0051] In one embodiment, the air pump 51 and the first power unit 242 are both signal-connected to a control console (not shown);

[0052] A connection plate 6 is provided on the top of the transparent dome cover 13 . The connection plate 6 is provided with a plurality of air holes 61 . A signal antenna 7 is provided on the connection plate 6 to increase the signal strength between the air pump 51 and the first power unit 242 .

[0053] With this design, when aerating the water body, the air vent 61 is used to connect the gas in the transparent dome 13 with the external gas, thereby ensuring the pressure balance inside and outside the transparent dome 13, so as to ensure that the air pump 51 and the first power unit 242 can work normally. The signal antenna 7 is used to increase the signal strength of the air pump 51 and the first power unit 242, so that the staff can more stably control the signal of the air pump 51 and the first power unit 242 through the console.

[0054] In one embodiment, an anchoring component 8 is provided below the second connecting ring 22, and the anchoring component 8 includes a positioning plate 81 arranged at the bottom end of the second guide rod 33, and a shell 82 is provided at the bottom of the positioning plate 81. A second power unit 83 is provided inside the shell 82, and a winding rod 84 is provided on the moving end of the second power unit 83. A traction rope 85 is wound on the winding rod 84, and one end of the traction rope 85 extends out of the shell 82 and is provided with a positioning anchor 86, and the traction rope 85 extends out of the shell 82 and is dynamically sealed with the shell 82. The positioning anchor 86 is used to constrain the movement of the airbag 11. A constraint component 87 is also provided on the shell 82. When the constraint component 87 is connected to the winding rod 84, the constraint component 87 is used to constrain the rotation of the winding rod 84.

[0055] With this design, after the airbag 11 is placed at the predetermined position, the positioning anchor 86 is released, and the positioning anchor 86 sinks under the influence of gravity, and the second power unit 83 drives the winding rod 84 to rotate so that the traction rope 85 sinks and unfolds as the positioning anchor 86 sinks until it sinks to the bottom of the water body. At this time, the staff uses the constraint component 87 to prevent the winding rod 84 from continuing to rotate to avoid excessive unfolding of the traction rope 85. At this time, the positioning anchor 86 constrains the movement of the airbag 11 to prevent the airbag 11 from drifting away from the predetermined position with the water body. When the positioning anchor 86 needs to be recovered, the constraint component 87 is first separated from the winding rod 84, and then the winding rod 84 is reversed by the second power unit 83. The winding rod 84 reels in the traction rope 85 and drives the positioning anchor 86 to rise.

[0056] It should be noted that the second power unit 83 can adopt a waterproof motor in the prior art.

[0057] In one embodiment, the end of the winding rod 84 away from the second power unit 83 extends out of the housing 82 and is provided with a first limiting hole 841 . The connection between the winding rod 84 and the housing 82 is a dynamic sealing connection.

[0058] The restraint assembly 87 includes a limit plate 871 arranged at one end of the shell 82 away from the second power unit 83, and a second limit hole 8711 corresponding to the first limit hole 841 is opened on the limit plate 871. A limit pin 872 is also provided in the second limit hole 8711. When the limit pin 872 passes through the second limit hole 8711 and is inserted into the first limit hole 841, the limit pin 872 is used to prevent the winding rod 84 from rotating.

[0059] With this design, when the positioning anchor 86 sinks to the bottom of the water body, the staff will pass the limit pin 872 through the second limit hole 8711 and insert it into the first limit hole 841. At this time, the limit pin 872 prevents the winding rod 84 from rotating to prevent the traction rope 85 from continuing to unfold. When the positioning anchor 86 needs to be recovered, the limit pin 872 is removed and the traction rope 85 is reeled in through the winding rod 84.

[0060] The above description is merely a preferred embodiment of the present invention and is not intended to limit the present invention. Any modifications, equivalent substitutions, improvements, etc. made within the spirit and principles of the present invention shall be included within the scope of protection of the present invention. In addition, "multiple", "multiple groups", and "several" refer to more than two.

Claims

1. A water aeration device, characterized in that: include: A floating component (1), wherein the floating component (1) floats on the surface of the water body; The swing component (2) comprises a first connecting ring (21) arranged below the floating component (1), a second connecting ring (22) being provided below the first connecting ring (21), and the first connecting ring (21) and the second connecting ring (22) being arranged concentrically, and a plurality of folding joint plates (23) being provided between the first connecting ring (21) and the second connecting ring (22), each of the folding joint plates (23) being distributed in a ring array with the center of the first connecting ring (21) as the center, and the folding joint plates (23) comprising a first joint plate (231) and a second joint plate (232). A joint plate (232), wherein the first joint plate (231) and the second joint plate (232) are rotatably connected, the top end of the first joint plate (231) is rotatably connected to the first connecting ring (21), and the bottom end of the second joint plate (232) is rotatably connected to the second connecting ring (22), and further comprising a drive assembly (24) disposed between the first connecting ring (21) and the second connecting ring (22), wherein the drive assembly (24) is used to drive the second connecting ring (22) to reciprocate in a direction toward or away from the first connecting ring (21); a plurality of aeration components (4), each of the aeration components (4) being arranged on a corresponding first joint plate (231), and the aeration components (4) being used to add oxygen to water; An oxygen supply component (5) is arranged in the floating component (1), one end of the oxygen supply component (5) is connected to each of the aeration components (4), and the oxygen supply component (5) is used to provide oxygen to each of the aeration components (4).

2. The water aeration equipment according to claim 1, characterized in that: A connecting component (3) is provided between the floating component (1) and the swing component (2), and the connecting component (3) is used to connect the floating component (1) and the swing component (2), so that the floating component (1) drives the swing component (2) to suspend in water. The connecting component (3) includes a mounting seat (31) arranged at the bottom of the floating component (1), and a first guide rod (32) is provided at the bottom of the mounting seat (31). A second guide rod (33) is also vertically provided at the bottom end of the first connecting ring (21). The driving component (24) and the second connecting ring (22) are both vertically slidably arranged on the second guide rod (33). When the driving component (24) is working, the driving component (24) drives the second connecting ring (22) to move vertically back and forth on the second guide rod (33).

3. The water aeration equipment according to claim 2, characterized in that: The driving assembly (24) includes a driving cylinder (241) vertically arranged between the first connecting ring (21) and the second connecting ring (22), and the driving cylinder (241) is connected to the bottom of the first connecting ring (21). A first power unit (242) is arranged in the driving cylinder (241), an eccentric wheel (243) is provided on the moving end of the first power unit (242), and a connecting rod (244) is also provided on the eccentric wheel (243). One end of the connecting rod (244) is rotatably connected to the eccentric wheel (243), and the other end is rotatably connected to the second connecting ring (22). When the first power unit (242) drives the eccentric wheel (243) to rotate, the eccentric wheel (243) drives the second connecting ring (22) to move back and forth up and down through the connecting rod (244).

4. The water aeration equipment according to claim 3, characterized in that: The aeration component (4) comprises a connecting sleeve (41) arranged on the first joint plate (231), a gas-guiding hollow tube (42) is inserted into the connecting sleeve (41), the gas-guiding hollow tube (42) is connected to the oxygen supply component (5) through a hose, an aeration head (43) is provided at one end of the gas-guiding hollow tube (42) away from the connecting sleeve (41), and the gas-guiding hollow tube (42) is used to transport oxygen to the aeration head (43), so that the aeration head (43) injects air into the water.

5. The water aeration equipment according to claim 4, characterized in that: The floating component (1) includes an annular airbag (11), which is arranged above the first guide rod (32). A chassis (12) is provided on the airbag (11), and the airbag (11) is used to provide buoyancy for the chassis (12) to float on the water surface. The oxygen supply component (5) is arranged on the chassis (12), and the bottom of the chassis (12) is connected to the mounting seat (31). A semicircular transparent dome (13) is also provided on the chassis (12), and the transparent dome (13) covers the top of the oxygen supply component (5) to protect the oxygen supply component (5).

6. The water aeration equipment according to claim 5, characterized in that: The oxygen supply component (5) includes an air pump (51) arranged on the chassis (12), the air pump (51) is connected to each of the air-conducting hollow tubes (42) through a hose, and the air pump (51) is used to deliver oxygen to each of the air-conducting hollow tubes (42). The chassis (12) is also provided with a plurality of solar photovoltaic panels (52), each of which is arranged in a circular array on the lower side of the transparent dome (13) with the center of the chassis (12) as the center. A battery (53) is also provided on the chassis (12), the input end of the battery (53) is connected to each of the solar photovoltaic panels (52), and the output end of the battery (53) is connected to the air pump (51) and the first power unit (242). The solar photovoltaic panel (52) is used to charge the battery (53), so that the battery (53) provides electricity for the air pump (51) and the first power unit (242).

7. The water aeration equipment according to claim 6, characterized in that: The air pump (51) and the first power unit (242) are both connected to the control console via signals; A connecting disk (6) is provided on the top of the transparent dome cover (13), a plurality of air holes (61) are provided on the connecting disk (6), and a signal antenna (7) is provided on the connecting disk (6), and the signal antenna (7) is used to increase the signal strength between the air pump (51) and the first power unit (242).

8. The water aeration equipment according to claim 5, characterized in that: An anchoring component (8) is provided below the second connecting ring (22), and the anchoring component (8) includes a positioning plate (81) arranged at the bottom end of the second guide rod (33). A shell (82) is provided at the bottom of the positioning plate (81), and a second power unit (83) is provided inside the shell (82). A winding rod (84) is provided on the moving end of the second power unit (83), and a traction rope (85) is wound on the winding rod (84). One end of the traction rope (85) extends out of the shell (82) and is provided with a positioning anchor (86), and the traction rope (85) is dynamically sealed with the shell (82) at the point where it extends out of the shell (82). The positioning anchor (86) is used to constrain the movement of the airbag (11). A constraint component (87) is also provided on the shell (82). When the constraint component (87) is connected to the winding rod (84), the constraint component (87) is used to constrain the rotation of the winding rod (84).

9. The water aeration equipment according to claim 8, characterized in that: One end of the winding rod (84) away from the second power unit (83) extends out of the housing (82) and is provided with a first limiting hole (841); the connection between the winding rod (84) and the housing (82) is a dynamic sealing connection; The constraint assembly (87) includes a limit plate (871) arranged at one end of the housing (82) away from the second power unit (83), and a second limit hole (8711) corresponding to the first limit hole (841) is opened on the limit plate (871), and a limit pin (872) is also provided in the second limit hole (8711). When the limit pin (872) passes through the second limit hole (8711) and is inserted into the first limit hole (841), the limit pin (872) is used to prevent the winding rod (84) from rotating.

Citation Information

Patent Citations

  • Water aeration repair equipment

    CN206173105U